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Enzyme catalysis prior to aromatic residues: Reverse engineering of a dephospho-CoA kinase
M. Makarov, J. Meng, V. Tretyachenko, P. Srb, A. Březinová, VG. Giacobelli, L. Bednárová, J. Vondrášek, AK. Dunker, K. Hlouchová
Language English Country United States
Document type Journal Article, Research Support, Non-U.S. Gov't
NLK
Free Medical Journals
from 1992 to 1 year ago
PubMed Central
from 1992 to 1 year ago
Europe PubMed Central
from 1992 to 1 year ago
Medline Complete (EBSCOhost)
from 2010-01-01 to 1 year ago
Wiley Free Content
from 1996 to 1 year ago
PubMed
33739538
DOI
10.1002/pro.4068
Knihovny.cz E-resources
- MeSH
- Aquifex enzymology genetics MeSH
- Bacterial Proteins chemistry genetics MeSH
- Phosphotransferases (Alcohol Group Acceptor) chemistry genetics MeSH
- Catalytic Domain MeSH
- Catalysis MeSH
- Mutagenesis, Site-Directed MeSH
- Protein Structure, Secondary MeSH
- Amino Acid Substitution MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
The wide variety of protein structures and functions results from the diverse properties of the 20 canonical amino acids. The generally accepted hypothesis is that early protein evolution was associated with enrichment of a primordial alphabet, thereby enabling increased protein catalytic efficiencies and functional diversification. Aromatic amino acids were likely among the last additions to genetic code. The main objective of this study was to test whether enzyme catalysis can occur without the aromatic residues (aromatics) by studying the structure and function of dephospho-CoA kinase (DPCK) following aromatic residue depletion. We designed two variants of a putative DPCK from Aquifex aeolicus by substituting (a) Tyr, Phe and Trp or (b) all aromatics (including His). Their structural characterization indicates that substituting the aromatics does not markedly alter their secondary structures but does significantly loosen their side chain packing and increase their sizes. Both variants still possess ATPase activity, although with 150-300 times lower efficiency in comparison with the wild-type phosphotransferase activity. The transfer of the phosphate group to the dephospho-CoA substrate becomes heavily uncoupled and only the His-containing variant is still able to perform the phosphotransferase reaction. These data support the hypothesis that proteins in the early stages of life could support catalytic activities, albeit with low efficiencies. An observed significant contraction upon ligand binding is likely important for appropriate organization of the active site. Formation of firm hydrophobic cores, which enable the assembly of stably structured active sites, is suggested to provide a selective advantage for adding the aromatic residues.
Department of Biochemistry Faculty of Science Charles University Prague Czech Republic
Department of Cell Biology Faculty of Science Charles University BIOCEV Prague Czech Republic
Proteomics Core Facility BIOCEV Faculty of Science Charles University Prague Czech Republic
References provided by Crossref.org
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- $a The wide variety of protein structures and functions results from the diverse properties of the 20 canonical amino acids. The generally accepted hypothesis is that early protein evolution was associated with enrichment of a primordial alphabet, thereby enabling increased protein catalytic efficiencies and functional diversification. Aromatic amino acids were likely among the last additions to genetic code. The main objective of this study was to test whether enzyme catalysis can occur without the aromatic residues (aromatics) by studying the structure and function of dephospho-CoA kinase (DPCK) following aromatic residue depletion. We designed two variants of a putative DPCK from Aquifex aeolicus by substituting (a) Tyr, Phe and Trp or (b) all aromatics (including His). Their structural characterization indicates that substituting the aromatics does not markedly alter their secondary structures but does significantly loosen their side chain packing and increase their sizes. Both variants still possess ATPase activity, although with 150-300 times lower efficiency in comparison with the wild-type phosphotransferase activity. The transfer of the phosphate group to the dephospho-CoA substrate becomes heavily uncoupled and only the His-containing variant is still able to perform the phosphotransferase reaction. These data support the hypothesis that proteins in the early stages of life could support catalytic activities, albeit with low efficiencies. An observed significant contraction upon ligand binding is likely important for appropriate organization of the active site. Formation of firm hydrophobic cores, which enable the assembly of stably structured active sites, is suggested to provide a selective advantage for adding the aromatic residues.
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