Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 7 de 7
Filter
Add more filters










Database
Language
Publication year range
1.
Annu Rev Anal Chem (Palo Alto Calif) ; 17(1): 459-474, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38360553

ABSTRACT

Nucleic acid testing is the cornerstone of modern molecular diagnostics. This review describes the current status and future directions of molecular diagnostics, focusing on four major techniques: polymerase chain reaction (PCR), next-generation sequencing (NGS), isothermal amplification methods such as recombinase polymerase amplification (RPA) and loop-mediated isothermal amplification (LAMP), and clustered regularly interspaced short palindromic repeats (CRISPR)-based detection methods. We explore the advantages and limitations of each technique, describe how each overlaps with or complements other techniques, and examine current clinical offerings. This review provides a broad perspective into the landscape of molecular diagnostics and highlights potential future directions in this rapidly evolving field.


Subject(s)
High-Throughput Nucleotide Sequencing , Molecular Diagnostic Techniques , Nucleic Acid Amplification Techniques , Humans , Polymerase Chain Reaction , Pathology, Molecular
2.
PLoS Biol ; 18(3): e3000651, 2020 03.
Article in English | MEDLINE | ID: mdl-32191696

ABSTRACT

Rapid antibiotic susceptibility testing (AST) for Neisseria gonorrhoeae (Ng) is critically needed to counter widespread antibiotic resistance. Detection of nucleic acids in genotypic AST can be rapid, but it has not been successful for ß-lactams (the largest antibiotic class used to treat Ng). Rapid phenotypic AST for Ng is challenged by the pathogen's slow doubling time and the lack of methods to quickly quantify the pathogen's response to ß-lactams. Here, we asked two questions: (1) Is it possible to use nucleic acid quantification to measure the ß-lactam susceptibility phenotype of Ng very rapidly, using antibiotic-exposure times much shorter than the 1- to 2-h doubling time of Ng? (2) Would such short-term antibiotic exposures predict the antibiotic resistance profile of Ng measured by plate growth assays over multiple days? To answer these questions, we devised an innovative approach for performing a rapid phenotypic AST that measures DNA accessibility to exogenous nucleases after exposure to ß-lactams (termed nuclease-accessibility AST [nuc-aAST]). We showed that DNA in antibiotic-susceptible cells has increased accessibility upon exposure to ß-lactams and that a judiciously chosen surfactant permeabilized the outer membrane and enhanced this effect. We tested penicillin, cefixime, and ceftriaxone and found good agreement between the results of the nuc-aAST after 15-30 min of antibiotic exposure and the results of the gold-standard culture-based AST measured over days. These results provide a new pathway toward developing a critically needed phenotypic AST for Ng and additional global-health threats.


Subject(s)
Anti-Bacterial Agents/pharmacology , DNA, Bacterial/metabolism , Deoxyribonuclease I/metabolism , Neisseria gonorrhoeae/drug effects , Surface-Active Agents/pharmacology , beta-Lactams/pharmacology , Cell Membrane Permeability/drug effects , Drug Resistance, Bacterial/drug effects , Gonorrhea/microbiology , Gonorrhea/urine , Humans , Microbial Sensitivity Tests , Neisseria gonorrhoeae/growth & development , Neisseria gonorrhoeae/isolation & purification , Phenotype , Reproducibility of Results , Time Factors , Workflow
3.
Nucleic Acids Res ; 48(7): e42, 2020 04 17.
Article in English | MEDLINE | ID: mdl-32103255

ABSTRACT

Isothermal amplification assays, such as loop-mediated isothermal amplification (LAMP), show great utility for the development of rapid diagnostics for infectious diseases because they have high sensitivity, pathogen-specificity and potential for implementation at the point of care. However, elimination of non-specific amplification remains a key challenge for the optimization of LAMP assays. Here, using chlamydia DNA as a clinically relevant target and high-throughput sequencing as an analytical tool, we investigate a potential mechanism of non-specific amplification. We then develop a real-time digital LAMP (dLAMP) with high-resolution melting temperature (HRM) analysis and use this single-molecule approach to analyze approximately 1.2 million amplification events. We show that single-molecule HRM provides insight into specific and non-specific amplification in LAMP that are difficult to deduce from bulk measurements. We use real-time dLAMP with HRM to evaluate differences between polymerase enzymes, the impact of assay parameters (e.g. time, rate or florescence intensity), and the effect background human DNA. By differentiating true and false positives, HRM enables determination of the optimal assay and analysis parameters that leads to the lowest limit of detection (LOD) in a digital isothermal amplification assay.


