Category Archives: Stem Cell Treatment


Global Stem Cell Market To Be Driven By Increasing Activities To Use Stem Cells In Regenerative Medicines In The Forecast Period Of 2022-2027 …

The new report by Expert Market Research titled, Global Stem Cell Market Report and Forecast 2022-2027, gives an in-depth analysis of the globalstem cell market, assessing the market based on its segments like types, treatment types, applications and major regions. The report tracks the latest trends in the industry and studies their impact on the overall market. It also assesses the market dynamics, covering the key demand and price indicators, along with analysing the market based on the SWOT and Porters Five Forces models.

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The key highlights of the report include:

Market Overview (2017-2027)

The stem cell business is growing due to an increase in activities to use stem cells in regenerative treatments due to their medicinal qualities. The increasing use of human-induced pluripotent stem cells (iPSCs) for the treatment of hereditary cardiac difficulties, neurological illnesses, and genetic diseases such as recessive dystrophic epidermolysis bullosa (RBED) is driving the market forward.

Furthermore, because human-induced pluripotent stem cells (iPSCs) may reverse immunosuppression, they serve as a major source of cells for auto logic stem cell therapy, boosting the industrys expansion. Furthermore, the rising incentives provided by major businesses to deliver breakthrough stem cell therapies, as well as the increased use of modern resources and techniques in research and development activities (R&D), are propelling the stem cell market forward.

Because of increased research and development (R&D) in the United States and Canada, North America accounts for a significant portion of the overall stem cell business. Furthermore, the increased frequency of non-communicable chronic diseases such as cancer and Parkinsons disease, among others, is boosting the use of stem cell therapy, boosting the industrys growth. Furthermore, the regions stronghealthcaresector is improving access to innovative cell therapy treatments, assisting the regional stem cell industrys expansion. Aside from that, due to the rising use of regenerative treatments, the Asia Pacific area is predicted to rise rapidly. Furthermore, rising clinical trials are assisting market expansion due to low labour costs and the availability of raw materials in the region, contributing considerably to overall industry growth.

Industry Definition and Major Segments

A stem cell is a type of cell that has the ability to develop into a variety of cells, including brain cells and muscle cells. It can also help to repairtissuesthat have been injured. Because stem cells have the potential to treat a variety of non-communicable and chronic diseases, including Alzheimers and diabetes, theyre being used in medical and biotechnological research to repair tissue damage caused by diseases.

Explore the full report with the table of contents@https://www.expertmarketresearch.com/reports/stem-cell-market

The major product types of stem cell are:

The market can be broadly categorised on the basis of its treatment types into:

Based on applications, the market is divided into:

The EMR report looks into the regional markets of stem cell-like:

Market Trends

The market is expected to rise due to increased research activity in regenerative medicine and biotechnology to personalise stem cell therapy. The usage of stem cells is predicted to increase as the need for treatment of common disorders, such as age-related macular degeneration (AMD), grows among the growing geriatric population. Due to multiple error bars during research operations, it becomes extremely difficult to characterise cell products because each cell has unique properties. As a result, the integration of cutting-edge technologies such as artificial intelligence (AI), blockchain, and machine learning is accelerating. Artificial intelligence (AI) is being used to analyse images quickly, forecast cell functions, and classify tissues in order to identify cell products, which is expected to boost the market growth.

With the rising frequency of cancer and cancer-related research initiatives, blockchain technology is increasingly being used to collect and assimilate data in order to improve access to clinical outcomes and the latest advances. Blockchain can also help with data storage for patients while improving the cost-effectiveness of cord-blood banking for advanced research and development (R&D) purposes. In addition, the use of machine learning techniques to analyse photos and infer the relationship between cellular features is boosting the market growth. The increased interest in understanding cellular processes and identifying critical processes using deep learning is expected to move the stem cell business forward.

Latest News on Global Stem Cell Market@https://www.expertmarketresearch.com/pressrelease/global-stem-cell-market

Key Market Players

The major players in the market are Pluristem Therapeutics Inc., Thermo Fisher Scientific Inc., Cellular Engineering Technologies, Merck KGaA, Becton, Dickinson and Company, and STEMCELL Technologies Inc The report covers the market shares, capacities, plant turnarounds, expansions, investments and mergers and acquisitions, among other latest developments of these market players.

About Us:

Expert Market Research is a leading business intelligence firm, providing custom and syndicated market reports along with consultancy services for our clients. We serve a wide client base ranging from Fortune 1000 companies to small and medium enterprises. Our reports cover over 100 industries across established and emerging markets researched by our skilled analysts who track the latest economic, demographic, trade and market data globally.

At Expert Market Research, we tailor our approach according to our clients needs and preferences, providing them with valuable, actionable and up-to-date insights into the market, thus, helping them realize their optimum growth potential. We offer market intelligence across a range of industry verticals which include Pharmaceuticals, Food and Beverage, Technology, Retail, Chemical and Materials, Energy and Mining, Packaging and Agriculture.

Media Contact

Company Name: EMR Inc. Contact Person: Sofia Williams, Corporate Sales Specialist U.S.A. Email: sales@expertmarketresearch.com Toll Free Number: +1-415-325-5166 | +44-702-402-5790 Address: 30 North Gould Street, Sheridan, WY 82801, USA City: Sheridan State: Wyoming Country: United States Website: https://www.expertmarketresearch.com

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*We at Expert Market Research always thrive to give you the latest information. The numbers in the article are only indicative and may be different from the actual report.

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Global Stem Cell Market To Be Driven By Increasing Activities To Use Stem Cells In Regenerative Medicines In The Forecast Period Of 2022-2027 ...

Jasper Therapeutics Announces Updated Data from Phase 1 Clinical Trial of JSP191 as Targeted Stem Cell Conditioning Agent in Older Patients with…

Jasper Therapeutics

JSP191 is well tolerated with no treatment-related severe adverse events in 24 patients with myelodysplastic syndrome (MDS) or acute myeloid leukemia (AML) in Ph1b dose expansion study

24 of 24 patients achieved successful engraftment with neutrophil recovery

20 of 24 patients determined to be free from morphologic relapse or disease progression at last follow up

REDWOOD CITY, Calif., April 26, 2022 (GLOBE NEWSWIRE) -- Jasper Therapeutics, Inc., (NASDAQ: JSPR) a biotechnology company focused on hematopoietic stem cell therapies, today announced updated efficacy, safety and pharmacokinetic data from its ongoing multicenter Phase 1 clinical trial of JSP191, the companys first-in-class anti-CD117 monoclonal antibody, as a targeted, non-toxic conditioning regimen in older patients with myelodysplastic syndromes (MDS) or acute myeloid leukemia (AML) undergoing allogeneic hematopoietic (blood) cell transplantation.

Updated data from the multicenter study showed that conditioning with a single dose of JSP191 0.6 mg/kg prior to low dose radiation and fludarabine in preparation for transplantation was well tolerated and led to successful engraftment as evidenced by primary neutrophil recovery and full donor myeloid chimerism in twenty-four older patients (aged 62-79) with AML in complete response (CR) or MDS. Twenty patients were determined to be free from morphological relapse or disease progression at last follow up with four patients off study due to relapse or progression. Clearance of measurable residual disease (MRD) was observed in 12 of 20 evaluable patients at last follow up. One case of late-onset grade III-IV acute GI graft vs. host disease (GVHD) and one case of secondary graft failure were reported. No JSP191 related Significant Adverse Events, no cases of classical acute grade II-IV GVHD and no cases of transplant related mortality within 100 days were reported.

The findings were presented by lead investigator Lori Muffly, M.D., M.S., Assistant Professor of Medicine (Blood and Bone Marrow Transplantation) at Stanford Medicine, as a late-breaking abstract at the 2022 Transplantation & Cellular Therapy (TCT) Meetings of the American Society for Transplantation and Cellular Therapy (ASTCT) and the Center for International Blood & Marrow Transplant Research (CIBMTR).

Story continues

We are excited about the progress of JSP191 as a targeted conditioning agent in patients with MDS or AML in CR undergoing hematopoietic stem cell transplant. These data show that JSP191 may be safely used on top of a standard conditioning regimen in older patients unable to tolerate myeloablative conditioning, said Ronald Martell, President and CEO of Jasper Therapeutics. We are looking forward to the start of a registration clinical study of JSP191 for transplant conditioning in MDS or AML in CR patients and the potential to bring safer and more effective conditioning to the growing population of older patients in need of blood stem cell transplant.

The Phase I trial is an open-label, multicenter study evaluating the safety, tolerability and efficacy of adding JSP191 to the standard conditioning regimen of low-dose radiation and fludarabine in patients aged 60 or older with MDS or AML undergoing hematopoietic cell transplantation. Patients were ineligible for myeloablative conditioning. The primary outcome measure of the study is the safety and tolerability of JSP191 as a conditioning regimen up to one year following a donor cell transplant. Secondary endpoints include engraftment and donor chimerism, MRD clearance, non-relapse mortality, event-free survival, and overall survival.

