Serine proteinase inhibitors in human skeletal muscle: Expression of β-amyloid protein precursor and α1-antichymotrypsin in vivo and during myogenesis in vitro
Corresponding Author
Mohammed Akaaboune
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
INSERM U. 153, 17 rue du Fer à Moulin, 75005 Paris, FranceSearch for more papers by this authorMartine Verdière-Sahuqué
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
Laboratoire de Cytologie, Université Pierre et Marie Curie, Paris, France
Search for more papers by this authorSylvie Lachkar
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
Search for more papers by this authorBarry W. Festoff
Neurobiology Research Laboratory, Veterans Affairs Medical Center, Kansas City, MO, and University of Kansas Medical Center, Kansas City, KS
Search for more papers by this authorDaniel Hantaï
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
Search for more papers by this authorCorresponding Author
Mohammed Akaaboune
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
INSERM U. 153, 17 rue du Fer à Moulin, 75005 Paris, FranceSearch for more papers by this authorMartine Verdière-Sahuqué
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
Laboratoire de Cytologie, Université Pierre et Marie Curie, Paris, France
Search for more papers by this authorSylvie Lachkar
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
Search for more papers by this authorBarry W. Festoff
Neurobiology Research Laboratory, Veterans Affairs Medical Center, Kansas City, MO, and University of Kansas Medical Center, Kansas City, KS
Search for more papers by this authorDaniel Hantaï
Développement, Pathologie, Régénération du Système Neuromusculaire, INSERM U 153 and CNRS ERS 64, 75005 Paris
Search for more papers by this authorAbstract
The balance of serine proteases and inhibitors in nerve and muscle is altered during programmed- and injury-induced remodeling. A serpin, α1-antichymotrypsin (α1-ACT), and Kunitz-inhibitor containing forms of the β-amyloid precursor protein (βAPP) may be important components of this balance. In the present study, we analyzed their expression in primary cultures of human myogenic (satellite) cells that mimic myogenic differentiation using Western blotting and immunocytochemistry. In vitro results were compared to in vivo results from normal adult human skeletal muscle biopsies. Using an anti-α1-ACT polyclonal antibody, we detected a 62 kDa immunoreactive band both in cultured human myogenic cells (mononucleated myoblasts as well as multi-nucleated myotubes) and in extracts of human muscle biopsies. With a polyclonal anti-βAPP antibody we found two bands (105 and 120 kDa) in myoblasts and myotubes in culture. However, the same antibody recognized only a single band at 92 kDa in biopsies. By immunocytochemistry, both α1-ACT and βAPP were indistinctly present on localized to the surface of myoblasts in culture. In contrast, these inhibitors were dense on myotube surfaces, where they often formed distinct aggregates and frequently co-localized. In permeabilized muscle cells, α1-ACT and βAPP appeared to be localized to the perikarya of both myoblasts and myotubes. Confirming previous results, both α1-ACT and βAPP were present at the neuromuscular junction in human muscle sections. These developmental changes found during in vitro myogenesis for α1-ACT and βAPP, both serine protease inhibitors, reinforce the hypothesis that regulation of the serine proteases and serine protease inhibitors plays an important role in neuromuscular differentiation. © 1995 Wiley-Liss Inc.
Literature Cited
- Akaaboune, M., Ma, J., Festoff, B. W., Greenberg, B. D., and Hantaï, D. (1993) The influence of denervation on β-amyloid protein precursor and α1-antichymotrypsin in mouse skeletal muscle. Neuromusc. Disord. 3: 477–481.
- Akaaboune, M., Ma, J., Festoff, B. W., Greenberg, B. D., and Hantaï, D. (1994) Neurotrophic regulation of mouse muscle β-amyloid protein precursor and α1-antichymotrypsin as revealed by axotomy. J. Neurobiol., 25: 503–514.
- Askanas, V., Engel, W. E., and Alvarez, R. B. (1992) Strong immunoreactivity of β-amyloid precursor protein, including the β-amyloid protein sequence, at human neuromuscular junctions. Neurosci. Lett., 143: 96–100.
- Benowitz, L. I., Rodriguez, W., Paskevitch, P., Mufson, E. J., Schenk, D., and Neve, R. L. (1989) The amyloid precursor protein is concentrated in neuronal lysosomes in normal and Alzheimer disease subjects. Exp. Neurol., 106: 237–250.
- Bilak, M., Askanas, V., and Engel, W. K. (1994) Alpha 1-antichymotrypsin is strongly immunolocalized at normal human and rat neuromuscular junctions. Synapse, 16: 280–283.
- Biroc, S. L., Payan, D. G., and Fisher, J. M. (1993) Isoforms of agrin are widely expressed in the developing rat and may function as protease inhibitors. Dev. Brain Res., 75: 119–129.
