Sullivan-Brown Jessica L, Tandon Panna, Bird Kim E, Dickinson Daniel J, Tintori Sophia C, Heppert Jennifer K, Meserve Joy H, Trogden Kathryn P, Orlowski Sara K, Conlon Frank L, Goldstein Bob
Department of Biology, University of North Carolina at Chapel Hill, North Carolina 27599 Department of Biology, West Chester University, West Chester, Pennsylvania 19383
Department of Biology, University of North Carolina at Chapel Hill, North Carolina 27599.
Genetics. 2016 Jan;202(1):123-39. doi: 10.1534/genetics.115.183137. Epub 2015 Oct 4.
Neural tube defects including spina bifida are common and severe congenital disorders. In mice, mutations in more than 200 genes can result in neural tube defects. We hypothesized that this large gene set might include genes whose homologs contribute to morphogenesis in diverse animals. To test this hypothesis, we screened a set of Caenorhabditis elegans homologs for roles in gastrulation, a topologically similar process to vertebrate neural tube closure. Both C. elegans gastrulation and vertebrate neural tube closure involve the internalization of surface cells, requiring tissue-specific gene regulation, actomyosin-driven apical constriction, and establishment and maintenance of adhesions between specific cells. Our screen identified several neural tube defect gene homologs that are required for gastrulation in C. elegans, including the transcription factor sptf-3. Disruption of sptf-3 in C. elegans reduced the expression of early endodermally expressed genes as well as genes expressed in other early cell lineages, establishing sptf-3 as a key contributor to multiple well-studied C. elegans cell fate specification pathways. We also identified members of the actin regulatory WAVE complex (wve-1, gex-2, gex-3, abi-1, and nuo-3a). Disruption of WAVE complex members reduced the narrowing of endodermal cells' apical surfaces. Although WAVE complex members are expressed broadly in C. elegans, we found that expression of a vertebrate WAVE complex member, nckap1, is enriched in the developing neural tube of Xenopus. We show that nckap1 contributes to neural tube closure in Xenopus. This work identifies in vivo roles for homologs of mammalian neural tube defect genes in two manipulable genetic model systems.
包括脊柱裂在内的神经管缺陷是常见且严重的先天性疾病。在小鼠中,200多个基因的突变可导致神经管缺陷。我们推测,这个庞大的基因集可能包括其同源物在多种动物形态发生过程中起作用的基因。为了验证这一假设,我们筛选了一组秀丽隐杆线虫的同源物,以确定它们在原肠胚形成中的作用,原肠胚形成是一个与脊椎动物神经管闭合拓扑相似的过程。秀丽隐杆线虫的原肠胚形成和脊椎动物的神经管闭合都涉及表面细胞的内陷,这需要组织特异性的基因调控、肌动球蛋白驱动的顶端收缩以及特定细胞间黏附的建立和维持。我们的筛选鉴定出了几个秀丽隐杆线虫原肠胚形成所需的神经管缺陷基因同源物,包括转录因子sptf-3。秀丽隐杆线虫中sptf-3的破坏降低了早期内胚层表达基因以及其他早期细胞谱系中表达基因的表达,确立了sptf-3是多个经过充分研究的秀丽隐杆线虫细胞命运决定途径的关键贡献者。我们还鉴定出了肌动蛋白调节WAVE复合体(wve-1、gex-2、gex-3、abi-1和nuo-3a)的成员。WAVE复合体成员的破坏减少了内胚层细胞顶端表面的变窄。尽管WAVE复合体成员在秀丽隐杆线虫中广泛表达,但我们发现脊椎动物WAVE复合体成员nckap1在非洲爪蟾发育中的神经管中表达丰富。我们表明nckap1有助于非洲爪蟾的神经管闭合。这项工作确定了哺乳动物神经管缺陷基因同源物在两个可操作的遗传模型系统中的体内作用。