Albanese, V., and Frydman, J. (2002) Where chaperones and nascent polypeptides meet. Nat Struct Biol 9: 716-718.
Allen, M.A., Lauro, F.M., Williams, T.J., Burg, D., Siddiqui, K.S., and De Francisci, D., etal. (2009) The genome sequence of the psychrophilic archaeon, Methanococcoides burtonii: the role of genome evolution in cold adaptation. ISME J 3: 1012-1035.
Ayala-del-Rio, H.L., Chain, P.S., Grzymski, J.J., Ponder, M.A., Ivanova, N., and Bergholz, P.W., etal. (2010) The genome sequence of Psychrobacter arcticus 273-4, a psychroactive Siberian permafrost bacterium, reveals mechanisms for adaptation to low-temperature growth. Appl Environ Microbiol 76: 2304-2312.
Bakermans, C., Tollaksen, S.L., Giometti, C.S., Wilkerson, C., Tiedje, J.M., and Thomashow, M.F. (2007) Proteomic analysis of Psychrobacter cryohalolentis K5 during growth at subzero temperatures. Extremophiles 11: 343-354.
Baldwin, R.L. (2008) The search for folding intermediates and the mechanism of protein folding. Annu Rev Biophys 37: 1-21.
Bergholz, P.W., Bakermans, C., and Tiedje, J.M. (2009) Psychrobacter arcticus 273-4 uses resource efficiency and molecular motion adaptations for subzero temperature growth. J Bacteriol 191: 2340-2352.
Bowman, J.B. (2008) Genomic analysis of psychrophilic prokaryotes. In Psychrophiles, from Biodiversity to Biotechnology. Margesin, R., Schinner, F., Marx, J.C., and Gerday, C. (eds). Berlin, Heidelberg, Germany: Springer-Verlag, pp. 265-284.
Campanaro, S., Williams, T.J., Burg, D.W., De Francisci, D., Treu, L., Lauro, F.M., and Cavicchioli, R. (2011) Temperature-dependent global gene expression in the Antarctic archaeon Methanococcoides burtonii. Environ Microbiol (in press): doi:10.1111/j.1462-2920.2010.02367.x.
Cartier, G., Lorieux, F., Allemand, F., Dreyfus, M., and Bizebard, T. (2010) Cold adaptation in DEAD-box proteins. Biochemistry 49: 2636-2646.
Cary, S.C., McDonald, I.R., Barrett, J.E., and Cowan, D.A. (2010) On the rocks: the microbiology of Antarctic Dry Valley soils. Nat Rev Microbiol 8: 129-138.
Casanueva, A., Tuffin, M., Cary, C., and Cowan, D.A. (2010) Molecular adaptations to psychrophily: the impact of 'omic' technologies. Trends Microbiol 18: 374-381.
Cowan, D.A., Casanueva, A., and Stafford, W. (2007) Ecology and biodiversity of cold-adapted microorganisms. In Physiology and Biochemistry of Extremophiles. Gerday, C., and Glansdorff, N. (eds). Washington, DC, USA: ASM Press, pp. 119-132.
D'Amico, S., Collins, T., Marx, J.C., Feller, G., and Gerday, C. (2006) Psychrophilic microorganisms: challenges for life. EMBO Rep 7: 385-389.
Dalluge, J.J., Hamamoto, T., Horikoshi, K., Morita, R.Y., Stetter, K.O., and McCloskey, J.A. (1997) Posttranscriptional modification of tRNA in psychrophilic bacteria. J Bacteriol 179: 1918-1923.
Duchaud, E., Boussaha, M., Loux, V., Bernardet, J.F., Michel, C., and Kerouault, B., etal. (2007) Complete genome sequence of the fish pathogen Flavobacterium psychrophilum. Nat Biotechnol 25: 763-769.
Feller, G. (2010) Protein stability and enzyme activity at extreme biological temperatures. J Phys Condens Matter 22: 323101.
Feller, G., and Gerday, C. (2003) Psychrophilic enzymes: hot topics in cold adaptation. Nat Rev Microbiol 1: 200-208.
Ferrer, M., Chernikova, T.N., Yakimov, M.M., Golyshin, P.N., and Timmis, K.N. (2003) Chaperonins govern growth of Escherichia coli at low temperatures. Nat Biotechnol 21: 1266-1267.
Ferrer, M., Lunsdorf, H., Chernikova, T.N., Yakimov, M., Timmis, K.N., and Golyshin, P.N. (2004) Functional consequences of single:double ring transitions in chaperonins: life in the cold. Mol Microbiol 53: 167-182.
