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Rapid Identification of Gram Negative Bacteria from Blood Culture Broth Using MALDI-TOF Mass Spectrometry
Published on: May 28, 2014
Scanning electron microscopy and extended viability testing as a tool to evaluate the safety of MALDI-TOF extracts
Kym S Antonation1, Britni L Baron1, Timothy F Booth1
1National Microbiology Laboratory, Public Health Agency of Canada, Winnipeg, Manitoba, R3E 3R2, Canada.
Abstract:
Introduction. Matrix-assisted laser desorption/ionization-time of flight (MALDI-TOF) MS for rapid identification of risk group 3 (RG3) bacteria is impeded by the following two main limitations: (a) equipment and maintenance costs for instruments placed within containment and (b) lack of a validated inactivation protocol to move RG3 material to a lower containment level. A validated inactivation method would improve operations of public health laboratories by allowing safe triage of potential RG3 agents. Albeit a validated, zero-risk inactivation protocol is unlikely, scientific interrogation of methods to identify and mitigate procedural biosafety risks is vital for institutional risk assessment.Gap. To investigate the effect of a standard MALDI-TOF chemical extraction, hypothesized to alter cells, allowing passage through a filter and maintaining ability to replicate, this study paired visualization using a scanning electron microscope (SEM) with extended viability testing.Aim. This work is intended to support risk assessments for the removal of material from a containment laboratory for MALDI-TOF MS.Methodology. A standard set of Bacillus cereus and Bacillus anthracis vegetative and spore preparations was treated with a formic acid:acetonitrile extraction, with or without filtration, and plated on five types of media to monitor growth over 14 days. SEM images were taken of treated and untreated preparations, prior, during and after filtration across two filters. Reference beads provided accurate pore size measurements.Results. SEM demonstrated no difference in treated and untreated cells but did indicate the ineffectiveness of cellulose filters compared to PVDF filters. Growth was observed in preparations that did not include PVDF filtration, whereas all preparations (n=60) that included PVDF filtration were 100% non-viable. Although non-viability was observed, an important finding was the passage of 0.262 and 0.173 µm microspheres through the 0.1 µm PVDF filter. Growth of unfiltered preparations was detected between 1 and 7 days.Conclusions. This investigation demonstrates the value of interrogating materials used for bacterial inactivation, highlighting significant issues in the application of filters for exclusion purposes. Visual examination via SEM was key to providing evidence towards a low-risk inactivation method. These findings, with an understanding of limitations identified herein, can be used to inform risk assessments for the removal of RG3 bacteria from containment.
Insights
This study evaluated a chemical inactivation method for risk group 3 (RG3) bacteria using matrix-assisted laser desorption/ionization-time of flight (MALDI-TOF) mass spectrometry. Polyvinylidene fluoride (PVDF) filtration proved effective for bacterial inactivation, crucial for safe laboratory operations.
Area of Science:
- Microbiology
- Biotechnology
- Analytical Chemistry
Background:
- Matrix-assisted laser desorption/ionization-time of flight (MALDI-TOF) mass spectrometry (MS) is vital for identifying risk group 3 (RG3) bacteria.
- Current limitations include high equipment costs and the lack of validated inactivation protocols for safe sample handling outside containment.
- A validated inactivation method is essential for public health laboratories to safely triage potential RG3 agents.
Purpose of the Study:
- To assess the efficacy of a standard MALDI-TOF chemical extraction protocol in inactivating RG3 bacteria.
- To evaluate the role of filtration in conjunction with chemical treatment for bacterial inactivation.
- To support risk assessments for moving RG3 bacterial samples from containment for MALDI-TOF MS analysis.
Main Methods:
- Bacterial preparations (Bacillus cereus, Bacillus anthracis) were treated with formic acid:acetonitrile extraction.
- Filtration was performed using cellulose or polyvinylidene fluoride (PVDF) filters.
- Scanning electron microscopy (SEM) visualized cell morphology and filter integrity.
- Viability was assessed by plating on multiple media over 14 days.
Main Results:
- SEM showed no significant alteration of bacterial cells by the chemical treatment.
- PVDF filters demonstrated 100% non-viability of bacterial preparations (n=60).
- Cellulose filters were ineffective; growth was observed in unfiltered preparations within 1-7 days.
- Passage of microspheres larger than the filter pore size was observed, indicating potential filtration limitations.
Conclusions:
- PVDF filtration, combined with chemical treatment, provides an effective inactivation method for RG3 bacteria.
- SEM is a valuable tool for assessing inactivation procedures and filter performance.
- Findings inform risk assessments for safe handling and analysis of RG3 bacteria outside of high containment.
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