Abstract
Five bacterial species that are most likely to have putative prokaryotic inward rectifier K+ (Kir) channels were selected by in silico sequence homology and membrane topology analyses with respect to the number of transmembrane domains (TMs) and the presence of K+ selectivity filter and/or ATP binding sites in reference to rabbit heart inward rectifier K+ channel (Kir6.2). A dot blot assay with genomic DNAs when probed with whole rabbit Kir6.2 cDNA further supported the in silico analysis by exhibiting a stronger hybridization in species with putative Kir’s compared to one without a Kir. Among them, Chromobacterium violaceum gave rise to a putative Kir channel gene, which was PCR-cloned into the bacterial expression vector pET30b(+), and its expression was induced in Escherichia coli and confirmed by gel purification and immunoblotting. On the other hand, this putative bacterial Kir channel was functionally expressed inXenopus oocytes and its channel activity was measured electrophysiologically by using two electrode voltage
clamping (TEVC). Results revealed a K+ current with characteristics similar to those of the ATP-sensitive K+ (K-ATP) channel. Collectively, cloning and functional characterization of bacterial ion channels could be greatly facilitated by combining the in silico analysis and heterologous expression in Xenopus oocytes.
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Philosophical Transactions of the Royal Society B: Biological Sciences.2016; 371(1700): 20150419. CrossRef - Family of prokaryote cyclic nucleotide-modulated ion channels
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Proceedings of the National Academy of Sciences.2014; 111(21): 7855. CrossRef - Biology of purinergic signalling: Its ancient evolutionary roots, its omnipresence and its multiple functional significance
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BioEssays.2014; 36(7): 697. CrossRef - The Xenopus Oocyte: A Single-Cell Model for Studying Ca2+ Signaling
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Cold Spring Harbor Protocols.2013; 2013(3): pdb.top066308. CrossRef - Expression and characterization of the bacterial mechanosensitive channel MscS in Xenopus laevis oocytes
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Journal of General Physiology.2011; 138(6): 641. CrossRef