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International Conference on Mathematical Biology and

Annual Meeting of The Society for Mathematical Biology,

July 27-30, 2009

University of British Columbia, Vancouver

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Program

MSD6b
Francesca Di Rosa
Institute of Molecular Biology and Pathology, Consiglio Nazionale delle Ricerche, Rome, Italy
Title Kinetics of in vivo proliferation and death of memory and naive CD8 T cells: parameter estimation based on BromodeoxyUridine (BrdU) incorporation in spleen, lymph nodes and bone marrow
Abstract To study naive and memory CD8 T cell turn-over, we performed BrdU incorporation experiments in adult thymectomized C57BL/6 mice and analyzed data in a mathematical framework. The following aspects were novel: i) we examined the bone marrow, in addition to spleen and lymph nodes, and took into account the sum of cells contained in the three organs; ii) to describe both BrdU-labeling and -delabeling phase, we designed a general mathematical model, in which cell populations were distinguished based on the number of divisions; iii) to find parameters, we used the experimentally determined numbers of total and BrdU+ cells and the BrdU-labeling coefficient. We treated mice with BrdU continuously via drinking water for up to 42 days, measured by flow cytometry BrdU incorporation at different times and calculated the numbers of BrdU+ naive (CD44int/low) and memory (CD44high) CD8 T cells. By fitting the model to data, we determined proliferation and death rates of both subsets. Rates were confirmed using independent sets of data, including the numbers of BrdU+ cells at different times after BrdU withdrawal. We found that both doubling time and half-life of the memory population were about 9 weeks, whereas for the naive subset the doubling time was almost one year and the half-life roughly 7 weeks. Our findings suggest that the higher turn-over of memory CD8 T cells as compared with naive CD8 T cells is mostly attributable to a higher proliferation rate. Our results have implications for interpreting physiological and abnormal T cell kinetics in humans.
LocationWoodward 6