Literature DB >> 24550457

Evolutionary history and metabolic insights of ancient mammalian uricases.

James T Kratzer1, Miguel A Lanaspa, Michael N Murphy, Christina Cicerchi, Christina L Graves, Peter A Tipton, Eric A Ortlund, Richard J Johnson, Eric A Gaucher.   

Abstract

Uricase is an enzyme involved in purine catabolism and is found in all three domains of life. Curiously, uricase is not functional in some organisms despite its role in converting highly insoluble uric acid into 5-hydroxyisourate. Of particular interest is the observation that apes, including humans, cannot oxidize uric acid, and it appears that multiple, independent evolutionary events led to the silencing or pseudogenization of the uricase gene in ancestral apes. Various arguments have been made to suggest why natural selection would allow the accumulation of uric acid despite the physiological consequences of crystallized monosodium urate acutely causing liver/kidney damage or chronically causing gout. We have applied evolutionary models to understand the history of primate uricases by resurrecting ancestral mammalian intermediates before the pseudogenization events of this gene family. Resurrected proteins reveal that ancestral uricases have steadily decreased in activity since the last common ancestor of mammals gave rise to descendent primate lineages. We were also able to determine the 3D distribution of amino acid replacements as they accumulated during evolutionary history by crystallizing a mammalian uricase protein. Further, ancient and modern uricases were stably transfected into HepG2 liver cells to test one hypothesis that uricase pseudogenization allowed ancient frugivorous apes to rapidly convert fructose into fat. Finally, pharmacokinetics of an ancient uricase injected in rodents suggest that our integrated approach provides the foundation for an evolutionarily-engineered enzyme capable of treating gout and preventing tumor lysis syndrome in human patients.

Entities:  

Keywords:  evolution; hyperuricemia; pseudogene

Mesh:

Substances:

Year:  2014        PMID: 24550457      PMCID: PMC3956161          DOI: 10.1073/pnas.1320393111

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  44 in total

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Review 6.  Lessons from comparative physiology: could uric acid represent a physiologic alarm signal gone awry in western society?

Authors:  Richard J Johnson; Yuri Y Sautin; William J Oliver; Carlos Roncal; Wei Mu; L Gabriela Sanchez-Lozada; Bernardo Rodriguez-Iturbe; Takahiko Nakagawa; Steven A Benner
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Review 7.  Hypothesis: could excessive fructose intake and uric acid cause type 2 diabetes?

Authors:  Richard J Johnson; Santos E Perez-Pozo; Yuri Y Sautin; Jacek Manitius; Laura Gabriela Sanchez-Lozada; Daniel I Feig; Mohamed Shafiu; Mark Segal; Richard J Glassock; Michiko Shimada; Carlos Roncal; Takahiko Nakagawa
Journal:  Endocr Rev       Date:  2009-01-16       Impact factor: 19.871

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Journal:  Am J Physiol Renal Physiol       Date:  2013-01-09

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  93 in total

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5.  Recombinant production of Aspergillus Flavus uricase and investigation of its thermal stability in the presence of raffinose and lactose.

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6.  Ancient insights into uric acid metabolism in primates.

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7.  Functional Divergence of the Nuclear Receptor NR2C1 as a Modulator of Pluripotentiality During Hominid Evolution.

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Review 10.  New insights on the risk for cardiovascular disease in African Americans: the role of added sugars.

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