Abstract Flowering is a critical trait for reproduction and survival in plants, influenced by both temperature and photoperiod. Here, we explored the molecular basis of temperature- and photoperiod- insensitive flowering in the Arabidopsis natural accession IP-Svi-0. We identified genetic variations underlying the early flowering of IP-Svi-0 using whole-genome and RNA sequencing and verified them by generating transgenic plants that complemented or silenced the responsible genes. The complete insensitivity of IP-Svi-0 to temperature and photoperiod is due to its unique combination of polymorphisms at loci encoding floral repressor genes FLOWERING LOCUS C (FLC) and MADS AFFECTING FLOWERINGs (MAFs). Our data revealed that IP-Svi-0 carries large deletions in FLC, MAF2, and MAF3, resulting in gene knockouts. It also harbors promoter polymorphisms in FLM and MAF5, leading to reduced gene expression. This misregulation of the FLC-MAFs module causes de-repression of the floral activators FT and SOC1, resulting in unregulated early flowering. Flowering-time analysis showed that the fck (silenced MAF2-5 with flc flm mutations) phenocopies IP-Svi-0, and restoring FLC, MAF2, or MAF3 effectively delays its early flowering. Our findings indicate that temperature and photoperiod signals are integrated into the FLC–MAFs regulatory module to control flowering time in natural accessions. These results suggest a promising strategy to overcome seasonal barriers to flowering.
Karim et al. (Thu,) studied this question.