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Updated: Jan 10, 2026

Author Spotlight: In Silico Creation and Impact of Carbonylated Amino Acids on Protein Structure and Function
Published on: April 26, 2024
Functional analyses and integrated mechanisms of cellular destruction by L-amino acid oxidase
Krisna Prak1, Christin Luft2, Eliona Tsefou2
1National Heart and Lung Institute, Faculty of Medicine, Imperial College London, London, UK.
Abstract:
Snakebite accidents are prevalent worldwide and cause a spectrum of severe clinical manifestations and result in a reduction of patient quality of life and economic income. A major bottleneck in envenomation treatment is our limited understanding of how venom toxins perturb specific cellular processes involved in tissue necrosis. Here, we address this knowledge gap and define the cellular mechanisms via which cell death is triggered by the snake toxin L-amino acid oxidase (LAAO). LAAO is a highly toxic enzyme present in various venoms that causes tissue necrosis, edema, coagulopathies, and organ failure. Here, we identify the residues essential for LAAO oxidation and obtain a catalytically inactive LAAO mutant, which is unable to reproduce the cellular phenotypes. Striking cellular defects are triggered by a catalysis-dependent increase in oxidative stress, via H2O2 (reaction byproduct). LAAO uptake by cells leads to a decrease in lysosome number and size and inhibits autophagy flux. In parallel, mitochondria function is impaired by severe proton leakage, and mitochondrial fission is stimulated, causing their engulfment by autophagosomes. However, mitochondrial clearance is prevented by the lysosomal defects. The concurrent shutdown of cell respiration and energy consumption indicates that LAAO catalysis reduces both metabolism and cell fitness. Thus, essential organelles are coordinately impaired by LAAO activity, accelerating cell demise. Considering the multi-organelle impairment, strategies to reduce organelle injury after LAAO exposure may be effective to maintain critical cell functions and strengthen adaptive responses against cytotoxicity.
Insights
Snake venom L-amino acid oxidase (LAAO) causes cell death by increasing oxidative stress and impairing essential organelles like lysosomes and mitochondria. This leads to reduced cell metabolism and fitness, accelerating demise.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Snakebite envenomation is a global health issue causing significant morbidity and mortality.
- Limited understanding of venom toxins' cellular mechanisms hinders effective treatment development.
- L-amino acid oxidase (LAAO) is a key snake venom toxin implicated in tissue necrosis and organ failure.
Purpose of the Study:
- To elucidate the cellular mechanisms by which L-amino acid oxidase (LAAO) induces cell death.
- To identify critical residues and catalytic activity required for LAAO-induced cytotoxicity.
- To investigate the impact of LAAO on cellular organelles and metabolic processes.
Main Methods:
- Site-directed mutagenesis to generate a catalytically inactive LAAO mutant.
- Cellular assays to assess oxidative stress, lysosomal function, autophagy flux, and mitochondrial dynamics.
- Measurement of cellular respiration and energy consumption.
Main Results:
- LAAO-induced cell death is dependent on its catalytic activity and leads to increased oxidative stress via H2O2 production.
- LAAO impairs lysosome function and inhibits autophagy flux, while also causing mitochondrial proton leakage and fission.
- Impaired mitochondrial clearance due to lysosomal defects, coupled with reduced cell respiration, accelerates cell demise.
Conclusions:
- L-amino acid oxidase (LAAO) triggers cell death through a multi-organelle attack involving oxidative stress and disruption of lysosomal and mitochondrial functions.
- Targeting organelle injury may offer a therapeutic strategy to counteract LAAO-induced cytotoxicity.
- Understanding LAAO's mechanisms is crucial for developing novel treatments for snakebite envenomation.
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