A gene network for long-day flowering activates RFT1 encoding a mobile flowering signal in rice

Development. 2009 Oct;136(20):3443-50. doi: 10.1242/dev.040170. Epub 2009 Sep 17.

Abstract

Although some genes that encode sensory or regulatory elements for photoperiodic flowering are conserved between the long-day (LD) plant Arabidopsis thaliana and the short-day (SD) plant rice, the gene networks that control rice flowering, and particularly flowering under LD conditions, are not well understood. We show here that RICE FLOWERING LOCUS T 1 (RFT1), the closest homolog to Heading date 3a (Hd3a), is a major floral activator under LD conditions. An RFT1:GFP fusion protein localized in the shoot apical meristem (SAM) under LD conditions, suggesting that RFT1 is a florigen gene in rice. Furthermore, mutants in OsMADS50, a rice ortholog of Arabidopsis SUPPRESOR OF OVEREXPRESSION OF CONSTANS 1 (SOC1) did not flower up to 300 days after sowing under LD conditions, indicating that OsMADS50, which acts upstream of RFT1, promotes flowering under LD conditions. We propose that both positive (OsMADS50 and Ehd1) and negative (Hd1, phyB and Ghd7) regulators of RFT1 form a gene network that regulates LD flowering in rice. Among these regulators, Ehd1, a rice-specific floral inducer, integrates multiple pathways to regulate RFT1, leading to flowering under appropriate photoperiod conditions. A rice ortholog of Arabidopsis APETALA1, OsMADS14, was expressed in the floral meristem in wild-type but not in RFT1 RNAi plants, suggesting that OsMADS14 is activated by RFT1 protein in the SAM after the transition to flowering. We have thus exposed a network of genes that regulate LD flowering in rice.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Flowers / genetics*
  • Flowers / growth & development*
  • Flowers / radiation effects
  • Gene Expression Regulation, Plant / radiation effects
  • Gene Regulatory Networks*
  • Light
  • MADS Domain Proteins / genetics*
  • MADS Domain Proteins / metabolism
  • Oryza / genetics*
  • Oryza / growth & development*
  • Oryza / radiation effects
  • Plant Proteins / genetics*
  • Plant Proteins / metabolism
  • RNA Interference
  • Signal Transduction
  • Time Factors

Substances

  • MADS Domain Proteins
  • Plant Proteins