CURLYLEAF is a key modulator of apoplast water status in Arabidopsis leaf
Xin, X.-F.; Wu, J.; Zhang, J.; Mei, X.; Wang, Y.; Ye, L.; Chen, T.; Liu, M.; Zhang, Y.
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The apoplast of plant leaf, the intercellular space between mesophyll cells, is normally largely filled with air with a minimal amount of water in it, which is essential for key physiological processes such as gas exchange to occur. Interestingly, phytopathogens exploit virulence factors to induce a water-rich environment, known as "water soaking", in the apoplast of the infected leaf tissue to promote disease. We propose that plants evolved a "water soaking" pathway, which normally keeps a "minimized and balanced" water level in the leaf apoplast for plant growth but is disturbed by microbial pathogens to facilitate infection. Investigation of the "water soaking" pathway and leaf water control mechanisms is a fundamental, yet previously-overlooked, aspect of plant physiology. To identify key components in the "water soaking" pathway, we performed a genetic screen to isolate Arabidopsis severe water soaking (sws) mutants that show leaf water over-accumulation under high air humidity, a condition required for visible water soaking. Here we report the sws1 mutant, which displays rapid water soaking upon high humidity treatment due to a loss-of-function mutation in CURLY LEAF (CLF), encoding a histone methyl-transferase in the POLYCOMB REPRESSIVE COMPLEX 2 (PRC2). We found that the sws1 (clf) mutant exhibits an enhanced abscisic acid (ABA) level and stomatal closure, which are indispensable for its water soaking phenotype and mediated by CLFs direct regulation of a group of ABA-associated NAC transcription factors, NAC019/055/072. Interestingly, the clf mutant showed a weakened immunity, which likely also contributes to the water soaking phenotype. In addition, the clf plant supports a significantly higher level of Pseudomonas syringae pathogen-induced water soaking and bacterial multiplication, in an ABA pathway and NAC019/055/072-dependent manner. Collectively, our study probes into a fundamental question in plant biology and demonstrates CLF as a key modulator of leaf water status via epigenetic regulation of ABA pathway and stomatal movement.
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