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PU.1 控制成纤维细胞极化和组织纤维化。

PU.1 controls fibroblast polarization and tissue fibrosis.

机构信息

Department of Internal Medicine 3 - Rheumatology and Immunology, Friedrich-Alexander-University (FAU) Erlangen-Nürnberg and Universitätsklinikum Erlangen, Erlangen, Germany.

Institute of Human Genetics, Friedrich-Alexander-University (FAU) Erlangen-Nürnberg, Erlangen, Germany.

出版信息

Nature. 2019 Feb;566(7744):344-349. doi: 10.1038/s41586-019-0896-x. Epub 2019 Jan 30.

Abstract

Fibroblasts are polymorphic cells with pleiotropic roles in organ morphogenesis, tissue homeostasis and immune responses. In fibrotic diseases, fibroblasts synthesize abundant amounts of extracellular matrix, which induces scarring and organ failure. By contrast, a hallmark feature of fibroblasts in arthritis is degradation of the extracellular matrix because of the release of metalloproteinases and degrading enzymes, and subsequent tissue destruction. The mechanisms that drive these functionally opposing pro-fibrotic and pro-inflammatory phenotypes of fibroblasts remain unknown. Here we identify the transcription factor PU.1 as an essential regulator of the pro-fibrotic gene expression program. The interplay between transcriptional and post-transcriptional mechanisms that normally control the expression of PU.1 expression is perturbed in various fibrotic diseases, resulting in the upregulation of PU.1, induction of fibrosis-associated gene sets and a phenotypic switch in extracellular matrix-producing pro-fibrotic fibroblasts. By contrast, pharmacological and genetic inactivation of PU.1 disrupts the fibrotic network and enables reprogramming of fibrotic fibroblasts into resting fibroblasts, leading to regression of fibrosis in several organs.

摘要

成纤维细胞是一种多形细胞,在器官形态发生、组织稳态和免疫反应中具有多种作用。在纤维化疾病中,成纤维细胞合成大量的细胞外基质,导致瘢痕形成和器官衰竭。相比之下,关节炎中成纤维细胞的一个显著特征是细胞外基质的降解,这是由于金属蛋白酶和降解酶的释放,以及随后的组织破坏。导致成纤维细胞这种功能相反的促纤维化和促炎表型的机制尚不清楚。在这里,我们确定转录因子 PU.1 是促纤维化基因表达程序的一个必需调节因子。在各种纤维化疾病中,通常控制 PU.1 表达的转录和转录后机制之间的相互作用被打乱,导致 PU.1 的上调、纤维化相关基因集的诱导以及细胞外基质产生的促纤维化成纤维细胞的表型转换。相比之下,PU.1 的药理学和遗传失活会破坏纤维化网络,并使纤维化成纤维细胞重新编程为静止成纤维细胞,导致几个器官的纤维化消退。

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