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Sulfate-Reducing Bacteria

Updated: 2026-07-15

Overview

Sulfate-reducing bacteria (SRB) are a diverse group of anaerobic microorganisms capable of reducing sulfate to hydrogen sulfide. They are ubiquitous in environments such as marine sediments, oil reservoirs, and industrial wastewater systems. SRB play a pivotal role in the sulfur cycle and are both beneficial and problematic in industrial settings. These bacteria are classified into several genera, including Desulfovibrio, Desulfobacter, and Desulfotomaculum. Their metabolic activity can lead to biocorrosion of metals, making them a concern in pipelines and storage tanks. However, they are also harnessed for bioremediation and bioleaching applications.

Physical and Chemical Properties

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SRB are typically rod-shaped or spherical and require strict anaerobic conditions for growth. They thrive in temperatures ranging from 20-40°C, though some extremophiles can survive higher or lower temperatures. Their metabolism involves the reduction of sulfate (SO₄²⁻) to hydrogen sulfide (H₂S), a process that releases energy for their growth. Hydrogen sulfide, the byproduct of their metabolism, is a toxic and flammable gas with a distinct rotten egg odor. This property makes SRB a significant concern in confined spaces like sewers or oil wells. Their activity can also lead to the precipitation of metal sulfides, which is exploited in bioleaching processes.

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Main Applications

SRB are utilized in wastewater treatment to remove sulfate and heavy metals from industrial effluents. Their ability to precipitate metal sulfides is leveraged in bioleaching, where metals like copper and zinc are extracted from ores. In the oil industry, SRB are used in microbial enhanced oil recovery (MEOR) to improve extraction efficiency. Despite their benefits, SRB are notorious for causing biocorrosion in pipelines and storage tanks. This dual nature necessitates careful management in industrial applications. Research is ongoing to harness their metabolic capabilities while mitigating their corrosive effects.

Safety and Storage

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SRB must be handled under strict anaerobic conditions to maintain their viability. Cultures are typically stored in sealed containers with inert gas atmospheres. Hydrogen sulfide, a byproduct of their metabolism, is highly toxic and requires proper ventilation and monitoring in industrial settings. Personal protective equipment (PPE) such as gas detectors and respirators is essential when working with SRB. Storage temperatures should be maintained within the optimal range for the specific strain, typically around 20-40°C. Long-term preservation often involves cryopreservation or lyophilization.

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B2B Procurement Guide

When procuring SRB for industrial or research purposes, specify the strain, purity, and intended application. Reputable suppliers should provide viability data, typically measured in colony-forming units (CFU) per milliliter. Ensure the supplier complies with relevant safety and quality standards. Pricing varies depending on the strain and volume, with bulk purchases often attracting discounts. Consider the logistics of transportation and storage, as SRB require anaerobic conditions. For large-scale applications, consult with microbiologists or industrial experts to select the most suitable strain.

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