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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.
Abstract:
NKX3.1 is the most commonly deleted gene in prostate cancer and is a gatekeeper suppressor. NKX3.1 is haploinsufficient, and pathogenic reduction in protein levels may result from genetic loss, decreased transcription, and increased protein degradation caused by inflammation or PTEN loss. NKX3.1 acts by retarding proliferation, activating antioxidants, and enhancing DNA repair. DYRK1B-mediated phosphorylation at serine 185 of NKX3.1 leads to its polyubiquitination and proteasomal degradation. Because NKX3.1 protein levels are reduced, but never entirely lost, in prostate adenocarcinoma, enhancement of NKX3.1 protein levels represents a potential therapeutic strategy. As a proof of principle, we used CRISPR/Cas9-mediated editing to engineer in vivo a point mutation in murine Nkx3.1 to code for a serine to alanine missense at amino acid 186, the target for Dyrk1b phosphorylation. Nkx3.1 , and Nkx3.1 mice were analyzed over one year to determine the levels of Nkx3.1 expression and effects of the mutant protein on the prostate. Allelic loss of Nkx3.1 caused reduced levels of Nkx3.1 protein, increased proliferation, and prostate hyperplasia and dysplasia, whereas Nkx3.1 mouse prostates had increased levels of Nkx3.1 protein, reduced prostate size, normal histology, reduced proliferation, and increased DNA end labeling. At 2 months of age, when all mice had normal prostate histology, Nkx3.1 mice demonstrated indices of metabolic activation, DNA damage response, and stress response. These data suggest that modulation of Nkx3.1 levels alone can exert long-term control over premalignant changes and susceptibility to DNA damage in the prostate. SIGNIFICANCE: These findings show that prolonging the half-life of Nkx3.1 reduces proliferation, enhances DNA end-labeling, and protects from DNA damage, ultimately blocking the proneoplastic effects of Nkx3.1 allelic loss.
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.
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