The peptide GOLVEN10 alters root development and noduletaxis in Medicago truncatula

Author:

Roy Sonali12ORCID,Torres‐Jerez Ivone23ORCID,Zhang Shulan23,Liu Wei2ORCID,Schiessl Katharina4ORCID,Jain Divya1ORCID,Boschiero Clarissa2ORCID,Lee Hee‐Kyung3ORCID,Krom Nicholas2ORCID,Zhao Patrick X.2ORCID,Murray Jeremy D.5ORCID,Oldroyd Giles E. D.4ORCID,Scheible Wolf‐Rüdiger2ORCID,Udvardi Michael26ORCID

Affiliation:

1. College of Agriculture Tennessee State University Nashville Tennessee 37209 USA

2. Noble Research Institute LLC Ardmore Oklahoma 73401 USA

3. Institute of Agricultural Biosciences Oklahoma State University Ardmore Oklahoma 73401 USA

4. Sainsbury Laboratory University of Cambridge Cambridge CB2 1LR UK

5. Shanghai Institute of Plant Physiology and Ecology Shanghai 200032 China

6. University of Queensland Brisbane Australia

Abstract

SUMMARYThe conservation of GOLVEN (GLV)/ROOT MERISTEM GROWTH FACTOR (RGF) peptide encoding genes across plant genomes capable of forming roots or root‐like structures underscores their potential significance in the terrestrial adaptation of plants. This study investigates the function and role of GOLVEN peptide‐coding genes in Medicago truncatula. Five out of fifteen GLV/RGF genes were notably upregulated during nodule organogenesis and were differentially responsive to nitrogen deficiency and auxin treatment. Specifically, the expression of MtGLV9 and MtGLV10 at nodule initiation sites was contingent upon the NODULE INCEPTION transcription factor. Overexpression of these five nodule‐induced GLV genes in hairy roots of M. truncatula and application of their synthetic peptide analogues led to a decrease in nodule count by 25–50%. Uniquely, the GOLVEN10 peptide altered the positioning of the first formed lateral root and nodule on the primary root axis, an observation we term ‘noduletaxis’; this decreased the length of the lateral organ formation zone on roots. Histological section of roots treated with synthetic GOLVEN10 peptide revealed an increased cell number within the root cortical cell layers without a corresponding increase in cell length, leading to an elongation of the root likely introducing a spatiotemporal delay in organ formation. At the transcription level, the GOLVEN10 peptide suppressed expression of microtubule‐related genes and exerted its effects by changing expression of a large subset of Auxin responsive genes. These findings advance our understanding of the molecular mechanisms by which GOLVEN peptides modulate root morphology, nodule ontogeny, and interactions with key transcriptional pathways.

Funder

National Science Foundation

National Institute of Food and Agriculture

Publisher

Wiley

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