Pourrier M, Schram G, Nattel S
Research Center, Montreal Heart Institute, Montreal, Quebec, Canada H1T 1C8.
J Membr Biol. 2003 Aug 1;194(3):141-52. doi: 10.1007/s00232-003-2034-8.
Over the past 10 years, cDNAs encoding a wide range of pore-forming K(+)-channel alpha-subunits have been cloned and found to result in currents with many properties of endogenous cardiac K(+) channels upon homomeric expression in heterologous systems. However, a variety of remaining discrepancies have led to a search for other subunits that might be involved in the formation of native channels. Over the past few years, a series of accessory subunits has been discovered that modify current properties upon coexpression with alpha-subunits. One of these, the minimal K(+)-channel subunit minK, is essential for formation of the cardiac slow delayed-rectifier K(+) current, I(Ks), and may also interact in functionally important ways with other alpha-subunits. Another, the K(+)-channel interacting protein KChIP appears critical in formation of native transient outward current (I(to)) channels. The roles of 2 other accessory subunits, the minK-related peptide MiRP and the K(+)-channel accessory protein, KChAP, remain unclear. This article reviews the available knowledge regarding the accessory subunits minK, MiRP, KChIP and KChAP, dealing with their structure, effects on currents carried by coexpressed alpha-subunits, expression in cardiac tissues and potential physiological function. On the basis of the available information, we attempt to assess the potential involvement of these accessory K(+)-channel subunits in cardiac pathophysiology and in developing new therapeutic approaches.
在过去10年里,编码多种形成孔道的钾离子通道α亚基的互补DNA(cDNA)已被克隆出来,并且发现当在异源系统中进行同源表达时,这些cDNA会产生具有许多内源性心脏钾离子通道特性的电流。然而,各种遗留的差异促使人们寻找可能参与天然通道形成的其他亚基。在过去几年里,已发现一系列辅助亚基,它们在与α亚基共表达时会改变电流特性。其中之一,即最小钾离子通道亚基minK,对于心脏缓慢延迟整流钾电流I(Ks)的形成至关重要,并且可能还会以功能上重要的方式与其他α亚基相互作用。另一个,钾离子通道相互作用蛋白KChIP,在天然瞬时外向电流(I(to))通道的形成中似乎至关重要。另外两个辅助亚基,即与minK相关的肽MiRP和钾离子通道辅助蛋白KChAP的作用仍不清楚。本文综述了关于辅助亚基minK、MiRP、KChIP和KChAP的现有知识,涉及它们的结构、对共表达的α亚基所携带电流的影响、在心脏组织中的表达以及潜在的生理功能。基于现有信息,我们试图评估这些钾离子通道辅助亚基在心脏病理生理学以及开发新治疗方法中的潜在参与情况。