» Articles » PMID: 24272474

Regulation of the Cytosolic Adenylate Ratio As Determined by Rapid Fractionation of Mesophyll Protoplasts of Oat : Effect of Electron Transfer Inhibitors and Uncouplers

Overview
Journal Planta
Specialty Biology
Date 2013 Nov 26
PMID 24272474
Citations 11
Authors
Affiliations
Soon will be listed here.
Abstract

Adenylate levels in chloroplasts, mitochondria and the cytosol of oat mesophyll protoplasts were determined under light and dark conditions, in the absence and presence of plasmalemma-permeable inhibitors of electron transfer and uncouplers of phosphorylation. This was achieved using a microgradient technique which allowed an integrated homogenization and fractionation of protoplasts within 60 s (Hampp et al. 1982, Plant Physiol. 69, 448-455), under conditions which quench bulk activities of metabolic interconversion in less than 2 s. In illuminated controls, ATP/ADP ratios were found to be 2.1 in chloroplasts, about unity in mitochondria, and 11 in the cytosol; whereas, in the dark, this ratio only showed a large drop in chloroplasts (0.4). None of the compounds used [carbonylcyanide m-chlorophenylhydrazone (CCCP), carbonylcyanide p-trifluoromethoxy-phenylhydrazone (FCCP), antimycin A, dibromothymoquinone (DBMIB), dichlorophenyldi-methylurea (DCMU), or salicylhydroxamic acid (SHAM)] affected the stroma adenylate ratio in the dark. Under illumination, however, the ATP/ADP ratios were partly reduced in the presence of antimycin (inhibitor of cyclic photophosphorylation) and of DCMU (inhibitor of linear electron flow), while in the presence of DBMIB, DCMU+ antimycin (inhibition of both cyclic and linear electron flow), and CCCP (uncoupling) the ratio obtained was the same as that occurring in the dark. In contrast, mitochondrial adenylate levels did not exhibit large variations under the various treatments. The cytosolic ATP/ADP ratio, however, showed dramatic changes: in darkened protoplasts, cytosolic values dropped to 0.2 and 0.1 in the presence of uncouplers and antimycin, respectively, while SHAM did not induce any significant alteration. In the light, a similar pronounced decrease in ATP levels was observed only after the application of uncouplers or inhibitors of both mitochondrial and photosynthetic electron transport, whereas selective inhibition of the latter was largely ineffective in reducing the cytosolic ATP/ADP ratio. Thus, the results show that the antimycin-sensitive electron transport is, potentially, equally active in light and darkness. In addition, they indicate that antimycin-insensitive electron transport in mitochondria (alternative pathway) does not significantly contribute to the cytosolic energy state.

Citing Articles

Electro-fusion of mesophyll protoplasts ofAvena sativa : Determination of the cellular adenylate-level of hybrids and its influence on the fusion process.

Verhoek-Kohler B, Hampp R, Ziegler H, Zimmermann U Planta. 2013; 158(3):199-204.

PMID: 24264608 DOI: 10.1007/BF01075255.


Energy coupling for membrane hyperpolarization in Lemna: respiration rate, ATP level and membrane potential at low oxygen concentrations.

Loppert H Planta. 2013; 159(4):329-35.

PMID: 24258230 DOI: 10.1007/BF00393171.


Compartmentation of labeled fixation products in intact mesophyll protoplasts from Avena sativa L. after in-situ inhibition of the chloroplast phosphate translocator.

Hampp R, Goller M Planta. 2013; 159(4):314-21.

PMID: 24258228 DOI: 10.1007/BF00393169.


Pyridine nucleotides and redox-charge evolution during the induction of flowering in spinach leaves.

Bonzon M, Simon P, Greppin H, Wagner E Planta. 2013; 159(3):254-60.

PMID: 24258176 DOI: 10.1007/BF00397533.


Adenine-nucleotide levels and metabolism-dependent membrane potential in cells of Nitellopsis obtusa Groves.

Mimura T, Shimmen T, Tazawa M Planta. 2013; 162(1):77-84.

PMID: 24253950 DOI: 10.1007/BF00397424.


References
1.
Berden J, SLATER E . The allosteric binding of antimycin to cytochrome b in the mitochondrial membrane. Biochim Biophys Acta. 1972; 256(2):199-215. DOI: 10.1016/0005-2728(72)90053-9. View

2.
Santarius K, Heber U . Changes in the intracellular levels of ATP, ADP, AMP and P1 and regulatory function of the adenylate system in leaf cells during photosynthesis. Biochim Biophys Acta. 1965; 102(1):39-54. DOI: 10.1016/0926-6585(65)90201-3. View

3.
Mills J, Slovacek R, Hind G . Cyclic electron transport in isolated intact chloroplasts. Further studies with antimycin. Biochim Biophys Acta. 1978; 504(2):298-309. DOI: 10.1016/0005-2728(78)90178-0. View

4.
SLATER E . The mechanism of action of the respiratory inhibitor, antimycin. Biochim Biophys Acta. 1973; 301(2):129-54. DOI: 10.1016/0304-4173(73)90002-5. View

5.
Slovacek R, Crowther D, Hind G . Cytochrome function in the cyclic electron transport pathway of chloroplasts. Biochim Biophys Acta. 1979; 547(1):138-48. DOI: 10.1016/0005-2728(79)90102-6. View