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Biology subjects

Harkey, A. F.

Publications and source records attributed to Harkey, A. F..

2 recordsLinked to original sources

Enhanced pollen tube performance at high temperature contributes to thermotolerant fruit production in tomato.

Rising temperature extremes during critical reproductive periods threaten the yield of major grain and fruit crops. Flowering plant reproduction depends on development of sufficient numbers of pollen grains and on their ability to generate a cellular extension, the pollen tube, which elongates through the pistil to deliver sperm cells to female gametes for double fertilization. These critical phases of the life cycle are sensitive to temperature and limit productivity under high temperature (HT). Previous studies have investigated the effects of HT on pollen development, but little is known about how HT applied during the pollen tube growth phase affects fertility. Here, we used tomato as a model fruit crop to determine how HT affects the pollen tube growth phase, taking advantage of cultivars noted for fruit production in exceptionally hot growing seasons. We found that exposure to HT solely during the pollen tube growth phase limits fruit biomass and seed set more significantly in thermosensitive cultivars than in thermotolerant cultivars. Importantly, we found that pollen tubes from the thermotolerant Tamaulipas cultivar have enhanced growth in vivo and in vitro under HT. Analysis of the pollen tube transcriptomes response to HT allowed us to develop hypotheses for the molecular basis of cellular thermotolerance in the pollen tube and we define two response modes (enhanced induction of stress responses, and higher basal levels of growth pathways repressed by heat stress) associated with reproductive thermotolerance. Importantly, we define key components of the pollen tube stress response identifying enhanced ROS homeostasis and pollen tube callose synthesis and deposition as important components of reproductive thermotolerance in Tamaulipas. Our work identifies the pollen tube growth phase as a viable target to enhance reproductive thermotolerance and delineates key pathways that are altered in crop varieties capable of fruiting under HT conditions. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=95 SRC="FIGDIR/small/606234v1_ufig1.gif" ALT="Figure 1"> View larger version (35K): org.highwire.dtl.DTLVardef@25e5acorg.highwire.dtl.DTLVardef@98fb1org.highwire.dtl.DTLVardef@1b8b9cborg.highwire.dtl.DTLVardef@adcca4_HPS_FORMAT_FIGEXP M_FIG C_FIG

plant biology↗

Ethylene Receptor Gain- and Loss-of-function Mutants Reveal an ETR1-dependent Transcriptional Network in Roots

In Arabidopsis, a family of five receptors mediates ethylene responses in roots, with Ethylene Response 1 (ETR1) controlling increases in root hair proliferation and decreases in lateral root formation. To define the ETR1-dependent gene regulatory network (GRN) controlling root development, we profiled the root transcriptome from Col-0 and the etr1-3 gain-of-function and etr1-7 loss-of-function mutants in the presence and absence of ethylene or the ethylene precursor 1-aminocyclopropane-1-carboxylic acid (ACC). We identified 4,522 differentially expressed (DE) transcripts in Col-0 roots with altered abundance in response to ethylene and/or ACC treatment, with larger magnitude changes induced by ethylene. These included 553 DE transcripts that were ETR1 dependent, defined by a lack of response to treatment with ethylene and/or ACC in ethylene-insensitive etr1-3 and constitutively altered in etr1-7 in the presence and absence of treatment relative to time-0 Col-0. Within these ETR1-dependent transcripts were ethylene biosynthesis genes and transcription factors. ACC OXIDASE 2 (ACO2) and ACO3 convert ACC to ethylene and were ETR1-dependent, and ACO-promoter-driven reporter fusions were ACC regulated in root tissues in appropriate locations to control root development, with ACO5 localized to root hairs. Abundance of ETR1-dependent transcripts that were predicted to encode transcription factors and ACOs were examined in Col-0 and an ein3eil1 mutant with and without ACC treatment, suggesting the ETR1 and EIN3/EIL1 canonical ethylene signaling pathway regulated some, but not all, of these transcriptional responses. Together, these findings reveal features of an ETR1-dependent GRN that controls both ethylene synthesis and root growth and development. One sentence summaryTranscriptional responses in etr1 LOF and GOF mutants reveal an ethylene-mediated ETR1- and EIN3 dependent gene regulatory network that modulates ethylene signaling and synthesis and root development.

plant biology↗