- Campion, D. R. (1984) The muscle satellite cell: A review. Int. Rev. Cytol., 87: 225–251.
- Caporaso, G. L., Takei, K., Gandy, S. E., Matteoli, M., Mundigl, O., Greengard, P., and Camilli, P. D. (1994) Morphologic and biochemical analysis of the intracellular trafficking of the Alzheimer A4 amyloid precursor protein. J. Neurosci., 14: 3122–3138.
- Chandra, T., Stackhouse, R., Kidd, V. J., Robinson, K. J. H., and Woo, S. L. C. (1983) Sequence homology between human α1-antichymotrypsin, α1-antitrypsin and antithrombin III. Biochemistry, 22: 5055–5561.
- Farrell, D. H., and Cunningham, D. D. (1987) Glycosaminoglycans on fibroblasts accelerate thrombin inhibition by protease nexin-1. Biochem. J., 245: 543–553.
- B. W. Festoff, (ed.) (1990) Serine Proteases and Their Serpin inhibitors in the Nervous System: Regulation in Development and in Degenerative and Malignant Disease. New York: Plenum Press.
- Festoff, B. W., Rao, J. S., and Hantaï D., (1991) Plasminogen activators and inhibitors in the neuromuscular system. III. The serpin, protease nexin I, is synthesized by muscle and localized at neuromuscular synapses. J. Cell. Physiol., 147: 76–86.
- Festoff, B. W., Reddy, R. B., VanBecelaere, M., Smirnova, I., and Chao, J. (1994) Activation of serpins and their cognate proteases in muscle after crush injury. J. Cell. Physiol., 159: 11–18.
- Hall, Z. W., and Sanes, J. R. (1993) Synaptic structure and development: The neuromuscular junction. Cell, 72: (Suppl.) 99–121.
- Katsunuma, T., Tsuda, M., Kusumi, T., Ohkubo, T., Mitomi, T., Nakasaki, H., Tajima, T., Yokoyama, S., Kamiguchi, H., Kobayashi, K., and Shinoda, S. (1980) Purification of a serum DNA binding protein (64 DP) with a molecular weight of 64,000 and its diagnostic significance in malignant disease. Biochem. Biophys. Res. Commun., 93: 552–557.
- King, M. W. (1991) Developmentally regulated alternative splicing in the Xenopus laevis c-Myc gene creates an intron-1 containing c-Myc RNA present only in post-midblastula embryos. Nucleic Acids Res., 19: 5777–5783.
- Koo, E. H., Sisodia, S. S., Archer, D. R., Martin, L. J., Weidemann, A., Beyreuther, K., Fischer, P., Masters, C. L., and Price, D. L. (1990) Precursor of amyloid protein in Alzheimer's disease undergoes fast anterograde axonal transport. Proc. Natl. Acad. Sci. U.S.A., 87: 1561–1565.
- Laemmli, U. K. (1970) Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 227: 680–685.
- Laine, A., and Hayem, A. (1981) Purification and characterization of α1-antichymotrypsin from human pleural fluid and human serum. Biochim. Biophys. Acta, 668: 429–438.
- Lindmark, B., Lilja, H., Alm, R., and Eriksson, S. (1989) The microheterogeneity of desialyalated α1-antichymotrypsin: The occurrence of two amino-terminal isoforms, one lacking a His-Pro dipeptide. Biochim. Biophys. Acta, 997: 90–95.
- Lowery, D. E., Pasternack, J., Gonzalez-De Whitt, P. A., Zürcher-Neely, H., Tomich, C. S. C., Altman, R. A., Fairbanks, M. B., Heinrikson, R. L., Younkin, S., and Greenberg, B. D. (1991) Alzheimer amyloid precursor protein produced by recombinant baculovirus expression: Proteolytic processing and protease inhibitory properties. J. Biol. Chem., 266: 19842–19850.
- Mauro, A. (1961) Satellite cells of skeletal muscle fibers. J. Biophys. Cytol., 9: 493–495.
- Moss, F. P., and Leblond, C. P. (1971) Satellite cells as a source of nuclei in nuclei in muscles of growing rats. Anal. Rec., 170: 421–436.
- Multhaup, G. (1994) Identification and regulation of the hight affinity binding site of Alzheimer's disease amyloid protein precursor (APP) to glycosaminoglycans. Biochimie, 76: 304–311.
- Palacios, G., Palacios, J. M., Mengod, G., and Frey, P. (1992) β-amyloid precursor protein localization in the golgi apparatus in neurons and oligodendrocytes. An immunocytochemical structural and ultrastructural study in normal and axotomized neurons. Mol. Brain Res., 15: 195–206.
- Palmert, M. R., Podlisny, M. B., Witker, D. S., Oltersdorf, T., Younkin, L. H., Selkoe, D. J., and Younkin, S. G. (1989) The β-amyloid protein precursor of Alzheimer disease has soluble derivatives found in human brain and cerebrospinal fluid. Proc. Natl. Acad. Sci. U.S.A., 86: 6338–6342.
