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Aconitase

Updated: 2026-07-15

Overview

Aconitase is a metalloenzyme essential for the tricarboxylic acid (TCA) cycle, where it converts citrate to isocitrate through cis-aconitate as an intermediate. Discovered in 1937 by Martius and Knoop, it belongs to the hydratase family and requires an iron-sulfur [4Fe-4S] cluster for catalytic activity. The enzyme exists in two isoforms: mitochondrial (ACO2) for energy metabolism and cytosolic (ACO1/IRP1) with dual roles in iron homeostasis and RNA binding. In industrial contexts, aconitase is primarily used as a research reagent for metabolic pathway analysis and enzyme kinetics studies. Recombinant forms produced in E. coli dominate the commercial market, typically offered with specific activities ranging from 5-50 units/mg protein. The enzyme's oxygen-sensitive nature necessitates specialized handling during purification and storage.

Physical and Chemical Properties

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Aconitase demonstrates optimal activity at physiological pH (7.4) and temperature (37°C), with kinetic parameters showing Km values of 0.02-0.05 mM for citrate. The [4Fe-4S] cluster at its active site is vulnerable to oxidative degradation, converting to inactive [3Fe-4S] forms upon oxygen exposure. This redox sensitivity makes the enzyme a biological sensor for oxidative stress. Spectroscopic characterization reveals UV-Vis absorption peaks at 280 nm (protein) and 420 nm (cluster). The enzyme loses ~50% activity after 30 minutes at 45°C due to thermal denaturation. Commercial preparations often contain stabilizing agents like glycerol (10-50%) and require reconstitution in anaerobic buffers containing dithiothreitol (DTT) for maximum activity recovery.

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Main Applications

In biochemical research, aconitase serves as a key tool for investigating mitochondrial dysfunction, metabolic disorders like Friedreich's ataxia, and cancer metabolism alterations. Pharmaceutical companies utilize it in drug discovery screens targeting TCA cycle modulation. Diagnostic laboratories incorporate aconitase activity assays in metabolic panel tests. Industrial applications include metabolic engineering of microorganisms for biofuel production, where aconitase activity optimization can enhance flux through the TCA cycle. Recent biotechnology developments employ engineered aconitase variants as biosensors for intracellular iron and reactive oxygen species (ROS) levels. Food science researchers also study its role in citrate metabolism during fermentation processes.

Safety and Storage

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While aconitase presents low acute toxicity (LD50 >2000 mg/kg oral, rat), inhalation of lyophilized powder may cause respiratory irritation. Proper handling requires nitrile gloves, safety goggles, and fume hood use when reconstituting. Spills should be contained with absorbent materials and cleaned with 70% ethanol. Long-term storage demands oxygen-free environments achievable with vacuum-sealed vials or argon-blanketed containers. Adding 1-5 mM DTT or 2-mercaptoethanol to storage buffers prevents cluster oxidation. Lyophilized samples remain stable for 2-3 years at -20°C, while solution forms retain activity for 6-12 months at -80°C with cryoprotectants. Repeated freeze-thaw cycles should be avoided.

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B2B Procurement Guide

When sourcing aconitase, prioritize suppliers providing certificates of analysis (CoA) with verified specific activity, SDS-PAGE purity (>90%), and cluster content (iron/sulfur ratio ~1:1). Bulk purchasers (≥100mg) should request custom lot testing for industrial-scale applications. Leading producers include Sigma-Aldrich, Cayman Chemical, and recombinant specialty manufacturers like BioVision. For research institutions, consider ready-to-use assay kits containing optimized buffers and substrates. Contract manufacturing options exist for GMP-grade production under ISO 13485 for diagnostic applications. Payment terms typically range from net-30 to 50% advance for custom orders. International shipments require temperature-controlled logistics with dry ice for lyophilized products (-70°C monitoring recommended).

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