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褪黑素通过提高光合和抗氧化能力增加二色补血草的生长和耐盐性。

Melatonin increases growth and salt tolerance of Limonium bicolor by improving photosynthetic and antioxidant capacity.

机构信息

Shandong Provincial Key Laboratory of Plant Stress Research, College of Life Sciences, Shandong Normal University, Jinan, Shandong, 250014, People's Republic of China.

DongYing Academy of Agricultural Sciences, Dongying, Shandong, 257000, People's Republic of China.

出版信息

BMC Plant Biol. 2022 Jan 4;22(1):16. doi: 10.1186/s12870-021-03402-x.

Abstract

BACKGROUND

Soil salinization is becoming an increasingly serious problem worldwide, resulting in cultivated land loss and desertification, as well as having a serious impact on agriculture and the economy. The indoleamine melatonin (N-acetyl-5-methoxytryptamine) has a wide array of biological roles in plants, including acting as an auxin analog and an antioxidant. Previous studies have shown that exogenous melatonin application alleviates the salt-induced growth inhibition in non-halophyte plants; however, to our knowledge, melatonin effects have not been examined on halophytes, and it is unclear whether melatonin provides similar protection to salt-exposed halophytic plants.

RESULTS

We exposed the halophyte Limonium bicolor to salt stress (300 mM) and concomitantly treated the plants with 5 μM melatonin to examine the effect of melatonin on salt tolerance. Exogenous melatonin treatment promoted the growth of L. bicolor under salt stress, as reflected by increasing its fresh weight and leaf area. This increased growth was caused by an increase in net photosynthetic rate and water use efficiency. Treatment of salt-stressed L. bicolor seedlings with 5 μM melatonin also enhanced the activities of antioxidants (superoxide dismutase [SOD], peroxidase [POD], catalase [CAT], and ascorbate peroxidase [APX]), while significantly decreasing the contents of hydrogen peroxide (HO), superoxide anion (O), and malondialdehyde (MDA). To screen for L. bicolor genes involved in the above physiological processes, high-throughput RNA sequencing was conducted. A gene ontology enrichment analysis indicated that genes related to photosynthesis, reactive oxygen species scavenging, the auxin-dependent signaling pathway and mitogen-activated protein kinase (MAPK) were highly expressed under melatonin treatment. These data indicated that melatonin improved photosynthesis, decreased reactive oxygen species (ROS) and activated MAPK-mediated antioxidant responses, triggering a downstream MAPK cascade that upregulated the expression of antioxidant-related genes. Thus, melatonin improves the salt tolerance of L. bicolor by increasing photosynthesis and improving cellular redox homeostasis under salt stress.

CONCLUSIONS

Our results showed that melatonin can upregulate the expression of genes related to photosynthesis, reactive oxygen species scavenging and mitogen-activated protein kinase (MAPK) of L. bicolor under salt stress, which can improve photosynthesis and antioxidant enzyme activities. Thus melatonin can promote the growth of the species and maintain the homeostasis of reactive oxygen species to alleviate salt stress.

摘要

背景

土壤盐渍化正在成为一个日益严重的全球性问题,导致耕地丧失和沙漠化,并对农业和经济造成严重影响。吲哚胺褪黑素(N-乙酰-5-甲氧基色胺)在植物中具有广泛的生物学作用,包括作为生长素类似物和抗氧化剂。先前的研究表明,外源褪黑素的应用可以缓解非盐生植物的盐胁迫抑制生长;然而,据我们所知,褪黑素对盐生植物的影响尚未得到检验,也不清楚褪黑素是否为盐暴露的盐生植物提供类似的保护。

结果

我们将盐生植物二色补血草暴露在盐胁迫(300 mM)下,并同时用 5 μM 褪黑素处理植物,以研究褪黑素对盐胁迫的耐受性的影响。外源褪黑素处理促进了盐胁迫下二色补血草的生长,表现在其鲜重和叶面积的增加。这种生长的增加是由于净光合速率和水分利用效率的提高。用 5 μM 褪黑素处理盐胁迫下的二色补血草幼苗也增强了抗氧化剂(超氧化物歧化酶[SOD]、过氧化物酶[POD]、过氧化氢酶[CAT]和抗坏血酸过氧化物酶[APX])的活性,同时显著降低了过氧化氢(HO)、超氧阴离子(O)和丙二醛(MDA)的含量。为了筛选参与上述生理过程的二色补血草基因,进行了高通量 RNA 测序。基因本体富集分析表明,褪黑素处理后与光合作用、活性氧清除、生长素依赖信号通路和丝裂原活化蛋白激酶(MAPK)相关的基因表达上调。这些数据表明,褪黑素通过增加光合作用和改善盐胁迫下细胞氧化还原稳态,改善了二色补血草的耐盐性。

结论

我们的结果表明,褪黑素可以在盐胁迫下上调二色补血草与光合作用、活性氧清除和丝裂原活化蛋白激酶(MAPK)相关的基因的表达,从而提高光合作用和抗氧化酶活性。因此,褪黑素可以促进该物种的生长并维持活性氧的内稳态,从而缓解盐胁迫。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94f8/8725383/1910040c9a3a/12870_2021_3402_Fig1_HTML.jpg

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