Mechanical Disruption of Lysis-Resistant Bacterial Cells by Use of a Miniature, Low-Power, Disposable Device

Author:

Vandeventer Peter E.1,Weigel Kris M.2,Salazar Jose1,Erwin Barbara1,Irvine Bruce3,Doebler Robert3,Nadim Ali4,Cangelosi Gerard A.2,Niemz Angelika1

Affiliation:

1. Keck Graduate Institute of Applied Life Sciences, 535 Watson Drive, Claremont, California 91711

2. Seattle Biomedical Research Institute, 307 Westlake Avenue North, Seattle, Washington 98109

3. Claremont BioSolutions, 1182 Monte Vista Ave., Suite 11, Upland, California 91786

4. Claremont Graduate University, 150 E. Tenth St., Claremont, California 91711

Abstract

ABSTRACT Molecular detection of microorganisms requires microbial cell disruption to release nucleic acids. Sensitive detection of thick-walled microorganisms such as Bacillus spores and Mycobacterium cells typically necessitates mechanical disruption through bead beating or sonication, using benchtop instruments that require line power. Miniaturized, low-power, battery-operated devices are needed to facilitate mechanical pathogen disruption for nucleic acid testing at the point of care and in field settings. We assessed the lysis efficiency of a very small disposable bead blender called OmniLyse relative to the industry standard benchtop Biospec Mini-BeadBeater. The OmniLyse weighs approximately 3 g, at a size of approximately 1.1 cm 3 without the battery pack. Both instruments were used to mechanically lyse Bacillus subtilis spores and Mycobacterium bovis BCG cells. The relative lysis efficiency was assessed through real-time PCR. Cycle threshold ( C T ) values obtained at all microbial cell concentrations were similar between the two devices, indicating that the lysis efficiencies of the OmniLyse and the BioSpec Mini-BeadBeater were comparable. As an internal control, genomic DNA from a different organism was spiked at a constant concentration into each sample upstream of lysis. The C T values for PCR amplification of lysed samples using primers specific to this internal control were comparable between the two devices, indicating negligible PCR inhibition or other secondary effects. Overall, the OmniLyse device was found to effectively lyse tough-walled organisms in a very small, disposable, battery-operated format, which is expected to facilitate sensitive point-of-care nucleic acid testing.

Publisher

American Society for Microbiology

Subject

Microbiology (medical)

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