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Turcotte, Raphaël

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Turcotte

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Raphaël

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Turcotte, Raphaël

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  • Publication

    Image-guided transplantation of single cells in the bone marrow of live animals

    (Nature Publishing Group UK, 2017) Turcotte, Raphaël; Alt, Clemens; Runnels, Judith M.; Ito, Kyoko; Wu, Juwell; Zaher, Walid; Mortensen, Luke J.; Silberstein, Lev; Côté, Daniel C.; Kung, Andrew L.; Ito, Keisuke; Lin, Charles

    Transplantation of a single hematopoietic stem cell is an important method for its functional characterization, but the standard transplantation protocol relies on cell homing to the bone marrow after intravenous injection. Here, we present a method to transplant single cells directly into the bone marrow of live mice. We developed an optical platform that integrates a multiphoton microscope with a laser ablation unit for microsurgery and an optical tweezer for cell micromanipulation. These tools allow image-guided single cell transplantation with high spatial control. The platform was used to deliver single hematopoietic stem cells. The engraftment of transplants was tracked over time, illustrating that the technique can be useful for studying both normal and malignant stem cells in vivo.

  • Publication

    Defining Clonal Color in Fluorescent Multi-Clonal Tracking

    (Nature Publishing Group, 2016) Wu, Juwell; Turcotte, Raphaël; Alt, Clemens; Runnels, Judith M.; Tsao, Hensin; Lin, Charles

    Clonal heterogeneity and selection underpin many biological processes including development and tumor progression. Combinatorial fluorescent protein expression in germline cells has proven its utility for tracking the formation and regeneration of different organ systems. Such cell populations encoded by combinatorial fluorescent proteins are also attractive tools for understanding clonal expansion and clonal competition in cancer. However, the assignment of clonal identity requires an analytical framework in which clonal markings can be parameterized and validated. Here we present a systematic and quantitative method for RGB analysis of fluorescent melanoma cancer clones. We then demonstrate refined clonal trackability of melanoma cells using this scheme.