- Quax, P. H. A., Frisdal, É., Pedersen, N., Bonavaud, S., Thibert, Ph., Martelly, I., Verheijen, J. H., Blasi, F., and Barlovatz-Meimon, G. (1992) Modulation of activities and RNA level of the components of the plasminogen activation system during fusion of human myogenic satellite cells in vitro. Dev. Biol., 151: 166–175.
- Rao, J. S., Kahler, C. B., Baker, J. B., and Festoff, B. W. (1989) Protease nexin I, a serpin, inhibits plasminogen-dependent degradation of muscle extracellular matrix. Muscle Nerve, 12: 640–646.
- Rupp, F., Payan, D. G., Magill-Solc, C., Cowan, D. M., and Scheller, R. H. (1991) Structure and expression of a rat agrin. Neuron, 6: 811–823.
- Sarkosi, E., Askanas, V., Johnson, S. A., McFerrin, J., and Engel, W. K. (1994) Expression of β-amyloid protein gene is developmentally regulated in human muscle fibers in vivo and in vitro. Exp. Neurol., 128: 27–33.
- Schubert, D., Jin, L. W., Saitoh, T., and Cole, G. (1989) The regulation of amyloid β protein precursor secretion and its modulatory role in cell adhesion. Neuron, 3: 689–694.
- Schubert, W., Prior, R., Weidemann, A., Dircksen, H., Mulshaup, G., Master, C. L., and Beyreuther, K. (1991) Localization of Alzheimer β A4 amyloid precursor protein at central and peripheral synaptic sites. Brain Res., 563: 184–194.
- Selkoe, D. J., Podlisny, M. B., Joachim, C. L., Vickers, E. A., Lee, G., Fritz, L. C., and Oltersdorf, T. (1988) β-amyloid precursor protein of Alzheimer disease occurs as 110- to 135-kilodalton membrane-associated proteins in neural and nonneural tissues. Proc. Natl. Acad. Sci. U.S.A., 85: 7341–7345.
- Shivers, B. D., Hilbich, C., Multhaup, G., Salbaum, M., Beyreuther, K., and Seegurg, P. H. (1988) Alzheimer's disease amyloidogenic glycoprotein: Expression pattern in rat brain suggests a role in cell contact. EMBO J., 7: 1365–1370.
- Slunt, H. H., Thinakaran, G., Von Koch, C., Lo, A. C. Y., Tanzi, R. E., and Sisodia, S. S. (1994) Expression of a ubiquitous, cross-reactive homologue of the mouse β-amyloid precursor protein (APP). J. Biol. Chem., 269: 2637–2644.
- Thinakaran, G., and Sisodia, S. S. (1994) Amyloid precursor-like protein 2 (APLP2) is modified by the addition of chondroitin sulfate glycosaminoglycan at a single site. J. Biol. Chem., 269: 22099–22104.
- Towbin, H., Staehlin, T., and Gordon, T., (1979) Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: Procedure and some applications. Proc. Natl. Acad. Sci. U.S.A., 76: 4350.
- Travis, J., and Salvesen, G. (1983) Human plasma proteinase inhibitors. Annu. Rev. Biochem., 52: 655–709.
- Van Nostrand, W. E., Wagner, S. L., Suzuki, M., Choi, B. H., Farrow, J. S., Geddes, J. W., Cotman, C. W., and Cunningham, D. D. (1989) Protease nexin II, a potent antichymotrypsin shows identity to amyloid β-protein precursor. Nature, 341: 546–549.
- Walsh, F. S., and Ritter, M. A. (1981) Surface antigen differentiation during human myogenesis in culture. Nature, 289: 60–64.
- Wasco, W., Bupp, K., Magendantz, M., Gusella, J. F., and Tanzi, R. E. (1992) Identification of a mouse brain cDNA that encodes a protein related to the Alzheimer disease-associated amyloid β protein precursor. Proc. Natl. Acad. Sci. U.S.A., 89: 10758–10762.
- Weidemann, A., König, G., Bunke, D., Fisher, P., Salbaum, J. M., Masters, C. L., and Beyreuther, K. (1989) Identification, biogenesis and localization of precursors of Alzheimer's disease A4 amyloid protein. Cell, 57: 115–126.
- Zimmermann, K., Herget, T., Salbaum, J. M., Schubert, W., Hilbich, C., Cramer, M., Masters, C. L., Multhaup, G., Kang, J., Lemaire, H. G., Beyreuther, K., and Starzinski-Powitz, A. (1988) Localization of the putative precursor of Alzheimer's disease-specific amyloid at nuclear envelopes of adult human muscle. EMBO J., 7: 367–372.