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The cancer research community has known of the existence of circulating tumor cells (CTCs) since first being observed by Thomas Ashworth in 18691. Since then, CTCs have been shown to be important in tumor metastasis and disease progression2-5. Today, solid tumors are a major cause of morbidity and mortality worldwide. CTCs are rare cells that originate from primary tumors and travel through the blood stream to different organs of which only a small fraction ultimately develop into metastasis2-5. Notably, there is positive correlation between tumor size and CTC number3,4.
An understanding of CTC biology can contribute to the search for targeted therapy. Furthermore, CTCs may have diagnostic applications. To achieve these potential clinical applications, one needs to overcome some current challenges to studying CTCs. One challenge is related to the fact that CTCs may be present as single cells or as clusters and they may even be able to change their phenotype in response to the blood microenvironment2. Moreover, detection can be very challenging, in part, due to the low count of CTCs (a few to hundreds per milliliter) among one billionhematologic cells per milliliterin the blood6. Nevertheless, in recent years, research into the potential clinical applications of CTCs from solid organ cancers has intensified.
Despite these efforts, the challenges of studying and understanding the role of CTCs persist due to the rarity of CTCs and the inadequacy of the technological tools currently available. Despite these challenges, the tremendous potential for clinical applications continues to be an incentive to pursue research into the role of CTCs in cancer metastasis.
We were recently successful in isolating and propagating in cell culture CTCs from an orthotopic syngeneic mouse model of hepatocellular carcinoma (HCC) metastasis5. The purpose of the current paper is to describe in detail all aspects of the successful methodology. The significance of this methodology lies in the fact that this approach may be modified in order to successfully isolate and propagate in culture human CTCs, thus enhancing the possibility of in vitro studies of CTC biology.
There are multiple potential clinical applications for the use of CTCs. CTCs may be useful for prognosis, response monitoring, screening, dynamic monitoring of tumor molecular alterations, and personalized therapy4. Therefore, a better understanding of the biology of CTCs has high potential for clinical impact.