Cargando…
Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods
BACKGROUND: The efficient conversion of ammonia, a potent neurotoxin, into non-toxic metabolites was an essential adaptation that allowed animals to move from the aquatic to terrestrial biosphere. The urea cycle converts ammonia into urea in mammals, amphibians, turtles, snails, worms and many aquat...
Autores principales: | , , , , , , , |
---|---|
Formato: | Texto |
Lenguaje: | English |
Publicado: |
BioMed Central
2008
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2566978/ https://www.ncbi.nlm.nih.gov/pubmed/18801197 http://dx.doi.org/10.1186/1471-2091-9-24 |
_version_ | 1782159974859800576 |
---|---|
author | Haskins, Nantaporn Panglao, Maria Qu, Qiuhao Majumdar, Himani Cabrera-Luque, Juan Morizono, Hiroki Tuchman, Mendel Caldovic, Ljubica |
author_facet | Haskins, Nantaporn Panglao, Maria Qu, Qiuhao Majumdar, Himani Cabrera-Luque, Juan Morizono, Hiroki Tuchman, Mendel Caldovic, Ljubica |
author_sort | Haskins, Nantaporn |
collection | PubMed |
description | BACKGROUND: The efficient conversion of ammonia, a potent neurotoxin, into non-toxic metabolites was an essential adaptation that allowed animals to move from the aquatic to terrestrial biosphere. The urea cycle converts ammonia into urea in mammals, amphibians, turtles, snails, worms and many aquatic animals and requires N-acetylglutamate (NAG), an essential allosteric activator of carbamylphosphate synthetase I (CPSI) in mammals and amphibians, and carbamylphosphate synthetase III (CPSIII) in fish and invertebrates. NAG-dependent CPSI and CPSIII catalyze the formation of carbamylphosphate in the first and rate limiting step of ureagenesis. NAG is produced enzymatically by N-acetylglutamate synthase (NAGS), which is also found in bacteria and plants as the first enzyme of arginine biosynthesis. Arginine is an allosteric inhibitor of microbial and plant NAGS, and allosteric activator of mammalian NAGS. RESULTS: Information from mutagenesis studies of E. coli and P. aeruginosa NAGS was combined with structural information from the related bacterial N-acetylglutamate kinases to identify four residues in mammalian NAGS that interact with arginine. Substitutions of these four residues were engineered in mouse NAGS and into the vertebrate-like N-acetylglutamate synthase-kinase (NAGS-K) of Xanthomonas campestris, which is inhibited by arginine. All mutations resulted in arginine losing the ability to activate mouse NAGS, and inhibit X. campestris NAGS-K. To examine at what point in evolution inversion of arginine effect on NAGS occur, we cloned NAGS from fish and frogs and examined the arginine response of their corresponding proteins. Fish NAGS were partially inhibited by arginine and frog NAGS were activated by arginine. CONCLUSION: Difference in arginine effect on bacterial and mammalian NAGS most likely stems from the difference in the type of conformational change triggered by arginine binding to these proteins. The change from arginine inhibition of NAGS to activation was gradual, from complete inhibition of bacterial NAGS, to partial inhibition of fish NAGS, to activation of frog and mammalian NAGS. This change also coincided with the conquest of land by amphibians and mammals. |
format | Text |
id | pubmed-2566978 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2008 |
publisher | BioMed Central |
record_format | MEDLINE/PubMed |
spelling | pubmed-25669782008-10-14 Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods Haskins, Nantaporn Panglao, Maria Qu, Qiuhao Majumdar, Himani Cabrera-Luque, Juan Morizono, Hiroki Tuchman, Mendel Caldovic, Ljubica BMC Biochem Research Article BACKGROUND: The efficient conversion of ammonia, a potent neurotoxin, into non-toxic metabolites was an essential adaptation that allowed animals to move from the aquatic to terrestrial biosphere. The urea cycle converts ammonia into urea in mammals, amphibians, turtles, snails, worms and many aquatic animals and requires N-acetylglutamate (NAG), an essential allosteric activator of carbamylphosphate synthetase I (CPSI) in mammals and amphibians, and carbamylphosphate synthetase III (CPSIII) in fish and invertebrates. NAG-dependent CPSI and CPSIII catalyze the formation of carbamylphosphate in the first and rate limiting step of ureagenesis. NAG is produced enzymatically by N-acetylglutamate synthase (NAGS), which is also found in bacteria and plants as the first enzyme of arginine biosynthesis. Arginine is an allosteric inhibitor of microbial and plant NAGS, and allosteric activator of mammalian NAGS. RESULTS: Information from mutagenesis studies of E. coli and P. aeruginosa NAGS was combined with structural information from the related bacterial N-acetylglutamate kinases to identify four residues in mammalian NAGS that interact with arginine. Substitutions of these four residues were engineered in mouse NAGS and into the vertebrate-like N-acetylglutamate synthase-kinase (NAGS-K) of Xanthomonas campestris, which is inhibited by arginine. All mutations resulted in arginine losing the ability to activate mouse NAGS, and inhibit X. campestris NAGS-K. To examine at what point in evolution inversion of arginine effect on NAGS occur, we cloned NAGS from fish and frogs and examined the arginine response of their corresponding proteins. Fish NAGS were partially inhibited by arginine and frog NAGS were activated by arginine. CONCLUSION: Difference in arginine effect on bacterial and mammalian NAGS most likely stems from the difference in the type of conformational change triggered by arginine binding to these proteins. The change from arginine inhibition of NAGS to activation was gradual, from complete inhibition of bacterial NAGS, to partial inhibition of fish NAGS, to activation of frog and mammalian NAGS. This change also coincided with the conquest of land by amphibians and mammals. BioMed Central 2008-09-18 /pmc/articles/PMC2566978/ /pubmed/18801197 http://dx.doi.org/10.1186/1471-2091-9-24 Text en Copyright © 2008 Haskins et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Research Article Haskins, Nantaporn Panglao, Maria Qu, Qiuhao Majumdar, Himani Cabrera-Luque, Juan Morizono, Hiroki Tuchman, Mendel Caldovic, Ljubica Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
title | Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
title_full | Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
title_fullStr | Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
title_full_unstemmed | Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
title_short | Inversion of allosteric effect of arginine on N-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
title_sort | inversion of allosteric effect of arginine on n-acetylglutamate synthase, a molecular marker for evolution of tetrapods |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2566978/ https://www.ncbi.nlm.nih.gov/pubmed/18801197 http://dx.doi.org/10.1186/1471-2091-9-24 |
work_keys_str_mv | AT haskinsnantaporn inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT panglaomaria inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT quqiuhao inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT majumdarhimani inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT cabreraluquejuan inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT morizonohiroki inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT tuchmanmendel inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods AT caldovicljubica inversionofallostericeffectofarginineonnacetylglutamatesynthaseamolecularmarkerforevolutionoftetrapods |