For more information on the study, refer to Clinicaltrials.gov identifier NCT04429191

About MDS and AML

Myelodysplastic syndromes are a group of disorders in which immature blood-forming cells in the bone marrow become abnormal and do not make new blood cells or make defective blood cells, leading to low numbers of normal blood cells, especially red blood cells. In about one in three patients, MDS can progress to AML, a rapidly progressing cancer of the bone marrow cells. Both are diseases of the elderly with high mortality. Each year, about 29,000 patients are diagnosed with MDS and approximately 42,000 patients are diagnosed with AML in the G7 countries for which approximately 2,500 patients with MDS and approximately 8,000 people with AML receive hematopoietic stem cell transplants. These transplants are curative but are underused due to the toxicity of the current intensive conditioning agents that have many off-target toxicities, which includes the chemotherapy agents busulfan and melphalan.

About Jasper Therapeutics

Jasper Therapeutics is a biotechnology company focused on the development of novel curative therapies based on the biology of the hematopoietic stem cell. The company is advancing two potentially groundbreaking programs. JSP191, an anti-CD117 monoclonal antibody, is in clinical development as a conditioning agent that clears hematopoietic stem cells from bone marrow in patients undergoing hematopoietic cell transplantation. It is designed to enable safer and more effective curative allogeneic hematopoietic cell transplants and gene therapies. Clinical study of JSP191 as a novel, disease-modifying, therapeutic for patients with lower risk MDS is also planned to begin in 2022. In parallel, Jasper Therapeutics is advancing its preclinical mRNA hematopoietic stem cell platform, which is designed to overcome key limitations of allogeneic and autologous gene-edited stem cell grafts. Both innovative programs have the potential to transform the field and expand hematopoietic stem cell therapy cures to a greater number of patients with life-threatening cancers, genetic diseases and autoimmune diseases than is possible today. For more information, please visit us at jaspertherapeutics.com.

Forward-Looking Statements

Certain statements included in this press release that are not historical facts are forward-looking statements for purposes of the safe harbor provisions under the United States Private Securities Litigation Reform Act of 1995. Forward-looking statements are sometimes accompanied by words such as believe, may, will, estimate, continue, anticipate, intend, expect, should, would, plan, predict, potential, seem, seek, future, outlook and similar expressions that predict or indicate future events or trends or that are not statements of historical matters. These forward-looking statements include, but are not limited to, statements regarding the potential benefits of hematopoietic stem cells (HSC) engraftment following targeted JSP191 conditioning in the treatment of myelodysplastic syndromes, acute myeloid leukemia, or severe combined immunodeficiency and JSP191s potential generally. These statements are based on various assumptions, whether or not identified in this press release, and on the current expectations of Jasper Therapeutics and are not predictions of actual performance. These forward-looking statements are provided for illustrative purposes only and are not intended to serve as, and must not be relied on by an investor as, a guarantee, an assurance, a prediction or a definitive statement of fact or probability. Actual events and circumstances are difficult or impossible to predict and will differ from assumptions. Many actual events and circumstances are beyond the control of Jasper Therapeutics. These forward-looking statements are subject to a number of risks and uncertainties, including general economic, political and business conditions; the risk that the potential product candidates that Jasper Therapeutics develops may not progress through clinical development or receive required regulatory approvals within expected timelines or at all; risks relating to uncertainty regarding the regulatory pathway for Jasper Therapeutics product candidates; the risk that clinical trials may not confirm any safety, potency or other product characteristics described or assumed in this press release; the risk that Jasper Therapeutics will be unable to successfully market or gain market acceptance of its product candidates; the risk that prior study results may not be replicated; the risk that final study data may not be consistent with preliminary study data; the risk that Jasper Therapeutics product candidates may not be beneficial to patients or successfully commercialized; the risk that Jasper Therapeutics has overestimated the size of the target patient population, their willingness to try new therapies and the willingness of physicians to prescribe these therapies; the effects of competition on Jasper Therapeutics business; the risk that third parties on which Jasper Therapeutics depends for laboratory, clinical development, manufacturing and other critical services will fail to perform satisfactorily; the risk that Jasper Therapeutics business, operations, clinical development plans and timelines, and supply chain could be adversely affected by the effects of health epidemics, including the ongoing COVID-19 pandemic; the risk that Jasper Therapeutics will be unable to obtain and maintain sufficient intellectual property protection for its investigational products or will infringe the intellectual property protection of others and other risks and uncertainties indicated from time to time in Jasper Therapeutics public filings with the SEC. If any of these risks materialize or Jasper Therapeutics assumptions prove incorrect, actual results could differ materially from the results implied by these forward-looking statements. There may be additional risks that Jasper Therapeutics does not presently know, or that Jasper Therapeutics currently believes are immaterial, that could also cause actual results to differ from those contained in the forward-looking statements. While Jasper Therapeutics may elect to update these forward-looking statements at some point in the future, Jasper Therapeutics specifically disclaims any obligation to do so. These forward-looking statements should not be relied upon as representing Jasper Therapeutics assessments of any date subsequent to the date of this press release. Accordingly, undue reliance should not be placed upon the forward-looking statements.

Contacts:

John Mullaly (investors)

LifeSci Advisors

617-429-3548

jmullaly@lifesciadvisors.com

Jeet Mahal (investors)

Jasper Therapeutics

650-549-1403

jmahal@jaspertherapeutics.com

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Jasper Therapeutics Announces Updated Data from Phase 1 Clinical Trial of JSP191 as Targeted Stem Cell Conditioning Agent in Older Patients with...

Pluristyx and Accelerated Biosciences Announce Availability of Clinical-Grade Immune-Privileged Human Trophoblast Stem Cells (hTSCs) -…

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Accelerated Biosciences ethically sourced stem cells will be available for clinical product development in Q3 2022

SEATTLE--(BUSINESS WIRE)-- Pluristyx, Inc., an advanced therapy tools and services biotechnology company, and Accelerated Biosciences, a regenerative medicine innovator in the use of proprietary human trophoblast stem cells (hTSCs), today announced they signed an agreement for Pluristyx to manufacture clinical grade hTSC banks under Good Manufacturing Practices (GMP). Accelerated Biosciences will use and make these stem cell banks available to commercial partners for further manufacturing of advanced biologic and cellular therapies. hTSCs have unique legal, ethical, and intellectual property advantages, including a high expansion capacity and a unique genetic identity not associated with any person or embryo, making them the ideal starting material for manufacturing the next generation of advanced therapies.

We are gratified by Accelerated Biosciences' choice of Pluristyx as their CDMO partner for GMP manufacturing. We are excited to be manufacturing clinical-grade cell banks for use as a unique starting source for the next generation of cell-based advanced therapies. This work demonstrates our commitment to providing the highest quality cells today for clinical development of tomorrows novel advanced therapies, said Dr. Benjamin Fryer, Chief Executive Officer of Pluristyx.

Yuta Lee, Chief Executive Officer of Accelerated Biosciences, stated: We recognized early on that there is an unmet need for an ethical, clinical-grade, pluripotent stem cell source with complete regulatory compliance documentation from donor consent to GMP release. To meet this need, we aim to make the hTSC source readily available to industry partners in order to accelerate cures to market. We are grateful to the dedicated team at Pluristyx for making this complex process simple. We look forward to doing our part to advance the cell and gene therapy industry.

About Pluristyx

Pluristyx is a privately held biotechnology company offering consulting, wet-lab and GMP banking services, and pluripotent stem cell products to support novel therapeutic developers. Pluristyx helps industry and academic researchers solve manufacturing and analytical challenges in cryopreservation, drug development, regenerative medicine, and cell and gene therapy. The Pluristyx team has decades of experience supporting every stage of cell therapy product development, from cell banking to drug product manufacturing including analytical testing and release of clinical grade cell therapy products. For more information about Pluristyx, visit http://www.pluristyx.com or email Kaye Reiter, PhD, JD at [emailprotected].

About Accelerated Biosciences

Accelerated Biosciences is a private regenerative medicine company focused on commercializing the hTSC platform, discovered by physician and researcher, Professor Jau-Nan Lee, MB, MD, PhD. Accelerated Biosciences holds a proprietary source of hTSCs with a robust intellectual property (IP) estate. Accelerated Biosciences mission is to leverage its renewable, immune-privileged human cell source to accelerate cures to patients and to make gene and cell therapy affordable to all in need. For more information about Accelerated Biosciences, visit http://www.acceleratedbio.com or email [emailprotected].

