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N-脱乙酰酶/N-磺基转移酶-1缺陷型肌管中钙动力学紊乱。

Disturbed Ca2+ kinetics in N-deacetylase/N-sulfotransferase-1 defective myotubes.

作者信息

Jenniskens Guido J, Ringvall Maria, Koopman Werner J H, Ledin Johan, Kjellén Lena, Willems Peter H G M, Forsberg Erik, Veerkamp Jacques H, van Kuppevelt Toin H

机构信息

Department of Biochemistry 194, University Medical Center, NCMLS, 6500 HB Nijmegen, The Netherlands.

出版信息

J Cell Sci. 2003 Jun 1;116(Pt 11):2187-93. doi: 10.1242/jcs.00447. Epub 2003 Apr 8.

Abstract

The biosynthesis of heparan sulfate, present on the cell surface and in the basal lamina surrounding cells, is a multistep process in which each step is mediated by a specific enzyme. The initial modification of the precursor polysaccharide, N-deacetylation followed by N-sulfation of selected N-acetyl-D-glucosamine residues, is catalyzed by the enzyme glucosaminyl N-deacetylase/N-sulfotransferase (NDST). This event is a key step that regulates the overall sulfate content of the polysaccharide. Here, we report on the effects of NDST deficiency on Ca2+ kinetics in myotubes from NDST-1- and NDST-2-deficient mice, indicating a novel role for heparan sulfate in skeletal muscle physiology. Immunostaining for specific heparan sulfate epitopes showed major changes in the heparan sulfate composition in skeletal muscle tissue derived from NDST-1-/- mice and NDST-/- cultured myotubes. Biochemical analysis indicates a relative decrease in both N-sulfation and 2-O-sulfation of skeletal muscle heparan sulfate. The core protein of heparan sulfate proteoglycan perlecan was not affected, as judged by immunohistochemistry. Also, acetylcholine receptor clustering and the occurrence of other ion channels involved in excitation-contraction coupling were not altered. In NDST-2-/- mice and heterozygous mice no changes in heparan sulfate composition were observed. Using high-speed UV confocal laser scanning microscopy, aberrant Ca2+ kinetics were observed in NDST-1-/- myotubes, but not in NDST-2-/- or heterozygous myotubes. Electrically induced Ca2+ spikes had significantly lower amplitudes, and a reduced removal rate of cytosolic Ca2+, indicating the importance of heparan sulfate in muscle Ca2+ kinetics.

摘要

硫酸乙酰肝素存在于细胞表面和细胞周围的基膜中,其生物合成是一个多步骤过程,其中每个步骤都由特定的酶介导。前体多糖的初始修饰,即选定的N-乙酰-D-葡萄糖胺残基先进行N-脱乙酰化,然后进行N-硫酸化,由氨基葡萄糖N-脱乙酰酶/N-硫酸转移酶(NDST)催化。这一事件是调节多糖总体硫酸盐含量的关键步骤。在此,我们报告了NDST缺乏对NDST-1和NDST-2缺陷小鼠肌管中Ca2+动力学的影响,表明硫酸乙酰肝素在骨骼肌生理学中具有新的作用。对特定硫酸乙酰肝素表位的免疫染色显示,来自NDST-1-/-小鼠和NDST-/-培养肌管的骨骼肌组织中硫酸乙酰肝素组成发生了重大变化。生化分析表明,骨骼肌硫酸乙酰肝素的N-硫酸化和2-O-硫酸化均相对减少。通过免疫组织化学判断,硫酸乙酰肝素蛋白聚糖核心蛋白perlecan未受影响。此外,乙酰胆碱受体聚集以及参与兴奋-收缩偶联的其他离子通道的出现也未改变。在NDST-2-/-小鼠和杂合小鼠中未观察到硫酸乙酰肝素组成的变化。使用高速紫外共聚焦激光扫描显微镜,在NDST-1-/-肌管中观察到异常的Ca2+动力学,但在NDST-2-/-或杂合肌管中未观察到。电诱导的Ca2+峰值幅度显著降低,胞质Ca2+的清除率降低,表明硫酸乙酰肝素在肌肉Ca2+动力学中具有重要作用。

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