Duman JG (2001) Antifreeze and Ice Nucleator Proteins in Terrestrial Arthropods. Annu Rev
Physiol 63:327–357
Eriksson S, Hurme R, Rhen M (2002) Low temperature sensors in bacteria. Philos Trans R Soc
Lond B 357:887–893
Falconi M, Colonna B, Prosseda G, Micheli G, Gualerzi CO (1998) Thermoregulation of Shigella
and Escherichia coli EIEC pathogenicity. A temperature-dependent structural transition of
DNA modulates accessibility of virF promoter to transcriptional repressor H-NS. EMBO J
17:7033–7043
Fang L, Hou Y, Inouye M (1998) Role of the cold box region in the 5
0 - untranslated region of the
cspA m-RNA in its transient expression at low temperature in Escherichia coli. J Bacteriol
180:90–95
Feller G, Gerday C (1997) Psychrophilic enzymes: molecular basis of cold adaptation. Cell Mol
Life Sci 53:830–841
Feng Y, Huang H, Liao J, Cohen SN (2001) Escherichia coli poly (A)-binding proteins that interact
with components of degradosomes or impede RNA decay mediated by polynucleotide phosphorylase and RNaseE. J Biol Chem 274:31651–31656
Ferrer M, Chernikova TN, Yakimov MM, Golyshin PN, Timmis KN (2003) Chaperonins govern
growth of Escherichia coli at low temperatures. Nat Biotechnol 21:1266–1267
Filler DM, Van-Stempvoort DR, Leigh MB (2009) Remediation of frozen ground contaminants
with petroleum hydrocarbons: feasibility and limits. In: Margesin R (ed) Environmental technology 843 permafrost soils. Springer-Verlag, Berlin, pp 279–301
Fletcher GL, Hew CL, Davies PL (2001) Antifreeze proteins of teleost fishes. Annu Rev Physiol
63:359–390
Fujii S, Nakasone K, Horikoshi K (1999) Cloning of two cold shock genes, cspA and cspG from the
deep sea psycrophilic bacterium Shewanella vioacea strain DSS12. FEMS Microbial Lett
178:123–128
Garnham CP, Gilbert JA, Hartman CP, Campbell RL, Laybourn-Parry J, Davies PL (2008) A Ca
2+ -
dependent bacterial antifreeze protein domain has a novel b-helical ice-binding fold. Biochem J
411:171–180
Garnier M, Sebastien M, Didier C, Marie-France P, Francoise L, Odile T (2010) Adaptation to cold
and proteomic responses of the psychrotrophic biopreservative Lactococcus piscium strain
CNCM I-403. Appl Envion Microbiol 76:8011–8018
Geiger O, Spaink HP, Lugtenberg BJJ (1993) Biosynthesis of lipo-oligosaccharides: phospholipids
of Rhizobium contain nod E- determined highly unsaturated fatty acid moieties. In: Palacios R,
Mora J, Newton WE (eds) New horizons in nitrogen fixation. Kluver Academics Publisher,
Dordrecht, p 233
Glansdorff N, Xu J (2002) Microbial life at low temperatures: mechanisms of adaptation and
extreme biotopes. Implications for exobiology and the origin of life. Recent Res Devl 6:1–21
Gounot AM, Russell NJ (1999) Physiology of cold-adapted microorganisms. In: Margesin R,
Schinner F (eds) Cold adapted organisms. Springer, Berlin, pp 33–55
Gratia E, Weekers F, Margesin R, D’Amico S, Thonart P, Feller G (2009) Selection of a coldadapted bacterium for bioremediation of wastewater at low temperatures. Extremophiles
13:763–768
Graumann P, Marahiel MA (1998) A superfamily of proteins containing the cold shock domain.
