Autophagy and mistargeting of therapeutic enzyme in skeletal muscle in Pompe disease

被引:155
|
作者
Fukuda, Tokiko
Ahearn, Meghan
Roberts, Ashley
Mattaliano, Robert J.
Zaal, Kristien
Ralston, Evelyn
Plotz, Paul H.
Raben, Nina
机构
[1] NIAMSD, Arthrit & Rheumatism Branch, NIH, Bethesda, MD 20892 USA
[2] NIAMSD, Light Imaging Sect, Off Sci & Technol, NIH, Bethesda, MD 20892 USA
[3] Genzyme Corp, Cell & Prot Therapeut R&D, Framingham, MA 01701 USA
关键词
acid alpha-glucosidase; lysosome; autophagy; live cultured myofibers; glycogen storage; enclocytosis; enzyme replacement therapy; lipofuscin;
D O I
10.1016/j.ymthe.2006.08.009
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Enzyme replacement therapy (ERT) became a reality for patients with Pompe disease, a fatal cardiomyopathy and skeletal muscle myopathy caused by a deficiency of glycogen-degrading lysosomal enzyme acid alpha-glucosidase (GAA). The therapy, which relies on receptor-mediated endocytosis of recombinant human GAA (rhGAA), appears to be effective in cardiac muscle, but less so in skeletal muscle. We have previously shown a profound disturbance of the lysosomal degradative pathway (autophagy) in therapy-resistant muscle of GAA knockout mice (KO). Our findings here demonstrate a progressive age-dependent autophagic buildup in addition to enlargement of glycogen-filled lysosomes in multiple muscle groups in the KO. Trafficking and processing of the therapeutic enzyme along the endocytic pathway appear to be affected by the autophagy. Confocal microscopy of live single muscle fibers exposed to fluorescently labeled rhGAA indicates that a significant portion of the endocytosed enzyme in the KO was trapped as a partially processed form in the autophagic areas instead of reaching its target-the lysosomes. A fluid-phase endocytic marker was similarly mistargeted and accumulated in vesicular structures within the autophagic areas. These findings may explain why ERT often falls short of reversing the disease process and point toward new avenues for the development of pharmacological intervention.
引用
下载
收藏
页码:831 / 839
页数:9
相关论文
共 50 条
  • [41] Mannose 6-phosphonate labelling: A key for processing the therapeutic enzyme in Pompe disease
    Godefroy, Anastasia
    Daurat, Morgane
    Da Silva, Afitz
    Basile, Ilaria
    El Cheikh, Khaled
    Caillaud, Catherine
    Sacconi, Sabrina
    Schoser, Benedikt
    Charbonne, Henry-Vincent
    Gary-Bobo, Magali
    Morere, Alain
    Garcia, Marcel
    Maynadier, Marie
    JOURNAL OF CELLULAR AND MOLECULAR MEDICINE, 2019, 23 (09) : 6499 - 6503
  • [42] ACTIVATION OF AUTOPHAGY AND MITOPHAGY IN SKELETAL MUSCLE OF CHRONIC KIDNEY DISEASE PATIENTS
    Yuan, W.
    Gu, L.
    Huang, J.
    Zhang, Y.
    NEPHROLOGY, 2016, 21 : 108 - 108
  • [43] Defective lysosome reformation during autophagy causes skeletal muscle disease
    McGrath, Meagan J.
    Eramo, Matthew J.
    Gurung, Rajendra
    Sriratana, Absorn
    Gehrig, Stefan M.
    Lynch, Gordon S.
    Lourdes, Sonia Raveena
    Koentgen, Frank
    Feeney, Sandra J.
    Lazarou, Michael
    McLean, Catriona A.
    Mitchell, Christina A.
    JOURNAL OF CLINICAL INVESTIGATION, 2021, 131 (01):
  • [44] Defective lysosome homeostasis during autophagy causes skeletal muscle disease
    McGrath, M.
    Eramo, M.
    Gurung, R.
    Sriratana, A.
    Feeney, S.
    Gehrig, S.
    Lynch, G.
    Lazarou, M.
    McLean, C.
    Mitchell, C.
    NEUROMUSCULAR DISORDERS, 2019, 29 : S126 - S126
  • [45] A study on the change of autophagy in skeletal muscle of patients with chronic kidney disease
    黄娟
    China Medical Abstracts (Internal Medicine), 2013, 30 (03) : 179 - 180
  • [46] Limitations of muscle biopsy in Pompe disease
    John Vissing
    BMC Musculoskeletal Disorders, 14 (Suppl 2)
  • [47] Three-dimensional tissue-engineered human skeletal muscle model of Pompe disease
    Jason Wang
    Chris J. Zhou
    Alastair Khodabukus
    Sabrina Tran
    Sang-Oh Han
    Aaron L. Carlson
    Lauran Madden
    Priya S. Kishnani
    Dwight D. Koeberl
    Nenad Bursac
    Communications Biology, 4
  • [48] Respiratory muscle training in Pompe disease
    Jones, Harrison
    Crisp, Kelly
    Marcus, Jill
    Batten, Milisa
    Edds, Ashley
    Hobson-Webb, Lisa
    Kuchibhatla, Maragatha
    Kishnani, Priya
    MOLECULAR GENETICS AND METABOLISM, 2018, 123 (02) : S72 - S72
  • [49] Salmeterol with Liver Depot Gene Therapy Enhances the Skeletal Muscle Response in Murine Pompe Disease
    Han, Sang-oh
    Li, Songtao
    Everitt, Jeffrey I.
    Koeberl, Dwight D.
    HUMAN GENE THERAPY, 2019, 30 (07) : 855 - 864
  • [50] Elevated Plasma Cardiac Troponin T Levels Caused by Skeletal Muscle Damage in Pompe Disease
    Wens, Stephan C. A.
    Schaaf, Gerben J.
    Michels, Michelle
    Kruijshaar, Michelle E.
    van Gestel, Tom J. M.
    in't Groen, Stijn
    Pijnenburg, Joon
    Dekkers, Dick H. W.
    Demmers, Jeroen A. A.
    Verdijk, Lex B.
    Brusse, Esther
    van Schaik, Ron H. N.
    van der Ploeg, Ans T.
    van Doorn, Pieter A.
    Pijnappel, W. W. M. Pim
    CIRCULATION-CARDIOVASCULAR GENETICS, 2016, 9 (01) : 6 - 13