Oncotarget

Oncotarget

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Oncotarget episodes

  • Eco-Friendly Nanoparticles Improve Cidofovir’s Anticancer and Antiviral Effects
    BUFFALO, NY - November 10, 2025 – A new #research paper was #published in Oncotarget (Volume 16) on November 6, 2025, titled “Anti-DNA virus agent cidofovir - loaded green synthesized cerium oxide nanoparticles (Nanoceria): Nucleic acids (DNA and RNA) binding affinity and cytotoxicity effects.”
    In this study, led by Nahid Shahabadi from Razi University in Kermanshah, researchers developed an environmentally friendly approach to enhance the performance of cidofovir, a drug used to treat infections caused by DNA viruses. The work responds to the growing need for therapies that are safer, more effective, and better targeted.
    The research team developed a new compound by loading cidofovir onto green-synthesized cerium oxide nanoparticles (nanoceria), known as CDV-CeO2 NPs. This method combines the drug’s antiviral and anticancer properties with the biological activity of nanoceria, which is known for its antioxidant, anti-inflammatory, and tumor-targeting effects. To avoid toxic chemicals, the nanoparticles were synthesized using quince fruit peel extract, making the process more sustainable and suitable for medical applications.
    Laboratory experiments showed that the CDV-CeO2 nanoparticles were significantly more effective at killing breast cancer cells than either cidofovir or cerium oxide nanoparticles alone. At the highest tested concentration, the new compound destroyed more than 97% of cancer cells, compared to 72% with cidofovir alone and 50% with nanoparticles alone. These findings suggest that the combined formulation enhances anticancer activity and may allow for lower drug doses with fewer side effects.
    To understand how these nanoparticles interact with genetic material, the team studied their binding to DNA and RNA, two key molecules involved in cancer development and viral replication. CDV-CeO2 nanoparticles showed strong binding affinity through two mechanisms: groove binding, which fits into natural curves of the genetic molecule strands, and intercalation, which inserts between base pairs. The nanoparticles formed stable complexes that responded to temperature, indicating reliable interactions in biological systems.
    “The novelty of this work lies in the innovative green synthesis method, the dual-functional therapeutic application, and the enhanced biological activity of the CDV-CeO2 NPs, which collectively position these nanoparticles as promising candidates for future cancer and antiviral therapies.”
    This research presents a potential new strategy for improving drug targeting and delivery using green nanotechnology. The approach could lead to more effective treatments for diseases such as breast cancer and infections caused by human papillomavirus (HPV) and other DNA viruses. However, further research, including animal and clinical studies, is needed to confirm the safety and long-term effectiveness of this treatment.
    Overall, this study represents a significant step toward combining natural materials with nanomedicine to create more efficient therapies. If supported by future research, CDV-CeO2 nanoparticles could offer a new generation of dual-action treatments.
    DOI - https://doi.org/10.18632/oncotarget.28774
    Correspondence to - Nahid Shahabadi - [email protected]
    Abstract video - https://www.youtube.com/watch?v=Il9CsfgO2mU
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    5 min
  • How Low Oxygen Shields Prostate Cancer from Ferroptosis Therapies
    Prostate cancer is one of the most common cancers in men. While treatment options have improved, advanced stages of the disease remain difficult to manage. One promising approach involves a process called ferroptosis. This is a type of programmed cell death that relies on iron and lipid oxidation to kill cancer cells by damaging specific fats in their outer membrane. These fats are especially vulnerable in environments with normal oxygen levels.
    However, many prostate tumors grow in low-oxygen areas of the body, a condition known as hypoxia, where ferroptosis becomes less effective. A recent study, titled “Hypoxia induced lipid droplet accumulation promotes resistance to ferroptosis in prostate cancer,” and published on Oncotarget (Volume 16), explores how oxygen-poor environments help prostate cancer cells resist treatment and what strategies could help overcome this resistance.
    Full blog - https://www.oncotarget.org/2025/11/06/how-low-oxygen-shields-prostate-cancer-from-ferroptosis-therapies/
    Paper DOI - https://doi.org/10.18632/oncotarget.28750
    Correspondence to - Noel A. Warfel - [email protected], and Shailender S. Chauhan - [email protected]
    Abstract video - https://www.youtube.com/watch?v=xFypDT4ALmc
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    Keywords - cancer, hypoxia, lipid droplets, ferroptosis, resistance, prostate
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    4 min
  • Genetic Study Identifies Potential Diagnostic Marker for Rare Blood Cancer BPDCN
    Blastic plasmacytoid dendritic cell neoplasm (BPDCN) is a rare blood cancer that primarily affects older adults. One of the key challenges in diagnosing and treating BPDCN is that it closely resembles other forms of leukemia in both appearance and behavior. This overlap often leads to delays or uncertainty in diagnosis, especially since currently there is no single, reliable marker that clearly distinguishes BPDCN from related diseases.
