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      Neutrophils escort circulating tumour cells to enable cell cycle progression

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          Genome-wide CRISPR screen in a mouse model of tumor growth and metastasis.

          Genetic screens are powerful tools for identifying genes responsible for diverse phenotypes. Here we describe a genome-wide CRISPR/Cas9-mediated loss-of-function screen in tumor growth and metastasis. We mutagenized a non-metastatic mouse cancer cell line using a genome-scale library with 67,405 single-guide RNAs (sgRNAs). The mutant cell pool rapidly generates metastases when transplanted into immunocompromised mice. Enriched sgRNAs in lung metastases and late-stage primary tumors were found to target a small set of genes, suggesting that specific loss-of-function mutations drive tumor growth and metastasis. Individual sgRNAs and a small pool of 624 sgRNAs targeting the top-scoring genes from the primary screen dramatically accelerate metastasis. In all of these experiments, the effect of mutations on primary tumor growth positively correlates with the development of metastases. Our study demonstrates Cas9-based screening as a robust method to systematically assay gene phenotypes in cancer evolution in vivo.
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            Circulating and disseminated tumour cells — mechanisms of immune surveillance and escape

            To form metastases, cancer cells must leave the immunosuppressive tumour microenvironment and traffic, predominantly in the circulation, to new tissue sites, where they must then expand. During this process, the tumour cells are open to attack by the immune system. This Review highlights the possible mechanisms used by circulating tumour cells in the blood and disseminated tumour cells in other tissues to evade, escape, or subvert the immune system in order to survive and form metastatic lesions.
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              The biology of circulating tumor cells.

              Metastasis is a biologically complex process consisting of numerous stochastic events which may tremendously differ across various cancer types. Circulating tumor cells (CTCs) are cells that are shed from primary tumors and metastatic deposits into the blood stream. CTCs bear a tremendous potential to improve our understanding of steps involved in the metastatic cascade, starting from intravasation of tumor cells into the circulation until the formation of clinically detectable metastasis. These efforts were propelled by novel high-resolution approaches to dissect the genomes and transcriptomes of CTCs. Furthermore, capturing of viable CTCs has paved the way for innovative culturing technologies to study fundamental characteristics of CTCs such as invasiveness, their kinetics and responses to selection barriers, such as given therapies. Hence the study of CTCs is not only instrumental as a basic research tool, but also allows the serial monitoring of tumor genotypes and may therefore provide predictive and prognostic biomarkers for clinicians. Here, we review how CTCs have contributed to significant insights into the metastatic process and how they may be utilized in clinical practice.
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                Author and article information

                Journal
                Nature
                Nature
                Springer Nature
                0028-0836
                1476-4687
                February 6 2019
                Article
                10.1038/s41586-019-0915-y
                30728496
                4e662e78-fba5-407c-accf-63be5926c630
                © 2019

                http://www.springer.com/tdm

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