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Tee, E. E.

Publications and source records attributed to Tee, E. E..

3 recordsLinked to original sources

Priming of retrograde signaling in wheat across multiple natural environments reveal how responses to dynamic stimuli can be integrated to alter yield, yield stability and water productivity

O_LIChloroplast-to-nucleus retrograde signaling enables rapid stress responses in plants, but whether these signals accumulate to affect crop performance across entire growing seasons under field conditions remains unknown. C_LIO_LIWe generated wheat mutants with targeted deletions in specific SAL gene copies from two distinct homeologous groups (TaSAL1 and TaSAL2), creating lines with enhanced stress signal responsiveness. We tested these lines across 15 field trials spanning diverse Australian environments with varying temperatures, rainfall, and irrigation regimes, measuring physiological responses, yield, biomass, and water productivity. C_LIO_LILines with TaSAL2 gene deletions showed 4-8% yield improvements with enhanced water productivity, while TaSAL1 deletions reduced yields. The TaSAL2 mutants maintained superior photosynthetic function under drought stress, showed improved relative water content, and demonstrated enhanced yield stability across environments. Canopy temperature measurements revealed dynamic stomatal regulation, with increased closure during midday stress periods but normal aperture under benign conditions. Significantly, specific SAL modifications enhanced photosynthetic efficiency and stress resilience without traditional yield penalties. C_LIO_LITargeted modification of specific SAL homeologous groups can simultaneously improve both yield and stress tolerance in wheat. This demonstrates that retrograde signaling integrates environmental information across the plant lifecycle, and highlights the importance of locus-specific targeting and multi-environment field validation for crop modifications. C_LI

plant biology↗

Cell-specialized chloroplast signaling orchestrates photosynthetic and extracellular reactive oxygen species for stress responses

Cellular responses to abiotic stress involve multiple signals including secondary messengers such as reactive oxygen species (ROS) and Ca2+, phytohormones such as abscisic acid (ABA) and chloroplast-to-nucleus retrograde signals such as 3-phosphoadenosine 5-phosphate (PAP). Mechanism(s) by which these messengers, produced in different subcellular compartments, intersect for cell regulation remain enigmatic. Previously we showed that the chloroplast retrograde signal PAP, similar to ABA, induces an increase in ROS levels in guard cells (Pornsiriwong et al, 2017). Here we demonstrate a mechanistic link enabling ABA and PAP to coordinate both chloroplast and plasma membrane ROS production. In whole leaves, PAP alters various ROS-related processes including plasmodesmal permeability as well as responses to ozone and the bacterial elicitor flg22, but mainly initiates processes that quench ROS during oxidative stress. Conversely, we show in guard cells, both PAP and ABA induce an increase in ROS levels in both chloroplasts via photosynthetic electron transport, and the apoplast via the RESPIRATORY BURST OXIDASE HOMOLOG (RBOH). Both subcellular ROS sources were necessary for ABA- and PAP-mediated stomatal closure. However, PAP signaling diverges from ABA by activating RBOHD, instead of RBOHF, for apoplastic ROS mediated stomatal closure. We identified three calcium-dependent protein kinases (CPKs) as the post-translational activators of RBOHD-mediated ROS production. CPK13, CPK32, and CPK34 were transcriptionally induced by PAP and concurrently activate RBOHD and the slow anion channel SLAC1 by phosphorylating two Serine (S) residues, including S120 which is also targeted by the core ABA signaling kinase OPEN STOMATA 1 (OST1). Consequently, overexpression of the PAP-induced CPKs rescues stomatal closure in ost1. Our data identify stomatal chloroplasts, to be nodes in the multifaceted cellular stress response networks as they are both sources and mediators of ROS and retrograde signals such PAP. Thus, chloroplasts are not just mediators of photosynthesis in response to, for example, excess light, but can serve as critical nodes in the multifaceted cellular stress response networks in specialized cells via retrograde signals, providing support to the concept of sensory plastids. Significance StatementThe chloroplast is an environmental sensor for stresses such as excess light and drought via the activation of photosynthetic-mediated retrograde signals. However, how does it function in specialized cells for which carbon fixation is secondary? Here we show the chloroplast is an important node to coordinate multiple plant signaling pathways in response to stresses such as drought. The chloroplast retrograde signal 3-phosphoadenosine 5-phosphate (PAP) plays multiple roles in reactive oxygen species (ROS) signaling and homeostasis. While PAP suppresses ROS in photosynthetic tissue, PAP instead induces guard cell ROS in chloroplasts and extracellular space to induce stomatal closure. We decipher how PAP-induced proteins activate both extracellular ROS production and anion channels for stomatal closure, thus providing a mechanism by which chloroplasts provide a strategic complement to canonical hormonal pathways in regulating plant physiological responses in specialized cells.

plant biology↗

A PDLP-NHL3 complex integrates plasmodesmal immune signaling cascades

The plant immune system relies on the perception of molecules that signal the presence of a microbe threat. This triggers signal transduction that mediates a range of cellular responses via a collection of molecular machinery including receptors, small molecules, and enzymes. One response to pathogen perception is the restriction of cell-to-cell communication by plasmodesmal closure. We previously found that while chitin and flg22 trigger specialized immune signaling cascades in the plasmodesmal plasma membrane, both execute plasmodesmal closure via callose synthesis at the plasmodesmata. Therefore, the signaling pathways ultimately converge at or upstream of callose synthesis. To establish the hierarchy of signaling at plasmodesmata and characterize points of convergence in microbe elicitor-triggered signaling, we profiled the dependence of plasmodesmal responses triggered by different elicitors on a range of plasmodesmal signaling machinery. We identified that, like chitin, flg22 signals via RBOHD to induce plasmodesmal closure. Further, we found that PDLP1, PDLP5 and CALS1 are common to microbe- and SA-triggered responses, identifying PDLPs as a candidate signaling nexus. To understand how PDLPs relay a signal to CALS1, we screened for PDLP5 interactors and found NHL3, which is also required for chitin-, flg22- and SA-triggered plasmodesmal responses and PDLP-mediated activation of callose synthesis. We conclude that a PDLP-NHL3 complex acts as an integrating node of plasmodesmal signaling cascades, transmitting multiple immune signals to activate CALS1 and plasmodesmata closure. Significance StatementPlants close plasmodesmata to restrict cell-to-cell communication after pathogen perception and in response to a range of stresses. All these stimuli trigger callose deposition at the plasmodesmal neck, suggesting a convergence of signaling. We have defined the hierarchy of molecular components and signals required to mediate plasmodesmal closure in immune responses, identifying a PDLP-NHL3 complex as a critical node that integrates multiple signaling cascades to regulate plasmodesmata.

plant biology↗