Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition

Only recently have biologists been able to apply mathematical and biochemical tools to preview lifestyles of ancient life forms and "travel back in time." In this paper, we describe an ancestral reconstruction of ubiquitin to determine its molecular properties during the rise of the eukary...

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Main Authors: Deocaris, Custer C., Cunanan, Lovette F., Galapia, Richelda A., Endriga, Marla A.
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/5482
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-62362022-04-20T00:25:08Z Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition Deocaris, Custer C. Cunanan, Lovette F. Galapia, Richelda A. Endriga, Marla A. Only recently have biologists been able to apply mathematical and biochemical tools to preview lifestyles of ancient life forms and "travel back in time." In this paper, we describe an ancestral reconstruction of ubiquitin to determine its molecular properties during the rise of the eukaryotes. Although ubiquitin is one of the most conserved proteins in eukaryotes, no ubiquitin homolog has been found in prokaryotic genomes sequenced thus far. In an attempt to derive the ancestral ubiquitin, or proto-ubiquitin (proto-Ub), we applied Bayesian statistical theory to estimate posterior probabilities of protein sequences from a minimum evolution tree of 30 extant species. The inferred ancestral sequence was 100% homologous with the ubiquitin of Brugia malayi, a parasitic nematode. Among its 76 amino acids, only nine residues have undergone amino acid modification. As no major structural and functional changes happened during the evolution of ubiquitin, we hypothesize that the stressful conditions that led to the creation of this gene after the "Great Oxidation Event" 2.4 billion years ago may have already been "buffered" to date. 2011-06-01T07:00:00Z text https://animorepository.dlsu.edu.ph/faculty_research/5482 Faculty Research Work Animo Repository Ubiquitin Proteins—Evolution Biochemistry, Biophysics, and Structural Biology Biology
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Ubiquitin
Proteins—Evolution
Biochemistry, Biophysics, and Structural Biology
Biology
spellingShingle Ubiquitin
Proteins—Evolution
Biochemistry, Biophysics, and Structural Biology
Biology
Deocaris, Custer C.
Cunanan, Lovette F.
Galapia, Richelda A.
Endriga, Marla A.
Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
description Only recently have biologists been able to apply mathematical and biochemical tools to preview lifestyles of ancient life forms and "travel back in time." In this paper, we describe an ancestral reconstruction of ubiquitin to determine its molecular properties during the rise of the eukaryotes. Although ubiquitin is one of the most conserved proteins in eukaryotes, no ubiquitin homolog has been found in prokaryotic genomes sequenced thus far. In an attempt to derive the ancestral ubiquitin, or proto-ubiquitin (proto-Ub), we applied Bayesian statistical theory to estimate posterior probabilities of protein sequences from a minimum evolution tree of 30 extant species. The inferred ancestral sequence was 100% homologous with the ubiquitin of Brugia malayi, a parasitic nematode. Among its 76 amino acids, only nine residues have undergone amino acid modification. As no major structural and functional changes happened during the evolution of ubiquitin, we hypothesize that the stressful conditions that led to the creation of this gene after the "Great Oxidation Event" 2.4 billion years ago may have already been "buffered" to date.
format text
author Deocaris, Custer C.
Cunanan, Lovette F.
Galapia, Richelda A.
Endriga, Marla A.
author_facet Deocaris, Custer C.
Cunanan, Lovette F.
Galapia, Richelda A.
Endriga, Marla A.
author_sort Deocaris, Custer C.
title Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
title_short Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
title_full Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
title_fullStr Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
title_full_unstemmed Proto-ubiquitin: A Bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
title_sort proto-ubiquitin: a bayesian prediction of an ancient protein during the prokaryotic-eukaryotic transition
publisher Animo Repository
publishDate 2011
url https://animorepository.dlsu.edu.ph/faculty_research/5482
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