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A pathway-directed positive growth restoration assay to facilitate the discovery of lipid A and fatty acid biosynthesis inhibitors in Acinetobacter baumannii

机译:促进鲍曼不动杆菌中脂质A和脂肪酸生物合成抑制剂发现的途径导向的阳性生长恢复测定

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摘要

Acinetobacter baumannii ATCC 19606 can grow without lipooligosaccharide (LOS). Lack of LOS can result from disruption of the early lipid A biosynthetic pathway genes lpxA, lpxC or lpxD. Although LOS itself is not essential for growth of A. baumannii ATCC 19606, it was previously shown that depletion of the lipid A biosynthetic enzyme LpxK in cells inhibited growth due to the toxic accumulation of lipid A pathway intermediates. Growth of LpxK-depleted cells was restored by chemical inhibition of LOS biosynthesis using CHIR-090 (LpxC) and fatty acid biosynthesis using cerulenin (FabB/F) and pyridopyrimidine (acetyl-CoA-carboxylase). Here, we expand on this by showing that inhibition of enoyl-acyl carrier protein reductase (FabI), responsible for converting trans-2-enoyl-ACP into acyl-ACP during the fatty acid elongation cycle also restored growth during LpxK depletion. Inhibition of fatty acid biosynthesis during LpxK depletion rescued growth at 37°C, but not at 30°C, whereas rescue by LpxC inhibition was temperature independent. We exploited these observations to demonstrate proof of concept for a targeted medium-throughput growth restoration screening assay to identify small molecule inhibitors of LOS and fatty acid biosynthesis. The differential temperature dependence of fatty acid and LpxC inhibition provides a simple means by which to separate growth stimulating compounds by pathway. Targeted cell-based screening platforms such as this are important for faster identification of compounds inhibiting pathways of interest in antibacterial discovery for clinically relevant Gram-negative pathogens.
机译:鲍曼不动杆菌ATCC 19606可以在没有脂寡糖(LOS)的情况下生长。 LOS缺乏可能是由早期脂质A生物合成途径基因lpxA,lpxC或lpxD的破坏引起的。尽管LOS本身对于鲍曼不动杆菌ATCC 19606的生长不是必需的,但先前已证明,由于脂质A途径中间体的毒性蓄积,细胞中脂质A生物合成酶LpxK的消耗抑制了生长。通过使用CHIR-090(LpxC)对LOS生物合成进行化学抑制,以及通过使用蓝藻素(FabB / F)和吡啶并嘧啶(乙酰基-CoA-羧化酶)进行脂肪酸生物合成,可以恢复LpxK耗尽的细胞的生长。在这里,我们通过显示对烯酰基-酰基载体蛋白还原酶(FabI)的抑制来扩展这一点,该酶负责在脂肪酸延长周期中将反式-2-烯酰基-ACP转化为酰基-ACP,也恢复了LpxK消耗过程中的生长。 LpxK消耗过程中脂肪酸生物合成的抑制作用可在37°C而非30°C的温度下恢复生长,而通过LpxC抑制进行的恢复与温度无关。我们利用这些观察结果来证明针对中通量生长恢复筛选测定法的概念验证,以鉴定LOS和脂肪酸生物合成的小分子抑制剂。脂肪酸和LpxC抑制的温度差异性差异提供了一种简单的方法,可通过该方法通过途径分离生长刺激化合物。诸如此类的基于细胞的靶向筛选平台,对于更快地鉴定抑制细菌发现相关临床相关革兰氏阴性病原体感兴趣的途径的化合物至关重要。

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