Cheng J, Hicks D B, Krulwich T A
Department of Biochemistry, Mount Sinai School of Medicine, City University of New York, New York 10029, USA.
Proc Natl Acad Sci U S A. 1996 Dec 10;93(25):14446-51. doi: 10.1073/pnas.93.25.14446.
Recent work has suggested that the chromosomally encoded TetA(L) transporter of Bacillus subtilis, for which no physiological function had been shown earlier, not only confers resistance to low concentrations of tetracycline but is also a multifunctional antiporter protein that has dominant roles in both Na(+)- and K(+)-dependent pH homeostasis and in Na+ resistance during growth at alkaline pH. To rigorously test this hypothesis, TetA(L) has been purified with a hexahistidine tag at its C terminus and reconstituted into proteoliposomes. The TetA(L)-hexahistidine proteoliposomes exhibit high activities of tetracycline-cobalt/H+, Na+/ H+, and K+/H+ antiport in an assay in which an outwardly directed proton gradient is artificially imposed and solute uptake is monitored. Tetracycline uptake depends on the presence of cobalt and vice versa, with the cosubstrates being transported in a 1:1 ratio. Evidence for the electrogenicity of both tetracycline-cobalt/H+ and Na+/H+ antiports is presented. K+ and Li+ inhibit Na+ uptake, but there is little cross-inhibition between Na+ and tetracycline-cobalt uptake activities. The results strongly support the conclusion that TetA(L) is a multifunctional antiporter. They expand the roster of such porters to encompass one with a complex organic substrate and monovalent cation substrates that may have distinct binding domains, and provide the first functional reconstitution of a member of the 14-transmembrane segment transporter family.
近期的研究表明,枯草芽孢杆菌的染色体编码的TetA(L)转运蛋白,此前未显示出其生理功能,它不仅赋予对低浓度四环素的抗性,还是一种多功能反向转运蛋白,在依赖Na⁺和K⁺的pH稳态以及碱性pH条件下生长时的Na⁺抗性中均起主要作用。为了严格验证这一假设,已在其C末端用六组氨酸标签纯化了TetA(L),并将其重组到蛋白脂质体中。在人为施加外向质子梯度并监测溶质摄取的测定中,TetA(L)-六组氨酸蛋白脂质体表现出高活性的四环素-钴/H⁺、Na⁺/H⁺和K⁺/H⁺反向转运。四环素摄取取决于钴的存在,反之亦然,共底物以1:1的比例转运。提供了四环素-钴/H⁺和Na⁺/H⁺反向转运的电生性证据。K⁺和Li⁺抑制Na⁺摄取,但Na⁺和四环素-钴摄取活性之间几乎没有交叉抑制。结果有力地支持了TetA(L)是多功能反向转运蛋白的结论。它们扩大了此类转运蛋白的范围,使其包括一种具有复杂有机底物和单价阳离子底物的转运蛋白,这些底物可能具有不同的结合结构域,并首次对14跨膜段转运蛋白家族的成员进行了功能重组。