View source version on businesswire.com: https://www.businesswire.com/news/home/20220428005046/en/

Media: Kaye Reiter, PhD, JD 888-588-9935 [emailprotected]

Source: Pluristyx, Inc.

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Pluristyx and Accelerated Biosciences Announce Availability of Clinical-Grade Immune-Privileged Human Trophoblast Stem Cells (hTSCs) -...

La Conner native raising funds to cure blood cancer – La Conner Weekly News

LOCAL HERO - La Conner native Morgan Harlan donates her stem cells in Seattle for a leukemia patient through the program Be The Match. She is raising funds for the Leukemia & Lymphoma Society. -Photo Courtesy Sara Harlan

There are few things more grueling than running a marathon.

One of those is battling cancer.

A La Conner native knows all about the former, having previously run the Denver Colfax Marathon. Now shes helping bring greater awareness to the latter by raising funds for the Leukemia & Lymphoma Society as she trains for the Chicago Marathon in October.

Morgan Harlan, a 2020 Baylor University grad now teaching kindergarten in Denver, is hoping to raise $4,000 for LLS by running the urban Chicago course with two friends this fall. The Chicago Marathon is typically viewed by more than a million spectators.

I hope to raise as much money as I possibly can for such a worthy cause that is so important to my family, she told the Weekly News on Friday.

Her family has seen first-hand the life-saving potential of bone marrow and blood stem cell transplants, and is committed to helping find cures and ensure access to treatments for all blood cancer patients.

Harlans grandfather, longtime La Conner resident and Dunlap Towing retiree Mit Harlan, waged a successful battle against leukemia over a decade ago.

My grandfather, said Harlan, is alive because of a stem cell transplant.

While a student at Baylor, where she was a journalism/public relations major and played club soccer, Harlan signed up for Be the Match, which connects patients with transplant donors.

As a college student with a family member who had experienced cancer, said Harlan, I thought I was doing my due diligence by signing up for the registry.

Last December, four years after joining Be the Match, Harlan flew to Seattle to donate her stem cells.

Her patient was a 65-year-old male with leukemia the same age her grandfather was when he received his transplant.

When Be the Match called to inform me that I was the match and asked me if I would be willing to donate my stem cells, Harlan added, my response was: Absolutely. I hope I can give another little girl or boy more time with their grandpa like I was given.

Harlan has not stopped there. She has taken on fundraising for the cause, doing so in a way that shows she is in it for the long run.

She has enlisted a coach, La Conner alum Carlee Daub, to help her train for Chicago. Daub is an owner of Wahoo Running, an online platform that provides coaching to runners throughout the nation.

My first marathon, Harlan recalled, I was focused on completion. I wanted to prove to myself that I had the physical and mental grit to get through 26.2 miles. The Chicago Marathon will be focused more on speed and race strategy.

As Harlan has lowered her running times, her fundraising numbers have increased.

My fundraising has gone really well because of the wonderful people around me, she said. I am very thankful to have generous family members, friends, and community members.

My original goal was to raise $2,000, Harlan explained, which I was able to raise in the first week. I have since raised my goal to $4,000.

Committing to run the Chicago Marathon on behalf of LLS is a big step for Harlan. After graduating from Burlington-Edison High School, having competed in soccer and track there, Harlan chose to go out of state for college.

I wanted to travel outside of Washington for my four years of college and live somewhere new, she said. Baylor had a great mix of academic strength, athletics success and extracurriculars.

While on the Waco, Texas campus, Harlan regularly wrote for the student newspaper, the Baylor Lariat.

Now, as she preps for the Chicago Marathon and generates support for LLS, Harlan is making rather than reporting the news.

For her, its a story whose headliner is her grandfather.

Hes one of the best humans I know, said Harlan. Growing up, he never missed a soccer match (of mine), including a tournament in Spain. Hes very giving with his time and money, especially towards charities like LLS.

Harlan, daughter of Mike and Jennifer Harlan, of Landing Road, southeast of La Conner, said the best ways to donate are through either her donation page: (https://pages.lls.org.tnt/rm.chicago22/MHarlan) or Facebook.

Originally posted here:
La Conner native raising funds to cure blood cancer - La Conner Weekly News

Long-Term Axi-Cel Data ‘May Be Suggestive of a Cure’ in Patients With Large B-Cell Lymphoma – Curetoday.com

Long-term clinical trial data continues to support the use of axi-cel (axicabtagene ciloleucel) in treating patients with relapsed/refractory large B-cell lymphoma (LBCL), according to data presented at the 2022 Tandem Meeting.

Researchers presented five-year data from the phase 2 ZUMA-1 clinical trial, including the one- and two-year event-free survival findings.

In this updated five-year analysis, axi-cel induced long-term (overall survival) ... among treated patients, according to Dr. Caron A. Jacobson, the medical director of the Immune Effector Cell Therapy Program and senior physician at Dana-Farber Cancer Institute and an assistant professor of medicine at Harvard Medical School. She continued, Between the four- and five-year analysis, the time to next therapy curve remains stable and 92% of patients remained alive without a need for subsequent therapy, which may be suggestive of a cure in these patients.

Investigators reported a five-year overall survival rate of 42.6% following treatment with axi-cel. In the population of patients who experienced a complete response, the five-year overall survival rate was 64.4% and the median overall survival was not reached. Additionally, 63% of complete responders were alive at the five-year data cut off. At the four-year data cutoff, one patient died at month 63 and one experienced progressive disease at month 54.

To be considered for treatment, patients were required to have LBCL, including diffuse large B-cell lymphoma, primary mediastinal B-cell lymphoma or transformed follicular lymphoma. Patients were also required to have not responded to their last chemotherapeutic treatment or have relapsed 12 months or less following autologous stem cell transplant, which is a stem cell transplant using the patients own healthy cells. Treatment with a previous anti-CD20 monoclonal antibody and anthracycline was also necessary.

Those who underwent treatment received a conditioning regimen of cyclophosphamide and fludarabine for three days to get them ready for the main line of treatment. This was followed by axi-cel.

The main goal of the study was overall response rate with first response assessment four weeks following infusion. Key secondary end points included overall survival, safety and translational evaluations.

A total of 111 patients were enrolled on the study, eight of whom did not undergo treatment for one of the follow reasons: side effects (four patients), no measurable disease (two patients), death due to disease progression (one patient), and manufacturing failure (one patient); this left 103 patients to undergo conditioning. Of these patients, two were not treated due to side effects and death, respectively.

The data cutoff was Aug. 11, 2021 and the median follow-up was 63.1 months.

Additional findings from the trial highlighted a median time to next anticancer therapy of 8.7 months following infusion. A total of 34% of patients were alive at cutoff with no subsequent therapy or retreatment with axi-cel. Two patients who had prior progression underwent new anticancer therapy.

The five-year overall survival rates among those who had or had not experienced an event-free survival at month 12 were 5.3% vs 90.9%, respectively.

Events were classified as instances when the cancer recurred or became worse.

The median overall survival was 8.3 months among those who experienced an event and was not reached in those who did not experience an event. Additionally, the five-year overall survival rates among those who did or did not have an event at month 24 were 11.3% and 92.3%, respectively. Moreover, the median overall survival in both respective groups was 9.2 months and not reached.

Investigators also determined that early CAR-T cell expansion was associated with ongoing response at 60 months. The median peak CAR T levels appeared to be numerically higher in those who had an ongoing response at month 60 and lower in those who relapsed or did not respond to treatment. Similarly, another trend was observed in those who experienced CAR-T cell expansion by area under the curve from day 0 to 28.

A total of 58% of patients had died by the cutoff date. No new safety signals had been observed as of the five-year data cutoff, including serious side effects or secondary malignancies related to treatment.

Patients most commonly died due to progressive disease (45 patients), side effects (four patients), secondary malignancies (one patient) or other reasons (nine patients).

For more news on cancer updates, research and education, dont forget tosubscribe to CUREs newsletters here.

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Long-Term Axi-Cel Data 'May Be Suggestive of a Cure' in Patients With Large B-Cell Lymphoma - Curetoday.com

CareDx Demonstrates Potential of AlloHeme and AlloCell for Allogeneic Cell Transplant and Therapy Monitoring at Transplantation & Cellular Therapy…

SOUTH SAN FRANCISCO, Calif., April 22, 2022 (GLOBE NEWSWIRE) -- CareDx, Inc.. (Nasdaq: CDNA) The Transplant Company focused on the discovery, development, and commercialization of clinically differentiated, high-value healthcare solutions for transplant patients and caregivers today announced the presentation of new data during the Tandem Meetings, Transplantation & Cellular Therapy Meetings of ASTCT and CIBMTR being held on April 23-26 in Salt Lake City, Utah, highlighting the capabilities of AlloHeme and AlloCell for allogeneic cell transplant and therapy monitoring.

