Organized peripheral vascular strand development in nodules is controlled by a bHLH/HLH heterodimer

dc.contributor.authorSrivastava, Deevita
dc.contributor.authorBhadu, Vikash
dc.contributor.authorSahoo, Rudra Narayan
dc.contributor.authorGhosh, Asim Kumar
dc.contributor.authorUpadhyay, Priya
dc.contributor.authorBhardwaj, Akanksha
dc.contributor.authorUdvardi, Michael K
dc.contributor.authorRanjan, Aashish
dc.contributor.authorSinharoy, Senjuti
dc.date.accessioned2026-06-08T10:34:32Z
dc.date.issued2026
dc.descriptionAccepted date: 7 May 2026
dc.description.abstractThe Leguminosae family can develop root nodules with symmetrical peripheral vascular-strands (PVSs). Medicago truncatula forms indeterminate nodules with PVSs. The PVSs elongate directly from the root toward the nodule apex, maintaining a symmetrical organization and facilitating the formation of the cylindrical nodule structure. By combining genetic, biochemical, and genomic tools, we have shown that two basic Helix-Loop-Helix groups of transcription factors, MtbHLH1 (renamed Nodule Vascular bundle Development 1 (NVD1)) and NVD2, control the development of symmetrical PVSs in M. truncatula. In nvd1 nodules, PVSs drift toward the infection zone, generating aberrantly shaped nodules. NVD1 activates its expression along with NVD2, a transcriptional regulator. NVD1 functions downstream of auxin signaling. Transcriptome sequencing of nvd1 and nvd2 nodules, combined with visualization of auxin and cytokinin (CK) signal outputs, revealed disrupted auxin and CK signaling in nvd nodules. Furthermore, ectopic expression of the auxin biosynthetic enzyme (MtYUCCA8) under pMtNVD1 and pMtNVD2 resulted in defective PVSs. Mutant nvd2 nodules display asymmetric PVSs. NVD2 regulates the transcriptional activity of NVD1 by forming heterodimers with it. The formation of symmetrical PVSs depends on the balanced presence of NVD1 and NVD2. Our findings highlight the pivotal role of the NVD1-NVD2 interaction in shaping the development of symmetrical PVSs.
dc.description.sponsorshipWe thank S. Subramanian, South Dakota State University, USA,for 2-COL and AP Singh for the MYC2 clone. We acknowledgeNIPGR for confocal facilities; CIF-NIPGR and DBT (Departmentof Biotechnology)-eLibrary Consortium (DeLCON), India, forproviding access to e-resources. Work was supported by researchgrants from NIPGR core and ANRF Grant SPG/2022/000171.DS supported by CSIR-SPM (07/803(0329)/2020-EMR-I), VBsupported by CSIR-PhD fellowship (09/0803(15897)/2022-EMR-I), and RNS supported by CSIR-PhD fellowship (09/0803(16943)/2023-EMR-I). We acknowledge Nick from NobleResearch Institute for the 4 dpi RNAseq data analysis. Monica AI isused for English language and grammar check.
dc.identifier.citationNew Phytologist, 251(4): 2054-2072
dc.identifier.issn0028-646X
dc.identifier.issn1469-8137
dc.identifier.otherhttps://doi.org/10.1111/nph.71323
dc.identifier.urihttps://nph.onlinelibrary.wiley.com/doi/10.1111/nph.71323
dc.identifier.urihttps://ndkr-library.nipgr.ac.in/handle/123456789/1820
dc.language.isoen_US
dc.publisherJohn Wiley & Sons
dc.subjectauxin and cytokinin signaling
dc.subjecthelix–loop–helix transcription factors/regulators
dc.subjectlegume root development
dc.subjectperipheral vascular strands development
dc.subjectroot nodule symbiosis
dc.subjectsustainable agriculture
dc.titleOrganized peripheral vascular strand development in nodules is controlled by a bHLH/HLH heterodimer
dc.typeArticle

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