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FKRP 缺陷小鼠骨骼肌的代谢组学分析表明基因替代治疗后的改善。

Metabolomics Analysis of Skeletal Muscles from FKRP-Deficient Mice Indicates Improvement After Gene Replacement Therapy.

机构信息

McColl-Lockwood Laboratory for Muscular Dystrophy Research, Carolinas Medical Center, Atrium Health, Charlotte, NC, 28203, USA.

Metabolon, Inc., Morrisville, NC, 27560, USA.

出版信息

Sci Rep. 2019 Jul 11;9(1):10070. doi: 10.1038/s41598-019-46431-1.

Abstract

Muscular dystrophy-dystroglycanopathies comprise a heterogeneous and complex group of disorders caused by loss-of-function mutations in a multitude of genes that disrupt the glycobiology of α-dystroglycan, thereby affecting its ability to function as a receptor for extracellular matrix proteins. Of the various genes involved, FKRP codes for a protein that plays a critical role in the maturation of a novel glycan found only on α-dystroglycan. Yet despite knowing the genetic cause of FKRP-related dystroglycanopathies, the molecular pathogenesis of disease and metabolic response to therapeutic intervention has not been fully elucidated. To address these challenges, we utilized mass spectrometry-based metabolomics to generate comprehensive metabolite profiles of skeletal muscle across diseased, treated, and normal states. Notably, FKRP-deficient mice elicit diverse metabolic abnormalities in biomarkers of extracellular matrix remodeling and/or aging, pentoses/pentitols, glycolytic intermediates, and lipid metabolism. More importantly, the restoration of FKRP protein activity following AAV-mediated gene therapy induced a substantial correction of these metabolic impairments. While interconnections of the affected molecular mechanisms remain unclear, our datasets support the notion that global metabolic profiling can be valuable for determining the involvement of previously unsuspected regulatory or pathological pathways as well as identifying potential targets for drug discovery and diagnostics.

摘要

肌营养不良-肌聚糖病是一组异质性和复杂性疾病,由多种基因的功能丧失性突变引起,这些突变破坏了α-肌聚糖的糖生物学,从而影响其作为细胞外基质蛋白受体的功能。在涉及的各种基因中,FKRP 编码的蛋白在一种新型聚糖的成熟过程中起着关键作用,这种聚糖只存在于α-肌聚糖上。然而,尽管我们已经知道 FKRP 相关的肌聚糖病的遗传原因,但疾病的分子发病机制和对治疗干预的代谢反应尚未完全阐明。为了解决这些挑战,我们利用基于质谱的代谢组学技术,生成了骨骼肌在疾病、治疗和正常状态下的全面代谢物图谱。值得注意的是,FKRP 缺陷型小鼠在细胞外基质重塑和/或衰老、戊糖/戊糖醇、糖酵解中间产物和脂质代谢的生物标志物中表现出不同的代谢异常。更重要的是,AAV 介导的基因治疗恢复 FKRP 蛋白活性后,这些代谢损伤得到了显著纠正。虽然受影响的分子机制之间的联系尚不清楚,但我们的数据集支持这样一种观点,即全面的代谢组学分析可以有助于确定以前未被怀疑的调节或病理途径的参与情况,并确定药物发现和诊断的潜在靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/031f/6624266/639c970ffe53/41598_2019_46431_Fig1_HTML.jpg

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