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Characterization of Neuronal Lysosome Interactome with Proximity Labeling Proteomics
Published on: June 23, 2022
Lyssavirus M protein degrades neuronal microtubules by reprogramming mitochondrial metabolism
Yueming Yuan1,2, An Fang1,2, Haoran Wang1,2
1State Key Laboratory of Agricultural Microbiology, Huazhong Agricultural University, Wuhan, China.
Abstract:
Infection with neurotropic viruses may result in changes in host behavior, which are closely associated with degenerative changes in neurons. The lyssavirus genus comprises highly neurotropic viruses, including the rabies virus (RABV), which has been shown to induce degenerative changes in neurons, marked by the self-destruction of axons. The underlying mechanism by which the RABV degrades neuronal cytoskeletal proteins remains incomplete. In this study, we show that infection with RABV or overexpression of its M protein can disrupt mitochondrial metabolism by binding to Slc25a4. This leads to a reduction in NAD+ production and a subsequent influx of Ca2+ from the endoplasmic reticulum and mitochondria into the cytoplasm of neuronal cell lines, activating Ca2+-dependent proteinase calpains that degrade α-tubulin. We further screened the M proteins of different lyssaviruses and discovered that the M protein of the dog-derived RABV strain (DRV) does not degrade α-tubulin. Sequence analysis of the DRV M protein and that of the lab-attenuated RABV strain CVS revealed that the 57th amino acid is vital for M-induced microtubule degradation. We generated a recombinant RABV with a mutation at the 57th amino acid position in its M protein and showed that this mutation reduces α-tubulin degradation in vitro and axonal degeneration in vivo. This study elucidates the mechanism by which lyssavirus induces neuron degeneration.IMPORTANCEPrevious studies have suggested that RABV (rabies virus, the representative of lyssavirus) infection induces structural abnormalities in neurons. But there are few articles on the mechanism of lyssavirus' effect on neurons, and the mechanism of how RABV infection induces neurological dysfunction remains incomplete. The M protein of lyssavirus can downregulate cellular ATP levels by interacting with Slc25a4, and this decrease in ATP leads to a decrease in the level of NAD+ in the cytosol, which results in the release of Ca2+ from the intracellular calcium pool, the endoplasmic reticulum, and mitochondria. The presence of large amounts of Ca2+ in the cytoplasm activates Ca2+-dependent proteases and degrades microtubule proteins. The amino acid 57 of M protein is the key site determining its disruption of mitochondrial metabolism and subsequent neuron degeneration.
Insights
Rabies virus (RABV) infection disrupts neuron function by degrading alpha-tubulin. This occurs when RABV
Area of Science:
- Neurovirology
- Cellular Biology
- Molecular Mechanisms of Disease
Background:
- Neurotropic viruses, including rabies virus (RABV), can cause neuronal degeneration and behavioral changes.
- The precise mechanisms by which RABV induces neuronal cytoskeletal protein degradation remain incompletely understood.
- Lyssavirus M protein's role in disrupting neuronal integrity is a key area of investigation.
Purpose of the Study:
- To elucidate the molecular mechanism by which RABV M protein induces neuronal degeneration.
- To identify specific viral protein elements responsible for disrupting neuronal metabolism and cytoskeletal integrity.
- To investigate the role of calcium signaling and calpain activation in RABV-induced neurodegeneration.
Main Methods:
- Infection of neuronal cell lines with RABV and overexpression of its M protein.
- Assessment of mitochondrial metabolism, NAD+ production, and intracellular calcium levels.
- Analysis of M protein sequences from different lyssavirus strains and generation of recombinant RABV with specific mutations.
Main Results:
- RABV infection and M protein overexpression disrupt mitochondrial metabolism by binding Slc25a4, reducing NAD+ and increasing cytoplasmic Ca2+.
- Activated calpains degrade alpha-tubulin, leading to axonal degeneration.
- Amino acid 57 in the M protein is critical for M-induced microtubule degradation; a mutation at this site reduces degeneration.
Conclusions:
- Lyssavirus M protein triggers a cascade involving mitochondrial dysfunction, calcium release, and calpain activation, leading to neurodegeneration.
- The 57th amino acid of the M protein is a key determinant of its neurotoxic potential.
- Targeting this specific viral protein interaction offers a potential avenue for therapeutic intervention against rabies virus-induced neurological damage.
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