CareDx will also share information about its OTTR Patient Management Software that has recently been validated to SMART (Substitutable Medical Applications, Reusable Technologies) on FHIR (Fast Healthcare Interoperability Resource) standards and is available for customer use.

"CareDx has led the way in setting new standards of care for solid organ transplant monitoring, and we're excited to share the latest data on how our innovative solutions in development are poised to improve the care of patients receiving allogeneic hematopoietic stem cell transplants or being treated with allogeneic cell therapies," said Reg Seeto, CEO and President of CareDx. "AlloCellis being used by leading developers of allogeneic CAR T-cell therapies to non-invasively monitor the expansion and persistence of therapies in development, and through the ACROBAT study, our ultra-sensitive AlloHeme chimerism testing solution is being evaluated for its potential in monitoring stem cell transplant patients to enable the earlier detection of disease relapse and timely therapeutic interventions."

"The ACROBAT study is designed to demonstrate the role of AlloHeme in routine post allogeneic HCT patient monitoring," said Dr. Stefan O. Ciurea, Professor of Clinical Medicine and Director of the Hematopoietic Stem Cell Transplantation and Cellular Therapy Program at the University of California Irvine's Chao Comprehensive Cancer Center, and the lead Principal Investigator of the study. "With AlloHeme, we can measure chimerism levels more accurately with much higher sensitivity than the currently widely used STR-based testing methods. The ACROBAT study is assessing the role of AlloHeme for universal early relapse detection, potentially enabling better therapeutic interventions to prevent disease relapse post-transplant and improved treatment outcomes."

CareDx is advancing its product pipeline with new scientific innovations for blood cancers that will help monitor treatment response after allogeneic hematopoietic stem cell transplantation (Allo-HSCT) using AlloHeme and after allogeneic cell therapy using AlloCell.

Kashif Rathore, Senior Vice President of Digital Business at CareDx added, "We're also proud to have successfully partnered with Cerner, a leader in health integration technologies, in validating our OTTR software to SMART on FHIR endpoints and we look forward to offering this new service to customers."

Data being presented:

Title: AlloCell Provides a Highly Accurate, Sensitive, and Universal Solution for Monitoring Expansion and Persistence of Allogeneic Cellular Therapies. Abstract #: 298 This abstract shows that AlloCell is a highly sensitive and precise method for universal detection and quantification of engineered and non-engineered allogeneic cell therapies.

Title: Advances in Chimerism Monitoring Using NGS Technology Design of the ACROBAT Multicenter Clinical Trial Abstract #: 565 This abstract highlights the prospective, multi-center, observational clinical trial designed to evaluate the role of AlloHeme testing to monitor for relapse in patients post allo-HCT.

Title: Analytical Evaluation and STR Comparison of the Accurate and Sensitive Microchimerism Monitoring Tool for Relapse Prediction Post-Allogeneic HCT Abstract #: 435 This abstract highlights the analytical performance of AlloHeme, an ultra-sensitive chimerism detection solution, and demonstrates the high accuracy and sensitivity of AlloHeme in detecting chimerism compared to short tandem repeat (STR).

Title:SMART on FHIR Aligns an EHR with the Transplant-Specific Database Abstract#: 591 This abstract highlights the collaboration between CareDx and Cerner to develop and validate the CareDx OTTR software to support transplant data electronic health record integration in line with public SMART/FHIR API user interface standards. SMART FHIR integration functionality between Cerner andCareDx OTTRsoftware promotes an enhanced user experience allowing clinical resources to be more closely aligned with direct patient care.

About CareDx The Transplant Company CareDx, Inc., headquartered in South San Francisco, California, is a leading precision medicine solutions company focused on the discovery, development and commercialization of clinically differentiated, high-value healthcare solutions for transplant patients and caregivers. CareDx offers testing services, products, and digital healthcare solutions along the pre- and post-transplant patient journey and is the leading provider of genomics-based information for transplant patients. For more information, please visit: http://www.CareDx.com.

Forward Looking Statements This press release includes forward-looking statements related to CareDx, Inc., including statements regarding the potential benefits and results that may be achieved with AlloHeme, AlloCell, OTTR Patient Management Software's validation to SMART on FHIR standards (the "Software Validation"), and CareDx's presentation of data at the upcoming Transplantation & Cellular Therapy Meetings (the "Data Presentation"). These forward-looking statements are based upon information that is currently available to CareDx and its current expectations, speak only as of the date hereof, and are subject to risks and uncertainties that could cause actual results to differ materially from those projected, including risks that CareDx does not realize the expected benefits of AlloHeme, AlloCell, Software Validation, or Data Presentation; risks that CareDx fails to advance its product pipeline with new scientific innovations for blood cancers that will help monitor treatment response after Allo-HSCT using AlloHeme and after allogeneic cell therapy using AlloCell; risks that CareDx fails to present data and share information as identified in this press release; general economic and market factors; and other risks discussed in CareDx's filings with the SEC, including the Annual Report on Form 10-K for the fiscal year ended December 31, 2021 filed by CareDx with the SEC on February 24, 2022, and other reports that CareDx has filed with the SEC. Any of these may cause CareDx's actual results, performance or achievements to differ materially and adversely from those anticipated or implied by CareDx's forward-looking statements. CareDx expressly disclaims any obligation, except as required by law, or undertaking to update or revise any such forward-looking statements.

CONTACTS: CareDx, Inc. Sasha King Chief Marketing Officer 415-287-2393 sking@caredx.com

Investor Relations Ian Cooney (415) 722-4563 investor@CareDx.com

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CareDx Demonstrates Potential of AlloHeme and AlloCell for Allogeneic Cell Transplant and Therapy Monitoring at Transplantation & Cellular Therapy...

The International Society for Stem Cell Application Participates In IMCAS 2022 World Congress – Digital Journal

ISSCA Presents Regenerative Medicine World Congress and Promotes CGELL Technology Training

MIAMI, FL April 28, 2022 The International Society for Stem Cell Application has announced plans to become a sponsor at this yearsIMCAS 2022 World Congress. From June 3rd to June 5th, 2022, dermatologists, plastic surgeons, and aesthetic practitioners will gather in Paris for the worlds largest aging science and aesthetic learning event.

The International Society for Stem Cell Application (ISSCA) will be present, providing invaluable information about its innovative GCELL technology. Regenerative Medicine Certification program for physicians training and Promoting its Regenerative Medicine World Congressto be held in Istanbul, Turkey late September.

Cellular therapy is becoming standard practice in regenerative aesthetics due to its effectiveness and safety compared to existing treatment options Advanced technologies such as GCELL constitute a valuable therapeutic tool. Physicians specializing in dermatology, wound care, cosmetic gynecology, aesthetic medicine, hair transplants, and alopecia. Event participants will have a unique opportunity to learn about GCELL technology and ISSCA training programs.

Interested IMCAS attendees can visit the ISSCA and learn more about GCELL technology and ISSCAs Regenerative Medicine World Congress at Booth999 your spot, visithttps://www.issca.us/world-congress/

Media Contact Company Name: ISSCA Contact Person: Benito Novas Email: Send Email Phone: +1 (305) 560-5337 Address:Datran Center 9100 S Dadeland Boulevard, Suite 1500 City: Miami State: Fl. 33156 Country: United States Website: https://www.issca.us/

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The International Society for Stem Cell Application Participates In IMCAS 2022 World Congress - Digital Journal

Hairy cell leukemia: Outlook, treatment, and what to expect – Medical News Today

Hairy cell leukemia is a rare type of blood cancer that can affect adults. In people who receive treatment, the long-term outlook for hairy cell leukemia is good.

Hairy cell leukemia (HCL) occurs when bone marrow produces too many white blood cells called lymphocytes.

The disease gets its name from the hairlike projections on its cells. HCL cells can affect the bone marrow, spleen, liver, and lymph nodes.

According to the National Organization for Rare Disorders, HCL is more common in males over the age of 50 years.

HCL affects roughly 6,000 people in the United States, with around 600800 new diagnoses each year. Around 12% of all adult leukemias are HCL.

In many cases, the long-term outlook for HCL is good, with people often continuing to live good-quality lives for years with medical care.

In this article, we look at the outlook and survival rates for HCL, the risk of secondary cancers, and treatment options.

Learn about the symptoms of HCL here.

HCL is a chronic disease, and although there is no cure for it, the condition is treatable. Treatment is usually highly effective and can help people continue to live normal lives.

According to the National Cancer Institute, HCL progresses slowly or does not worsen at all.

The Leukemia and Lymphoma Society reports that the 5-year event-free survival rate for HCL is 90% in people who received initial treatment with the chemotherapy drug cladribine. This means 90% of people will still be alive 5 years after diagnosis.

Treatment with cladribine has led to roughly 85% complete remission and around 10% partial response in people with HCL.

