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本文引用的文献

1
Structural insights into substrate recognition in proton-dependent oligopeptide transporters.质子依赖型寡肽转运体底物识别的结构见解。
EMBO Rep. 2013 Sep;14(9):804-10. doi: 10.1038/embor.2013.107. Epub 2013 Jul 19.
2
Mechanistic explanation of different unfolding behaviors observed for transmembrane and soluble β-barrel proteins.跨膜和可溶性β桶状蛋白观察到的不同展开行为的机制解释。
Structure. 2013 Aug 6;21(8):1317-24. doi: 10.1016/j.str.2013.06.001. Epub 2013 Jul 3.
3
Structural basis for dynamic mechanism of proton-coupled symport by the peptide transporter POT.质子共转运协同转运蛋白 POT 的动态机制的结构基础
Proc Natl Acad Sci U S A. 2013 Jul 9;110(28):11343-8. doi: 10.1073/pnas.1301079110. Epub 2013 Jun 24.
4
Kinetic, energetic, and mechanical differences between dark-state rhodopsin and opsin.暗态视蛋白与视黄醛之间的动力学、能量学和力学差异。
Structure. 2013 Mar 5;21(3):426-37. doi: 10.1016/j.str.2013.01.011. Epub 2013 Feb 21.
5
Cholesterol increases kinetic, energetic, and mechanical stability of the human β2-adrenergic receptor.胆固醇增加了人β2-肾上腺素能受体的动力学、能量学和机械稳定性。
Proc Natl Acad Sci U S A. 2012 Dec 11;109(50):E3463-72. doi: 10.1073/pnas.1210373109. Epub 2012 Nov 14.
6
Probing the putative active site of YjdL: an unusual proton-coupled oligopeptide transporter from E. coli.探究 YjdL 的假定活性位点:一种来自大肠杆菌的不寻常的质子偶联寡肽转运蛋白。
PLoS One. 2012;7(10):e47780. doi: 10.1371/journal.pone.0047780. Epub 2012 Oct 22.
7
Biophysical characterization of the proton-coupled oligopeptide transporter YjdL.质子偶联寡肽转运蛋白 YjdL 的生物物理特性分析。
Peptides. 2012 Nov;38(1):89-93. doi: 10.1016/j.peptides.2012.08.012. Epub 2012 Aug 23.
8
Ligand-specific interactions modulate kinetic, energetic, and mechanical properties of the human β2 adrenergic receptor.配体特异性相互作用调节人β2 肾上腺素能受体的动力学、能量和机械特性。
Structure. 2012 Aug 8;20(8):1391-402. doi: 10.1016/j.str.2012.05.010. Epub 2012 Jun 28.
9
Alternating access mechanism in the POT family of oligopeptide transporters.POT 家族寡肽转运体的交替访问机制。
EMBO J. 2012 Aug 15;31(16):3411-21. doi: 10.1038/emboj.2012.157. Epub 2012 Jun 1.
10
Structural, energetic, and mechanical perturbations in rhodopsin mutant that causes congenital stationary night blindness.导致先天性静止性夜盲症的视紫红质突变体的结构、能量和力学扰动。
J Biol Chem. 2012 Jun 22;287(26):21826-35. doi: 10.1074/jbc.M112.340182. Epub 2012 May 1.

肽转运蛋白 DtpA 有两种交替构象,其中一种构象受抑制剂结合促进。

Peptide transporter DtpA has two alternate conformations, one of which is promoted by inhibitor binding.

机构信息

Department of Biosystems Science and Engineering, Eidgenössische Technische Hochschule Zürich, 4058 Basel, Switzerland.

出版信息

Proc Natl Acad Sci U S A. 2013 Oct 15;110(42):E3978-86. doi: 10.1073/pnas.1312959110. Epub 2013 Sep 30.

DOI:10.1073/pnas.1312959110
PMID:24082128
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3801073/
Abstract

Peptide transporters (PTRs) of the large PTR family facilitate the uptake of di- and tripeptides to provide cells with amino acids for protein synthesis and for metabolic intermediates. Although several PTRs have been structurally and functionally characterized, how drugs modulate peptide transport remains unclear. To obtain insight into this mechanism, we characterize inhibitor binding to the Escherichia coli PTR dipeptide and tripeptide permease A (DtpA), which shows substrate specificities similar to its human homolog hPEPT1. After demonstrating that Lys[Z-NO2]-Val, the strongest inhibitor of hPEPT1, also acts as a high-affinity inhibitor for DtpA, we used single-molecule force spectroscopy to localize the structural segments stabilizing the peptide transporter and investigated which of these structural segments change stability upon inhibitor binding. This characterization was done with DtpA embedded in the lipid membrane and exposed to physiologically relevant conditions. In the unbound state, DtpA adopts two main alternate conformations in which transmembrane α-helix (TMH) 2 is either stabilized (in ∼43% of DtpA molecules) or not (in ∼57% of DtpA molecules). The two conformations are understood to represent the inward- and outward-facing conformational states of the transporter. With increasing inhibitor concentration, the conformation characterized by a stabilized TMH 2 becomes increasingly prevalent, reaching ∼92% at saturation. Our measurements further suggest that Lys[Z-NO2]-Val interacts with discrete residues in TMH 2 that are important for ligand binding and substrate affinity. These interactions in turn stabilize TMH 2, thereby promoting the inhibited conformation of DtpA.

摘要

肽转运蛋白(PTRs)家族中的大型 PTR 家族促进二肽和三肽的摄取,为细胞提供用于蛋白质合成和代谢中间产物的氨基酸。尽管已经对几种 PTR 进行了结构和功能表征,但药物如何调节肽转运仍不清楚。为了深入了解这一机制,我们对大肠杆菌 PTR 二肽和三肽通透酶 A(DtpA)的抑制剂结合进行了表征,该蛋白与人类同源物 hPEPT1 具有相似的底物特异性。在证明 Lys[Z-NO2]-Val,即 hPEPT1 的最强抑制剂,也作为 DtpA 的高亲和力抑制剂起作用后,我们使用单分子力谱技术定位稳定肽转运蛋白的结构片段,并研究了这些结构片段在抑制剂结合时哪个发生稳定性变化。这项表征是在嵌入脂质膜并暴露于生理相关条件下的 DtpA 中进行的。在未结合状态下,DtpA 采用两种主要的交替构象,其中跨膜α螺旋(TMH)2 要么稳定(在约 43%的 DtpA 分子中),要么不稳定(在约 57%的 DtpA 分子中)。这两种构象被理解为代表转运体的内向和外向构象状态。随着抑制剂浓度的增加,稳定 TMH 2 的构象变得越来越普遍,在饱和时达到约 92%。我们的测量结果进一步表明,Lys[Z-NO2]-Val 与 TMH 2 中对配体结合和底物亲和力很重要的离散残基相互作用。这些相互作用反过来又稳定了 TMH 2,从而促进了 DtpA 的抑制构象。