XIV型成骨不全成骨细胞缺乏TRIC-B会改变细胞粘附和线粒体功能——一项多组学研究。

IF 4.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Milena Jovanovic , Apratim Mitra , Roberta Besio , Barbara Maria Contento , Ka Wai Wong , Alberta Derkyi , Michael To , Antonella Forlino , Ryan K Dale , Joan C Marini
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引用次数: 0

摘要

成骨不全(OI)是一种可遗传的胶原相关骨发育不良,其特征是骨折、生长缺陷和骨骼畸形。XIV型OI是一种隐性OI形式,由TMEM38B中的无效突变引起,该突变编码ER膜细胞内阳离子通道TRIC-B。此前,我们发现TMEM38B的缺失会改变OI患者成骨细胞和成纤维细胞ER中的钙流量,从而进一步破坏胶原蛋白的合成和分泌。TMEM38B的缺失如何影响成骨细胞功能仍知之甚少。在这里,我们进一步研究了TMEM38B在人类成骨细胞分化和矿化中的作用。TMEM38B缺失的成骨细胞显示出成骨细胞标记基因的表达改变和矿化减少。RNA-Seq分析显示,细胞间粘附是TMEM38B缺失成骨细胞中最下调的途径之一,并通过实时PCR和Western印迹进行了进一步验证。在患者成骨细胞和Tmem38b缺失小鼠的颅骨成骨细胞中,TRIC-B的缺失也降低了间隙和紧密连接蛋白。破坏的细胞粘附降低了突变细胞的增殖和细胞周期的进展。一个重要的新发现是TMEM38B缺失的成骨细胞具有细长的线粒体,其融合和分裂标志物MFN2和DRP1发生了改变。此外,TMEM38B缺失的成骨细胞在线粒体中表现出超氧化物产生的显著增加,进一步支持线粒体功能障碍。总之,这些结果强调了TMEM38B/TRIC-B在成骨细胞分化中的新作用,影响细胞-细胞粘附过程、间隙和紧密连接、增殖、细胞周期和线粒体功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Absence of TRIC-B from type XIV Osteogenesis Imperfecta osteoblasts alters cell adhesion and mitochondrial function – A multi-omics study

Osteogenesis Imperfecta (OI) is a heritable collagen-related bone dysplasia characterized by bone fractures, growth deficiency and skeletal deformity. Type XIV OI is a recessive OI form caused by null mutations in TMEM38B, which encodes the ER membrane intracellular cation channel TRIC-B. Previously, we showed that absence of TMEM38B alters calcium flux in the ER of OI patient osteoblasts and fibroblasts, which further disrupts collagen synthesis and secretion. How the absence of TMEM38B affects osteoblast function is still poorly understood. Here we further investigated the role of TMEM38B in human osteoblast differentiation and mineralization. TMEM38B-null osteoblasts showed altered expression of osteoblast marker genes and decreased mineralization. RNA-Seq analysis revealed that cell-cell adhesion was one of the most downregulated pathways in TMEM38B-null osteoblasts, with further validation by real-time PCR and Western blot. Gap and tight junction proteins were also decreased by TRIC-B absence, both in patient osteoblasts and in calvarial osteoblasts of Tmem38b-null mice. Disrupted cell adhesion decreased mutant cell proliferation and cell cycle progression. An important novel finding was that TMEM38B-null osteoblasts had elongated mitochondria with altered fusion and fission markers, MFN2 and DRP1. In addition, TMEM38B-null osteoblasts exhibited a significant increase in superoxide production in mitochondria, further supporting mitochondrial dysfunction. Together these results emphasize the novel role of TMEM38B/TRIC-B in osteoblast differentiation, affecting cell-cell adhesion processes, gap and tight junction, proliferation, cell cycle, and mitochondrial function.

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来源期刊
Matrix Biology
Matrix Biology 生物-生化与分子生物学
CiteScore
11.40
自引率
4.30%
发文量
77
审稿时长
45 days
期刊介绍: Matrix Biology (established in 1980 as Collagen and Related Research) is a cutting-edge journal that is devoted to publishing the latest results in matrix biology research. We welcome articles that reside at the nexus of understanding the cellular and molecular pathophysiology of the extracellular matrix. Matrix Biology focusses on solving elusive questions, opening new avenues of thought and discovery, and challenging longstanding biological paradigms.
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