Active modulation of host function is essential for the success of bacterial pathogens. The ubiquitin network regulates virtually every cellular process in eukaryote, particularly those involved in the detection, recognition and response to infection. It is thus not unexpected that many pathogens target host ubiquitination for their benefits. Earlier studies revealed that Legionella pneumophila, the causative agent of Legionnaires' disease, interferes with host ubiquitin signaling by using at least 9 of its Dot/Icm effectors. Our recent study has identified members of the SidE effector family as unique ubiquitin manipulation enzymes. First, these proteins contain a deubiquitinase motif that attacks ubiquitinated proteins. Second, these proteins catalyze ubiquitination by an unusual mechanism: the reaction does not require the E1, E2 enzymes or ATP, factor that are essential for all described ubiquitination events. Furthermore, these novel ubiquitin manipulating effectors are required for maximal intracellular bacterial replication, which differs sharply with the majority of Legionella type IV effectors. By biochemical and structural analyses, we will first study the mechanisms of action of these proteins. We will also study the regulation of their activity by factors from the bacterium and determine how such activity contributes to the biogenesis of the phagosome supportive of intracellular bacterial replication. These studies will not only reveal novel mechanisms of host function exploitation by intracellular pathogens, but also will have the potential to revise the current understanding of ubiquitination, an enormously important signaling mechanism.

Public Health Relevance

Ubiquitination regulates virtually every cellular process in eukaryotes; results from our study will reveal information on the virulence of bacterial pathogens and on the mechanism of signaling in hosts, which will will provide novel strategies for prevention and/or treatment of diseases. PHS 398/2590 (Rev. 11/07) Page Continuation Format Page

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
1R01AI127465-01
Application #
9214713
Study Section
Host Interactions with Bacterial Pathogens Study Section (HIBP)
Program Officer
Ernst, Nancy L
Project Start
2017-08-01
Project End
2021-07-31
Budget Start
2017-08-01
Budget End
2018-07-31
Support Year
1
Fiscal Year
2017
Total Cost
Indirect Cost
Name
Purdue University
Department
Biology
Type
Schools of Arts and Sciences
DUNS #
072051394
City
West Lafayette
State
IN
Country
United States
Zip Code
47907
Yao, Jialin; Yang, Fan; Sun, Xiaodong et al. (2018) Mechanism of inhibition of retromer transport by the bacterial effector RidL. Proc Natl Acad Sci U S A 115:E1446-E1454
Gan, Ninghai; Nakayasu, Ernesto S; Hollenbeck, Peter J et al. (2018) Legionella pneumophila inhibits immune signalling via MavC-mediated transglutaminase-induced ubiquitination of UBE2N. Nat Microbiol :
Kalayil, Sissy; Bhogaraju, Sagar; Bonn, Florian et al. (2018) Insights into catalysis and function of phosphoribosyl-linked serine ubiquitination. Nature 557:734-738
Akturk, Anil; Wasilko, David J; Wu, Xiaochun et al. (2018) Mechanism of phosphoribosyl-ubiquitination mediated by a single Legionella effector. Nature 557:729-733
Wang, Zhen; McCloskey, Alix; Cheng, Sen et al. (2018) Regulation of the small GTPase Rab1 function by a bacterial glucosyltransferase. Cell Discov 4:53
Puvar, Kedar; Zhou, Yiyang; Qiu, Jiazhang et al. (2017) Ubiquitin Chains Modified by the Bacterial Ligase SdeA Are Protected from Deubiquitinase Hydrolysis. Biochemistry 56:4762-4766
Qiu, Jiazhang; Luo, Zhao-Qing (2017) Hijacking of the Host Ubiquitin Network by Legionella pneumophila. Front Cell Infect Microbiol 7:487
De Leon, Justin A; Qiu, Jiazhang; Nicolai, Christopher J et al. (2017) Positive and Negative Regulation of the Master Metabolic Regulator mTORC1 by Two Families of Legionella pneumophila Effectors. Cell Rep 21:2031-2038