Javascript must be enabled to continue!
Combining multi‐omics analysis to identify host‐targeted targets for the control of Brucella infection
View through CrossRef
AbstractHuman infections caused by Brucella (called brucellosis) are among the most common zoonoses worldwide with an estimated 500,000 cases each year. Since chronic Brucella infections are extremely difficult to treat, there is an urgent need for more effective therapeutics. As a facultative intracellular bacterium, Brucella is strictly parasitic in the host cell. Here, we performed proteomic and transcriptomic and metabolomic analyses on Brucella infected patients, mice and cells that provided an extensive “map” of physiological changes in brucellosis patients and characterized the metabolic pathways essential to the response to infection, as well as the associated cellular response and molecular mechanisms. This is the first report utilizing multi‐omics analysis to investigate the global response of proteins and metabolites associated with Brucella infection, and the data can provide a comprehensive insight to understand the mechanism of Brucella infection. We demonstrated that Brucella increased nucleotide synthesis in the host, consistent with increased biomass requirement. We also identified IMPDH2, a key regulatory complex that controls nucleotide synthesis during Brucella infection. Pharmacological targeting of IMPDH2, the rate‐limiting enzyme in guanine nucleotide biosynthesis, efficiently inhibits B. abortus growth both in vitro and in vivo. Through screening a library of natural products, we identified oxymatrine, an alkaloid obtained primarily from Sophora roots, is a novel and selective IMPDH2 inhibitor. In further in vitro bacterial inhibition assays, oxymatrine effectively inhibited the growth of B. abortus, which was impaired by exogenous supplementation of guanosine, a salvage pathway of purine nucleotides. This moderately potent, structurally novel compound may provide clues for further design and development of efficient IMPDH2 inhibitors and also demonstrates the potential of natural compounds from plants against Brucella.
Title: Combining multi‐omics analysis to identify host‐targeted targets for the control of Brucella infection
Description:
AbstractHuman infections caused by Brucella (called brucellosis) are among the most common zoonoses worldwide with an estimated 500,000 cases each year.
Since chronic Brucella infections are extremely difficult to treat, there is an urgent need for more effective therapeutics.
As a facultative intracellular bacterium, Brucella is strictly parasitic in the host cell.
Here, we performed proteomic and transcriptomic and metabolomic analyses on Brucella infected patients, mice and cells that provided an extensive “map” of physiological changes in brucellosis patients and characterized the metabolic pathways essential to the response to infection, as well as the associated cellular response and molecular mechanisms.
This is the first report utilizing multi‐omics analysis to investigate the global response of proteins and metabolites associated with Brucella infection, and the data can provide a comprehensive insight to understand the mechanism of Brucella infection.
We demonstrated that Brucella increased nucleotide synthesis in the host, consistent with increased biomass requirement.
We also identified IMPDH2, a key regulatory complex that controls nucleotide synthesis during Brucella infection.
Pharmacological targeting of IMPDH2, the rate‐limiting enzyme in guanine nucleotide biosynthesis, efficiently inhibits B.
abortus growth both in vitro and in vivo.
Through screening a library of natural products, we identified oxymatrine, an alkaloid obtained primarily from Sophora roots, is a novel and selective IMPDH2 inhibitor.
In further in vitro bacterial inhibition assays, oxymatrine effectively inhibited the growth of B.
abortus, which was impaired by exogenous supplementation of guanosine, a salvage pathway of purine nucleotides.
This moderately potent, structurally novel compound may provide clues for further design and development of efficient IMPDH2 inhibitors and also demonstrates the potential of natural compounds from plants against Brucella.
Related Results
Microarray Analysis of Brucella melitensis Pathogenesis
Microarray Analysis of Brucella melitensis Pathogenesis
Original Objectives 1. To determine the Brucella genes that lead to chronic macrophage infection. 2. To identify Brucella genes that contribute to infection. 3. To confirm the impo...
Why Pakistan Must Lead in Regional Multi-Omics Research for Precision Medicine
Why Pakistan Must Lead in Regional Multi-Omics Research for Precision Medicine
Precision medicine has emerged as one of the most transformative movements in global healthcare, shifting the clinical emphasis from generalized treatments to highly individualized...
Über penicillinempfindliche Brucellastämme
Über penicillinempfindliche Brucellastämme
ZusammenfassungAuf einem penicillinfreien Züchtungsnährboden wurden einige ausnehmend penicillinempfindliche Brucella abortus‐Stämme festgestellt, die sich auch hinsichtlich des CO...
Scent detection of Brucella abortus by African giant pouched rats (Cricetomys ansorgei).
Scent detection of Brucella abortus by African giant pouched rats (Cricetomys ansorgei).
Abstract
Background Brucellosis is a contagious zoonosis caused by Brucella bacterium. While the disease has been eradicated in most developed countries, it remains endemic...
Molecular detection of Brucella species from apparently healthy camels slaughtered at the Akaki abattoir, Ethiopia
Molecular detection of Brucella species from apparently healthy camels slaughtered at the Akaki abattoir, Ethiopia
Abstract
BACKGROUND ANDMETHODS: Brucellosis is a dreadful zoonotic disease affecting humans and all domestic animals including camels worldwide. Serological evidence for Br...
Benchmarking multi-omics integrative clustering methods for subtype identification in colorectal cancer
Benchmarking multi-omics integrative clustering methods for subtype identification in colorectal cancer
Abstract
Background and objectives
Colorectal cancer (CRC) represents a heterogeneous malignancy that has concerned global burden of incidence and mortality. The tradition...
Proteomics of Brucella
Proteomics of Brucella
Brucella spp. are Gram negative intracellular bacteria responsible for brucellosis, a worldwide distributed zoonosis. A prominent aspect of the Brucella life cycle is its ability t...
CRISPR-Cas12a Test Strip (CRISPR/CAST) Package: Poverty Family Pasture Health Patron Saint for Livestocks Free from Brucella Infection
CRISPR-Cas12a Test Strip (CRISPR/CAST) Package: Poverty Family Pasture Health Patron Saint for Livestocks Free from Brucella Infection
Brucellosis is a common zoonotic disease caused by
Brucella
,
which causes enormous economic loss and public burden to the epidemic
areas. Earli...

