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1.
Int J Mol Sci ; 19(6)2018 Jun 13.
Artigo em Inglês | MEDLINE | ID: mdl-29899298

RESUMO

In maize (Zea mays L.), unilateral cross-incompatibility (UCI) is controlled by Gametophyte factors (Ga), including Ga1, Ga2, and Tcb1; however, the molecular mechanisms underpinning this process remain unexplored. Here, we report the pollination phenotype of an inbred line, 511L, which carries a near-dominant Ga2-S allele. We performed a high-throughput RNA sequencing (RNA-Seq) analysis of the compatible and incompatible crosses between 511L and B73, to identify the transcriptomic differences associated with Ga2-mediated UCI. An in vivo kinetics analysis revealed that the growth of non-self pollen tubes was blocked at the early stages after pollination in 511L, maintaining the UCI barrier in Ga2. In total, 25,759 genes were expressed, of which, 2063 differentially expressed genes (DEGs) were induced by pollination (G_GG, G_GB, B_BB, B_BG). A gene ontology (GO) enrichment analysis revealed that these genes were specifically enriched in functions involved in cell wall strength and pectic product modification. Moreover, 1839, 4382, and 5041 genes were detected to differentially express under same pollination treatments, including B_G, BG_GG, and BB_GB, respectively. A total of 1467 DEGs were constitutively expressed between the two inbred lines following pollination treatments, which were enriched in metabolic processes, flavonoid biosynthesis, cysteine biosynthesis, and vacuole functions. Furthermore, we confirmed 14 DEGs related to cell wall modification and stress by qRT-PCR, which might be involved in Ga2-S-mediated UCI. Our results provide a comprehensive foundation for the molecular mechanisms involved in silks of UCI mediated by Ga2-S.


Assuntos
Genes de Plantas , Autoincompatibilidade em Angiospermas/genética , Transcriptoma , Zea mays/genética , Pólen/genética , Pólen/fisiologia , Zea mays/fisiologia
2.
Nat Prod Commun ; 11(5): 673-6, 2016 May.
Artigo em Inglês | MEDLINE | ID: mdl-27319148

RESUMO

Theobroxide has been isolated from culture filtrates of Lasiodiplodia theobromae as a potato tuber-inducing compound. In this study, the metabolism of theobroxide was investigated using cowpea as an experimental model and [2H3-7]theobroxide as a substrate for analyzing a metabolite, which revealed that theobroxide applied exogenously to the roots was converted into 3-O-ß-D-glucopyranosyltheobroxide.


Assuntos
Cicloexanos/metabolismo , Compostos de Epóxi/metabolismo , Fabaceae/metabolismo , Monossacarídeos/metabolismo , Ascomicetos/química , Cicloexanos/isolamento & purificação , Compostos de Epóxi/isolamento & purificação , Monossacarídeos/isolamento & purificação
3.
Z Naturforsch C J Biosci ; 59(11-12): 828-34, 2004.
Artigo em Inglês | MEDLINE | ID: mdl-15666542

RESUMO

The natural potato microtuber inducing substance, theobroxide, strongly induces the formation of tuber of potato (Solanum tuberosum L.) and flower bud of morning glory (Pharbitis nil) plants under non-inducing conditions (long days) (Yoshihara et al., 2000). In the present study, theobroxide was evaluated for its effect on the level of endogenous jasmonoids in different tissues of such two plants. An in vitro bioassay using cultures of single-node segments of potato stems was performed with the supplement of theobroxide in the medium. The endogenous jasmonic acid (JA) and its analogue tuberonic acid (TA, 12-hydroxyjasmonic acid) in segments and microtubers were quantitatively analyzed. The increase in the endogenous JA level caused by theobroxide was observed in both segments and microtubers. Endogenous TA was only detected in segments, and the content increased with the concentration of theobroxide. As for morning glory, the whole plant was sprayed with theobroxide for 1 approximately 5 weeks under different photoperiods and endogenous JA in the leaves was quantitatively analyzed. Theobroxide spraying increased the level of endogenous JA in the leaves of the plants grown under both long and short days.


Assuntos
Acetatos/química , Convolvulaceae/química , Cicloexanos/química , Ciclopentanos/química , Compostos de Epóxi/química , Solanum tuberosum/química , Acetatos/isolamento & purificação , Acetatos/farmacologia , Cicloexanos/isolamento & purificação , Cicloexanos/farmacologia , Ciclopentanos/isolamento & purificação , Ciclopentanos/farmacologia , Deutério , Compostos de Epóxi/isolamento & purificação , Compostos de Epóxi/farmacologia , Flores/química , Marcação por Isótopo/métodos , Folhas de Planta/efeitos dos fármacos , Folhas de Planta/metabolismo , Raízes de Plantas/química
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