    To address this issue, researchers from the City of Hope Comprehensive Cancer Center investigated the genetic profile of BPDCN. Their study, titled “Genetic characteristics of blastic plasmacytoid dendritic cell neoplasm: A single institution experience,” was published in Oncotarget (Volume 16).
    Full blog - https://www.oncotarget.org/2025/10/22/genetic-study-identifies-potential-diagnostic-marker-for-rare-blood-cancer-bpdcn/
    Paper DOI - https://doi.org/10.18632/oncotarget.28742
    Correspondence to - Michelle Afkhami - [email protected]
    Abstract video - https://www.youtube.com/watch?v=wUjr3uU3onI
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    Keywords - cancer, Blastic plasmacytoid dendritic cell neoplasm (BPDCN), Next-generation sequencing (NGS), CCDC50
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    4 min
  • Folate Receptor Beta Found in Pediatric Tumors May Improve Fluorescence-Guided Cancer Surgery
    BUFFALO, NY – October 20, 2025 – A new #research paper was #published in Volume 16 of Oncotarget on October 16, 2025, titled “Widespread folate receptor expression in pediatric and adolescent solid tumors – opportunity for intraoperative visualization with the novel fluorescent agent pafolacianine.”
    In this study, led by first author Ashley C. Dodd from Ann & Robert H. Lurie Children’s Hospital and corresponding author Timothy B. Lautz from the same institution and Northwestern University Feinberg School of Medicine, researchers discovered that folate receptor beta (FRβ) is widely expressed in various pediatric and adolescent solid tumors. This finding highlights FRβ as a promising target for improving the accuracy of tumor surgery using a fluorescent imaging agent known as pafolacianine.
    Pediatric cancers are often challenging to remove completely during surgery, particularly when tumors spread or form small metastases. Fluorescence-guided surgery is a method that helps surgeons better identify tumors during operations using special imaging dyes. However, commonly used dyes such as indocyanine green are not tumor-specific and rely on general features of blood vessel permeability, limiting their precision.
    In this study, researchers investigated the potential of pafolacianine, a next-generation dye that targets folate receptors, for pediatric use. Folate receptors are proteins commonly found on the surface of cancer cells. Pafolacianine is already FDA-approved for adults with ovarian and lung cancers due to its ability to bind these receptors and highlight tumors during surgery.
    The research team analyzed tissue samples from 13 young patients diagnosed with various cancers, including Wilms tumor, osteosarcoma, synovial sarcoma, rhabdomyosarcoma, Ewing sarcoma, and neuroblastoma. The results showed that FRα was predominantly absent, whereas FRβ was present in 100% of the tumor samples. Notably, FRβ appeared both on the tumor cells and in the surrounding tumor microenvironment but showed little to no expression in normal tissue, making it an excellent candidate for targeted imaging.
    “In this study, we performed immunohistochemistry staining on slides obtained from a range of pediatric patients with solid tumors.”
    This consistent expression of FRβ in pediatric tumors is a significant and novel finding. Earlier studies primarily linked FRβ to immune cells called tumor-associated macrophages. This study reveals that FRβ is also expressed directly on tumor tissue, which could help surgeons better distinguish cancer from healthy tissue during procedures.
    Based on these results, the team has launched a clinical trial to evaluate pafolacianine in children undergoing surgery for metastatic lung tumors. If successful, this method could make pediatric cancer surgery safer and more effective.
    Overall, this study suggests that targeting FRβ with pafolacianine could serve as a tumor-agnostic imaging strategy, applicable across a wide range of pediatric solid tumors. This represents a potential advancement in real-time surgical imaging and a step forward in pediatric cancer care.
    DOI - https://doi.org/10.18632/oncotarget.28772
    Correspondence to - Timothy B. Lautz - [email protected]
    Abstract video - https://www.youtube.com/watch?v=0its0QkOcwM
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    4 min
  • New Radiofrequency Therapy Slows Glioblastoma Growth and Targets Tumor Stem Cells
    BUFFALO, NY – October 14, 2025 – A new #research paper was #published in Volume 16 of Oncotarget on October 13, 2025, titled “Treatment of glioblastoma with tumor-specific amplitude-modulated radiofrequency electromagnetic fields.”
