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March 29, 2026Ecologies2 citationsOpen Access

Diversity of Culturable Sulfate-Reducing Bacterial Consortia and Species Capable of Hydrocarbon Degradation Isolated from Marine Environments

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AEA. I. EskovaIIIrina V. Isaeva

Key Points

  • The review aims to explore the metabolic diversity of sulfate-reducing bacteria involved in hydrocarbon degradation in marine environments.
  • Examined various classes of hydrocarbons degraded by sulfate-reducing bacteria.
  • Discussed primary mechanisms such as fumarate addition and carboxylation.
  • Considered syntrophic interactions with archaea during the oxidation of alkanes.
  • Sulfate-reducing bacteria can degrade different hydrocarbon chain lengths and types.
  • Key enzymes involved include alkylsuccinate synthase and benzylsuccinate synthase.
  • Anaerobic degradation processes may complement aerobic remediation strategies in oil-contaminated environments.

Abstract

This review examines the role of sulfate-reducing bacteria in the anaerobic degradation of hydrocarbons in marine sediments, where they contribute to the mineralization of organic matter under anoxic conditions. The metabolic diversity of these microorganisms is described, including their ability to degrade various classes of hydrocarbons such as short-chain (C2–C5), medium-chain (C6–C12), and long-chain (C13–C20+) alkanes, alkenes, and aromatic compounds like naphthalene and phenanthrene. The primary mechanisms involved in the initial activation of these hydrocarbons—fumarate addition and carboxylation—are discussed, along with key enzymes, including alkylsuccinate synthase and benzylsuccinate synthase. Syntrophic interactions are also considered, particularly in which archaea initiate the oxidation of short-chain alkanes (e.g., ethane and butane), with sulfate-reducing bacteria serving as terminal electron acceptors via sulfate reduction. The potential application of these anaerobic processes in bioremediation strategies for oil-contaminated marine sediments is discussed. This microbially mediated degradation may offer a complementary approach to aerobic methods, particularly in oxygen-limited environments. Understanding the activity of sulfate-reducing bacteria activity is relevant to several areas: the development of remediation techniques for anoxic zones, the assessment of methane emissions from marine sediments, the management of microbiologically influenced corrosion, and potential biotechnological applications. Current research directions include the study of syntrophic microbial consortia and the exploration of bioelectrochemical systems.

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Cite This Study

Eskova et al. (2026) studied this question.

synapsesocial.com/papers/69c8c2e4de0f0f753b39d527https://doi.org/10.3390/ecologies7020031
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