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Mitchell, James

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Mitchell

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James

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Mitchell, James

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Now showing 1 - 3 of 3
  • Publication

    Plasmodium gametocytes display homing and vascular transmigration in the host bone marrow

    (American Association for the Advancement of Science, 2018) De Niz, Mariana; Meibalan, Elamaran; Mejia, Pedro; Ma, Siyuan; Brancucci, Nicolas M. B.; Agop-Nersesian, Carolina; Mandt, Rebecca; Ngotho, Priscilla; Hughes, Katie R.; Waters, Andrew P.; Huttenhower, Curtis; Mitchell, James; Martinelli, Roberta; Frischknecht, Friedrich; Seydel, Karl B.; Taylor, Terrie; Milner, Danny; Heussler, Volker T.; Marti, Matthias

    Transmission of Plasmodium parasites to the mosquito requires the formation and development of gametocytes. Studies in infected humans have shown that only the most mature forms of Plasmodium falciparum gametocytes are present in circulation, whereas immature forms accumulate in the hematopoietic environment of the bone marrow. We used the rodent model Plasmodium berghei to study gametocyte behavior through time under physiological conditions. Intravital microscopy demonstrated preferential homing of early gametocyte forms across the intact vascular barrier of the bone marrow and the spleen early during infection and subsequent development in the extravascular environment. During the acute phase of infection, we observed vascular leakage resulting in further parasite accumulation in this environment. Mature gametocytes showed high deformability and were found entering and exiting the intact vascular barrier. We suggest that extravascular gametocyte localization and mobility are essential for gametocytogenesis and transmission of Plasmodium to the mosquito.

  • Publication

    Bone Marrow Is a Major Parasite Reservoir in Plasmodium vivax Infection

    (American Society for Microbiology, 2018) Obaldia, Nicanor; Meibalan, Elamaran; Sa, Juliana M.; Ma, Siyuan; Clark, Martha; Mejia, Pedro; Moraes Barros, Roberto R.; Otero, William; Ferreira, Marcelo U.; Mitchell, James; Milner, Danny; Huttenhower, Curtis; Wirth, Dyann; Duraisingh, Manoj; Wellems, Thomas E.; Marti, Matthias

    ABSTRACT Plasmodium vivax causes heavy burdens of disease across malarious regions worldwide. Mature P. vivax asexual and transmissive gametocyte stages occur in the blood circulation, and it is often assumed that accumulation/sequestration in tissues is not an important phase in their development. Here, we present a systematic study of P. vivax stage distributions in infected tissues of nonhuman primate (NHP) malaria models as well as in blood from human infections. In a comparative analysis of the transcriptomes of P. vivax and Plasmodium falciparum blood-stage parasites, we found a conserved cascade of stage-specific gene expression despite the greatly different gametocyte maturity times of these two species. Using this knowledge, we validated a set of conserved asexual- and gametocyte-stage markers both by quantitative real-time PCR and by antibody assays of peripheral blood samples from infected patients and NHP (Aotus sp.). Histological analyses of P. vivax parasites in organs of 13 infected NHP (Aotus and Saimiri species) demonstrated a major fraction of immature gametocytes in the parenchyma of the bone marrow, while asexual schizont forms were enriched to a somewhat lesser extent in this region of the bone marrow as well as in sinusoids of the liver. These findings suggest that the bone marrow is an important reservoir for gametocyte development and proliferation of malaria parasites.

  • Publication

    A single rapamycin dose protects against late-stage experimental cerebral malaria via modulation of host immunity, endothelial activation and parasite sequestration

    (BioMed Central, 2017) Mejia, Pedro; Treviño-Villarreal, J. Humberto; Reynolds, Justin; De Niz, Mariana; Thompson, Andrew; Marti, Matthias; Mitchell, James

    Background: Maladaptive immune responses during cerebral malaria (CM) result in high mortality despite opportune anti-malarial chemotherapy. Rapamycin, an FDA-approved immunomodulator, protects against experimental cerebral malaria (ECM) in mice through effects on the host. However, the potential for reduced adaptive immunity with chronic use, combined with an incomplete understanding of mechanisms underlying protection, limit translational potential as an adjunctive therapy in CM. Results: The results presented herein demonstrate that a single dose of rapamycin, provided as late as day 4 or 5 post-infection, protected mice from ECM neuropathology and death through modulation of distinct host responses to infection. Rapamycin prevented parasite cytoadherence in peripheral organs, including white adipose tissue, via reduction of CD36 expression. Rapamycin also altered the splenic immune response by reducing the number of activated T cells with migratory phenotype, while increasing local cytotoxic T cell activation. Finally, rapamycin reduced brain endothelial ICAM-1 expression concomitant with reduced brain pathology. Together, these changes potentially contributed to increased parasite elimination while reducing CD8 T cell migration to the brain. Conclusions: Rapamycin exerts pleotropic effects on host immunity, vascular activation and parasite sequestration that rescue mice from ECM, and thus support the potential clinical use of rapamycin as an adjunctive therapy in CM.