
Pathogenesis of Gram-Negative Bacteremia
Author(s) -
Caitlyn L. Holmes,
Mark T. Anderson,
Harry L. T. Mobley,
Michael A. Bachman
Publication year - 2021
Publication title -
clinical microbiology reviews
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.177
H-Index - 282
eISSN - 1070-6305
pISSN - 0893-8512
DOI - 10.1128/cmr.00234-20
Subject(s) - bacteremia , gram , pathogenesis , gram negative bacteria , gram negative bacterial infections , medicine , intensive care medicine , antimicrobial , public health , antibiotic resistance , microbiology and biotechnology , immunology , biology , bacteria , antibiotics , pathology , genetics , escherichia coli , gene , biochemistry
Gram-negative bacteremia is a devastating public health threat, with high mortality in vulnerable populations and significant costs to the global economy. Concerningly, rates of both Gram-negative bacteremia and antimicrobial resistance in the causative species are increasing. Gram-negative bacteremia develops in three phases. First, bacteria invade or colonize initial sites of infection. Second, bacteria overcome host barriers, such as immune responses, and disseminate from initial body sites to the bloodstream. Third, bacteria adapt to survive in the blood and blood-filtering organs. To develop new therapies, it is critical to define species-specific and multispecies fitness factors required for bacteremia in model systems that are relevant to human infection. A small subset of species is responsible for the majority of Gram-negative bacteremia cases, including Escherichia coli , Klebsiella pneumoniae , Pseudomonas aeruginosa , and Acinetobacter baumannii The few bacteremia fitness factors identified in these prominent Gram-negative species demonstrate shared and unique pathogenic mechanisms at each phase of bacteremia progression. Capsule production, adhesins, and metabolic flexibility are common mediators, whereas only some species utilize toxins. This review provides an overview of Gram-negative bacteremia, compares animal models for bacteremia, and discusses prevalent Gram-negative bacteremia species.