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Updated: Mar 12, 2026

Reporter-based Growth Assay for Systematic Analysis of Protein Degradation
Published on: November 6, 2014
Nuclear localization signal sequence is required for VACM-1/CUL5-dependent regulation of cellular growth
Angelica N Willis1, Shirley E Bradley Dean1, Joe A Habbouche1
1Departments of Chemistry and Biology, Paul A. Schaap Science Center, Hope College, Holland, MI, 49422-9000, USA.
Abstract:
VACM-1/CUL5 is a member of the cullin family of proteins involved in the E3 ligase-dependent degradation of diverse proteins that regulate cellular proliferation. The ability of VACM-1/CUL5 to inhibit cellular growth is affected by its posttranslational modifications and its localization to the nucleus. Since the mechanism of VACM-1/CUL5 translocation to the nucleus is not clear, the goal of this project was to determine the role that the putative nuclear localization signal (NLS) we identified in the VACM-1/CUL5 (640PKLKRQ646) plays in the cellular localization of VACM-1/CUL5 and its effect on cellular growth. We used site-directed mutagenesis to change Lys642 and Lys644 to Gly and the mutated cDNA constructs were transfected into COS-1 cells. Mutation of the NLS in VACM-1/CUL5 significantly reduced its localization to the nucleus and compromised its effect on cellular growth. We have shown previously that the antiproliferative effect of VACM-1/CUL5 could be reversed by mutation of PKA-specific phosphorylation sequence (S730AVACM-1/CUL5), which was associated with its increased nuclear localization and modification by NEDD8. Thus, we examined whether these properties can be controlled by the NLS. The mutation of NLS in S730AVACM-1/CUL5 cDNA compromised its proliferative effect and reduced its localization to the nucleus. The immunocytochemistry results showed that, in cells transfected with the mutant cDNAs, the nuclear NEDD8 signal was decreased. Western blot analysis of total cell lysates, however, showed that VACM-1/CUL5 neddylation was not affected. Together, these results suggest that the presence of the NLS, both in VACM-1/CUL5 and in S730AVACM-1/CUL5 sequences, is critical for their control of cell proliferation.
Insights
The nuclear localization signal (NLS) in VACM-1/CUL5 is crucial for its role in inhibiting cell growth. Mutating this NLS reduces nuclear import and compromises its antiproliferative effects, highlighting its importance in regulating cell proliferation.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- VACM-1/CUL5, a cullin family protein, regulates cellular proliferation via E3 ligase-dependent protein degradation.
- Its antiproliferative function is influenced by posttranslational modifications and nuclear localization.
- The mechanism of VACM-1/CUL5 nuclear translocation remained unclear.
Purpose of the Study:
- To investigate the role of a putative nuclear localization signal (NLS) in VACM-1/CUL5 (PKLKRQ) in its cellular localization and effect on cell growth.
- To determine if the NLS controls nuclear import and antiproliferative properties, including those affected by PKA phosphorylation (S730A).
Main Methods:
- Site-directed mutagenesis was used to alter the putative NLS (Lys642 and Lys644 to Gly) in VACM-1/CUL5 cDNA.
- Mutated constructs were transfected into COS-1 cells.
- Immunocytochemistry and Western blot analyses were performed to assess protein localization and modification (NEDD8).
Main Results:
- Mutation of the NLS significantly reduced VACM-1/CUL5 nuclear localization and compromised its antiproliferative effect.
- Mutating the NLS in the S730A construct also reduced proliferation and nuclear localization, decreasing nuclear NEDD8 signal.
- While nuclear NEDD8 signal decreased, overall VACM-1/CUL5 neddylation in cell lysates was unaffected.
Conclusions:
- The identified NLS in VACM-1/CUL5 is critical for its nuclear import and its function in controlling cell proliferation.
- The NLS plays a key role in mediating the antiproliferative effects of both wild-type and S730A mutant VACM-1/CUL5.
- These findings elucidate a key mechanism for VACM-1/CUL5 regulation of cellular growth.
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