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Updated: Mar 15, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Targeting protein geranylgeranylation slows tumor development in a murine model of prostate cancer metastasis
Jacqueline E Reilly1, Jeffrey D Neighbors2, Raymond J Hohl1,3
1a Department of Pharmacology , University of Iowa , Iowa City , IA , USA.
Abstract:
The isoprenoid biosynthetic pathway (IBP) plays a critical role in providing substrates and enzymes necessary for the post-translational modification and thus activation of a number of proteins involved in prostate cancer metastasis. Previous work by our lab found novel compound disodium [(6Z,11E,15E)-9-[bis(sodiooxy)phosphoryl]-17-hydroxy-2,6,12,16-tetramethyheptadeca-2,6,11,15-tetraen-9-yl]phosphonate (GGOHBP), which inhibits the IBP enzyme geranylgeranyl diphosphate synthase (GGDPS), reduced protein geranylgeranylation without altering protein farnesylation. This activity significantly reduced adrenal gland tumor burden in a murine model of human prostate cancer metastasis which relied on treatment of established disease. The present study determined the ability of GGDPS inhibition to slow the development of prostate cancer metastasis in a preventative murine model. Using tail vein injection of human derived PC-3 prostate cancer cells 4 d after initiating daily GGOHBP or vehicle treatments, we found GGOHBP significantly reduced whole body tumor burden, significantly slowed the development of tumors, and prolonged overall survival as compared to vehicle treated animals. The observed reduction in soft tissue tumor burden corresponded to a biochemical reduction in Rap1A geranylgeranylation, which for prostate cancer is important in its own merit and which serves as a surrogate marker for Rho family, i.e. Rac, protein modification. This effect was present in all treated mice pointing to strong target engagement, which was not observed in non-tumor burdened tissues or control mice. Our findings reiterate a role for protein geranylgeranylation in the development of prostate cancer metastasis in vivo.
Insights
Inhibiting geranylgeranyl diphosphate synthase (GGDPS) with GGOHBP slowed prostate cancer metastasis development and improved survival in mice. This preventative approach reduced tumor burden by targeting protein geranylgeranylation.
Area of Science:
- Oncology
- Biochemistry
- Molecular Biology
Background:
- The isoprenoid biosynthetic pathway (IBP) is crucial for protein modifications essential in prostate cancer metastasis.
- Our previous work identified GGOHBP, a novel compound inhibiting geranylgeranyl diphosphate synthase (GGDPS).
- GGOHBP reduced protein geranylgeranylation and tumor burden in established prostate cancer metastasis models.
Purpose of the Study:
- To evaluate the preventative efficacy of GGDPS inhibition by GGOHBP in slowing prostate cancer metastasis development.
- To assess the impact of GGOHBP on tumor burden, metastasis progression, and overall survival in a preventative murine model.
Main Methods:
- A preventative murine model was established using tail vein injection of human PC-3 prostate cancer cells.
- Mice received daily treatments of GGOHBP or vehicle starting 4 days prior to cancer cell injection.
- Tumor burden, metastasis development, survival rates, and protein geranylgeranylation (Rap1A) were assessed.
Main Results:
- GGOHBP treatment significantly reduced overall body tumor burden and slowed tumor development.
- GGOHBP significantly prolonged the overall survival of mice compared to vehicle controls.
- A biochemical reduction in Rap1A geranylgeranylation was observed in treated mice, indicating target engagement.
Conclusions:
- GGDPS inhibition via GGOHBP demonstrates preventative efficacy against prostate cancer metastasis in vivo.
- Targeting protein geranylgeranylation is a viable strategy for preventing prostate cancer metastasis progression.
- GGOHBP shows promise as a preventative therapeutic agent for prostate cancer metastasis.

