Yi T, Takani Y, Yoshida T, Sakamoto T (2005) Crucial role of extracellular polysaccharides in
desiccation and freezing tolerance in the terrestrial cyanobacterium Nostoc commune. App
Envion Microbiol 71:7327–7333
Tutino M, Duilio A, Parrilli E, Remaut E, Sannia G, Marino G (2001b) A novel replication element
from an Antarctic plasmid as a tool for the expression of proteins at low temperature.
Extremophiles 5:257–264
Varcamonti M, Arsenijevic S, Martirani L, Fusco D, Naclerio G, Felice MD (2006) Expression of
the heat shock gene clpL of Streptococcus thermophilus is induced by both heat and cold shock.
Microbial Cell Factories. https://doi.org/10.1186/1475-2859-5-6
Wada H, Murata N (1990) Temperature-induced changes in the fatty acid composition of the
cyanobacterium, Synechocystis PCC6803. Plant Physiol 92:1062–1069
Walworth JL, Pond A, Snape I, Rayner J, Ferguson S, Harvey P (2007) Nitrogen requirements for
maximizing petroleum bioremediation in a sub-Antarctic soil Cold Regions. Sci Tech 48:84–91
Wang E, Koutsioulis D, Leiros HK, Andersen OA, Bouriotis V, Hough E, Heikinheimo P (2007)
Crystal structure of alkaline phosphatase from the Antarctic bacterium TAB5. J Mol Biol
366:1318–1331
Wang QF, Miao JL, Hou YH, Ding Y, You LG (2006) Expression of CspA and GST by an
Antarctic psychrophilic bacterium Colwellia sp. NJ341 at near-freezing temperature. World J
Microbiol Biotechnol 22:311–316
Wintrode PL, Miyazaki K, Arnold FH (2000) Cold-adaptation of a mesophilic subtilisin-like
protease by laboratory evolution. J Biol Chem 275:31635–31640
Witter LD, Campbell MF, Azuma Y (1966) Formation of bacterial pigments at low temperature by
psychrophillic pseudomonads. Dev Ind Microbiol 7:231–239
Wong PTW, McBeath JH (1999) Plant protection by cold-adapted fungi. In: Margesin R, Schinner
F (eds) Biotechnological applications of cold-adapted organisms. Springer, Berlin, pp 177–190
Woodall KA, Gallagher M, Blakely G, Ferguson G (2011) Cold shock response of Salmonella
enterica serovar typhimurium; the involvement of the CspA paralogues. PhD thesis, http://www.
era.lib.ed.ac.uk/bitstream/1842/5652/1/Woodall2011.pdf. Accessed on 16 July 2012
Xu H, Griffith M, Patten CL, Glick BR (1998) Isolation and characterization of an antifreeze protein
with ice nucleation activity from the plant growth promoting rhizobacterium Pseudomonas
putida GR12-2. Can J Microbiol 44:64–73
Yamanaka K (1999) Cold shock response in Escherichia coli. J Mol Microbiol Biotechnol
34:193–202
Yamashita Y, Nakamura N, Omiya K, Nishikawa J, Kawahara H, Obata H (2002) Identification of
an antifreeze lipoprotein from Moraxella sp. of Antarctic origin. Biosci. Biotechnol Biochem
66:239–247
Yankofsky SA, Levin Z, Bertold T, Sandlerman N (1981) Some basic characteristics of bacterial
freezing nuclei. J Appl Meterol 20:1013–1019
Yoshiba Y, Kiyosue T, Nakashima K, Yamaguchi-Shinozaki K, Shinozaki K (1997) Regulation of
levels of proline as an osmolyte in plants under water stress. Plant cell Physiol 38:1095–1102
Zartler ER, Jenney FE, Terrell M, Eidsness MK, Adams MW, Prestegard JH (2001) Structural basis
for thermostability in aporubredoxins from Pyrococcus furiosus and Clostridium pasteurianum.
Biochem 40:7279–7290
Zhang W, Shi L (2005) Distribution and evolution of multiple-step phosphorelay in prokaryotes:
lateral domain recruitment involved in the formation of hybrid-type histidine kinases. Microbiol
151:2159–2173
Zhao G, Zhang G (2005) Effect of protective agents, freezing temperature, rehydration media on
viability of malolactic bacteria subjected to freeze-drying. J Appl Microbiol 99:333–338
226
P. K. Mishra et al.
desiccation and freezing tolerance in the terrestrial cyanobacterium Nostoc commune. App
Envion Microbiol 71:7327–7333
Tutino M, Duilio A, Parrilli E, Remaut E, Sannia G, Marino G (2001b) A novel replication element
from an Antarctic plasmid as a tool for the expression of proteins at low temperature.
