Sall4通过促进中皮基因表达和抑制中皮体中神经基因来调节后干中皮体的发育
Matthew P Pappas1, Hiroko Kawakami1,2,3, Dylan Corcoran1
1Department of Genetics, Cell Biology and Development, University of Minnesota, Minneapolis, MN 55455, USA.
概括
干细胞因子Sall4对于干部轴性骨架的发展至关重要. 通过控制基因激活和抑制,Sall4调节了对轴间皮层的分化,确保了适当的骨形成.
科学领域:
- 发育生物学是发展生物学.
- 分子遗传学 分子遗传学
- 干细胞生物学 干细胞生物学
背景情况:
- 干部的轴性骨架起源于对轴性中皮.
- Sall4是一种干细胞因子,已知在神经皮细胞原始体中起作用.
研究的目的:
- 为了研究Sall4在对轴性中皮体发育中的作用.
- 阐明Sall4调节轴性骨架形成的分子机制.
主要方法:
- 使用TCre. 在小鼠中Sall4的有条件淘汰.
- 基因表达分析和SALL4结合试验.
- ATAC-seq和足迹分析以评估染色质的可访问性和转录因子的结合性.
主要成果:
- 在小鼠中,Sall4淘汰会导致尾巴的截断和轴骨架的混乱.
- Sall4 调节了参与前体质中皮分化和体质形成的基因.
- Sall4 影响染色质的可访问性,影响 WNT 信号传递,并抑制中皮层中神经基因表达.
结论:
- 萨尔4对于对轴间皮的发育和干部轴性骨架的形成至关重要.
- Sall4通过调节染色质可访问性来调节中皮和神经基因程序.
- 这些发现揭示了Sall4在调节胚胎发育中的新机制.
相关概念视频
Pleiotropy
40.4K
Pleiotropy is the phenomenon in which a single gene impacts multiple, seemingly unrelated phenotypic traits. For example, defects in the SOX10 gene cause Waardenburg Syndrome Type 4, or WS4, which can cause defects in pigmentation, hearing impairments, and an absence of intestinal contractions necessary for elimination. This diversity of phenotypes results from the expression pattern of SOX10 in early embryonic and fetal development. SOX10 is found in neural crest cells that form melanocytes,...
40.4K
Determination
18.5K
During embryogenesis, cells become progressively committed to different fates through a two-step process: specification followed by determination. Specification is demonstrated by removing a segment of an early embryo, “neutrally” culturing the tissue in vitro—for example, in a petri dish with simple medium—and then observing the derivatives. If the cultured region gives rise to cell types that it would normally generate in the embryo, this means that it is specified. In...
18.5K
Neurulation
41.9K
Neurulation is the embryological process which forms the precursors of the central nervous system and occurs after gastrulation has established the three primary cell layers of the embryo: ectoderm, mesoderm, and endoderm. In humans, the majority of this system is formed via primary neurulation, in which the central portion of the ectoderm—originally appearing as a flat sheet of cells—folds upwards and inwards, sealing off to form a hollow neural tube. As development proceeds, the...
41.9K
Somatic to iPS Cell Reprogramming
2.2K
Reprogramming alters the gene expression in somatic cells, transforming them into induced pluripotent stem (iPS) cells over several generations. Scientists can reprogram cells by introducing genes for four transcription factors—Oct4, Sox2, Klf4, and c-Myc (OSKM) by viral or non-viral methods. These factors are also known as Yamanaka factors after Shinya Yamanaka, who first generated iPS cells using mouse skin cells. Yamanaka was awarded the Nobel Prize in Physiology or Medicine in 2012...
2.2K
Master Transcription Regulators
6.9K
Master transcription regulators are regulatory proteins that are predominantly responsible for regulating the expression of multiple genes. Often these genes work in concert to drive a complex process. Activation of a master transcription regulator can lead to a cascade of transcriptional activation necessary for that outcome. These regulators can directly bind to the regulatory sequences of the various genes involved, or they can indirectly regulate transcription by binding to regulatory...
6.9K
Non-Canonical Wnt Signaling Pathways
7.3K
Wnt is a zygotic effect gene that is expressed during very early embryonic development. It regulates various processes in animals starting from early development through the adult stage, such as organogenesis in the embryo and maintenance of neuronal and blood stem cells. Wnt proteins can induce a wide variety of intracellular pathways depending upon the specific abilities of different Wnt ligands to form a complex with shared and cognate receptors in the presence of different co-receptors. The...
7.3K


