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果蝇 A 型核纤层蛋白 C 的缺失最初会导致包括细胞骨架和核纤层在内的肌腱异常,这在肌肉缺陷中表现明显。

Loss of Drosophila A-type lamin C initially causes tendon abnormality including disintegration of cytoskeleton and nuclear lamina in muscular defects.

机构信息

Department of Chemistry, Faculty of Science, Niigata University, Niigata 950-2181, Japan.

出版信息

Dev Biol. 2013 Jan 1;373(1):216-27. doi: 10.1016/j.ydbio.2012.08.001. Epub 2012 Sep 13.

DOI:10.1016/j.ydbio.2012.08.001
PMID:22982669
Abstract

Lamins are the major components of nuclear envelope architecture, being required for both the structural and informational roles of the nuclei. Mutations of lamins cause a spectrum of diseases in humans, including muscular dystrophy. We report here that the loss of the A-type lamin gene, lamin C in Drosophila resulted in pupal metamorphic lethality caused by tendon defects, matching the characteristics of human A-type lamin revealed by Emery-Dreifuss muscular dystrophy (EDMD). In tendon cells lacking lamin C activity, overall cell morphology was affected and organization of the spectraplakin family cytoskeletal protein Shortstop which is prominently expressed in tendon cells gradually disintegrated, notably around the nucleus and in a manner correlating well with the degradation of musculature. Furthermore, lamin C null mutants were efficiently rescued by restoring lamin C expression to shortstop-expressing cells, which include tendon cells but exclude skeletal muscle cells. Thus the critical function of A-type lamin C proteins in Drosophila musculature is to maintain proper function and morphology of tendon cells.

摘要

核纤层是核膜结构的主要成分,对于核的结构和信息功能都是必需的。核纤层蛋白的突变会导致人类一系列疾病,包括肌肉萎缩症。我们在这里报告,果蝇中 A 型核纤层蛋白基因 lamin C 的缺失导致蛹期变形致死,这是由肌腱缺陷引起的,与 Emery-Dreifuss 肌肉萎缩症(EDMD)中人类 A 型核纤层蛋白的特征相匹配。在缺乏 lamin C 活性的肌腱细胞中,整体细胞形态受到影响,spectraplakin 家族细胞骨架蛋白 Shortstop 的组织逐渐解体,在细胞核周围尤为明显,并且与肌肉降解的方式非常吻合。此外,通过将 lamin C 表达恢复到短停表达细胞中,可以有效地拯救 lamin C 缺失突变体,这些细胞包括肌腱细胞,但不包括骨骼肌细胞。因此,A 型 lamin C 蛋白在果蝇肌肉中的关键功能是维持肌腱细胞的正常功能和形态。

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