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Biology subjects

van der Net, M. C.

Publications and source records attributed to van der Net, M. C..

3 recordsLinked to original sources

Mechanical strain of the intestinal epithelium directs absorptive lineage maturation

The intestinal epithelium is continuously subjected to a variety of mechanical forces, including extrinsic peristaltic contractions and intrinsic tensile forces generated by epithelial cell migration. Yet, how these mechanical cues influence the cellular processes underlying intestinal homeostasis remains poorly understood. In this study, we examine the impact of mechanical forces on intestinal cell dynamics by applying controlled external stretch to intestinal organoids, combined with high-throughput single-cell transcriptomic profiling. Our analyses reveal that prolonged cyclic mechanical strain alters the composition of differentiated intestinal cell populations. Specifically, we identify a strain-induced shift in the absorptive lineage towards a less mature state, with expansion of the population of early-stage enterocytes at the crypt-villus interface. This shift is associated with downregulation of transcriptional programs controlling enterocyte maturation within absorptive precursor populations. Our findings indicate that mechanical strain directs the maturation of the intestinal absorptive lineage, and highlight a role for mechanical forces in shaping intestinal epithelial composition and function.

cell biology↗

E-cadherin mechanotransduction activates EGFR-ERK signaling in epithelial cells by inducing ADAM-mediated ligand shedding

The behavior of cells is governed by signals originating from their local environment, including mechanical forces that cells experience. Forces are transduced by mechanosensitive proteins, which can impinge on signaling cascades that are also activated by growth factor receptors upon ligand binding. We investigated the crosstalk between these mechanical and biochemical signals in the regulation of intracellular signaling networks in epithelial monolayers. Phosphoproteomic and transcriptomic analyses on epithelial monolayers subjected to mechanical strain revealed ERK signaling as a predominant strain-activated hub, initiated at the level of the upstream epidermal growth factor receptor (EGFR). Strain-induced EGFR-ERK signaling depends on mechanosensitive E-cadherin adhesions. Proximity labeling identified the metalloproteinase ADAM17, an enzyme that mediates shedding of soluble EGFR ligands, to be closely associated with E-cadherin. We developed a novel probe for monitoring ADAM-mediated shedding, which demonstrated that mechanical strain induced ADAM activation. Mechanically-induced ADAM activation was essential for mechanosensitive signaling from E-cadherin adhesions towards EGFR-ERK. Collectively, our data demonstrate that mechanical strain transduced by E-cadherin adhesion triggers the shedding of EGFR ligands that stimulate downstream downstream ERK activity. Our findings illustrate how mechanical signals and biochemical ligands can operate within a single, linear signaling cascade. Significance statementCells integrate different types of information that they receive from their local environment to regulate their behavior. This includes biochemical signals, such as growth factors binding to their dedicated receptor. Similarly, cells respond to mechanical forces that they are subjected to. Although biochemical and mechanical signals can elicit similar signaling responses in cells, the interplay between these types of signals is not well understood. Here we unveil that mechanical strain of epithelia modulates the activity of the EGFR-ERK signaling pathway by controlling the availability of growth factors that bind and activate EGFR. This finding demonstrates that biochemical and mechanical signals do not act in a segregated fashion, but rather can function in a linear cascade, shedding light on fundamental principles governing cellular regulation.

cell biology↗

Mechanical regulation of cell fate transitions underlying colorectal cancer metastasis formation

Colorectal cancer (CRC) cells exhibit high plasticity and transition between different cellular states during the development of metastasis. Lgr5-expressing cancer stem cells fuel the growth of the primary tumor and metastasis, yet disseminated tumor cells arriving at the metastatic site are devoid of Lgr5 expression. It is currently unknown how CRC cell fate transitions are regulated during the metastatic process and how tumor cells give rise to metastatic lesions despite being Lgr5neg. Here, we show that the reprogramming of disseminating CRC cells is driven by mechanical interactions with the Collagen I-rich interstitial matrix. Collagen I-induced pulling forces are sensed by integrins and mechanosensitive calcium channels, which together direct the transition of CRC cells into a fetal-like state. The fetal-like state is maintained after reaching the blood circulation and promotes metastasis-initiation of disseminated CRC cells in the liver. Our findings indicate a key contribution of mechanical signals in controlling cell fate transitions that underlie the metastatic potential of CRC, involving an interplay between different mechanosensitive mechanisms.

cancer biology↗