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大麻素 CB 受体远端 C 端结构域与大麻素受体相互作用蛋白(CRIP1a/CRIP1b)的分子相互作用。

Molecular Interaction between Distal C-Terminal Domain of the CB Cannabinoid Receptor and Cannabinoid Receptor Interacting Proteins (CRIP1a/CRIP1b).

机构信息

School of Life Sciences , Jawaharlal Nehru University , New Delhi - 110067 , India.

Department of Life Sciences , Bangalore University , Bangalore - 560056 , India.

出版信息

J Chem Inf Model. 2019 Dec 23;59(12):5294-5303. doi: 10.1021/acs.jcim.9b00948. Epub 2019 Dec 10.

DOI:10.1021/acs.jcim.9b00948
PMID:31769975
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7271255/
Abstract

We have investigated the structure of the distal C-terminal domain of the of the CB cannabinoid receptor (CB1R) to study its interactions with CRIP1a and CRIP1b using computational techniques. The amino acid sequence from the distal C-terminal domain of CB1R (G-L) was found to be unique, as it does not share sequence similarity with other protein structures, so the structure was predicted using modeling. The computed model of the distal C-terminal region of CB1R has a helical region between positions 441 and 455. The CRIP1a and CRIP1b were modeled using Rho-GDI 2 as a template. The three-dimensional model of the distal C-terminal domain of the CB1R was docked with both CRIP1a as well as CRIP1b to study the crucial interactions between CB1R and CRIP1a/b. The last nine residues of CB1R (STDTSAEAL) are known to be a CRIP1a/b binding site. The majority of the key interactions were identified in this region, but notable interactions were also observed beyond theses nine residues. The multiple interactions between Thr418 (CB1R) and Asn61 (CRIP1a) as well as Asp430 (CB1R) and Lys76 (CRIP1a) indicate their importance in the CB1R-CRIP1a interaction. In the case of CRIP1b, multiple hydrogen bond interactions between Asn437 (CB1R) and Glu77 (CRIP1b) were observed. These interactions can be critical for CB1R's interaction with CRIP1a/b, and targeting them for further experimental studies can advance information about CRIP1a/b functionality.

摘要

我们研究了大麻素受体 CB1(CB1R)的远端 C 末端结构域的结构,以使用计算技术研究其与 CRIP1a 和 CRIP1b 的相互作用。从 CB1R 的远端 C 末端结构域(G-L)发现的氨基酸序列是独特的,因为它与其他蛋白质结构没有序列相似性,因此使用建模技术对其结构进行预测。计算出的 CB1R 远端 C 末端区域模型在 441 到 455 位之间有一个螺旋区。CRIP1a 和 CRIP1b 则使用 Rho-GDI 2 作为模板进行建模。将 CB1R 远端 C 末端结构域的三维模型与 CRIP1a 和 CRIP1b 对接,以研究 CB1R 和 CRIP1a/b 之间的关键相互作用。已知 CB1R 的最后九个残基(STDTSAEAL)是 CRIP1a/b 的结合位点。在该区域中确定了大多数关键相互作用,但在这些九个残基之外也观察到了显著的相互作用。Thr418(CB1R)和 Asn61(CRIP1a)以及 Asp430(CB1R)和 Lys76(CRIP1a)之间的多重相互作用表明它们在 CB1R-CRIP1a 相互作用中的重要性。对于 CRIP1b,观察到 Asn437(CB1R)和 Glu77(CRIP1b)之间的多个氢键相互作用。这些相互作用可能对 CB1R 与 CRIP1a/b 的相互作用至关重要,针对它们进行进一步的实验研究可以为 CRIP1a/b 的功能提供信息。

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本文引用的文献

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In silico interaction analysis of cannabinoid receptor interacting protein 1b (CRIP1b) - CB1 cannabinoid receptor.大麻素受体相互作用蛋白1b(CRIP1b)与CB1大麻素受体的计算机模拟相互作用分析
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