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Microscopy-based Assays for High-throughput Screening of Host Factors Involved in Brucella Infection of Hela Cells
Published on: August 5, 2016
Comprehensive genomic identification of essential genes required for Brucella melitensis intracellular survival
Zhiqiang Jiang1, Jiajun Gao1,2, Mengda Liu1
1Professional Laboratory for Animal Brucellosis, Center of Zoonoses Surveillance, China Animal Health and Epidemiology Center, Qingdao, Shandong, China.
Abstract:
Brucella melitensis is a significant zoonotic pathogen transmissible via contact, digestive, and respiratory routes, posing severe threats to livestock economies and human health. While its virulence genes critically regulate intracellular survival and replication, the molecular mechanisms underlying pathogenesis remain elusive. This study employed Transposon Directed Insertion-site Sequencing (TraDIS) technology to identify key genes essential for the survival of Brucella melitensis strain 16 M within RAW 264.7 macrophages, resulting in the discovery of 374 anti-phagocytic associated essential genes. Through GO and KEGG analyses, these genes were categorized into eight functional classes, representative genes from each category were selected to generate respective gene-deletion mutants, with bacterial virulence and phenotypes validated via intracellular survival assays, in vitro stress tests, carbon source utilization experiments, and RT-qPCR. All ten constructed mutants exhibited reduced macrophage survival capabilities. Deletion of membrane-related genes cydDC and BME_RS07715 attenuated stress resistance, membrane stability, and immune evasion, knockout of metabolic gene ptsP impaired carbon source utilization and intracellular proliferation, and disruption of regulatory gene BME_RS00125 diminished TCA cycle activity and fatty acid metabolism, compromising energy supply and structural integrity. In this study, some key genes of Brucella surviving in macrophages were verified, and preliminarily elucidated the function of these genes in regulating bacterial virulence, providing a theoretical basis for exploring their mechanism.
Insights
Brucella melitensis survival in macrophages was investigated using Transposon Directed Insertion-site Sequencing (TraDIS). Key genes essential for intracellular survival and virulence were identified, offering insights into Brucella pathogenesis.
Area of Science:
- Microbiology
- Infectious Diseases
- Genomics
Background:
- Brucella melitensis is a zoonotic pathogen threatening livestock and human health.
- Understanding its pathogenesis and virulence factors is crucial for disease control.
Purpose of the Study:
- To identify essential genes for Brucella melitensis survival within macrophages using Transposon Directed Insertion-site Sequencing (TraDIS).
- To elucidate the functional roles of identified genes in bacterial virulence and pathogenesis.
Main Methods:
- Transposon Directed Insertion-site Sequencing (TraDIS) was performed on Brucella melitensis within RAW 264.7 macrophages.
- Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) analyses were conducted.
- Gene-deletion mutants were generated and their virulence and phenotypes were validated through various assays.
Main Results:
- 374 anti-phagocytic associated essential genes were identified.
- Genes involved in membrane function, metabolism, and regulation were crucial for intracellular survival.
- Mutants with deletions in key genes showed reduced macrophage survival, stress resistance, and virulence.
Conclusions:
- This study identified critical genes enabling Brucella melitensis survival and virulence within macrophages.
- The findings provide a foundation for understanding Brucella pathogenesis and developing targeted interventions.
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