Tuberin levels during cellular differentiation in brain development

IF 2.2 3区 生物学 Q4 CELL BIOLOGY Differentiation Pub Date : 2023-03-01 DOI:10.1016/j.diff.2022.12.004
Elizabeth Fidalgo da Silva, Bashaer Abu Khatir , Christopher Drouillard , Isabelle Hinch , Gordon Omar Davis, Mariam Sameem, Rutu Patel, Jackie Fong, Dorota Lubanska, Lisa A. Porter
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Abstract

Tuberin is a member of a large protein complex, Tuberous Sclerosis Complex (TSC), and acts as a sensor for nutrient status regulating protein synthesis and cell cycle progression. Mutations in the Tuberin gene, TSC2, permits the formation of tumors that can lead to developmental defects in many organ systems, including the central nervous system. Tuberin is expressed in the brain throughout development and levels of Tuberin have been found to decrease during neuronal differentiation in cell lines in vitro. Our current work investigates the levels of Tuberin at two stages of embryonic development in vivo, and we study the mRNA and protein levels during a time course using immortalized cell lines in vitro. Our results show that total Tuberin levels are tightly regulated through developmental stages in the embryonic brain. At a cell biology level, we show that Tuberin levels are higher when cells are cultured as neurospheres, and knockdown of Tuberin results in a reduction in the number of neurospheres. This functional data supports the hypothesis that Tuberin is an important regulator of stemness and the reduction of Tuberin levels might support functional differentiation in the central nervous system. Understanding how Tuberin expression is regulated throughout neural development is essential to fully comprehend the role of this protein in several developmental and neural pathologies.

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脑发育过程中细胞分化过程中的Tuberin水平
结核菌素是一种大型蛋白质复合物——结节性硬化症复合物(TSC)的成员,是调节蛋白质合成和细胞周期进展的营养状态的传感器。Tuberin基因TSC2的突变导致肿瘤的形成,从而导致包括中枢神经系统在内的许多器官系统的发育缺陷。在整个发育过程中,Tuberin在大脑中表达,并且在体外细胞系的神经元分化过程中,发现Tuberin的水平降低。我们目前的工作调查了体内胚胎发育两个阶段的Tuberin水平,并在体外使用永生细胞系研究了一段时间内的mRNA和蛋白质水平。我们的研究结果表明,在胚胎大脑的发育阶段,总Tuberin水平受到严格调节。在细胞生物学水平上,我们发现当细胞作为神经球培养时,Tuberin水平更高,敲低Tuberin会导致神经球数量减少。这些功能数据支持这样一种假设,即Tuberin是干性的重要调节因子,Tuberin水平的降低可能支持中枢神经系统的功能分化。了解Tuberin的表达在整个神经发育过程中是如何调节的,对于充分理解这种蛋白质在几种发育和神经病理中的作用至关重要。
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来源期刊
Differentiation
Differentiation 生物-发育生物学
CiteScore
4.10
自引率
3.40%
发文量
38
审稿时长
51 days
期刊介绍: Differentiation is a multidisciplinary journal dealing with topics relating to cell differentiation, development, cellular structure and function, and cancer. Differentiation of eukaryotes at the molecular level and the use of transgenic and targeted mutagenesis approaches to problems of differentiation are of particular interest to the journal. The journal will publish full-length articles containing original work in any of these areas. We will also publish reviews and commentaries on topics of current interest. The principal subject areas the journal covers are: • embryonic patterning and organogenesis • human development and congenital malformation • mechanisms of cell lineage commitment • tissue homeostasis and oncogenic transformation • establishment of cellular polarity • stem cell differentiation • cell reprogramming mechanisms • stability of the differentiated state • cell and tissue interactions in vivo and in vitro • signal transduction pathways in development and differentiation • carcinogenesis and cancer • mechanisms involved in cell growth and division especially relating to cancer • differentiation in regeneration and ageing • therapeutic applications of differentiation processes.
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