Establishment of a Fah-LSL mouse model to study BEC-to-hepatocyte conversion.

Xingrui Wang, Wenjuan Pu, Huan Zhu, Mingjun Zhang, Bin Zhou
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Abstract

The liver consists predominantly of hepatocytes and biliary epithelial cells (BECs), which serve distinct physiological functions. Although hepatocytes primarily replenish their own population during homeostasis and injury repair, recent findings have suggested that BECs can transdifferentiate into hepatocytes when hepatocyte-mediated liver regeneration is impaired. However, the cellular and molecular mechanisms governing this BEC-to-hepatocyte conversion remain poorly understood largely because of the inefficiency of existing methods for inducing lineage conversion. Therefore, this study introduces a novel mouse model engineered by the Zhou's lab, where hepatocyte senescence is induced by the deletion of the fumarylacetoacetate (Fah) gene. This model facilitates the efficient conversion of BECs to hepatocytes and allows for the simultaneous lineage tracing of BECs; consequently, a transitional liver progenitor cell population can be identified during lineage conversion. This study also outlines the technical procedures for utilizing this model to determine the underlying cellular and molecular mechanisms of BEC-to-hepatocyte conversion and provides new insights into liver regeneration and its underlying molecular mechanism.

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建立 Fah-LSL 小鼠模型,研究 BEC 向肝细胞的转化。
肝脏主要由肝细胞和胆道上皮细胞(BECs)组成,它们具有不同的生理功能。虽然肝细胞在稳态和损伤修复过程中主要是补充自身细胞群,但最近的研究结果表明,当肝细胞介导的肝脏再生功能受损时,胆道上皮细胞可转分化为肝细胞。然而,人们对这种 BEC 向肝细胞转化的细胞和分子机制仍然知之甚少,这主要是因为现有的诱导系转化方法效率低下。因此,本研究介绍了周教授实验室设计的一种新型小鼠模型,通过删除富马酸乙酰乙酸(Fah)基因诱导肝细胞衰老。该模型有助于将 BECs 有效地转化为肝细胞,并可同时对 BECs 进行系谱追踪;因此,在系谱转化过程中可鉴定出过渡性肝脏祖细胞群。本研究还概述了利用该模型确定 BEC 向肝细胞转化的基本细胞和分子机制的技术程序,并提供了有关肝脏再生及其基本分子机制的新见解。
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