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本文引用的文献

1
Specification of the somatic musculature in Drosophila.果蝇体壁肌肉组织的特化
Wiley Interdiscip Rev Dev Biol. 2015 Jul-Aug;4(4):357-75. doi: 10.1002/wdev.182. Epub 2015 Feb 27.
2
Syd/JIP3 and JNK signaling are required for myonuclear positioning and muscle function.Syd/JIP3和JNK信号传导对于肌核定位和肌肉功能是必需的。
PLoS Genet. 2014 Dec 18;10(12):e1004880. doi: 10.1371/journal.pgen.1004880. eCollection 2014 Dec.
3
The nebulin repeat protein Lasp regulates I-band architecture and filament spacing in myofibrils.肌动蛋白重复蛋白Lasp调节肌原纤维中的I带结构和细丝间距。
J Cell Biol. 2014 Aug 18;206(4):559-72. doi: 10.1083/jcb.201401094. Epub 2014 Aug 11.
4
Reconstitution of dynein transport to the microtubule plus end by kinesin.驱动蛋白将动力蛋白运输重新导向微管正端。
Elife. 2014 Jun 10;3:e02641. doi: 10.7554/eLife.02641.
5
PI(4,5)P2 regulates myoblast fusion through Arp2/3 regulator localization at the fusion site.PI(4,5)P2 通过将 Arp2/3 调节剂定位在融合部位来调节成肌细胞融合。
Development. 2014 Jun;141(11):2289-301. doi: 10.1242/dev.100743. Epub 2014 May 12.
6
Tension and force-resistant attachment are essential for myofibrillogenesis in Drosophila flight muscle.张力和抗拉力附着对于果蝇飞行肌中的肌原纤维生成至关重要。
Curr Biol. 2014 Mar 31;24(7):705-16. doi: 10.1016/j.cub.2014.02.032. Epub 2014 Mar 13.
7
Translocating myonuclei have distinct leading and lagging edges that require kinesin and dynein.迁移的肌细胞核具有明显的前导和滞后边缘,需要肌球蛋白和动力蛋白。
Development. 2014 Jan;141(2):355-66. doi: 10.1242/dev.095612. Epub 2013 Dec 11.
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Glycolysis supports embryonic muscle growth by promoting myoblast fusion.糖酵解通过促进成肌细胞融合来支持胚胎肌肉生长。
Proc Natl Acad Sci U S A. 2013 Nov 19;110(47):18982-7. doi: 10.1073/pnas.1301262110. Epub 2013 Nov 4.
9
Transcriptional regulation and alternative splicing cooperate in muscle fiber-type specification in flies and mammals.转录调控和可变剪接在果蝇和哺乳动物的肌纤维类型特化中协同作用。
Exp Cell Res. 2014 Feb 1;321(1):90-8. doi: 10.1016/j.yexcr.2013.10.007. Epub 2013 Oct 19.
10
Drosophila importin-7 functions upstream of the Elmo signaling module to mediate the formation and stability of muscle attachments.果蝇 importin-7 通过位于 Elmo 信号模块上游的功能来介导肌联蛋白的形成和稳定。
J Cell Sci. 2013 Nov 15;126(Pt 22):5210-23. doi: 10.1242/jcs.132241. Epub 2013 Sep 17.

黑腹果蝇体壁肌肉组织的形态发生

Morphogenesis of the somatic musculature in Drosophila melanogaster.

作者信息

Schulman Victoria K, Dobi Krista C, Baylies Mary K

机构信息

Cell and Developmental Biology, Weill Cornell Graduate School of Medical Sciences, Cornell University, New York, NY, USA.

Program in Developmental Biology, Sloan Kettering Institute, New York, NY, USA.

出版信息

Wiley Interdiscip Rev Dev Biol. 2015 Jul-Aug;4(4):313-34. doi: 10.1002/wdev.180. Epub 2015 Mar 11.

DOI:10.1002/wdev.180
PMID:25758712
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4456235/
Abstract

In Drosophila melanogaster, the somatic muscle system is first formed during embryogenesis, giving rise to the larval musculature. Later during metamorphosis, this system is destroyed and replaced by an entirely new set of muscles in the adult fly. Proper formation of the larval and adult muscles is critical for basic survival functions such as hatching and crawling (in the larva), walking and flying (in the adult), and feeding (at both larval and adult stages). Myogenesis, from mononucleated muscle precursor cells to multinucleated functional muscles, is driven by a number of cellular processes that have begun to be mechanistically defined. Once the mesodermal cells destined for the myogenic lineage have been specified, individual myoblasts fuse together iteratively to form syncytial myofibers. Combining cytoplasmic contents demands a level of intracellular reorganization that, most notably, leads to redistribution of the myonuclei to maximize internuclear distance. Signaling from extending myofibers induces terminal tendon cell differentiation in the ectoderm, which results in secure muscle-tendon attachments that are critical for muscle contraction. Simultaneously, muscles become innervated and undergo sarcomerogenesis to establish the contractile apparatus that will facilitate movement. The cellular mechanisms governing these morphogenetic events share numerous parallels to mammalian development, and the basic unit of all muscle, the myofiber, is conserved from flies to mammals. Thus, studies of Drosophila myogenesis and comparisons to muscle development in other systems highlight conserved regulatory programs of biomedical relevance to general muscle biology and studies of muscle disease.

摘要

在黑腹果蝇中,体细胞肌肉系统在胚胎发育过程中首次形成,产生幼虫肌肉组织。在变态发育后期,这个系统被破坏,并被成年果蝇中全新的一组肌肉所取代。幼虫和成虫肌肉的正常形成对于诸如孵化和爬行(幼虫阶段)、行走和飞行(成虫阶段)以及进食(幼虫和成虫阶段)等基本生存功能至关重要。从单核肌肉前体细胞到多核功能性肌肉的肌生成,是由一些已开始从机制上进行定义的细胞过程驱动的。一旦确定了注定要进入肌源性谱系的中胚层细胞,单个成肌细胞会反复融合在一起形成多核肌纤维。合并细胞质内容物需要一定程度的细胞内重组,最显著的是,这会导致肌核重新分布以最大化核间距离。延伸的肌纤维发出的信号诱导外胚层中的终末肌腱细胞分化,这会形成对肌肉收缩至关重要的牢固的肌肉 - 肌腱附着。同时,肌肉接受神经支配并进行肌节形成以建立促进运动的收缩装置。控制这些形态发生事件的细胞机制与哺乳动物发育有许多相似之处,并且所有肌肉的基本单位——肌纤维,从果蝇到哺乳动物都是保守的。因此,对果蝇肌生成的研究以及与其他系统中肌肉发育的比较,突出了与一般肌肉生物学和肌肉疾病研究具有生物医学相关性的保守调控程序。