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Aggressive breast cancer sets a trap for itself – and that is just where researchers intend to strike

A University of Helsinki research group has discovered a weakness in aggressive breast cancer cells that can be exploited, targeting the MYC protein's metabolic grip. By inhibiting energy production and glutamine uptake, researchers were able to slow breast cancer growth in mice, paving the way for new and personalised treatments.

SourceUniversity of Helsinki·JournalCell Reports·TypeExperimental study·DateAug 28, 2026

A CNIO group contributes to identifying which breast lesions will progress to cancer, thus helping avoid overtreatment

A study by the CNIO group has identified a genetic signature in precancerous breast lesions that can predict which ones will evolve into invasive tumours. This discovery could help avoid over-treatment of women diagnosed with ductal carcinoma in situ, a common precancerous lesion.

SourceCentro Nacional de Investigaciones Oncológicas (CNIO)·JournalNature Communications·TypeExperimental study·DateApr 20, 2026

UNC Lineberger awarded up to $28 million to develop an adaptive clinical trial for metastatic breast cancer

The UNC Lineberger Comprehensive Cancer Center has developed an adaptive clinical trial for metastatic breast cancer, leveraging $28 million in funding from the Advanced Research Projects Agency for Health (ARPA-H). The study aims to adapt treatment plans in near real-time using tumor biopsies, blood samples, and biomarkers.

Wake-up call for dormant cancer

Researchers at the Weizmann Institute of Science discovered that dormant breast cancer cells accumulate DNA mutations and experience widespread cellular damage, leading to dormancy. Increasing OVOL protein expression can halt cancer cell lifecycle and induce dormancy, but also enables them to reawaken more aggressively.

SourceWeizmann Institute of Science·JournalScience Signaling·DateApr 24, 2025

TNIP1 knockdown induces the growth arrest and apoptosis of breast cancer cells by activating the NF-κB pathway

This study investigates TNIP1's role in regulating cell proliferation and apoptosis in breast cancer. TNIP1 knockdown was found to induce growth arrest and activate the NF-κB pathway, leading to increased apoptosis in breast cancer cells. The findings highlight TNIP1 as a crucial marker for breast cancer therapies.

SourceXia & He Publishing Inc.·JournalOncology Advances·DateMar 19, 2025

Innovative dual-target drug may lead to new investigational approach for breast cancer patients

Researchers at University of Melbourne and Pfizer discover new insights into a dual-target drug that may supercharge cancer-fighting immune cells, potentially leading to improved outcomes for breast cancer patients. The study found that this approach can enhance anti-tumor immunity by intratumoral CD8+ T cells.

SourceUniversity of Melbourne·JournalClinical & Translational Immunology·TypeExperimental study·DateFeb 11, 2025

Preliminary study shows potential of Manuka honey as a nutraceutical for breast cancer

A new study by UCLA investigators found that Manuka honey contains compounds that can help reduce tumor growth in preclinical models. The research suggests that Manuka honey could potentially be developed into a natural supplement or standalone treatment for ER-positive breast cancer, which accounts for most breast cancer cases.

Korea University identifies novel inhibitor HVH-2930 showing promise in overcoming trastuzumab resistance in HER2-positive breast cancer

A novel inhibitor HVH-2930 targeting heat shock protein 90 (HSP90) demonstrates efficacy against drug-resistant breast cancer cells. It selectively downregulates HER2 signaling, crucial for breast cancer progression, without triggering the heat shock response.

SourceKorea University College of Medicine·JournalTheranostics·TypeExperimental study·DateJun 25, 2024

New tumour-selective light treatment could kill breast cancer cells with greater accuracy and improve tumour control

Researchers at NUS developed a new photodynamic therapy that selectively kills breast cancer cells without damaging surrounding tissues. The treatment uses a biocompatible silicone implant loaded with nanoparticles activated by near-infrared light, reducing the risk of toxicity and improving tumour control.

SourceNational University of Singapore, Yong Loo Lin School of Medicine·JournalACS Nano·TypeRandomized controlled/clinical trial·DateJul 19, 2023

UK scientists discover a new way to help prevent breast cancer ‘time bomb’

Researchers at the Institute of Cancer Research discovered that molecular changes in lung tissue can trigger breast cancer cells to 'reawaken' and form secondary tumors. They found that blocking PDGF-C activity with an existing cancer growth blocker could help prevent this, offering a potential strategy to defuse these 'time bombs'. Th...

SourceInstitute of Cancer Research·JournalNature Cancer·TypeExperimental study·DateMar 13, 2023

Technique for tracking resistant cancer cells could lead to new treatments for relapsing breast cancer patients

Researchers from the University of Cambridge have identified a method to track and kill resistant cancer cells in mice. By tagging different types of breast cancer cells with unique genetic barcodes, they were able to identify which cells are evading chemotherapy and target them specifically with a new treatment approach.

SourceUniversity of Cambridge·JournaleLife·TypeExperimental study·DateDec 20, 2022

Copper a clue in the fight against cancer

Researchers discovered that the Memo1 protein binds copper ions, blocking toxic redox reactions that damage or kill cancer cells. The protein's interaction with copper also protects against metastasis formation in breast cancer cells. This finding opens up potential new treatments for cancer.

SourceChalmers University of Technology·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateNov 10, 2022

Scientists identify unique breast cancer cells that control their ability to proliferate and colonize the lungs

Researchers discovered a type of triple-negative breast cancer cell that can trigger dormancy, evading therapies and allowing for efficient survival in distant organs. This finding highlights the need for more selective therapeutic strategies targeting both dividing and invasive dormant cells.

Revealing one of the mechanisms by which thyroid cancer becomes resistant to lenvatinib-a molecularly targeted drug

A study found that activation of the epidermal growth factor receptor (EGFR)-mediated signaling pathway is involved in lenvatinib resistance in thyroid cancer cells. Inhibition of EGFR by lapatinib therapy in combination with lenvatinib enhanced growth inhibitory effect and inhibited tumor growth more remarkably than monotherapy.

SourceShinshu University·JournalCancer Science·TypeExperimental study·DateSep 13, 2022