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Updated: Mar 27, 2026

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Published on: June 12, 2017
TRIM5α Degradation via Autophagy Is Not Required for Retroviral Restriction
Sabrina Imam1, Sarah Talley2, Rachel S Nelson1
1Department of Microbiology and Immunology, Stritch School of Medicine, Loyola University Chicago, Maywood, Illinois, USA.
Unlabelled:
TRIM5α is an interferon-inducible retroviral restriction factor that prevents infection by inducing the abortive disassembly of capsid cores recognized by its C-terminal PRY/SPRY domain. The mechanism by which TRIM5α mediates the disassembly of viral cores is poorly understood. Previous studies demonstrated that proteasome inhibitors abrogate the ability of TRIM5α to induce premature core disassembly and prevent reverse transcription; however, viral infection is still inhibited, indicating that the proteasome is partially involved in the restriction process. Alternatively, we and others have observed that TRIM5α associates with proteins involved in autophagic degradation pathways, and one recent study found that autophagic degradation is required for the restriction of retroviruses by TRIM5α. Here, we show that TRIM5α is basally degraded via autophagy in the absence of restriction-sensitive virus. We observe that the autophagy markers LC3b and lysosome-associated membrane protein 2A (LAMP2A) localize to a subset of TRIM5α cytoplasmic bodies, and inhibition of lysosomal degradation with bafilomycin A1 increases this association. To test the requirement for macroautophagy in restriction, we examined the ability of TRIM5α to restrict retroviral infection in cells depleted of the autophagic mediators ATG5, Beclin1, and p62. In all cases, restriction of retroviruses by human TRIM5α, rhesus macaque TRIM5α, and owl monkey TRIM-Cyp remained potent in cells depleted of these autophagic effectors by small interfering RNA (siRNA) knockdown or clustered regularly interspaced short palindromic repeat (CRISPR)-Cas9 genome editing. Collectively, these results are consistent with observations that the turnover of TRIM5α proteins is sensitive to autophagy inhibition; however, the data presented here do not support observations that the inhibition of autophagy abrogates retroviral restriction by TRIM5 proteins.
Importance:
Restriction factors are a class of proteins that inhibit viral replication. Following fusion of a retrovirus with a host cell membrane, the retroviral capsid is released into the cytoplasm of the target cell. TRIM5α inhibits retroviral infection by promoting the abortive disassembly of incoming retroviral capsid cores; as a result, the retroviral genome is unable to traffic to the nucleus, and the viral life cycle is extinguished. In the process of restriction, TRIM5α itself is degraded by the proteasome. However, in the present study, we have shown that in the absence of a restriction-sensitive virus, TRIM5α is degraded by both proteasomal and autophagic degradation pathways. Notably, we observed that restriction of retroviruses by TRIM5α does not require autophagic machinery. These data indicate that the effector functions of TRIM5α can be separated from its degradation and may have further implications for understanding the mechanisms of other TRIM family members.
Insights
The antiviral protein TRIM5α is degraded by both autophagy and proteasomes. However, TRIM5α’s ability to restrict retroviral infection does not depend on autophagy.
Area of Science:
- Immunology
- Virology
- Cell Biology
Background:
- TRIM5α is an interferon-inducible protein that restricts retroviral infection by inducing premature disassembly of viral capsid cores.
- While proteasomal degradation of TRIM5α occurs during restriction, its role in the mechanism is not fully understood.
- Previous studies suggested a role for autophagy in TRIM5α-mediated retroviral restriction.
Purpose of the Study:
- To investigate the role of autophagy in TRIM5α-mediated retroviral restriction.
- To determine if autophagic degradation is required for TRIM5α's effector function.
- To explore the degradation pathways of TRIM5α in the absence of viral infection.
Main Methods:
- Assessed TRIM5α degradation via autophagy and proteasomal pathways.
- Utilized autophagy markers (LC3b, LAMP2A) and inhibitors (bafilomycin A1).
- Examined retroviral restriction in cells with depleted autophagic mediators (ATG5, Beclin1, p62) using siRNA and CRISPR-Cas9.
Main Results:
- TRIM5α undergoes basal degradation via autophagy in the absence of virus.
- Autophagy markers LC3b and LAMP2A localize to TRIM5α cytoplasmic bodies.
- Retroviral restriction by various TRIM5α orthologs remained potent even when autophagy was inhibited or key mediators were depleted.
Conclusions:
- TRIM5α degradation is sensitive to autophagy inhibition but does not require autophagic machinery for its restriction function.
- The effector function of TRIM5α can be dissociated from its degradation pathways.
- Findings may inform understanding of other TRIM family member functions.
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