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Formaldehyde Dehydrogenase

Updated: 2026-07-15

Overview

Formaldehyde dehydrogenase (FDH) is a pivotal enzyme in the metabolic pathway of formaldehyde detoxification, converting it to less toxic formate. It is widely distributed in microorganisms, plants, and animals, including humans, where it mitigates endogenous and exogenous formaldehyde exposure. In industrial contexts, FDH is employed in bioremediation processes to degrade formaldehyde pollutants in wastewater and air. Its specificity and efficiency make it valuable for both environmental and laboratory applications, particularly in assays quantifying formaldehyde levels.

Physical and Chemical Properties

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FDH typically exists as a dimer or tetramer with a molecular weight ranging 80-100 kDa, depending on the biological source. The enzyme requires NAD+ as a cofactor and exhibits optimal activity at neutral to slightly alkaline pH (7.0-9.0). Its thermal stability is moderate, with activity loss above 50°C due to denaturation. The lyophilized form is stable for years when stored at -20°C, while solutions retain activity for weeks at 4°C if sterile. Solubility is limited to aqueous buffers, with no activity in organic solvents.

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Main Applications

FDH's primary role is in formaldehyde detoxification systems, such as industrial scrubbers for air purification and wastewater treatment plants. It is also used in biosensors to monitor formaldehyde levels in occupational settings or food products. In research, FDH serves as a tool enzyme to study formaldehyde metabolism or to regenerate NAD+ in coupled enzymatic reactions. Emerging applications include synthetic biology for constructing formaldehyde-resistant microbial strains.

Safety and Storage

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While FDH itself is non-toxic, precautions are necessary when handling powdered forms to avoid inhalation. Use gloves and goggles, and work in a fume hood if reconstituting lyophilized enzyme. Storage at -20°C in aliquots prevents activity loss from repeated freeze-thaw cycles. Solutions should include stabilizing agents like glycerol (10-50%) and be sterile-filtered to inhibit microbial growth. Activity assays should confirm stability after prolonged storage.

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B2B Procurement Guide

When procuring FDH, prioritize suppliers providing certificates of analysis (CoA) with documented activity (U/mg), purity (≥90% by SDS-PAGE), and absence of contaminant enzymes. Microbial-derived FDH (e.g., from Pseudomonas) is cost-effective for industrial use, while mammalian versions suit sensitive assays. Bulk orders (gram scale) may reduce costs by 20-30%. Consider cold-chain logistics for delivery, and validate enzyme performance in your specific application before large-scale purchase.

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