首页> 美国卫生研究院文献>PLoS Clinical Trials >A Cyclic Nucleotide-Gated Channel Mutation Associated with Canine Daylight Blindness Provides Insight into a Role for the S2 Segment Tri-Asp motif in Channel Biogenesis
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A Cyclic Nucleotide-Gated Channel Mutation Associated with Canine Daylight Blindness Provides Insight into a Role for the S2 Segment Tri-Asp motif in Channel Biogenesis

机译:犬日光失明相关的环状核苷酸门控通道突变提供洞察S2段Tri-Asp主题在通道生物发生中的作用。

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摘要

Cone cyclic nucleotide-gated channels are tetramers formed by CNGA3 and CNGB3 subunits; CNGA3 subunits function as homotetrameric channels but CNGB3 exhibits channel function only when co-expressed with CNGA3. An aspartatic acid (Asp) to asparagine (Asn) missense mutation at position 262 in the canine CNGB3 (D262N) subunit results in loss of cone function (daylight blindness), suggesting an important role for this aspartic acid residue in channel biogenesis and/or function. Asp 262 is located in a conserved region of the second transmembrane segment containing three Asp residues designated the Tri-Asp motif. This motif is conserved in all CNG channels. Here we examine mutations in canine CNGA3 homomeric channels using a combination of experimental and computational approaches. Mutations of these conserved Asp residues result in the absence of nucleotide-activated currents in heterologous expression. A fluorescent tag on CNGA3 shows mislocalization of mutant channels. Co-expressing CNGB3 Tri-Asp mutants with wild type CNGA3 results in some functional channels, however, their electrophysiological characterization matches the properties of homomeric CNGA3 channels. This failure to record heteromeric currents suggests that Asp/Asn mutations affect heteromeric subunit assembly. A homology model of S1–S6 of the CNGA3 channel was generated and relaxed in a membrane using molecular dynamics simulations. The model predicts that the Tri-Asp motif is involved in non-specific salt bridge pairings with positive residues of S3/S4. We propose that the D262N mutation in dogs with CNGB3-day blindness results in the loss of these inter-helical interactions altering the electrostatic equilibrium within in the S1–S4 bundle. Because residues analogous to Tri-Asp in the voltage-gated Shaker potassium channel family were implicated in monomer folding, we hypothesize that destabilizing these electrostatic interactions impairs the monomer folding state in D262N mutant CNG channels during biogenesis.
机译:锥环核苷酸门控通道是由CNGA3和CNGB3亚基形成的四聚体; CNGA3亚基起同源四聚体通道的作用,但CNGB3仅在与CNGA3共表达时才显示通道功能。犬CNGB3(D262N)亚基中262位的天冬氨酸(Asp)突变为天冬酰胺(Asn)错义突变导致视锥功能丧失(日盲),这表明该天冬氨酸残基在通道生物发生和/或中起重要作用功能。 Asp 262位于第二跨膜区段的保守区域中,该保守区域包含三个被称为Tri-Asp基序的Asp残基。该图案在所有CNG通道中均保守。在这里,我们使用实验方法和计算方法的组合来检查犬CNGA3同系物通道中的突变。这些保守的Asp残基的突变导致在异源表达中不存在核苷酸激活的电流。 CNGA3上的荧光标签显示突变通道的定位错误。与野生型CNGA3共表达CNGB3 Tri-Asp突变体会产生某些功能通道,但是,其电生理特性与CNGA3同源通道的特性相匹配。未能记录异聚体电流表明Asp / Asn突变影响异聚体亚基组装。使用分子动力学模拟生成了CNGA3通道S1-S6的同源模型,并在膜中松弛了该模型。该模型预测,Tri-Asp基序与具有S3 / S4阳性残基的非特异性盐桥配对有关。我们建议,患有CNGB3天失明的狗的D262N突变会导致这些螺旋间相互作用的丧失,从而改变S1-S4束中的静电平衡。因为在电压门控的Shaker钾离子通道家族中类似于Tri-Asp的残基与单体折叠有关,所以我们假设破坏这些静电相互作用的稳定性会破坏生物发生过程中D262N突变体CNG通道中的单体折叠状态。

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