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1.
Talanta ; 260: 124645, 2023 Aug 01.
Article in English | MEDLINE | ID: covidwho-2309092

ABSTRACT

Nucleic acid amplification techniques have always been one of the hot spots of research, especially in the outbreak of COVID-19. From the initial polymerase chain reaction (PCR) to the current popular isothermal amplification, each new amplification techniques provides new ideas and methods for nucleic acid detection. However, limited by thermostable DNA polymerase and expensive thermal cycler, PCR is difficult to achieve point of care testing (POCT). Although isothermal amplification techniques overcome the defects of temperature control, single isothermal amplification is also limited by false positives, nucleic acid sequence compatibility, and signal amplification capability to some extent. Fortunately, efforts to integrating different enzymes or amplification techniques that enable to achieve intercatalyst communication and cascaded biotransformations may overcome the corner of single isothermal amplification. In this review, we systematically summarized the design fundamentals, signal generation, evolution, and application of cascade amplification. More importantly, the challenges and trends of cascade amplification were discussed in depth.


Subject(s)
COVID-19 , Nucleic Acids , Humans , COVID-19/diagnosis , Nucleic Acid Amplification Techniques/methods , Polymerase Chain Reaction , DNA-Directed DNA Polymerase , Nucleic Acids/genetics , Nucleic Acids/analysis
2.
Int J Mol Sci ; 23(14)2022 Jul 19.
Article in English | MEDLINE | ID: covidwho-1964012

ABSTRACT

We present a structural and functional analysis of the DNA polymerase of thermophilic Thermus thermophilus MAT72 phage vB_Tt72. The enzyme shows low sequence identity (<30%) to the members of the type-A family of DNA polymerases, except for two yet uncharacterized DNA polymerases of T. thermophilus phages: φYS40 (91%) and φTMA (90%). The Tt72 polA gene does not complement the Escherichia colipolA- mutant in replicating polA-dependent plasmid replicons. It encodes a 703-aa protein with a predicted molecular weight of 80,490 and an isoelectric point of 5.49. The enzyme contains a nucleotidyltransferase domain and a 3'-5' exonuclease domain that is engaged in proofreading. Recombinant enzyme with His-tag at the N-terminus was overproduced in E. coli, subsequently purified by immobilized metal affinity chromatography, and biochemically characterized. The enzyme exists in solution in monomeric form and shows optimum activity at pH 8.5, 25 mM KCl, and 0.5 mM Mg2+. Site-directed analysis proved that highly-conserved residues D15, E17, D78, D180, and D184 in 3'-5' exonuclease and D384 and D615 in the nucleotidyltransferase domain are critical for the enzyme's activity. Despite the source of origin, the Tt72 DNA polymerase has not proven to be highly thermoresistant, with a temperature optimum at 55 °C. Above 60 °C, the rapid loss of function follows with no activity > 75 °C. However, during heat treatment (10 min at 75 °C), trehalose, trimethylamine N-oxide, and betaine protected the enzyme against thermal inactivation. A midpoint of thermal denaturation at Tm = 74.6 °C (ΔHcal = 2.05 × 104 cal mol-1) and circular dichroism spectra > 60 °C indicate the enzyme's moderate thermal stability.


Subject(s)
Bacteriophages , Thermus thermophilus , Amino Acid Sequence , Bacteriophages/metabolism , DNA-Directed DNA Polymerase/metabolism , Enzyme Stability , Escherichia coli/genetics , Escherichia coli/metabolism , Phosphodiesterase I/metabolism , Thermus thermophilus/metabolism
3.
ACS Synth Biol ; 11(4): 1488-1496, 2022 04 15.
Article in English | MEDLINE | ID: covidwho-1895568

ABSTRACT

The charge states of proteins can greatly influence their stabilities and interactions with substrates, and the addition of multiple charges (supercharging) has been shown to be a successful approach for engineering protein stability and function. The addition of a fast-folding fusion domain to the Bacillus stearothermophilus DNA polymerase improved its functionality in isothermal amplification assays, and further charge engineering of this domain has increased both protein stability and diagnostics performance. When combined with mutations that stabilize the core of the protein, the charge-engineered fusion domain leads to the ability to carry out loop-mediated isothermal amplification (LAMP) at temperatures up to 74° C or in the presence of high concentrations of urea, with detection times under 10 min. Adding both positive and negative charges to the fusion domain led to changes in the relative reverse transcriptase and DNA polymerase activities of the polymerase. Overall, the development of a modular fusion domain whose charged surface can be modified at will should prove to be of use in the engineering of other polymerases and, in general, may prove useful for protein stabilization.


