调节心脏成纤维细胞活化、表型转化和纤维化的信号机制。

IF 1.5 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Indian journal of biochemistry & biophysics Pub Date : 2014-12-01
Jessica MacLean, Kishore B S Pasumarthi
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引用次数: 0

摘要

心脏成纤维细胞(CFs)通过心肌重构维持心脏细胞外基质(ECM)。在各种形式的心脏病期间,重塑过程可能变得失调,从而导致ECM的总体积累。这导致心脏纤维化,增加了许多患者心力衰竭的风险。在心脏病期间,静止的心肌成纤维细胞经历表型转化为一种被称为心肌成纤维细胞(CMFs)的活化细胞类型。影响表型转化的因素包括转化生长因子β (TGF-β),它通过SMADs激活肌成纤维细胞标记基因α sma (α平滑肌肌动蛋白)。NAD(P)H氧化酶4 (Nox4)和Wnt等多种信号分子已被发现通过smad与TGF-β信号相互作用。包括FAK/TAK/JNK和PI3K/Akt/rac在内的通路也参与了成纤维细胞表型转化的激活。另一个主要因素是ECM变化对CFs施加的机械应力,这涉及ERK的激活和随后的αSMA表达。其他因素,如肥大细胞蛋白酶、胰蛋白酶和种子密度也会影响成纤维细胞体外培养的表型转化。此外,TGF-β、Ski以及激素松弛素和第二信使cAMP的负调节因子也报道了肌成纤维细胞表型的逆转。靶向参与促进CFs向CMFs表型转化的信号分子提供了一种控制心脏纤维化的可能方法。在这里,我们简要回顾了负责表型转化的信号机制,并确定了治疗心脏纤维化的关键靶点。
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Signaling mechanisms regulating fibroblast activation, phenoconversion and fibrosis in the heart.

Cardiac fibroblasts (CFs) maintain the cardiac extracellular matrix (ECM) through myocardial remodelling. The remodelling process can become dysregulated during various forms of heart disease which leads to an overall accumulation of ECM. This results in cardiac fibrosis which increases the risk of heart failure in many patients. During heart disease, quiescent CFs undergo phenoconversion to an activated cell type called cardiac myofibroblasts (CMFs). Factors influencing phenoconversion include transforming growth factor β (TGF-β) which via SMADs (small mothers against decapentaplegic) activates the myofibroblast marker gene αSMA (α smooth muscle actin). Signaling molecules as diverse as NAD(P)H oxidase 4 (Nox4) and Wnt have been found to interact with TGF-β signalling via SMADs. Pathways, including FAK/TAK/JNK and PI3K/Akt/rac have also been implicated in activating phenoconversion of fibroblasts. Another major contributor is mechanical stress exerted on CFs by ECM changes, which involves activation of ERK and subsequent αSMA expression. Other factors, such as the mast cell protease tryptase and the seeding density also affect the phenoconversion of fibroblast cultures in vitro. Further, reversal of myofibroblast phenotype has been reported by a negative regulator of TGF-β, Ski, as well as the hormone relaxin and the second messenger cAMP. Targeting the signaling molecules involved in promoting phenoconversion of CFs to CMFs presents a possible method of controlling cardiac fibrosis. Here, we provide a brief review of signaling mechanisms responsible for phenoconversion and identify critical targets for the treatment of cardiac fibrosis.

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来源期刊
Indian journal of biochemistry & biophysics
Indian journal of biochemistry & biophysics 生物-生化与分子生物学
CiteScore
2.90
自引率
50.00%
发文量
88
审稿时长
3 months
期刊介绍: Started in 1964, this journal publishes original research articles in the following areas: structure-function relationships of biomolecules; biomolecular recognition, protein-protein and protein-DNA interactions; gene-cloning, genetic engineering, genome analysis, gene targeting, gene expression, vectors, gene therapy; drug targeting, drug design; molecular basis of genetic diseases; conformational studies, computer simulation, novel DNA structures and their biological implications, protein folding; enzymes structure, catalytic mechanisms, regulation; membrane biochemistry, transport, ion channels, signal transduction, cell-cell communication, glycobiology; receptors, antigen-antibody binding, neurochemistry, ageing, apoptosis, cell cycle control; hormones, growth factors; oncogenes, host-virus interactions, viral assembly and structure; intermediary metabolism, molecular basis of disease processes, vitamins, coenzymes, carrier proteins, toxicology; plant and microbial biochemistry; surface forces, micelles and microemulsions, colloids, electrical phenomena, etc. in biological systems. Solicited peer reviewed articles on contemporary Themes and Methods in Biochemistry and Biophysics form an important feature of IJBB. Review articles on a current topic in the above fields are also considered. They must dwell more on research work done during the last couple of years in the field and authors should integrate their own work with that of others with acumen and authenticity, mere compilation of references by a third party is discouraged. While IJBB strongly promotes innovative novel research works for publication as full length papers, it also considers research data emanating from limited objectives, and extension of ongoing experimental works as ‘Notes’. IJBB follows “Double Blind Review process” where author names, affiliations and other correspondence details are removed to ensure fare evaluation. At the same time, reviewer names are not disclosed to authors.
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