Targeting the Prion-like Aggregation of Mutant p53 to Combat Cancer

Jerson L Silva1, Elio A Cino2, Iaci N Soares1

  • 1Instituto de Bioquı́mica Médica Leopoldo de Meis, Instituto Nacional de Ciência e Tecnologia de Biologia Estrutural e Bioimagem, Universidade Federal do Rio de Janeiro , Rio de Janeiro 21941-902, Brazil.

Insights

Mutant tumor suppressor protein p53 exhibits prion-like behavior, contributing to cancer progression. Research explores targeting p53 aggregation intermediates to restore function and develop personalized cancer therapies.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Oncology

Background:

  • Prion-like behavior is observed in various amyloidogenic proteins, including Alzheimer's, Parkinson's, and TSEs.
  • Mutant tumor suppressor protein p53 exhibits prion-like properties, with its aggregates implicated in cancer progression.
  • p53 aggregates are heterogeneous, comprising amorphous aggregates, oligomers, and amyloid-like fibrils found in tumor tissues.

Purpose of the Study:

  • To review discoveries and approaches for averting p53 aggregation and restoring its tumor-suppressive functions.
  • To investigate the characteristics of preamyloidogenic states of wild-type (wt) and mutant p53.
  • To identify strategies for designing personalized drugs to regulate p53 amyloid transformation.

Main Methods:

  • Utilized high hydrostatic pressure (HHP) and chemical denaturants to study p53 aggregation kinetics.
  • Employed molecular dynamics (MD) simulations and phasor analysis of single tryptophan fluorescence signals.
  • Analyzed protection of backbone hydrogen bonds (BHBs) to identify and stabilize structural defects in p53 mutants.

Main Results:

  • Identified preamyloidogenic conformations of p53, distinct from p63 and p73, using MD and fluorescence spectroscopy.
  • Demonstrated that p53 mutants can coaggregate with wt protein and transmit between cells, characteristic of prion diseases.
  • Highlighted the importance of BHB protection in amyloidogenic proteins and identified vulnerable sites in p53 Y220C mutants.

Conclusions:

  • p53 aggregation shares characteristics with prion and prion-like diseases, contributing to cancer progression.
  • Targeting intermediate aggregation species and structurally vulnerable sites offers a promising strategy for therapeutic intervention.
  • Understanding p53 preamyloidogenic states can lead to personalized drug design for restoring p53 function in cancer.

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