    The study, led by Hugo Jimenez from Wayne State University School of Medicine, Karmanos Cancer Institute, introduces a novel treatment approach for glioblastoma, an aggressive and often treatment-resistant brain cancer. The findings open a new potential path for patients who currently have limited therapeutic options.
    The approach uses a device developed by TheraBionic that delivers extremely low levels of radiofrequency electromagnetic fields, tuned to frequencies associated with glioblastoma. In laboratory experiments, this therapy significantly slowed the growth of multiple glioblastoma cell lines. It was especially effective against tumor stem cells, which are known to resist standard treatments and drive cancer reappearance. Researchers also found that the treatment’s effects depend on a calcium channel in tumor cells known as Cav3.2 (CACNA1H). When this channel was blocked, the therapy lost its effectiveness, highlighting the channel’s essential role in how tumor cells respond to the signal.
    The therapy also disrupted the process of cell division by interfering with the mitotic spindle, a structure critical for cell replication. This disruption was associated with changes in the expression of genes that regulate cell division, particularly those involved in the “Mitotic Roles of Polo-Like Kinase” pathway. These effects were specific to tumor-targeted frequencies, as non-matching signals had no measurable impact.
    The study also includes data from two patients with difficult-to-treat brain tumors who received the therapy through compassionate use. One patient with recurrent glioblastoma showed signs of clinical and radiographic improvement after one month of treatment. Another patient with oligodendroglioma tolerated the therapy well and had stable disease during follow-up imaging. Neither patient experienced serious side effects, further supporting the safety of the therapy.
    “There was evidence of clinical and radiological benefit in a 38-year-old patient with recurrent GB and evidence of safety and feasibility in a 47-year-old patient with oligodendroglioma.”
    This is the first study to demonstrate that tumor-specific radiofrequency therapy can suppress both tumor growth and cancer stem cells in glioblastoma. Similar results had previously been observed in liver and breast cancers. These findings contribute to the growing body of evidence supporting a new class of systemic, non-toxic cancer therapies. Further clinical trials will be crucial to confirm these results and fully assess the potential of this approach for treating brain cancer.
    DOI - https://doi.org/10.18632/oncotarget.28770
    Correspondence to - Hugo Jimenez - [email protected]
    Abstract video - https://www.youtube.com/watch?v=uxYnWcNKYfg
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    Keywords - cancer, oncology, amplitude-modulated radiofrequency electromagnetic fields, glioblastoma, TheraBionic, CACNA1H, Cav3.2
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    3 min
  • New Insights into HER2-Mutated Non-Small Cell Lung Cancer in Brazil
    Lung cancer remains one of the leading causes of cancer-related deaths worldwide. Although precision medicine has improved outcomes for many patients, certain rare genetic mutations are still poorly understood, particularly in regions with limited access to genomic testing. Such mutations involve the HER2 gene, better known for its role in breast cancer but also implicated in a small subset of lung cancers.
    HER2 mutations are found in approximately 2–4% of non-small cell lung cancer (NSCLC) cases and create unique challenges. These tumors can vary significantly in how they appear under a microscope and in how they respond to treatment. Adding to the complexity, most diagnostic and treatment guidelines are based on research from high-income countries, which may not reflect the genetic diversity seen in other parts of the world.
    To help close this knowledge gap, researchers in Northeastern Brazil conducted one of the first detailed investigations into HER2-mutated NSCLC in Latin America. Their study, recently published in Volume 16 of Oncotarget, reveals a complex and often overlooked form of the disease, highlighting the need for broader access to targeted therapies in underserved populations.
    Full blog - https://www.oncotarget.org/2025/10/08/new-insights-into-her2-mutated-non-small-cell-lung-cancer-in-brazil/
    Paper DOI - https://doi.org/10.18632/oncotarget.28737
    Correspondence to - Fabio Tavora - [email protected]
    Abstract video - https://www.youtube.com/watch?v=hr5R9iDBFFI
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    Keywords - cancer, HER2 mutation, NSCLC, lung cancer, targeted therapy, genomic profiling
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    6 min
  • Engineered Bacterial Therapy Activates Immune Response in Cancer Preclinical Studies
    BUFFALO, NY – October 8, 2025 – A new #research paper was #published in Volume 16 of Oncotarget on October 6, 2025, titled “ACTM-838, a novel systemically delivered bacterial immunotherapy that enriches in solid tumors and delivers IL-15/IL-15Rα and STING payloads to engage innate and adaptive immunity in the TME and enable a durable anti-tumor immune response.”
