PubMed Health⌕ Search

PubMed · 15623311

Array-based binary analysis for bacterial typing.

Abstract

An allele-specific oligonucleotide microarray was developed for rapid typing of pathogens based on analysis of genomic variations. Using a panel of Escherichia coli strains as a model system, selected loci were sequenced to uncover differences, such as single- or multiple-nucleotide polymorphisms as well as insertion/deletions (indels). While typical genomic profiling experiments employ specific sequences targeted to genomic DNA unique to a single strain or virulent gene, the present array is designed to type bacteria based on a patterned signature response across multiple loci. In the signature concept, all strains are interrogated by hybridizing their amplified DNA to an array containing multiple probe sequences. Allele-specific oligonucleotide probe sequences targeting each of these variable regions were synthesized and included in a custom fiber-optic array. For each locus, a set of specific probe sequences is selected, such that hybridization gives a binary signal/no signal response to each of the probes. Using this strategy for multiple loci, many pathogens or microorganisms could be classified using a limited number of probes. Because of the advantages of the fiber-optic array platform over other array formats, including sensitivity and speed, the platform described in this paper is capable of supporting a high-throughput diagnostic strategy.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Jason R E Shepard, Yael Danin-Poleg, Yechezkel Kashi, David R Walt. 2005-01-01. Array-based binary analysis for bacterial typing.. https://doi.org/10.1021/ac0488006

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Isolation and characterization of two novel species Neorhizobium fuzhouense sp. nov. and Neotabrizicola paludis sp. nov.

Two novel aerobic bacterial strains, designated SGZ-38T and sgz301269T, were isolated from the root of Pennisetum sp. and paddy soil, respectively. Strain SGZ-38T grew at 10-40 ℃ (optimum 30 °C) and pH 5.0-12.0 (optimum 6.5) and tolerated up to 1.0% NaCl (w/v), whereas strain sgz301269T grew at 15-37 °C (optimum 30 °C), pH 5.0-9.5 (optimum 7.0) and 0-2% NaCl (optimum 0%). Phylogenetic trees based on the 16S rRNA gene and genomes placed both strains into distinct lineages, forming separated clades from their closest relatives. Strain SGZ-381T exhibited the highest 16S rRNA gene similarities to "Neorhizobium deserti" ACCC 61627T (97.4%), and strain sgz301269T had the highest 16S rRNA gene sequence similarity to Neotabrizicola shimadae N10T (97.6%). The respiratory quinone in both strains was ubiquinone-10. The main fatty acids of SGZ-381T were Summed feature 8, Summed feature 2 and C16:0, whereas strain sgz301269T included C10:0 3OH, C18:0 3OH and Summed feature 8. The DNA G+C content of SGZ-381T and sgz301269T was 62.1% and 65.5%, respectively. The average nucleotide identity and digital DNA-DNA hybridization values between each strain and their respective closest species were 74.6% and 20.1%, 75.3% and 17.4% respectively, below the thresholds for species delineation. Based on the comprehensive chemotaxonomic, phylogenetic, and phenotypic evidence, proposed names of the novel strains are Neorhizobium fuzhouense sp. nov. (type strain SGZ-381T=GDMCC1.4207T=JCM 36770T), Neotabrizicola paludis sp. nov. (type strain sgz301269T=MCCC 1K09178T=KCTC 8856T).

Bacterial Typing Techniques↗

A modified pulsed-field gel electrophoresis (PFGE) protocol for subtyping previously non-PFGE typeable isolates of Clostridium difficile polymerase chain reaction ribotype 001.

A modified pulsed-field gel electrophoresis (PFGE) protocol was developed and applied to 50 isolates of the UK epidemic strain of Clostridium difficile, polymerase chain reaction (PCR) ribotype 001, to develop a PFGE-based subtyping scheme. This protocol overcame the inherent DNA degradation problems associated with typing this strain of C. difficile by this method, and whole genomic digestion with SmaI restriction enzyme yielded seven distinct and reproducible PFGE banding patterns. Modified PFGE is an appropriate method for subtyping C. difficile PCR ribotype 001 that could be used to improve epidemiological investigations.

Bacterial Typing Techniques↗

Direct identification of slowly growing Mycobacterium species by analysis of the intergenic 16S-23S rDNA spacer region (ISR) using a GelCompar II database containing sequence based optimization for restriction fragment site polymorphisms (RFLPs) for 12 enzymes.

To obtain Mycobacterium species identification directly from clinical specimens and cultures, the 16S-23S rDNA spacer (ISR) was amplified using previously published primers that detect all Mycobacterium species. The restriction enzyme that could potentially produce the most restriction fragment length polymorphisms (RFLPs) was determined from all available ISR DNA sequences in GenBank to produce a novel data set of RFLPs for 31 slowly growing Mycobacterium species. Subsequently a GelCompar II database was constructed from RFLPs for 10 enzymes that have been used in the literature to differentiate slowly growing Mycobacterium species. The combination of Sau96I and HaeIII were the best choice of enzymes for differentiating clinically relevant slowly growing Mycobacterium species. A total of 392 specimens were studied by PCR with 195 negative and 197 positive specimens. The ISR-PCR product was digested with HaeIII (previously reported) and Sau96I (new to this study) to obtain a Mycobacterium species identification based on the ISR-RFLPs. The species identification obtained by ISR-RFLP was confirmed by DNA sequencing (isolate numbers are shown in parentheses) for M. avium (3), M. intracellulare (4), M. avium complex (1), M. gordonae (2) and M. tuberculosis (1). The total number of specimens (99) identified were from culture (67), Bactectrade mark 12B culture bottles (11), EDTA blood (3), directly from smear positive specimens (13), tissue (4) and urine (1). Direct species identification was obtained from all 13/13 smear positive specimens. The total number of specimens (99) were identified as M. tuberculosis (41), M. avium (7), M. avium complex (11), M. intracellulare MIN-A (20), M. flavescens (2), M. fortuitum (10), M. gordonae (4), M. shimoidei (1), M. ulcerans (1) and M. chelonae (2). This method reduces the time taken for Mycobacterium species identification from 8-10 weeks for culture and biochemical identification; to 4-6 weeks for culture and ISR-RFLP; to 2 days for smear-positive specimens by ISR-RFLP. The precise 2 day identification obtained may provide significant advantages in clinical management.

Bacterial Typing Techniques↗