Qoronfleh MW, Debouck C, Keller J (1992) Identification and characterization of novel low
temperature inducible promoters of Escherichia coli. J Bacteriol 174:7902–7909
Ray MK (2006) Cold-stress response of low temperature adapted bacteria. In:Sreedhar AS, Srinivas
UK (eds) Stress response: A molecular biology approach. Research Signpost, India. 2006.
pp. 1–23
Ray MK, Seshu Kumar G, Shivaji S (1994a) Phosphorylation of Lipopolysaccharides in the
Antarctic Psychrotroph Pseudomonas syringae: a Possible Role in Temperature Adaptation. J
Bacteriol 176:4243–4243
Ray MK, Seshu Kumar G, Shivaji S (1994b) Phosphorylation of membrane proteins in response to
temperature in an Antarctic Pseudomonas syringae. Microbiol 140:3217–3223
Ray MK, Seshu Kumar G, Shivaji S (1994c) Tyrosine phosphorylation of a cytosolic protein from
the Antarctic psychrotrophic bacterium Pseudomonas syringae. FEMS Microbiol Lett
122:49–54
Ray MK, Seshu Kumar G, Shivaji S (1994d) Phosphorylation of lipopolysaccharides in the
Antarctic psychrotroph Pseudomonas syringae: a possible role in temperature adaptation. J
Bacteriol 176:4243–4249
Ray MK, Sitaramamma T, Ghandhi S, Shivaji S (1994e) Occurrence and expression of cspA, a cold
shock gene, in Antarctic psychrotrophic bacteria. FEMS Microbiol Lett 116:55–60
Ray MK, Kumar GS, Janiyani K, Kannan K, Jagtap P, Basu M, Sivaji S (1998) Adaptation to low
temperature and regulation of gene expression in Antarctic psychrotrophic bacteria. J Biosci
23:423–435
Raymond JA, Fritsen C, Shen K (2007) An ice-binding protein from an Antarctic sea ice bacterium.
FEMS Microbiol Ecol 61:214–221
Regand A, Goff HD (2006) Ice recrystallization inhibition in ice cream as affected by ice structuring
proteins from winter wheat grass. J Dairy Sci 89(1):49–57
Rivkina EM, Friedmann EI, McKay CP, Gilichinsky DA (2000) Metabolic activity of permafrost
bacteria below the freezing point. Appl Environ Microbiol 66:3230–3233
Rossi G (1999) Biohydrometallurgical processes and temperature. In: Margesin R, Schinner F (eds)
Biotechnological applications of cold-adapted organisms. Springer, Berlin, pp 291–308
Russell NJ (1990) Cold adaptation of microorganisms. Philos Trans R Soc Lond B Biol Sci
329:595–611
Russell NJ (1998) Molecular adaptations in psychrophilic bacteria: potential for biotechnological
applications. Adv Biochem Eng Biotechnol 61:1–21
Russell NJ (2000) Toward a molecular understanding of cold activity of enzymes from
psychrophiles. Extremophiles 4:83–90
Russell NJ (2006) Antarctic micro-organisms: coming in from the cold. Culture 27:1–7
Sakamoto O, Kitoh T, Ohura T, Ohya N, Iinuma K (2002) Novel missense mutation (R94S) in the
TAZ (G4.5) gene in a Japanese patient with Barth syndrome. J Hum Genet 47:229–231
Sano F, Asakawa N, Inouye Y, Sakurai M (1999) A dual role for intracellular trehalose in the
resistance of yeast cells to water stress. Cryobiology 39:80–87
Santoro N, Thiele DJ (1999) Oxidative stress responses in the yeast Saccharomyces cerevisiae. In:
Hohmann S, Mager WH (eds) Yeast stress response. R.G. Landes Co., Austin TX
Selvakumar G, Gupta AD, Samaresh K, Gupta HS (2009) Cold tolerance mechanism in
microorganisms and their agricultural importance. In: Arora DK, Rajendra TP, Srivastava AK
(eds) Agriculturally important microorganisms, vol 1, pp 73–93
Sheridan PP, Panasik N, Coombs JM, Brenchely JE (2000) Approaches for deciphering the
structural basis of low temperature enzyme activity. Biochim Biophys Acta 1543:417–433
Shima J, Sakata-Tsuda Y, Suzuki Y, Nakajima R, Watanable H, Kawamoto S, Takano H (2003)
Disruption of the CARI gene encoding arginase enhances freeze tolerance of the commercial
baker’s yeast Saccharomyces cerevisiae. Appl Envion Microbiol 69:715–718
Shivaji S, Prakash JSS (2010) How do bacteria sense and respond to low temperature? Arch
Microbiol 192:85–95
224
P. K. Mishra et al.
temperature inducible promoters of Escherichia coli. J Bacteriol 174:7902–7909
Ray MK (2006) Cold-stress response of low temperature adapted bacteria. In:Sreedhar AS, Srinivas
UK (eds) Stress response: A molecular biology approach. Research Signpost, India. 2006.
