37 Types of PCR with Definition, Principle, and Uses (original) (raw)

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Types of PCR (Polymerase chain reaction)- definition and uses

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  1. Amplified fragment length polymorphism (AFLP) PCR
  2. Allele-specific PCR
  3. Alu PCR
  4. Assembly PCR
  5. Asymmetric PCR
  6. COLD PCR
  7. Colony PCR
  8. Conventional PCR
  9. Digital PCR (dPCR)
  10. Fast-cycling PCR
  11. High-fidelity PCR
  12. High-Resolution Melt (HRM) PCR
  13. Hot-start PCR
  14. In situ PCR
  15. Intersequence-specific (ISSR) PCR
  16. Inverse PCR
  17. LATE (linear after the exponential) PCR
  18. Ligation-mediated PCR
  19. Long-range PCR
  20. Methylation-specific PCR (MSP)
  21. Miniprimer PCR
  22. Multiplex-PCR
  23. Nanoparticle-Assisted PCR (nanoPCR)
  24. Nested PCR
  25. Overlap extension PCR
  26. Real-Time PCR (quantitative PCR or qPCR)
  27. Repetitive sequence-based PCR
  28. Reverse-Transcriptase (RT-PCR)
  29. Reverse-Transcriptase Real-Time PCR (RT-qPCR)
  30. RNase H-dependent PCR (rhPCR)
  31. Single cell PCR
  32. Single Specific Primer-PCR (SSP-PCR)
  33. Solid phase PCR
  34. Suicide PCR
  35. Thermal asymmetric interlaced PCR (TAIL-PCR)
  36. Touch down (TD) PCR
  37. Variable Number of Tandem Repeats (VNTR) PCR

