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硫饥饿拟南芥中硫苷分解代谢维持硫苷谱和硫苷转运。

Glucosinolate Catabolism Maintains Glucosinolate Profiles and Transport in Sulfur-Starved Arabidopsis.

机构信息

Department of Bioscience and Biotechnology, Faculty of Agriculture, Kyushu University, Fukuoka, 819-0395 Japan.

Department of Biological Science Course, Faculty of Agriculture, Saga University, Saga, 840-8502 Japan.

出版信息

Plant Cell Physiol. 2023 Dec 21;64(12):1534-1550. doi: 10.1093/pcp/pcad075.

DOI:10.1093/pcp/pcad075
PMID:37464897
Abstract

Glucosinolates (GSLs) are sulfur (S)-rich specialized metabolites present in Brassicales order plants. Our previous study found that GSL can function as a S source in Arabidopsis seedlings via its catabolism catalyzed by two β-glucosidases (BGLUs), BGLU28 and BGLU30. However, as GSL profiles in plants vary among growth stages and organs, the potential contribution of BGLU28/30-dependent GSL catabolism at the reproductive growth stage needs verification. Thus, in this study, we assessed growth, metabolic and transcriptional phenotypes of mature bglu28/30 double mutants grown under different S conditions. Our results showed that compared to wild-type plants grown under -S, mature bglu28/30 mutants displayed impaired growth and accumulated increased levels of GSL in their reproductive organs and rosette leaves of before-bolting plants. In contrast, the levels of primary S-containing metabolites, glutathione and cysteine decreased in their mature seeds. Furthermore, the transport of GSL from rosette leaves to the reproductive organs was stimulated in the bglu28/30 mutants under -S. Transcriptome analysis revealed that genes related to other biological processes, such as ethylene response, defense response and plant response to heat, responded differentially to -S in the bglu28/30 mutants. Altogether, these findings broadened our understanding of the roles of BGLU28/30-dependent GSL catabolism in plant adaptation to nutrient stress.

摘要

硫苷(GSLs)是 Brassicales 目植物中富含硫(S)的特异性代谢物。我们之前的研究发现,GSL 可以通过两种β-葡萄糖苷酶(BGLUs),BGLU28 和 BGLU30 催化的分解代谢作为 S 源在拟南芥幼苗中发挥作用。然而,由于植物中 GSL 谱在不同的生长阶段和器官中存在差异,因此需要验证 BGLU28/30 依赖性 GSL 分解代谢在生殖生长阶段的潜在贡献。因此,在本研究中,我们评估了在不同 S 条件下生长的成熟 bglu28/30 双突变体的生长、代谢和转录表型。我们的结果表明,与在 -S 条件下生长的野生型植物相比,成熟的 bglu28/30 突变体在生殖器官和未抽薹植物的莲座叶中表现出生长受损和 GSL 积累增加。相比之下,成熟种子中含 S 初级代谢物谷胱甘肽和半胱氨酸的水平降低。此外,在 -S 条件下,BGLU28/30 突变体中 GSL 从莲座叶向生殖器官的运输受到刺激。转录组分析表明,与其他生物学过程(如乙烯反应、防御反应和植物对热的反应)相关的基因在 bglu28/30 突变体中对 -S 的响应存在差异。总之,这些发现拓宽了我们对 BGLU28/30 依赖性 GSL 分解代谢在植物适应营养胁迫中的作用的理解。

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