A 2020 study looked at survival rates in 279 people diagnosed with HCL between 1980 and 2011. The median age of the participants was 59 years old. In 208 of the participants, the first-line treatments were the drugs cladribine or pentostatin.

A 10-year follow-up found that the median survival rate was 27 years overall, with 11 years of relapse-free survival. There was a relapse rate of 39%. The study concluded that people with HCL have a good long-term outlook.

Research suggests that there may be racial disparities in HCL outcomes. A 2015 study included participants of the following racial groups:

The study found that the 10-year survival rate was worse in African American participants than in those of other racial groups.

Half of African American participants were alive at the 10-year follow-up, whereas more than two-thirds of those in other racial groups were alive at the follow-up.

The researchers concluded that the biological, socioeconomic, and health system factors contributing to this disparity need further investigation.

According to a 2020 study, people with HCL have an increased risk of secondary cancer.

Among 279 participants, 59 people developed at least one secondary cancer. The most common secondary cancers were prostate cancer, nonmelanoma skin cancer, and blood cancers.

The study did not find that treatment with purine analogs, such as cladribine or pentostatin, was a risk factor for secondary cancers.

However, according to the National Cancer Institute, cladribine and pentostatin may increase the risk of Hodgkin lymphoma and non-Hodgkin lymphoma.

Some research suggests that HCL and its effects on the body may increase the risk of secondary cancer.

People with HCL must attend regular cancer screenings to detect any early signs of secondary cancer.

Blood cell changes in those with HCL may result in compromised immune systems, making people more susceptible to infection or autoimmune disease.

HCL responds very well to treatment, which aims to manage the cancer rather than cure it.

Unlike with many other types of cancer, doctors may choose to wait before starting treatment.

Doctors will monitor the condition and may only begin treatment if they believe it is necessary to control it. This can help avoid any unnecessary side effects of treatment.

The type of treatment will depend on each condition but may include the following:

Cladribine and pentostatin are purine analogs, which are the first-line treatment for HCL.

According to the Hairy Cell Leukemia Foundation, both medications are highly effective treatments and can result in long-term remission.

In 2018, the Food and Drug Administration (FDA) approved another drug, moxetumomab pasudotox, to treat HCL. Doctors may use this drug in people who have not responded to standard therapies.

Interferon is a drug that doctors may use to treat HCL. Interferon uses the bodys immune system to help fight off cancer. Interferon affects how cancer cells divide and helps slow tumor growth.

Doctors may also use a biologic drug called rituximab, known by the brand name Rituxan, if people with HCL have not responded to other treatments. Rituximab is an antibody that attaches to HCL cells. Doctors may also use rituximab in combination with chemotherapy as a first-line treatment.

Targeted therapies use medications or other substances to find and destroy cancer cells. Targeted therapies may cause less harm to healthy cells than other treatments, such as radiation therapy or chemotherapy.

One type of targeted therapy to treat HCL is monoclonal antibody therapy. A laboratory creates antibodies that attach to cancer cells and destroy them or prevent them from growing and spreading. The biologic drug rituximab is an example of a monoclonal antibody.

Splenectomy is a surgical procedure to remove the spleen. This may be necessary if HCL causes an enlarged spleen.

However, doctors rarely perform splenectomy for HCL because there are medications that can effectively reduce the size of the spleen.

Learn more about immunotherapy for leukemia here.

Treatments for HCL can have the following side effects:

Cancer treatments may also cause other side effects, such as fatigue, appetite loss, or nausea.

Before starting treatment, people can discuss any potential side effects and the risks and benefits of each treatment option with their healthcare team.

Learn more about side effects here.

HCL is a rare type of leukemia. Other types of leukemia include:

HCL is a rare type of adult leukemia. It is more common in males over the age of 50 years.

The overall outlook for people with HCL is good. Treatment with chemotherapy drugs, such as cladribine and pentostatin, is highly effective and may result in long-term remission.

Treatments for HCL may have side effects. People can discuss any treatments potential risks and benefits with their healthcare team.

More here:
Hairy cell leukemia: Outlook, treatment, and what to expect - Medical News Today

Treatment for Myelodysplastic Syndromes: Who, When, and What – Pharmacy Times

Attendees of this live virtual program learned the latest and greatest in a presentation from 2 expert oncology pharmacists.

Attendees of this live virtual program learned the latest and greatest in a presentation titled Beyond Watch and Wait: Advances in Therapeutic and Supportive Care for Patients With Lower-risk Myelodysplastic Syndromes from 2 expert oncology pharmacists.

Sarah E. Stump, PharmD, BCPS, BCOP, began the session with a review of myelodysplastic syndromes (MDS) including epidemiology, risk factors, diagnosis, and risk assessment. She illustrated treatment decisions based on lower-risk and higher-risk MDS categories guided by the Revised International Prognostic Scoring System (IPSS-R). She explained that patients who do not have symptoms can be observed; however, patients with symptomatic anemia or other cytopenias are candidates for treatment. Dr Stump advised that patients with higher-risk MDS may be offered curative therapy with an allogeneic stem cell transplant. She noted few patients are eligible for this intensive therapy and most patients with higher-risk MDS are managed with hypomethylating agents (HMAs) or newer investigative strategies.

She then illustrated options for lower-risk MDS, including lenalidomide for patients with an isolated chromosome 5q deletion; epoetin alfa for patients with anemia and a serum erythropoietin level less than 500 units/L; immunosuppressive therapy for a subgroup of patients with a high likelihood of response to immunosuppressive therapy; and HMAs for patients with multiple cytopenias. Dr Stump wrapped up the first half of the session describing luspatercept, a new option for patients who require two or more red blood cell (RBC) transfusions over 8 weeks after failing an erythropoiesis-stimulating agent; for very low- to intermediate-risk MDS with ring sideroblasts or with myelodysplastic/myeloproliferative neoplasm with ring sideroblasts and thrombocytosis.

Kristen McCullough, PharmD, BCPS, BCOP, began the second half of the presentation by talking about iron overload in patients with MDS. She cautioned there are nearly a dozen different guidelines for the use of iron chelation therapy in this patient population. Based on the National Comprehensive Cancer Network guidelines, iron chelation is recom- mended for patients with IPSS-R low- and intermediate-1 risk MDS with a history of more than 20 to 30 RBC transfusions, when the ferritin is above 2500 ng/mL using either deferasirox or deferoxamine. She outlined strategies for dosing, administration, and monitoring iron chelation therapy. Dr McCullough shifted to focus on supportive care strategies and clinical pearls. She wrapped up by emphasizing the benefits of pharmacist-based medication education in hematology/oncology, including:

Patient satisfaction

Patient learning outcomes

Adherence

Revenue

Errors

Severe adverse effects

Sarah E. Stump, PharmD, BCPS, BCOP, explained, In clinical practice, a cutoff IPSS-R score of 3.5 commonly distinguishes between lower-risk MDS, which accounts for approximately two-thirds of all cases at diagnosis and higher-risk MDS, which accounts for approximately one-third of all cases.

Kristen McCullough, PharmD, BCPS, BCOP, stated, Pharmacists can use collaborative practice agreements to follow patients on oral chemotherapies, adjust or hold doses based on laboratory findings, and also facilitate medication refills.

Link:
Treatment for Myelodysplastic Syndromes: Who, When, and What - Pharmacy Times

Emerging potential of PTL nanoformulations in tumor therapy | DDDT – Dove Medical Press

Introduction

As a medical herb, Feverfew (Tanacetum parthenium) is conventionally used in Europe to treat fever, inflammation, migraines, rheumatoid arthritis, and menstrual irregularities. Parthenolide (PTL, Figure 1) is a sesquiterpene lactone found in feverfew, which is currently considered to be responsible for the herbs therapeutical potential.1 Initially, conventional extraction methods using chloroform and petroleum ether were performed to extract PTL; various extraction methods have been developed, such as high-performance liquid chromatography (HPLC), Soxhlet extraction, supercritical fluid extraction (SFE) and microwave-assisted extraction (MAE).1,2

Figure 1 Chemical structure of PTL and DMAPT.

