Javascript must be enabled to continue!
Optical microscopy reveals the dynamic nature of B. pseudomallei morphology during β-lactam antimicrobial susceptibility testing
View through CrossRef
Abstract
Background
In Gram-negative species, β-lactam antibiotics target penicillin binding proteins (PBPs) resulting in morphological alterations of bacterial cells. Observations of antibiotic-induced cell morphology changes can rapidly and accurately differentiate drug susceptible from resistant bacterial strains; however, resistant cells do not always remain unchanged.
Burkholderia pseudomallei
is a Gram-negative, biothreat pathogen and the causative agent of melioidosis, an often fatal infectious disease for humans.
Results
Here, we identified β-lactam targets in
B. pseudomallei
by in silico analysis. Ten genes encoding putative PBPs, including PBP-1, PBP-2, PBP-3 and PBP-6, were detected in the genomes of susceptible and resistant strains. Real-time, live-cell imaging of
B. pseudomallei
strains demonstrated dynamic morphological changes in broth containing clinically relevant β-lactam antibiotics. At sub-inhibitory concentrations of ceftazidime (CAZ), amoxicillin-clavulanic acid (AMC), and imipenem (IPM), filamentation, varying in length and proportion, was an initial response of the multidrug-resistant strain Bp1651 in exponential phase. However, a dominant morphotype reemerged during stationary phase that resembled cells unexposed to antibiotics. Similar morphology dynamics were observed for AMC-resistant strains, MSHR1655 and 724644, when exposed to sub-inhibitory concentrations of AMC. For all
B. pseudomallei
strains evaluated, increased exposure time and exposure to increased concentrations of AMC at and above minimal inhibitory concentrations (MICs) in broth resulted in cell morphology shifts from filaments to spheroplasts and/or cell lysis.
B. pseudomallei
morphology changes were more consistent in IPM. Spheroplast formation followed by cell lysis was observed for all strains in broth containing IPM at concentrations greater than or equal to MICs, however, the time to cell lysis was variable.
B. pseudomallei
cell lengths were strain-, drug- and drug concentration-dependent.
Conclusions
Both resistant and susceptible
B. pseudomallei
strains exhibited filamentation during early exposure to AMC and CAZ at concentrations used to interpret susceptibility (based on CLSI guidelines). While developing a rapid β-lactam antimicrobial susceptibility test based on cell-shape alone requires more extensive analyses, optical microscopy detected
B. pseudomallei
growth attributes that lend insight into antibiotic response and antibacterial mechanisms of action.
Springer Science and Business Media LLC
Title: Optical microscopy reveals the dynamic nature of B. pseudomallei morphology during β-lactam antimicrobial susceptibility testing
Description:
Abstract
Background
In Gram-negative species, β-lactam antibiotics target penicillin binding proteins (PBPs) resulting in morphological alterations of bacterial cells.
Observations of antibiotic-induced cell morphology changes can rapidly and accurately differentiate drug susceptible from resistant bacterial strains; however, resistant cells do not always remain unchanged.
Burkholderia pseudomallei
is a Gram-negative, biothreat pathogen and the causative agent of melioidosis, an often fatal infectious disease for humans.
Results
Here, we identified β-lactam targets in
B.
pseudomallei
by in silico analysis.
Ten genes encoding putative PBPs, including PBP-1, PBP-2, PBP-3 and PBP-6, were detected in the genomes of susceptible and resistant strains.
Real-time, live-cell imaging of
B.
pseudomallei
strains demonstrated dynamic morphological changes in broth containing clinically relevant β-lactam antibiotics.
At sub-inhibitory concentrations of ceftazidime (CAZ), amoxicillin-clavulanic acid (AMC), and imipenem (IPM), filamentation, varying in length and proportion, was an initial response of the multidrug-resistant strain Bp1651 in exponential phase.
However, a dominant morphotype reemerged during stationary phase that resembled cells unexposed to antibiotics.
