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过度活跃的神经内分泌分泌导致 C. elegans Bardet-Biedl 综合征突变体的大小、进食和代谢缺陷。

Hyperactive neuroendocrine secretion causes size, feeding, and metabolic defects of C. elegans Bardet-Biedl syndrome mutants.

机构信息

Department of Physiology and the UCSF Diabetes Center, University of California, San Francisco, San Francisco, California, United States of America.

出版信息

PLoS Biol. 2011 Dec;9(12):e1001219. doi: 10.1371/journal.pbio.1001219. Epub 2011 Dec 13.

Abstract

Bardet-Biedl syndrome, BBS, is a rare autosomal recessive disorder with clinical presentations including polydactyly, retinopathy, hyperphagia, obesity, short stature, cognitive impairment, and developmental delays. Disruptions of BBS proteins in a variety of organisms impair cilia formation and function and the multi-organ defects of BBS have been attributed to deficiencies in various cilia-associated signaling pathways. In C. elegans, bbs genes are expressed exclusively in the sixty ciliated sensory neurons of these animals and bbs mutants exhibit sensory defects as well as body size, feeding, and metabolic abnormalities. Here we show that in contrast to many other cilia-defective mutants, C. elegans bbs mutants exhibit increased release of dense-core vesicles and organism-wide phenotypes associated with enhanced activities of insulin, neuropeptide, and biogenic amine signaling pathways. We show that the altered body size, feeding, and metabolic abnormalities of bbs mutants can be corrected to wild-type levels by abrogating the enhanced secretion of dense-core vesicles without concomitant correction of ciliary defects. These findings expand the role of BBS proteins to the regulation of dense-core-vesicle exocytosis and suggest that some features of Bardet-Biedl Syndrome may be caused by excessive neuroendocrine secretion.

摘要

Bardet-Biedl 综合征(BBS)是一种罕见的常染色体隐性遗传病,其临床表现包括多指(趾)畸形、视网膜病变、食欲过盛、肥胖、身材矮小、认知障碍和发育迟缓。在多种生物体中,BBS 蛋白的功能障碍会破坏纤毛的形成和功能,而 BBS 的多器官缺陷归因于各种纤毛相关信号通路的缺陷。在秀丽隐杆线虫中,bbs 基因仅在这些动物的六十个纤毛感觉神经元中表达,bbs 突变体表现出感觉缺陷以及体型、摄食和代谢异常。在这里,我们发现与许多其他纤毛缺陷突变体不同,秀丽隐杆线虫的 bbs 突变体表现出致密核心囊泡释放增加以及与胰岛素、神经肽和生物胺信号通路活性增强相关的全身性表型。我们表明,通过消除致密核心囊泡的过度分泌而不伴随纤毛缺陷的纠正,可以将 bbs 突变体的异常体型、摄食和代谢异常纠正至野生型水平。这些发现将 BBS 蛋白的作用扩展到致密核心囊泡胞吐的调节上,并表明 Bardet-Biedl 综合征的某些特征可能是由过度的神经内分泌分泌引起的。

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