pp. 1–23
Ray MK, Seshu Kumar G, Shivaji S (1994a) Phosphorylation of Lipopolysaccharides in the
Antarctic Psychrotroph Pseudomonas syringae: a Possible Role in Temperature Adaptation. J
Bacteriol 176:4243–4243
Ray MK, Seshu Kumar G, Shivaji S (1994b) Phosphorylation of membrane proteins in response to
temperature in an Antarctic Pseudomonas syringae. Microbiol 140:3217–3223
Ray MK, Seshu Kumar G, Shivaji S (1994c) Tyrosine phosphorylation of a cytosolic protein from
the Antarctic psychrotrophic bacterium Pseudomonas syringae. FEMS Microbiol Lett
122:49–54
Ray MK, Seshu Kumar G, Shivaji S (1994d) Phosphorylation of lipopolysaccharides in the
Antarctic psychrotroph Pseudomonas syringae: a possible role in temperature adaptation. J
Bacteriol 176:4243–4249
Ray MK, Sitaramamma T, Ghandhi S, Shivaji S (1994e) Occurrence and expression of cspA, a cold
shock gene, in Antarctic psychrotrophic bacteria. FEMS Microbiol Lett 116:55–60
Ray MK, Kumar GS, Janiyani K, Kannan K, Jagtap P, Basu M, Sivaji S (1998) Adaptation to low
temperature and regulation of gene expression in Antarctic psychrotrophic bacteria. J Biosci
23:423–435
Raymond JA, Fritsen C, Shen K (2007) An ice-binding protein from an Antarctic sea ice bacterium.
FEMS Microbiol Ecol 61:214–221
Regand A, Goff HD (2006) Ice recrystallization inhibition in ice cream as affected by ice structuring
proteins from winter wheat grass. J Dairy Sci 89(1):49–57
Rivkina EM, Friedmann EI, McKay CP, Gilichinsky DA (2000) Metabolic activity of permafrost
bacteria below the freezing point. Appl Environ Microbiol 66:3230–3233
Rossi G (1999) Biohydrometallurgical processes and temperature. In: Margesin R, Schinner F (eds)
Biotechnological applications of cold-adapted organisms. Springer, Berlin, pp 291–308
Russell NJ (1990) Cold adaptation of microorganisms. Philos Trans R Soc Lond B Biol Sci
329:595–611
Russell NJ (1998) Molecular adaptations in psychrophilic bacteria: potential for biotechnological
applications. Adv Biochem Eng Biotechnol 61:1–21
Russell NJ (2000) Toward a molecular understanding of cold activity of enzymes from
psychrophiles. Extremophiles 4:83–90
Russell NJ (2006) Antarctic micro-organisms: coming in from the cold. Culture 27:1–7
Sakamoto O, Kitoh T, Ohura T, Ohya N, Iinuma K (2002) Novel missense mutation (R94S) in the
TAZ (G4.5) gene in a Japanese patient with Barth syndrome. J Hum Genet 47:229–231
Sano F, Asakawa N, Inouye Y, Sakurai M (1999) A dual role for intracellular trehalose in the
resistance of yeast cells to water stress. Cryobiology 39:80–87
Santoro N, Thiele DJ (1999) Oxidative stress responses in the yeast Saccharomyces cerevisiae. In:
Hohmann S, Mager WH (eds) Yeast stress response. R.G. Landes Co., Austin TX
Selvakumar G, Gupta AD, Samaresh K, Gupta HS (2009) Cold tolerance mechanism in
microorganisms and their agricultural importance. In: Arora DK, Rajendra TP, Srivastava AK
(eds) Agriculturally important microorganisms, vol 1, pp 73–93
Sheridan PP, Panasik N, Coombs JM, Brenchely JE (2000) Approaches for deciphering the
structural basis of low temperature enzyme activity. Biochim Biophys Acta 1543:417–433
Shima J, Sakata-Tsuda Y, Suzuki Y, Nakajima R, Watanable H, Kawamoto S, Takano H (2003)
Disruption of the CARI gene encoding arginase enhances freeze tolerance of the commercial
baker’s yeast Saccharomyces cerevisiae. Appl Envion Microbiol 69:715–718
Shivaji S, Prakash JSS (2010) How do bacteria sense and respond to low temperature? Arch
Microbiol 192:85–95
224
P. K. Mishra et al.
