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脱水素在越冬芽中高度表达,并增强三叶龙胆的耐旱性和抗冻性。

Dehydrins are highly expressed in overwintering buds and enhance drought and freezing tolerance in Gentiana triflora.

机构信息

Iwate Biotechnology Research Center, 22-174-4 Narita, Kitakami, Iwate 024-0003, Japan.

出版信息

Plant Sci. 2013 Dec;213:55-66. doi: 10.1016/j.plantsci.2013.08.012. Epub 2013 Sep 7.

DOI:10.1016/j.plantsci.2013.08.012
PMID:24157208
Abstract

Gentians, herbaceous perennials, produce overwintering buds (OWBs) to survive the cold season. Although gentians are known to have strong stress tolerances against drought, cold and freezing, the molecular mechanisms of tolerance are unclear. We explored genes more highly expressed in OWBs than in other tissues and identified two gentian orthologs of dehydrins, denoted GtDHN1 and GtDHN2. These GtDHNs possess several ABA or dehydration responsive elements. Furthermore, GtDHN1 and GtDHN2 transcripts in OWBs accumulated during the winter but decreased prior to spring, suggesting that GtDHNs may be induced by dehydration stress during cold periods and may act as a stress protectant mediated by ABA. Likewise, cultured gentian plantlets accumulated GtDHN transcripts in response to ABA as well as cold and drought stresses. Moreover, transgenic gentian plantlets overexpressing GtDHN1 or GtDHN2 showed improved cold and drought stress tolerance. Metabolome analysis revealed that major antioxidants such as glutathione and ascorbate were accumulated in all transgenic plantlets. Overexpression of GtDHNs also affected the activities of the antioxidant enzymes, ascorbate peroxidase and glutathione peroxidase. Based on the results of this study, GtDHNs are induced by ABA and dehydration stress and have an ability to alleviate dehydration stress, probably via activating antioxidant mechanisms. Accumulation of GtDHNs may be part of the strategy for winter survival of gentian OWBs.

摘要

龙胆,草本多年生植物,产生越冬芽(OWB)以在寒冷季节中生存。虽然龙胆被认为对干旱、寒冷和冻结具有很强的耐受能力,但耐受的分子机制尚不清楚。我们研究了在 OWB 中比其他组织表达更高的基因,并鉴定出两个龙胆脱水素的同源物,分别命名为 GtDHN1 和 GtDHN2。这些 GtDHNs 具有几个 ABA 或脱水响应元件。此外,OWB 中的 GtDHN1 和 GtDHN2 转录本在冬季积累,但在春季前减少,表明 GtDHNs 可能是由寒冷期的脱水胁迫诱导的,并且可能作为由 ABA 介导的应激保护剂发挥作用。同样,培养的龙胆幼苗对 ABA 以及寒冷和干旱胁迫会积累 GtDHN 转录本。此外,过表达 GtDHN1 或 GtDHN2 的转基因龙胆幼苗表现出对寒冷和干旱胁迫的耐受性提高。代谢组学分析表明,所有转基因幼苗中都积累了主要的抗氧化剂,如谷胱甘肽和抗坏血酸。GtDHNs 的过表达还影响了抗氧化酶,如抗坏血酸过氧化物酶和谷胱甘肽过氧化物酶的活性。基于本研究的结果,GtDHNs 被 ABA 和脱水胁迫诱导,并具有缓解脱水胁迫的能力,可能通过激活抗氧化机制。GtDHNs 的积累可能是龙胆 OWB 冬季生存策略的一部分。

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