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腺病毒介导的人酸性麦芽糖酶基因转移可减少酸性麦芽糖酶缺乏的日本鹌鹑骨骼肌中的糖原积累。

Adenovirus-mediated transfer of human acid maltase gene reduces glycogen accumulation in skeletal muscle of Japanese quail with acid maltase deficiency.

作者信息

Tsujino S, Kinoshita N, Tashiro T, Ikeda K, Ichihara N, Kikuchi H, Hagiwara Y, Mizutani M, Kikuchi T, Sakuragawa N

机构信息

Department of Inherited Metabolic Disease, National Institute of Neuroscience, NCNP, Kodaira, Tokyo, Japan.

出版信息

Hum Gene Ther. 1998 Jul 20;9(11):1609-16. doi: 10.1089/hum.1998.9.11-1609.

DOI:10.1089/hum.1998.9.11-1609
PMID:9694159
Abstract

Acid maltase deficiency (AMD) causes a lysosomal glycogenosis inherited as an autosomal recessive trait. The infantile type of AMD (Pompe disease) leads to early death due to severe dysfunction of cardiac and respiratory muscles and no effective therapy is available. Replication-defective adenovirus vectors offer a promising tool for in vivo gene delivery and gene therapy. We constructed a recombinant adenovirus containing the human acid maltase (AM) cDNA downstream of the CAG promoter, composed of modified chicken beta-actin promoter and CMV IE enhancer (AxCANAM). Japanese quail with AMD was used for this study as an animal model for human AMD. When cultured fibroblasts from AMD quail were infected with AxCANAM, AM activity in the cells increased in proportion to the multiplicity of infection (MOI). When AxCANAM (4.5 x 10(8) PFU) was injected into unilateral superficial pectoral muscle of AMD quail, PAS staining showed that glycogenosomes disappeared and stainability of acid phosphatase was reduced in the injected area as compared with the contralateral muscle of the same birds. Biochemically, AM activity increased and glycogen content decreased in the injected muscle. Western blot analysis showed that AMD quail muscle injected with AxCANAM expressed human AM protein processed to active forms. These results suggest that the human AM cDNA transferred by an adenovirus vector was sufficiently expressed, leading to a marked reduction of the glycogen accumulation in the skeletal muscle of AMD quail.

摘要

酸性麦芽糖酶缺乏症(AMD)会引发一种作为常染色体隐性性状遗传的溶酶体糖原贮积症。婴儿型AMD(庞贝病)由于心脏和呼吸肌的严重功能障碍会导致早期死亡,且尚无有效的治疗方法。复制缺陷型腺病毒载体为体内基因递送和基因治疗提供了一种有前景的工具。我们构建了一种重组腺病毒,其在由修饰的鸡β-肌动蛋白启动子和巨细胞病毒IE增强子组成的CAG启动子下游含有人类酸性麦芽糖酶(AM)cDNA(AxCANAM)。患有AMD的日本鹌鹑被用作人类AMD的动物模型用于本研究。当用AxCANAM感染来自AMD鹌鹑的培养成纤维细胞时,细胞中的AM活性与感染复数(MOI)成比例增加。当将AxCANAM(4.5×10⁸ PFU)注射到AMD鹌鹑的单侧胸浅肌中时,过碘酸希夫染色(PAS染色)显示,与同一只鸟的对侧肌肉相比,注射区域的糖原小体消失,酸性磷酸酶的染色性降低。生化分析表明,注射肌肉中的AM活性增加,糖原含量降低。蛋白质免疫印迹分析显示,注射了AxCANAM的AMD鹌鹑肌肉表达加工成活性形式的人类AM蛋白。这些结果表明,腺病毒载体转移的人类AM cDNA得到了充分表达,导致AMD鹌鹑骨骼肌中的糖原积累显著减少。

