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FGF signaling supports Drosophila fertility by regulating development of ovarian muscle tissues.成纤维细胞生长因子(FGF)信号通过调节卵巢肌肉组织的发育来维持果蝇的生育能力。
Dev Biol. 2015 Aug 1;404(1):1-13. doi: 10.1016/j.ydbio.2015.04.023. Epub 2015 May 6.
2
Model organisms in the fight against muscular dystrophy: lessons from drosophila and Zebrafish.对抗肌肉萎缩症的模式生物:来自果蝇和斑马鱼的经验教训。
Molecules. 2015 Apr 9;20(4):6237-53. doi: 10.3390/molecules20046237.
3
Epithelial rotation promotes the global alignment of contractile actin bundles during Drosophila egg chamber elongation.上皮旋转在果蝇卵室伸长过程中促进收缩性肌动蛋白束的整体排列。
Nat Commun. 2014 Nov 21;5:5511. doi: 10.1038/ncomms6511.
4
The Drosophila egg chamber-a new spin on how tissues elongate.果蝇卵室——组织如何伸长的新见解。
Integr Comp Biol. 2014 Oct;54(4):667-76. doi: 10.1093/icb/icu067. Epub 2014 Jun 11.
5
Laminin-211 in skeletal muscle function.层粘连蛋白-211 在骨骼肌功能中的作用。
Cell Adh Migr. 2013 Jan-Feb;7(1):111-21. doi: 10.4161/cam.22618. Epub 2012 Nov 15.
6
A splice site mutation in laminin-α2 results in a severe muscular dystrophy and growth abnormalities in zebrafish.层粘连蛋白-α2 的剪接位点突变导致斑马鱼出现严重的肌肉营养不良和生长异常。
PLoS One. 2012;7(8):e43794. doi: 10.1371/journal.pone.0043794. Epub 2012 Aug 27.
7
Drosophila egg chamber elongation: insights into how tissues and organs are shaped.果蝇卵室伸长:对组织和器官如何形成的见解。
Fly (Austin). 2012 Oct-Dec;6(4):213-27. doi: 10.4161/fly.21969. Epub 2012 Aug 31.
8
Global tissue revolutions in a morphogenetic movement controlling elongation.全球组织在控制伸长的形态发生运动中的革命。
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The role of Drosophila Lamin C in muscle function and gene expression.果蝇核纤层蛋白 C 在肌肉功能和基因表达中的作用。
Development. 2010 Sep;137(18):3067-77. doi: 10.1242/dev.048231. Epub 2010 Aug 11.
10
The integrin adhesion complex changes its composition and function during morphogenesis of an epithelium.在上皮形态发生过程中,整合素黏附复合物改变其组成和功能。
J Cell Sci. 2009 Dec 1;122(Pt 23):4363-74. doi: 10.1242/jcs.055996. Epub 2009 Nov 10.

果蝇中卵巢肌肉收缩和卵母细胞生长对卵室伸长的影响。

Influence of ovarian muscle contraction and oocyte growth on egg chamber elongation in Drosophila.

作者信息

Andersen Darcy, Horne-Badovinac Sally

机构信息

Department of Molecular Genetics and Cell Biology, The University of Chicago, 920 East 58th Street, Chicago, IL 60637, USA.

Department of Molecular Genetics and Cell Biology, The University of Chicago, 920 East 58th Street, Chicago, IL 60637, USA

出版信息

Development. 2016 Apr 15;143(8):1375-87. doi: 10.1242/dev.131276. Epub 2016 Mar 7.

DOI:10.1242/dev.131276
PMID:26952985
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4852517/
Abstract

Organs are formed from multiple cell types that make distinct contributions to their shape. The Drosophila egg chamber provides a tractable model to dissect such contributions during morphogenesis. Egg chambers consist of 16 germ cells (GCs) surrounded by a somatic epithelium. Initially spherical, these structures elongate as they mature. This morphogenesis is thought to occur through a 'molecular corset' mechanism, whereby structural elements within the epithelium become circumferentially organized perpendicular to the elongation axis and resist the expansive growth of the GCs to promote elongation. Whether this epithelial organization provides the hypothesized constraining force has been difficult to discern, however, and a role for GC growth has not been demonstrated. Here, we provide evidence for this mechanism by altering the contractile activity of the tubular muscle sheath that surrounds developing egg chambers. Muscle hypo-contraction indirectly reduces GC growth and shortens the egg, which demonstrates the necessity of GC growth for elongation. Conversely, muscle hyper-contraction enhances the elongation program. Although this is an abnormal function for this muscle, this observation suggests that a corset-like force from the egg chamber's exterior could promote its lengthening. These findings highlight how physical contributions from several cell types are integrated to shape an organ.

摘要

器官由多种细胞类型构成,这些细胞类型对器官的形状有着不同的贡献。果蝇卵室为剖析形态发生过程中的此类贡献提供了一个易于处理的模型。卵室由16个生殖细胞(GCs)组成,周围环绕着一层体细胞上皮。这些结构最初是球形的,随着它们的成熟而伸长。这种形态发生被认为是通过一种“分子紧身衣”机制发生的,即上皮内的结构元件沿圆周方向垂直于伸长轴排列,并抵抗生殖细胞的膨胀生长以促进伸长。然而,这种上皮组织是否提供了假设的约束力一直难以辨别,而且生殖细胞生长的作用也尚未得到证实。在这里,我们通过改变围绕发育中卵室的管状肌肉鞘的收缩活性,为这一机制提供了证据。肌肉收缩不足会间接减少生殖细胞的生长并缩短卵,这证明了生殖细胞生长对伸长的必要性。相反,肌肉过度收缩会增强伸长程序。虽然这是该肌肉的一种异常功能,但这一观察结果表明,来自卵室外的类似紧身衣的力量可以促进其延长。这些发现突出了几种细胞类型的物理贡献是如何整合以塑造一个器官的。