Friedmann, E.I. (1982) Endolithic microorganisms in the Antarctic cold desert. Science 215: 1045-1053.
Galtier, N., and Lobry, J.R. (1997) Relationships between genomic G+C content, RNA secondary structures, andoptimal growth temperature in prokaryotes. J Mol Evol 44: 632-636.
Gerday, C., and Glansdorff, N. (2007) Physiology and Biochemistry of Extremophiles. Washington, DC, USA: ASM Press.
Gilichinsky, D., Rivkina, E., Bakermans, C., Shcherbakova, V., Petrovskaya, L., Ozerskaya, S., etal. (2005) Biodiversity of cryopegs in permafrost. FEMS Microbiol Ecol 53: 117-128.
Goodchild, A., Saunders, N.F., Ertan, H., Raftery, M., Guilhaus, M., Curmi, P.M., and Cavicchioli, R. (2004) A proteomic determination of cold adaptation in the Antarctic archaeon, Methanococcoides burtonii. Mol Microbiol 53: 309-321.
Goodchild, A., Raftery, M., Saunders, N.F., Guilhaus, M., and Cavicchioli, R. (2005) Cold adaptation of the Antarctic archaeon, Methanococcoides burtonii assessed by proteomics using ICAT. J Proteome Res 4: 473-480.
Hartl, F.U., and Hayer-Hartl, M. (2009) Converging concepts of protein folding in vitro and in vivo. Nat Struct Mol Biol 16: 574-581.
Jenkins, J., and Pickersgill, R. (2001) The architecture of parallel β-helices and related folds. Prog Biophys Mol Biol 77: 111-175.
Kandror, O., and Goldberg, A.L. (1997) Trigger factor is induced upon cold shock and enhances viability of Escherichia coli at low temperatures. Proc Natl Acad Sci USA 94: 4978-4981.
Kawamoto, J., Kurihara, T., Kitagawa, M., Kato, I., and Esaki, N. (2007) Proteomic studies of an Antarctic cold-adapted bacterium, Shewanella livingstonensis Ac10, for global identification of cold-inducible proteins. Extremophiles 11: 819-826.
Khachane, A.N., Timmis, K.N., and dos Santos, V.A. (2005) Uracil content of 16S rRNA of thermophilic and psychrophilic prokaryotes correlates inversely with their optimal growth temperatures. Nucleic Acids Res 33: 4016-4022.
King, J., Haase-Pettingell, C., Robinson, A.S., Speed, M., and Mitraki, A. (1996) Thermolabile folding intermediates: inclusion body precursors and chaperonin substrates. FASEB J 10: 57-66.
Kramers, H.A. (1940) Brownian motion in a field of force and the diffusion model of chemical reactions. Physica 7: 284-304.
Laksanalamai, P., Whitehead, T.A., and Robb, F.T. (2004) Minimal protein-folding systems in hyperthermophilic archaea. Nat Rev Microbiol 2: 315-324.
Lim, J., Thomas, T., and Cavicchioli, R. (2000) Low temperature regulated DEAD-box RNA helicase from the Antarctic archaeon, Methanococcoides burtonii. J Mol Biol 297: 553-567.
Margesin, R., Schinner, F., Marx, J.C., and Gerday, C. (2008) Psychrophiles, from Biodiversity to Biotechnology. Berlin, Heidelberg, Germany: Springer-Verlag.
Medigue, C., Krin, E., Pascal, G., Barbe, V., Bernsel, A., Bertin, P.N., etal. (2005) Coping with cold: the genome of the versatile marine Antarctica bacterium Pseudoalteromonas haloplanktis TAC125. Genome Res 15: 1325-1335.
Methe, B.A., Nelson, K.E., Deming, J.W., Momen, B., Melamud, E., Zhang, X., etal. (2005) The psychrophilic lifestyle as revealed by the genome sequence of Colwellia psychrerythraea 34H through genomic and proteomic analyses. Proc Natl Acad Sci USA 102: 10913-10918.
Piette, F., D'Amico, S., Struvay, C., Mazzucchelli, G., Renaut, J., Tutino, M.L., etal. (2010) Proteomics of life at low temperatures: trigger factor is the primary chaperone in the Antarctic bacterium Pseudoalteromonas haloplanktis TAC125. Mol Microbiol 76: 120-132.
