以精氨酸酶-1 为靶点的他伐波罗治疗静脉性腿部溃疡的计算疗法再定位

IF 2.6 4区 生物学 Q2 BIOLOGY Computational Biology and Chemistry Pub Date : 2024-05-27 DOI:10.1016/j.compbiolchem.2024.108112
Naveen Kumar V, T. Tamilanban
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引用次数: 0

摘要

由于老龄化、肥胖和久坐不动的生活方式,腿部静脉溃疡(VLU)对医疗保健构成了日益严峻的挑战。尽管有各种治疗方法,但解决静脉性腿部溃疡的复杂性仍然困难重重。在这种情况下,本研究调查了将抑制精氨酸酶 1 活性的硼化药物重新用于治疗 VLU 的情况。利用 Schrodinger GLIDE 进行的分子对接研究以精氨酸酶 1 的双核锰簇(2PHO)为目标。此外,还在 Gromacs-2019.4 中对配体-蛋白质复合物进行了 500 ns 的分子动力学研究。使用 GROMACS 仿真软件包对蛋白质的 RMSD、RMSF、RG、SASA 和 H-Bond 进行了轨迹分析。对接研究揭示了耐人寻味的结果,与底物 L-精氨酸(-3.379 Kcal/mol)和标准 L-正缬氨酸(-3.141 Kcal/mol)相比,塔伐伯罗显示出更好的对接得分(-3.957 Kcal/mol)。Tavaborole 与天冬氨酸的相互作用最终表明,药物分子与精氨酸酶 1 的催化位点结合,可能会影响酶的功能。动力学研究揭示了化合物在整个模拟过程中的稳定性和蛋白质的紧密性。RMSD、RMSF、SASA、RG、H-键间和H-键内、PCA、FEL和MMBSA研究证实了配体-蛋白质和蛋白质复合物的灵活性、紧密性、结合能、范德华能和溶解动力学。这些结果表明了配体的稳定性和与精氨酸酶 1 酶催化位点的相互作用,从而引发了对 VLU 处理的研究。
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Computational therapeutic repurposing of tavaborole targeting arginase-1 for venous leg ulcer

Venous leg ulcers (VLUs) pose a growing healthcare challenge due to aging, obesity, and sedentary lifestyles. Despite various treatments available, addressing the complex nature of VLUs remains difficult. In this context, this study investigates repurposing boronated drugs to inhibit arginase 1 activity for VLU treatment. The molecular docking study conducted by Schrodinger GLIDE targeted the binuclear manganese cluster of arginase 1 enzyme (2PHO). Further, the ligand-protein complex was subjected to molecular dynamic studies at 500 ns in Gromacs-2019.4. Trajectory analysis was performed using the GROMACS simulation package of protein RMSD, RMSF, RG, SASA, and H-Bond. The docking study revealed intriguing results where the tavaborole showed a better docking score (-3.957 Kcal/mol) compared to the substrate L-arginine (-3.379 Kcal/mol) and standard L-norvaline (-3.141 Kcal/mol). Tavaborole interaction with aspartic acid ultimately suggests that the drug molecule binds to the catalytic site of arginase 1, potentially influencing the enzyme's function. The dynamics study revealed the compounds' stability and compactness of the protein throughout the simulation. The RMSD, RMSF, SASA, RG, inter and intra H-bond, PCA, FEL, and MMBSA studies affirmed the ligand-protein and protein complex flexibility, compactness, binding energy, van der waals energy, and solvation dynamics. These results revealed the stability and the interaction of the ligand with the catalytic site of arginase 1 enzyme, triggering the study towards the VLU treatment.

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来源期刊
Computational Biology and Chemistry
Computational Biology and Chemistry 生物-计算机:跨学科应用
CiteScore
6.10
自引率
3.20%
发文量
142
审稿时长
24 days
期刊介绍: Computational Biology and Chemistry publishes original research papers and review articles in all areas of computational life sciences. High quality research contributions with a major computational component in the areas of nucleic acid and protein sequence research, molecular evolution, molecular genetics (functional genomics and proteomics), theory and practice of either biology-specific or chemical-biology-specific modeling, and structural biology of nucleic acids and proteins are particularly welcome. Exceptionally high quality research work in bioinformatics, systems biology, ecology, computational pharmacology, metabolism, biomedical engineering, epidemiology, and statistical genetics will also be considered. Given their inherent uncertainty, protein modeling and molecular docking studies should be thoroughly validated. In the absence of experimental results for validation, the use of molecular dynamics simulations along with detailed free energy calculations, for example, should be used as complementary techniques to support the major conclusions. Submissions of premature modeling exercises without additional biological insights will not be considered. Review articles will generally be commissioned by the editors and should not be submitted to the journal without explicit invitation. However prospective authors are welcome to send a brief (one to three pages) synopsis, which will be evaluated by the editors.
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