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Effects of arginine 10 to lysine substitution on ω-conotoxin CVIE and CVIF block of Cav2.2 channels

机译:精氨酸10取代赖氨酸对Cav2.2通道ω-芋螺毒素CVIE和CVIF阻滞的影响

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摘要

Background and Purpose: ω-Conotoxins CVIE and CVIF (CVIE&F) selectively inhibit Cav2.2 channels and are lead molecules in the development of novel analgesics. At physiological membrane potentials, CVIE&F block of Cav2.2 channels is weakly reversible. To improve reversibility, we designed and synthesized arginine CVIE&F analogues in which arginine was substituted for lysine at position 10 ([R10K]CVIE&F), and investigated their serum stability and pharmacological actions on voltage-gated calcium channels (VGCCs).\ud\udExperimental Approach: Changes in peptide structure due to R10K substitution were assessed by NMR. Peptide stability in human serum was analysed by reversed-phase HPLC and MS over a 24 h period. Two-electrode voltage-clamp and whole-cell patch clamp techniques were used to study [R10K]CVIE&F effects on VGCC currents in Xenopus oocytes and rat dorsal root ganglion neurons respectively.\ud\udKey Results: R10K substitution did not change the conserved ω-conotoxin backbone conformations of CVIE&F nor the ω-conotoxin selectivity for recombinant or native Cav2.2 channels, although the inhibitory potency of [R10K]CVIF was better than that of CVIF. At −80 mV, the R10K chemical modification significantly affected ω-conotoxin−channel interaction, resulting in faster onset kinetics than those of CVIE&F. Heterologous and native Cav2.2 channels recovered better from [R10K]CVIE&F block than CVIE&F. In human serum, the ω-conotoxin half-lives were 6−10 h. CVIE&F and [R10K]CVIE&F were more stable than CVID.\ud\udConclusions and Implications: R10K substitution in CVIE&F significantly alters the kinetics of ω-conotoxin action and improves reversibility without diminishing conotoxin potency and specificity for the Cav2.2 channel and without diminishing the serum stability. These results may help generate ω-conotoxins with optimized kinetic profiles for target binding.
机译:背景与目的:ω-芋螺毒素CVIE和CVIF(CVIE&F)选择性抑制Cav2.2通道,并且是新型镇痛药开发中的先导分子。在生理膜电位下,Cav2.2通道的CVIE&F阻滞是弱可逆的。为了提高可逆性,我们设计并合成了精氨酸CVIE&F类似物,其中在10位上用精氨酸替代了赖氨酸([R10K] CVIE&F),并研究了它们的血清稳定性和对电压门控钙通道(VGCC)的药理作用。\ ud \ ud实验方法:通过NMR评估由于R10K取代引起的肽结构变化。通过反相HPLC和MS分析24小时内人血清中的肽稳定性。使用双电极电压钳和全细胞膜片钳技术研究[R10K] CVIE&F分别对非洲爪蟾卵母细胞和大鼠背根神经节神经元VGCC电流的影响。\ ud \ ud关键结果:R10K替代并没有改变保守的ω CVIE&F的-conotoxin骨架构象,或对重组或天然Cav2.2通道的ω-conotoxin选择性,尽管[R10K] CVIF的抑制能力比CVIF更好。在-80 mV时,R10K的化学修饰显着影响ω-芋螺毒素-通道的相互作用,从而导致起效动力学比CVIE&F更快。 [R10K] CVIE&F区块比CVIE&F更好地恢复了异源Cav2.2通道。在人血清中,ω-芋螺毒素半衰期为6-10 h。 CVIE&F和[R10K] CVIE&F比CVID稳定。血清稳定性。这些结果可能有助于产生具有最佳动力学特性的ω-芋螺毒素,用于靶标结合。

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