大气CO2浓度升高可降低番茄花叶病毒在番茄植株中的严重程度。

IF 4 2区 生物学 Q1 PLANT SCIENCES
Giovanni Marino, Andrea Carli, Antonio Raschi, Mauro Centritto, Emanuela Noris, Chiara D'Errico, Slavica Matić
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引用次数: 0

摘要

以番茄花叶病毒(ToMV)为病原菌,在自然升高的CO2浓度下进行番茄花叶病研究,模拟未来气候情景对ToMV-番茄致病系统的潜在影响。在两种不同的[CO2]环境下培养受ToMV感染的番茄植株:升高[CO2](自然富集至约1000 μmol mol-1)和环境[CO2](环境大气[CO2]为420 μmol mol-1)。监测关键参数,包括植物病理学(疾病指数、ToMV基因表达)、生长相关(株高、叶面积)和生理性状(叶绿素含量、类黄酮水平、氮平衡指数),以评估升高[CO2]的影响。升高的[CO2]显著降低了疾病指数,从环境[CO2]下的2.4降至升高[CO2]下的1.7。此外,在高[CO2]环境下生长的植物中,病毒RNA的表达明显低于环境[CO2]。虽然在环境[CO2]下,ToMV感染导致叶绿素含量和氮平衡指数降低,类黄酮水平升高,但在升高的[CO2]下,这些生理效应在很大程度上得到缓解。在高[CO2]环境下生长的受感染植物显示出的这些参数值接近于在环境[CO2]下生长的健康植物。这些发现表明,升高的[CO2]有助于减轻番茄花叶病的影响,并有助于了解未来气候情景如何影响番茄- tomv相互作用和其他植物-病原体相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Elevated Atmospheric CO2 Concentrations Reduce Tomato Mosaic Virus Severity in Tomato Plants.

Tomato mosaic disease, caused by tomato mosaic virus (ToMV), was studied under naturally elevated [CO2] concentrations to simulate the potential impacts of future climate scenarios on the ToMV-tomato pathosystem. Tomato plants infected with ToMV were cultivated under two distinct [CO2] environments: elevated [CO2] (naturally enriched to approximately 1000 μmol mol-1) and ambient [CO2] (ambient atmospheric [CO2] of 420 μmol mol-1). Key parameters, including phytopathological (disease index, ToMV gene expression), growth-related (plant height, leaf area), and physiological traits (chlorophyll content, flavonoid levels, nitrogen balance index), were monitored to assess the effects of elevated [CO2]. Elevated [CO2] significantly reduced the disease index from 2.4 under ambient [CO2] to 1.7 under elevated [CO2]. Additionally, viral RNA expression was notably lower in plants grown at elevated [CO2] compared to those under ambient [CO2]. While ToMV infection led to reductions in the chlorophyll content and nitrogen balance index and an increase in the flavonoid levels under ambient [CO2], these physiological effects were largely mitigated under elevated [CO2]. Infected plants grown at elevated [CO2] showed values for these parameters that approached those of healthy plants grown under ambient [CO2]. These findings demonstrate that elevated [CO2] helps to mitigate the effects of tomato mosaic disease and contribute to understanding how future climate scenarios may influence the tomato-ToMV interaction and other plant-pathogen interactions.

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来源期刊
Plants-Basel
Plants-Basel Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
6.50
自引率
11.10%
发文量
2923
审稿时长
15.4 days
期刊介绍: Plants (ISSN 2223-7747), is an international and multidisciplinary scientific open access journal that covers all key areas of plant science. It publishes review articles, regular research articles, communications, and short notes in the fields of structural, functional and experimental botany. In addition to fundamental disciplines such as morphology, systematics, physiology and ecology of plants, the journal welcomes all types of articles in the field of applied plant science.
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