F-and V-ATPases in the genus Thermus and related species.
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O Sigurdsson | G O Hreggvidsson | C Radax | N Aichinger | C Gruber | J K Kristjansson | H Stan-Lotter | J. Kristjánsson | H. Stan-Lotter | G. Hreggvidsson | N. Aichinger | C. Gruber | C. Radax | O. Sigurdsson | H. Stan‐Lotter
[1] T. Jukes. CHAPTER 24 – Evolution of Protein Molecules , 1969 .
[2] P. Linnett,et al. Preparation of the soluble ATPase from mitochondria, chloroplasts, and bacteria by the chloroform technique. , 1979, Methods in enzymology.
[3] Johann Peter Gogarten,et al. Evolution of structure and function of V-ATPases , 1992, Journal of bioenergetics and biomembranes.
[4] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[5] A. Baykov,et al. A malachite green procedure for orthophosphate determination and its use in alkaline phosphatase-based enzyme immunoassay. , 1988, Analytical biochemistry.
[6] Ross A. Overbeek,et al. The Ribosomal Database Project (RDP) , 1996, Nucleic Acids Res..
[7] H. Towbin,et al. Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: procedure and some applications. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[8] W. Konings,et al. An Na+-pumping V1V0-ATPase complex in the thermophilic bacterium Clostridium fervidus , 1997, Journal of bacteriology.
[9] K. Yokoyama,et al. Molecular cloning of genes encoding major two subunits of a eubacterial V-type ATPase from Thermus thermophilus. , 1991, Biochimica et biophysica acta.
[10] A. E. Senior. The proton-translocating ATPase of Escherichia coli. , 1990, Annual review of biophysics and biophysical chemistry.
[11] D. Higgins,et al. Evolution of cytochrome oxidase, an enzyme older than atmospheric oxygen. , 1994, The EMBO journal.
[12] N. Nelson,et al. The evolution of H+-ATPases. , 1989, Trends in biochemical sciences.
[13] E. Stackebrandt,et al. Phylogenetic Evidence for the Relationship of Saccharococcus thermophilus to Bacillus stearothermophilus , 1993 .
[14] J. Thompson,et al. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. , 1994, Nucleic acids research.
[15] J. Kristjánsson,et al. Thermus scotoductus, sp. nov., a Pigment-Producing Thermophilic Bacterium from Hot Tap Water in Iceland and Including Thermus sp. X-1 , 1994 .
[16] I. Lasa,et al. Horizontal transference of S-layer genes within Thermus thermophilus , 1995, Journal of bacteriology.
[17] H. Kobayashi,et al. Gene structure of Enterococcus hirae (Streptococcus faecalis) F1F0-ATPase, which functions as a regulator of cytoplasmic pH , 1992, Journal of bacteriology.
[18] Nucleotide sequence of the ATPase A- and B-subunits of the halophilic archaebacterium Haloferax volcanii and characterization of the enzyme. , 1995, Biochimica et biophysica acta.
[19] P. A. Lanzetta,et al. An improved assay for nanomole amounts of inorganic phosphate. , 1979, Analytical biochemistry.
[20] L. Hochstein,et al. A comparison of an ATPase from the archaebacterium Halobacterium saccharovorum with the F1 moiety from the Escherichia coli ATP synthase. , 1989, European journal of biochemistry.
[21] D. M. Ivey,et al. Purification and characterization of the F1-ATPase from Clostridium thermoaceticum , 1986, Journal of bacteriology.
[22] T. Noumi,et al. Mode of inhibition of sodium azide on H+‐ATPase of Escherichia coli , 1987, FEBS letters.
[23] C. Hou,et al. A cross-linking study of the Ca2+, Mg2+-activated adenosine triphosphatase of Escherichia coli. , 1980, European journal of biochemistry.
[24] R. Molday,et al. Interaction of Escherichia coli F1-ATPase with dicyclohexylcarbodiimide-binding polypeptide. , 1983, Biochimica et biophysica acta.
[25] P. Forterre,et al. The nature of the last universal ancestor and the root of the tree of life, still open questions. , 1992, Bio Systems.
[26] D. Klionsky,et al. Assembly of a functional F0 of the proton-translocating ATPase of Escherichia coli. , 1983, Journal of Biological Chemistry.
[27] N. Saitou,et al. The neighbor-joining method: a new method for reconstructing phylogenetic trees. , 1987, Molecular biology and evolution.
[28] M. Forgac. Structure and function of vacuolar class of ATP-driven proton pumps. , 1989, Physiological reviews.
[29] N. Nelson. Molecular and Cellular Biology of F- and V-ATPases , 1995 .
[30] H. Stan-Lotter,et al. Western blot of stained proteins from dried polyacrylamide gels. , 1997, Analytical biochemistry.
[31] K. Furukawa,et al. Genetic transformation of the extreme thermophile Thermus thermophilus and of other Thermus spp , 1986, Journal of bacteriology.
[32] O. H. Lowry,et al. Protein measurement with the Folin phenol reagent. , 1951, The Journal of biological chemistry.
