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Decoding Resistance to Targeted Therapy via New Cancer Models

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ATCC and the Broad Institute report the development of engineered isogenic cancer models designed to replicate resistance to targeted therapies, beginning with osimertinib, the latest-generation epidermal growth factor receptor (EGFR) inhibitor used to treat non-small cell lung cancer (NSCLC) with EGFR mutations.

According to the researchers, the work addresses a critical challenge in oncology—treatment resistance that emerges over time. EGFR-mutant lung cancer was among the first subsets of a major epithelial cancer where directly targeting an oncogene was associated with marked clinical benefit. While targeted therapies have significantly improved overall survival, resistance inevitably develops.

cancer drug resistance
Understanding resistance mechanisms is essential for identifying combination therapies capable of producing durable responses and potentially disease-free remissions. [Planet Flem/Getty Images]

Developing resistant models directly from patient tumors can take years due to the scarcity of samples. In contrast, engineering resistance mechanisms in controlled laboratory models allows researchers to systematically study multiple escape pathways much faster.

To accelerate discovery, scientists from ATCC and the Broad Institute collaborated to engineer a panel of drug-resistant NSCLC models using CRISPR gene editing and gene overexpression techniques. These models systematically model the resistance mechanisms that arise in patients treated with osimertinib, note the researchers.

“With this powerful new set of tools, drug-sensitive and drug-resistant cancer cells can be studied side by side to understand therapeutic resistance and the underlying drivers,” says Roth Cheng, PhD, CEO of ATCC. “By creating and providing these cancer models along with a rich data-set to the global research community, our hope is to reveal hidden targets and combination strategies that turn today’s treatment failures into tomorrow’s breakthrough. We look forward to extending this approach to additional cancer types.”

Engineering drug-resistant lung cancer models

Led by William R. Sellers, MD, director of the cancer program at the Broad Institute, Fang Tian, PhD, director of biological content at ATCC, and Francisca Vazquez, PhD, director of the Cancer Dependency Map (DepMap) at the Broad Institute, the team identified representative classes of resistance mechanisms to osimertinib. They then selected three disease-representative, osimertinib sensitive NSCLC cell lines as the foundation for developing the new isogenic drug-resistant cell models.

ATCC engineered the selected authenticated cell lines with resistance mechanisms using CRISPR-based methods. The six resistance mechanisms included: PIK3CA E545K mutation, KRAS G12D mutation, BRAF V600E mutation, EGFR C797S mutation, CCDC6-RET fusion, and TPM3–NTRK1 fusion.

In addition, scientists at the Broad Institute are generating additional resistant cell lines driven by gene amplification mechanisms using overexpression methods.

These engineered isogenic model systems allow researchers to compare genetically matched cancer cells that differ only by a specific resistance alteration—providing a powerful framework to study how tumors evolve under targeted therapy.

The models will be integrated into the DepMap, a global effort to identify genetic vulnerabilities across hundreds of cancer cell models. The collaboration also contributes to the development of a Response and Resistance Map (ResMap), an emerging framework designed to systematically characterize how cancers respond to therapy and how resistance evolves.

cancer researchers
Engineered isogenic model systems allow researchers to compare genetically matched cancer cells that differ only by a specific resistance alteration—providing a powerful framework to study how tumors evolve under targeted therapy. [Sanjeri/Getty Images]

“Drug resistance remains one of the most significant barriers to durable cancer treatment,” said Kirsty Wienand, PhD, senior research scientist in DepMap at the Broad. “Systematically engineering resistance mechanisms in well-characterized cell models allows us to study how tumors adapt to targeted therapy. Integrating these models into DepMap will help researchers worldwide identify new vulnerabilities and potential therapeutic combinations.”

The collaboration ensures that both the biological models and the associated data will be widely accessible to the scientific community, says the research team. Data will be integrated into the DepMap portal, with links to the corresponding ATCC cell line identifiers. In addition, the engineered cell lines will be distributed globally through ATCC following authentication and quality control.

Systematically engineering clinically relevant resistance mechanisms in lung cancer models, the collaboration establishes a scalable framework for studying how tumors escape targeted therapies, explain the scientists, adding that the resulting models and datasets will help researchers identify new vulnerabilities and therapeutic strategies to overcome drug resistance and improve outcomes for patients with cancer.

By combining advanced cell engineering, functional genomics, and computational biology, the collaboration should provide an important resource for studying drug resistance, cancer vulnerabilities, and precision oncology strategies.

