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Métodos Terapêuticos e Terapias MTCI
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1.
Plant Reprod ; 33(3-4): 143-158, 2020 12.
Artigo em Inglês | MEDLINE | ID: mdl-32651727

RESUMO

KEY MESSAGE: In vitro embryo development is highly plastic; embryo cell fate can be re-established in tissue culture through different pathways. In most angiosperms, embryo development from the single-celled zygote follows a defined pattern of cell divisions in which apical (embryo proper) and basal (root and suspensor) cell fates are established within the first cell divisions. By contrast, embryos that are induced in vitro in the absence of fertilization show a less regular initial cell division pattern yet develop into histodifferentiated embryos that can be converted into seedlings. We used the Brassica napus microspore embryogenesis system, in which the male gametophyte is reprogrammed in vitro to form haploid embryos, to identify the developmental fates of the different types of embryogenic structures found in culture. Using time-lapse imaging of LEAFY COTYLEDON1-expressing cells, we show that embryogenic cell clusters with very different morphologies are able to form haploid embryos. The timing of surrounding pollen wall (exine) rupture is a major determinant of cell fate in these clusters, with early exine rupture leading to the formation of suspensor-bearing embryos and late rupture to suspensorless embryos. In addition, we show that embryogenic callus, which develops into suspensor-bearing embryos, initially expresses transcripts associated with both basal- and apical-embryo cell fates, suggesting that these two cell fates are fixed later in development. This study reveals the inherent plasticity of in vitro embryo development and identifies new pathways by which embryo cell fate can be established.


Assuntos
Brassica napus , Sementes , Brassica napus/anatomia & histologia , Brassica napus/embriologia , Brassica napus/genética , Plasticidade Celular , Haploidia , Pólen , Sementes/anatomia & histologia , Células-Tronco Totipotentes/citologia
2.
New Phytol ; 223(3): 1607-1620, 2019 08.
Artigo em Inglês | MEDLINE | ID: mdl-31087371

RESUMO

(E)-ß-Farnesene (EßF) is the predominant constituent of the alarm pheromone of most aphid pest species. Moreover, natural enemies of aphids use EßF to locate their aphid prey. Some plant species emit EßF, potentially as a defense against aphids, but field demonstrations are lacking. Here, we present field and laboratory studies of flower defense showing that ladybird beetles are predominantly attracted to young stage-2 pyrethrum flowers that emitted the highest and purest levels of EßF. By contrast, aphids were repelled by EßF emitted by S2 pyrethrum flowers. Although peach aphids can adapt to pyrethrum plants in the laboratory, aphids were not recorded in the field. Pyrethrum's (E)-ß-farnesene synthase (EbFS) gene is strongly expressed in inner cortex tissue surrounding the vascular system of the aphid-preferred flower receptacle and peduncle, leading to elongated cells filled with EßF. Aphids that probe these tissues during settlement encounter and ingest plant EßF, as evidenced by the release in honeydew. These EßF concentrations in honeydew induce aphid alarm responses, suggesting an extra layer of this defense. Collectively, our data elucidate a defensive mimicry in pyrethrum flowers: the developmentally regulated and tissue-specific EßF accumulation and emission both prevents attack by aphids and recruits aphid predators as bodyguards.


Assuntos
Afídeos/fisiologia , Carnivoridade/fisiologia , Chrysanthemum cinerariifolium/fisiologia , Flores/fisiologia , Herbivoria , Feromônios/farmacologia , Animais , Monoterpenos Bicíclicos/metabolismo , Chrysanthemum cinerariifolium/efeitos dos fármacos , Chrysanthemum cinerariifolium/genética , Besouros/fisiologia , Flores/efeitos dos fármacos , Regulação da Expressão Gênica de Plantas , Pirofosfatases/genética , Pirofosfatases/metabolismo , Sesquiterpenos/metabolismo , Compostos Orgânicos Voláteis/análise
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