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Leishmania major drives host phagocyte death and cell-to-cell transfer depending on intracellular pathogen proliferation rate
Iris Baars, Moritz Jaedtka, Leon-Alexander Dewitz, Yan Fu, Tobias Franz, Juliane Mohr, Patricia Gintschel, Hannes Berlin, Angelina Degen, Sandra Freier, Stefan Rygol, Burkhart Schraven, Sascha Kahlfuß, Ger van Zandbergen, Andreas J. Müller
Iris Baars, Moritz Jaedtka, Leon-Alexander Dewitz, Yan Fu, Tobias Franz, Juliane Mohr, Patricia Gintschel, Hannes Berlin, Angelina Degen, Sandra Freier, Stefan Rygol, Burkhart Schraven, Sascha Kahlfuß, Ger van Zandbergen, Andreas J. Müller
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Research Article Infectious disease Microbiology

Leishmania major drives host phagocyte death and cell-to-cell transfer depending on intracellular pathogen proliferation rate

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Abstract

The virulence of intracellular pathogens relies largely on the ability to survive and replicate within phagocytes but also on release and transfer into new host cells. Such cell-to-cell transfer could represent a target for counteracting microbial pathogenesis. However, our understanding of the underlying cellular and molecular processes remains woefully insufficient. Using intravital 2-photon microscopy of caspase-3 activation in the Leishmania major–infected (L. major–infected) live skin, we showed increased apoptosis in cells infected by the parasite. Also, transfer of the parasite to new host cells occurred directly without a detectable extracellular state and was associated with concomitant uptake of cellular material from the original host cell. These in vivo findings were fully recapitulated in infections of isolated human phagocytes. Furthermore, we observed that high pathogen proliferation increased cell death in infected cells, and long-term residency within an infected host cell was only possible for slowly proliferating parasites. Our results therefore suggest that L. major drives its own dissemination to new phagocytes by inducing host cell death in a proliferation-dependent manner.

Authors

Iris Baars, Moritz Jaedtka, Leon-Alexander Dewitz, Yan Fu, Tobias Franz, Juliane Mohr, Patricia Gintschel, Hannes Berlin, Angelina Degen, Sandra Freier, Stefan Rygol, Burkhart Schraven, Sascha Kahlfuß, Ger van Zandbergen, Andreas J. Müller

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Figure 4

L. major proliferation rate affects the fate of the infected host cell.

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L. major proliferation rate affects the fate of the infected host cell....
(A) Experimental setup for in vitro analysis of parasite proliferation and host cell death using a photoconversion-based pathogen proliferation biosensor (LmmKikume) and wide-field imaging. (B) One example of high-proliferating (green) LmmKikume parasites colocalizing with TUNEL+ murine intraperitoneal (IP) macrophages. One frame at the end of live cell imaging (left) and TUNEL staining after fixation (right) of the same site are shown. TUNEL+ cells are marked with filled arrows, and TUNEL– cells are marked with open arrows. Scale bar: 50 μm. (C) Quantification of TUNEL signal (left) and proliferation index (right) within the IP macrophages shown in B. Each symbol represents 1 individual cell (left) or parasite (right). Horizontal bars denote the median. (D) Quantification of proliferation index in all TUNEL+ and TUNEL– murine IP macrophages analyzed. Each symbol represents 1 individual parasite. Data were pooled from 2 independent microscopy experiments. Horizontal bars denote the median. (E) One example of an LmmKikume cell-to-cell transfer event between 2 murine IP macrophages. The transferring LmmKikume parasites are indicated with an open arrow in the donor host macrophage and with a filled arrow in the recipient macrophage. Scale bar: 20 μm. (F) Quantification of proliferation index in TUNEL+ and TUNEL– murine IP macrophages distinguished based on long-term (>800 minutes before fixation) and recent (<800 minutes before fixation) parasite residency. Note that long-term intracellular residency in TUNEL– cells involves low parasite proliferation. Each symbol shows 1 individual parasite. Data were pooled from 2 independent microscopy experiments. Horizontal bars denote the mean. **P < 0.01, ***P < 0.001 by Mann-Whitney test.

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