TY - JOUR
T1 - Lysosomal degradation products induce Coxiella burnetii virulence
AU - Newton, Patrice
AU - Thomas, David R.
AU - Reed, Shawna C.O.
AU - Lau, Nicole
AU - Xu, Bangyan
AU - Ong, Sze Ying
AU - Pasricha, Shivani
AU - Madhamshettiwar, Piyush B.
AU - Edgington-Mitchell, Laura E.
AU - Simpson, Kaylene J.
AU - Roy, Craig R.
AU - Newton, Hayley J.
N1 - Funding Information:
ACKNOWLEDGMENTS. Confocal microscopy was performed at the Biological Optical Microscopy Platform, The University of Melbourne (https://microscopy. unimelb.edu.au/). We thank Dan Thomas and Jennii Luu from the Victorian Centre for Functional Genomics for expert technical help during the screen. We acknowledge use of the services and facilities of the Australian Genome Research Facility. Single-copy integration plasmids were a gift from P. A. Beare and R. A. Heinzen, Rocky Mountain Laboratories, NIH. This research was supported by Australian National Health and Medical Research Council APP1063646 and APP1120344. The Victorian Centre for Functional Genomics (K.J.S.) is funded by the Australian Cancer Research Foundation, the Australian Phenomics Network through funding from the Australian Government’s National Collaborative Research Infrastructure Strategy Program, and the Peter MacCallum Cancer Centre Foundation. L.E.E.-M. is funded by the Grimwade Fellowship from the Russell and Mab Grimwade Miegunyah Fund at The University of Melbourne and a Discovery Early Career Researcher Award Fellowship from the Australian Research Council (DE180100418).
Publisher Copyright:
© 2020 National Academy of Sciences. All rights reserved.
PY - 2020/3/24
Y1 - 2020/3/24
N2 - Coxiella burnetii is an intracellular pathogen that replicates in a lysosome-like vacuole through activation of a Dot/Icm-type IVB secretion system and subsequent translocation of effectors that remodel the host cell. Here a genome-wide small interfering RNA screen and reporter assay were used to identify host proteins required for Dot/Icm effector translocation. Significant, and independently validated, hits demonstrated the importance of multiple protein families required for endocytic trafficking of the C. burnetii-containing vacuole to the lysosome. Further analysis demonstrated that the degradative activity of the lysosome created by proteases, such as TPP1, which are transported to the lysosome by receptors, such as M6PR and LRP1, are critical for C. burnetii virulence. Indeed, the C. burnetii PmrA/B regulon, responsible for transcriptional up-regulation of genes encoding the Dot/Icm apparatus and a subset of effectors, induced expression of a virulence-associated transcriptome in response to degradative products of the lysosome. Luciferase reporter strains, and subsequent RNA-sequencing analysis, demonstrated that particular amino acids activate the C. burnetii PmrA/B two-component system. This study has further enhanced our understanding of C. burnetii pathogenesis, the host-pathogen interactions that contribute to bacterial virulence, and the different environmental triggers pathogens can sense to facilitate virulence.
AB - Coxiella burnetii is an intracellular pathogen that replicates in a lysosome-like vacuole through activation of a Dot/Icm-type IVB secretion system and subsequent translocation of effectors that remodel the host cell. Here a genome-wide small interfering RNA screen and reporter assay were used to identify host proteins required for Dot/Icm effector translocation. Significant, and independently validated, hits demonstrated the importance of multiple protein families required for endocytic trafficking of the C. burnetii-containing vacuole to the lysosome. Further analysis demonstrated that the degradative activity of the lysosome created by proteases, such as TPP1, which are transported to the lysosome by receptors, such as M6PR and LRP1, are critical for C. burnetii virulence. Indeed, the C. burnetii PmrA/B regulon, responsible for transcriptional up-regulation of genes encoding the Dot/Icm apparatus and a subset of effectors, induced expression of a virulence-associated transcriptome in response to degradative products of the lysosome. Luciferase reporter strains, and subsequent RNA-sequencing analysis, demonstrated that particular amino acids activate the C. burnetii PmrA/B two-component system. This study has further enhanced our understanding of C. burnetii pathogenesis, the host-pathogen interactions that contribute to bacterial virulence, and the different environmental triggers pathogens can sense to facilitate virulence.
KW - Amino acid sensing
KW - Coxiella burnetii
KW - Dot/Icm secretion system
KW - SiRNA screen
KW - Virulence regulation
UR - https://www.scopus.com/pages/publications/85082310951
U2 - 10.1073/pnas.1921344117
DO - 10.1073/pnas.1921344117
M3 - Article
C2 - 32152125
AN - SCOPUS:85082310951
SN - 0027-8424
VL - 117
SP - 6801
EP - 6810
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 12
ER -