TY - JOUR
T1 - Emerging concepts in pseudoenzyme classification, evolution, and signaling
AU - Ribeiro, António J.M.
AU - Das, Sayoni
AU - Dawson, Natalie
AU - Zaru, Rossana
AU - Orchard, Sandra
AU - Thornton, Janet M.
AU - Orengo, Christine
AU - Zeqiraj, Elton
AU - Murphy, James M.
AU - Eyers, Patrick A.
N1 - Funding Information:
We thank all the scientists and support staff who organized, attended, and contributed to the scientific input at "Pseudoenzymes 2016: from signaling mechanisms to disease," which took place at the Liverpool Maritime Museum, United Kingdom, in September 2016 and "Pseudoenzymes 2018: From molecular mechanisms to cell biology," which took place in May 2018 in Sardinia, Italy, both of which informed this review. This work was initially funded by a Royal Society Research Grant (to P.A.E.) and subsequently by North West Cancer Research grants CR1088 and CR1097 (to P.A.E.). A.J.M.R. is supported by an EMBL postdoctoral fellowship. We thank the Biochemical Society and EMBO for awarding dedicated conference and workshop funding to support the development of the pseudoenzyme field.
Publisher Copyright:
© 2019 The Authors.
PY - 2019/8/13
Y1 - 2019/8/13
N2 - The 21st century is witnessing an explosive surge in our understanding of pseudoenzyme-driven regulatory mechanisms in biology. Pseudoenzymes are proteins that have sequence homology with enzyme families but that are proven or predicted to lack enzyme activity due to mutations in otherwise conserved catalytic amino acids. The best-studied pseudoenzymes are pseudokinases, although examples from other families are emerging at a rapid rate as experimental approaches catch up with an avalanche of freely available informatics data. Kingdom-wide analysis in prokaryotes, archaea and eukaryotes reveals that between 5 and 10% of proteins that make up enzyme families are pseudoenzymes, with notable expansions and contractions seemingly associated with specific signaling niches. Pseudoenzymes can allosterically activate canonical enzymes, act as scaffolds to control assembly of signaling complexes and their localization, serve as molecular switches, or regulate signaling networks through substrate or enzyme sequestration. Molecular analysis of pseudoenzymes is rapidly advancing knowledge of how they perform noncatalytic functions and is enabling the discovery of unexpected, and previously unappreciated, functions of their intensively studied enzyme counterparts. Notably, upon further examination, some pseudoenzymes have previously unknown enzymatic activities that could not have been predicted a priori. Pseudoenzymes can be targeted and manipulated by small molecules and therefore represent new therapeutic targets (or anti-targets, where intervention should be avoided) in various diseases. In this review, which brings together broad bioinformatics and cell signaling approaches in the field, we highlight a selection of findings relevant to a contemporary understanding of pseudoenzyme-based biology.
AB - The 21st century is witnessing an explosive surge in our understanding of pseudoenzyme-driven regulatory mechanisms in biology. Pseudoenzymes are proteins that have sequence homology with enzyme families but that are proven or predicted to lack enzyme activity due to mutations in otherwise conserved catalytic amino acids. The best-studied pseudoenzymes are pseudokinases, although examples from other families are emerging at a rapid rate as experimental approaches catch up with an avalanche of freely available informatics data. Kingdom-wide analysis in prokaryotes, archaea and eukaryotes reveals that between 5 and 10% of proteins that make up enzyme families are pseudoenzymes, with notable expansions and contractions seemingly associated with specific signaling niches. Pseudoenzymes can allosterically activate canonical enzymes, act as scaffolds to control assembly of signaling complexes and their localization, serve as molecular switches, or regulate signaling networks through substrate or enzyme sequestration. Molecular analysis of pseudoenzymes is rapidly advancing knowledge of how they perform noncatalytic functions and is enabling the discovery of unexpected, and previously unappreciated, functions of their intensively studied enzyme counterparts. Notably, upon further examination, some pseudoenzymes have previously unknown enzymatic activities that could not have been predicted a priori. Pseudoenzymes can be targeted and manipulated by small molecules and therefore represent new therapeutic targets (or anti-targets, where intervention should be avoided) in various diseases. In this review, which brings together broad bioinformatics and cell signaling approaches in the field, we highlight a selection of findings relevant to a contemporary understanding of pseudoenzyme-based biology.
UR - https://www.scopus.com/pages/publications/85071281857
U2 - 10.1126/scisignal.aat9797
DO - 10.1126/scisignal.aat9797
M3 - Review Article
C2 - 31409758
AN - SCOPUS:85071281857
SN - 1945-0877
VL - 12
JO - Science Signaling
JF - Science Signaling
IS - 594
M1 - eaat9797
ER -