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Homology modeling simulation and molecular docking studies of catechol-2 3-Dioxygenase from Burkholderia cepacia: Involved in degradation of Petroleum hydrocarbons

机译:洋葱伯克霍尔德氏菌儿茶酚-2、3-双加氧酶的同源性建模模拟和分子对接研究:涉及石油烃的降解

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摘要

Catechol 2, 3-dioxygenase is present in several types of bacteria and undergoes degradation of environmental pollutants through an important key biochemical pathways. Specifically, this enzyme cleaves aromatic rings of several environmental pollutants such as toluene, xylene, naphthalene and biphenyl derivatives. Hence, the importance of Catechol 2, 3-dioxygenase and its role in the degradation of environmental pollutants made us to predict the three-dimensional structure of Catechol 2, 3-dioxygenase from Burkholderia cepacia. The 10ns molecular dynamics simulation was carried out to check the stability of the modeled Catechol 2, 3- dioxygenase. The results show that the model was energetically stable, and it attains their equilibrium within 2000 ps of production MD run. The docking of various petroleum hydrocarbons into the Catechol 2,3-dioxygenase reveals that the benzene, O-xylene, Toluene, Fluorene, Naphthalene, Carbazol, Pyrene, Dibenzothiophene, Anthracene, Phenanthrene, Biphenyl makes strong hydrogen bond and Van der waals interaction with the active site residues of H150, L152, W198, H206, H220, H252, I254, T255, Y261, E271, L276 and F309. Free energy of binding and estimated inhibition constant of these compounds demonstrates that they are energetically stable in their binding cavity. Chrysene shows positive energy of binding in the active site atom of Fe. Except Pyrene all the substrates made close contact with Fe atom by the distance ranges from 1.67 to 2.43 Å. In addition to that, the above mentioned substrate except pyrene all other made π-π stacking interaction with H252 by the distance ranges from 3.40 to 3.90 Å. All these docking results reveal that, except Chrysene all other substrate has good free energy of binding to hold enough in the active site and makes strong VdW interaction with Catechol-2,3-dioxygenase. These results suggest that, the enzyme is capable of catalyzing the above-mentioned substrate.
机译:儿茶酚2,3-双加氧酶存在于几种细菌中,并通过重要的重要生化途径降解环境污染物。具体而言,该酶裂解了几种环境污染物的芳环,例如甲苯,二甲苯,萘和联苯衍生物。因此,儿茶酚2,3-双加氧酶的重要性及其在环境污染物降解中的作用使我们能够预测洋葱伯克霍尔德菌中儿茶酚2,3-双加氧酶的三维结构。进行了10ns的分子动力学模拟,以检查建模的邻苯二酚2,3-双加氧酶的稳定性。结果表明,该模型是能量稳定的,并且在生产MD运行的2000 ps内达到了平衡。各种石油烃与邻苯二酚2,3-二加氧酶的对接表明,苯,邻二甲苯,甲苯,芴,萘,咔唑,P,二苯并噻吩,蒽,菲,联苯使氢键牢固,范德华与H150,L152,W198,H206,H220,H252,I254,T255,Y261,E271,L276和F309的活性位点残基。这些化合物的结合自由能和估计的抑制常数表明,它们在结合腔中在能量上是稳定的。 ry在Fe的活性位原子上显示出正的结合能。除P外,所有基材都与铁原子紧密接触,距离范围为1.67至2.43。除此之外,除except以外的上述底物与H 252的其他π-π堆积相互作用的距离范围为3.40至3.90。所有这些对接结果表明,除了Chrysene以外,其他所有底物都具有良好的结合自由能,足以在活性位点中保持足够的结合力,并与Catechol-2,3-dioxygenase产生强大的VdW相互作用。这些结果表明,该酶能够催化上述底物。

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