Subject(s)
DNA-Directed DNA Polymerase , Nucleic Acid Amplification Techniques , DNA Replication , DNA-Directed DNA Polymerase/genetics , DNA-Directed DNA Polymerase/metabolism , Protein Engineering , RNA-Directed DNA Polymerase/metabolism , Sensitivity and Specificity
4.
PLoS One ; 16(7): e0254815, 2021.
Article in English | MEDLINE | ID: covidwho-1318322

ABSTRACT

African swine fever (ASF) is a serious contagious disease that causes fatal haemorrhagic fever in domestic and wild pigs, with high morbidity. It has caused devastating damage to the swine industry worldwide, necessitating the focus of attention on detection of the ASF pathogen, the African swine fever virus (ASFV). In order to overcome the disadvantages of conventional diagnostic methods (e.g. time-consuming, demanding and unintuitive), quick detection tools with higher sensitivity need to be explored. In this study, based on the conserved p72 gene sequence of ASFV, we combined the Cas12a-based assay with recombinase polymerase amplification (RPA) and a fluorophore-quencher (FQ)-labeled reporter assay for rapid and visible detection. Five crRNAs designed for Cas12a-based assay showed specificity with remarkable fluorescence intensity under visual inspection. Within 20 minutes, with an initial concentration of two copies of DNA, the assay can produce significant differences between experimental and negative groups, indicating the high sensitivity and rapidity of the method. Overall, the developed RPA-Cas12a-fluorescence assay provides a fast and visible tool for point-of-care ASFV detection with high sensitivity and specificity, which can be rapidly performed on-site under isothermal conditions, promising better control and prevention of ASF.


Subject(s)
African Swine Fever Virus/isolation & purification , African Swine Fever/diagnosis , Bacterial Proteins/genetics , CRISPR-Associated Proteins/genetics , Endodeoxyribonucleases/genetics , Swine Diseases/diagnosis , African Swine Fever/genetics , African Swine Fever/virology , African Swine Fever Virus/genetics , Animals , Bacterial Proteins/chemistry , CRISPR-Associated Proteins/chemistry , CRISPR-Cas Systems , DNA-Directed DNA Polymerase/chemistry , Endodeoxyribonucleases/chemistry , Molecular Diagnostic Techniques , Point-of-Care Systems , Recombinases/chemistry , Swine , Swine Diseases/genetics , Swine Diseases/pathology , Swine Diseases/virology
5.
Biosens Bioelectron ; 192: 113503, 2021 Nov 15.
Article in English | MEDLINE | ID: covidwho-1309167

ABSTRACT

The COVID-19 pandemic has unfortunately demonstrated how easily infectious diseases can spread and harm human life and society. As of writing, pandemic has now been on-going for more than one year. There is an urgent need for new nucleic acid-based methods that can be used to diagnose pathogens early, quickly, and accurately to effectively impede the spread of infections and gain control of epidemics. We developed a flap probe-based isothermal nucleic acid amplification method that is triggered by recombinant FEN1-Bst DNA polymerase, which-through enzymatic engineering-has both DNA synthesis, strand displacement and cleavage functions. This novel method offers a simpler and more specific probe-primer pair than those of other isothermal amplifications. We tested the method's ability to detect SARS-CoV-2 (both ORF1ab and N genes), rotavirus, and Chlamydia trachomatis. The limits of detection were 10 copies/µL for rotavirus, C. trachomatis, and SARS-CoV-2 N gene, and 100 copies/µL for SARS-CoV-2 ORF1ab gene. There were no cross-reactions among 11 other common pathogens with characteristics similar to those of the test target, and the method showed 100% sensitivity and 100% specificity in clinical comparisons with RT-PCR testing. In addition to real-time detection, the endpoint could be displayed under a transilluminator, which is a convenient reporting method for point-of-care test settings. Therefore, this novel nucleic acid senor has great potential for use in clinical diagnostics, epidemic prevention, and epidemic control.


Subject(s)
Biosensing Techniques , Chlamydia trachomatis/isolation & purification , Rotavirus/isolation & purification , SARS-CoV-2/isolation & purification , COVID-19 , DNA, Recombinant , DNA-Directed DNA Polymerase , Flap Endonucleases , Humans , Nucleic Acid Amplification Techniques , Pandemics , Sensitivity and Specificity
6.
Biochem Biophys Res Commun ; 567: 195-200, 2021 08 27.
Article in English | MEDLINE | ID: covidwho-1263226

ABSTRACT

Recombinase polymerase amplification (RPA) is an isothermal reaction that amplifies a target DNA sequence with a recombinase, a single-stranded DNA-binding protein (SSB), and a strand-displacing DNA polymerase. In this study, we optimized the reaction conditions of RPA to detect SARS-CoV-2 DNA and RNA using a statistical method to enhance the sensitivity. In vitro synthesized SARS-CoV-2 DNA and RNA were used as targets. After evaluating the concentration of each component, the uvsY, gp32, and ATP concentrations appeared to be rate-determining factors. In particular, the balance between the binding and dissociation of uvsX and DNA primer was precisely adjusted. Under the optimized condition, 60 copies of the target DNA were specifically detected. Detection of 60 copies of RNA was also achieved. Our results prove the fabrication flexibility of RPA reagents, leading to an expansion of the use of RPA in various fields.


