Applications of nucleotides in molecular diagnostics:
Polymerase Chain Reaction (PCR): PCR is a fundamental technique that amplifies specific DNA regions. It utilizes nucleotides as substrates for DNA polymerase enzymes, which synthesize complementary DNA strands to the target sequence. By repeatedly cycling through heating, annealing, and extension steps, PCR exponentially increases the amount of target DNA, enabling its detection and analysis.
Nucleic Acid Hybridization: This technique relies on the specific base pairing between complementary nucleotide sequences. Single-stranded DNA probes, containing nucleotides complementary to the target sequence, are used to identify and bind to specific DNA or RNA molecules in a sample. The probes can be labelled with fluorescent dyes or other detectable markers, allowing visualization and quantification of the target molecules.
Sanger Sequencing: This traditional DNA sequencing method utilizes dideoxynucleotides (ddNTPs), modified nucleotides that lack a 3′-hydroxyl group essential for further phosphodiester bond formation. By incorporating ddNTPs during DNA synthesis, the chain extension terminates at specific points, revealing the sequence of the DNA strand.
Next-Generation Sequencing (NGS): NGS technologies employ sequencing-by-synthesis approaches. Nucleotides labelled with fluorescent dyes are sequentially incorporated into growing DNA strands. The detection of each incorporated nucleotide allows for the identification of the corresponding base in the target sequence. NGS offers high-throughput sequencing of entire genomes or targeted regions, aiding in genetic analysis, variant detection, and personalized medicine.
In Situ Hybridization (ISH): This technique involves hybridizing probes directly to cells or tissues fixed on slides. By employing nucleotide probes specific for a particular gene or mRNA, ISH enables the visualization of gene expression patterns within cells or tissues.
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29 总共产品
ATP, 100mM solution
C10H13N5Na3O13P3
UTP, 100mM solution
C9H12N2Na3O15P3
1-N-Me-Pseudo UTP, 100mM Solution
C10H14N2Na3O15P3
Pseudo-UTP, 100mM Solution
C9H12N2Na3O15P3
ATP, 100mM solution
C10H13N5Na3O13P3
UTP, 100mM solution
C9H12N2Na3O15P3
1-N-Me-Pseudo UTP, 100mM Solution
C10H14N2Na3O15P3
dNTP Mix, 10mM each
dNTP Mix, 25mM each
2′-O-Me-CTP, 100mM Solution
C10H18N3O14P3 (free acid)
2′-O-Me-GTP, 100mM Solution
C11H18N5O14P3 (free acid)
2′-OMe-UTP, 100mM Lithium Salt Solution
C10H17N2O15P3 (free acid)
GTP, 100mM solution
C10H13N5Na3O14P3
CTP, 100mM solution
C9H13N3Na3O14P3
dATP, 100mM Solution
C10H13N5Na3O12P3
dGTP, 100mM Solution
C10H13N5Na3O13P3
dCTP, 100mM Solution
C9H13N3Na3O13P3
dTTP, 100mM Solution
C10H14N2Na3O14P3
GTP, 100mM solution
C10H13N5Na3O14P3
CTP, 100mM solution
C9H13N3Na3O14P3
ITP, 100mM solution
C10H12N4Na3O14P3
NTP Mix, 25mM each
dATP, 100mM Solution
C10H13N5Na3O12P3
dGTP, 100mM Solution
C10H13N5Na3O13P3
dCTP, 100mM Solution
C9H13N3Na3O13P3
dTTP, 100mM Solution
C10H14N2Na3O14P3
dUTP, 100mM Solution
C9H12N2Na3O14P3
dITP 100mM Solution
C10H12N4Na3O13P3