Abstract / Summary
Abstract Purpose In solid cancers, inflammation and viral infections, two main fibroblastic functions have been identified: myofibroblast-like fibroblasts and inflammatory fibroblasts. In the tumour microenvironment (TME), these cancer-associated fibroblast (CAFs) subtypes are known as myCAFs, which generate a stiffened fibrotic extracellular matrix (ECM), and iCAFs, which secrete inflammatory cytokines to locally modulate the immune response. Yet, whether iCAFs contribute to shaping the ECM biochemical and biophysical properties remains understudied, mainly because robust in vitro models to generate fibroblast subtypes are lacking. Methods Here, we established an in vitro cell culture system based on murine NIH3T3 fibroblasts and stimulation by TGFβ1 and IL1α, alone or in combination, to induce fibroblast subtypes. Gene expression analysis of well-documented myCAF ( Acta2 / Tagln ) and iCAF ( Ccl2 / Il6 / Lif ) markers was performed. We compared these in vitro subtypes to myCAFs and iCAFs from publicly available scRNAseq data of tumour tissues from cancer patients. ECM deposition and remodelling were assessed by collagen contraction, fluorescence microscopy and atomic force microscopy. Results TGFβ1 induced a myCAF-like phenotype, while a combination of TGFβ and IL1α induced an iCAF-like phenotype. We found that, similar to myCAFs, both tumour-associated and in vitro iCAFs express Acta2 / Tagln as well as genes encoding typical ECM proteins, which correlated in vitro with the ability to contract collagen. Finally, fluorescence microscopy and atomic force microscopy revealed that in vitro both subtypes generate thick, layered and stiff matrices with highly aligned ECM. Conclusions These findings demonstrate that, besides myCAFs, iCAFs may also contribute to a pathological ECM. Our study provides new insights into the contribution of IL1α- and TGFβ1-induced fibroblast subtypes to ECM deposition and remodelling and puts forward a well-defined in vitro model to activate different fibroblast functions for future in-depth mechanistic studies of fibroblast subtype-specific roles in cancer and other pathologies.