百合LpCPC的过表达使百合具有耐盐碱胁迫(NaHCO3)的能力

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yi Dong, Ling Zhang, X. Chang, Xiaolu Wang, Guanrong Li, Shiyao Chen, Shumei Jin
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引用次数: 1

摘要

百合(Lilium Pumilum)分布广泛,耐盐性强。从百合中克隆到蓝铜蛋白LpCPC (Lilium pumilum Cucumber Peeling Cupredoxin)基因,该基因具有I型铜蛋白的保守区。通过DNAMAN软件和MEGA7软件分析,LpCPC与猕猴桃CPC的亲缘关系最为密切。qRT-PCR结果显示,LpCPC基因在百合根和鳞茎中的表达量较高,在20 mM NaHCO3作用下,LpCPC基因在鳞茎中表达量增加,在12 h时达到最高水平。与对照相比,转基因酵母对NaHCO3胁迫的耐受性更强。与野生型相比,过表达植株的萎蔫程度相对较低。此外,过表达品系叶绿素含量、可溶性酚含量和木质素含量均高于野生型,而过表达植株的相对电导率显著低于野生型。盐胁迫应答通路中必需基因NHX1和SOS1的表达量在过表达烟草中稳步高于野生型。与野生型系相比,转基因系具有更高水平的CCR1和CAD,它们参与木质素的产生。采用酵母双杂交技术筛选与LpCPC相互作用的可能相互作用蛋白。筛选出与LpCPC互作的8个蛋白,其中5个蛋白与植物耐盐性相关。综上所述,LpCPC基因在提高百合耐盐碱胁迫能力中发挥着介导分子响应的作用,是提高百合耐盐性的重要基因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Overexpression of LpCPC from Lilium pumilum confers saline-alkali stress (NaHCO3) resistance
ABSTRACT Lilium Pumilum with wide distribution is highly tolerant to salinity. The blue copper protein LpCPC (Lilium pumilum Cucumber Peeling Cupredoxin) gene was cloned from Lilium pumilum, which has the conserved regions of type I copper protein. Moreover, LpCPC has the closest relation to CPC from Actinidia chinensis using DNAMAN software and MEGA7 software. qRT-PCR indicated that LpCPC expression was higher in root and bulb of Lilium pumilum, and the expression of the LpCPC gene increased and reached the highest level at 12 h in bulbs under 20 mM NaHCO3. The transgenic yeast was more tolerant compared with the control under NaHCO3 stress. Compared with the wild type, overexpressing plants indicated a relatively lower degree of wilting. In addition, the chlorophyll content, soluble phenol content, and lignin content of overexpressing lines were higher than that of wild-type, whereas the relative conductivity of overexpressing plants was significantly lower than that of wild-type plants. Expression of essential genes including NHX1 and SOS1 in salt stress response pathways are steadily higher in overexpression tobacco than that in wild-types. Transgenic lines had much higher levels of CCR1 and CAD, which are involved in lignin production, compared with wild-type lines. The yeast two-hybrid technique was applied to screen probable interacting proteins interacting with LpCPC. Eight proteins interacted with LpCPC were screened, and five of which were demonstrated to be associated with plant salinity resistance. Overall, the role of gene LpCPC is mediating molecule responses in increasing saline-alkali stress resistance, indicating that it is an essential gene to enhance salt tolerance in Lilium pumilum.
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来源期刊
Plant Signaling & Behavior
Plant Signaling & Behavior Agricultural and Biological Sciences-Plant Science
CiteScore
6.00
自引率
3.40%
发文量
111
期刊介绍: Plant Signaling & Behavior, a multidisciplinary peer-reviewed journal published monthly online, publishes original research articles and reviews covering the latest aspects of signal perception and transduction, integrative plant physiology, and information acquisition and processing.
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