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泛酸合成受PanD-PanZ·乙酰辅酶A复合物调控的机制揭示了抗代谢物N-戊基泛酰胺(N5-Pan)的另一种作用模式。

The Mechanism of Regulation of Pantothenate Biosynthesis by the PanD-PanZ·AcCoA Complex Reveals an Additional Mode of Action for the Antimetabolite N-Pentyl Pantothenamide (N5-Pan).

作者信息

Arnott Zoe L P, Nozaki Shingo, Monteiro Diana C F, Morgan Holly E, Pearson Arwen R, Niki Hironori, Webb Michael E

机构信息

Astbury Centre for Structural Molecular Biology and School of Chemistry, University of Leeds , Leeds LS2 9JT, U.K.

Hamburg Center for Ultrafast Imaging, Institute of Nanostructure and Solid State Physics, University of Hamburg , Luruper Chaussee 149, Hamburg 22761, Germany.

出版信息

Biochemistry. 2017 Sep 19;56(37):4931-4939. doi: 10.1021/acs.biochem.7b00509. Epub 2017 Sep 7.

Abstract

The antimetabolite pentyl pantothenamide has broad spectrum antibiotic activity but exhibits enhanced activity against Escherichia coli. The PanDZ complex has been proposed to regulate the pantothenate biosynthetic pathway in E. coli by limiting the supply of β-alanine in response to coenzyme A concentration. We show that formation of such a complex between activated aspartate decarboxylase (PanD) and PanZ leads to sequestration of the pyruvoyl cofactor as a ketone hydrate and demonstrate that both PanZ overexpression-linked β-alanine auxotrophy and pentyl pantothenamide toxicity are due to formation of this complex. This both demonstrates that the PanDZ complex regulates pantothenate biosynthesis in a cellular context and validates the complex as a target for antibiotic development.

摘要

抗代谢物戊基泛酰胺具有广谱抗生素活性,但对大肠杆菌表现出增强的活性。有人提出,PanDZ复合物通过响应辅酶A浓度限制β-丙氨酸的供应来调节大肠杆菌中的泛酸生物合成途径。我们表明,活化的天冬氨酸脱羧酶(PanD)和PanZ之间形成这样的复合物会导致丙酮酰辅因子以酮水合物的形式被隔离,并证明PanZ过表达相关的β-丙氨酸营养缺陷和戊基泛酰胺毒性均归因于该复合物的形成。这既证明了PanDZ复合物在细胞环境中调节泛酸生物合成,又验证了该复合物作为抗生素开发靶点的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33a1/5724930/deaf5631c1be/bi-2017-005099_0002.jpg

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