Importance of Rhodospirillum rubrum H + -Pyrophosphatase under Low-Energy Conditions
Author:
Affiliation:
1. Departamento de Bioquímica, Facultad de Medicina
2. Instituto de Fisiología Celular, Universidad Nacional Autónoma de México, México, D.F., Mexico
Abstract
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Link
https://journals.asm.org/doi/pdf/10.1128/JB.186.19.6651-6655.2004
Reference30 articles.
1. Baltscheffsky, H., L. V. von Stedingk, H. W. Heldt, and M. Klingenberg. 1966. Inorganic pyrophosphate: formation in bacterial photophosphorylation. Science153:1120-1122.
2. Baykov, A. A., N. V. Sergina, O. A. Evtushenko, and E. B. Dubnova. 1996. Kinetic characterization of the hydrolytic activity of the H+ pyrophosphatase of Rhodospirillum rubrum in membrane-bound and isolated states. Eur. J. Biochem.236:121-127.
3. Carystinos, G. D., H. R. MacDonald, A. F. Monroy, R. S. Dhindsa, and R. J. Poole. 1995. Vacuolar H+-translocating pyrophosphatase is induced by anoxia or chilling in seedlings of rice. Plant Physiol.108:641-649.
4. Celis, H., and I. Romero. 1987. The phosphate-pyrophosphate exchange and hydrolytic reactions of the membrane-bound pyrophosphatase of Rhodospirillum rubrum: effects of pH and divalent cations. J. Bioenerg. Biomembr.19:255-272.
5. Celis, H., B. Franco, S. Escobedo, and I. Romero. 2003. Rhodobacter sphaeroides has a family II pyrophosphatase. Comparison with other species of photosynthetic bacteria. Arch. Microbiol.179:368-376.
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