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Ward, J. K.

Publications and source records attributed to Ward, J. K..

2 recordsLinked to original sources

Oligosaccharide production and signaling correlate with delayed flowering in an Arabidopsis genotype grown and selected in high

Since industrialization began, atmospheric CO2 ([CO2]) has increased from 270 to 415 ppm and is projected to reach 800-1000 ppm this century. Some Arabidopsis ecotypes delayed flowering in elevated [CO2] relative to current [CO2], while others showed no change or accelerations. To predict genotype-specific flowering behaviors, we must understand the mechanisms driving flowering response to rising [CO2]. [CO2] changes alter photosynthesis and carbohydrates in C3 plants. Plants sense carbohydrate levels and exogenous carbohydrate application influences flowering time and flowering transcript levels. We asked how organismal changes in carbohydrates and transcription correlate with changes in flowering time under elevated [CO2]. We used a genotype (SG) of Arabidopsis that was selected for high fitness at elevated [CO2] (700 ppm). SG delays flowering under elevated [CO2] (700 ppm) relative to current [CO2] (400 ppm). We compared SG to a closely related control genotype (CG) that shows no [CO2]- induced flowering change. We compared metabolomic and transcriptomic profiles in these genotypes at current and elevated [CO2] to assess correlations with flowering in these conditions. While both genotypes altered carbohydrates in response to elevated [CO2], SG had higher levels of sucrose than CG and showed a stronger increase in glucose and fructose in elevated [CO2]. Both genotypes demonstrated transcriptional changes, with CG increasing genes related to fructose 1,6-bisphosphate breakdown, amino acid synthesis, and secondary metabolites; and SG decreasing genes related to starch and sugar metabolism, but increasing genes involved in oligosaccharide production and sugar modifications. Genes associated with flowering regulation within the photoperiod, vernalization, and meristem identity pathways were altered in these genotypes. Elevated [CO2] may act through carbohydrate changes to influence transcription in both genotypes and delayed flowering in SG. Changes in the oligosaccharide pool may contribute to delayed flowering in SG. This work extends the literature exploring genotypic-specific flowering responses to elevated [CO2].

plant biology↗

FLOWERING LOCUS C drives delayed flowering in Arabidopsis grown and selected at elevated CO2

O_LIAltered flowering time at elevated [CO2] is well documented, although mechanisms are not well understood. An Arabidopsis genotype previously selected for high fitness at elevated [CO2] (SG) showed delayed flowering and larger size at flowering when grown at elevated (700 ppm) versus current (380 ppm) [CO2]. This response was correlated with prolonged expression of FLOWERING LOCUS C (FLC), a vernalization-responsive floral repressor gene. C_LIO_LITo determine if FLC directly delays flowering at elevated [CO2] in SG, we used vernalization (extended cold) to downregulate FLC expression. We hypothesized that vernalization would eliminate delayed flowering at elevated [CO2] through the direct reduction of FLC expression, eliminating differences in flowering time between current and elevated [CO2]. C_LIO_LIWe found that with downregulation of FLC expression via vernalization, SG plants grown at elevated [CO2] no longer delayed flowering compared to current [CO2]. Thus, vernalization returned the earlier flowering phenotype, counteracting effects of elevated [CO2] on flowering. C_LIO_LIThis study indicates that elevated [CO2] can delay flowering directly through FLC, and downregulation of FLC under elevated [CO2] reverses this effect. Moreover, this study demonstrates that increasing [CO2] may potentially drive major changes in development through FLC. C_LI

plant biology↗