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Developing Inclusivity and Exclusivity Panels for Testing Diagnostic and Detection Tools Targeting Burkholderia
Charles H D Williamson1, David M Wagner1, Paul Keim1
1Northern Arizona University, The Pathogen & Microbiome Institute, Flagstaff, AZ 86011-4073.
Abstract:
Background: Diagnostic tools designed to target Burkholderia pseudomallei, the causative agent of melioidosis that was classified as a Tier 1 Select Agent by the U.S. Centers for Disease Control and Prevention, have typically suffered from false-positive and false-negative results because of a lack of understanding of the genomic diversity of B. pseudomallei and its genetic near neighbors. Objective: In this review, we discuss a strategy for using comparative genomics to guide the design of inclusivity and exclusivity panels for the validation of assays as defined by the Standard Method Performance Requirement (SMPR). Methods: Based upon a literature review, comparative genomic analyses, and hands-on experience with diagnostic development and testing, we describe important factors to consider when developing inclusivity and exclusivity panels for testing diagnostic and/or detection tools. Results: The genomic diversity of B. pseudomallei is substantial, with the genome characterized by horizontal gene transfer, including the acquisition of genomic islands from near-neighbor species. This genomic diversity, core genome reduction, and signal erosion can complicate molecular diagnostic tool development and validation. Conclusions: Accurate diagnostic and/or detection tools targeting B. pseudomallei, an important pathogen from a public health and biodefense perspective, are needed for many applications. Utilizing whole genome sequencing data and comparative genomic techniques can guide the development and validation of such tools. Amplicon sequencing assays and assay redundancy can provide improved assay performance. Highlights: When developing and validating diagnostic and/or detection tools targeting B. pseudomallei, it is important to consider genomic diversity, genome reduction, and signal erosion to reduce the effects of typical diagnostic errors.
Insights
Genomic diversity in Burkholderia pseudomallei complicates diagnostic tool development. Comparative genomics and whole genome sequencing can guide the creation of accurate diagnostic and detection tools for this pathogen.
Area of Science:
- Microbiology
- Genomics
- Bioinformatics
Background:
- Burkholderia pseudomallei causes melioidosis and is a Tier 1 Select Agent.
- Existing diagnostic tools often yield inaccurate results due to limited understanding of B. pseudomallei genomic diversity.
- Genomic variation in B. pseudomallei and related species poses challenges for assay development.
Purpose of the Study:
- To review strategies for designing diagnostic assay validation panels using comparative genomics.
- To guide the development of accurate inclusivity and exclusivity panels for B. pseudomallei detection.
- To address challenges in molecular diagnostic tool development for B. pseudomallei.
Main Methods:
- Literature review of B. pseudomallei genomics and diagnostic development.
- Comparative genomic analyses to understand genomic diversity.
- Application of Standard Method Performance Requirement (SMPR) principles for panel design.
Main Results:
- B. pseudomallei exhibits significant genomic diversity, including horizontal gene transfer and acquisition of genomic islands.
- Core genome reduction and signal erosion further complicate diagnostic assay design.
- Genomic insights are crucial for overcoming limitations in current diagnostic tools.
Conclusions:
- Accurate diagnostic tools for B. pseudomallei are essential for public health and biodefense.
- Whole genome sequencing and comparative genomics are key to developing and validating reliable assays.
- Amplicon sequencing and assay redundancy can enhance diagnostic performance.
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