白色念珠菌羊毛甾醇14α-去甲基化酶(Erg11p)可疑突变对氟康唑耐药性的计算见解

IF 1.5 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Biology Research Communications Pub Date : 2020-12-01 DOI:10.22099/mbrc.2020.36298.1476
Sagunthala Murugesan Udaya Prakash, Yasin Nazeer, Sivaraman Jayanthi, Mohammad Anaul Kabir
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引用次数: 3

摘要

白色念珠菌麦角甾醇生物合成基因11 (ERG11)的突变在氟康唑耐药的临床分离株中经常被报道。探索这些突变及其影响可以为氟康唑耐药的潜在机制提供新的见解。Erg11p_Threonine285Alanine (Erg11p_THR285ALA), Erg11p_Leucine321Phenylalanine (Erg11p_LEU321PHE)和Erg11p_Serine457Proline (Erg11p_SER457PRO)是在临床分离的白色念菌中报道的三种氟唑耐药可疑突变。因此,我们的研究旨在利用计算机方法研究这些可疑突变在氟康唑耐药中的作用。载脂蛋白25ns(纳秒)的分子动力学模拟(MDS)分析表明,疑似突变蛋白在三级结构上发生了轻微的构象变化。结合自由能分析显示,与氟康唑的分子对接减少了非键相互作用,失去了血红素相互作用,对Erg11p_SER457PRO突变的结合亲和力最低。疑似突变蛋白-氟康唑复合物50ns的MDS结果显示,与野生型erg11p -氟康唑复合物相比,Erg11p_SER457PRO和Erg11p_LEU321PHE在相互作用模式和血红素相互作用缺失或减少方面存在明显差异。MDS和结合自由能分析显示erg11p_ser457pro -氟康唑复合物的结合最少,与已验证的突变erg11p_tyr447his -氟康唑复合物相似。综上所述,我们的研究得出结论,疑似突变Erg11p_THR285ALA可能没有任何作用,而Erg11p_LEU321PHE可能有中等作用。而Erg11p_SER457PRO突变极有可能在白念珠菌氟康唑耐药中发挥积极作用。
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Computational insights into fluconazole resistance by the suspected mutations in lanosterol 14α-demethylase (Erg11p) of Candida albicans.

Mutations in the ergosterol biosynthesis gene 11 (ERG11) of Candida albicans have been frequently reported in fluconazole-resistant clinical isolates. Exploring the mutations and their effect could provide new insights into the underlying mechanism of fluconazole resistance. Erg11p_Threonine285Alanine (Erg11p_THR285ALA), Erg11p_Leucine321Phenylalanine (Erg11p_LEU321PHE) and Erg11p_Serine457Proline (Erg11p_SER457PRO) are three fluconazole-resistant suspected mutations reported in clinical isolates of C. albicans. Therefore, our study aims to investigate the role of these suspected mutations in fluconazole resistance using in-silico methods. Molecular dynamics simulation (MDS) analysis of apo-protein for 25ns (nanosecond) showed that suspected mutant proteins underwent slight conformational changes in the tertiary structure. Molecular docking with fluconazole followed by binding free energy analysis showed reduced non-bonded interactions with loss of heme interaction and the least binding affinity for Erg11p_SER457PRO mutation. MDS of suspected mutant proteins-fluconazole complexes for 50ns revealed that Erg11p_SER457PRO and Erg11p_LEU321PHE have clear differences in the interaction pattern and loss or reduced heme interaction compared to wild type Erg11p-fluconazole complex. MDS and binding free energy analysis of Erg11p_SER457PRO-fluconazole complex showed the least binding similar to verified mutation Erg11p_TYR447HIS-fluconazole complex. Taken together, our study concludes that suspected mutation Erg11p_THR285ALA may not have any role whereas Erg11p_LEU321PHE could have a moderate role. However, Erg11p_SER457PRO mutation has a strong possibility to play an active role in fluconazole resistance of C. albicans.

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来源期刊
Molecular Biology Research Communications
Molecular Biology Research Communications BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
3.00
自引率
0.00%
发文量
12
期刊介绍: “Molecular Biology Research Communications” (MBRC) is an international journal of Molecular Biology. It is published quarterly by Shiraz University (Iran). The MBRC is a fully peer-reviewed journal. The journal welcomes submission of Original articles, Short communications, Invited review articles, and Letters to the Editor which meets the general criteria of significance and scientific excellence in all fields of “Molecular Biology”.
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