Trends Biochem Sci 23:286–290
Graumann P, Schroder K, Schmid R, Marahiel MA (1996) Cold shock stress induced proteins in
Bacillus subtilis. J Bacteriol 178:4611–4619
Gulig PA, Danbara H, Guiney DG, Lax AJ, Norel F, Rhen M (1993) Molecular analysis of spv
virulence genes of the Salmonella virulence plasmid. Mol Microbiol 7:825–830
Hébraud M, Guzzo J (2000) The main cold shock protein of Listeria monocytogenes belongs to the
family of ferritin-like proteins. FEMS Microbiol Lett 190:29–34
Hebraud M, Dubois E, Potier P, Labadie J (1994) Effect of growth temperature on the protein levels
in the psychrotrophic bacterium, Pseudomonas fragi. J Bacteriol 176:4017–4024
6 Plant Growth Promoting Rhizobacteria: Mechanisms and Alleviation of Cold Stress. . . 219
Physiol 63:327–357
Eriksson S, Hurme R, Rhen M (2002) Low temperature sensors in bacteria. Philos Trans R Soc
Lond B 357:887–893
Falconi M, Colonna B, Prosseda G, Micheli G, Gualerzi CO (1998) Thermoregulation of Shigella
and Escherichia coli EIEC pathogenicity. A temperature-dependent structural transition of
DNA modulates accessibility of virF promoter to transcriptional repressor H-NS. EMBO J
17:7033–7043
Fang L, Hou Y, Inouye M (1998) Role of the cold box region in the 5
0 - untranslated region of the
cspA m-RNA in its transient expression at low temperature in Escherichia coli. J Bacteriol
180:90–95
Feller G, Gerday C (1997) Psychrophilic enzymes: molecular basis of cold adaptation. Cell Mol
Life Sci 53:830–841
Feng Y, Huang H, Liao J, Cohen SN (2001) Escherichia coli poly (A)-binding proteins that interact
with components of degradosomes or impede RNA decay mediated by polynucleotide phosphorylase and RNaseE. J Biol Chem 274:31651–31656
Ferrer M, Chernikova TN, Yakimov MM, Golyshin PN, Timmis KN (2003) Chaperonins govern
growth of Escherichia coli at low temperatures. Nat Biotechnol 21:1266–1267
Filler DM, Van-Stempvoort DR, Leigh MB (2009) Remediation of frozen ground contaminants
with petroleum hydrocarbons: feasibility and limits. In: Margesin R (ed) Environmental technology 843 permafrost soils. Springer-Verlag, Berlin, pp 279–301
Fletcher GL, Hew CL, Davies PL (2001) Antifreeze proteins of teleost fishes. Annu Rev Physiol
63:359–390
Fujii S, Nakasone K, Horikoshi K (1999) Cloning of two cold shock genes, cspA and cspG from the
deep sea psycrophilic bacterium Shewanella vioacea strain DSS12. FEMS Microbial Lett
178:123–128
Garnham CP, Gilbert JA, Hartman CP, Campbell RL, Laybourn-Parry J, Davies PL (2008) A Ca
2+ -
dependent bacterial antifreeze protein domain has a novel b-helical ice-binding fold. Biochem J
411:171–180
Garnier M, Sebastien M, Didier C, Marie-France P, Francoise L, Odile T (2010) Adaptation to cold
and proteomic responses of the psychrotrophic biopreservative Lactococcus piscium strain
CNCM I-403. Appl Envion Microbiol 76:8011–8018
Geiger O, Spaink HP, Lugtenberg BJJ (1993) Biosynthesis of lipo-oligosaccharides: phospholipids
of Rhizobium contain nod E- determined highly unsaturated fatty acid moieties. In: Palacios R,
Mora J, Newton WE (eds) New horizons in nitrogen fixation. Kluver Academics Publisher,
Dordrecht, p 233
Glansdorff N, Xu J (2002) Microbial life at low temperatures: mechanisms of adaptation and
extreme biotopes. Implications for exobiology and the origin of life. Recent Res Devl 6:1–21
Gounot AM, Russell NJ (1999) Physiology of cold-adapted microorganisms. In: Margesin R,
Schinner F (eds) Cold adapted organisms. Springer, Berlin, pp 33–55
Gratia E, Weekers F, Margesin R, D’Amico S, Thonart P, Feller G (2009) Selection of a coldadapted bacterium for bioremediation of wastewater at low temperatures. Extremophiles
13:763–768
Graumann P, Marahiel MA (1998) A superfamily of proteins containing the cold shock domain.
Trends Biochem Sci 23:286–290
Graumann P, Schroder K, Schmid R, Marahiel MA (1996) Cold shock stress induced proteins in
Bacillus subtilis. J Bacteriol 178:4611–4619
Gulig PA, Danbara H, Guiney DG, Lax AJ, Norel F, Rhen M (1993) Molecular analysis of spv
virulence genes of the Salmonella virulence plasmid. Mol Microbiol 7:825–830
Hébraud M, Guzzo J (2000) The main cold shock protein of Listeria monocytogenes belongs to the
family of ferritin-like proteins. FEMS Microbiol Lett 190:29–34
Hebraud M, Dubois E, Potier P, Labadie J (1994) Effect of growth temperature on the protein levels
in the psychrotrophic bacterium, Pseudomonas fragi. J Bacteriol 176:4017–4024
6 Plant Growth Promoting Rhizobacteria: Mechanisms and Alleviation of Cold Stress. . . 219
