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Hepatic stellate cells require a stiff environment for myofibroblastic differentiation

细胞外基质 肝星状细胞 基质凝胶 间充质干细胞 细胞生物学 细胞分化 肌成纤维细胞 纤维化 化学 病理 生物 体外 医学 生物化学 基因
作者
Abby L. Olsen,Steven A. Bloomer,Erick P. Chan,Marianna D. A. Gaça,Penelope C. Georges,Bridget K. Sackey,Masayuki Uemura,Paul A. Janmey,Rebecca G. Wells
出处
期刊:American Journal of Physiology-gastrointestinal and Liver Physiology [American Physiological Society]
卷期号:301 (1): G110-G118 被引量:339
标识
DOI:10.1152/ajpgi.00412.2010
摘要

The myofibroblastic differentiation of hepatic stellate cells (HSC) is a critical event in liver fibrosis and is part of the final common pathway to cirrhosis in chronic liver disease from all causes. The molecular mechanisms driving HSC differentiation are not fully understood. Because macroscopic tissue stiffening is a feature of fibrotic disease, we hypothesized that mechanical properties of the underlying matrix are a principal determinant of HSC activation. Primary rat HSC were cultured on inert polyacrylamide supports of variable but precisely defined shear modulus (stiffness) coated with different extracellular matrix proteins or poly-l-lysine. HSC differentiation was determined by cell morphology, immunofluorescence staining, and gene expression. HSC became progressively myofibroblastic as substrate stiffness increased on all coating matrices, including Matrigel. The degree rather than speed of HSC activation correlated with substrate stiffness, with cells cultured on supports of intermediate stiffness adopting stable intermediate phenotypes. Quiescent cells on soft supports were able to undergo myofibroblastic differentiation with exposure to stiff supports. Stiffness-dependent differentiation required adhesion to matrix proteins and the generation of mechanical tension. Transforming growth factor-β treatment enhanced differentiation on stiff supports, but was not required. HSC differentiate to myofibroblasts in vitro primarily as a function of the physical rather than the chemical properties of the substrate. HSC require a mechanically stiff substrate, with adhesion to matrix proteins and the generation of mechanical tension, to differentiate. These findings suggest that alterations in liver stiffness are a key factor driving the progression of fibrosis.
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