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Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS

Bacteriophytochrome proteins (BphPs) are molecular light switches that enable organisms to adapt to changing light conditions through the control of gene expression. Canonical type 1 BphPs have histidine kinase output domains, but type 3 RpBphP1, in the bacterium Rhodopseudomonas palustris (Rps. pal...

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Autores principales: Papiz, Miroslav Z., Bellini, Dom, Evans, Kate, Grossmann, J Günter, Fordham‐Skelton, Tony
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6899989/
https://www.ncbi.nlm.nih.gov/pubmed/31243889
http://dx.doi.org/10.1111/febs.14973
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author Papiz, Miroslav Z.
Bellini, Dom
Evans, Kate
Grossmann, J Günter
Fordham‐Skelton, Tony
author_facet Papiz, Miroslav Z.
Bellini, Dom
Evans, Kate
Grossmann, J Günter
Fordham‐Skelton, Tony
author_sort Papiz, Miroslav Z.
collection PubMed
description Bacteriophytochrome proteins (BphPs) are molecular light switches that enable organisms to adapt to changing light conditions through the control of gene expression. Canonical type 1 BphPs have histidine kinase output domains, but type 3 RpBphP1, in the bacterium Rhodopseudomonas palustris (Rps. palustris), has a C terminal PAS9 domain and a two‐helix output sensor (HOS) domain. Type 1 BphPs form head‐to‐head parallel dimers; however, the crystal structure of RpBphP1ΔHOS, which does not contain the HOS domain, revealed pseudo anti‐parallel dimers. HOS domains are homologs of Dhp dimerization domains in type 1 BphPs. We show, by applying the small angle X‐ray scattering (SAXS) technique on full‐length RpBphP1, that HOS domains fulfill a similar role in the formation of parallel dimers. On illumination with far‐red light, RpBphP1 forms a complex with gene repressor RpPpsR2 through light‐induced structural changes in its HOS domains. An RpBphP1:RpPpsR2 complex is formed in the molecular ratio of 2 : 1 such that one RpBphP1 dimer binds one RpPpsR2 monomer. Molecular dimers have been modeled with Pfr and Pr SAXS data, suggesting that, in the Pfr state, stable dimeric four α‐helix bundles are formed between HOS domains, rendering RpBphP1functionally inert. On illumination with light of 760 nm wavelength, four α‐helix bundles formed by HOS dimers are disrupted, rendering helices available for binding with RpPpsR2.
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spelling pubmed-68999892019-12-20 Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS Papiz, Miroslav Z. Bellini, Dom Evans, Kate Grossmann, J Günter Fordham‐Skelton, Tony FEBS J Original Articles Bacteriophytochrome proteins (BphPs) are molecular light switches that enable organisms to adapt to changing light conditions through the control of gene expression. Canonical type 1 BphPs have histidine kinase output domains, but type 3 RpBphP1, in the bacterium Rhodopseudomonas palustris (Rps. palustris), has a C terminal PAS9 domain and a two‐helix output sensor (HOS) domain. Type 1 BphPs form head‐to‐head parallel dimers; however, the crystal structure of RpBphP1ΔHOS, which does not contain the HOS domain, revealed pseudo anti‐parallel dimers. HOS domains are homologs of Dhp dimerization domains in type 1 BphPs. We show, by applying the small angle X‐ray scattering (SAXS) technique on full‐length RpBphP1, that HOS domains fulfill a similar role in the formation of parallel dimers. On illumination with far‐red light, RpBphP1 forms a complex with gene repressor RpPpsR2 through light‐induced structural changes in its HOS domains. An RpBphP1:RpPpsR2 complex is formed in the molecular ratio of 2 : 1 such that one RpBphP1 dimer binds one RpPpsR2 monomer. Molecular dimers have been modeled with Pfr and Pr SAXS data, suggesting that, in the Pfr state, stable dimeric four α‐helix bundles are formed between HOS domains, rendering RpBphP1functionally inert. On illumination with light of 760 nm wavelength, four α‐helix bundles formed by HOS dimers are disrupted, rendering helices available for binding with RpPpsR2. John Wiley and Sons Inc. 2019-07-12 2019-11 /pmc/articles/PMC6899989/ /pubmed/31243889 http://dx.doi.org/10.1111/febs.14973 Text en © 2019 The Authors. The FEBS Journal published by John Wiley & Sons Ltd on behalf of Federation of European Biochemical Societies. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Papiz, Miroslav Z.
Bellini, Dom
Evans, Kate
Grossmann, J Günter
Fordham‐Skelton, Tony
Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS
title Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS
title_full Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS
title_fullStr Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS
title_full_unstemmed Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS
title_short Light‐induced complex formation of bacteriophytochrome RpBphP1 and gene repressor RpPpsR2 probed by SAXS
title_sort light‐induced complex formation of bacteriophytochrome rpbphp1 and gene repressor rpppsr2 probed by saxs
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6899989/
https://www.ncbi.nlm.nih.gov/pubmed/31243889
http://dx.doi.org/10.1111/febs.14973
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