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首页> 外文期刊>BMC Developmental Biology >Distinct functions of the laminin β LN domain and collagen IV during cardiac extracellular matrix formation and stabilization of alary muscle attachments revealed by EMS mutagenesis in Drosophila
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Distinct functions of the laminin β LN domain and collagen IV during cardiac extracellular matrix formation and stabilization of alary muscle attachments revealed by EMS mutagenesis in Drosophila

机译:层粘连蛋白βLN结构域和胶原蛋白IV在心肌细胞外基质形成和果蝇EMS诱变揭示的乳腺肌肉附着稳定过程中的不同功能

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Background The Drosophila heart (dorsal vessel) is a relatively simple tubular organ that serves as a model for several aspects of cardiogenesis. Cardiac morphogenesis, proper heart function and stability require structural components whose identity and ways of assembly are only partially understood. Structural components are also needed to connect the myocardial tube with neighboring cells such as pericardial cells and specialized muscle fibers, the so-called alary muscles. Results Using an EMS mutagenesis screen for cardiac and muscular abnormalities in Drosophila embryos we obtained multiple mutants for two genetically interacting complementation groups that showed similar alary muscle and pericardial cell detachment phenotypes. The molecular lesions underlying these defects were identified as domain-specific point mutations in LamininB1 and Cg25C, encoding the extracellular matrix (ECM) components laminin β and collagen IV α1, respectively. Of particular interest within the LamininB1 group are certain hypomorphic mutants that feature prominent defects in cardiac morphogenesis and cardiac ECM layer formation, but in contrast to amorphic mutants, only mild defects in other tissues. All of these alleles carry clustered missense mutations in the laminin LN domain. The identified Cg25C mutants display weaker and largely temperature-sensitive phenotypes that result from glycine substitutions in different Gly-X-Y repeats of the triple helix-forming domain. While initial basement membrane assembly is not abolished in Cg25C mutants, incorporation of perlecan is impaired and intracellular accumulation of perlecan as well as the collagen IV α2 chain is detected during late embryogenesis. Conclusions Assembly of the cardiac ECM depends primarily on laminin, whereas collagen IV is needed for stabilization. Our data underscore the importance of a correctly assembled ECM particularly for the development of cardiac tissues and their lateral connections. The mutational analysis suggests that the β6/β3/β8 interface of the laminin β LN domain is highly critical for formation of contiguous cardiac ECM layers. Certain mutations in the collagen IV triple helix-forming domain may exert a semi-dominant effect leading to an overall weakening of ECM structures as well as intracellular accumulation of collagen and other molecules, thus paralleling observations made in other organisms and in connection with collagen-related diseases.
机译:背景果蝇的心脏(背血管)是一个相对简单的管状器官,可作为心脏发生的多个方面的模型。心脏的形态发生,适当的心脏功能和稳定性要求仅部分了解其身份和组装方式的结构成分。还需要结构组件来将心肌管与诸如心包细胞和专门的肌纤维(即所谓的肌肉)之类的相邻细胞连接。结果使用针对果蝇胚胎中的心脏和肌肉异常的EMS诱变筛选,我们获得了两个遗传相互作用的互补组的多个突变体,这些突变体显示出类似的肌肉和心包细胞脱离表型。这些缺陷的分子损伤被鉴定为LamininB1和Cg25C中的域特异性点突变,分别编码细胞外基质(ECM)组分层粘连蛋白β和胶原IVα1。 LamininB1组中特别令人感兴趣的是某些亚型突变体,其在心脏形态发生和心脏ECM层形成中具有突出的缺陷,但与无定形突变体相反,其他组织中仅有轻度缺陷。所有这些等位基因均在层粘连蛋白LN结构域中携带成簇的错义突变。鉴定出的Cg25C突变体显示出较弱且对温度敏感的表型,这是由三螺旋形成域的不同Gly-X-Y重复序列中的甘氨酸取代引起的。尽管在Cg25C突变体中不会取消最初的基底膜组装,但破坏了perlecan的掺入,并且在晚期胚胎发生期间检测到perlecan以及胶原IVα2链的细胞内积累。结论心脏ECM的组装主要取决于层粘连蛋白,而胶原IV需要稳定。我们的数据强调了正确组装的ECM的重要性,特别是对于心脏组织及其横向连接的发育。突变分析表明层粘连蛋白βLN结构域的β6/β3/β8界面对于形成连续的心脏ECM层至关重要。胶原蛋白IV三螺旋形成域中的某些突变可能会发挥半显性作用,导致ECM结构整体减弱以及胶原蛋白和其他分子在细胞内的积累,因此与其他生物体以及与胶原蛋白相关的观察结果平行相关疾病。

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