Similar morphology dynamics were observed for AMC-resistant strains, MSHR1655 and 724644, when exposed to sub-inhibitory concentrations of AMC.
For all
B.
pseudomallei
strains evaluated, increased exposure time and exposure to increased concentrations of AMC at and above minimal inhibitory concentrations (MICs) in broth resulted in cell morphology shifts from filaments to spheroplasts and/or cell lysis.
B.
pseudomallei
morphology changes were more consistent in IPM.
Spheroplast formation followed by cell lysis was observed for all strains in broth containing IPM at concentrations greater than or equal to MICs, however, the time to cell lysis was variable.
B.
pseudomallei
cell lengths were strain-, drug- and drug concentration-dependent.
Conclusions
Both resistant and susceptible
B.
pseudomallei
strains exhibited filamentation during early exposure to AMC and CAZ at concentrations used to interpret susceptibility (based on CLSI guidelines).
While developing a rapid β-lactam antimicrobial susceptibility test based on cell-shape alone requires more extensive analyses, optical microscopy detected
B.
pseudomallei
growth attributes that lend insight into antibiotic response and antibacterial mechanisms of action.
Related Results
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Objective: To determine the frequency of common chromosomal aberrations in local population idiopathic determine the frequency of common chromosomal aberrations in local population...
Optical microscopy reveals the dynamic nature of
B. pseudomallei
morphology during β-lactam antimicrobial susceptibility testing
Optical microscopy reveals the dynamic nature of
B. pseudomallei
morphology during β-lactam antimicrobial susceptibility testing
Abstract
Background
In Gram-negative species, β-lactam antibiotics target penicillin binding proteins (PBP...
Inhibitory effects of Trichoderma asperellum culture filtrates on pathogenic bacteria, Burkholderia pseudomallei
Inhibitory effects of Trichoderma asperellum culture filtrates on pathogenic bacteria, Burkholderia pseudomallei
Background
Burkholderia pseudomallei is a soil- and water-dwelling bacterium that causes the life-threatening infection melioidosis. Patients typically acquire this ...
Myanmar Burkholderia pseudomallei strains are genetically diverse and originate from Asia with phylogenetic evidence of reintroductions from neighbouring countries
Myanmar Burkholderia pseudomallei strains are genetically diverse and originate from Asia with phylogenetic evidence of reintroductions from neighbouring countries
AbstractMelioidosis was first identified in Myanmar in 1911 but for the last century it has remained largely unreported there. Burkholderia pseudomallei was first isolated from the...
Burkholderia pseudomallei biofilm phenotypes confined but surviving in neutrophil extracellular traps of varying appearance
Burkholderia pseudomallei biofilm phenotypes confined but surviving in neutrophil extracellular traps of varying appearance
Melioidosis is a fatal infectious disease caused by Burkholderia pseudomallei. Complications following treatment are usually due to antibiotic resistance and relapse is mainly caus...
Global transcriptional profiling of Burkholderia pseudomallei under salt stress reveals differential effects on the Bsa type III secretion system
Global transcriptional profiling of Burkholderia pseudomallei under salt stress reveals differential effects on the Bsa type III secretion system
Abstract
Background
Burkholderia pseudomallei is the causative agent of melioidosis where the highest reported incidence world wid...
Detection and differentiation of Burkholderia species with pathogenic potential in environmental soil samples
Detection and differentiation of Burkholderia species with pathogenic potential in environmental soil samples
The Burkholderia pseudomallei phylogenetic cluster includes B. pseudomallei, B. mallei, B. thailandensis, B. oklahomensis, B. humptydooensis and B. singularis. Regarded as the only...
A molecular epidemiological analysis of Burkholderia pseudomallei in southern Thailand
A molecular epidemiological analysis of Burkholderia pseudomallei in southern Thailand
Melioidosis, a severe bacterial illness caused by Burkholderia pseudomallei, is prevalent in most parts of Thailand, including its southern region situated within the Malay Peninsu...