相似文献

1
Adenovirus-mediated transfer of human acid maltase gene reduces glycogen accumulation in skeletal muscle of Japanese quail with acid maltase deficiency.腺病毒介导的人酸性麦芽糖酶基因转移可减少酸性麦芽糖酶缺乏的日本鹌鹑骨骼肌中的糖原积累。
Hum Gene Ther. 1998 Jul 20;9(11):1609-16. doi: 10.1089/hum.1998.9.11-1609.
2
Adeno-associated virus-mediated transfer of human acid maltase gene results in a transient reduction of glycogen accumulation in muscle of Japanese quail with acid maltase deficiency.腺相关病毒介导的人类酸性麦芽糖酶基因转移导致酸性麦芽糖酶缺乏的日本鹌鹑肌肉中糖原积累短暂减少。
Gene Ther. 2002 May;9(9):554-63. doi: 10.1038/sj.gt.3301672.
3
Multiple muscles in the AMD quail can be "cross-corrected" of pathologic glycogen accumulation after intravenous injection of an [E1-, polymerase-] adenovirus vector encoding human acid-alpha-glucosidase.在静脉注射编码人酸性α-葡萄糖苷酶的[E1-,聚合酶-]腺病毒载体后,AMD鹌鹑体内的多种肌肉中病理性糖原积累可被“交叉校正”。
J Gene Med. 2003 May;5(5):399-406. doi: 10.1002/jgm.355.
4
Recombinant human acid alpha-glucosidase corrects acid alpha-glucosidase-deficient human fibroblasts, quail fibroblasts, and quail myoblasts.重组人酸性α-葡萄糖苷酶可纠正酸性α-葡萄糖苷酶缺陷的人成纤维细胞、鹌鹑成纤维细胞和鹌鹑成肌细胞。
Pediatr Res. 1998 Mar;43(3):374-80. doi: 10.1203/00006450-199803000-00011.
5
Clinical and metabolic correction of pompe disease by enzyme therapy in acid maltase-deficient quail.酸性麦芽糖酶缺乏鹌鹑中酶疗法对庞贝病的临床和代谢纠正
J Clin Invest. 1998 Feb 15;101(4):827-33. doi: 10.1172/JCI1722.
6
Complete correction of acid alpha-glucosidase deficiency in Pompe disease fibroblasts in vitro, and lysosomally targeted expression in neonatal rat cardiac and skeletal muscle.体外完全纠正庞贝病成纤维细胞中的酸性α-葡萄糖苷酶缺乏症,并在新生大鼠心肌和骨骼肌中进行溶酶体靶向表达。
Gene Ther. 1998 Apr;5(4):473-80. doi: 10.1038/sj.gt.3300609.
7
Molecular cloning of acid alpha-glucosidase cDNA of Japanese quail (Coturnix coturnix japonica) and the lack of its mRNA in acid maltase deficient quails.日本鹌鹑(Coturnix coturnix japonica)酸性α-葡萄糖苷酶cDNA的分子克隆及其在酸性麦芽糖酶缺陷型鹌鹑中mRNA的缺失
Biochim Biophys Acta. 1997 Dec 31;1362(2-3):269-78. doi: 10.1016/s0925-4439(97)00092-6.
8
Adenovirus-mediated transfer of the acid alpha-glucosidase gene into fibroblasts, myoblasts and myotubes from patients with glycogen storage disease type II leads to high level expression of enzyme and corrects glycogen accumulation.腺病毒介导的酸性α-葡萄糖苷酶基因转移至II型糖原贮积病患者的成纤维细胞、成肌细胞和肌管中,可导致该酶的高水平表达并纠正糖原积累。
Hum Mol Genet. 1998 Oct;7(11):1695-702. doi: 10.1093/hmg/7.11.1695.
9
Acid maltase deficiency in the Japanese quail; early morphological event in skeletal muscle.日本鹌鹑中的酸性麦芽糖酶缺乏症;骨骼肌中的早期形态学事件。
Acta Neuropathol. 1987;73(1):32-7. doi: 10.1007/BF00695499.
10
Muscle as a putative producer of acid alpha-glucosidase for glycogenosis type II gene therapy.肌肉作为糖原贮积症II型基因治疗中酸性α-葡萄糖苷酶的假定产生源。
Hum Mol Genet. 2002 Jul 1;11(14):1637-45. doi: 10.1093/hmg/11.14.1637.

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Histochem Cell Biol. 2004 Aug;122(2):161-9. doi: 10.1007/s00418-004-0690-0. Epub 2004 Aug 3.
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