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Nanospan, an alternatively spliced isoform of sarcospan, localizes to the sarcoplasmic reticulum in skeletal muscle and is absent in limb girdle muscular dystrophy 2F.

机译:Nanospan是一种可选择的sarcospan拼接同种型,定位于骨骼肌的肌浆网,在肢体肌营养不良症2F中不存在。

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摘要

BACKGROUND: Sarcospan (SSPN) is a transmembrane protein that interacts with the sarcoglycans (SGs) to form a tight subcomplex within the dystrophin-glycoprotein complex that spans the sarcolemma and interacts with laminin in the extracellular matrix. Overexpression of SSPN ameliorates Duchenne muscular dystrophy in murine models. ududMETHODS: Standard cloning approaches were used to identify nanospan, and nanospan-specific polyclonal antibodies were generated and validated. Biochemical isolation of skeletal muscle membranes and two-photon laser scanning microscopy were used to analyze nanospan localization in muscle from multiple murine models. Duchenne muscular dystrophy biopsies were analyzed by immunoblot analysis of protein lysates as well as indirect immunofluorescence analysis of muscle cryosections. ududRESULTS: Nanospan is an alternatively spliced isoform of sarcospan. While SSPN has four transmembrane domains and is a core component of the sarcolemmal dystrophin-glycoprotein complex, nanospan is a type II transmembrane protein that does not associate with the dystrophin-glycoprotein complex. We demonstrate that nanospan is enriched in the sarcoplasmic reticulum (SR) fractions and is not present in the T-tubules. SR fractions contain membranes from three distinct structural regions: a region flanking the T-tubules (triadic SR), a SR region across the Z-line (ZSR), and a longitudinal SR region across the M-line (LSR). Analysis of isolated murine muscles reveals that nanospan is mostly associated with the ZSR and triadic SR, and only minimally with the LSR. Furthermore, nanospan is absent from the SR of δ-SG-null (Sgcd(-/-)) skeletal muscle, a murine model for limb girdle muscular dystrophy 2F. Analysis of skeletal muscle biopsies from Duchenne muscular dystrophy patients reveals that nanospan is preferentially expressed in type I (slow) fibers in both control and Duchenne samples. Furthermore, nanospan is significantly reduced in Duchenne biopsies. ududCONCLUSIONS: Alternative splicing of proteins from the SG-SSPN complex produces δ-SG3, microspan, and nanospan that localize to the ZSR and the triadic SR, where they may play a role in regulating resting calcium levels as supported by previous studies (Estrada et al., Biochem Biophys Res Commun 340:865-71, 2006). Thus, alternative splicing of SSPN mRNA generates three protein isoforms (SSPN, microspan, and nanospan) that differ in the number of transmembrane domains affecting subcellular membrane association into distinct protein complexes.
机译:背景:肌膜蛋白(SSPN)是一种跨膜蛋白,可与肌糖蛋白(SGs)相互作用,在肌营养不良蛋白-糖蛋白复合物中形成一个紧密的亚复合物,该复合物跨越肌膜并与细胞外基质中的层粘连蛋白相互作用。 SSPN的过表达改善了鼠模型中的杜氏肌营养不良。方法:使用标准克隆方法鉴定纳跨度,并生成并验证了纳跨特异性多克隆抗体。骨骼肌膜的生化分离和双光子激光扫描显微镜用于分析来自多个鼠模型的肌肉中的纳跨定位。通过蛋白裂解物的免疫印迹分析以及肌肉冰冻切片的间接免疫荧光分析法对杜氏肌营养不良症的活检进行了分析。结果:Nanospan是肌节的另一种剪接同工型。 SSPN具有四个跨膜结构域,是肌膜肌营养不良蛋白-糖蛋白复合物的核心成分,而纳跨是II型跨膜蛋白,与肌营养不良蛋白-糖蛋白复合物不相关。我们证明纳跨富含肌质网(SR)的分数,并且不存在于T管中。 SR馏分包含来自三个不同结构区域的膜:位于T形管两侧的区域(三重SR),跨Z线的SR区域(ZSR)和跨M线的纵向SR区域(LSR)。对离体鼠肌肉的分析表明,纳米跨度主要与ZSR和三联体SR相关,而与LSR则很少相关。此外,δ-SG-null(Sgcd(-/-))骨骼肌的SR不存在纳跨度,S-gd-null(Sgcd(-/-))骨骼肌是肢带型肌营养不良症2F的小鼠模型。对来自Duchenne肌营养不良症患者的骨骼肌活检进行的分析表明,在对照和Duchenne样品中,纳米跨度优先在I型(慢)纤维中表达。此外,杜氏活检中的纳米跨度显着降低。结论:SG-SSPN复合物的蛋白质选择性剪接产生δ-SG3,微跨度和纳米跨度,它们位于ZSR和三联体SR,在先前研究的支持下它们可能在调节静息钙水平中发挥作用(Estrada等人,Biochem Biophys Res Commun 340:865-71,2006)。因此,SSPN mRNA的可变剪接产生三种蛋白亚型(SSPN,微跨度和纳跨度),它们影响跨膜结构域的数量会有所不同,从而影响亚细胞膜结合成不同的蛋白复合物。

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