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Updated: Jun 5, 2026

Purification of Ubiquitinated p53 Proteins from Mammalian Cells
Published on: March 21, 2022
P53 is transported into the nucleus via an Hsf1-dependent nuclear localization mechanism
1Arizona Cancer Center, University of Arizona, Tucson, Arizona 85724, USA.
Abstract:
Loss of p53 function can occur through disruption of its ability to localize to the nucleus. Previously we showed through characterization a set of mutant cell lines that lacked the ability to import p53 into the nucleus that nuclear translocation of p53 appeared to be mechanistically different from that of the SV40 T-antigen (SV40TAg). Here we extend that work by examining nuclear importation of p53 and SV40TAg using both in vivo and in vitro assays for nuclear localization. We show that disruption of microtubule polymerization using colchicine suppresses nuclear localization of p53 but not of SV40TAg. We also show, for the first time, that the heat shock transcription factor (Hsf1), is required for establishment of the microtubule network in cells and for nuclear localization of p53. In contrast, SV40TAg does not interact with polymerized microtubules suggesting that it is transported into the nucleus through an alternative mechanism. Interestingly, lacking of Hsf1 expression and suppressing Hsf1 by siRNA also made cells more resistant to the cytotoxic effects of paclitaxel. Hence, loss of Hsf1 activity not only suppressed p53 function, but also led to reduced sensitivity to killing by drugs that target microtubules.
Insights
Nuclear import of p53, crucial for its function, relies on microtubules and heat shock transcription factor 1 (Hsf1). SV40 T-antigen uses a different pathway, and Hsf1 loss impacts drug sensitivity.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- p53 protein function is dependent on its nuclear localization.
- Previous studies indicated distinct nuclear import mechanisms for p53 and SV40 T-antigen (SV40TAg).
Purpose of the Study:
- To investigate the mechanisms of nuclear import for p53 and SV40TAg.
- To elucidate the role of microtubules and heat shock transcription factor 1 (Hsf1) in p53 nuclear localization.
Main Methods:
- Utilized in vivo and in vitro assays for nuclear localization.
- Employed colchicine to disrupt microtubule polymerization.
- Examined the effect of Hsf1 expression and siRNA knockdown.
- Assessed cellular response to paclitaxel.
Main Results:
- Microtubule disruption suppressed p53 nuclear import but not SV40TAg.
- Hsf1 is essential for microtubule network formation and p53 nuclear localization.
- SV40TAg nuclear import is independent of microtubules.
- Hsf1 deficiency increased resistance to paclitaxel, a microtubule-targeting drug.
Conclusions:
- p53 nuclear import is microtubule-dependent and requires Hsf1.
- SV40TAg utilizes an alternative, microtubule-independent nuclear import pathway.
- Hsf1 plays a dual role in p53 function and cellular response to microtubule-targeting agents.
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