突变对新嵌合reteplase神经毒性降低影响的计算研究。

IF 2.1 Q3 CHEMISTRY, MEDICINAL
Pardis Mohammadi Pour, Karim Mahnam, Mahsa Taherzadeh, Shahrzad Ahangarzadeh, Abbas Alibakhshi, Elmira Mohammadi
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引用次数: 0

摘要

背景和目的:神经细胞兴奋性毒性是一种过度刺激受体(如n -甲基-d-天冬氨酸受体(NMDAR))导致高水平钙离子流入细胞并最终导致细胞损伤或死亡的神经毒性。这种并发症可在服用一些纤溶酶原激活剂如组织纤溶酶原激活剂和复酶后发生。这种纤溶酶原激活物中的kringle2结构域与NMDAR的NR1亚基的氨基末端结构域(ATD)的相互作用最终导致兴奋性毒性。本研究评估了kringle2结构域突变的两种新的嵌合酶与ATD的相互作用,并计算比较了野生型酶与ATD的相互作用。实验方法:采用同源性建模、蛋白对接、分子动力学模拟、分子动力学轨迹分析等方法评估这种相互作用。结果:reteplase与ATD的自由能分析(野生型reteplase: -2127.516±0.0,M1-chr: -1761.510±0.0,M2-chr: -521.908±0.0)表明,该嵌合reteplase与ATD的相互作用较野生型低。结论与意义:两种嵌合reteplase与NMDAR中NR1亚基ATD的相互作用减弱,导致这些药物的神经毒性降低,这可能是进行更多试验的开始,如果结果证实了这一特征,则可以考虑将其作为治疗急性缺血性卒中的潜在药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The effect of mutation on neurotoxicity reduction of new chimeric reteplase, a computational study.

The effect of mutation on neurotoxicity reduction of new chimeric reteplase, a computational study.

The effect of mutation on neurotoxicity reduction of new chimeric reteplase, a computational study.

The effect of mutation on neurotoxicity reduction of new chimeric reteplase, a computational study.

Background and purpose: Excitotoxicity in nerve cells is a type of neurotoxicity in which excessive stimulation of receptors (such as N-methyl-d-aspartate glutamate receptors (NMDAR)) leads to the influx of high-level calcium ions into cells and finally cell damage or death. This complication can occur after taking some of the plasminogen activators like tissue plasminogen activator and reteplase. The interaction of the kringle2 domain in such plasminogen activator with the amino-terminal domain (ATD) of the NR1 subunit of NMDAR finally leads to excitotoxicity. In this study, we assessed the interaction of two new chimeric reteplase, mutated in the kringle2 domain, with ATD and compared the interaction of wild-type reteplase with ATD, computationally.

Experimental approach: Homology modeling, protein docking, molecular dynamic simulation, and molecular dynamics trajectory analysis were used for the assessment of this interaction.

Findings/results: The results of the free energy analysis between reteplase and ATD (wild reteplase: -2127.516 ± 0.0, M1-chr: -1761.510 ± 0.0, M2-chr: -521.908 ± 0.0) showed lower interaction of this chimeric reteplase with ATD compared to the wild type.

Conclusion and implications: The decreased interaction between two chimeric reteplase and ATD of NR1 subunit in NMDAR which leads to lower neurotoxicity related to these drugs, can be the start of a way to conduct more tests and if the results confirm this feature, they can be considered potential drugs in acute ischemic stroke treatment.

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来源期刊
Research in Pharmaceutical Sciences
Research in Pharmaceutical Sciences CHEMISTRY, MEDICINAL-
CiteScore
3.60
自引率
19.00%
发文量
50
审稿时长
34 weeks
期刊介绍: Research in Pharmaceutical Sciences (RPS) is included in Thomson Reuters ESCI Web of Science (searchable at WoS master journal list), indexed with PubMed and PubMed Central and abstracted in the Elsevier Bibliographic Databases. Databases include Scopus, EMBASE, EMCare, EMBiology and Elsevier BIOBASE. It is also indexed in several specialized databases including Scientific Information Database (SID), Google Scholar, Iran Medex, Magiran, Index Copernicus (IC) and Islamic World Science Citation Center (ISC).
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