Qiu, Y., Kathariou, S., and Lubman, D.M. (2006) Proteomic analysis of cold adaptation in a Siberian permafrost bacterium Exiguobacterium sibiricum 255-15 by two-dimensional liquid separation coupled with mass spectrometry. Proteomics 6: 5221-5233.
Rabus, R., Ruepp, A., Frickey, T., Rattei, T., Fartmann, B., Stark, M., etal. (2004) The genome of Desulfotalea psychrophila, a sulfate-reducing bacterium from permanently cold Arctic sediments. Environ Microbiol 6: 887-902.
Riley, M., Staley, J.T., Danchin, A., Wang, T.Z., Brettin, T.S., Hauser, L.J., etal. (2008) Genomics of an extreme psychrophile, Psychromonas ingrahamii. BMC Genomics 9: 210. doi:210.1186/1471-2164-1189-1210.
Rodrigues, D.F., and Tiedje, J.M. (2008) Coping with our cold planet. Appl Environ Microbiol 74: 1677-1686.
Rodrigues, D.F., Ivanova, N., He, Z., Huebner, M., Zhou, J., and Tiedje, J.M. (2008) Architecture of thermal adaptation in an Exiguobacterium sibiricum strain isolated from 3 million year old permafrost: a genome and transcriptome approach. BMC Genomics 9: 547. doi:510.1186/1471-2164-1189-1547.
Russell, N.J. (2007) Psychrophiles: membrane adaptations. In Physiology and Biochemistry of Extremophiles. Gerday, C., and Glansdorff, N. (eds). Washington, DC, USA: ASM Press, pp. 155-164.
Saunders, N.F., Thomas, T., Curmi, P.M., Mattick, J.S., Kuczek, E., Slade, R., etal. (2003) Mechanisms of thermal adaptation revealed from the genomes of the Antarctic Archaea Methanogenium frigidum and Methanococcoides burtonii. Genome Res 13: 1580-1588.
Scholz, C., Stoller, G., Zarnt, T., Fischer, G., and Schmid, F.X. (1997) Cooperation of enzymatic and chaperone functions of trigger factor in the catalysis of protein folding. EMBO J 16: 54-58.
Siddiqui, K.S., and Cavicchioli, R. (2006) Cold-adapted enzymes. Annu Rev Biochem 75: 403-433.
Smalas, A.O., Leiros, H.K., Os, V., and Willassen, N.P. (2000) Cold adapted enzymes. Biotechnol Annu Rev 6: 1-57.
Stoller, G., Rucknagel, K.P., Nierhaus, K.H., Schmid, F.X., Fischer, G., and Rahfeld, J.U. (1995) A ribosome-associated peptidyl-prolyl cis/trans isomerase identified as the trigger factor. EMBO J 14: 4939-4948.
Suzuki, Y., Haruki, M., Takano, K., Morikawa, M., and Kanaya, S. (2004) Possible involvement of an FKBP family member protein from a psychrotrophic bacterium Shewanella sp. SIB1 in cold-adaptation. Eur J Biochem 271: 1372-1381.
Ting, L., Williams, T.J., Cowley, M.J., Lauro, F.M., Guilhaus, M., Raftery, M.J., and Cavicchioli, R. (2010) Cold adaptation in the marine bacterium, Sphingopyxis alaskensis, assessed using quantitative proteomics. Environ Microbiol 12: 2658-2676.
Tosco, A., Birolo, L., Madonna, S., Lolli, G., Sannia, G., andMarino, G. (2003) GroEL from the psychrophilic bacterium Pseudoalteromonas haloplanktis TAC 125: molecular characterization and gene cloning. Extremophiles 7: 17-28.
Williams, T.J., Burg, D.W., Raftery, M.J., Poljak, A., Guilhaus, M., Pilak, O., and Cavicchioli, R. (2010) Global proteomic analysis of the insoluble, soluble, and supernatant fractions of the psychrophilic archaeon Methanococcoides burtonii. Part I: the effect of growth temperature. J Proteome Res 9: 640-652.
Zheng, S., Ponder, M.A., Shih, J.Y., Tiedje, J.M., Thomashow, M.F., and Lubman, D.M. (2007) A proteomic analysis of Psychrobacter articus 273-4 adaptation to low temperature and salinity using a 2-D liquid mapping approach. Electrophoresis 28: 467-488.
Zoldak, G., Aumuller, T., Lucke, C., Hritz, J., Oostenbrink, C., Fischer, G., and Schmid, F.X. (2009) A library of fluorescent peptides for exploring the substrate specificities of prolyl isomerases. Biochemistry 48: 10423-10436.