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Biology subjects

discher, d.

Publications and source records attributed to discher, d..

2 recordsLinked to original sources

Matrix stiffness induces heritable changes in chromosome numbers, consistent with solid tumor heterogeneity

Solid tumors often have an abundance of collagen-I that stiffens the tissue, and they are invariably driven by mutations that include chromosome losses and gains. These observations are linked here by showing that 3D matrix stiffness induces heritable changes to a cells DNA. We use live-cell chromosome reporters (ChReporters) and hydrogels of tunable stiffness to show mitotic compression, micronuclei counts, ChReporter losses and heterogeneity all increase as functions of stiffness. Increased mistakes occur despite suppressed cell division in stiff matrix and minimal size variation between spheroids. Colonies of ChReporter-negative cells within cancer spheroids align with Luria-Delbrucks seminal theory for heritable mutations, which predicts inter-spheroid variances that exceed Poisson statistics. Suppression of the contractility motor Myosin-II also increases chromosome loss in 3D but not 2D and does not affect spheroid growth - thus clarifying Myosin-IIs putative role as a tumor suppressor. Consistent with experiments, pan-cancer analyses of clinical data associates chromosome losses and gains with collagen-I levels and genetic variation. Stiff extracellular matrix thus drives mechano-evolution of solid tumors as a Darwin-Lamarck process with heterogeneity that complicates therapy.

biophysics↗

Pan-tissue scaling of stiffness versus fibrillar collagen reflects contractility-driven strain that inhibits fibril degradation

Polymer network properties such as stiffness often exhibit characteristic power laws in polymer density and other parameters. However, it remains unclear whether diverse animal tissues, composed of many distinct polymers, exhibit such scaling. Here, we examined many diverse tissues from adult mouse and embryonic chick to determine if stiffness (Etissue) follows a power law in relation to the most abundant animal protein, Collagen-I, even with molecular perturbations. We quantified fibrillar collagen in intact tissue by second harmonic generation (SHG) imaging and from tissue extracts by mass spectrometry (MS), and collagenase-mediated decreases were also tracked. Pan-tissue power laws for tissue stiffness versus Collagen-I levels measured by SHG or MS exhibit sub-linear scaling that aligns with results from cellularized gels of Collagen-I but not acellular gels. Inhibition of cellular myosin-II based contraction fits the scaling, and combination with inhibitors of matrix metalloproteinases (MMPs) show collagenase activity is strain - not stress- suppressed in tissues, consistent with past studies of gels and fibrils. Beating embryonic hearts and tendons, which differ in both collagen levels and stiffness by >1000-fold, similarly suppressed collagenases at physiological strains of [~]5%, with fiber-orientation regulating degradation. Scaling of Etissue based on use-it-or-lose-it kinetics provides insight into scaling of organ size, microgravity effects, and regeneration processes while suggesting contractility-driven therapeutics.

molecular biology↗