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功能糖基化α-肌营养不良蛋白聚糖在FKRP突变小鼠肌肉和非肌肉组织中的不同表达

Distinct expression of functionally glycosylated alpha-dystroglycan in muscle and non-muscle tissues of FKRP mutant mice.

作者信息

Blaeser Anthony, Awano Hiroyuki, Lu Pei, Lu Qi-Long

机构信息

McColl-Lockwood Laboratory for Muscular Dystrophy Research, Carolinas HealthCare System, Charlotte, North Carolina, United States of America.

出版信息

PLoS One. 2018 Jan 10;13(1):e0191016. doi: 10.1371/journal.pone.0191016. eCollection 2018.

Abstract

The glycosylation of alpha-dystroglycan (α-DG) is crucial in maintaining muscle cell membrane integrity. Dystroglycanopathies are identified by the loss of this glycosylation leading to a breakdown of muscle cell membrane integrity and eventual degeneration. However, a small portion of fibers expressing functionally glycosylated α-DG (F-α-DG) (revertant fibers, RF) have been identified. These fibers are generally small in size, centrally nucleated and linked to regenerating fibers. Examination of different muscles have shown various levels of RFs but it is unclear the extent of which they are present. Here we do a body-wide examination of muscles from the FKRP-P448L mutant mouse for the prevalence of RFs. We have identified great variation in the distribution of RF in different muscles and tissues. Triceps shows a large increase in RFs and together with centrally nucleated fibers whereas the pectoralis shows a reduction in revertant but increase in centrally nucleated fibers from 6 weeks to 6 months of age. We have also identified that the sciatic nerve with near normal levels of F-α-DG in the P448Lneo- mouse with reduced levels in the P448Lneo+ and absent in LARGEmyd. The salivary gland of LARGEmyd mice expresses high levels of F-α-DG. Interestingly the same glands in the P448Lneo-and to a lesser degree in P448Lneo+ also maintain considerable amount of F-α-DG, indicating the non-proliferating epithelial cells have a molecular setting permitting glycosylation.

摘要

α- dystroglycan(α-DG)的糖基化对于维持肌肉细胞膜的完整性至关重要。糖基化缺陷型肌营养不良症是由这种糖基化缺失导致肌肉细胞膜完整性破坏并最终发生变性而确定的。然而,已鉴定出一小部分表达功能性糖基化α-DG(F-α-DG)的纤维(回复性纤维,RF)。这些纤维通常尺寸较小,具有中央核且与再生纤维相连。对不同肌肉的检查显示了不同水平的RF,但尚不清楚它们的存在程度。在这里,我们对FKRP - P448L突变小鼠的肌肉进行全身检查,以确定RF的患病率。我们已经确定RF在不同肌肉和组织中的分布存在很大差异。三头肌中RF大幅增加,并伴有中央核纤维,而胸大肌中回复性纤维减少,但从6周龄到6月龄中央核纤维增加。我们还发现,坐骨神经在P448Lneo -小鼠中F-α-DG水平接近正常,在P448Lneo +小鼠中水平降低,在LARGEmyd小鼠中则不存在。LARGEmyd小鼠的唾液腺表达高水平的F-α-DG。有趣的是,P448Lneo -小鼠中的相同腺体以及程度较轻的P448Lneo +小鼠中的相同腺体也维持相当数量的F-α-DG,这表明非增殖性上皮细胞具有允许糖基化的分子环境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f291/5761899/65ed360f55ed/pone.0191016.g001.jpg

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Am J Pathol. 2015 Jul;185(7):2025-37. doi: 10.1016/j.ajpath.2015.03.017. Epub 2015 May 12.
2
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Hum Genet. 2013 Aug;132(8):923-34. doi: 10.1007/s00439-013-1302-7. Epub 2013 Apr 17.
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