    In this study, led by first author Kyle R. Cron and corresponding author Akshata R. Udyavar, researchers from Actym Therapeutics developed a new form of bacterial immunotherapy called ACTM-838. This treatment safely delivers immune-activating proteins directly to solid tumors. The approach may offer a new option for cancer patients whose solid tumors are resistant to current immunotherapies.
    Solid tumors often suppress the immune system, making it difficult for treatments like immune checkpoint inhibitors to work effectively. ACTM-838 was designed to overcome this challenge by targeting phagocytic immune cells within the tumor microenvironment (TME). Once inside the tumor, the therapy delivers two immune-stimulating components: IL-15/IL-15Rα and a modified version of STING. Both are known to activate the body’s innate and adaptive immune responses. This combination of immune-stimulating proteins helps shift the TME from immune-suppressive to immune-permissive, enabling the body’s natural defenses to fight the cancer.
    “STACT is a modular, genetically engineered live attenuated S. Typhimurium bacterial platform that enables tissue-specific localization and cell-targeted delivery of large, multiplexed payloads via systemic administration.”
    The study highlights how ACTM-838, built on a specially modified strain of Salmonella Typhimurium, safely targets tumors and avoids healthy tissue after intravenous injection. This targeted delivery reduces the risk of side effects while ensuring the immune-boosting agents reach their intended location. Importantly, ACTM-838 also showed significantly reduced inflammatory toxicity compared to its parent bacterial strain, which had previously presented challenges in clinical use.
    In preclinical tests, ACTM-838 shrank tumors and prevented their recurrence after treatment. Mice that were cured of tumors resisted re-injection with cancer cells, suggesting the development of long-lasting immune memory. The therapy also showed strong synergy with anti-PD1 drugs, a widely used class of cancer treatments, further improving outcomes in both treatment-resistant and responsive tumor models.
    Researchers also found that ACTM-838 changed the composition of immune cells within the tumor. It increased beneficial cells like cytotoxic T-cells and antigen-presenting macrophages, while reducing suppressive cell types such as regulatory T-cells and exhausted T-cells. These effects were confirmed through genetic analysis and cellular studies, pointing to a broad and coordinated immune response.
    This study offers proof-of-concept that live bacterial therapy can safely and effectively deliver gene-based immune modulators directly to tumors. With ACTM-838 now being tested in a Phase I clinical trial, the findings offer a new direction for cancer treatment strategies that activate the body’s own immune system, particularly in difficult-to-treat cases where other therapies fail.
    DOI - https://doi.org/10.18632/oncotarget.28769
    Correspondence to - Akshata R. Udyavar - [email protected]
    Abstract video - https://www.youtube.com/watch?v=fr5OR3tvC_I
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    4 min
  • Wafik S. El-Deiry Chairs 2025 WIN Symposium in Collaboration with APM in Philadelphia
    BUFFALO, NY - October 1, 2025 – Oncotarget is proud to announce that its Editor-in-Chief, Wafik S. El-Deiry, MD, PhD, FACP, will chair the WIN Symposium as the Oncology Track of the Advancing Precision Medicine (APM) Annual Conference held October 3–4, 2025, at the Pennsylvania Convention Center in Philadelphia.
    The WIN Consortium annual symposium featured as the Oncology Track of the APM Annual Conference 2025 unites global leaders in oncology, translational science, and precision medicine. This year’s program features keynote lectures, multi-track sessions– WIN Symposium, Multi-Omics Integration and Precision Medicine Outside of Oncology– and networking opportunities designed to accelerate the translation of research into clinical practice.
    Highlights include:
    --A keynote at opening of the WIN Symposium in Philadelphia by William G. Kaelin, Jr., MD — 2019 Nobel Laureate.
    --Other luminaries in Oncology are speaking, including AACR President Lillian Siu, MD and AACR President-Elect Keith Flaherty, MD along with internationally recognized leaders in precision oncology.
    --A world-class precision oncology molecular tumor board and oral presentations from the most competitive abstracts are part of the program.
    --Multi-omics and disease-specific tracks spanning oncology, neurology, cardiovascular disease, rare disease, and infectious disease.
    --Opportunities for collaboration among scientists, clinicians, industry innovators, and policymakers.
    Registration is still open. Attendance is free for students, academic/government/non-profit participants, healthcare providers, and investors. The event provides CME credits. For full program details, visit the APM Annual Conference website.
    About WIN Consortium:
    WIN Consortium is a non-profit association headquartered in France. WIN was the first consortium that assembled all stakeholders of cancer care, from academia, industry, and patient advocates to work together across the globe. The WIN network assembles 34 world-class academic medical centers, industries, research organizations and patient advocates spanning 18 countries and 5 continents, aligned to launch trials to bolster Precision Oncology across the world. It was also the first organization to launch a N-of-One study using transcriptomics in addition to genomics to inform therapeutic choice in the WINTHER study.
