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mutational analyses reveal different ligand-binding abilities of double pockets of medaka fish taste receptor type 1 essential for efficient taste recognition.突变分析揭示了对高效味觉识别至关重要的日本青鳉鱼味觉受体 1 的双口袋的不同配体结合能力。
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Chemical range recognized by the ligand-binding domain in a representative amino acid-sensing taste receptor, T1r2a/T1r3, from medaka fish.代表性氨基酸感受味觉受体 T1r2a/T1r3 中配体结合域所识别的化学范围来自于斑马鱼。
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2
Chloride ions evoke taste sensations by binding to the extracellular ligand-binding domain of sweet/umami taste receptors.氯离子通过与甜/鲜味味觉受体的细胞外配体结合域结合来引发味觉感受。
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3
Biophysical and functional characterization of the human TAS1R2 sweet taste receptor overexpressed in a HEK293S inducible cell line.在诱导型 HEK293S 细胞系中过表达的人 TAS1R2 甜味受体的生物物理和功能表征。
Sci Rep. 2021 Nov 15;11(1):22238. doi: 10.1038/s41598-021-01731-3.
4
Differential scanning fluorimetric analysis of the amino-acid binding to taste receptor using a model receptor protein, the ligand-binding domain of fish T1r2a/T1r3.采用鱼 T1r2a/T1r3 的配体结合域作为模型受体蛋白,对味觉受体的氨基酸结合进行差示扫描荧光分析。
PLoS One. 2019 Oct 4;14(10):e0218909. doi: 10.1371/journal.pone.0218909. eCollection 2019.

本文引用的文献

1
Structural basis for perception of diverse chemical substances by T1r taste receptors.T1r 味觉受体感知多种化学物质的结构基础。
Nat Commun. 2017 May 23;8:15530. doi: 10.1038/ncomms15530.
2
Cellular growth defects triggered by an overload of protein localization processes.细胞生长缺陷是由蛋白质定位过程过载引发的。
Sci Rep. 2016 Aug 19;6:31774. doi: 10.1038/srep31774.
3
Taste substance binding elicits conformational change of taste receptor T1r heterodimer extracellular domains.味觉物质结合引发味觉受体T1r异二聚体细胞外结构域的构象变化。
Sci Rep. 2016 May 10;6:25745. doi: 10.1038/srep25745.
4
Site-specific integration in CHO cells mediated by CRISPR/Cas9 and homology-directed DNA repair pathway.由CRISPR/Cas9和同源定向DNA修复途径介导的CHO细胞中的位点特异性整合。
Sci Rep. 2015 Feb 25;5:8572. doi: 10.1038/srep08572.
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Over-expression of secreted proteins from mammalian cell lines.哺乳动物细胞系中分泌蛋白的过表达。
Protein Sci. 2014 May;23(5):517-25. doi: 10.1002/pro.2439. Epub 2014 Mar 11.
6
Structural mechanism of ligand activation in human GABA(B) receptor.人 GABA(B) 受体配体激活的结构机制。
Nature. 2013 Dec 12;504(7479):254-9. doi: 10.1038/nature12725. Epub 2013 Dec 4.
7
Secretory protein biogenesis and traffic in the early secretory pathway.分泌蛋白的生物发生和早期分泌途径中的运输。
Genetics. 2013 Feb;193(2):383-410. doi: 10.1534/genetics.112.142810.
8
NIH Image to ImageJ: 25 years of image analysis.NIH 图像到 ImageJ:25 年的图像分析。
Nat Methods. 2012 Jul;9(7):671-5. doi: 10.1038/nmeth.2089.
9
Recombinant expression, in vitro refolding, and biophysical characterization of the N-terminal domain of T1R3 taste receptor.T1R3味觉受体N端结构域的重组表达、体外重折叠及生物物理特性分析
Protein Expr Purif. 2012 May;83(1):75-83. doi: 10.1016/j.pep.2012.03.006. Epub 2012 Mar 17.
10
Drosophila melanogaster S2 cells for expression of heterologous genes: From gene cloning to bioprocess development.黑腹果蝇 S2 细胞表达异源基因:从基因克隆到生物工艺开发。
Biotechnol Adv. 2012 May-Jun;30(3):613-28. doi: 10.1016/j.biotechadv.2011.10.009. Epub 2011 Nov 4.

一种利用果蝇S2细胞表达多聚体细胞外蛋白复合物的大规模表达策略及其在味觉受体异二聚体配体结合域重组表达中的应用。

A large-scale expression strategy for multimeric extracellular protein complexes using Drosophila S2 cells and its application to the recombinant expression of heterodimeric ligand-binding domains of taste receptor.

作者信息

Yamashita Atsuko, Nango Eriko, Ashikawa Yuji

机构信息

Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama University, 1-1-1, Tsushima-naka, Kita-ku, Okayama, 700-8530, Japan.

RIKEN SPring-8 Center, 1-1-1, Kouto, Sayo, Hyogo, 679-5148, Japan.

出版信息

Protein Sci. 2017 Nov;26(11):2291-2301. doi: 10.1002/pro.3271. Epub 2017 Sep 6.

DOI:10.1002/pro.3271
PMID:28833672
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5654844/
Abstract

Many of the extracellular proteins or extracellular domains of plasma membrane proteins exist or function as homo- or heteromeric multimer protein complexes. Successful recombinant production of such proteins is often achieved by co-expression of the components using eukaryotic cells via the secretory pathway. Here we report a strategy addressing large-scale expression of hetero-multimeric extracellular domains of plasma membrane proteins and its application to the extracellular domains of a taste receptor. The target receptor consists of a heterodimer of T1r2 and T1r3 proteins, and their extracellular ligand binding domains (LBDs) are responsible for the perception of major taste substances. However, despite the functional importance, recombinant production of the heterodimeric proteins has so far been unsuccessful. We achieved the successful preparation of the heterodimeric LBD by use of Drosophila S2 cells, which have a high secretory capacity, and by the establishment of a stable high-expression clone producing both subunits at a comparable level. The method overcame the problems encountered in the conventional transient expression of the receptor protein in insect cells using baculovirus or vector lipofection, which failed in the proper heterodimer production because of the biased expression of T1r3LBD over T1r2LBD. The large-scale expression methodology reported here may serve as one of the considerable strategies for the preparation of multimeric extracellular protein complexes.

摘要

许多细胞外蛋白或质膜蛋白的细胞外结构域以同源或异源多聚体蛋白复合物的形式存在或发挥功能。此类蛋白的成功重组生产通常是通过真核细胞经分泌途径共表达各组分来实现的。在此,我们报告一种策略,用于解决质膜蛋白异源多聚体细胞外结构域的大规模表达问题,并将其应用于一种味觉受体的细胞外结构域。目标受体由T1r2和T1r3蛋白的异二聚体组成,其细胞外配体结合结构域(LBDs)负责感知主要味觉物质。然而,尽管其功能重要,但迄今为止,异二聚体蛋白的重组生产尚未成功。我们通过使用具有高分泌能力的果蝇S2细胞,并建立一个稳定的高表达克隆,使两个亚基以相当的水平产生,从而成功制备了异二聚体LBD。该方法克服了在昆虫细胞中使用杆状病毒或载体脂质转染进行受体蛋白常规瞬时表达时遇到的问题,由于T1r3LBD相对于T1r2LBD的偏向性表达,导致无法正确产生异二聚体。本文报道的大规模表达方法可能是制备多聚体细胞外蛋白复合物的重要策略之一。