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Metabolic variation among rat lumbosacral α-motoneurons

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Summary

Despite the wealth of literature concerned with muscle fiber biochemical, ultrastructural and physiological characteristics, little information is available regarding the metabolic enzyme activities of α-motoneurons. The present study examines the metabolism of α-motoneurons located in the lateral cell column of the rat lumbosacral enlargment with a quantitative histochemical technique. Variation in the activities of α-glucan phosphorylase, NADH-diaphorase, succinic dehydrogenase and acid phosphatase were detectable with the photographic densitometry and atomic absorption spectrophotometry technique. No difference in the glycolytic enzyme activity (mitochondrial α-glycerophosphate dehydrogenase) was observed. Analysis of lactate dehydrogenase isoenzymes demonstrated the existence of H type isoenzyme in α-motoneurons, consistent with other observations indicating predominance of aerobic metabolism within these neurons. The activities of the former enzymes in α-motoneurons formed a complete spectrum of activities, distributed unimodally. Smaller motoneurons exhibited the greatest NADH-D and acid phosphatase activities; phosphorylase activity was greatest in larger motoneurons. Significant variation in the enzyme activity of similar-sized motoneurons suggests that the metabolism of the motoneuron is regulated by factors other than cell size. Relationships between motoneuron metabolic enzyme activity and motor unit type are under current investigation.

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References

  • Anderson PJ, Song SK (1962) Acid phosphatase in the nervous system. J Neuropathol Exp Neurol 21:263–283

    Google Scholar 

  • Blomstrand C, Hamberger A (1969) Protein turnover in cell enriched fractions from rabbit brain. J Neurochem 16:1401–1407

    Google Scholar 

  • Brushart TM, Mesulam MM (1980) Alteration in connections between muscle and anterior horn motoneurons after peripheral nerve repair. Science 208:603–605

    Google Scholar 

  • Bryan RN, Trevino DL, Willis WD (1972) Evidence for a common location of alpha and gamma motoneurons. Brain Res 38:193–196

    Google Scholar 

  • Burke RE, Strick PL Kanda K, Walmsley B (1977) Anatomy of medial gastrocnemius and soleus motor nuclei in cat spinal cord. J Neurophysiol 40(3):667–680

    Google Scholar 

  • Campa JF, Engel WK (1970) Histochemistry of motor neurons and interneurons in the cat lumbar spinal cord. Neurology (NY) 20:559–568

    Google Scholar 

  • Campa JF, Engel WK (1971) Histochemical and functional correlations in anterior horn neurons of the cat spinal cord. Science 171:198–199

    Google Scholar 

  • Campa JF, Engel WK (1973) Histochemistry of motoneurons innervating slow and fast motor units. In: New developements in electromyography and clinical neurophysiology, vol 1, pp 178–185

  • Close RI (1972) Dynamic properties of mammalian skeletal muscles. Physiol Rev 52:129–197

    Google Scholar 

  • de Sousa BN, Horrocks LA (1979) Development of rat spinal cord. I. Weight and length with a method for rapid removal. Dev Neurosci 2:115–121

    Google Scholar 

  • Droz B, Leblond CP (1963) Axonal migration of proteins in the central nervous system and peripheral nerves as shown by radioautography. J Comp Neurol 121:325–346

    Google Scholar 

  • Eadie MJ, Penny JE, Kukums JR, Tyrer JA (1973) Measurement of oxidative enzyme activity in anterior horn cells. In: Kakulas BA (ed) Basic research in myology, Part I: pp 72–75

  • Eisenberg BR, Kuda AM (1976) Discrimination between fiber populations in mammalian skeletal muscle by using ultrastructural parameters. J Ultrastructural Res 54:76–88

    Google Scholar 

  • Engel WK, Cunningham GC (1963) Rapid examination of muscle tissue. An improved trichrome method for fresh frozen biopsy sections. Neurology (NY) 13:919

    Google Scholar 

  • Hardonk MJ, Koudstaal J (1976) Enzyme histochemistry as a link between biochemistry and morphology. Prog Histochem Cytochem 8:1–68

    Google Scholar 

  • Henneman E (1981) Recruitment of motoneurons: The size principle. Prog Clin Neurophysiol 9:26–60

    Google Scholar 

  • Hirsch HE (1976) The chemistry of motor neurons: research strategies. UCLA Forum Med Sci 19:87–99

    Google Scholar 

  • Hirsch HE, Parks ME (1973) The quantitative histochemistry of acid proteinase in the nervous system: localization in neurons. J Neurochem 21:453–458

    Google Scholar 

  • Janzen RWC, Speckman E-J, Caspers H (1974) Distribution of large ventral horn cells in the lumbar cord of the rat. Cell Tissue Res 151:159–170

    Google Scholar 

  • Jakoubek B, Semiginovsky B, Dedicova A (1971) The effect of ACTH on the synthesis of proteins in spinal motoneurons as studied by autoradiography. Brain Res 25:133–141

    Google Scholar 

  • Kato T, Lowry OH (1973) Enzymes of energy-converting systems in individual mammalian nerve cell bodies. J Neurochem 20:151–163

    Google Scholar 

  • Kahn MA (1976) Histochemical characteristics of vertebrate striated muscle: a review. Prog Histochem Cytochem 8:1–48

