We are woefully ignorant of which host cells are educated in the tumor and contribute to distal sites. Further, although it is very likely that specific immune cells (e.g. myeloid) travel to the distal lymph nodes, key features (their identity lifespan, self-renewal, specific functions) of such cells remains unaddressed. Remarkably, we cannot currently know which host cells in a metastatic site first arrived following residence in a primary tumor. In this application we will develop new technologies to lineage-track cells from one organ to all others, over the entire lifespan of the cell and its progeny. We will use this to test the hypothesis that immune cells, particularly those of the myeloid lineage, are 'educated' in the tumor microenvironment and contribute to the composition of distant sites such as lymph node, spleen and possibly metastatic sites; furthermore we will determine the functional consequences of such a contribution. Notably, this will represent the first direct and unambigious demonstration of which cells traffic to and present antigens in draining lymph nodes, a site-to-site mapping of entire lineages, a discovery of novel lineages that traffic out of tumors and a test that metastatic sites contain immune cells that were once within another lesion. This technology solves a major deficit with existing photoswitchable approaches and broadly extends cutting edge live-imaging approaches towards lineage tracing.

Public Health Relevance

This project will develop a strategy for the spatially-restricted and durable labeling of cells in vivo, for the purpose of lineage-tracing. It will complement and extend current cutting-edge imaging technologies. It will be applied to define the spectrum of immune cells that are educated in tumors and subsequently exported to peripheral sites.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Exploratory/Developmental Grants (R21)
Project #
1R21CA191428-01
Application #
8812280
Study Section
Special Emphasis Panel (ZCA1-TCRB-D (O1))
Program Officer
Mohla, Suresh
Project Start
2015-01-01
Project End
2016-12-31
Budget Start
2015-01-01
Budget End
2015-12-31
Support Year
1
Fiscal Year
2015
Total Cost
$219,513
Indirect Cost
$60,172
Name
University of California San Francisco
Department
Pathology
Type
Schools of Medicine
DUNS #
094878337
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Wong, Pamela T; Tang, Shengzhuang; Cannon, Jayme et al. (2017) A Thioacetal Photocage Designed for Dual Release: Application in the Quantitation of Therapeutic Release by Synchronous Reporter Decaging. Chembiochem 18:126-135
Wong, Pamela T; Roberts, Edward W; Tang, Shengzhuang et al. (2017) Control of an Unusual Photo-Claisen Rearrangement in Coumarin Caged Tamoxifen through an Extended Spacer. ACS Chem Biol 12:1001-1010
Wong, Pamela T; Tang, Shengzhuang; Mukherjee, Jhindan et al. (2016) Light-controlled active release of photocaged ciprofloxacin for lipopolysaccharide-targeted drug delivery using dendrimer conjugates. Chem Commun (Camb) 52:10357-60
Roberts, Edward W; Broz, Miranda L; Binnewies, Mikhail et al. (2016) Critical Role for CD103(+)/CD141(+) Dendritic Cells Bearing CCR7 for Tumor Antigen Trafficking and Priming of T Cell Immunity in Melanoma. Cancer Cell 30:324-336
Jones, Laura M; Broz, Miranda L; Ranger, Jill J et al. (2016) STAT3 Establishes an Immunosuppressive Microenvironment during the Early Stages of Breast Carcinogenesis to Promote Tumor Growth and Metastasis. Cancer Res 76:1416-28
Corbin, Kaitlin; Pinkard, Henry; Peck, Sebastian et al. (2014) Assessing and benchmarking multiphoton microscopes for biologists. Methods Cell Biol 123:135-51