Use of microphysiometry for analysis of heterologous ion channels expressed in yeast

被引:10
作者
Hahnenberger, KM
Krystal, M
Esposito, K
Tang, WM
Kurtz, S
机构
[1] BRISTOL MYERS SQUIBB PHARMACEUT RES INST,SEATTLE,WA 98121
[2] MOLEC DEVICES CORP,SUNNYVALE,CA 94089
[3] HEWLETT PACKARD CORP,BIOSCI RES & DEV,PALO ALTO,CA 94304
[4] BRISTOL MYERS SQUIBB CO,PHARMACEUT RES INST,DEPT VIROL,WALLINGFORD,CT 06492
关键词
microphysiometry; ion channels; S-cerevisiae; drug screening;
D O I
10.1038/nbt0796-880
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Measurement of extracellular acidification rates by microphysiometry provides a means to analyze the function of ion channels expressed in yeast cells. These measurements depend on the proton pumping action of the H+-ATPase, a central component of the yeast plasma membrane. We used microphysiometry to analyze the activity of two ion channels expressed in yeast. In one example, an inwardly rectifying K+ channel, gpIRK1, provides a potassium uptake function when expressed in a potassium transporter-defective yeast strain. Rates of acidification in gpIRK1-expressing cells directly reflect channel function. Addition of cesium, an inhibitor of gpIRK1 activity, results in an immediate reduction in acidification rates. In a second example, expression of a nonselective cation channel, the influenza virus M2 protein, is believed to interfere with the maintenance of the electrochemical proton gradient by the H+-ATPase. In cells expressing the M2 channel, addition of inhibitors increases the rate of proton extrusion. Moreover, functional differences between two M2 inhibitors, amantadine and BL-1743, are distinguished by the microphysiometer. This application demonstrates the utility of the microphysiometer for functional studies of ion channels; it is adaptable to a screening process for compounds that modulate ion channel activity.
引用
收藏
页码:880 / 883
页数:4
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