What Is 3-hydroxypropionate cycle

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Last updated: April 15, 2026

Quick Answer: The 3-hydroxypropionate cycle is a carbon fixation pathway used by certain bacteria and archaea, first discovered in *Chloroflexus aurantiacus* in the 1980s. It converts carbon dioxide into organic molecules using unique enzymes like acetyl-CoA carboxylase and malonyl-CoA reductase.

Key Facts

Overview

The 3-hydroxypropionate cycle (3-HP cycle) is a specialized metabolic pathway used by certain microorganisms to fix carbon dioxide into organic compounds. Unlike the Calvin-Benson cycle, which dominates in plants and cyanobacteria, this pathway is found in specific thermophilic bacteria and archaea that thrive in extreme environments.

First characterized in the green non-sulfur bacterium Chloroflexus aurantiacus in the early 1980s, the 3-HP cycle enables autotrophic growth under anaerobic or microaerophilic conditions. It plays a crucial role in carbon assimilation in hot springs and acidic geothermal systems where oxygen levels are low.

How It Works

The 3-hydroxypropionate cycle proceeds through a series of enzymatic reactions that convert CO₂ into central metabolites using acetyl-CoA as a starter molecule. It operates in a cyclic fashion, regenerating key intermediates while producing glyoxylate for biosynthesis.

Comparison at a Glance

The 3-hydroxypropionate cycle differs significantly from other carbon fixation pathways in energy use, intermediates, and enzyme composition.

PathwayOrganismsCO₂ Fixed per TurnATP per CO₂Key Enzyme
3-Hydroxypropionate CycleChloroflexus aurantiacus, Metallosphaera sedula27Malonyl-CoA reductase
Calvin-Benson CyclePlants, cyanobacteria33RuBisCO
Reverse TCA CycleChlorobium, Hydrogenobacter24ATP-citrate lyase
Wood-Ljungdahl PathwayAcetogens, methanogens21CO dehydrogenase
Reductive Acetyl-CoA PathwaySome archaea21Acetyl-CoA synthase

This comparison highlights the 3-HP cycle’s high ATP cost and niche occurrence. While less efficient than the Calvin cycle, it allows survival in environments where oxygen-sensitive enzymes rule out other pathways.

Why It Matters

Understanding the 3-hydroxypropionate cycle expands knowledge of microbial metabolism and the diversity of life in extreme environments. It also offers insights for biotechnology and synthetic biology applications.

As research advances, the 3-hydroxypropionate cycle may inspire sustainable technologies that convert greenhouse gases into useful products, bridging microbiology and environmental innovation.

Sources

  1. WikipediaCC-BY-SA-4.0

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