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通过基因中心同工型图谱的计算分析鉴定谷氨酸转运体寡聚化的截断同工型的抑制潜力。

Inhibitory Potential of the Truncated Isoforms on Glutamate Transporter Oligomerization Identified by Computational Analysis of Gene-Centric Isoform Maps.

机构信息

Istanbul University Istanbul Medical Faculty, Istanbul, Turkey.

State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic and Developmental Sciences, and School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, 200240, China.

出版信息

Pharm Res. 2024 Nov;41(11):2173-2187. doi: 10.1007/s11095-024-03786-z. Epub 2024 Nov 1.

Abstract

OBJECTIVE

Glutamate transporters play a key role in central nervous system physiology by maintaining excitatory neurotransmitter homeostasis. Biological assemblies of the transporters, consisting of cyclic homotrimers, emerge as a crucial aspect of glutamate transporter modulation. Hence targeting heteromerization promises an effective approach for modulator design. On the other hand, the dynamic nature of transcription allows for the generation of transporter isoforms in structurally distinct manners.

METHODS

The potential isoforms were identified through the analysis of computationally generated gene-centric isoform maps. The conserved features of isoform sequences were revealed by computational chemistry methods and subsequent structural analysis of AlphaFold2 predictions. Truncated isoforms were further subjected to a wide range of docking analyses, 50ns molecular dynamics simulations, and evolutionary coupling analyses.

RESULTS

Energetic landscapes of isoform-canonical transporter complexes suggested an inhibitory potential of truncated isoforms on glutamate transporter bio-assembly. Moreover, isoforms that mimic the trimerization domain (in particular, TM2 helices) exhibited stronger interactions with canonical transporters, underscoring the role of transmembrane helices in isoform interactions. Additionally, self-assembly dynamics observed in truncated isoforms mimicking canonical TM5 helices indicate a potential protective role against unwanted interactions with canonical transporters.

CONCLUSION

Our computational studies on glutamate transporters offer insights into the roles of alternative splicing on protein interactions and identifies potential drug targets for physiological or pathological processes.

摘要

目的

谷氨酸转运体通过维持兴奋性神经递质的动态平衡,在中枢神经系统生理学中发挥关键作用。由环状三聚体组成的转运体生物组装体是谷氨酸转运体调节的一个关键方面。因此,靶向异源二聚化有望成为调制器设计的有效方法。另一方面,转录的动态性质允许以结构上不同的方式产生转运体同工型。

方法

通过分析计算生成的基因中心同工型图谱来识别潜在的同工型。通过计算化学方法和随后对 AlphaFold2 预测的结构分析揭示同工型序列的保守特征。然后对截断同工型进行广泛的对接分析、50ns 分子动力学模拟和进化耦联分析。

结果

同工型-经典转运体复合物的能量景观表明截断同工型对谷氨酸转运体生物组装具有抑制潜力。此外,模拟三聚体结构域(特别是 TM2 螺旋)的同工型与经典转运体表现出更强的相互作用,突出了跨膜螺旋在同工型相互作用中的作用。此外,模拟经典 TM5 螺旋的截断同工型中观察到的自组装动力学表明,它们可能具有针对与经典转运体的不期望相互作用的保护作用。

结论

我们对谷氨酸转运体的计算研究提供了对替代剪接在蛋白质相互作用中的作用的深入了解,并确定了生理或病理过程中的潜在药物靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d81/11599315/4b96872143dc/11095_2024_3786_Fig1_HTML.jpg

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