A structural analysis of the splice-specific functional impact of the pathogenic familial hemiplegic migraine type 1 S218L mutation on Cav2.1 P/Q-type channel gating.

IF 3.3 3区 医学 Q2 NEUROSCIENCES Molecular Brain Pub Date : 2024-11-20 DOI:10.1186/s13041-024-01152-z
Anne-Sophie Sack, Gennerick J Samera, Anna Hissen, Robert J Wester, Esperanza Garcia, Paul J Adams, Terrance P Snutch
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Abstract

P/Q-type (Cav2.1) calcium channels mediate Ca2+ influx essential for neuronal excitability and synaptic transmission. The CACNA1A gene, encoding the Cav2.1 pore forming subunit, is highly expressed throughout the mammalian central nervous system. Alternative splicing of Cav2.1 pre-mRNA generates diverse channel isoforms with distinct biophysical properties and drug affinities, which are differentially expressed in nerve tissues. Splicing variants can also affect channel function under pathological conditions although their phenotypic implication concerning inherited neurological disorders linked to CACNA1A mutations remains unknown. Here, we quantified the expression of Cav2.1 exon 24 (e24) spliced transcripts in human nervous system samples, finding different levels of expression within discrete regions. The corresponding Cav2.1 variants, differing by the presence (+) or absence (Δ) of Ser-Ser-Thr-Arg residues (SSTR) in the domain III S3-S4 linker, were functionally characterized using patch clamp recordings. Further, the + /ΔSSTR isoforms were used to demonstrate the differential impact of the Familial Hemiplegic Migraine Type 1 (FHM-1) S218L mutation, located in the domain I S4-S5 linker, on the molecular structure and electrophysiological properties of Cav2.1 isoforms. S218L has a prominent effect on the voltage-dependence of activation of +SSTR channels when compared to ΔSSTR, indicating a differential effect of the mutation depending on splice-variant context. Structural modeling based upon Cav2.1 cryo-EM data provided further insight reflecting independent contributions of amino acids in distant regions of the channel on gating properties. Our modelling indicates that by increasing hydrophobicity the Leu218 mutation contributes to stabilizing a structural conformation in which the domain I S4-S5 linker is oriented alongside the inner plasma membrane, similar to that occurring when S4 is translocated upon activation.The SSTR insertion appears to exert an influence in the local electric field of domain III due to an change in the distribution of positively charged regions surrounding the voltage sensing domain, which we hypothesize impacts its movement during the transition to the open state. In summary, we reveal molecular changes correlated with distinct functional effects provoked by S218L FHM-1 mutation in hCav2.1 splice isoforms whose differential expression could impact the manifestation of the neurological disorder.

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致病性家族性偏瘫偏头痛 1 型 S218L 突变对 Cav2.1 P/Q 型通道门控的剪接特异性功能影响的结构分析。
P/Q 型(Cav2.1)钙通道介导神经元兴奋性和突触传递所必需的 Ca2+ 流入。编码 Cav2.1 孔形成亚基的 CACNA1A 基因在整个哺乳动物中枢神经系统中高度表达。Cav2.1 前核糖核酸的交替剪接产生了不同的通道异构体,它们具有不同的生物物理特性和药物亲和性,在神经组织中的表达也各不相同。剪接变体在病理条件下也会影响通道功能,但它们对与 CACNA1A 突变相关的遗传性神经系统疾病的表型影响仍然未知。在这里,我们对人类神经系统样本中 Cav2.1 第 24 号外显子(e24)剪接转录本的表达进行了量化,发现在离散区域内有不同的表达水平。相应的 Cav2.1 变体因在结构域 III S3-S4 连接器中存在(+)或不存在(Δ)Ser-Ser-Thr-Arg 残基(SSTR)而不同,我们利用膜片钳记录对其进行了功能表征。此外,还利用 + /ΔSSTR 异构体证明了位于结构域 I S4-S5 连接器的家族性偏瘫偏头痛 1 型(FHM-1)S218L 突变对 Cav2.1 异构体的分子结构和电生理特性的不同影响。与ΔSSTR相比,S218L对+SSTR通道激活的电压依赖性有显著影响,这表明该突变的不同影响取决于剪接变异背景。基于 Cav2.1 Cryo-EM 数据的结构建模提供了进一步的见解,反映了通道远端区域的氨基酸对门控特性的独立贡献。我们的建模表明,通过增加疏水性,Leu218 突变有助于稳定结构构象,在这种构象中,结构域 I 的 S4-S5 连接器与内质膜平行,这与 S4 在激活时发生转移时的情况类似。总之,我们揭示了与 S218L FHM-1 突变在 hCav2.1 拼接异构体中引发的不同功能效应相关的分子变化,这些异构体的不同表达可能会影响神经系统疾病的表现。
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来源期刊
Molecular Brain
Molecular Brain NEUROSCIENCES-
CiteScore
7.30
自引率
0.00%
发文量
97
审稿时长
>12 weeks
期刊介绍: Molecular Brain is an open access, peer-reviewed journal that considers manuscripts on all aspects of studies on the nervous system at the molecular, cellular, and systems level providing a forum for scientists to communicate their findings. Molecular brain research is a rapidly expanding research field in which integrative approaches at the genetic, molecular, cellular and synaptic levels yield key information about the physiological and pathological brain. These studies involve the use of a wide range of modern techniques in molecular biology, genomics, proteomics, imaging and electrophysiology.
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