Key result
An alternative method of incorporating a synthetic minK transmembrane peptide into phospholipid membranes revealed a predominantly alpha-helical conformation, avoiding aggregation artifacts.
The putative transmembrane region of the minK potassium channel protein adopts an alpha-helical conformation in phospholipid membranes when aggregation artifacts during incorporation are avoided.
Does not inform arrhythmia management; extends structural models of cardiac K+ channels but requires in vivo validation.
Minimal potassium channel protein (minK) is a potassium channel protein consisting of 130 amino acids, possessing just one putative transmembrane domain. In this study we have synthesized a peptide with the amino acid sequence RDDSKLEALYILMVLGFFGFFTLGIMLSYI, containing the putative transmembrane region of minK, and analysed its secondary structure by using Fourier-transform IR and CD spectroscopy. The peptide was virtually insoluble in aqueous buffer, forming intermolecular beta-sheet aggregates. On attempted incorporation of the peptide into phospholipid membranes with a method involving dialysis, the peptide adopted a predominantly intermolecular beta-sheet conformation identical with that of the peptide in aqueous buffer, in agreement with a previous report [Horvàth, Heimburg, Kovachev, Findlay, Hideg and Marsh, (1995) Biochemistry 34, 3893-3898]. However, by using an alternative method of incorporating the peptide into phospholipid membranes we found that the peptide adopted a predominantly alpha-helical conformation, a finding consistent with various proposed structural models. These observed differences in secondary structure are due to artifacts of aggregation of the peptide before incorporation into lipid.
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MERCER et al. (1997) studied this question. Synthetic peptide containing putative transmembrane region of minK was evaluated on Secondary structure of the peptide. An alternative method of incorporating a synthetic minK transmembrane peptide into phospholipid membranes revealed a predominantly alpha-helical conformation, avoiding aggregation artifacts.
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