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The breakdown of the individual neurofilament proteins by cathepsin D

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Abstract

In a continuing study of proteolysis of CNS proteins by CNS enzymes, neurofilament proteins (210 K, 155 K, 70 K) and desmin were separated, and the breakdown of individual proteins by purified brain cathepsin D was measured and compared to breakdown by plasma thrombin. With both cathepsin D and thrombin, the rate of breakdown of the 70 K protein was the highest, followed by the 155 K, and that of the 210 K was the lowest. With each substrate cathepsin D breakdown was the highest at pH 3; small but significant breakdown could be seen at pH 6. The pattern of intermediate breakdown products depended on pH, with greater amounts of fragments detected at higher pH, and the patterns with the two enzymes were different. We showed that differences exist in cleavage sites and breakdown rates of the neurofilament proteins. The capacity of the cathepsin D present in the tissue to hydrolyze these substrates was high, even at pH close to neutral, and was greatly in excess of that needed for physiological neurofilament turnover.

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References

  1. Zimmerman, U.-J. P., and Schlaepfer, W. W. 1982. Characterization of a brain calcium-activated protease that degrades neurofilament proteins. Biochemistry 21:3977–3983.

    Google Scholar 

  2. Nixon, R. A. 1983. Proteolysis of neurofilament proteins. Pages 117–154, in Marotta, C. A. (ed.), Neurofilaments, University of Minnesota Press, Minneapolis.

    Google Scholar 

  3. Nixon, R. A., and Marotta, C. A. 1984. Degradation of neurofilament proteins by purified human brain cathepsin D. J. Neurochem. 43:507–516.

    Google Scholar 

  4. Banay-Schwartz, M., Bracco, F., DeGuzman, T., and Lajtha, A. 1983. Developmental changes in the breakdown of tubulin by cerebral cathepsin D. Neurochem. Res. 8:51–61.

    Google Scholar 

  5. Malik, M. N., Fenko, M. D., Iqbal, K., and Wisniewski, H. M. 1983. Purification and characterization of two forms of Ca++-activated neutral protease from calf brain. J. Biol. Chem. 254:8955–8962.

    Google Scholar 

  6. Banay-Schwartz, M., Bracco, F., Dahl, D., DeGuzman T., Turk, V., and Lajtha, A. 1985. The pH dependence of breakdown of various purified brain proteins by cathepsin D preparations. Neurochem. Int. 7:607–614.

    Google Scholar 

  7. Bracco, F., Banay-Schwartz, M., DeGuzman, T., and Lajtha, A. 1982. Membrane-bound tubulin: resistance to cathepsin D and susceptibility to thrombin. Neurochem. Int. 4:501–511.

    Google Scholar 

  8. Bracco, F., Banay-Schwartz, M., DeGuzman, T., and Lajtha, A. 1982. Breakdown of brain tubulin by cerebral cathepsin D. Neurochem. Int. 4:541–549.

    Google Scholar 

  9. Barrett, A. J. 1977. Cathepsin D and other carboxyl proteinases. Pages 209–248, in Barrett, A. J. (ed.), Proteinases in Mammalian Cells and Tissues, Elsevier North-Holland, Amsterdam.

    Google Scholar 

  10. Rueger, D. C., Gardner, E. E., Der Simonian, H., Dahl, D., and Bignami, A. 1981. Purified glial fibrillary acidic protein and desmin are distinct intermediate proteins exhibiting similar properties. J. Biol. Chem. 256:10606–10612.

    Google Scholar 

  11. Hui, K.-S., Hui, M., Chiu, F.-C., Banay-Schwartz, M., DeGuzman, T., Sacchi, R. S., and Lajtha, A. 1986. Separation and purification of individual neurofilament proteins by reverse-phase high-performance liquid chromatography. Anal. Biochem. 153:230–234.

    Google Scholar 

  12. Chiu, F.-C., Goldman, J. E., and Norton, W. T. 1983. Biochemistry of neurofilaments. Pages 27–56, in Marrotta, C. A. (ed.), Neurofilaments, University of Minnesota Press, Minneapolis.

    Google Scholar 

  13. Lajtha, A., Latzkovits, L., and Toth, J. 1976. Comparison of turnover rates of proteins of the brain, liver and kidney in mouse in vivo following long-term labeling. Biochim. Biophys. Acta 425:511–520.

    Google Scholar 

  14. Shahbazian, F. M., Jacobs, M., and Lajtha, A. 1986. Regional and cellular differences in rat brain protein synthesis in vivo and in slices during development. Int. J. Dev. Neurosci. 4:209–215.

    Google Scholar 

  15. Paggi, P., and Lasek, R. J. 1984. Degradation of purified neurofilament subunits by calcium-activated neutral protease: characterization of the cleavage products. Neurochem. Int. 6:589–597.

    Google Scholar 

  16. Geisler, N., Plesman, U., and Weber, K. 1985. The complete amino acid sequence of the major mammalian neurofilament protein (NF-L). FEBS Lett. 182:475–478.

    Google Scholar 

  17. Nelson, W. J., and Traub, P. 1982. Purification and further characterization of the Ca++-activated proteinase specific for the intermediate filament proteins vimentin and desmin. J. Biol. Chem. 257:5544–5553.

    Google Scholar 

  18. Nixon, R. A., Brown, B. A., and Marotta, C. A. 1982. Posttranslational modification of a neurofilament protein during axoplasmic transport: implications for regional specialization of CNS axons. J. Cell Biol. 94:150–158.

    Google Scholar 

  19. Roots, B. I. 1983. Neurofilament accumulation induced in synapses by leupeptin. Science 221:971–972.

    Google Scholar 

  20. Dehlinger, P. J., and Schimke, R. T. 1970. Effect of size on relative rates of degradation of rat liver soluble proteins. Biochem. Biophys. Res. Commun. 40:1473–1480.

    Google Scholar 

  21. Dice, J. F., Dehlinger, P. J., and Schimke, R. T. 1973. Studies on correlation between size and relative degradative rates of soluble proteins. J. Biol. Chem. 248:4220–4228.

    Google Scholar 

  22. Dice, J. F., and Goldberg, A. L. 1976. Structural properties of rat serum proteins which correlate with their degradative rates in vivo. Nature, 262:514–516.

    Google Scholar 

  23. Kamakura, K., Ishiura, S., Suzuki, K., Sugita, H., and Toyokura, Y. 1985. Calcium-activated neutral protease in the peripheral nerve, which requires μM order Ca++, and its effect on the neurofilament triplet. J. Neurosci. Res. 13:391–403.

    Google Scholar 

  24. Shahbazian, F. M., Jacobs, M., and Lajtha, A. 1986. Amino acid incorporation in relation to molecular weight of proteins in young and adult brain. Neurochem. Res. 11:647–660.

    Google Scholar 

  25. Lowry, O. H., Rosebrough, N. J., Farr, A. L., and Randall, R. J. 1951. Protein measurement with the Folin phenol reagent. J. Biol. Chem. 193:265–275.

    Google Scholar 

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Banay-Schwartz, M., Dahl, D., Hui, K.S. et al. The breakdown of the individual neurofilament proteins by cathepsin D. Neurochem Res 12, 361–367 (1987). https://doi.org/10.1007/BF00993246

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