Topology mapping to characterize cyanobacterial bicarbonate transporters: BicA (SulP/SLC26 family) and SbtA.

Q3 Biochemistry, Genetics and Molecular Biology Molecular Membrane Biology Pub Date : 2014-09-01 DOI:10.3109/09687688.2014.953222
G Dean Price, Susan M Howitt
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引用次数: 11

Abstract

This mini-review addresses advances in understanding the transmembrane topologies of two unrelated, single-subunit bicarbonate transporters from cyanobacteria, namely BicA and SbtA. BicA is a Na(+)-dependent bicarbonate transporter that belongs to the SulP/SLC26 family that is widespread in both eukaryotes and prokaryotes. Topology mapping of BicA via the phoA/lacZ fusion reporter method identified 12 transmembrane helices with an unresolved hydrophobic region just beyond helix 8. Re-interpreting this data in the light of a recent topology study on rat prestin leads to a consensus topology of 14 transmembrane domains with a 7+7 inverted repeat structure. SbtA is also a Na(+)-dependent bicarbonate transporter, but of considerably higher affinity (Km 2-5 μM versus >100 μM for BicA). Whilst SbtA is widespread in cyanobacteria and a few bacteria, it appears to be absent from eukaryotes. Topology mapping of SbtA via the phoA/lacZ fusion reporter method identified 10 transmembrane helices. The topology consists of a 5+5 inverted repeat, with the two repeats separated by a large intracellular loop. The unusual location of the N and C-termini outside the cell raises the possibility that SbtA forms a novel fold, not so far identified by structural and topological studies on transport proteins.

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表征蓝藻碳酸氢盐转运体的拓扑映射:BicA (SulP/SLC26家族)和SbtA。
这篇小型综述解决了了解来自蓝藻菌的两个不相关的单亚基碳酸氢盐转运体的跨膜拓扑结构的进展,即BicA和SbtA。BicA是一种Na(+)依赖的碳酸氢盐转运体,属于SulP/SLC26家族,广泛存在于真核生物和原核生物中。通过phoA/lacZ融合报告方法对BicA进行拓扑映射,确定了12个跨膜螺旋,在螺旋8之外有一个未解决的疏水区域。根据最近对大鼠prestin的拓扑研究重新解释这些数据,导致14个跨膜结构域具有7+7反向重复结构的共识拓扑。SbtA也是一种Na(+)依赖性的碳酸氢盐转运体,但其亲和力要高得多(Km 2-5 μM,而BicA的亲和力>100 μM)。虽然SbtA在蓝藻和一些细菌中广泛存在,但它似乎不在真核生物中。通过phoA/lacZ融合报告方法对SbtA进行拓扑映射,鉴定出10个跨膜螺旋。拓扑结构由一个5+5反向重复组成,两个重复被一个大的细胞内环分开。细胞外N端和c端不寻常的位置提高了SbtA形成新折叠的可能性,迄今为止尚未被运输蛋白的结构和拓扑研究发现。
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来源期刊
Molecular Membrane Biology
Molecular Membrane Biology 生物-生化与分子生物学
CiteScore
4.80
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Cessation. Molecular Membrane Biology provides a forum for high quality research that serves to advance knowledge in molecular aspects of biological membrane structure and function. The journal welcomes submissions of original research papers and reviews in the following areas: • Membrane receptors and signalling • Membrane transporters, pores and channels • Synthesis and structure of membrane proteins • Membrane translocation and targeting • Lipid organisation and asymmetry • Model membranes • Membrane trafficking • Cytoskeletal and extracellular membrane interactions • Cell adhesion and intercellular interactions • Molecular dynamics and molecular modelling of membranes. • Antimicrobial peptides.
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