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Kima, P. E.

Publications and source records attributed to Kima, P. E..

2 recordsLinked to original sources

Non-canonical activation of the ESCRT machinery is required for division of Leishmania donovani parasitophorous vacuoles and persistence

In the mammalian host, L. donovani are intracellular pathogens that reside in vacuolar compartments (often called Leishmania parasitophorous vacuoles (LdLPVs)). LdLPVs harbor individual parasites that enigmatically divide upon replication of the parasite. In this study, we evaluated the role of the ESCRT machinery in the division of LdLPVs and parasite persistence in infected cells. We found that the ESCRT I member, TSG101 and the ESCRT III members, CHMP2B and CHMP4B are recruited to LdLPVs. In addition, Vps4a, an accessory molecule required for recycling of ESCRT III molecules is also recruited to LdLPVs. Interestingly, infection of cells expressing a dominant negative version of Vps4a that prevents the recycling of ESCRT III revealed that most LdLPVs recruit ESCRT components constitutively. Based on that finding, we proposed that the recruitment of ESCRT molecules to LdLPVs is enabled by the display of the phosphoinositide, PI(3,4)P2 on LdLPVs. To assess the functional importance of recruiting ESCRT molecules to LdLPVs, we monitored L. donovani infections in cells in which ALIX or TSG101 were knocked down. ALIX knock down resulted in LdLPVs that were distended and harbored 4 or more parasites, which is significantly different from LdLPVs in wild type macrophages that harbor at most, 2 parasites. Moreover, reduced levels of ALIX resulted in a significant reduction in parasite numbers. These findings revealed the critical role for activation of the ALIX-ESCRTIII axis in L. donovani pathogenesis. This is the first demonstration that the ESCRT machinery plays a role in the division of pseudo-organelles that harbor an intracellular pathogen. SignificanceThe endosomal sorting complex required for transport (ESCRT) machinery plays critical mechanistic roles in physiological processes including cell division (cytokinesis). It can be hijacked to promote the spread and persistence of infectious agents including in the budding of viruses and nutrient acquisition by intracellular pathogens. In this study, we uncover a new role for the ESCRT machinery in the infection of macrophages by Leishmania donovani (Ld). Within infected cells, each Ld parasite resides in a Leishmania parasitophorous vacuole (LPV) that enigmatically divides to accommodate daughter parasites. We show that a non-canonical activation of the ESCRT machinery is required for division of LPVs and for parasite persistence. Future studies on the mechanisms for selective activation of the ESCRT machinery would reveal targets for the control of this deadly pathogen.

microbiology↗

Leishmania infection-derived extracellular vesicles drive transcription of genes involved in M2 polarization.

Although it is known that the composition of EVs is determined by the characteristics of the cell and its environment, the effects of intracellular infection on EV composition and functions are not well understood. We had previously shown that cultured macrophages infected with Leishmania parasites release EVs that contain parasite derived molecules (LiEVs). In this study we show that LdVash, a molecule previously identified in LiEVs from L. donovani infected RAW264.7 macrophages is widely distributed in the liver of L. donovani infected mice. This result shows for the first time that parasite molecules are released in EVs and distributed in infected tissues where they can be endocytosed by cells in the liver, including macrophages that undergo a significant increase in numbers as the infection progresses. To commence evaluating the potential impact of LiEVs on macrophage functions, we show that primary peritoneal exudate macrophages (PECs) express transcripts of signature molecules of M2 macrophages such as arginase 1, IL-10 and IL-4R when incubated with LiEVs. In comparative studies that illustrate how intracellular pathogens control the composition and functions of EVs released from macrophages, we show that EVs from RAW264.7 macrophages infected with Salmonella enterica serovar Typhimurium activate PECs to express transcripts of signature molecules of M1 macrophages such as iNOS, TNF alpha and IFN gamma and not M2 signature molecules. Finally, we show that in contrast to the polarized responses observed in in vitro studies of macrophages, both M1 and M2 signature molecules are detected in L. donovani infected livers although they exhibit differences in their spatial distribution in infected tissues.

microbiology↗