Subject(s)
DNA, Viral/analysis , DNA-Directed DNA Polymerase/metabolism , Nucleic Acid Amplification Techniques/methods , Nucleic Acid Amplification Techniques/standards , RNA, Viral/analysis , Recombinases/metabolism , SARS-CoV-2/genetics , Statistics as Topic , DNA Primers/metabolism , DNA-Binding Proteins/metabolism , Membrane Proteins/metabolism , SARS-CoV-2/isolation & purification , Viral Proteins/metabolism
7.
Int J Mol Sci ; 22(11)2021 Jun 04.
Article in English | MEDLINE | ID: covidwho-1264469

ABSTRACT

Polymerase chain reaction (PCR) is the standard in nucleic acid amplification technology for infectious disease pathogen detection and has been the primary diagnostic tool employed during the global COVID-19 pandemic. Various PCR technology adaptations, typically using two-oligonucleotide dye-binding methods or three-oligonucleotide hydrolysis probe systems, enable real-time multiplex target detection or single-base specificity for the identification of single-nucleotide polymorphisms (SNPs). A small number of two-oligonucleotide PCR systems facilitating both multiplex detection and SNP identification have been reported; however, these methods often have limitations in terms of target specificity, production of variable or false-positive results, and the requirement for extensive optimisation or post-amplification analysis. This study introduces 3' Tth endonuclease cleavage PCR (3TEC-PCR), a two-oligonucleotide PCR system incorporating a modified primer/probe and a thermostable cleavage enzyme, Tth endonuclease IV, for real-time multiplex detection and SNP identification. Complete analytical specificity, low limits of detection, single-base specificity, and simultaneous multiple target detection have been demonstrated in this study using 3TEC-PCR to identify bacterial meningitis associated pathogens. This is the first report of a two-oligonucleotide, real-time multiplex PCR technology with single-base specificity using Tth endonuclease IV.


Subject(s)
DNA-Directed DNA Polymerase/metabolism , Polymerase Chain Reaction/methods , Polymorphism, Single Nucleotide , Alleles , DNA, Bacterial/genetics , DNA, Bacterial/isolation & purification , DNA, Bacterial/metabolism , Haemophilus influenzae/genetics , Humans , Meningitis, Bacterial/diagnosis , Meningitis, Bacterial/microbiology , Neisseria meningitidis/genetics , Streptococcus pneumoniae/genetics
8.
Anal Biochem ; 628: 114267, 2021 09 01.
Article in English | MEDLINE | ID: covidwho-1252363

ABSTRACT

DNA polymerases with strand-displacement activity allow to amplify nucleic acids under isothermal conditions but often lead to undesirable by-products. Here, we report the increase of specificity of isothermal amplification in the presence of poly (aspartic) acids (pAsp). We hypothesized that side reactions occur due to the binding of the phosphate backbone of synthesized DNA strands with surface amino groups of the polymerase, and weakly acidic polyelectrolytes could shield polymerase molecules from DNA and thereby inhibit nonspecific amplification. Suppression of nonspecific polymerase activity by pAsp was studied on multimerization as a model side reaction. It was found that a low concentration of pAsp (0.01%) provides successful amplification of specific DNA targets. The inhibitory effect of pAsp is due to its polymeric structure since aspartic acid did affect neither specific nor nonspecific amplification. Strongly acidic polyelectrolyte heparin does not possess the same selectivity since it suppresses any DNA synthesis. The applicability of pAsp to prevent nonspecific reactions and reliable detection of the specific target has been demonstrated on the genetic material of SARS-CoV-2 coronavirus using Loop-mediated isothermal amplification.


Subject(s)
COVID-19 Nucleic Acid Testing , COVID-19/genetics , DNA-Directed DNA Polymerase/chemistry , Molecular Diagnostic Techniques , Nucleic Acid Amplification Techniques , Peptides/chemistry , SARS-CoV-2/genetics , Humans , Polyelectrolytes/chemistry
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