Sep 2026· Biochimica et biophysica acta. Reviews on cancer· Vol 1881, pp.
189710
· 0 citations· 96 references
Medicine
TL;DR
How spatially structured cellular ecosystems, rather than individual cell types, determine therapeutic response and resistance in lung cancer is organized around a single question - and observations that are reproducible across independent cohorts and platforms are explicitly separate from those that remain confined to single studies.
Abstract
Lung cancer remains one of the leading causes of cancer-related mortality worldwide; beyond its rising incidence, its marked molecular heterogeneity and complex tumor microenvironment (TME) hinder treatment response and drive resistance, contributing directly to its high mortality rate. Single-cell RNA sequencing (scRNA-seq) and spatial transcriptomics (ST) provide complementary approaches for dissecting these features. scRNA-seq enables high-resolution analysis of cellular diversity and transcriptional states but requires tissue dissociation and therefore loses spatial context. In contrast, ST preserves tissue architecture and provides insights into how gene-expression programs within the TME are organized, although no currently available spatial platform combines whole-transcriptome coverage with true single-cell resolution over large tissue areas. Together, these technologies have enabled detailed mapping of tumor, immune and stromal populations and of their spatial interactions, revealing functionally distinct cellular niches that contribute to immune evasion, metastasis and response to therapy. In this narrative review we organize the primary literature around a single question, how spatially structured cellular ecosystems, rather than individual cell types, determine therapeutic response and resistance in lung cancer - and we explicitly separate observations that are reproducible across independent cohorts and platforms from those that remain confined to single studies. We further summarize the technical, analytical and logistic barriers that currently prevent spatially resolved signatures from entering routine diagnostic pathology. Understanding dysregulated pathways and spatially constrained intercellular communication within the TME helps identify candidate biomarkers and may support the identification of therapeutic approaches directed at tumor-intrinsic programs as well as at microenvironment-driven resistance mechanisms.
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BACKGROUND
A comprehensive understanding of the complexity and heterogeneity of the tumor microenvironment (TME) is critical for advancing cancer treatment. Recent advances in spatial omics technologies have opened new avenues for an in-depth exploration of the TME. By integrating high-resolution spatial information fr...
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