Prostate cancer is the second most prevalent cause of cancer deaths (9%) among males in the United States, next to cancer of the lung and bronchus (28%)1. According to recent data, it is estimated that 220, 800 newly diagnosed prostate cancer cases and 27, 540 deaths will occur in 20151. The five year relative survival rate of early stage prostate cancer is >99% while that of advanced metastatic disease is only 28%1. A major challenge for treatment of advanced metastatic disease is the lack of understanding of molecular mechanisms underlying the propensity of this disease to metastasize to other organs, particularly to the bone, which is a frequent site for prostate cancer. Hence, there is a clear need to study the molecular makeup of these prostate tumors in order to develop effective therapeutic regimens against progression to advanced metastatic disease2,3.
Prostate tumors exhibit high biological heterogeneity without a well-defined pathway to progression. Metastases often occur with no prior indication of tumor invasiveness4. This clinical heterogeneity is attributed to the molecular diversity of prostate cancer. Understanding the molecular makeup of these lethal tumors is the key to design better diagnostic and therapeutic strategies for this disease. Consequently, prostate cancer research is currently focused on understanding and preventing metastasis.
Pre-clinical in vivo mouse models offer a variety of options to understand the molecular mechanisms of prostate cancer progression to advanced metastatic disease. In addition, these models are important for preclinical evaluations of new therapeutic strategies against this disease. The most commonly used animal models include transgenic mouse models, tail-vein injection, intra-cardiac implantation and human orthotopic mouse models. Transgenic studies are time consuming and correlation of prostate cancer development in mice with that of humans have shown variability11. In spontaneous metastatic mouse models, cells are injected directly into the circulation and though, they have rapid turnaround time, they cannot be used to study the primary tumor or the initial steps in the metastatic cascade5. Orthotopic xenograft models have the limitation of developing bone metastatic lesions, the common site of prostate cancer metastasis. Nonetheless, the human orthotopic prostate cancer xenograft mouse model is well characterized and widely used to study the molecular events of primary tumor development, cross-talk between tumor and organ microenvironment, initial phase of the metastatic disease and use of experimental drugs for therapeutic intervention6,7,8-11.