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April 29, 2026Processes0 citationsOpen Access

Genomic and Proteomic Insights into Arsenic Detoxification and Alternative Transformation Pathways in Microbacterium oxydans AE038-20

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FSFlorencia Cecilia SpuchesAMAndrés H. MoralesJHJohan S. Hero

Key Points

  • The aim is to explore arsenic detoxification and transformation pathways in Microbacterium oxydans AE038-20 isolated from arsenic-rich groundwater.
  • Isolated Microbacterium oxydans AE038-20 from arsenic-contaminated groundwater.
  • Conducted growth assays to assess tolerance to inorganic arsenic.
  • Performed genome sequencing and proteomic analyses to identify arsenic-related genes and proteins.
  • Microbacterium oxydans AE038-20 fully oxidized As(III) to As(V) and MAs(III) to MAs(V) in 10 days.
  • Identified ars-related determinants supporting detoxification mechanisms, including efflux systems.
  • No canonical arsenite oxidases were detected, indicating an alternative oxidation mechanism potentially involving pigments.

Abstract

Arsenic-contaminated groundwater is a major environmental concern, particularly in northern Argentina. Here, Microbacterium oxydans AE038-20, isolated from arsenic-rich groundwater, was investigated to elucidate its tolerance and transformation capacity. Growth assays showed that the strain tolerates inorganic arsenic As(III), As(V) and methylarsenite MAs(III) without significant inhibition. Speciation analyses revealed progressive oxidation of As(III) to As(V), reaching near-complete conversion after 10 days. Similarly, MAs(III) was fully oxidized to MAs(V). Genome sequencing identified ars-related determinants, including arsR, arsC, putative arsenite efflux systems, and arsP, supporting detoxification via arsenate reduction and arsenite efflux. Proteomic analyses confirmed the expression of proteins related to arsenic resistance, oxidative stress response, and metal transport. However, no canonical arsenite oxidases were detected at either the genomic or proteomic level. Despite this, M. oxydans AE038-20 exhibited clear arsenic oxidation activity. The detection of pigment-associated proteins and in vitro oxidation assays suggest an alternative mechanism potentially mediated by redox-active pigments. These findings highlight an alternative pathway for arsenic transformation in environmental bacteria.

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Cite This Study

Spuches et al. (2026) studied this question.

synapsesocial.com/papers/69f19f74edf4b4682480644bhttps://doi.org/10.3390/pr14091395
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