These findings indicate that fibroblasts redirect chemotherapy responses toward a stress-adaptive, persister-like phenotype and establish fibroblast-containing 3D melanoma spheroids as a physiologically relevant platform for studying tumour microenvironment-mediated chemotherapy tolerance and stromal-tumour interactions.
Abstract
Melanoma is an aggressive malignancy that rapidly adapts to therapy. While chemotherapy resistance has traditionally been attributed to tumour-intrinsic mechanisms, growing evidence implicates the tumour microenvironment in shaping drug tolerance. However, few in vitro models capture the stromal complexity needed to study this interaction. We developed two multicellular melanoma spheroid models of increasing stromal complexity: a baseline model of melanoma, endothelial, and macrophage cells (BEM), and a fibroblast-containing counterpart (BEMF), and compared their transcriptional response to doxorubicin. Fibroblast inclusion increased the doxorubicin concentration required to achieve comparable growth inhibition. While untreated BEMF spheroids exhibited only modest baseline transcriptional differences, they showed a profoundly reshaped transcriptional response after doxorubicin exposure, displaying broader and higher-magnitude changes. These responses were characterized by suppression of proliferative and cell-cycle programmes, together with activation of inflammatory, immune-associated, metabolic, and stress-adaptive pathways. Higher-resolution pathway analyses further revealed coordinated attenuation of mitotic progression, checkpoint regulation, homologous recombination repair, and Rho GTPase signalling, consistent with a shift toward stress-adaptive and phenotypically plastic states, rather than classical resistance mechanisms. Transcriptome-derived transcription factor activity inference supported this regulatory rewiring. Integration with curated resistance-associated genes and external transcriptomic datasets demonstrated strong conservation of core transcriptional features across heterogeneous experimental systems, including consistent suppression of proliferation-associated genes and induction of inflammatory signalling programmes. Together, these findings indicate that fibroblasts redirect chemotherapy responses toward a stress-adaptive, persister-like phenotype and establish fibroblast-containing 3D melanoma spheroids as a physiologically relevant platform for studying tumour microenvironment-mediated chemotherapy tolerance and stromal-tumour interactions.
Integrated analyses show that MBM exhibits dynamic bidirectional signaling across tumor cells, endothelium, and microglia, collectively driving invasion and proliferation.
Kevin Zhang, Mao Yang, Ming Yuang et al.· Neuro-Oncology Advances· 0 citations
It is demonstrated that the non-cellular tumor microenvironment preserved in PDSs is sufficient to drive coordinated transcriptional programs in both macrophages and cancer cells, and to guide future strategies targeting macrophage-cancer cell crosstalk in breast cancer.
Göran Landberg, Mikaela Ståhlberg, E. Frisk et al.· Biomedicine & pharmacotherap...· 0 citations
Neuroblastoma (NB) is the most common extracranial solid tumour of childhood and remains a leading cause of paediatric cancer mortality, particularly in high-risk disease driven by MYCN amplification. Although MYCN is a central oncogenic driver, its role as a transcription factor has limited direct therapeutic targeting, shifting attention toward downstream metabolic and microenvironmental dependencies. Increasing evidence indicates that MYCN-driven metabolic rewiring extends beyond tumour-intrinsic processes to reshape the tumour microenvironment (TME), influencing immune composition and stromal dynamics. Recent advances in single-cell and spatial profiling technologies have revealed substantial heterogeneity within the NB TME, highlighting complex interactions between tumour cells, immune populations, and stromal components. Among these, cancer-associated fibroblasts (CAFs) have emerged as key regulators of extracellular matrix architecture, immune modulation, and metabolic crosstalk. However, CAF identity, functional diversity, and lineage relationships in NB remain incompletely defined, with significant overlap between tumour-intrinsic mesenchymal programs and stromal fibroblast signatures. In this review, we synthesise current understanding of MYCN-driven metabolic reprogramming and its impact on CAF heterogeneity and immune regulation. We integrate insights from adult cancers with emerging data in NB to critically evaluate CAF functional states, including inflammatory and myofibroblastic programs, and their roles in shaping tumour progression, immune exclusion, and therapeutic response. By framing NB as a MYCN-remodelled tumour ecosystem, this review identifies key knowledge gaps in stromal biology and highlights the need to resolve CAF heterogeneity and tumour–stroma interactions. These insights have broader implications for MYC-driven malignancies and support the development of integrated therapeutic strategies targeting both tumour cells and their supportive microenvironment.
M. Shiferaw, K. Somers, Z. Kovacevic· Cancer Metastasis Review· 0 citations
It is demonstrated that cancer stem cells are hyper-responsive to microenvironmental cues, which they sense and adapt to through YAP/TAZ signalling, thereby playing an essential role in breast cancer lung metastasis.
Binwu Tang, Jacob Minin, V. Gonzalez et al.· Nature Cell Biology· 0 citations
Rational combination strategies are outlined that simultaneously target the RAS/MAPK axis and key TME vulnerabilities, such as immunotherapy combinations, CAF reprogramming, and ECM normalization, to overcome stromal-mediated resistance and achieve deeper, more sustained clinical responses.
Wen-Hao Ma, Xing-Yu Guo, Xiu-Ting Liu· Cancer Advances· 0 citations
The evidence demonstrates that growth factor signalling, inflammatory pathways, hypoxia, metabolic reprogramming, genetic and epigenetic alterations, and extracellular vesicle-mediated communication alter the tumour microenvironment, encouraging tumour growth, metastasis, immune escape, and resistance to immunotherapy, chemotherapy, radiation, and targeted treatment.
Dr. Gopalaxmi Nath, Moumita Ghosh, Dr Shahid Ahmad Shergojry et al.· Genetics and Molecular Resea...· 0 citations