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Targeting human secretory phospholipase A2 with designed peptide inhibitors for inflammatory therapy

机译:使用设计的肽抑制剂靶向人分泌型磷脂酶A2进行炎症治疗

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摘要

Phospholipase A2 (PLA2) is potentially an important target for anti-inflammatory therapeutics. Here, we described a systematic scheme that integrated protein docking and peptide redocking, molecular dynamics simulation, and binding affinity analysis to rationally design PLA2 inhibitory peptides based on a solved PLA2 crystal structure. The scheme employed protein docking to sample the interaction modes of PLA2 with its natural inhibitor Clara cell protein, from which a number of peptide fragments, including a pentapeptide LLLGS, were cut off and redocked to serve as the lead entities of PLA2 inhibitory peptides. In addition, a systematic mutation energy map that characterized the binding free energy changes Delta G upon mutations of each position of the putative pentapeptide to 20 amino acids was also profiled, which was subsequently used to guide peptide structure optimization. In order to solidify the computational findings, we performed kinetic and inhibition studies of few designed peptides against human secretory PLA2. Consequently, eight peptides were successfully identified to have potent inhibition potency, in which the LLAYK and AVFRS were found to suppress enzymatic activity significantly (K-i = 0.75 +/- 0.06 and 4.2 +/- 0.3 mu M, respectively). A further structure examination revealed that the designed peptides can form intensive nonpolar networks of van der Waals contacts and hydrophobic interactions at their complex interfaces with PLA2, conferring considerable stability and affinity for the formed complex systems.
机译:磷脂酶A2(PLA2)可能是抗炎治疗的重要目标。在这里,我们描述了一个系统化的方案,该方案整合了蛋白质对接和肽段的对接,分子动力学模拟以及结合亲和力分析,以基于已解决的PLA2晶体结构合理设计PLA2抑制性肽。该方案使用蛋白质对接来采样PLA2与天然抑制剂Clara细胞蛋白的相互作用模式,从中切除了许多肽片段,包括五肽LLLGS,并重新对接以充当PLA2抑制肽的先导实体。此外,还绘制了一个系统化的突变能图,该图表征了假定的五肽每个位置突变为20个氨基酸后结合自由能变化的Delta G,随后用于指导肽结构优化。为了巩固计算结果,我们进行了一些针对人类分泌PLA2的设计肽的动力学和抑制研究。因此,成功鉴定出八种具有强抑制力的肽,其中发现LLAYK和AVFRS显着抑制酶活性(分别为K-1 = 0.75 +/- 0.06和4.2 +/- 0.3μM)。进一步的结构检查表明,设计的肽可以在其与PLA2的复杂界面处形成范德华接触和疏水相互作用的密集非极性网络,从而为所形成的复杂系统提供相当大的稳定性和亲和力。

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