Structure and Function of Cold Shock Proteins in Archaea
- 1 August 2007
- journal article
- Published by American Society for Microbiology in Journal of Bacteriology
- Vol. 189 (15) , 5738-5748
- https://doi.org/10.1128/jb.00395-07
Abstract
Archaea are abundant and drive critical microbial processes in the Earth's cold biosphere. Despite this, not enough is known about the molecular mechanisms of cold adaptation and no biochemical studies have been performed on stenopsychrophilic archaea (e.g., Methanogenium frigidum). This study examined the structural and functional properties of cold shock proteins (Csps) from archaea, including biochemical analysis of the Csp from M. frigidum. csp genes are present in most bacteria and some eucarya but absent from most archaeal genome sequences, most notably, those of all archaeal thermophiles and hyperthermophiles. In bacteria, Csps are small, nucleic acid binding proteins involved in a variety of cellular processes, such as transcription. In this study, archaeal Csp function was assessed by examining the ability of csp genes from psychrophilic and mesophilic Euryarchaeota and Crenarchaeota to complement a cold-sensitive growth defect in Escherichia coli. In addition, an archaeal gene with a cold shock domain (CSD) fold but little sequence identity to Csps was also examined. Genes encoding Csps or a CSD structural analog from three psychrophilic archaea rescued the E. coli growth defect. The three proteins were predicted to have a higher content of solvent-exposed basic residues than the noncomplementing proteins, and the basic residues were located on the nucleic acid binding surface, similar to their arrangement in E. coli CspA. The M. frigidum Csp was purified and found to be a single-domain protein that folds by a reversible two-state mechanism and to exhibit a low conformational stability typical of cold-adapted proteins. Moreover, M. frigidum Csp was characterized as binding E. coli single-stranded RNA, consistent with its ability to complement function in E. coli. The studies show that some Csp and CSD fold proteins have retained sufficient similarity throughout evolution in the Archaea to be able to function effectively in the Bacteria and that the function of the archaeal proteins relates to cold adaptation. The initial biochemical analysis of M. frigidum Csp has developed a platform for further characterization and demonstrates the potential for expanding molecular studies of proteins from this important archaeal stenopsychrophile.Keywords
This publication has 69 references indexed in Scilit:
- Biology of the Cold Adapted Archaeon, Methanococcoides burtonii Determined by Proteomics Using Liquid Chromatography-Tandem Mass SpectrometryJournal of Proteome Research, 2004
- The Mechanism of Nucleic Acid Melting by a CspA Family ProteinJournal of Molecular Biology, 2004
- The solution structure and DNA-binding properties of the cold-shock domain of the human Y-box protein YB-1Journal of Molecular Biology, 2002
- Complementation of Cold Shock Proteins by Translation Initiation Factor IF1 In VivoJournal of Bacteriology, 2001
- Differential thermoregulation of two highly homologous cold‐shock genes, cspA and cspB, of Escherichia coliGenes to Cells, 1996
- Thermodynamic Properties of an Extremely Rapid Protein Folding ReactionBiochemistry, 1996
- Mutational analysis of the putative nucleic acid‐binding surface of the cold‐shock domain, CspB, revealed an essential role of aromatic and basic residues in binding of single‐stranded DNA containing the Y‐box motifMolecular Microbiology, 1995
- Cloning, sequencing, and characterization of multicopy suppressors of a mukB mutation in Escherichia coliMolecular Microbiology, 1994
- Structural and functional properties of the evolutionarily ancient Y‐box family of nucleic acid binding proteinsBioEssays, 1994
- A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye bindingAnalytical Biochemistry, 1976