Sosa Ponce Maria Laura, Moradi-Fard Sarah, Zaremberg Vanina, Cobb Jennifer A
Departments of Biochemistry & Molecular Biology and Oncology, Robson DNA Science Centre, Arnie Charbonneau Cancer Institute, Cumming School of Medicine, Calgary, AB, Canada.
Department of Biological Sciences, University of Calgary, Calgary, AB, Canada.
Front Genet. 2020 Feb 28;11:136. doi: 10.3389/fgene.2020.00136. eCollection 2020.
Mps3 is a SUN (Sad1-UNC-84) domain-containing protein that is located in the inner nuclear membrane (INM). Genetic screens with multiple Mps3 mutants have suggested that distinct regions of Mps3 function in relative isolation and underscore the broad involvement of Mps3 in multiple pathways including mitotic spindle formation, telomere maintenance, and lipid metabolism. These pathways have largely been characterized in isolation, without a holistic consideration for how key regulatory events within one pathway might impinge on other aspects of biology at the nuclear membrane. Mps3 is uniquely positioned to function in these multiple pathways as its N- terminus is in the nucleoplasm, where it is important for telomere anchoring at the nuclear periphery, and its C-terminus is in the lumen, where it has links with lipid metabolic processes. Emerging work suggests that the role of Mps3 in nuclear organization and lipid homeostasis are not independent, but more connected. For example, a failure in regulating Mps3 levels through the cell cycle leads to nuclear morphological abnormalities and loss of viability, suggesting a link between the N-terminal domain of Mps3 and nuclear envelope homeostasis. We will highlight work suggesting that Mps3 is pivotal factor in communicating events between the nucleus and the lipid bilayer.
Mps3是一种含有SUN(Sad1-UNC-84)结构域的蛋白质,位于内核膜(INM)中。对多个Mps3突变体进行的遗传筛选表明,Mps3的不同区域相对独立地发挥作用,并强调了Mps3广泛参与多种途径,包括有丝分裂纺锤体形成、端粒维持和脂质代谢。这些途径在很大程度上是单独进行表征的,没有全面考虑一个途径中的关键调控事件可能如何影响核膜处生物学的其他方面。Mps3在这些多种途径中发挥作用具有独特的定位,因为其N端位于核质中,这对端粒锚定在核周边很重要,而其C端位于核膜腔中,与脂质代谢过程有关联。新出现的研究表明,Mps3在核组织和脂质稳态中的作用并非相互独立,而是联系更为紧密。例如,在细胞周期中未能调节Mps3水平会导致核形态异常和活力丧失,这表明Mps3的N端结构域与核膜稳态之间存在联系。我们将重点介绍一些研究,这些研究表明Mps3是在细胞核与脂质双层之间传递事件的关键因素。