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Distinct localization of chiral proofreaders resolves organellar translation conflict in plants

Plants have two endosymbiotic organelles originated from two bacterial ancestors. The transition from an independent bacterium to a successful organelle would have required extensive rewiring of biochemical networks for its integration with archaeal host. Here, using Arabidopsis as a model system, w...

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Autores principales: Kumar, Pradeep, Babu, Kandhalu Sagadevan Dinesh, Singh, Avinash Kumar, Singh, Dipesh Kumar, Nalli, Aswan, Mukul, Shivapura Jagadeesha, Roy, Ankit, Mazeed, Mohd, Raman, Bakthisaran, Kruparani, Shobha P., Siddiqi, Imran, Sankaranarayanan, Rajan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10268278/
https://www.ncbi.nlm.nih.gov/pubmed/37276405
http://dx.doi.org/10.1073/pnas.2219292120
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author Kumar, Pradeep
Babu, Kandhalu Sagadevan Dinesh
Singh, Avinash Kumar
Singh, Dipesh Kumar
Nalli, Aswan
Mukul, Shivapura Jagadeesha
Roy, Ankit
Mazeed, Mohd
Raman, Bakthisaran
Kruparani, Shobha P.
Siddiqi, Imran
Sankaranarayanan, Rajan
author_facet Kumar, Pradeep
Babu, Kandhalu Sagadevan Dinesh
Singh, Avinash Kumar
Singh, Dipesh Kumar
Nalli, Aswan
Mukul, Shivapura Jagadeesha
Roy, Ankit
Mazeed, Mohd
Raman, Bakthisaran
Kruparani, Shobha P.
Siddiqi, Imran
Sankaranarayanan, Rajan
author_sort Kumar, Pradeep
collection PubMed
description Plants have two endosymbiotic organelles originated from two bacterial ancestors. The transition from an independent bacterium to a successful organelle would have required extensive rewiring of biochemical networks for its integration with archaeal host. Here, using Arabidopsis as a model system, we show that plant D-aminoacyl-tRNA deacylase 1 (DTD1), of bacterial origin, is detrimental to organellar protein synthesis owing to its changed tRNA recognition code. Plants survive this conflict by spatially restricting the conflicted DTD1 to the cytosol. In addition, plants have targeted archaeal DTD2 to both the organelles as it is compatible with their translation machinery due to its strict D-chiral specificity and lack of tRNA determinants. Intriguingly, plants have confined bacterial-derived DTD1 to work in archaeal-derived cytosolic compartment whereas archaeal DTD2 is targeted to bacterial-derived organelles. Overall, the study provides a remarkable example of the criticality of optimization of biochemical networks for survival and evolution of plant mitochondria and chloroplast.
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spelling pubmed-102682782023-12-05 Distinct localization of chiral proofreaders resolves organellar translation conflict in plants Kumar, Pradeep Babu, Kandhalu Sagadevan Dinesh Singh, Avinash Kumar Singh, Dipesh Kumar Nalli, Aswan Mukul, Shivapura Jagadeesha Roy, Ankit Mazeed, Mohd Raman, Bakthisaran Kruparani, Shobha P. Siddiqi, Imran Sankaranarayanan, Rajan Proc Natl Acad Sci U S A Biological Sciences Plants have two endosymbiotic organelles originated from two bacterial ancestors. The transition from an independent bacterium to a successful organelle would have required extensive rewiring of biochemical networks for its integration with archaeal host. Here, using Arabidopsis as a model system, we show that plant D-aminoacyl-tRNA deacylase 1 (DTD1), of bacterial origin, is detrimental to organellar protein synthesis owing to its changed tRNA recognition code. Plants survive this conflict by spatially restricting the conflicted DTD1 to the cytosol. In addition, plants have targeted archaeal DTD2 to both the organelles as it is compatible with their translation machinery due to its strict D-chiral specificity and lack of tRNA determinants. Intriguingly, plants have confined bacterial-derived DTD1 to work in archaeal-derived cytosolic compartment whereas archaeal DTD2 is targeted to bacterial-derived organelles. Overall, the study provides a remarkable example of the criticality of optimization of biochemical networks for survival and evolution of plant mitochondria and chloroplast. National Academy of Sciences 2023-06-05 2023-06-13 /pmc/articles/PMC10268278/ /pubmed/37276405 http://dx.doi.org/10.1073/pnas.2219292120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Kumar, Pradeep
Babu, Kandhalu Sagadevan Dinesh
Singh, Avinash Kumar
Singh, Dipesh Kumar
Nalli, Aswan
Mukul, Shivapura Jagadeesha
Roy, Ankit
Mazeed, Mohd
Raman, Bakthisaran
Kruparani, Shobha P.
Siddiqi, Imran
Sankaranarayanan, Rajan
Distinct localization of chiral proofreaders resolves organellar translation conflict in plants
title Distinct localization of chiral proofreaders resolves organellar translation conflict in plants
title_full Distinct localization of chiral proofreaders resolves organellar translation conflict in plants
title_fullStr Distinct localization of chiral proofreaders resolves organellar translation conflict in plants
title_full_unstemmed Distinct localization of chiral proofreaders resolves organellar translation conflict in plants
title_short Distinct localization of chiral proofreaders resolves organellar translation conflict in plants
title_sort distinct localization of chiral proofreaders resolves organellar translation conflict in plants
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10268278/
https://www.ncbi.nlm.nih.gov/pubmed/37276405
http://dx.doi.org/10.1073/pnas.2219292120
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