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Published on: February 7, 2019
A Quantitative Systems Approach to Define Novel Effects of Tumour p53 Mutations on Binding Oncoprotein MDM2
Manuel Fuentes1,2, Sanjeeva Srivastava3, Angela M Gronenborn4
1Cancer Research Center (IBMCC/CSIC/USAL/IBSAL), Department of Medicine and General Cytometry Service-Nucleus, CIBERONC ISCIII, 37007 Salamanca, Spain.
Abstract:
Understanding transient protein interactions biochemically at the proteome scale remains a long-standing challenge. Current tools developed to study protein interactions in high-throughput measure stable protein complexes and provide binary readouts; they do not elucidate dynamic and weak protein interactions in a proteome. The majority of protein interactions are transient and cover a wide range of affinities. Nucleic acid programmable protein arrays (NAPPA) are self-assembling protein microarrays produced by freshly translating full-length proteins in situ on the array surface. Herein, we have coupled NAPPA to surface plasmon resonance imaging (SPRi) to produce a novel label-free platform that measures many protein interactions in real-time allowing the determination of the KDs and rate constants. The developed novel NAPPA-SPRi technique showed excellent ability to study protein-protein interactions of clinical mutants of p53 with its regulator MDM2. Furthermore, this method was employed to identify mutant p53 proteins insensitive to the drug nutlin-3, currently in clinical practice, which usually disrupts the p53-MDM2 interactions. Thus, significant differences in the interactions were observed for p53 mutants on the DNA binding domain (Arg-273-Cys, Arg-273-His, Arg-248-Glu, Arg-280-Lys), on the structural domain (His-179-Tyr, Cys-176-Phe), on hydrophobic moieties in the DNA binding domain (Arg-280-Thr, Pro-151-Ser, Cys-176-Phe) and hot spot mutants (Gly-245-Cys, Arg-273-Leu, Arg-248-Glu, Arg-248-Gly), which signifies the importance of point mutations on the MDM2 interaction and nutlin3 effect, even in molecular locations related to other protein activities.
Insights
A new Nucleic acid programmable protein array (NAPPA)-surface plasmon resonance imaging (SPRi) platform enables real-time measurement of transient protein interactions. This method characterizes p53 mutants
Area of Science:
- Biochemistry
- Proteomics
- Molecular Biology
Background:
- Studying transient and weak protein interactions at the proteome scale is a significant challenge for current high-throughput methods.
- Most protein interactions are transient and exhibit a wide range of affinities, necessitating advanced analytical techniques.
- Existing tools primarily measure stable protein complexes, offering binary readouts and failing to capture dynamic interactions.
Purpose of the Study:
- To develop a novel label-free platform for real-time measurement of transient protein interactions.
- To determine kinetic parameters (KDs and rate constants) for protein-protein interactions.
- To investigate the impact of p53 mutations on interactions with MDM2 and sensitivity to nutlin-3.
Main Methods:
- Coupling of Nucleic acid programmable protein arrays (NAPPA) with surface plasmon resonance imaging (SPRi).
- Real-time, label-free measurement of protein-protein interactions.
- Characterization of kinetic parameters for wild-type and mutant p53 interactions with MDM2.
Main Results:
- The NAPPA-SPRi platform successfully measured protein-protein interactions in real-time, providing kinetic data.
- Significant differences in p53-MDM2 interactions were observed for various clinical p53 mutants.
- Mutant p53 proteins with altered interactions insensitive to nutlin-3 were identified.
Conclusions:
- The developed NAPPA-SPRi technique is a powerful tool for studying dynamic and weak protein interactions.
- Point mutations in p53 significantly affect MDM2 interaction and nutlin-3 efficacy.
- This method aids in understanding drug resistance mechanisms and identifying novel therapeutic targets.
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