Hussain Razak, Kumari Indu, Sharma Shikha, Ahmed Mushtaq, Khan Tabreiz Ahmad, Akhter Yusuf
Department of Botany, Aligarh Muslim University, Aligarh, Uttar Pradesh, 202002, India.
Department of Environmental Science, School of Earth and Environmental Sciences, Central University of Himachal Pradesh, Shahpur, District-Kangra, Kangra, Himachal Pradesh, 176206, India.
J Biol Inorg Chem. 2017 Dec;22(8):1197-1209. doi: 10.1007/s00775-017-1496-6. Epub 2017 Oct 10.
Trichothecenes are the secondary metabolites produced by Trichoderma spp. Some of these molecules have been reported for their ability to stimulate plant growth by suppressing plant diseases and hence enabling Trichoderma spp. to be efficiently used as biocontrol agents in modern agriculture. Many of the proteins involved in the trichothecenes biosynthetic pathway in Trichoderma spp. are encoded by the genes present in the tri cluster. Tri4 protein catalyzes three consecutive oxygenation reaction steps during biosynthesis of isotrichodiol in the trichothecenes biosynthetic pathway, while tri11 protein catalyzes the C4 hydroxylation of 12, 13-epoxytrichothec-9-ene to produce trichodermol. In the present study, we have homology modelled the three-dimensional structures of tri4 and tri11 proteins. Furthermore, molecular dynamics simulations were carried out to elucidate the mechanism of their action. Both tri4 and tri11 encode for cytochrome P450 monooxygenase like proteins. These data also revealed effector-induced allosteric changes on substrate binding at an alternative binding site and showed potential homotropic negative cooperativity. These analyses also showed that their catalytic mechanism relies on protein-ligand and protein-heme interactions controlled by hydrophobic and hydrogen-bonding interactions which orient the complex in optimal conformation within the active sites.
单端孢霉烯族毒素是木霉属产生的次生代谢产物。据报道,其中一些分子能够通过抑制植物病害来刺激植物生长,从而使木霉属能够在现代农业中有效地用作生物防治剂。木霉属中参与单端孢霉烯族毒素生物合成途径的许多蛋白质由tri簇中的基因编码。Tri4蛋白在单端孢霉烯族毒素生物合成途径中异单端孢菌素的生物合成过程中催化三个连续的氧化反应步骤,而tri11蛋白催化12,13-环氧单端孢霉-9-烯的C4羟基化以产生木霉酚。在本研究中,我们对tri4和tri11蛋白的三维结构进行了同源建模。此外,进行了分子动力学模拟以阐明它们的作用机制。tri4和tri11都编码类似细胞色素P450单加氧酶的蛋白质。这些数据还揭示了效应物诱导的在替代结合位点上底物结合时的变构变化,并显示出潜在的同促负协同性。这些分析还表明,它们的催化机制依赖于由疏水和氢键相互作用控制的蛋白质-配体和蛋白质-血红素相互作用,这些相互作用使复合物在活性位点内处于最佳构象。