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LAP-like Process As an Immune Mechanism Downstream of IFN-γ in Control of the Human Malaria Plasmodium Vivax Liver Stage

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Specialty Science
Date 2016 May 18
PMID 27185909
Citations 36
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Abstract

IFN-γ is a major regulator of immune functions and has been shown to induce liver-stage Plasmodium elimination both in vitro and in vivo. The molecular mechanism responsible for the restriction of liver-stage Plasmodium downstream of IFN-γ remains uncertain, however. Autophagy, a newly described immune defense mechanism, was recently identified as a downstream pathway activated in response to IFN-γ in the control of intracellular infections. We thus hypothesized that the killing of liver-stage malarial parasites by IFN-γ involves autophagy induction. Our results show that whereas IFN-γ treatment of human hepatocytes activates autophagy, the IFN-γ-mediated restriction of liver-stage Plasmodium vivax depends only on the downstream autophagy-related proteins Beclin 1, PI3K, and ATG5, but not on the upstream autophagy-initiating protein ULK1. In addition, IFN-γ enhanced the recruitment of LC3 onto the parasitophorous vacuole membrane (PVM) and increased the colocalization of lysosomal vesicles with P. vivax compartments. Taken together, these data indicate that IFN-γ mediates the control of liver-stage P. vivax by inducing a noncanonical autophagy pathway resembling that of LC3-associated phagocytosis, in which direct decoration of the PVM with LC3 promotes the fusion of P. vivax compartments with lysosomes and subsequent killing of the pathogen. Understanding the hepatocyte response to IFN-γ during Plasmodium infection and the roles of autophagy-related proteins may provide an urgently needed alternative strategy for the elimination of this human malaria.

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References
1.
Klotz F, Scheller L, Seguin M, Kumar N, Marletta M, Green S . Co-localization of inducible-nitric oxide synthase and Plasmodium berghei in hepatocytes from rats immunized with irradiated sporozoites. J Immunol. 1995; 154(7):3391-5. View

2.
Yang C, Lee J, Rodgers M, Min C, Lee J, Kim H . Autophagy protein Rubicon mediates phagocytic NADPH oxidase activation in response to microbial infection or TLR stimulation. Cell Host Microbe. 2012; 11(3):264-76. PMC: 3616771. DOI: 10.1016/j.chom.2012.01.018. View

3.
Nahrevanian H . Involvement of nitric oxide and its up/down stream molecules in the immunity against parasitic infections. Braz J Infect Dis. 2010; 13(6):440-8. DOI: 10.1590/s1413-86702009000600010. View

4.
Price R, Tjitra E, Guerra C, Yeung S, White N, Anstey N . Vivax malaria: neglected and not benign. Am J Trop Med Hyg. 2008; 77(6 Suppl):79-87. PMC: 2653940. View

5.
Huang J, Canadien V, Lam G, Steinberg B, Dinauer M, Magalhaes M . Activation of antibacterial autophagy by NADPH oxidases. Proc Natl Acad Sci U S A. 2009; 106(15):6226-31. PMC: 2664152. DOI: 10.1073/pnas.0811045106. View