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Detection of Aggregation-Prone Behavior in Mutant P53 V157F Breast Cancer Cells Using Multipoint Thioflavin T Fluorescence
Published on: December 30, 2025
WT p53, but not tumor-derived mutants, bind to Bcl2 via the DNA binding domain and induce mitochondrial
York Tomita1, Natasha Marchenko, Susan Erster
1Department of Pathology, Stony Brook University, Stony Brook, New York 11794-8691, USA.
Abstract:
The induction of apoptosis by p53 in response to cellular stress is its most conserved function and crucial for p53 tumor suppression. We recently reported that p53 directly induces oligomerization of the BH1,2,3 effector protein Bak, leading to outer mitochondrial membrane permeabilization (OMMP) with release of apoptotic activator proteins. One important mechanism by which p53 achieves OMMP is by forming an inhibitory complex with the anti-apoptotic BclXL protein. In contrast, the p53 complex with the Bcl2 homolog has not been interrogated. Here we have undertaken a detailed characterization of the p53-Bcl2 interaction using structural, biophysical, and mutational analyses. We have identified the p53 DNA binding domain as the binding interface for Bcl2 using solution NMR. The affinity of the p53-Bcl2 complex was determined by surface plasmon resonance analysis (BIAcore) to have a dominant component KD 535 +/- 24 nm. Moreover, in contrast to wild type p53, endogenous missense mutants of p53 are unable to form complexes with endogenous Bcl2 in human cancer cells. Functionally, these mutants are all completely or strongly compromised in mediating OMMP, as measured by cytochrome c release from isolated mitochondria. These data implicate p53-Bcl2 complexes in contributing to the direct mitochondrial p53 pathway of apoptosis and further support the notion that the DNA binding domain of p53 is a dual function domain, mediating both its transactivation function and its direct mitochondrial apoptotic function.
Insights
The tumor suppressor p53 protein directly interacts with Bcl2, a protein that inhibits apoptosis. This interaction is crucial for p53
Area of Science:
- Molecular Biology
- Biochemistry
- Cell Biology
Background:
- The tumor suppressor protein p53 plays a critical role in apoptosis induction and tumor suppression.
- p53 directly induces outer mitochondrial membrane permeabilization (OMMP) via Bak oligomerization, releasing apoptotic factors.
- p53 forms inhibitory complexes with BclXL, but its interaction with Bcl2 remains uncharacterized.
Purpose of the Study:
- To characterize the interaction between p53 and Bcl2.
- To elucidate the functional consequences of the p53-Bcl2 complex in apoptosis.
Main Methods:
- Solution Nuclear Magnetic Resonance (NMR) spectroscopy to identify binding interfaces.
- Surface Plasmon Resonance (SPR) using BIAcore to determine binding affinity.
- Analysis of endogenous p53-Bcl2 complexes in human cancer cells.
- Functional assays measuring cytochrome c release from isolated mitochondria.
Main Results:
- The DNA binding domain of p53 was identified as the interface for Bcl2 binding.
- The p53-Bcl2 complex exhibits a dissociation constant (KD) of 535 +/- 24 nm.
- Endogenous missense mutants of p53 fail to form complexes with Bcl2 in cancer cells.
- p53 mutants are significantly impaired in inducing OMMP and cytochrome c release.
Conclusions:
- p53-Bcl2 complexes contribute to the direct mitochondrial pathway of apoptosis.
- The DNA binding domain of p53 possesses dual functions: transactivation and direct mitochondrial apoptosis induction.
- Dysfunctional p53-Bcl2 interaction in cancer mutants highlights a novel mechanism of tumor suppression loss.
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