Differential muscular glycogen clearance after enzyme replacement therapy in a mouse model of Pompe disease

被引:30
作者
Hawes, Michael L.
Kennedy, William
O'Callaghan, Michael W.
Thurberg, Beth L.
机构
[1] Genzyme Corp, Dept Pathol, Framingham, MA 01701 USA
[2] Genzyme Corp, Dept Preclin Biol, Framingham, MA 01701 USA
关键词
Pompe disease; muscle; twitch; fiber type; alpha-glucosidase; myozyme; aglucosidase alfa; glycogen; lysosome;
D O I
10.1016/j.ymgme.2007.04.018
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Glycogen storage disease in the alpha-glucosiclase knock out(6neo(-)/6neo(-)) (GAA KO) mouse, a model of Pompe disease, results in the pathologic accumulation of glycogen primarily within skeletal myocytes and cardiomyocytes. Intravenous administration of recombinant humana alpha-glucosidase (rhGAA, Myozyme((R)), aglucosidase alfa) can result in significant glycogen clearance from both cardiomyocytes and skeletal myocytes, however, the degree of clearance varies from one skeletal muscle type to another. We sought to determine what role Muscle fiber type predominance played in this variability. To examine this question in the GAA KO mouse model we delivered intravenous doses of 100 mg/ka rhGAA on Day 1, and Day 14, and harvested a variety of fast and slow twitch muscles on Day 28. We measured glycogen clearance, muscle fiber type content and capillary density by light microscopy with computer morphometry. Recombinant human-GAA administration resulted in differential clearance of glycogen in the various muscles examined. Slow twitch-predommant muscles cleared glycogen significantly more efficiently than fast twitch-predominant muscles. There was a strong correlation between capillary density and glycogen clearance (r = 0.55), suggesting that at the high doses used in this study the differential glycogen clearance observed between muscles is largely due to differential bioavailability of rhGAA regulated by blood flow. (c) 2007 Elsevier Inc. All rights reserved.
引用
收藏
页码:343 / 351
页数:9
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