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Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean

Legumes control the nitrogen-fixing root nodule symbiosis in response to external and internal stimuli, such as nitrate, and via systemic autoregulation of nodulation (AON). Overexpression of the CLV3/ESR-related (CLE) pre-propeptide-encoding genes GmNIC1 (nitrate-induced and acting locally) and GmR...

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Autores principales: Reid, Dugald E., Li, Dongxue, Ferguson, Brett J., Gresshoff, Peter M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3617822/
https://www.ncbi.nlm.nih.gov/pubmed/23386683
http://dx.doi.org/10.1093/jxb/ert008
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author Reid, Dugald E.
Li, Dongxue
Ferguson, Brett J.
Gresshoff, Peter M.
author_facet Reid, Dugald E.
Li, Dongxue
Ferguson, Brett J.
Gresshoff, Peter M.
author_sort Reid, Dugald E.
collection PubMed
description Legumes control the nitrogen-fixing root nodule symbiosis in response to external and internal stimuli, such as nitrate, and via systemic autoregulation of nodulation (AON). Overexpression of the CLV3/ESR-related (CLE) pre-propeptide-encoding genes GmNIC1 (nitrate-induced and acting locally) and GmRIC1 (Bradyrhizobium-induced and acting systemically) suppresses soybean nodulation dependent on the activity of the nodulation autoregulation receptor kinase (GmNARK). This nodule inhibition response was used to assess the relative importance of key structural components within and around the CLE domain sequences of these genes. Using a site-directed mutagenesis approach, mutants were produced at each amino acid within the CLE domain (RLAPEGPDPHHN) of GmRIC1. This approach identified the Arg1, Ala3, Pro4, Gly6, Pro7, Asp8, His11, and Asn12 residues as critical to GmRIC1 nodulation suppression activity (NSA). In contrast, none of the mutations in conserved residues outside of the CLE domain showed compromised NSA. Chimeric genes derived from combinations of GmRIC1 and GmNIC1 domains were used to determine the role of each pre-propeptide domain in NSA differences that exist between the two peptides. It was found that the transit peptide and CLE peptide regions of GmRIC1 significantly enhanced activity of GmNIC1. In contrast, the comparable GmNIC1 domains reduced the NSA of GmRIC1. Identification of these critical residues and domains provides a better understanding of how these hormone-like peptides function in plant development and regulation.
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spelling pubmed-36178222013-04-08 Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean Reid, Dugald E. Li, Dongxue Ferguson, Brett J. Gresshoff, Peter M. J Exp Bot Research Paper Legumes control the nitrogen-fixing root nodule symbiosis in response to external and internal stimuli, such as nitrate, and via systemic autoregulation of nodulation (AON). Overexpression of the CLV3/ESR-related (CLE) pre-propeptide-encoding genes GmNIC1 (nitrate-induced and acting locally) and GmRIC1 (Bradyrhizobium-induced and acting systemically) suppresses soybean nodulation dependent on the activity of the nodulation autoregulation receptor kinase (GmNARK). This nodule inhibition response was used to assess the relative importance of key structural components within and around the CLE domain sequences of these genes. Using a site-directed mutagenesis approach, mutants were produced at each amino acid within the CLE domain (RLAPEGPDPHHN) of GmRIC1. This approach identified the Arg1, Ala3, Pro4, Gly6, Pro7, Asp8, His11, and Asn12 residues as critical to GmRIC1 nodulation suppression activity (NSA). In contrast, none of the mutations in conserved residues outside of the CLE domain showed compromised NSA. Chimeric genes derived from combinations of GmRIC1 and GmNIC1 domains were used to determine the role of each pre-propeptide domain in NSA differences that exist between the two peptides. It was found that the transit peptide and CLE peptide regions of GmRIC1 significantly enhanced activity of GmNIC1. In contrast, the comparable GmNIC1 domains reduced the NSA of GmRIC1. Identification of these critical residues and domains provides a better understanding of how these hormone-like peptides function in plant development and regulation. Oxford University Press 2013-04 2013-02-05 /pmc/articles/PMC3617822/ /pubmed/23386683 http://dx.doi.org/10.1093/jxb/ert008 Text en © The Author(2) [2013]. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by-nc/3.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com.
spellingShingle Research Paper
Reid, Dugald E.
Li, Dongxue
Ferguson, Brett J.
Gresshoff, Peter M.
Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean
title Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean
title_full Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean
title_fullStr Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean
title_full_unstemmed Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean
title_short Structure–function analysis of the GmRIC1 signal peptide and CLE domain required for nodulation control in soybean
title_sort structure–function analysis of the gmric1 signal peptide and cle domain required for nodulation control in soybean
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3617822/
https://www.ncbi.nlm.nih.gov/pubmed/23386683
http://dx.doi.org/10.1093/jxb/ert008
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