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首页> 外文期刊>Journal of Molecular Biology >Crystal structure and novel recognition motif of Rho ADP-ribosylating C3exoenzyme from Clostridium botulinum: Structural insights for recognitionspecificity and catalysis
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Crystal structure and novel recognition motif of Rho ADP-ribosylating C3exoenzyme from Clostridium botulinum: Structural insights for recognitionspecificity and catalysis

机译:肉毒梭菌Rho ADP-核糖基化C3外切酶的晶体结构和新型识别基序:识别特异性和催化作用的结构见解

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摘要

Clostridium botulinum C3 exoenzyme inactivates the small GTP-binding protein family Rho by ADP-ribosylating asparagine 41, which depolymerizes the actin cytoskeleton. C3 thus represents a major family of the bacterial toxins that transfer the ADP-ribose moiety of NAD to specific amino acids in acceptor proteins to modify key biological activities in eukaryotic cells, including protein synthesis, differentiation, transformation, and intracellular signaling. The 1.7 Angstrom resolution C3 exoenzyme structure establishes the conserved features of the core NAD-binding beta -sandwich fold with other ADP-ribosylating toxins despite little sequence conservation. Importantly, the central core of the C3 exoenzyme structure is distinguished by the absence of an active site loop observed in many other ADP-ribosylating toxins. Unlike the ADP-ribosylating toxins that possess the active site loop near the central core, the C3 exoenzyme replaces the active site loop with an alpha -helix, alpha3. Moreover, structural and sequence similarities with the catalytic domain of vegetative insecticidal protein 2 (VIP2), an actin ADP-ribosyltransferase, unexpectedly implicates two adjacent, protruding turns, which join beta5 and beta6 of the toxin core fold, as a novel recognition specificity motif for this newly defined toxin family. Turn 1 evidently positions the solvent-exposed, aromatic side-chain of Phe209 to interact with the hydrophobic region of Rho adjacent to its GTP-binding site. Turn 2 evidently both places the Gln212 side-chain for hydrogen bonding to recognize Rho Asn41 for nucleophilic attack on the anomeric carbon of NAD ribose and holds the key Glu214 catalytic side-chain in the adjacent catalytic pocket. This proposed bipartite ADP-ribosylating toxin turn-turn (ARTT) motif places the VIP2 and C3 toxin classes into a single ARTT family characterized by analogous target protein recognition via turn 1 aromatic and turn 2 hydrogen-bonding side-chain moieties. Turn 2 centrally anchors the catalytic Glu214 within the ARTT motif, and furthermore distinguishes the C3 toxin class by a conserved turn 2 Gin and the VIP2 binary toxin class by a conserved turn 2 Glu for appropriate target side-chain hydrogen-bonding recognition. Taken together, these structural results provide a molecular basis for understanding the coupled activity and recognition specificity for C3 and for the newly defined ARTT toxin family, which acts in the depolymerization of the actin cytoskeleton. This beta5 to beta6 region of the toxin fold represents an experimentally testable and potentially general recognition motif region for other ADP-ribosylating toxins that have a similar beta -structure framework.
机译:肉毒梭菌C3外切酶通过ADP-核糖基化天冬酰胺41使肌动蛋白细胞骨架解聚,从而使小的GTP结合蛋白家族Rho失活。因此,C3代表细菌毒素的主要家族,其将NAD的ADP-核糖部分转移至受体蛋白中的特定氨基酸,以修饰真核细胞中的关键生物学活性,包括蛋白合成,分化,转化和细胞内信号转导。 1.7埃分辨率的C3外切酶结构建立了核心NAD结合β-三明治折叠与其他ADP-核糖基化毒素的保守特征,尽管几乎没有序列保守性。重要的是,C3外切酶结构的中央核心的特征在于,在许多其他ADP-核糖基化毒素中没有观察到活性位点环。与在中央核心附近具有活性位点环的ADP核糖基化毒素不同,C3外切酶用α-螺旋α3取代了活性位点环。此外,与植物性杀虫蛋白2​​(VIP2)的催化结构域(肌动蛋白ADP-核糖基转移酶)的结构和序列相似性出乎意料地牵涉到两个相邻的凸出转弯,它们将毒素核心折叠的beta5和beta6作为一种新的识别特异性基序这个新定义的毒素家族。转弯1显然将Phe209暴露于溶剂的芳族侧链与Rho的邻近其GTP结合位点的疏水区域相互作用。转弯2显然既放置了用于氢键键合的Gln212侧链以识别Rho Asn41对NAD核糖的异头碳进行亲核攻击,又将关键的Glu214催化侧链保留在相邻的催化口袋中。该提议的二分体ADP-核糖基化毒素转-转(ARTT)基序将VIP2和C3毒素类别归入单个ARTT家族,其特征是通过转1芳香族和转2氢键联的侧链部分实现类似的目标蛋白识别。 2号弯将催化性Glu214锚定在ARTT基序内,并通过保守2号Gin区分C3毒素类和通过2号保守Glu保守性区分VIP3二元毒素类,以进行适当的目标侧链氢键识别。总之,这些结构结果为理解C3和新定义的ARTT毒素家族(在肌动蛋白细胞骨架解聚中起作用)的偶联活性和识别特异性提供了分子基础。毒素折叠的这个beta5到beta6区域代表了具有类似β结构框架的其他ADP-核糖基化毒素的实验可测试且潜在的一般识别基序区域。

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