Sall genes regulate hindlimb initiation in mouse embryos.

IF 3.3 3区 生物学 Q2 GENETICS & HEREDITY
Genetics Pub Date : 2024-05-07 DOI:10.1093/genetics/iyae029
Katherine Q Chen, Hiroko Kawakami, Aaron Anderson, Dylan Corcoran, Aditi Soni, Ryuichi Nishinakamura, Yasuhiko Kawakami
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Abstract

Vertebrate limbs start to develop as paired protrusions from the lateral plate mesoderm at specific locations of the body with forelimb buds developing anteriorly and hindlimb buds posteriorly. During the initiation process, limb progenitor cells maintain active proliferation to form protrusions and start to express Fgf10, which triggers molecular processes for outgrowth and patterning. Although both processes occur in both types of limbs, forelimbs (Tbx5), and hindlimbs (Isl1) utilize distinct transcriptional systems to trigger their development. Here, we report that Sall1 and Sall4, zinc finger transcription factor genes, regulate hindlimb initiation in mouse embryos. Compared to the 100% frequency loss of hindlimb buds in TCre; Isl1 conditional knockouts, Hoxb6Cre; Isl1 conditional knockout causes a hypomorphic phenotype with only approximately 5% of mutants lacking the hindlimb. Our previous study of SALL4 ChIP-seq showed SALL4 enrichment in an Isl1 enhancer, suggesting that SALL4 acts upstream of Isl1. Removing 1 allele of Sall4 from the hypomorphic Hoxb6Cre; Isl1 mutant background caused loss of hindlimbs, but removing both alleles caused an even higher frequency of loss of hindlimbs, suggesting a genetic interaction between Sall4 and Isl1. Furthermore, TCre-mediated conditional double knockouts of Sall1 and Sall4 displayed a loss of expression of hindlimb progenitor markers (Isl1, Pitx1, Tbx4) and failed to develop hindlimbs, demonstrating functional redundancy between Sall1 and Sall4. Our data provides genetic evidence that Sall1 and Sall4 act as master regulators of hindlimb initiation.

Sall 基因调控小鼠胚胎后肢的发育。
脊椎动物的四肢是从身体特定位置的侧板中胚层成对突起开始发育的,前肢芽在前部发育,后肢芽在后部发育。在起始过程中,肢体祖细胞保持活跃增殖以形成突起,并开始表达 Fgf10,从而触发外生和模式化的分子过程。虽然这两个过程在两种类型的肢体中都会发生,但前肢(Tbx5)和后肢(Isl1)利用不同的转录系统来触发其发育。在这里,我们报告了锌指转录因子基因 Sall1 和 Sall4 对小鼠胚胎后肢发育的调控作用。与TCre; Isl1条件性基因敲除导致的100%后肢芽缺失相比,Hoxb6Cre; Isl1条件性基因敲除导致的后肢芽缺失仅占突变体的约5%,是一种低形态表型。我们之前对SALL4 ChIP-seq的研究显示,SALL4在Isl1增强子中富集,这表明SALL4作用于Isl1的上游。从Hoxb6Cre; Isl1低倍突变背景中移除一个等位基因SALL4会导致后肢缺失,但移除两个等位基因会导致更高频率的后肢缺失,这表明SALL4和Isl1之间存在遗传相互作用。此外,TCre介导的Sall1和Sall4条件性双基因敲除显示了后肢祖细胞标记(Isl1、Pitx1、Tbx4)的表达缺失,并且不能发育后肢,证明了Sall1和Sall4之间的功能冗余。我们的数据提供了 Sall1 和 Sall4 作为后肢启动主调节因子的遗传证据。
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来源期刊
Genetics
Genetics GENETICS & HEREDITY-
CiteScore
6.90
自引率
6.10%
发文量
177
审稿时长
1.5 months
期刊介绍: GENETICS is published by the Genetics Society of America, a scholarly society that seeks to deepen our understanding of the living world by advancing our understanding of genetics. Since 1916, GENETICS has published high-quality, original research presenting novel findings bearing on genetics and genomics. The journal publishes empirical studies of organisms ranging from microbes to humans, as well as theoretical work. While it has an illustrious history, GENETICS has changed along with the communities it serves: it is not your mentor''s journal. The editors make decisions quickly – in around 30 days – without sacrificing the excellence and scholarship for which the journal has long been known. GENETICS is a peer reviewed, peer-edited journal, with an international reach and increasing visibility and impact. All editorial decisions are made through collaboration of at least two editors who are practicing scientists. GENETICS is constantly innovating: expanded types of content include Reviews, Commentary (current issues of interest to geneticists), Perspectives (historical), Primers (to introduce primary literature into the classroom), Toolbox Reviews, plus YeastBook, FlyBook, and WormBook (coming spring 2016). For particularly time-sensitive results, we publish Communications. As part of our mission to serve our communities, we''ve published thematic collections, including Genomic Selection, Multiparental Populations, Mouse Collaborative Cross, and the Genetics of Sex.
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