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Origin of complexity in hemoglobin evolution

Most proteins associate into multimeric complexes with specific architectures(1,2), which often have functional properties like cooperative ligand binding or allosteric regulation(3). No detailed knowledge is available about how any multimer and its functions arose during historical evolution. Here...

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Autores principales: Pillai, Arvind S., Chandler, Shane A., Liu, Yang, Signore, Anthony V., Cortez-Romero, Carlos R., Benesch, Justin L.P., Laganowsky, Arthur, Storz, Jay F., Hochberg, Georg K.A., Thornton, Joseph W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8259614/
https://www.ncbi.nlm.nih.gov/pubmed/32461643
http://dx.doi.org/10.1038/s41586-020-2292-y
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author Pillai, Arvind S.
Chandler, Shane A.
Liu, Yang
Signore, Anthony V.
Cortez-Romero, Carlos R.
Benesch, Justin L.P.
Laganowsky, Arthur
Storz, Jay F.
Hochberg, Georg K.A.
Thornton, Joseph W.
author_facet Pillai, Arvind S.
Chandler, Shane A.
Liu, Yang
Signore, Anthony V.
Cortez-Romero, Carlos R.
Benesch, Justin L.P.
Laganowsky, Arthur
Storz, Jay F.
Hochberg, Georg K.A.
Thornton, Joseph W.
author_sort Pillai, Arvind S.
collection PubMed
description Most proteins associate into multimeric complexes with specific architectures(1,2), which often have functional properties like cooperative ligand binding or allosteric regulation(3). No detailed knowledge is available about how any multimer and its functions arose during historical evolution. Here we use ancestral protein reconstruction and biophysical assays to dissect the origins of vertebrate hemoglobin (Hb), a heterotetramer of paralogous α and β subunits, which mediates respiratory oxygen transport and exchange by cooperatively binding oxygen with moderate affinity. We show that modern Hb evolved from an ancient monomer and characterize the historical “missing-link” through which the modern tetramer evolved–a noncooperative homodimer with high oxygen affinity, which existed before the gene duplication that generated distinct α and β subunits. Reintroducing just two post-duplication historical substitutions into the ancestral protein is sufficient to cause strong tetramerization by creating favorable contacts with more ancient residues on the opposing subunit. These surface substitutions dramatically reduce oxygen affinity and even confer weak cooperativity, because of an ancient structural linkage between the oxygen binding site and the multimerization interface. Our findings establish that evolution can produce new complex molecular structures and functions via simple genetic mechanisms, which recruit existing biophysical features into higher-level architectures.
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spelling pubmed-82596142021-07-06 Origin of complexity in hemoglobin evolution Pillai, Arvind S. Chandler, Shane A. Liu, Yang Signore, Anthony V. Cortez-Romero, Carlos R. Benesch, Justin L.P. Laganowsky, Arthur Storz, Jay F. Hochberg, Georg K.A. Thornton, Joseph W. Nature Article Most proteins associate into multimeric complexes with specific architectures(1,2), which often have functional properties like cooperative ligand binding or allosteric regulation(3). No detailed knowledge is available about how any multimer and its functions arose during historical evolution. Here we use ancestral protein reconstruction and biophysical assays to dissect the origins of vertebrate hemoglobin (Hb), a heterotetramer of paralogous α and β subunits, which mediates respiratory oxygen transport and exchange by cooperatively binding oxygen with moderate affinity. We show that modern Hb evolved from an ancient monomer and characterize the historical “missing-link” through which the modern tetramer evolved–a noncooperative homodimer with high oxygen affinity, which existed before the gene duplication that generated distinct α and β subunits. Reintroducing just two post-duplication historical substitutions into the ancestral protein is sufficient to cause strong tetramerization by creating favorable contacts with more ancient residues on the opposing subunit. These surface substitutions dramatically reduce oxygen affinity and even confer weak cooperativity, because of an ancient structural linkage between the oxygen binding site and the multimerization interface. Our findings establish that evolution can produce new complex molecular structures and functions via simple genetic mechanisms, which recruit existing biophysical features into higher-level architectures. 2020-05-20 2020-05 /pmc/articles/PMC8259614/ /pubmed/32461643 http://dx.doi.org/10.1038/s41586-020-2292-y Text en http://www.nature.com/authors/editorial_policies/license.html#termsUsers may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Pillai, Arvind S.
Chandler, Shane A.
Liu, Yang
Signore, Anthony V.
Cortez-Romero, Carlos R.
Benesch, Justin L.P.
Laganowsky, Arthur
Storz, Jay F.
Hochberg, Georg K.A.
Thornton, Joseph W.
Origin of complexity in hemoglobin evolution
title Origin of complexity in hemoglobin evolution
title_full Origin of complexity in hemoglobin evolution
title_fullStr Origin of complexity in hemoglobin evolution
title_full_unstemmed Origin of complexity in hemoglobin evolution
title_short Origin of complexity in hemoglobin evolution
title_sort origin of complexity in hemoglobin evolution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8259614/
https://www.ncbi.nlm.nih.gov/pubmed/32461643
http://dx.doi.org/10.1038/s41586-020-2292-y
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