Iron Limitation Triggers Early Egress by the Intracellular Bacterial Pathogen Legionella pneumophila

Author:

O'Connor Tamara J.1,Zheng Huaixin2,VanRheenen Susan M.3,Ghosh Soma1,Cianciotto Nicholas P.2,Isberg Ralph R.34

Affiliation:

1. Department of Biological Chemistry, The Johns Hopkins University School of Medicine, Baltimore, Maryland, USA

2. Department of Microbiology and Immunology, Feinberg School of Medicine, Northwestern University, Chicago, Illinois, USA

3. Department of Molecular Biology and Microbiology, Tufts University Medical School, Boston, Massachusetts, USA

4. Howard Hughes Medical Institute, Chevy Chase, Maryland, USA

Abstract

ABSTRACT Legionella pneumophila is an intracellular bacterial pathogen that replicates in alveolar macrophages, causing a severe form of pneumonia. Intracellular growth of the bacterium depends on its ability to sequester iron from the host cell. In the L. pneumophila strain 130b, one mechanism used to acquire this essential nutrient is the siderophore legiobactin. Iron-bound legiobactin is imported by the transport protein LbtU. Here, we describe the role of LbtP, a paralog of LbtU, in iron acquisition in the L. pneumophila strain Philadelphia-1. Similar to LbtU, LbtP is a siderophore transport protein and is required for robust growth under iron-limiting conditions. Despite their similar functions, however, LbtU and LbtP do not contribute equally to iron acquisition. The Philadelphia-1 strain lacking LbtP is more sensitive to iron deprivation in vitro . Moreover, LbtP is important for L. pneumophila growth within macrophages while LbtU is dispensable. These results demonstrate that LbtP plays a dominant role over LbtU in iron acquisition. In contrast, loss of both LbtP and LbtU does not impair L. pneumophila growth in the amoebal host Acanthamoeba castellanii , demonstrating a host-specific requirement for the activities of these two transporters in iron acquisition. The growth defect of the Δ lbtP mutant in macrophages is not due to alterations in growth kinetics. Instead, the absence of LbtP limits L. pneumophila replication and causes bacteria to prematurely exit the host cell. These results demonstrate the existence of a preprogrammed exit strategy in response to iron limitation that allows L. pneumophila to abandon the host cell when nutrients are exhausted.

Funder

Natalie V. Zucker Fellowship

National Institutes of Health

Howard Hughes Medical Institute

Publisher

American Society for Microbiology

Subject

Infectious Diseases,Immunology,Microbiology,Parasitology

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