 

ATCC and the Broad Institute will present the research findings at the American Association for Cancer Research® (AACR) Annual Meeting 2026, April 17–22 in San Diego:

Title: Engineering isogenic models harboring resistance mechanisms to the latest-generation EGFR inhibitor in non-small cell lung cancer

Session Category: Experimental and Molecular Therapeutics; Session Title: Drug Resistance 2: Tyrosine Kinase Inhibitors

Date: April 22, 2026, 9:00 AM–12:00 PM, Poster Section 11, Poster Board: 8, Poster Number: 7029

The post Decoding Resistance to Targeted Therapy via New Cancer Models appeared first on GEN – Genetic Engineering and Biotechnology News.

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SonoThera Raises $125M to Develop Ultrasound-Mediated Genetic Medicines

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Biotechnology company SonoThera has raised $125 million in an oversubscribed Series B financing round. The financing was led by Vida Ventures, with participation from ARK Invest, CureDuchenne Ventures, Leaps by Bayer, Otsuka Pharmaceutical, SymBiosis, UCB Ventures SA, Vivo Capital, and existing investors ARCH Venture Partners, Alexandria Venture Investments, Duquesne Family Office, Illumina Ventures, Johnson & Johnson Innovation – JJDC, Medical Excellence Capital, RA Capital, and Vertex Ventures HC.

SonoThera will use the funds to advance its lead programs in Duchenne muscular dystrophy (DMD) and autosomal dominant polycystic kidney disease (ADPKD) in the clinic. The funds will also support efforts to expand its pipeline of targeted redosable genetic medicines across multiple organ systems and scale its proprietary platform technologies for safe, targeted therapy delivery.

The company’s platform combines a proprietary ultrasound-mediated delivery technology dubbed RIPPLE™, with a payload engineering platform dubbed PORE™. The platforms are designed to support the development of DNA and RNA therapeutics, gene editing, and gene silencing approaches. SonoThera is using its tech to develop genetic medicines that it claims will address key limitations of conventional gene therapies including delivery challenges, payload size constraints, immune responses, safety events, and difficulties with redosing. 

As Kenneth Greenberd, PhD, SonoThera’s co-founder and CEO, stated “we founded SonoThera to take a fundamentally different approach, with a platform designed to broaden the therapeutic possibilities of the field. We believe our technology has the potential to expand the range of diseases addressable by genetic medicines while enabling more precise, durable, safer, and repeatable therapies for patients.”

SonoThera has already demonstrated the targeted delivery and expression capabilities of its platform across multiple tissues, including skeletal muscle, heart, liver, kidney, adipose, and brain. It has also shown that it can deliver large payloads such as full-length dystrophin for DMD and RNA-based payloads for gene silencing applications in preclinical studies. 

The company expects to initiate its first clinical trial in DMD in 2027.

Commenting on the financing, Rajul Jain, MD, managing director at Vida Ventures, said “we believe SonoThera, with its RIPPLE delivery and PORE payload engineering technologies, has the potential to unlock opportunities in diseases with significant unmet need that have been previously inaccessible to other genetic medicine approaches.” 

In connection with the financing, Jain and Rakhshita Dhar, MS, vice president & head of Healthcare Venture Investments at Leaps by Bayer, have joined SonoThera’s Board of Directors.

The post SonoThera Raises $125M to Develop Ultrasound-Mediated Genetic Medicines appeared first on GEN – Genetic Engineering and Biotechnology News.

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STAT+: Up and down the ladder: The latest comings and goings

Hired someone new and exciting? Promoted a rising star? Finally solved that hard-to-fill spot? Share the news with us, and we’ll share it with others. That’s right. Send us your changes, and we’ll find a home for them. Don’t be shy. Everyone wants to know who is coming and going.

And here is our regular feature in which we highlight a different person each week. This time around, we note that AstronauTx hired Michelle Mellion as chief medical officer. Previously, she held the same role at PepGen and EveryONE Medicines.

But all work and no play can make for a dull chief medical officer.

Continue to STAT+ to read the full story…

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Hired someone new and exciting? Promoted a rising star? Finally solved that hard-to-fill spot? Share the news with us, and we’ll share it with others. That’s right. Send us your changes, and we’ll find a home for them. Don’t be shy. Everyone wants to know who is coming and going.

And here is our regular feature in which we highlight a different person each week. This time around, we note that AstronauTx hired Michelle Mellion as chief medical officer. Previously, she held the same role at PepGen and EveryONE Medicines.

But all work and no play can make for a dull chief medical officer.

Continue to STAT+ to read the full story…

Read More

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FDA imposes import alert on Indian plant after inspectors flag GMP failings

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Officials sanctioned Dabur India months after FDA inspectors found bird droppings and data integrity deficiencies during an inspection of the plant.

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