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Carnitine and acyltransferase in experimental neurogenic atrophies: changes with treatment

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Summary

Carnitine level and carnitine palmityl transferase (CPT) activity were investigated in muscles of patients with infantile and juvenile spinal muscular atrophy and polyneuropathies. A significant decrease of both carnitine and CPT was found in the infantile spinal muscular atrophy, but not in the other neurogenic muscle atrophies. These findings were compared with the experimental effect of denervation and reinnervation upon the lipid metabolism in soleus and extensor digitorum longus (EDL) of adult and newborn rats. Twenty-one days after denervation free and total carnitine decreased significantly in both EDL (P<0.001) and soleus (P<0.05) of adult animals. CPT activity was significantly decreased in the soleus 50 days after denervation (P<0.005). Long-term reinnervation restored the level of carnitine fraction and CPT activity. l-carnitine treatment for 21 days restored the level of free carnitine to normal in the soleus of denervated adult animals. Denervation in newborn rats influenced carnitine concentration in soleus and EDL to a lesser extent; the treatment with l-carnitine raised short-chain acylcarnitines in denervated muscles, while reinnervation restored carnitine level within 50 days.

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References

  1. Angelini C (1984) Heterogeneity of lipid storage disorders. In: Serratrice G, Cross D, Desnuelle C, Gartant J-L, Pellissier JF, Pouget J, Schiano A (eds) Neuromuscular diseases. Raven Press, New York, pp 87–94

    Google Scholar 

  2. Bresolin N, Freddo L, Vergani L, Angelini C (1982) Carnitine, carnitine acyl transferases and rat brain functions. Exp Neurol 18:285–292

    Google Scholar 

  3. Carrier HN, Berthillier G (1980) Carnitine levels in normal children and adults and in patients with diseased muscle. Muscle Nerve 3:326–334

    Google Scholar 

  4. Cederblad G, Lindstedt S (1972) A method for the determination of carnitine in the picomole range. Clin Chim Acta 37:235–243

    Google Scholar 

  5. Drachman DB (1974) Trophic function on the neuron. Ann NY Acad Sci 288:1–423

    Google Scholar 

  6. Dubowitz V (1966) Enzyme histochemistry of skeletal muscle, part III. Neurogenic muscular atrophies. J Neurol Neurosurg Psychiatry 29:23–25

    Google Scholar 

  7. Fardeau M (1980) Denervation et reinnervation du muscle squeletrique. Comparison des données experimentals et des observations faites en pathologie humaine. La transmission neuromusculaire. Masson, Paris

    Google Scholar 

  8. Guth L (1968) Trophic influence of nerve and muscle. Physiol Rev 48:645–687

    Google Scholar 

  9. Guth L (1969) Trophic effect of vertebrate neurons. Neurosci Res Program Bull 17:1–73

    Google Scholar 

  10. Hausmanova-Petrusevicz I (1978) Spinal muscular atrophy. Infantile and juvenile type. Published for the National Library of Medicine and the National Science Translation. Washington, D.C., by the Foreign Scientific Publications Department of the National Center for Scientific Technical and Economic Information. Warsaw, Poland

    Google Scholar 

  11. Kark P, Edgerton R, Whiteman B (1975) Decreased oxidation by muscle after denervation but not disuse atrophy. In: Bradley WG, Gardner-Mewin D, Walton JN (eds) Advances in myology. Excerpta Medica, Amsterdam, pp 33–41

    Google Scholar 

  12. Kerner J, Sandor A, Alkoni I (1976) The effect of denervation on carnitine metabolism in rat skeletal muscle. Acta Biochim Biophys Acad Sci Hung 2(4):239–243

    Google Scholar 

  13. Margreth A, Salviati G, DiMauro S, Turati G (1972) Early biochemical consequences of denervation in fast and slow skeletal muscles and their relationship to neural control muscle differentiation. Biochem J 126:1099–1110

    Google Scholar 

  14. Schiaffino S, Settembrini P (1970) Studies on the effect of denervation in developing muscle. Virchows Arch [Cell Pathol] 4:345–356

    Google Scholar 

  15. Schumate JB, Carroll JE, Brooke MH, Choski RM (1982) Palmitate oxidation in human muscle, comparison to CPT and carnitine. Muscle Nerve 5:226–231

    Google Scholar 

  16. Warsaw JB, Terry ML (1970) Cellular energy metabolism during fetal development. J Cell Biol 44:354–360

    Google Scholar 

  17. Wittels B, Bressler R (1965) Lipid metabolism in the newborn heart. J Clin Invest 44:1639–1646

    Google Scholar 

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Bresolin, N., Freddo, L., Tegazzin, V. et al. Carnitine and acyltransferase in experimental neurogenic atrophies: changes with treatment. J Neurol 231, 170–175 (1984). https://doi.org/10.1007/BF00313933

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  • DOI: https://doi.org/10.1007/BF00313933

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