Extremophiles 5:257–264
Varcamonti M, Arsenijevic S, Martirani L, Fusco D, Naclerio G, Felice MD (2006) Expression of
the heat shock gene clpL of Streptococcus thermophilus is induced by both heat and cold shock.
Microbial Cell Factories. https://doi.org/10.1186/1475-2859-5-6
Wada H, Murata N (1990) Temperature-induced changes in the fatty acid composition of the
cyanobacterium, Synechocystis PCC6803. Plant Physiol 92:1062–1069
Walworth JL, Pond A, Snape I, Rayner J, Ferguson S, Harvey P (2007) Nitrogen requirements for
maximizing petroleum bioremediation in a sub-Antarctic soil Cold Regions. Sci Tech 48:84–91
Wang E, Koutsioulis D, Leiros HK, Andersen OA, Bouriotis V, Hough E, Heikinheimo P (2007)
Crystal structure of alkaline phosphatase from the Antarctic bacterium TAB5. J Mol Biol
366:1318–1331
Wang QF, Miao JL, Hou YH, Ding Y, You LG (2006) Expression of CspA and GST by an
Antarctic psychrophilic bacterium Colwellia sp. NJ341 at near-freezing temperature. World J
Microbiol Biotechnol 22:311–316
Wintrode PL, Miyazaki K, Arnold FH (2000) Cold-adaptation of a mesophilic subtilisin-like
protease by laboratory evolution. J Biol Chem 275:31635–31640
Witter LD, Campbell MF, Azuma Y (1966) Formation of bacterial pigments at low temperature by
psychrophillic pseudomonads. Dev Ind Microbiol 7:231–239
Wong PTW, McBeath JH (1999) Plant protection by cold-adapted fungi. In: Margesin R, Schinner
F (eds) Biotechnological applications of cold-adapted organisms. Springer, Berlin, pp 177–190
Woodall KA, Gallagher M, Blakely G, Ferguson G (2011) Cold shock response of Salmonella
enterica serovar typhimurium; the involvement of the CspA paralogues. PhD thesis, http://www.
era.lib.ed.ac.uk/bitstream/1842/5652/1/Woodall2011.pdf. Accessed on 16 July 2012
Xu H, Griffith M, Patten CL, Glick BR (1998) Isolation and characterization of an antifreeze protein
with ice nucleation activity from the plant growth promoting rhizobacterium Pseudomonas
putida GR12-2. Can J Microbiol 44:64–73
Yamanaka K (1999) Cold shock response in Escherichia coli. J Mol Microbiol Biotechnol
34:193–202
Yamashita Y, Nakamura N, Omiya K, Nishikawa J, Kawahara H, Obata H (2002) Identification of
an antifreeze lipoprotein from Moraxella sp. of Antarctic origin. Biosci. Biotechnol Biochem
66:239–247
Yankofsky SA, Levin Z, Bertold T, Sandlerman N (1981) Some basic characteristics of bacterial
freezing nuclei. J Appl Meterol 20:1013–1019
Yoshiba Y, Kiyosue T, Nakashima K, Yamaguchi-Shinozaki K, Shinozaki K (1997) Regulation of
levels of proline as an osmolyte in plants under water stress. Plant cell Physiol 38:1095–1102
Zartler ER, Jenney FE, Terrell M, Eidsness MK, Adams MW, Prestegard JH (2001) Structural basis
for thermostability in aporubredoxins from Pyrococcus furiosus and Clostridium pasteurianum.
Biochem 40:7279–7290
Zhang W, Shi L (2005) Distribution and evolution of multiple-step phosphorelay in prokaryotes:
lateral domain recruitment involved in the formation of hybrid-type histidine kinases. Microbiol
151:2159–2173
Zhao G, Zhang G (2005) Effect of protective agents, freezing temperature, rehydration media on
viability of malolactic bacteria subjected to freeze-drying. J Appl Microbiol 99:333–338
226
P. K. Mishra et al.
