4.7 Article

Selenium species transforming along soil-plant continuum and their beneficial roles for horticultural crops

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HORTICULTURE RESEARCH
卷 10, 期 2, 页码 -

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OXFORD UNIV PRESS INC
DOI: 10.1093/hr/uhac270

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Selenium acquisition from daily diet can reduce disease risk. The main source of dietary Se is the edible parts of crop plants, which is determined by Se bioavailability in soil. Recent research has focused on the biogeochemical cycle of Se driven by specific microorganisms, emphasizing the oxidizing process. Plant root exudates and rhizosphere microorganisms affect soil Se availability. Beneficial microorganisms, including endophytes, promote crop quality and improve crop tolerance to stresses. Understanding Se transformation along the plant-soil continuum is crucial for agriculture and human health.
Selenium (Se) acquirement from daily diet can help reduce the risk of many diseases. The edible parts of crop plants are the main source of dietary Se, while the Se content in crops is determined by Se bioavailability in soil. We summarize recent research on the biogeochemical cycle of Se driven by specific microorganisms and emphasize the oxidizing process in the Se cycle. Moreover, we discuss how plant root exudates and rhizosphere microorganisms affect soil Se availability. Finally, we cover beneficial microorganisms, including endophytes, that promote crop quality and improve crop tolerance to environmental stresses. Se availability to plants depends on the balance between adsorption and desorption, reduction, methylation and oxidation, which are determined by interactions among soil properties, microbial communities and plants. Reduction and methylation processes governed by bacteria or fungi lead to declined Se availability, while Se oxidation regulated by Se-oxidizing microorganisms increases Se availability to plants. Despite a much lower rate of Se oxidization compared to reduction and methylation, the potential roles of microbial communities in increasing Se bioavailability are probably largely underestimated. Enhancing Se oxidation and Se desorption are crucial for the promotion of Se bioavailability and uptake, particularly in Se-deficient soils. Beneficial roles of Se are reported in terms of improved crop growth and quality, and enhanced protection against fungal diseases and abiotic stress through improved photosynthetic traits, increased sugar and amino acid contents, and promoted defense systems. Understanding Se transformation along the plant-soil continuum is crucial for agricultural production and even for human health.

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