Energy transduction in intact synaptosomes. Influence of plasma-membrane depolarization on the respiration and membrane potential of internal mitochondria determined in situ
- 15 January 1980
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 186 (1), 21-33
- https://doi.org/10.1042/bj1860021
Abstract
A method is described, based on the differential accumulation of Rb+ and methyltriphenylphosphonium, for the simultaneous estimation of the membrane potentials across the plasma membrane of isolated [guinea-pig] nerve endings (synaptosomes), and across the inner membrane of mitochondria within the synaptosomal cytoplasm. These determinations, together with measurements of respiratory rates, and ATP and phosphocreatine concentrations, are used to define the bioenergetic behavior of isolated synaptosomes under a variety of conditions. Under control conditions, in the presence of glucose, the plasma and mitochondrial membrane potentials are respectively 45 and 148 mV. Addition of a proton translocator induces a 5-fold increase in respiration, and abolishes the mitochondrial membrane potential. The addition of rotenone to inhibit respiration does not affect the plasma membrane potential, and only lowers the mitochondrial membrane potential to 128 mV. Evidence is presented that ATP synthesis by anaerobic glycolysis is sufficient under these conditions to maintain ATP-dependent processes, including the reversal of the mitochondrial ATP synthetase. Addition of oligomycin under non-respiring conditions leads to a complete collapse of the mitochondrial membrane potential. Even under control conditions the plasma membrane (Na+ + K+)-dependent ATPase is responsible for a significant proportion of the synaptosomal ATP turnover. Veratridine greatly increases respiration, and depolarizes the plasma membrane, but only slightly lowers the mitochondrial membrane potential. High K+ and ouabain also lower the plasma membrane potential without decreasing the mitochondrial membrane potential. In nonrespiring synaptosomes, anaerobic glycolysis is incapable of maintaining cytosolic ATP during the increased turnover induced by veratridine, and the mitochondrial membrane potential collapses. The internal mitochondria should be considered in any study of synaptosomal transport.This publication has 40 references indexed in Scilit:
- Qualitative measurements of the mitochondrial membrane potential in situ in Ehrlich ascites tumour cells using the safranine methodBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1979
- Deenergization of nerve terminals by β-bungarotoxinBiochemistry, 1978
- SIMILARITIES OF β‐BUNGAROTOXIN AND PHOSPHOLIPASE A2 AND THEIR MECHANISM OF ACTIONJournal of Neurochemistry, 1978
- Non-linear relationship between fluorescence and membrane potentialBiochimica et Biophysica Acta (BBA) - Biomembranes, 1977
- RAPID EFFECTS OF VERATRIDINE, TETRODOTOXIN, GRAMICIDIN D, VALINOMYCIN AND NaCN ON THE NA+, K+ AND ATP CONTENTS OF SYNAPTOSOMESJournal of Neurochemistry, 1977
- Safranine as a probe of the mitochondrial membrane potentialFEBS Letters, 1976
- THE CHLORIDE CONTENT, ANION DEFICIT AND VOLUME OF SYNAPTOSOMESJournal of Neurochemistry, 1975
- DEPOLARIZING STIMULI AND THE RELEASE OF PHYSIOLOGICALLY ACTIVE AMINO ACIDS FROM SUSPENSIONS OF MAMMALIAN SYNAPTOSOMESJournal of Neurochemistry, 1973
- ADENOSINETRIPHOSPHATASE AND NUCLEOTIDE METABOLISM IN SYNAPTOSOMES OF RAT BRAIN1Journal of Neurochemistry, 1970
- RESPIRATION IN VITRO OF SYNAPTOSOMES FROM MAMMALIAN CEREBRAL CORTEXJournal of Neurochemistry, 1969