Fibrillin-1 G234D mutation in the hybrid1 domain causes tight skin associated with dysregulated elastogenesis and increased collagen cross-linking in mice

IF 4.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Matrix Biology Pub Date : 2025-02-01 DOI:10.1016/j.matbio.2024.11.006
ASM Sakhawat Hossain , Maria Thea Rane Dela Cruz Clarin , Kenichi Kimura , George Biggin , Yuki Taga , Koichiro Uto , Ayana Yamagishi , Eri Motoyama , Narenmandula , Kazunori Mizuno , Chikashi Nakamura , Keiichi Asano , Sumio Ohtsuki , Tomoyuki Nakamura , Sachiko Kanki , Clair Baldock , Erna Raja , Hiromi Yanagisawa
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引用次数: 0

Abstract

Fibrillin-1, an extracellular matrix (ECM) protein encoded by the FBN1 gene, serves as a microfibril scaffold crucial for elastic fiber formation and homeostasis in pliable tissue such as the skin. Aside from causing Marfan syndrome, some mutations in FBN1 result in scleroderma, marked by hardened and thicker skin which limits joint mobility. Here, we describe a tight skin phenotype in the Fbn1G234D/G234D mice carrying a corresponding variant of FBN1 in the hybrid1 domain that was identified in a patient with familial aortic dissection. Unlike scleroderma, skin thickness and collagen fiber abundance do not change in the Fbn1G234D/G234D mutant skin. Instead, increased collagen cross-links were observed. In addition, short elastic fibers were sparsely located underneath the panniculus muscle layer, and an abundance of thin, aberrant elastic fibers was increased within the subcutaneous fascia, which may have tightened skin attachment to the underlying skeletal muscle. Structurally, Fbn1G234D/G234D microfibrils have a disrupted shoulder region that shares similarities with hybrid1 deletion mutant microfibrils. We then demonstrate the consequence of fibrillin-1 G234D mutation on dermal fibroblast functions. Mutant primary fibroblasts produce fewer elastic fibers, exhibit slower migration and increased cell stiffness. Moreover, secretome from mutant fibroblasts are marked by enhanced secretion of ECM, ECM-modifying enzymes, proteoglycans and cytokines, which are pro-tissue repair/fibrogenic. The transcriptome of mutant fibroblasts displays an increased expression of myogenic developmental and immune-related genes. Our study proposes that imbalanced ECM homeostasis due to a fibrillin-1 G234D mutation impacts fibroblast properties with potential ramifications on skin function.
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在小鼠中,hybrid1结构域的纤颤蛋白1 G234D突变导致皮肤紧绷,与弹性发生失调和胶原交联增加有关。
纤维蛋白1是一种由FBN1基因编码的细胞外基质(ECM)蛋白,在皮肤等柔韧组织中作为微纤维支架,对弹性纤维的形成和体内平衡至关重要。除了引起马凡氏综合征外,FBN1的一些突变还会导致硬皮病,其特征是皮肤变硬、变厚,从而限制关节活动。在这里,我们描述了Fbn1G234D/G234D小鼠的紧致皮肤表型,该小鼠携带FBN1在hybrid1结构域的相应变体,该变体在家族性主动脉夹层患者中被发现。与硬皮病不同,Fbn1G234D/G234D突变皮肤的皮肤厚度和胶原纤维丰度没有变化。相反,观察到胶原交联增加。此外,短弹性纤维稀疏分布在环肌层下,皮下筋膜内大量薄而异常的弹性纤维增加,这可能收紧了皮肤与下面骨骼肌的附着。在结构上,Fbn1G234D/G234D微原纤维具有与hybrid1缺失突变型微原纤维相似的断裂肩区。然后,我们证明了纤维蛋白1 G234D突变对真皮成纤维细胞功能的影响。突变原代成纤维细胞产生较少的弹性纤维,表现出较慢的迁移和增加的细胞硬度。此外,来自突变型成纤维细胞的分泌组以促进组织修复/纤维化的ECM、ECM修饰酶、蛋白聚糖和细胞因子的分泌增强为特征。突变成纤维细胞的转录组显示出肌源性发育和免疫相关基因的表达增加。我们的研究表明,纤维蛋白1 g234突变导致的ECM稳态失衡会影响成纤维细胞的特性,并对皮肤功能产生潜在的影响。
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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.
期刊最新文献
Editorial Board Corrigendum to “Regulation of extracellular matrix degradation and metastatic spread by IQGAP1 through endothelin-1 receptor signalling in ovarian cancer” [Matrix Biol. 81 (2019) 17-33] Alterations in the microenvironment of junctional epidermolysis bullosa keratinocytes: A gene expression study Fibrillin-1 G234D mutation in the hybrid1 domain causes tight skin associated with dysregulated elastogenesis and increased collagen cross-linking in mice Impact of vascular Ehlers-Danlos Syndrome-associated Gly substitutions on structure, function, and mechanics using bacterial collagen
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