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Defining the roles of serine palmitoyltransferase-interacting proteins in the regulation of sphingolipid homeostasis.

机译:定义丝氨酸棕榈酰转移酶相互作用蛋白在调节鞘脂稳态中的作用。

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摘要

Sphingolipids are major structural components of the plasma membrane and endomembrane system. Research suggests that sphingolipids are involved with the formation of lipid microdomains, also known as lipid rafts, which may help to organize proteins within the membrane and may be important for membrane trafficking. Aside from their structural roles in membranes, sphingolipids and their metabolic products have been implicated in several cellular signaling responses like programmed cell death (PCD). Because of this, maintenance of sphingolipid homeostasis is critical for eukaryotic cell growth and development. Serine palmitoyltransferase (SPT) catalyzes the first step in sphingolipid biosynthesis and is the primary regulatory point for sphingolipid homeostasis.;We have characterized two sets of Arabidopsis proteins that physically interact with and impact Arabidopsis SPT activity. The first set, the ssSPTs (Arabidopsis thaliana), have been shown to be essential and redundant. Modulation of AtssSPT expression was shown to alter SPT activity, LCB accumulation and sensitivity to the mycotoxin, Fumonisin B1 (FB1), in a way that is consistent with the AtssSPTs being activators of SPT. Alternatively, modulating expression of the other set of proteins, the AtORMs, was shown to alter SPT activity, LCB accumulation and sensitivity to FB1, consistent with them acting as SPT inhibitors. Both the AtssSPTs and the AtORMs appear to be limiting as transgenic up/down regulation of these genes leads to predictable changes to SPT activity. Interestingly, we also see changes in ceramide synthase activity with modulation of AtORM expression, suggesting a more complex regulatory role for these proteins and pointing towards coordinate regulation of SPT with downstream enzymes.;Our research also demonstrates that SPT substrate specificity can be altered through point mutations in AtssSPT and AtLCB1, leading to the production of aberrant long-chain bases (LCBs). Alteration of SPT substrate specificity may function as another regulatory control point by altering SPT products through changes in the composition of SPT subunits. We also discuss a system utilizing a point mutation in AtLCB1 that can be used as a tool to better measure SPT activity in planta. Collectively our data point towards a complex and nuanced regulatory scheme for maintaining sphingolipid homeostasis in Arabidopsis thaliana..
机译:鞘脂是质膜和内膜系统的主要结构成分。研究表明鞘脂与脂质微区的形成有关,脂质微区也称为脂质筏,这可能有助于组织膜内的蛋白质,并且可能对膜运输很重要。除了它们在膜中的结构作用外,鞘脂及其代谢产物还与几种细胞信号转导反应有关,例如程序性细胞死亡(PCD)。因此,鞘脂稳态的维持对于真核细胞的生长和发育至关重要。丝氨酸棕榈酰转移酶(SPT)催化鞘脂生物合成的第一步,是鞘脂稳态的主要调控点。我们已经鉴定了两组与拟南芥SPT活性发生物理相互作用并对其产生影响的拟南芥蛋白。第一组,ssSPT(拟南芥)已被证明是必不可少的和多余的。研究表明,对AtssSPT表达的调节可以改变SPT活性,LCB积累和对真菌毒素伏马菌素B1(FB1)的敏感性,这与AtssSPTs是SPT的激活剂是一致的。另外,调节另一组蛋白质AtORM的表达可改变SPT活性,LCB积累和对FB1的敏感性,与它们作为SPT抑制剂的作用一致。 AtssSPT和AtORM都受到限制,因为这些基因的转基因上/下调节导致SPT活性的可预测变化。有趣的是,我们还发现神经酰胺合酶活性随AtORM表达的调节而改变,表明这些蛋白的调控作用更为复杂,并指向SPT与下游酶的协调调控。;我们的研究还表明,SPT底物特异性可以通过改变来改变AtssSPT和AtLCB1中的突变,导致异常长链碱基(LCB)的产生。通过改变SPT亚基的组成来改变SPT产物,SPT底物特异性的改变可以作为另一个调控控制点。我们还将讨论利用AtLCB1中的点突变的系统,该系统可用作更好地测量植物中SPT活性的工具。总体而言,我们的数据指出了维持拟南芥鞘脂稳态的复杂而细微的调节方案。

著录项

  • 作者

    Kimberlin, Athen N.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Plant sciences.;Biochemistry.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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