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Phospholipase D from Streptomyces chromofuscus: Studies of binding affinity and interactions with the membrane bilayer.

机译:染色体链霉菌中的磷脂酶D:研究结合亲和力和与膜双层的相互作用。

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摘要

Phospholipase D (PLD), an enzymatically active peripheral membrane protein, is one of several phospholipases which play a critical role in generating signal transduction molecules. PLD cleaves glycerophospholipids at the distal P-O bond. Cleavage of phosphatidylcholine by PLD liberates free choline and phosphatidic acid (PA), two molecules that participate in signaling pathways. PLD secreted from Streptomyces chromofuscus shares many characteristics with eukaryotic PLDs, e.g., an affinity for anionic lipids under divalent cation-free conditions and regulation through proteolytic processing. This bacterial PLD is secreted as an intact enzyme of 57 kD (PLD57) that is then cleaved between proline-350 and glutamine-351 by a protease to yield two fragments, the catalytic core (∼42 kD) and a C-terminal domain (∼20 kD), which remain associated. PLD42/20 exhibits a lower Km than the intact protein, as well as an enhanced Vmax. S. chromofuscus PLD has an absolute catalytic requirement for calcium with a dissociation constant in the micromolar range when soluble substrates are used. PLD57 is allosterically activated by phosphatidic acid in millimolar amounts of calcium. PLD-lipid interactions in the absence or presence of divalent cations were investigated. Barium, a competitive inhibitor of PLD, was substituted for calcium in binding and biophysical studies to block hydrolysis of POPC. PLD binds to zwitterionic lipids such as palmitoyloleoyl phosphatidylcholine (POPC) only in the presence of barium. Intact and fragmented PLD both bind tightly to anionic lipids in the absence of calcium. Detailed binding studies were used to characterize biochemically what may be different sites on the enzyme for binding zwitterionic or anionic lipids. The intact enzyme was found to assemble into a tetramer in the presence of POPC, anionic lipid and barium. In addition, both PLD57 and PLD42/20 induce vesicle leakiness of POPC vesicles in the presence of the allosteric activator dibutyroylphosphatidic acid. The proteolytically processed enzyme, but not the intact enzyme, induced vesicle leakiness in the presence of barium ions. All the PLD forms isolated were tested for their ability to aggregate vesicles and induce vesicle fusion. Only the clipped form of the enzyme exhibited fusogenic properties, as evaluated by a fluorescence resonance energy transfer assay, dynamic light scattering, and cryo-transmission electron microscopyt. Taken together, the work in this thesis suggests novel functions of PLD that are uncoupled from kinetic activity: binding and sequestering of intact protein at the interface until activation, subsequent insertion into the bilayer, and a novel membrane fusogenic behavior of the clipped form of the enzyme.
机译:磷脂酶D(PLD)是一种具有酶促活性的外周膜蛋白,是几种在产生信号转导分子中起关键作用的磷脂酶之一。 PLD在远端P-O键处裂解甘油磷脂。 PLD切割磷脂酰胆碱可释放出游离的胆碱和磷脂酸(PA),这两个分子参与信号传导途径。从色链霉菌分泌的PLD具有与真核PLD相同的许多特征,例如,在无二价阳离子的条件下对阴离子脂质的亲和力以及通过蛋白水解过程的调控。该细菌PLD以57 kD的完整酶(PLD 57 )形式分泌,然后被蛋白酶在脯氨酸-350和谷氨酰胺-351之间裂解,产生两个片段,即催化核心(〜42 kD)。 )和C端结构域(约20 kD),它们仍然保持关联。 PLD 42/20 的K m 比完整蛋白低,并且V max 增强。当使用可溶性底物时, chromofuscus PLD对钙具有绝对的催化要求,其解离常数在微摩尔范围内。 PLD 57 通过毫摩尔量的钙被磷脂酸变构激活。研究了在不存在或存在二价阳离子的情况下的PLD-脂质相互作用。钡是一种竞争性PLD抑制剂,在结合和生物物理研究中可替代钙来阻止POPC水解。 PLD仅在钡存在下才能结合两性离子脂质,例如棕榈酰油酰磷脂酰胆碱(POPC)。在没有钙的情况下,完整的PLD和断裂的PLD都与阴离子脂质紧密结合。详细的结合研究用于生物化学表征酶上两性离子或阴离子脂质结合的不同位点。发现完整的酶在POPC,阴离子脂质和钡的存在下组装成四聚体。此外,PLD 57 和PLD 42/20 在变构活化剂二丁酰酰磷脂酸存在下均可引起POPC囊泡的囊泡渗漏。在钡离子的存在下,蛋白水解处理的酶(而不是完整的酶)引起囊泡渗漏。测试所有分离的PLD形式的聚集囊泡和诱导囊泡融合的能力。如通过荧光共振能量转移测定,动态光散射和低温透射电子显微镜所评估的,仅酶的截短形式表现出融合特性。综上所述,本论文的工作表明PLD的新功能与动力学活性无关:在界面处完整蛋白的结合和螯合直到活化,随后插入双层中,以及剪裁形式的膜的新的膜融合行为。酶。

著录项

  • 作者

    Stieglitz, Kimberly Ann.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Biophysics Medical.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 226 p.
  • 总页数 226
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学;
  • 关键词

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