Subject(s)
Molecular Diagnostic Techniques , Nucleic Acid Amplification Techniques , Chlamydia trachomatis/genetics , DNA , Hot Temperature , Humans , Kinetics , Limit of Detection
4.
Microbiome ; 8(1): 19, 2020 02 12.
Article in English | MEDLINE | ID: mdl-32051033

ABSTRACT

BACKGROUND: The upper gastrointestinal tract plays a prominent role in human physiology as the primary site for enzymatic digestion and nutrient absorption, immune sampling, and drug uptake. Alterations to the small intestine microbiome have been implicated in various human diseases, such as non-alcoholic steatohepatitis and inflammatory bowel conditions. Yet, the physiological and functional roles of the small intestine microbiota in humans remain poorly characterized because of the complexities associated with its sampling. Rodent models are used extensively in microbiome research and enable the spatial, temporal, compositional, and functional interrogation of the gastrointestinal microbiota and its effects on the host physiology and disease phenotype. Classical, culture-based studies have documented that fecal microbial self-reinoculation (via coprophagy) affects the composition and abundance of microbes in the murine proximal gastrointestinal tract. This pervasive self-reinoculation behavior could be a particularly relevant study factor when investigating small intestine microbiota. Modern microbiome studies either do not take self-reinoculation into account, or assume that approaches such as single housing mice or housing on wire mesh floors eliminate it. These assumptions have not been rigorously tested with modern tools. Here, we used quantitative 16S rRNA gene amplicon sequencing, quantitative microbial functional gene content inference, and metabolomic analyses of bile acids to evaluate the effects of self-reinoculation on microbial loads, composition, and function in the murine upper gastrointestinal tract. RESULTS: In coprophagic mice, continuous self-exposure to the fecal flora had substantial quantitative and qualitative effects on the upper gastrointestinal microbiome. These differences in microbial abundance and community composition were associated with an altered profile of the small intestine bile acid pool, and, importantly, could not be inferred from analyzing large intestine or stool samples. Overall, the patterns observed in the small intestine of non-coprophagic mice (reduced total microbial load, low abundance of anaerobic microbiota, and bile acids predominantly in the conjugated form) resemble those typically seen in the human small intestine. CONCLUSIONS: Future studies need to take self-reinoculation into account when using mouse models to evaluate gastrointestinal microbial colonization and function in relation to xenobiotic transformation and pharmacokinetics or in the context of physiological states and diseases linked to small intestine microbiome and to small intestine dysbiosis. Video abstract.


Subject(s)
Bile Acids and Salts/metabolism , Coprophagia , Feces/microbiology , Gastrointestinal Microbiome , Intestine, Small/microbiology , RNA, Ribosomal, 16S/genetics , Animals , Bacterial Load , Dysbiosis , Humans , Male , Metabolomics/methods , Mice , Mice, Inbred C57BL , Models, Animal , Sequence Analysis, DNA , Specific Pathogen-Free Organisms
5.
Elife ; 82019 01 22.
Article in English | MEDLINE | ID: mdl-30666958

ABSTRACT

The lumen of the small intestine (SI) is filled with particulates: microbes, therapeutic particles, and food granules. The structure of this particulate suspension could impact uptake of drugs and nutrients and the function of microorganisms; however, little is understood about how this suspension is re-structured as it transits the gut. Here, we demonstrate that particles spontaneously aggregate in SI luminal fluid ex vivo. We find that mucins and immunoglobulins are not required for aggregation. Instead, aggregation can be controlled using polymers from dietary fiber in a manner that is qualitatively consistent with polymer-induced depletion interactions, which do not require specific chemical interactions. Furthermore, we find that aggregation is tunable; by feeding mice dietary fibers of different molecular weights, we can control aggregation in SI luminal fluid. This work suggests that the molecular weight and concentration of dietary polymers play an underappreciated role in shaping the physicochemical environment of the gut. Editorial note: This article has been through an editorial process in which the authors decide how to respond to the issues raised during peer review. The Reviewing Editor's assessment is that all the issues have been addressed (see decision letter).