The anti-cancer property of PTL was firstly validated in 1973. Furthermore, its patent application for tumor suppression was approved in 2005.3 Additionally, the in vitro and in vivo antitumor potential of PTL in multiple cancer types has been confirmed by numerous researches, which mainly resulted from its cytotoxicity to the bulk population of cancer cells as well as from selectively targeting cancer stem cells (CSCs); it is a subpopulation currently believed to be responsible for chemotherapy resistance and tumor relapse.310 Further studies revealed a series of direct PTL targets [p65, IB kinase (IKK), focal adhesion kinase 1 (FAK1), and others] that indirectly affect signaling pathways, which account for cell cycle arrest, apoptosis induction, metastasis suppression, redox imbalance, and epigenetic regulation involved in PTLs antitumor properties.3,4,11,12 The potential utility of PTL as radio-sensitization agent and complementary therapy against various cancers has also been widely studied and summarized.1315 As reviewed by Malgorzata et al, PTL has been combined with various anticancer agents, such as tubulin-directed agents, anthracyclines, antimetabolites, histone deacetylase inhibitors, mTOR inhibitors, and inducers of reactive oxygen species (ROS).14

Despite its deciphered anticancer potential and mechanisms of action in pre-clinical experiments, the clinical application of PTL remains hindered because of some disadvantages, including weak aqueous solubility, low oral bioavailability, and relative instability under chemical and physiological conditions.16,17 As a result, various methods for synthesizing PTL derivatives to yield compounds with better hydrophilicity and improved potency have been proposed.4,6,18 Dimethylamino parthenolide (DMAPT, Figure 1), a representative among hydrophilic PTL analogues, showed improved water solubility and oral bioavailability. Thus, it has advanced into the first phase of a clinical trial for the treatment of acute myeloid leukemia (AML).19

Nanomedicine is a rapidly developing field that exploits nanoparticles (NPs) to facilitate the diagnosis and treatment of a wide range of diseases. Nanoparticles applied in nanomedicine generally refer to a type of colloidal drug delivery system, which comprises particles with a size range from 10 to 200 nm in diameter.20 By far, diverse types of nanoparticles have been developed as drug carriers, including but not limited to liposomes, polymeric micelles, carbon nanotubes, mesoporous silica nanoparticles, metal-based nanoparticles, and dendrimers. Moreover, these can be made of diverse materials, including lipids, phospholipids, polymers, proteins, and inorganic materials.21,22

Compared with free drug counterparts, nanoparticles entrapment has displayed distinct advantages, such as improved bioavailability, prolonged circulation time, and ease of functionalization by surface modification. Furthermore, the enhanced permeability and retention (EPR) effect caused by the large amount of leaky vascularization and impaired lymphatic drainage at the tumor site enables non-targeted nanoparticles to accumulate in tumor tissues.23 Some of these nanoparticles have been approved as cancer therapeutics by the Food and Drug Administration.21 Besides the chemical modification of PTL for property improvement, the development of nanoscale drug delivery systems offers another promising strategy to overcome the poor water solubility and bioavailability of PTL as well as to determine its efficient and selective delivery to tumor tissues; the latter of which has not been summarized as compared to the extensively reviewed bioactivities and combination treatments of PTL. Therefore, we focused on the key antitumor mechanisms of PTL as well as its efficiency in being formulated as a nanoparticle delivery system.

Current evidence demonstrates that the antitumor mechanism of PTL is multifactorial and complex, due to the high electrophilic reactivity of -methylene--lactone present in PTL, thereby resulting in the alkylation of various proteins. A number of PTL targets have thus been identified and summarized.4 Furthermore, newer potential targets of PTL, such as USP7 and EGFR, continue to be reported,2427 thereby giving rise to the regulatory effect of PTL on various signaling pathways (Figure 2) and cellular processes (Figure 3) responsible for proliferation, cell cycle regulation, stemness, cell death, angiogenesis and metastasis.3,4 Thus, it is not surprising that PTL displays diverse anticancer effects, including abrogated cell viability and angiogenesis, cell cycle arrest, cell death induction, and decrease in stemness, invasiveness, and chemoresistance (Table 1).

Figure 2 Selected signaling pathways regulated by PTL. The key components and signal transduction cascade reactions in NF-B signaling, Wnt/-catenin signaling, JAK/STAT signaling, FAK1 signaling, and p53 signaling were depicted, and the nodes targeted by PTL were labeled.

Notes: Represents the inhibitory effect, and Represents the activation effect.

Figure 3 Pivotal cellular processes affected by PTL. Schematic diagram showing the formation of microtentacle and major antioxidant machineries were plotted. The targets regulated by PTL were marked.

Note: Represents the accumulation of ROS.

As shown in Figure 2, several signaling pathways closely related to tumorigenesis and progression were suppressed by PTL; among these, the prominent NF-B signaling pathway was the first to be inhibited. Mechanism investigation illustrated that PTL inhibited NF-B signaling by alkylating cysteine 38 in p65 and cysteine 179 in IKK.28,29 Additionally, a later study predicted that tumor necrosis factor receptor-associated factor 6 (TRAF6) might have been a novel target involved in the PTL-associated inhibition of NF-B.30 Moreover, the role of PTL in preventing NF-B activation contributed to the suppression of hypoxia-inducible factor-1 (HIF-1) signaling.31 Recent studies have elucidated that PTL inhibited Wnt/-catenin signaling by targeting ubiquitin specific peptidase 7 (USP7) and ribosomal protein L10 (RPL10), a deubiquitination enzyme stabilizing -catenin and a ribosomal protein related to the synthesis of the transcriptional regulator 4/lymphoid enhancer binding factor 1 (TCF4/LEF1), respectively.24,32 Furthermore, FAK1 and janus kinase/signal transducer and activator of transcription (JAK/STAT) signaling were found to be impaired by PTL by covalently modifying specific cysteine molecules.33,34

Apart from inhibiting the aforementioned signaling pathways, PTL also activated p53 functions by promoting the ubiquitination of E3 ligase murine double minute 2 (MDM2) in an ataxia-telangiectasia mutated (ATM)-dependent manner, thus leading to either cell cycle arrest or apoptosis.35 Specially, USP7 was reported to interact with and stabilize MDM2 and p65.36,37 Thus, the inhibitory effect of PTL on USP7 might be a further step for activating p53 and inhibiting NF-B. Additionally, the activation of c-Jun N-terminal kinase (JNK) by PTL enhanced the sensitivity of human cancer cells to tumor necrosis factor- (TNF-) or tumor necrosis factor-related apoptosis-inducing ligand (TRAIL).38,39

To date, PTL has been found to exert antitumor effects on several cellular processes, including redox balance and epigenetic modulation; the targets involved in these two processes have also been revealed (Figure 3). Several studies have indicated that PTL disrupted intracellular redox homeostasis by depleting glutathione (GSH) and inhibiting its metabolic enzymes, including glutamate-cysteine ligase catalytic subunit (GCLC), thioredoxin reductase 1/2 (TrxR1/2), and GSH peroxidase 1 (GPX1), thus leading to increased ROS level.4042 Moreover, ROS enhancement by PTL seemed to elicit different forms of cell death, such as necrosis, apoptosis, and autophagic cell death, depending on the tumor cell type.40,41,43 Meanwhile, the action of PTL on ROS partially accounts for its distinctive ability to selectively induce cell death in cancer cells, while sparing the equivalent normal cells. This is due to the fact that oxidative stress in cancer cells is more frequently elevated than that in normal cells. Thus, additional ROS produced by PTL may promote tumor cell death, whereas normal cells may maintain redox homeostasis by adaptive antioxidant responses.44 Moreover, the epigenetic targets of PTL consist of various enzymes, including histone deacetylase 1 (HDAC1), DNA methyltransferase 1 (DNMT1), and lysine methyltransferase 5C (KMT5C); these regulate the transcription of various genes, such as p21 and high in normal-1 (HIN-1).4547 In addition, PTL disrupted the cyclical detyrosination/tyrosination of tubulin by inhibiting tubulin carboxypeptidase (TCP), which led to a reduced frequency of microtentacles and suppressed tumor cell reattachment to endothelial layers (Figure 2).48,49

Interactions between signaling pathways and cellular processes may be affected by PTL. For instance, the stimulated generation of ROS by PTL was able to induce autophagy and cause NF-kB downregulation.40,43 Furthermore, NF-B inhibition contributed to epigenetic regulation,47 thereby further complicating the antitumor mechanism of PTL.

To understand the pharmacological effects of PTL, in vitro studies on its efficacy, pharmacological activities, and potential molecular mechanisms in a variety of cancer cells as well as available in vivo models since 2019 are tabulated in Table 1, thus further extending and qualifying existing reviews of its biological activities.3,4,50 As shown in Table 1, PTL modulation toward the aforementioned signaling pathways and cellular processes exerts multiple pharmacological effects against a myriad of tumor cell types.

