Mismatch amplification mutation assay-polymerase chain reaction: A method of detecting fluoroquinolone resistance mechanism in bacterial pathogens

Indian J Med Res. 2019 Feb;149(2):146-150. doi: 10.4103/ijmr.IJMR_2091_17.

Abstract

The mismatch amplification assay is a modified version of polymerase chain reaction (PCR) that permits specific amplification of gene sequences with single base pair change. The basis of the technique relies on primer designing. The single nucleotide mismatch at the 3' proximity of the reverse oligonucleotide primer makes Taq DNA polymerase unable to carry out extension process. Thus, the primers produce a PCR fragment in the wild type, whereas it is not possible to yield a product with a mutation at the site covered by the mismatch positions on the mismatch amplification mutation assay (MAMA) primer from any gene. The technique offers several advantages over other molecular methods, such as PCR-restriction fragment length polymorphism (RFLP) and oligonucleotide hybridization, which is routinely used in the detection of known point mutations. Since multiple point mutations in the quinolone resistance determining region play a major role in high-level fluoroquinolone resistance in Gram-negative bacteria, the MAMA-PCR technique is preferred for detecting these mutations over PCR-RFLP and sequencing technology.

Keywords: Fluoroquinolone resistance; mismatch amplification mutation assay; polymerase chain reaction; quinolone resistance determining region mutations.

Publication types

  • Review

MeSH terms

  • Base Sequence
  • DNA Mismatch Repair / genetics*
  • Drug Resistance, Bacterial / genetics*
  • Fluoroquinolones / adverse effects*
  • Fluoroquinolones / therapeutic use
  • Gram-Negative Bacteria / drug effects
  • Gram-Negative Bacteria / genetics*
  • Gram-Negative Bacteria / pathogenicity
  • Humans
  • Nucleic Acid Hybridization / methods
  • Oligonucleotides / genetics
  • Point Mutation / genetics
  • Polymerase Chain Reaction / methods
  • Polymorphism, Restriction Fragment Length / genetics

Substances

  • Fluoroquinolones
  • Oligonucleotides