Molecular basis of cold adaptation
- 29 July 2002
- journal article
- review article
- Published by The Royal Society in Philosophical Transactions Of The Royal Society B-Biological Sciences
- Vol. 357 (1423) , 917-925
- https://doi.org/10.1098/rstb.2002.1105
Abstract
Cold–adapted, or psychrophilic, organisms are able to thrive at low temperatures in permanently cold environments, which in fact characterize the greatest proportion of our planet. Psychrophiles include both prokaryotic and eukaryotic organisms and thus represent a significant proportion of the living world. These organisms produce cold–evolved enzymes that are partially able to cope with the reduction in chemical reaction rates induced by low temperatures. As a rule, cold–active enzymes display a high catalytic efficiency, associated however, with a low thermal stability. In most cases, the adaptation to cold is achieved through a reduction in the activation energy that possibly originates from an increased flexibility of either a selected area or of the overall protein structure. This enhanced plasticity seems in turn to be induced by the weak thermal stability of psychrophilic enzymes. The adaptation strategies are beginning to be understood thanks to recent advances in the elucidation of the molecular characteristics of cold–adapted enzymes derived from X–ray crystallography, protein engineering and biophysical methods. Psychrophilic organisms and their enzymes have, in recent years, increasingly attracted the attention of the scientific community due to their peculiar properties that render them particularly useful in investigating the possible relationship existing between stability, flexibility and specific activity and as valuable tools for biotechnological purposes.Keywords
This publication has 54 references indexed in Scilit:
- A Better Enzyme to Cope with ColdPublished by Elsevier ,2001
- Structural Determinants of Cold Adaptation and Stability in a Large ProteinJournal of Biological Chemistry, 2001
- Modular structure, local flexibility and cold-activity of a novel chitobiase from a psychrophilic antarctic bacteriumJournal of Molecular Biology, 2001
- Directed evolution study of temperature adaptation in a psychrophilic enzyme 1 1Edited by J. A. WellsJournal of Molecular Biology, 2000
- Improving Low-Temperature Catalysis in the Hyperthermostable Pyrococcus furiosus β-Glucosidase CelB by Directed EvolutionBiochemistry, 2000
- Improving the Catalytic Activity of a Thermophilic Enzyme at Low TemperaturesBiochemistry, 2000
- Preliminary crystal structure determination of the alkaline protease from the Antarctic psychrophile pseudomonas aeruginosaProtein Science, 1997
- Crystal structure of the β-glycosidase from the hyperthermophilic archeon Sulfolobus solfataricus: resilience as a key factor in thermostabilityJournal of Molecular Biology, 1997
- Evolution of Lactate Dehydrogenase-A Homologs of Barracuda Fishes (Genus Sphyraena) from Different Thermal Environments: Differences in Kinetic Properties and Thermal Stability Are Due to Amino Acid Substitutions Outside the Active Site,Biochemistry, 1997
- Stability and structural analysis of α‐amylase from the antarctic psychrophile Alteromonas haloplanctis A23European Journal of Biochemistry, 1994