首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Active Site Metal Ion in UDP-3-O-((R)-3-Hydroxymyristoyl)-N-acetylglucosamine Deacetylase (LpxC) Switches between Fe(II) and Zn(II) Depending on Cellular Conditions
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Active Site Metal Ion in UDP-3-O-((R)-3-Hydroxymyristoyl)-N-acetylglucosamine Deacetylase (LpxC) Switches between Fe(II) and Zn(II) Depending on Cellular Conditions

机译:UDP-3-O-((R)-3-羟基肉豆蔻酰基)-N-乙酰氨基葡糖胺脱乙酰基酶(LpxC)中的活性位金属离子根据细胞条件在Fe(II)和Zn(II)之间切换

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摘要

UDP-3-O-((R)-3-hydroxymyristoyl)-N-acetylglucosamine deacetylase (LpxC) catalyzes the deacetylation of UDP-3-O-((R)-3-hydroxymyristoyl)-N-acetylglucosamine to form UDP-3-O-myristoylglucosamine and acetate in Gram-negative bacteria. This second, and committed, step in lipid A biosynthesis is a target for antibiotic development. LpxC was previously identified as a mononuclear Zn(II) metalloenzyme; however, LpxC is 6–8-fold more active with the oxygen-sensitive Fe(II) cofactor (Hernick, M., Gattis, S. G., Penner-Hahn, J. E., and Fierke, C. A. (2010) Biochemistry 49, 2246–2255). To analyze the native metal cofactor bound to LpxC, we developed a pulldown method to rapidly purify tagged LpxC under anaerobic conditions. The metal bound to LpxC purified from Escherichia coli grown in minimal medium is mainly Fe(II). However, the ratio of iron/zinc bound to LpxC varies with the metal content of the medium. Furthermore, the iron/zinc ratio bound to native LpxC, determined by activity assays, has a similar dependence on the growth conditions. LpxC has significantly higher affinity for Zn(II) compared with Fe(II) with KD values of 60 ± 20 pm and 110 ± 40 nm, respectively. However, in vivo concentrations of readily exchangeable iron are significantly higher than zinc, suggesting that Fe(II) is the thermodynamically favored metal cofactor for LpxC under cellular conditions. These data indicate that LpxC expressed in E. coli grown in standard medium predominantly exists as the Fe(II)-enzyme. However, the metal cofactor in LpxC can switch between iron and zinc in response to perturbations in available metal ions. This alteration may be important for regulating the LpxC activity upon changes in environmental conditions and may be a general mechanism of regulating the activity of metalloenzymes.
机译:UDP-3-O-((R)-3-羟基肉豆蔻酰基)-N-乙酰氨基葡糖脱乙酰基酶(LpxC)催化UDP-3-O-((R)-3-羟基肉豆蔻酰基)-N-乙酰氨基葡糖胺的脱乙酰基形成UDP-革兰氏阴性细菌中的3-O-肉豆蔻基葡萄糖胺和乙酸盐。脂质A生物合成的第二个重要步骤是抗生素开发的目标。 LpxC以前被鉴定为单核Zn(II)金属酶;但是,LpxC与对氧敏感的Fe(II)辅助因子的活性高6-8倍(Hernick,M.,Gattis,SG,Penner-Hahn,JE和Fierke,CA(2010)Biochemistry 49,2246-2255 )。为了分析与LpxC结合的天然金属辅因子,我们开发了一种下拉方法来在厌氧条件下快速纯化标记的LpxC。在基本培养基中生长的与从大肠杆菌纯化的LpxC结合的金属主要是Fe(II)。但是,结合在LpxC上的铁/锌比例随介质中金属含量的变化而变化。此外,通过活性测定法测定,与天然LpxC结合的铁/锌比对生长条件具有相似的依赖性。与Fe(II)相比,LpxC对Zn(II)的亲和力明显更高,KD值分别为60±20 pm和110±40 nm。但是,体内易交换铁的浓度明显高于锌,这表明在细胞条件下,Fe(II)是LpxC的热力学首选金属辅因子。这些数据表明在标准培养基中生长的大肠杆菌中表达的LpxC主要以Fe(II)酶的形式存在。但是,响应可用金属离子的扰动,LpxC中的金属辅因子可以在铁和锌之间切换。这种改变对于在环境条件变化时调节LpxC活性可能很重要,并且可能是调节金属酶活性的一般机制。

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