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拟南芥表型分析揭示了醇脱氢酶和丙酮酸脱羧酶对有氧植物生长的重要性。

Arabidopsis phenotyping reveals the importance of alcohol dehydrogenase and pyruvate decarboxylase for aerobic plant growth.

机构信息

PlantLab, Institute of Life Sciences, Scuola Superiore Sant'Anna, Via Guidiccioni 10, 56010, San Giuliano Terme, Pisa, Italy.

LemnaTec GmbH, Nerscheider Weg 170, 52076, Aachen, Germany.

出版信息

Sci Rep. 2020 Oct 7;10(1):16669. doi: 10.1038/s41598-020-73704-x.

Abstract

Alcohol dehydrogenase (ADH) and pyruvate decarboxylase (PDC) are key to the establishment of the fermentative metabolism in plants during oxygen shortage. Most of the evidence that both ADH and PDC are required for plant tolerance to hypoxia comes from experiments performed by limiting oxygen in the environment, such as by exposing plants to gaseous hypoxia or to waterlogging or submergence. However, recent experiments have shown that hypoxic niches might exist in plants grown in aerobic conditions. Here, we investigated the importance of ADH and PDC for plant growth and development under aerobic conditions, long-term waterlogging and short-term submergence. Data were collected after optimizing the software associated with a commercially-available phenotyping instrument, to circumvent problems in separation of plants and background pixels based on colour features, which is not applicable for low-oxygen stressed plants due to the low colour contrast of leaves with the brownish soil. The results showed that the growth penalty associated with the lack of functional ADH1 or both PDC1 and PDC2 is greater under aerobic conditions than in hypoxia, highlighting the importance of fermentative metabolism in plants grown under normal, aerobic conditions.

摘要

乙醇脱氢酶(ADH)和丙酮酸脱羧酶(PDC)是植物在缺氧时建立发酵代谢的关键。大多数关于 ADH 和 PDC 都需要植物耐受缺氧的证据来自于通过限制环境中的氧气来进行的实验,例如通过使植物暴露于气态缺氧或水涝或淹没。然而,最近的实验表明,在有氧条件下生长的植物中可能存在缺氧小生境。在这里,我们研究了 ADH 和 PDC 在有氧条件下、长期水涝和短期淹没下对植物生长和发育的重要性。在优化了与商业上可用的表型仪器相关的软件后,收集了数据,以避免基于颜色特征分离植物和背景像素的问题,由于低氧胁迫下叶子与棕色土壤的颜色对比度低,因此该方法不适用于低氧胁迫下的植物。结果表明,缺乏功能性 ADH1 或 PDC1 和 PDC2 都会导致在有氧条件下的生长惩罚大于缺氧条件下,这突出了发酵代谢在正常有氧条件下生长的植物中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8476/7542448/b2f6b4fc941c/41598_2020_73704_Fig1_HTML.jpg

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