    Google Scholar 

  • Krikorian JG, Guth L, Barrett CP, Donati EJ (1982) Enzyme histochemical changes after transection or hemisection of the spinal cord of the rat. Exp Neurol 76:623–643

    Google Scholar 

  • Lojda Z, Gossrau R, Schiebler TH (1979) Enzyme histochemistry. Springer-Verlag, Berlin Heidelberg New York, p 234

    Google Scholar 

  • Nachlas MM, Tsou K, DeSouza E, Cheng C, Seligman AM (1957) Cytochemical demonstration of succinic dehydrogenase by the use of a new p-nitrophenyl substituted ditetrazole. J Histochem Cytochem 5:420–436

    Google Scholar 

  • Neuhuber W, Niederle B (1980) Differential labeling by horseradish peroxidase of small and large spinal neurons of rats. Neurosci Lett 20:131–134

    Google Scholar 

  • Novikoff AB, Essner E (1962) Pathological changes in cytoplasmic organelles. Fed Proc 21:1130–1142

    Google Scholar 

  • Pearse AGE (1968) Histochemistry: theoretical and applied, vol 1. 3rd edn, Churchill, London

    Google Scholar 

  • Pearse AGE (1972) Histochemistry: theoretical and applied, vol 2. 3rd edn, Churchill, London

    Google Scholar 

  • Pellegrini M, Pompeino O, Corvaja N (1977) Identification of different size motoneurons labelled by the retrograde axonal transport of horseradish peroxidase. Pflügers Arch 368:161–163

    Google Scholar 

  • Penny JE, Kukums JR, Tyrer JH, Eadie MJ (1975) Quantitative oxidative enzyme histochemistry of the spinal cord. Part 2. Relaton of cell size and enzyme activity to vulnerability to ischaemia. J Neurol Sci 26:187–192

    Google Scholar 

  • Peter JB, Barnard RJ, Edgerton VR, Gillespie CA, Stempel KE (1972) Metabolic profiles of three fiber types of skeletal muscle in guinea pigs and rabbits. Biochemistry 11:2627–2633

    Google Scholar 

  • Pette D, Hofer HW (1980) The constant proportion enzyme group concept in the selection of reference enzymes in metabolism. In: Pette D (ed) Trends in enzyme histochemistry and cytochemistry. Ciba Foundation Symposium 73. Excerpta Medica, Amsterdam, Oxford, New York, pp 231–244

    Google Scholar 

  • Scarpelli DG, Hess R, Pearse AGE (1958) The cytochemical localization of oxidative enzymes. I. Diphosphopyridine nucleotide diaphorase and triphosphopyridine nucleotide diaphorase. J Biophys Biochem Cytol 4:747–752

    Google Scholar 

  • Schadé JP, Van Harreveld A (1961) Volume distribution of moto- and inter-neurons in the peroneus-tibialis neuron pool of the cat. J Comp Neurol 117:387–398

    Google Scholar 

  • Sickles DW, McClendon RE, Rosenquist TH (1982) Alternative method for quantitative enzyme histochemistry of muscle fibers. Application of photographic densitometry combined with atomic absorption spectrophotometry. Histochemistry 73:577–588

    Google Scholar 

  • Sokoloff L (1977) Relation between physiological function and energy metabolism in the central nervous system. J Neurochem 29:13–26

    Google Scholar 

  • Stoward PJ (1980) Criteria for the validation of quantitative histochemical enzyme techniques. In: Slater TF (ed) Trends in enzyme histochemistry and cytochemistry. Excerpta Medica, Amsterdam, Oxford, New York, pp 11–32

    Google Scholar 

  • Strick PL, Burke RE, Kanda K, Kim C, Walmsley B (1976) Differences between alpha and gamma motoneurons labelled with horseradish peroxidase by retrograde transport. Brain Res 113:582–588

    Google Scholar 

  • Troyer H, Rosenquist TH (1975) Atomic absorption spectrophotometry applied to photographic densitometry. J Histochem Cytochem 12:941–944

    Google Scholar 

  • Van Duijn P, Van der Ploeg M (1980) Microscopic cytochemistry as matrix chemistry. In: Slater TF (ed) Trends in enzyme histochemistry and cytochemistry. Excerpta Medica, Amsterdam Oxford New York, pp 209–229

    Google Scholar 

  • Wattenberg LW, Leong JL (1960) Effects of coenzyme Q10 and menadione on succinic dehydrogenase activity as measured by tetrazolium salt reduction. J Histochem Cytochem 8:296–303

    Google Scholar 

  • White A, Handler P, Smith EL (1973) Principles of biochemistry. McGraw-Hill Book, New York, pp 437–438

    Google Scholar 

  • Zwaagstra B, Kernell D (1981) Sizes of soma and stem dendrites in intracellularly labelled α-motoneurons of the cat. Brain Res 204:295–309C

    Google Scholar 

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The research was supported by BRSG grant # S-07 RRO5365-19 from NIH. The authors gratefully acknowledge Thomas G. Oblak for his excellent technical assistance and Connie Benson for typing the manuscript

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Sickles, D.W., McLendon, R.E. Metabolic variation among rat lumbosacral α-motoneurons. Histochemistry 79, 205–217 (1983). https://doi.org/10.1007/BF00489782

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  • DOI: https://doi.org/10.1007/BF00489782

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