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Updated: Apr 14, 2026

In Vitro SUMOylation Assay to Study SUMO E3 Ligase Activity
Published on: January 29, 2018
TRIM5α is a SUMO substrate
Jacques Dutrieux1, Débora M Portilho2, Nathalie J Arhel3
1INSERM UMR-S 1124, Université Paris Descartes, 45 rue des Saints-Pères, 75006, Paris, France. jacques.dutrieux@inserm.fr.
Background:
The TRIM5α restriction factor interferes with retroviral infections by inhibiting an early step of viral replication. TRIM5α activity was recently proposed to be regulated by the SUMO machinery and one SUMO consensus conjugation site as well as three putative SUMO interacting motifs (SIMs) were identified within TRIM5α sequence. Whereas mutation of the SIM sequences was found to abolish TRIM5α antiviral activity, mutation of the consensus SUMO conjugation site did not affect its restriction capacity, although this putative site has never been shown to be actually a SUMO substrate.
Findings:
Here we further demonstrate that TRIM5α relies on the SUMO machinery to promote restriction, since SUMO1 overexpression enhances TRIM5α-mediated retroviral inhibition whereas knockdown of SUMO1 or E2 SUMO conjugating enzyme Ubc9 prevents restriction. Furthermore, we show for the first time that TRIM5α is SUMOylated both in vitro and in cellulo and that Lysine 10 is the main SUMOylation site. Mutation of the consensus SUMO conjugation motif in position 10 abrogated SUMOylation at this position, but did not disrupt TRIM5α antiviral activity.
Conclusions:
Altogether, our results confirm that the SUMO machinery is involved in TRIM5α-mediated retroviral restriction, and demonstrate that TRIM5α is a SUMO 1 and SUMO 2 substrate. The inability to abrogate TRIM5α antiviral activity by mutating its main SUMO conjugation motif supports the notion that non-covalent interaction with SUMO or SUMOylated proteins rather than TRIM5α direct SUMOylation is required.
Insights
The SUMOylation machinery is crucial for TRIM5α antiviral activity against retroviruses. TRIM5α is SUMOylated, but direct modification is not essential for its restriction function.
Area of Science:
- Virology
- Molecular Biology
- Cellular Biology
Background:
- TRIM5α restricts retroviral infections by inhibiting viral replication.
- SUMOylation machinery and SUMO interacting motifs (SIMs) are implicated in TRIM5α regulation.
- Previous studies showed SIM mutations abolish TRIM5α activity, but SUMOylation site mutations did not affect its function.
Purpose of the Study:
- To investigate the role of SUMOylation in TRIM5α antiviral activity.
- To determine if TRIM5α is a direct substrate of SUMOylation.
- To identify the specific SUMOylation site on TRIM5α.
Main Methods:
- Overexpression and knockdown of SUMO1 and Ubc9.
- In vitro and in cellulo SUMOylation assays.
- Site-directed mutagenesis of TRIM5α SUMOylation site (Lysine 10).
Main Results:
- SUMO1 overexpression enhanced TRIM5α restriction; SUMO1 or Ubc9 knockdown inhibited it.
- TRIM5α was confirmed to be SUMOylated in vitro and in cellulo.
- Lysine 10 was identified as the primary SUMOylation site, but its mutation did not abolish antiviral activity.
Conclusions:
- SUMOylation machinery is essential for TRIM5α-mediated retroviral restriction.
- TRIM5α is a substrate for SUMO 1 and SUMO 2.
- Non-covalent interactions with SUMO or SUMOylated proteins, rather than direct TRIM5α SUMOylation, are critical for its antiviral function.
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