TY - JOUR
T1 - Biosynthesis and Export of Membrane-Enveloped Selenium Nanoparticles by Escherichia coli
AU - Ochi, Anna
AU - Shibamoto, Kano
AU - Toyotake, Yosuke
AU - Fujioka, Daiki
AU - Yokoyama, Fumiaki
AU - Okanishi, Hiroki
AU - Imai, Takeshi
AU - Fujita, Daiki
AU - Aono, Riku
AU - Inoue, Masao
AU - Takizawa, Masaru
AU - Tobe, Ryuta
AU - Kanai, Yoshikatsu
AU - Imai, Tomoya
AU - Mihara, Hisaaki
N1 - Publisher Copyright:
© 2025 The Authors. Published by American Chemical Society
PY - 2026/2/10
Y1 - 2026/2/10
N2 - Bacteria reduce toxic selenium oxyanions, such as selenite, to elemental selenium (Se0), forming selenium nanoparticles (SeNPs) either intracellularly or extracellularly. However, the mechanism through which extracellular SeNPs (Ex-SeNPs) are exported remains unclear. In this study, we characterized Ex-SeNPs biosynthesized by Escherichia coli during the aerobic reduction of selenite. The SeNPs appeared within 2 h of exposure, remained extracellular, and displayed a consistent spherical morphology (∼100 nm). Purified Ex-SeNPs consisted of an Se0 core enveloped by a membrane-like layer containing lipids, proteins, carbohydrates, peptidoglycan, and lipopolysaccharides. Fluorescence microscopy and gas chromatography–mass spectrometry indicated that the encapsulated membrane originates from the E. coli cell membrane. Notably, mutants deficient in the outer membrane proteins OmpC or TolA failed to excrete SeNPs, resulting in intracellular accumulation despite efficient Se0 synthesis. Our findings suggest that E. coli forms SeNPs intracellularly and exports them via an envelope-dependent process, during which the particles may become encapsulated in membrane-like structures. These findings help clarify the mechanism underlying a membrane-dependent pathway for SeNP detoxification and export that had been suggested but not directly demonstrated.
AB - Bacteria reduce toxic selenium oxyanions, such as selenite, to elemental selenium (Se0), forming selenium nanoparticles (SeNPs) either intracellularly or extracellularly. However, the mechanism through which extracellular SeNPs (Ex-SeNPs) are exported remains unclear. In this study, we characterized Ex-SeNPs biosynthesized by Escherichia coli during the aerobic reduction of selenite. The SeNPs appeared within 2 h of exposure, remained extracellular, and displayed a consistent spherical morphology (∼100 nm). Purified Ex-SeNPs consisted of an Se0 core enveloped by a membrane-like layer containing lipids, proteins, carbohydrates, peptidoglycan, and lipopolysaccharides. Fluorescence microscopy and gas chromatography–mass spectrometry indicated that the encapsulated membrane originates from the E. coli cell membrane. Notably, mutants deficient in the outer membrane proteins OmpC or TolA failed to excrete SeNPs, resulting in intracellular accumulation despite efficient Se0 synthesis. Our findings suggest that E. coli forms SeNPs intracellularly and exports them via an envelope-dependent process, during which the particles may become encapsulated in membrane-like structures. These findings help clarify the mechanism underlying a membrane-dependent pathway for SeNP detoxification and export that had been suggested but not directly demonstrated.
KW - Escherichia coli
KW - cell envelope
KW - nanoparticle export
KW - selenite reduction
KW - selenium nanoparticles
UR - https://www.scopus.com/pages/publications/105029858591
UR - https://www.scopus.com/pages/publications/105029858591#tab=citedBy
U2 - 10.1021/acs.est.5c10008
DO - 10.1021/acs.est.5c10008
M3 - Article
C2 - 41271200
AN - SCOPUS:105029858591
SN - 0013-936X
VL - 60
SP - 4213
EP - 4227
JO - Environmental Science and Technology
JF - Environmental Science and Technology
IS - 5
ER -