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Updated: Jan 28, 2026

A Multi-compartment CNS Neuron-glia Co-culture Microfluidic Platform
Published on: September 10, 2009
Therapeutic resistance and susceptibility is shaped by cooperative multi-compartment tumor adaptation
Jason E Long1, Matthew J Wongchenko2, Dorothee Nickles3
1Department of Translational Oncology, Genentech, Inc., 1 DNA Way, South San Francisco, CA, 94080, USA.
Abstract:
Emerging research suggests that multiple tumor compartments can influence treatment responsiveness and relapse, yet the search for therapeutic resistance mechanisms remains largely focused on acquired genomic alterations in cancer cells. Here we show how treatment-induced changes occur in multiple tumor compartments during tumor relapse and can reduce benefit of follow-on therapies. By using serial biopsies, next-generation sequencing, and single-cell transcriptomics, we tracked the evolution of multiple cellular compartments within individual lesions during first-line treatment response, relapse, and second-line therapeutic interventions in an autochthonous model of melanoma. We discovered that although treatment-relapsed tumors remained genetically stable, they converged on a shared resistance phenotype characterized by dramatic changes in tumor cell differentiation state, immune infiltration, and extracellular matrix (ECM) composition. Similar alterations in tumor cell differentiation were also observed in more than half of our treatment-relapsed patient tumors. Tumor cell-state changes were coincident with ECM remodeling and increased tumor stiffness, which alone was sufficient to alter tumor cell fate and reduce treatment responses in melanoma cell lines in vitro. Despite the absence of acquired mutations in the targeted pathway, resistant tumors showed significantly decreased responsiveness to second-line therapy intervention within the same pathway. The ability to preclinically model relapse and refractory settings-while capturing dynamics within and crosstalk between all relevant tumor compartments-provides a unique opportunity to better design and sequence appropriate clinical interventions.
Insights
Tumor relapse involves changes across multiple compartments, not just genetics, impacting treatment effectiveness. These non-genomic alterations in cell state and tumor microenvironment drive resistance to subsequent therapies.
Area of Science:
- Oncology
- Cancer Biology
- Tumor Microenvironment
Background:
- Therapeutic resistance is a major challenge in cancer treatment.
- Current research often focuses on genetic alterations as the primary driver of resistance.
Purpose of the Study:
- To investigate treatment-induced changes in multiple tumor compartments during relapse.
- To understand how these changes affect response to subsequent therapies.
Main Methods:
- Utilized an autochthonous melanoma model with serial biopsies.
- Employed next-generation sequencing and single-cell transcriptomics.
- Analyzed tumor cell differentiation, immune infiltration, and extracellular matrix (ECM) composition.
Main Results:
- Relapsed tumors, despite genetic stability, showed altered cell differentiation, immune infiltration, and ECM composition.
- Increased tumor stiffness, linked to ECM remodeling, reduced treatment response in vitro.
- Resistant tumors exhibited decreased responsiveness to second-line therapy without new mutations.
Conclusions:
- Treatment relapse involves complex, multi-compartment changes beyond genetic mutations.
- Tumor cell-state plasticity and microenvironmental alterations are key resistance mechanisms.
- Understanding these dynamics is crucial for designing effective sequential cancer therapies.
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