Protective efficacy of nafronyl in diabetic retinopathy through targeted inhibition of key enzymes.

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Eyush Eyush, Shivani Kumar, Karishma Sen, Anita Sakarwal, Heera Ram, Dharamveer Yadav, Antresh Kumar, Anil Panwar
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引用次数: 0

Abstract

Diabetic retinopathy is governed by abnormal apoptosis, increased capillary pressure, and other linked pathology that needs an efficient treatment by multitargeted approaches. Thus, the current study aimed to explore the potential of inhibition of targeted enzymes (DPP4, ACE-2, and aldose reductase) and free radical scavenging capabilities of selected compounds (nafronyl or naftidrofuryl) through in silico and in vivo investigations. Significant binding energies were observed in complexes of aldolase reductase, angiotensin type 1 receptor, and DPP4 against the nafronyl and sitagliptin more than -7.5 kcal/mol. Further validation of free energy was confirmed by calculations of molecular mechanics Poisson-Boltzmann surface area (MMPBSA), and configurational stabilities examined by PCA (principal component analysis). Additionally, drug-likeness was examined by the Swiss ADME web tool, which showed significant findings. Consequently, in vivo experimentations showed significant inflammation and alterations in retinal layers of inner plexiform (inner limiting membrane, nerve fibers, and ganglionic cells), inner nuclear layer (bipolar cells and horizontal cells), and photoreceptors cells. Whereas the treatments (nafronyl and sitagliptin) caused significant improvements in the histoarchitecture of the retina. Additionally, the HOMA indices (IR-insulin resistance, sensitivity, and β cells functioning) and levels of free radicals were significantly altered in the diabetic control group in comparison to intact control. Nafronyl administration showed significant ameliorations in HOMA indices as well as antioxidant levels. Based on the results, it can be concluded that nafronyl efficiently interacts with target enzymes, which may result in potent inhibition and ameliorations in retinal histology as well as glucose homeostasis and antioxidants.

通过靶向抑制关键酶,萘呋胺对糖尿病视网膜病变具有保护作用。
糖尿病视网膜病变受细胞凋亡异常、毛细血管压力升高和其他相关病理因素的影响,需要通过多靶点方法进行有效治疗。因此,目前的研究旨在通过硅学和体内研究,探索所选化合物(萘甲酰基或萘替呋瑞)抑制靶向酶(DPP4、ACE-2 和醛糖还原酶)的潜力和清除自由基的能力。在醛缩酶还原酶、血管紧张素 1 型受体和 DPP4 的复合物中观察到,萘呋胺和西他列汀的结合能大于-7.5 kcal/mol。分子力学泊松-波尔兹曼表面积(MMPBSA)计算进一步验证了自由能,PCA(主成分分析)检验了构象稳定性。此外,瑞士 ADME 网络工具还对药物相似性进行了检测,结果显示了重要的发现。因此,体内实验显示视网膜内层丛膜(内缘膜、神经纤维和神经节细胞)、内核层(双极细胞和水平细胞)和感光细胞出现了明显的炎症和改变。而纳福尼尔和西他列汀治疗可显著改善视网膜的组织结构。此外,与完整对照组相比,糖尿病对照组的 HOMA 指数(IR-胰岛素抵抗、敏感性和 β 细胞功能)和自由基水平发生了显著变化。服用纳福尼尔后,HOMA 指数和抗氧化剂水平均有明显改善。根据研究结果,可以得出结论:萘福宁能有效地与目标酶相互作用,从而对视网膜组织学、葡萄糖稳态和抗氧化剂产生有效的抑制和改善作用。
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来源期刊
Biotechnology and applied biochemistry
Biotechnology and applied biochemistry 工程技术-生化与分子生物学
CiteScore
6.00
自引率
7.10%
发文量
117
审稿时长
3 months
期刊介绍: Published since 1979, Biotechnology and Applied Biochemistry is dedicated to the rapid publication of high quality, significant research at the interface between life sciences and their technological exploitation. The Editors will consider papers for publication based on their novelty and impact as well as their contribution to the advancement of medical biotechnology and industrial biotechnology, covering cutting-edge research in synthetic biology, systems biology, metabolic engineering, bioengineering, biomaterials, biosensing, and nano-biotechnology.
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