Evidence mapPaperPMID 42503555Full record

ArticleInternational microbiology : the official journal of the Spanish Society for Microbiology2026

Selenite tolerance, reduction performance and biogenic selenium nanoparticle biosynthesis by Priestia aryabhattai YL286 isolated from the wheat phyllosphere.

Lei Jing, Chenxi Hu, Mei Yang, Yaqi Dang, Yitong Jia, Jun Hong

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Article in International microbiology : the official journal of the Spanish Society for Microbiology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 · Who and what money

Authors and funding

6 authors.

Lei JingCollege of Life Sciences and Engineering, Henan University of Urban Construction, Pingdingshan, 467044, Henan, P.R. China. 20191025@huuc.edu.cn.
Chenxi HuCollege of Life Sciences and Engineering, Henan University of Urban Construction, Pingdingshan, 467044, Henan, P.R. China.
Mei YangCollege of Life Sciences and Engineering, Henan University of Urban Construction, Pingdingshan, 467044, Henan, P.R. China.
Yaqi DangCollege of Life Sciences and Engineering, Henan University of Urban Construction, Pingdingshan, 467044, Henan, P.R. China.
Yitong JiaCollege of Life Sciences and Engineering, Henan University of Urban Construction, Pingdingshan, 467044, Henan, P.R. China.
Jun HongCollege of Life Sciences and Engineering, Henan University of Urban Construction, Pingdingshan, 467044, Henan, P.R. China.

Funding

Science and Education Integration Research Foundation of Henan University of Urban Construction K-X2024036
6 · The paper itself

Abstract

The phyllosphere is a promising reservoir of microbial resources and the selenite biotransformation potential of phyllosphere bacteria remains poorly characterized. In this study, a selenite-resistant bacterial strain YL286 was isolated from the wheat phyllosphere and identified as Priestia aryabhattai via 16 S rRNA gene phylogeny. We systematically evaluated its selenite tolerance, reduction kinetics, biogenic selenium nanoparticle biosynthesis, and Transcriptomic adaptation under extreme selenite stress. The strain tolerated up to 50 mM sodium selenite, with a 24 h growth lag phase followed by metabolic recovery. Under 1 mM and 2 mM selenite conditions, selenite reduction occurred predominantly during the stationary phase, achieving 90% and 60% reduction efficiency after 60 h of incubation, respectively. The biosynthesized selenium nanoparticles were spherical, with an average hydrodynamic diameter of 315.7 nm and a zeta potential of -27.9 mV. TEM and STEM-EDS analyses confirmed elemental selenium as the core component, with a surface-associated organic capping layer. Transcriptomic analysis under 50 mM selenite exposure revealed coordinated upregulation of central carbon metabolism, glutathione metabolism, and sulfur/selenium detoxification pathways, while biofilm formation and anabolic biosynthetic processes were significantly down-regulated. This transcriptional profile reflected an energy-prioritized stress adaptation strategy rather than a dedicated selenium nanoparticle biosynthesis program. To our knowledge, this study provides the first systematic characterization of selenite biotransformation and biogenic selenium nanoparticle biosynthesis in Priestia aryabhattai. The strain represents a phyllosphere-derived bacterial candidate for green selenium nanomaterial synthesis. The findings also offer preliminary information on selenite stress adaptation in phyllosphere bacteria.

Indexed as

Biogenic selenium nanoparticlesPriestia aryabhattaiSelenite resistanceWheat phyllosphere

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.