4.7 Article

Heterotrimeric G-protein α subunit (RGA1) regulates tiller development, yield, cell wall, nitrogen response and biotic stress in rice

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SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41598-021-81824-1

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资金

  1. Council of Scientific and Industrial Research (CSIR) [38(1246)/10/EMRII]
  2. Department of Biotechnology (DBT) [BT/IN/UK-VNC/44/NR/2015-16]
  3. GGSIPU [GGSIPU/DRC/Ph.D/Adm/2016/1549]
  4. DST [SP/SO/BB-27/2002]
  5. UGC [32-540/2006(SR)]
  6. DBT [DBT/JRF/14/AL/445]
  7. CSIR [09/806(013)2008-EMRI, 09/806(0038)/2019-EMR-I, 38(1418)/16/EMR-II]
  8. STRF fellowship (GGS Indraprastha University)
  9. South Asian Nitrogen Hub (SANH) [NE/S009019/1]
  10. DBT
  11. SANH
  12. NERC [NE/S009019/2, NE/L013371/1] Funding Source: UKRI

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This study identified the roles of a rice G-protein alpha subunit mutant in regulating various genes related to agriculturally important traits, showing its importance in tillering, grain development, and response to submergence. The research expands our understanding of the underlying processes controlled by RGA1.
G-proteins are implicated in plant productivity, but their genome-wide roles in regulating agronomically important traits remain uncharacterized. Transcriptomic analyses of rice G-protein alpha subunit mutant (rga1) revealed 2270 differentially expressed genes (DEGs) including those involved in C/N and lipid metabolism, cell wall, hormones and stress. Many DEGs were associated with root, leaf, culm, inflorescence, panicle, grain yield and heading date. The mutant performed better in total weight of filled grains, ratio of filled to unfilled grains and tillers per plant. Protein-protein interaction (PPI) network analysis using experimentally validated interactors revealed many RGA1-responsive genes involved in tiller development. qPCR validated the differential expression of genes involved in strigolactone-mediated tiller formation and grain development. Further, the mutant growth and biomass were unaffected by submergence indicating its role in submergence response. Transcription factor network analysis revealed the importance of RGA1 in nitrogen signaling with DEGs such as Nin-like, WRKY, NAC, bHLH families, nitrite reductase, glutamine synthetase, OsCIPK23 and urea transporter. Sub-clustering of DEGs-associated PPI network revealed that RGA1 regulates metabolism, stress and gene regulation among others. Predicted rice G-protein networks mapped DEGs and revealed potential effectors. Thus, this study expands the roles of RGA1 to agronomically important traits and reveals their underlying processes.

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