The antiproliferative activity of PTL was detected in almost all studies; the results indicated that PTL exhibited half-maximal inhibitory concentration (IC50) between the range of 2.525 M for most tumor cells listed, thus showcasing its cytotoxicity to different cancer cells.5159 Cell cycle arrest, induction of cell death, and changes in related proteins were further detected, thus further supporting the cytotoxic potential of PTL. Overall, PTL was shown to induce different effects depending on the cell type, which can be illustrated by its ability to induce cell cycle arrest at different phases as well as several types of cell death in various cancer cells. For example, PTL arrested uveal melanoma cells in the G1 phase by upregulating p21 and downregulating cyclin D1, which are two G1 phase cell cycle regulatory proteins.60 On the other hand, PTL decreased the expression of survivin promoting G2/M cell cycle transition, thereby triggering G2/M cell cycle arrest in glioblastoma cells.61 Apoptosis, necrosis, and autophagy are the three forms of cell death caused by PTL;62 among which, apoptosis is the most studied. It is well known that apoptosis is elicited by two distinct pathways, the extrinsic and mitochondria-mediated intrinsic pathways; it culminates in the activation of caspases, which function as the main apoptotic effectors.63

Numerous studies demonstrated that PTL treatment could induce extrinsic or intrinsic apoptosis in tumor cells by inhibiting the activities of the NF-B, STAT3, Wnt and JNK signaling pathways, activating the p53 signaling pathway, regulating the Bcl-2 family members, and generating ROS.24,62,6471 Furthermore, PTL-induced cell death of breast cancer and multiple myeloma cells was dramatically attenuated by co-treatment with the pan-caspase inhibitor, Q-VD-OPh or Z-VAD-fmk, thus indicating that caspases are involved in PTL-induced apoptotic cell death; it also concurs the presence of other forms of cell death.33,72 Indeed, a large number of studies reported that PTL was capable of inducing autophagic or necrotic cell death.50,62 For instance, PTL mediated cell death through ROS-mediated autophagy in human osteosarcoma (Saos-2 and MG-63) and triple-negative breast cancer (MDA-MB-231) cells.40,43 In particular, PTL was capable of simultaneously inducing mixed forms of cell death, as evidenced by observations of PTL-induced apoptosis and autophagy in Hela and HepG2 cells as well as apoptosis and necrosis in HL60 cells.7375 Additionally, the role of autophagy in cell death involves the fact that its inhibition significantly blocked PTL-induced apoptosis in pancreatic cancer cells,76 but potentiated PTL-induced apoptosis in human breast cancer cells.77

Although previous studies have elucidated the selective targeting effect of PTL on CSCs from primary or sensitive cancer cells,3 a recent study by Yi et al suggested that PTL also effectively eliminated leukemia stem cells (LSCs) from adriamycin (ADM)-resistant K562 cells (K562/ADM) by suppressing aberrantly activated NF-B.64 In addition, NF-B inactivation by PTL sensitized gastric tumor and esophageal squamous cell carcinoma (ESCC) cells to chemotherapeutic drugs including ADM and cisplatin.78,79 PTL exerted its anti-angiogenic effects by inhibiting the NF-B-mediated VEGF expression in ESCC cells.79 Moreover, several studies have pointed out that PTL inhibits migration, invasion, and metastasis, which benefits from its abilities to regulate epithelial-to-mesenchymal transition (EMT) and to inhibit FAK1, TCP, and STAT3.33,8083

In short, the ultimate outcomes resulting from the affected signaling pathways and cellular processes by PTL include, but are not limited to, impaired cell proliferation and angiogenesis, induction of cell death, and reduced stemness, invasiveness, and chemoresistance. This has been confirmed by a large body of research, thus providing a sufficient basis for studies investigating and developing a wide range of PTL nanoformulations for various cancer therapies.

To the best of our knowledge, several types of PTL nanocarriers, including liposomes,8489 polymeric micelles,9096 nanocrystals,97 PLGA nanoparticles,98 and nanographene,99 have been synthesized to deliver PTL and ameliorate its anti-cancer efficacy. Whether PTL is co-encapsulated into nanoparticles with other drugs or small molecules and whether the nanoparticles are modified for targeted therapy, these studies can be classified into three types. Furthermore, the types, materials, and properties of nanocarriers mentioned in these studies, as well as the in vitro and in vivo models employed to evaluate the anticancer effects of nanoformulations, are separately tabulated in Tables 24.

Table 2 Unmodified Nanoparticles Solely Incorporated with PTL

Table 3 Undecorated Nanovectors Encapsulated PTL and Other Agents

Table 4 Targeted Nanocarriers Encapsulated PTL with or without Other Agents

Baranello et al synthesized different types of micelles formed from amphiphilic diblock copolymers of PSMA-b-PS or PSMA-b-PBA; PTL was successfully loaded into these micelles. However, PTL exhibited the greatest loading efficiency and capacity in PSMA100-b-PS258 micelles, thereby indicating that the composition and hydrophobic core chemistry of micelles were significant parameters for optimization.90 Although subsequent studies suggested that PTL-loaded PSMA100-b-PS258 micelles did not exhibit better cytotoxic ability toward MV4-11 cells than free PTL, it protected sequestered PTL from damage by both cells and deactivating chemicals, such as GSH.91 Similarly, the application of stealthy liposomes and micelles fabricated by F127 or biodegradable PTL-PTMC as nanocarriers of PTL did not appear to efficiently increase its cytotoxicity against MCF-7, MDA-MB-231, and patient T-lineage acute lymphoblastic leukemia (T-ALL) or B-cell precursor acute lymphoblastic leukemia (BCP-ALL) cells.89,92,93 However, the combination of stealthy liposomal PTL slightly sensitized the antitumor effects of stealthy liposomes loaded with vinorelbine.89

Unlike the nanocarriers mentioned above, the carboxyl-functionalized nanographene (fGn) as well as the PTL-nanocrystal delivery system showed improved antiproliferation activities in comparison with individual PTL. The IC50 of PTL and PTL-fGn for Panc-1 cells were 39 and 9.5 M respectively, whereas the IC50 of PTL for HepG2 cells decreased from 50.891 M to 33.618 M when delivered with nanocrystals.97,99 Interestingly, there was no significant difference in cytotoxic activity between DMAPT and DMAPT-fGn; this inefficacy may be due to the lack of a hydrophobic interaction between DMAPT and fGn.99 Thus, whether incorporation of DMAPT into other nanovectors could enhance its cytotoxicity is worth exploring. Furthermore, the in vitro and in vivo combination of PTL-nanocrystals and sorafenib achieved remarkable synergistic anti-cancer effects, as reflected by the MTT, wound-healing and HepG2 xenograft assays.97

Given the molecular complexity of cancer, combination therapy has attracted tremendous attention because of its ability to increase drug efficacy, improve drug resistance, and reduce systemic toxicity. Kanwaldeep et al constructed a paclitaxel and PTL co-delivery system of PEG2000-DSPE/vitamin E-TPGS mixed micelles, which retained a high encapsulation efficiency (>95%) and chemical stability over a storage period of 45 days. Furthermore, co-encapsulation of these two drugs significantly suppressed the viability of sensitive and taxol-resistant A549 cells compared to their free drug counterparts in solutions and single drug-loaded micelles.94 In addition, as a component of these mixed micelles, it is noteworthy that vitamin E-TPGS aided in not only maintaining high encapsulation efficiency due to its bulky structure and large surface area, but also enhanced chemosensitization by inhibiting P-glycoprotein (P-gp) efflux.94,100 Recently, a liposome system loaded with betulinic acid, PTL, honokiol and ginsenoside Rh2 displayed in vitro and in vivo antitumor activity comparable to cisplatin, the first-line therapy for lung cancer. In addition, this cocktail liposome therapy circumvented obvious kidney damage induced by cisplatin, as revealed by hematoxylin and eosin (H&E) staining. It also did not cause any significant damage to other major organs, including the heart, liver, spleen, and lungs, thereby indicating that this cocktail is a safer alternative for lung cancer treatment.84

To exploit the advances in photothermal therapy, Jin Xin and co-workers constructed thermosensitive liposomes (TSLs), in which PTL and the photosensitizer indocyanine green (ICG) were co-loaded. ICG converts light energy into heat energy upon near-infrared light irradiation. Compared to groups treated with paclitaxel, a combination of free drugs with or without laser, or PTL-ICG TSLs without laser, groups treated with PTL-ICG TSLs with laser exhibited lower cell viability, higher ROS induction and apoptosis, and better in vivo anti-cancer effects. According to these results, the two benefits of heat energy released by ICG under near-infrared radiation at the tumor location were validated. On the one hand, the heat-promoted phase transition of these liposomes enhanced their fluidity and permeability, thus allowing loaded drugs to effectively diffuse to tumor tissues at high concentrations. On the other hand, the maximum temperature of tumor tissues treated with PTL-ICG TSLs with laser reached 47.4C 2.68C, which led to irreversible damage and further synergized with the oxidative stress of PTL.85