[33] N. Nelson. Evolution of organellar proton-ATPases. , 1992, Biochimica et biophysica acta.
[34] A. Majerník,et al. The presence of H+ and Na+‐translocating ATPases in Methanobacterium thermoautotrophicum and their possible function under alkaline conditions , 1995, FEBS letters.
[35] V. Müller,et al. Purification of ATP synthase from Acetobacterium woodii and identification as a Na(+)-translocating F1F0-type enzyme. , 1994, European journal of biochemistry.
[36] M. Futai,et al. Nucleotide sequence of the genes for β and ε subunits of proton-translocating ATPase from Escherichia coli , 1982 .
[37] R. L. Cross,et al. Gene duplication as a means for altering H+/ATP ratios during the evolution of Fo F1 ATPases and synthases , 1990, FEBS letters.
[38] J. Gogarten,et al. Horizontal transfer of ATPase genes--the tree of life becomes a net of life. , 1993, Bio Systems.
[39] T. Hamamoto,et al. Sequence and over-expression of subunits of adenosine triphosphate synthase in thermophilic bacterium PS3. , 1988, Biochimica et biophysica acta.
[40] K. Yokoyama,et al. Thermus thermophilus membrane-associated ATPase. Indication of a eubacterial V-type ATPase. , 1990, The Journal of biological chemistry.
[41] T. Oshima. Genes and Genetic Manipulation in Thermus thermophilus , 1995 .
[42] I. Yamato,et al. Primary structure of the α‐subunit of vacuolar‐type Na+‐ATPase inEnterococcus hirae Amplification of a 1000‐bp fragment by polymerase chain reaction , 1991 .
[43] L. Hochstein,et al. Halobacterium saccharovorum sp. nov., a carbohydrate-metabolizing, extremely halophilic bacterium. , 1976, Canadian journal of microbiology.
[44] F. Mayer,et al. Subunit Structure and Organization of the Genes of the A1A0 ATPase from the Archaeon Methanosarcina mazei Gö1* , 1996, The Journal of Biological Chemistry.
[45] M. Futai,et al. Structure and function of proton-translocating adenosine triphosphatase (F0F1): biochemical and molecular biological approaches. , 1983, Microbiological reviews.
[46] L. Hochstein. ATP synthesis in Halobacterium saccharovorum: evidence that synthesis may be catalysed by an F0F1-ATP synthase. , 1992, FEMS microbiology letters.
[47] Manuel A. S. Santos,et al. Numerical Taxonomy of Thermus Isolates from Hot Springs in Portugal , 1989 .
[48] R. H. Fillingame. CHAPTER 12 – Molecular Mechanics of ATP Synthesis by F1F0-Type H+ -Transporting ATP Synthases , 1990 .
[49] J. G. Morris,et al. The proton-translocating adenosine triphosphatase of the obligately anaerobic bacterium Clostridium pasteurianum. 2. ATP synthetase activity. , 1979, European journal of biochemistry.
[50] J. Kristjánsson,et al. DNA:DNA hybridization and chemotaxonomic studies of Thermus scotoductus. , 1995, Research in microbiology.
[51] Erko Stackebrandt,et al. 16S-rDNA analysis of Spirochaeta thermophila: Its phylogenetic position and implications for the systematics of the order Spirochaetales , 1992 .
[52] Michael J Sanderson,et al. CONFIDENCE LIMITS ON PHYLOGENIES: THE BOOTSTRAP REVISITED , 1989, Cladistics : the international journal of the Willi Hennig Society.
[53] A. Rodrigo,et al. Phylogeny of twenty Thermus isolates constructed from 16S rRNA gene sequence data. , 1993, International journal of systematic bacteriology.
[54] P. Pedersen,et al. Ion motive ATPases. I. Ubiquity, properties, and significance to cell function , 1987 .
[55] E. Stackebrandt,et al. 16S rDNA analysis reveals phylogenetic diversity among the polysaccharolytic clostridia. , 1993, FEMS microbiology letters.
[56] C. Hawthorne,et al. Sequence of the genes for the β and ε subunits of the ATP synthase of bacillus megaterium QM B1551 , 1988 .
[57] H. Stan-Lotter,et al. Thiol modification as a probe of conformational forms of the F1 ATPase of Escherichia coli and of the structural asymmetry of its beta subunits. , 1986, European journal of biochemistry.
[58] Y. Mukohata,et al. The ATP synthase of Halobacterium salinarium (halobium) is an archaebacterial type as revealed from the amino acid sequences of its two major subunits. , 1991, Archives of biochemistry and biophysics.
[59] R. Sharp,et al. The Taxonomy and Identification of Thermus , 1995 .
[60] Masasuke Yoshida,et al. Evolution of the vacuolar H+-ATPase: implications for the origin of eukaryotes. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[61] I. Yamato,et al. Cloning and sequencing of the genes coding for the A and B subunits of vacuolar-type Na(+)-ATPase from Enterococcus hirae. Coexistence of vacuolar- and F0F1-type ATPases in one bacterial cell. , 1993, The Journal of biological chemistry.