1. Amplified fragment length polymorphism (AFLP) PCR

2. Allele-specific PCR

3. Alu PCR

4. Assembly PCR

5. Asymmetric PCR

6. COLD PCR

7. Colony PCR

8. Conventional PCR

9. Digital PCR (dPCR)

10. Fast cycling PCR

11. High Fidelity PCR

12. High-Resolution Melt (HRM) PCR

13. Hot start PCR

14. In-situ PCR

15. Intersequence specific (ISS) PCR

16. Inverse PCR

17. LATE (Linear-After-The-Exponential) PCR

18. Ligation mediated PCR

19. Long-Range PCR

20. Methylation-specific PCR (MSP)

21. Miniprimer PCR

22. Multiplex PCR

23. Nanoparticle-Assisted PCR (nanoPCR)

24. Nested PCR

25. Overlap extension PCR (OE-PCR)

26. Real-Time PCR (Quantitative PCR (qPCR))

27. Repetitive sequence-based PCR

28. Reverse Transcriptase PCR (RT-PCR)

29. Reverse-Transcriptase Real-Time PCR (RT-qPCR)

30. RNase H-dependent PCR

31. Single Specific Primer PCR

32. Single Specific Primer-PCR (SSP-PCR)

33. Solid Phase PCR

34. Suicide PCR

35. Thermal asymmetric interlaced PCR (TAIL-PCR)

36. Touch down PCR

37. Variable Number of Tandem Repeats (VNTR) PCR

References and Sources

  1. Paun, O., & Schönswetter, P. (2012). Amplified fragment length polymorphism: an invaluable fingerprinting technique for genomic, transcriptomic, and epigenetic studies. Methods in molecular biology (Clifton, N.J.), 862, 75–87. https://doi.org/10.1007/978-1-61779-609-8\_7
  2. Cardelli, Maurizio. (2011). Alu PCR. Methods in molecular biology (Clifton, N.J.). 687. 221-9. 10.1007/978-1-60761-944-4_15.
  3. Rydzanicz, R., Zhao, X. S., & Johnson, P. E. (2005). Assembly PCR oligo maker: a tool for designing oligodeoxynucleotides for constructing long DNA molecules for RNA production. Nucleic acids research, 33(Web Server issue), W521–W525. https://doi.org/10.1093/nar/gki380
  4. Zuo Z., Jabbar K.J. (2016) COLD-PCR: Applications and Advantages. In: Luthra R., Singh R., Patel K. (eds) Clinical Applications of PCR. Methods in Molecular Biology, vol 1392. Humana Press, New York, NY
  5. Milbury, C. A., Li, J., Liu, P., & Makrigiorgos, G. M. (2011). COLD-PCR: improving the sensitivity of molecular diagnostics assays. Expert review of molecular diagnostics, 11(2), 159–169. https://doi.org/10.1586/erm.10.115
  6. Jessica Spitzer, Markus Landthaler, Thomas Tuschl, Chapter Eight – Rapid Creation of Stable Mammalian Cell Lines for Regulated Expression of Proteins Using the Gateway® Recombination Cloning Technology and Flp-In T-REx® Lines, Methods in Enzymology, Academic Press, Volume 529, 2013, Pages 99-124,ISSN 0076-6879,
  7. Karim Kadri (June 7th 2019). Polymerase Chain Reaction (PCR): Principle and Applications, Synthetic Biology – New Interdisciplinary Science, Madan L. Nagpal, Oana-Maria Boldura, Cornel Baltă and Shymaa Enany, IntechOpen, DOI: 10.5772/intechopen.86491. Available from: https://www.intechopen.com/books/synthetic-biology-new-interdisciplinary-science/polymerase-chain-reaction-pcr-principle-and-applications
  8. Valones, M. A., Guimarães, R. L., Brandão, L. A., de Souza, P. R., de Albuquerque Tavares Carvalho, A., & Crovela, S. (2009). Principles and applications of polymerase chain reaction in medical diagnostic fields: a review. Brazilian journal of microbiology : [publication of the Brazilian Society for Microbiology], 40(1), 1–11. https://doi.org/10.1590/S1517-83822009000100001
  9. Applications of Digital PCR for Clinical Microbiology Jane Kuypers, Keith R. Jerome Journal of Clinical Microbiology May 2017, 55 (6) 1621-1628; DOI: 10.1128/JCM.00211-17
  10. Elnifro, E. M., Ashshi, A. M., Cooper, R. J., & Klapper, P. E. (2000). Multiplex PCR: optimization and application in diagnostic virology. Clinical microbiology reviews, 13(4), 559–570. https://doi.org/10.1128/cmr.13.4.559-570.2000
  11. Healy, M., Huong, J., Bittner, T., Lising, M., Frye, S., Raza, S., Schrock, R., Manry, J., Renwick, A., Nieto, R., Woods, C., Versalovic, J., & Lupski, J. R. (2005). Microbial DNA typing by automated repetitive-sequence-based PCR. Journal of clinical microbiology, 43(1), 199–207. https://doi.org/10.1128/JCM.43.1.199-207.2005
  12. Versalovic J., de Bruijn F.J., Lupski J.R. (1998) Repetitive Sequence-based PCR (rep-PCR) DNA Fingerprinting of Bacterial Genomes. In: de Bruijn F.J., Lupski J.R., Weinstock G.M. (eds) Bacterial Genomes. Springer, Boston, MA
  13. Chin, W. H., Sun, Y., Høgberg, J., Hung, T. Q., Wolff, A., & Bang, D. D. (2017). Solid-phase PCR for rapid multiplex detection of Salmonella spp. at the subspecies level, with amplification efficiency comparable to conventional PCR. Analytical and Bioanalytical Chemistry, 409(10), 2715-2726. https://doi.org/10.1007/s00216-017-0216-y
  14. Mercier, J. F., Slater, G. W., & Mayer, P. (2003). Solid phase DNA amplification: a simple Monte Carlo Lattice model. Biophysical journal, 85(4), 2075–2086. https://doi.org/10.1016/S0006-3495(03)74636-0
  15. Patil, Abhinandan & Bishi, Sujit & Misal, Nitin. (2014). TAIL-PCR (Thermal Asymmetric Interlaced PCR). Agrobios Newsletter. XIII. 21.
  16. Fu-Ming SANG, Xin LI, Jia LIU, Development of Nano-Polymerase Chain Reaction and Its Application, Chinese Journal of Analytical Chemistry, Volume 45, Issue 11, 2017, Pages 1745-1753, ISSN 1872-2040, https://doi.org/10.1016/S1872-2040(17)61051-X. (http://www.sciencedirect.com/science/article/pii/S187220401761051X)
  17. Luis Ugozzoli, R.Bruce Wallace, Application of an allele-specific polymerase chain reaction to the direct determination of ABO blood group genotypes, Genomics, Volume 12, Issue 4, 1992, Pages 670-674, ISSN 0888-7543, https://doi.org/10.1016/0888-7543(92)90292-Z. (http://www.sciencedirect.com/science/article/pii/088875439290292Z)
  18. https://www.researchgate.net/post/What\_is\_touch\_down\_PCR\_Whats\_its\_significance\_and\_how\_to\_interpret\_the\_results
  19. https://geneticeducation.co.in/what-is-arms-pcr-or-allele-specific-pcr/#Importance\_of\_ARMS-PCR\_in\_the\_diagnosis\_of\_genetic\_disease
  20. https://openwetware.org/wiki/Assembly\_pcr
  21. https://old.abmgood.com/marketing/knowledge\_base/polymerase\_chain\_variation\_system.php#asymmetricpcr
  22. https://geneticeducation.co.in/what-is-colony-pcr/#What\_is\_Colony\_PCR
  23. https://bitesizebio.com/19238/what-is-digital-pcr/
  24. https://www.sciencedirect.com/topics/medicine-and-dentistry/multiplex-polymerase-chain-reaction
  25. https://bitesizebio.com/33512/introducing-nanoparticle-pcr/
  26. https://geneticeducation.co.in/what-is-nested-pcr/
  27. https://www.sciencedirect.com/topics/agricultural-and-biological-sciences/reverse-transcription-polymerase-chain-reaction
  28. https://www.gene-quantification.de/hrm-beginners-guide.pdf

About Author

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Anupama Sapkota

Anupama Sapkota has a bachelor’s degree (B.Sc.) in Microbiology from St. Xavier's College, Kathmandu, Nepal. She is particularly interested in studies regarding antibiotic resistance with a focus on drug discovery.