Subject(s)
Dietary Fiber , Intestine, Small/physiology , Polymers/chemistry , Adsorption , Animals , Female , Hydrogen-Ion Concentration , Immunoglobulins/chemistry , Intestine, Small/pathology , Magnetic Resonance Spectroscopy , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Molecular Weight , Pectins/chemistry , Polyethylene Glycols/chemistry , Shear Strength
6.
Anal Chem ; 91(1): 1034-1042, 2019 01 02.
Article in English | MEDLINE | ID: mdl-30565936

ABSTRACT

Real-time, isothermal, digital nucleic acid amplification is emerging as an attractive approach for a multitude of applications including diagnostics, mechanistic studies, and assay optimization. Unfortunately, there is no commercially available and affordable real-time, digital instrument validated for isothermal amplification; thus, most researchers have not been able to apply digital, real-time approaches to isothermal amplification. Here, we generate an approach to real-time digital loop-mediated isothermal amplification (LAMP) using commercially available microfluidic chips and reagents and open-source components. We demonstrate this approach by testing variables that influence LAMP reaction speed and the probability of detection. By analyzing the interplay of amplification efficiency, background, and speed of amplification, this real-time digital method enabled us to test enzymatic performance over a range of temperatures, generating high-precision kinetic and end-point measurements. We were able to identify the unique optimal temperature for two polymerase enzymes while accounting for amplification efficiency, nonspecific background, and time to threshold. We validated this digital LAMP assay and pipeline by performing a phenotypic antibiotic susceptibility test on 17 archived clinical urine samples from patients diagnosed with urinary tract infections. We provide all the necessary workflows to perform digital LAMP using standard laboratory equipment and commercially available materials. This real-time digital approach will be useful to others in the future to understand the fundamentals of isothermal chemistries, including which components determine amplification fate, reaction speed, and enzymatic performance. Researchers can also adapt this pipeline, which uses only standard equipment and commercial components, to quickly study and optimize assays using precise, real-time digital quantification, accelerating development of critically needed diagnostics.


Subject(s)
Anti-Bacterial Agents/urine , Microfluidic Analytical Techniques , Nucleic Acid Amplification Techniques , Temperature , DNA, Bacterial/isolation & purification , DNA, Bacterial/urine , Diagnostic Tests, Routine , Escherichia coli/isolation & purification , Humans , Kinetics , Microfluidic Analytical Techniques/instrumentation , Nucleic Acid Amplification Techniques/instrumentation , Phenotype , Sensitivity and Specificity , Time Factors
7.
J Am Chem Soc ; 132(12): 4141-51, 2010 Mar 31.
Article in English | MEDLINE | ID: mdl-20201573

ABSTRACT

Six new 5-position modified dUTP derivatives connected by a unique amide linkage were synthesized and tested for compatibility with the enzymatic steps of in vitro selection. Six commercially available DNA polymerases were tested for their ability to efficiently incorporate each of these dUTP derivatives during PCR. It was not possible to perform PCR under standard conditions using any of the modified dUTP derivatives studied. In contrast, primer extension reactions of random templates, as well as defined sequence templates, were successful. KOD XL and D. Vent DNA polymerases were found to be the most efficient at synthesizing full-length primer extension product, with all of the dUTP derivatives tested giving yields similar to those obtained with TTP. Several of these modified dUTPs were then used in an in vitro selection experiment comparing the use of modified dUTP derivatives with TTP for selecting aptamers to a protein target (necrosis factor receptor superfamily member 9, TNFRSF9) that had previously been found to be refractory to in vitro selection using DNA. Remarkably, selections employing modified DNA libraries resulted in the first successful isolation of DNA aptamers able to bind TNFRSF9 with high affinity.


Subject(s)
Aptamers, Nucleotide/chemistry , Tumor Necrosis Factor Receptor Superfamily, Member 9/chemistry , Aptamers, Nucleotide/genetics , Aptamers, Nucleotide/metabolism , Base Sequence , Gene Library , Humans , Molecular Sequence Data , Molecular Structure , Polymerase Chain Reaction , Tumor Necrosis Factor Receptor Superfamily, Member 9/genetics , Tumor Necrosis Factor Receptor Superfamily, Member 9/metabolism
SELECTION OF CITATIONS
SEARCH DETAIL
...