To further improve drug delivery and selective targeting toward cancer cells, targeted nano-encapsulation of PTL with or without other agents was developed according to the characteristics of specific types of tumor cells and their microenvironment or the suction of the magnetic field. CD44 is a pivotal receptor involved in myelopoiesis; its specific variant isoforms have been reported to be overexpressed in AML cells, thus indicating that CD44 can serve as a promising receptor for targeted delivery of anti-AML drugs.101,102 As a result, an intervention was developed by encapsulating PTL into PLGA nanoparticles conjugated with antiCD44 with higher tumor targeting efficiency than PLGA-PTL nanoparticles. Although the cytotoxic abilities of PLGA-antiCD44-PTL and PLGA-PTL nanoparticles were not compared, PLGA-antiCD44-PTL nanoparticles exhibited stronger cytotoxicity than free PTL.98

Leukemia stem cells (LSCs) within the bone marrow (BM) microenvironment are thought to be the primary mediators of relapse and chemotherapy resistance in AML. Furthermore, E-selectin expressed in the BM endothelium provides a feasible approach for targeted BM delivery. In view of the remarkable capability of PTL to eradicate cancer stem cells including LSCs, a multistage vector system (MSV) was developed by entrapping PTL in mPEG-PLA micelles coated with protective degradable porous silicon particles and an E-selectin thioaptamer. In contrast to the negligible therapeutic efficacy of PTL-loaded micelles, MSV-PTL significantly reduced the tumor burden of patient-derived AML xenografts, concurrent with the inhibition of NF-B and activation of -H2AX; this supports the effectiveness of the MSV system for targeted BM delivery. Moreover, the decreased level of secondary xenotransplants implied that the directed delivery of PTL to the BM using the MSV system led to the elimination of LSCs.95

The tLyP-1 peptide has been verified to possess cell-penetrating ability and tumor-targeting capacity, which are derived from its C-terminal structure and affinity to the neuropilin-1 receptor overexpressed in several kinds of cancer cells (eg glioma and lung cancer).103 In which tLyP-1-modified liposomes entrapped in PTL and ginsenoside compound K (CK) were synthesized, the level of ROS and induced apoptosis of A549 cells in vitro significantly increased. Besides, PTL/CK tLyP-1 liposomes exhibited greater anticancer efficacy than the combined administration of these two compounds in A549 tumor-bearing mice.87 In addition, Ran et al developed PTL-loaded PEG-PLA micelles decorated with a Y-shaped DWVAP peptide, which could guide micelles across multiple biological barriers and ultimately target glioma and its associated stem cells. Moreover, combined therapy of PTL-loaded, DWVAP-modified PEG-PLA micelles with temozolomide or DWVAP-modified PEG-PLA micelles loaded with paclitaxel achieved outstanding anti-glioma efficacy, according to the KaplanMeier survival analysis.96

Recently, by virtue of the magnetic field, magnetic nanoparticles (MNPs) were chosen to modify the surface of liposomes (lips) loaded with PTL by Gao and co-workers.86,88 In one study, PTL-ICG-Lips, similar to PTL-ICG TSLs mentioned above, were coated with MNPs. In terms of in vitro heating efficiency and drug release, there was no significant difference between the [emailprotected] group treated only with laser and [emailprotected] group treated with laser plus magnet, which were stronger than non-laser irradiation treated groups. These results suggested the dominant role of photothermal conversion mediated by ICG in these processes. However, the presence of the magnetic field increased the heating rate and percentage of drug release at an earlier stage. In addition, cells treated with [emailprotected] (magnet plus laser) exhibited the highest cellular uptake. Consistently, in vivo studies also showed that the [emailprotected] (magnet plus laser) group displayed the fastest heating rate, highest temperature, and highest intratumoral PTL concentration.86 These findings indicated that the magnetic field could enrich the magnetic liposomes in the irradiated area, thus further enhancing the efficiency of photothermal conversion and facilitating the release and uptake of PTL.

Another multifunctional delivery system generated by Gao et al was the encapsulation of PTL and glucose oxidase (GOD) into nanomagnetic liposomes coated with chitosan, named [emailprotected] The addition of chitosan endowed [emailprotected] with the capability to release drug at a slightly acidic pH, which was characteristic of the tumor microenvironment. As a result, this increased the targeting ability of the system together with the magnetic field. By consuming glucose, GOD in this system lowers the pH and generates H2O2 as well as starves the cancer cells to death. A lower pH further promotes drug release; H2O2 can be subsequently catalyzed by iron ions in MNPs to produce hydroxyl radicals (OH), a noxious ROS. Meanwhile, PTL protects OH from scavenging by depleting GSH,40 which amplifies the intracellular oxidative stress and thus leads to cell apoptosis. Under an extra magnetic field, the [emailprotected] demonstrated prominent antitumor effects in vitro and in vivo through the integration of chemo-, chemodynamic, starvation and magnetic-targeting therapies.88

As discussed above, the incorporation of PTL into nanocarriers results in increased solubility, cellular uptake and stability, prolonged circulation time, and enhanced accumulation at tumor sites. Therefore, the majority of nanocarriers encapsulated with PTL, especially when combined with other agents such as photosensitizers, anticancer drugs, and MNPs, demonstrated higher anticancer efficiency than free PTL. These mechanisms are reflected by better antiproliferative activities, more effective induction of apoptosis, higher suppression rate of migration, and xenograft tumor growth. Histological examination demonstrated the low toxicity of this novel therapeutic agent.

In addition, a variety of naturally occurring sesquiterpene lactones structurally related to PTL with anticancer efficiency, as represented by micheliolide (MCL, Figure 4), melampomagnolide B (MMB, Figure 4), and costunolide (COS, Figure 4) have been reported.104106 Similar with PTL, most of current researches focus on structural modification of these compounds to improve their antitumor effects, stability, and sustainable release.107111 Several studies started to investigate the incorporation of MCL analogs and COS into nanoparticles.112,113 Bone-targeted PSMA-b-PS NPs entrapped with triazole MCL analog exhibited excellent serum stability and significantly reduced LSC burden in leukemic mice.112 Another study demonstrated that COS and COS-NPs, in combination with doxorubicin (DOX), stimulated the activity of caspase-3 and induced apoptosis of HCT116 and MDA-MB-231-Luc. They also suppressed the tumor growth of HCT116 and MDA-MB-231-Luc implants in nude mice. There was no significant difference in the anti-tumor activity of COS and COS-NPs; the authors deemed that this may have been due to the dose-selective approach for determining the optimal anti-cancer activity for both COS and Nano-COS. Thus, dose-response relationship will be investigated in future studies.113 In addition, Niu et al constructed pH-responsive mesoporous silica nanoparticles (MSNs) loaded with COS, which increased stability and enhanced anti-fibrotic effect of pure COS.114 In short, above-mentioned results implied that nanoparticles entrapped with sesquiterpene lactones show great promise in the treatment of cancer and other diseases.

Figure 4 Chemical structure of MCL, MMB and COS.

Studies from the past decades have validated the great potential of PTL as an anticancer agent with extremely intricate bioactivities. However, poor aqueous solubility, instability, low bioavailability, and drug-targeting property of PTL limit its in vivo anticancer efficacy and clinical application.86 As such, the development of nanoparticle-based platforms has been utilized in multiple biomedical fields, including hydrophobic drug delivery, which undoubtedly provides a promising strategic improvement.115 Indeed, several natural product-derived anticancer nanodrugs, including nanoparticle albuminbound (NAB)-paclitaxel and liposomal vincristine, have been used in clinical practice.21 However, no clinical trials have been reported for nanocomposites of PTL and its structurally related sesquiterpene lactones. Furthermore, despite multiple in vitro and in vivo experiments that have reported the benefits of nanoparticle-based formulations of other natural anti-cancer drugs in the treatment of various cancer types, including quercetin, curcumin, resveratrol, and andrographolide, only a few clinical trials have been performed, thus, suggesting that the investigation of these nanocarriers is still in its relative infancy.116118 Further optimization can be performed because the efficiency of nanoparticles can be influenced by many parameters, such as nanocarrier types, compositions (eg materials, ligand modification, co-encapsulated agents), and physical properties (eg size, shape, surface charge).21 As such, PTL and other natural product-based nanoformulations with improved properties will undoubtedly emerge; clinical trials need to be encouraged to further validate the security and therapeutic efficiency of these nanoparticles for cancer. Finally, PTL has been recently predicted to be a possible agent for the treatment of other diseases, such as Hutchinson-Gilford Progeria syndrome and hypertrophic cardiomyopathy.119,120 Thus, the therapeutic value of PTL nanoparticles for these diseases deserves further study.

The authors acknowledge funding from the Young Scientists Fund of National Science Foundation of China (No. 81803587), the Project of Science and Technology of Yunnan Province (2019FD054), PhD Start-up Fund for Tao An from Qilu University of Technology (No. 81110573), and Industry-University Cooperation Collaborative Education Project of Ministry of Education (202102403007).

The authors declare that they have no conflicts of interest in this work.

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