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Assessment of Resistance to Tyrosine Kinase Inhibitors by an Interrogation of Signal Transduction Pathways by Antibody Arrays
Published on: September 19, 2018
Mecanismos de resistencia a la terapia en el microambiente tumoral: Perspectivas de la citometría de microarrays de
Rochelle Wickramasekara1, Valerie Jones1, Yating Zhao2
1RayBiotech Life Inc., Peachtree Corners, Georgia 30097, USA.
Background:
Therapy resistance remains a major obstacle in the treatment of solid tumors and accounts for most cancer-related deaths. While tumor-intrinsic mechanisms have been well-studied, the tumor microenvironment (TME) is now recognized as a major driver of resistance through non-genetic, cell-extrinsic signaling. Stromal and immune cells-including fibroblasts, macrophages, endothelial cells, and regulatory immune cells-interact with cancer cells via cytokine signaling, direct contact, and extracellular matrix (ECM) remodeling to promote survival, immune evasion, and therapeutic adaptation.
Objective:
This review examines cytokine-mediated signaling mechanisms within the TME that contribute to resistance to chemotherapy, targeted therapy, radiotherapy, and immunotherapy, drawing on studies with a specific focus on antibody array-based multiplex proteomic profiling.
Results:
Across multiple tumor types, molecular profiling studies have identified recurrent cytokine and growth factor signaling programs that drive therapy resistance through paracrine and autocrine mechanisms. Key pathways include IL-6/STAT3, CXCL12/CXCR4, and HGF/c-MET among others, through which stromal and immune cells support tumor survival, immune suppression, and therapy evasion. These findings demonstrate that cytokine-mediated resistance mechanisms differ across therapeutic modalities and cellular contexts. Clinical studies targeting these pathways further illustrate how biological context and pathway redundancy influence therapeutic response.
Conclusion:
Cytokine-driven signaling within the TME plays a central role in therapy resistance. Protein profiling studies have contributed mechanistic insight into these interactions and helped define resistance-associated pathways across treatment settings. Ongoing clinical studies will determine how targeting these pathways can be most effectively applied to improve patient outcomes.
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