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结构研究、计算分析和抗冻蛋白 IV 型突变体的理论冷冻保护剂方法。

Structural investigation, computational analysis, and theoretical cryoprotectant approach of antifreeze protein type IV mutants.

机构信息

Enzyme and Microbial Technology Research Centre, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor, Malaysia.

Department of Biochemistry, Faculty of Biotechnology and Biomolecular Sciences, Universiti Putra Malaysia, 43400 UPM Serdang, Selangor, Malaysia.

出版信息

Eur Biophys J. 2024 Nov;53(7-8):385-403. doi: 10.1007/s00249-024-01719-7. Epub 2024 Sep 27.

Abstract

Antifreeze proteins (AFPs) have unique features to sustain life in sub-zero environments due to ice recrystallization inhibition (IRI) and thermal hysteresis (TH). AFPs are in demand as agents in cryopreservation, but some antifreeze proteins have low levels of activity. This research aims to improve the cryopreservation activity of an AFPIV. In this in silico study, the helical peptide afp1m from an Antarctic yeast AFP was modeled into a sculpin AFPIV, to replace each of its four α-helices in turn, using various computational tools. Additionally, a new linker between the first two helices of AFPIV was designed, based on a flounder AFPI, to boost the ice interaction activity of the mutants. Bioinformatics tools such as ExPASy Prot-Param, Pep-Wheel, SOPMA, GOR IV, Swiss-Model, Phyre2, MODFOLD, MolPropity, and ProQ were used to validate and analyze the structural and functional properties of the model proteins. Furthermore, to evaluate the AFP/ice interaction, molecular dynamics (MD) simulations were executed for 20, 100, and 500 ns at various temperatures using GROMACS software. The primary, secondary, and 3D modeling analysis showed the best model for a redesigned antifreeze protein (AFP1mb, with afp1m in place of the fourth AFPIV helix) with a QMEAN (Swiss-Model) Z score value of 0.36, a confidence of 99.5%, a coverage score of 22%, and a p value of 0.01. The results of the MD simulations illustrated that AFP1mb had more rigidity and better ice interactions as a potential cryoprotectant than the other models; it also displayed enhanced activity in limiting ice growth at different temperatures.

摘要

抗冻蛋白(AFP)具有独特的特性,可以通过抑制冰晶重结晶(IRI)和热滞(TH)来维持在零下环境中的生命。AFP 作为冷冻保存剂的试剂需求很高,但有些抗冻蛋白的活性较低。本研究旨在提高 AFPIV 的冷冻保存活性。在这项计算机模拟研究中,使用各种计算工具,将来自南极酵母 AFP 的螺旋肽 afp1m 构建到拟鮋 AFPIV 中,依次替换其四个α-螺旋。此外,基于牙鲆 AFP1 设计了 AFPIV 前两个螺旋之间的新连接子,以增强突变体与冰的相互作用活性。使用 ExPASy Prot-Param、Pep-Wheel、SOPMA、GOR IV、Swiss-Model、Phyre2、MODFOLD、MolPropity 和 ProQ 等生物信息学工具来验证和分析模型蛋白的结构和功能特性。此外,为了评估 AFP/冰相互作用,使用 GROMACS 软件在不同温度下分别进行了 20、100 和 500 ns 的分子动力学(MD)模拟。初级、二级和 3D 建模分析表明,对于重新设计的抗冻蛋白(AFP1mb,用 afp1m 替换第四 AFPIV 螺旋),具有最佳模型,其 QMEAN(Swiss-Model)Z 得分值为 0.36,置信度为 99.5%,覆盖率为 22%,p 值为 0.01。MD 模拟结果表明,与其他模型相比,AFP1mb 作为潜在的冷冻保护剂具有更高的刚性和更好的冰相互作用,并且在不同温度下限制冰生长的活性增强。

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