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Functional analysis of the binding model of microbial inulinases using docking and molecular dynamics simulation

机译:利用对接和分子动力学模拟对微生物菊粉酶结合模型进行功能分析

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Recently inulinase has regained interest due to its usage in the production of fructooligosaccharides, biofuels, and in pharmaceutical industries. Inulinases properties are experimentally reported by nomerous studies but their characteristics are just partially explained by only a few computational investigations. In the present study we have investigated exoinulinase and endoinulinase from different microbial sources toward their catalytic activity. Docking and molecular dynamic (MD) simulation were carried out for microbial endoinulinase and exoinulinase docked with 1-kestose and fructose-6-phosphate respectively. Pseudomonas mucidolens (-7.42 kcal mol(-1) binding energy), docked with fructose-6-phosphate, was recorded as the most favorable binding energy, Pseudomonas mucidolens made hydrogen bonds with fructose-6-phosphate and the amino acids involved were arginine 286, tryptophan 158, and isoleucine 87. After the simulation only tryptophan 158 remained bonded and additionally valine 156 made hydrogen bonds with fructose-6-phosphate. Aspergillus niger docked with 1-kestose was bonded with the involvement of threonine 271, aspartate 285, threonine 288, and proline 283, after the simulation aspartate 285 was retained till the end of the simulation. The present study thus refers to the indication of depicting binding analysis of microbial inulinases.
机译:最近,由于菊粉酶在果糖低聚糖,生物燃料和制药行业中的使用,已引起人们的关注。菊粉酶的性质已由众多研究实验性报道,但仅通过一些计算研究就可以部分解释其特性。在本研究中,我们研究了来自不同微生物来源的外切菊糖酶和内切菊糖酶的催化活性。分别对接有1个激酶和6个磷酸果糖的微生物内切菊糖酶和外切菊糖酶进行了对接和分子动力学(MD)模拟。假单胞菌黏液假单胞菌(-7.42 kcal mol(-1)结合能)与果糖6-磷酸对接是最有利的结合能,假单胞菌黏液与6-果糖磷酸形成氢键,涉及的氨基酸为精氨酸。 286,色氨酸158和异亮氨酸87。在模拟之后,仅色氨酸158保持键合,另外缬氨酸156与6-磷酸果糖形成氢键。在模拟中将天冬氨酸285保留至模拟结束后,将与1-Kose对接的黑曲霉与苏氨酸271,天冬氨酸285,苏氨酸288和脯氨酸283结合在一起。因此,本研究是指描绘微生物菊粉酶的结合分析的适应症。

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