CRISPR/Cas9-Mediated Point Mutation in Nkx3.1 Prolongs Protein Half-Life and Reverses Effects Nkx3.1 Allelic Loss

Cai Bowen1, Maho Shibata1, Hailan Zhang2

  • 1Departments of Medicine, Genetics & Development, Urology and Systems Biology, Herbert Irving Comprehensive Cancer Center, Columbia University Medical Center, New York, New York.

Cancer Research
|September 18, 2020
PubMed

Insights

NKX3.1 is a crucial prostate cancer suppressor gene. Enhancing NKX3.1 protein levels, by preventing its degradation, can block premalignant changes and DNA damage, offering a potential therapeutic strategy for prostate cancer.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • NKX3.1 is a key tumor suppressor gene frequently deleted in prostate cancer.
  • Reduced NKX3.1 protein levels, due to genetic loss or increased degradation, contribute to prostate cancer development.
  • DYRK1B-mediated phosphorylation targets NKX3.1 for degradation, reducing its tumor-suppressive functions.

Purpose of the Study:

  • To investigate the therapeutic potential of enhancing NKX3.1 protein levels by preventing its degradation.
  • To engineer a mouse model with a mutation preventing NKX3.1 phosphorylation and degradation.

Main Methods:

  • CRISPR/Cas9-mediated gene editing was used to introduce a serine-to-alanine missense mutation at amino acid 186 in the murine Nkx3.1 gene.
  • Mice with wild-type and mutated Nkx3.1 alleles were analyzed for over one year.
  • Prostate tissue was examined for NKX3.1 expression, proliferation, histology, and DNA damage markers.

Main Results:

  • Mice with Nkx3.1 allelic loss showed reduced NKX3.1 protein, increased proliferation, and prostate hyperplasia/dysplasia.
  • Mice with the mutated Nkx3.1 allele (Nkx3.1) exhibited increased NKX3.1 protein levels, reduced prostate size, normal histology, and decreased proliferation.
  • The mutated Nkx3.1 mice showed enhanced DNA end labeling, metabolic activation, and stress response, indicating protection against DNA damage.

Conclusions:

  • Modulating NKX3.1 protein levels can effectively control premalignant changes and susceptibility to DNA damage in the prostate.
  • Prolonging NKX3.1's half-life by preventing degradation reduces proliferation and protects against DNA damage.
  • Enhancing NKX3.1 protein levels represents a promising therapeutic strategy for prostate cancer by counteracting the effects of NKX3.1 loss.