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Changes of Thermostability Organic Solvent and pH Stability in Geobacillus zalihae HT1 and Its Mutant by Calcium Ion

机译:扎利海地芽孢杆菌HT1及其钙离子突变体的热稳定性有机溶剂和pH稳定性的变化

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摘要

Thermostable T1 lipase from Geobacillus zalihae has been crystallized using counter-diffusion method under space and Earth conditions. The comparison of the three-dimensional structures from both crystallized proteins show differences in the formation of hydrogen bond and ion interactions. Hydrogen bond and ion interaction are important in the stabilization of protein structure towards extreme temperature and organic solvents. In this study, the differences of hydrogen bond interactions at position Asp43, Thr118, Glu250, and Asn304 and ion interaction at position Glu226 was chosen to imitate space-grown crystal structure, and the impact of these combined interactions in T1 lipase-mutated structure was studied. Using space-grown T1 lipase structure as a reference, subsequent simultaneous mutation D43E, T118N, E226D, E250L, and N304E was performed on recombinant wild-type T1 lipase (wt-HT1) to generate a quintuple mutant term as 5M mutant lipase. This mutant lipase shared similar characteristics to its wild-type in terms of optimal pH and temperature. The stability of mutant 5M lipase improved significantly in acidic and alkaline pH as compared to wt-HT1. 5M lipase was highly stable in organic solvents such as dimethyl sulfoxide (DMSO), methanol, and n-hexane compared to wt-HT1. Both wild-type and mutant lipases were found highly activated in calcium as compared to other metal ions due to the presence of calcium-binding site for thermostability. The presence of calcium prolonged the half-life of mutant 5M and wt-HT1, and at the same time increased their melting temperature (Tm). The melting temperature of 5M and wt-HT1 lipases increased at 8.4 and 12.1 °C, respectively, in the presence of calcium as compared to those without. Calcium enhanced the stability of mutant 5M in 25% (v/v) DMSO, n-hexane, and n-heptane. The lipase activity of wt-HT1 also increased in 25% (v/v) ethanol, methanol, acetonitrile, n-hexane, and n-heptane in the presence of calcium. The current study showed that the accumulation of amino acid substitutions D43E, T118N, E226D, E250L, and N304E produced highly stable T1 mutant when hydrolyzing oil in selected organic solvents such as DMSO, n-hexane, and n-heptane. It is also believed that calcium ion plays important role in regulating lipase thermostability.
机译:在空间和地球条件下,使用反向扩散法已结晶了来自扎利哈芽孢杆菌的热稳定T1脂肪酶。来自两种结晶蛋白的三维结构的比较显示出氢键形成和离子相互作用的差异。氢键和离子相互作用对于稳定蛋白质结构对极端温度和有机溶剂的作用很重要。在这项研究中,选择Asp43,Thr118,Glu250和Asn304位置的氢键相互作用和Glu226位置的离子相互作用的差异来模拟空间生长的晶体结构,并且这些组合相互作用对T1脂肪酶突变结构的影响是研究。使用空间生长的T1脂肪酶结构作为参考,对重组野生型T1脂肪酶(wt-HT1)进行随后的同时突变D43E,T118N,E226D,E250L和N304E,以生成五重突变术语,即5M突变脂肪酶。就最佳的pH和温度而言,该突变型脂肪酶具有与其野生型相似的特征。与wt-HT1相比,突变型5M脂肪酶的稳定性在酸性和碱性pH下显着提高。与wt-HT1相比,5M脂肪酶在有机溶剂(例如二甲基亚砜(DMSO),甲醇和正己烷)中具有高度稳定性。与其他金属离子相比,由于存在钙结合位点以提高热稳定性,野生型和突变型脂肪酶均在钙中被高度激活。钙的存在延长了突变体5M和wt-HT1的半衰期,同时提高了其熔解温度(Tm)。与没有钙的情况相比,在有钙的情况下,5M和wt-HT1脂肪酶的解链温度分别在8.4和12.1°C时升高。钙增强了突变型5M在25%(v / v)DMSO,正己烷和正庚烷中的稳定性。在钙的存在下,wt-HT1的脂肪酶活性在25%(v / v)的乙醇,甲醇,乙腈,正己烷和正庚烷中也有所增加。当前的研究表明,当在选定的有机溶剂(例如DMSO,正己烷和正庚烷)中水解油时,氨基酸取代D43E,T118N,E226D,E250L和N304E的积累会产生高度稳定的T1突变体。还认为钙离子在调节脂肪酶的热稳定性中起重要作用。

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