    WIN is the organizer of the WIN symposia in Precision Oncology.
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    4 min
  • Precision Oncology in Metastatic Colorectal Cancer: A Real-World Case Study
    Colorectal cancer is one of the most common—and deadliest—cancers worldwide. Once it spreads and reaches the metastatic stage, treatment becomes far more difficult. Tumors can also behave very differently from one patient to another, especially after multiple rounds of therapy. Precision oncology is helping to overcome these challenges by enabling clinicians to analyze each tumor’s unique genetic profile and tailor treatment accordingly.
    This approach was recently highlighted in a case study published in Volume 16 of Oncotarget. The report detailed how a 62-year-old man with advanced colorectal cancer received a highly personalized treatment plan, developed by an international panel of experts, after completing all standard treatment options.
    Full blog - https://www.oncotarget.org/2025/09/24/precision-oncology-in-metastatic-colorectal-cancer-a-real-world-case-study/
    Paper DOI - https://doi.org/10.18632/oncotarget.28744
    Correspondence to - Shai Magidi - [email protected]
    Abstract video - https://www.youtube.com/watch?v=uWDtWNgpK7A
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    Keywords - cancer, precision oncology, molecular tumor board, colorectal carcinoma, cancer management
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    5 min
  • Loss of Trp53 Gene Promotes Tumor Growth and Immune Suppression in Ovarian Cancer
    BUFFALO, NY - September 24, 2025 – A new #research paper was #published in Volume 16 of Oncotarget on September 22, 2025, titled “Loss of Trp53 results in a hypoactive T cell phenotype accompanied by reduced pro-inflammatory signaling in a syngeneic orthotopic mouse model of ovarian high-grade serous carcinoma.”
    In this study, led by first author Jacob Haagsma and corresponding author Trevor G. Shepherd from the Verspeeten Family Cancer Centre and Western University, Canada, researchers investigated how the loss of Trp53 – a critical tumor suppressor gene – affects immune responses in ovarian cancer. The team found that deleting Trp53 led to more aggressive tumor growth and a weaker immune response. These findings help explain why some ovarian tumors may be resistant to immunotherapy and point to new ways to improve treatment.
    High-grade serous ovarian carcinoma (HGSC) is a deadly cancer that is often diagnosed at a late stage. Immunotherapy, which enhances the body’s immune system to fight cancer, has shown limited effectiveness in treating this type of cancer. To better understand why, the researchers developed a mouse model that closely mimics human HGSC. They injected ovarian epithelial cells, with and without Trp53, into the fallopian tubes, the origin site of most ovarian cancers.
    “In this study, we developed a syngeneic model reflecting both the site of origin and the genotype of early HGSC disease by deleting Trp53 in mouse oviductal epithelial (OVE) cells.”
    Mice injected with cells lacking Trp53 developed faster-growing and more invasive tumors, reflecting how the disease typically progresses in humans. These tumors also had fewer active T cells, which are immune cells responsible for attacking cancer. Moreover, the T cells that were present appeared less capable of responding to the tumor, creating an immune environment that allowed cancer to grow uncontrolled.
    Further analysis revealed that tumor cells without Trp53 had reduced activity in genes related to inflammation. These changes were associated with lower levels of key proteins that normally help immune cells detect and attack tumor cells. When the researchers collected tumor cells from the abdominal fluid of the mice—a condition that simulates advanced-stage disease—they observed even lower immune signaling than before. This suggests that as the tumor spreads, it becomes better at evading the immune system.
    This study highlights how early genetic mutations can shape the interaction between tumors and the immune system. In particular, the loss of Trp53 appears to trigger a chain of events that weakens immune surveillance and accelerates tumor progression. These findings emphasize the need to consider both genetic mutations and the tumor environment when designing immunotherapies for ovarian cancer. Understanding how genes like Trp53 influence immune behavior may lead to more effective treatments and help identify which patients are most likely to benefit from immunotherapy.
    DOI - https://doi.org/10.18632/oncotarget.28768
    Correspondence to - Trevor G. Shepherd - [email protected]
    Abstract video - https://www.youtube.com/watch?v=WFQw0psuC3M
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    4 min

About Oncotarget

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Oncotarget is a primarily oncology-focused, peer-reviewed, open access journal. Papers are published continuously within yearly volumes in their final and complete form and then quickly released to Pubmed.