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Primer-template interactions during DNA amplification fingerprinting with single arbitrary oligonucleotides

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Summary

DNA amplification fingerprinting (DAF) is the enzymatic amplification of arbitrary stretches of DNA which is directed by very short oligonucleotide primers of arbitrary sequence to generate complex but characteristic DNA fingerprints. To determine the contribution of primer sequence and length to the fingerprint pattern and the effect of primer-template mismatches, DNA was amplified from several sources using sequence-related primers. Primers of varying length, constructed by removing nucleotides from the 5′ terminus, produced unique patterns only when primers were 8 nucleotides or fewer in length. Larger primers produced either identical or related fingerprints, depending on the sequence. Single base changes within this first 8-nucleotide region of the primer significantly altered the spectrum of amplification products, especially at the 3′ terminus. Increasing annealing temperatures from 15° to 70° C during amplification did not shift the boundary of the 8-nucleotide region, but reduced the amplification ability of shorter primers. Our observations define a 3′-terminal oligonucleotide domain that is at least 8 bases in length and largely conditions amplification, but that is modulated by sequences beyond it. Our results indicate that only a fraction of template annealing sites are efficiently amplified during DAF. A model is proposed in which a single primer preferentially amplifies certain products due to competition for annealing sites between primer and terminal hairpin loop structures of the template.

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References

  • Bassam BJ, Caetano-Anollés G, Gresshoff PM (1991) Fast and sensitive silver staining of DNA in polyacrylamide gels. Anal Biochem 80:81–84

    Google Scholar 

  • Bassam BJ, Caetano-Anollés G, Gresshoff PM (1992a) DNA amplification fingerprinting and its potential for genome analysis. In: Gresshoff PM (ed) Current topics in plant molecular biology: plant biotechnology and development. CRC Press, Boca Raton, pp 1–9

    Google Scholar 

  • Bassam BJ, Caetano-Anollés G, Gresshoff PM (1992b) DNA amplification fingerprinting of bacteria. Appl Microbiol Biotech in press

  • Burge C, Campbell AM, Karlin S (1992) Over- and under- representation of short oligonucleotides in DNA sequences. Proc Natl Acad Sci USA 89:1358–1362

    Google Scholar 

  • Caetano-Anollés G, Bassam BJ, Gresshoff PM (1991a) DNA amplification fingerprinting: a strategy for genome analysis. Plant Mol Biol Rep 9:292–305

    Google Scholar 

  • Caetano-Anollés G, Bassam BJ, Gresshoff PM (1991b) DNA amplification fingerprinting using very short arbitrary oligonucleotide primers. Bio/Technology 9:553–557

    Google Scholar 

  • Ehlen T, Dubeau L (1989) Detection of RAS point mutations by polymerase chain reaction using primer mutation-specific, inosine-containing oligonucleotide primers. Biochem Biophys Res Commun 160:441–447

    Google Scholar 

  • Erlich HA, Gelfand D, Sninsky JJ (1991) Recent advances in the polymerase chain reaction. Science 252:1643–1651

    Google Scholar 

  • Kwok S, Kellogg DE, McKinney N, Spasic D, Goda L, Levenson C, Sninsky JJ (1990) Effects of primer-template mismatches on the polymerase chain reaction: human immunodeficiency virus type 1 model studies. Nucleic Acids Res 18:999–1005

    Google Scholar 

  • Mullis KB (1991) The polymerase chain reaction in an anemic mode: how to avoid cold oligodeoxyribonuclear fusion. PCR Method Appl 1:1–4

    Google Scholar 

  • Mullis KB, Faloona FA (1987) Specific synthesis of DNA in vitro via a polymerase catalyzed reaction. Methods Enzymol 255:335–350

    Google Scholar 

  • Mullis KB, Faloona FA, Scharf S, Saiki R, Horn G, Erlich H (1986) Specific enzymatic amplification of DNA in vitro: the polymerase chain reaction. Cold Spring Harbor Symp Quant Biol 51:263–273

    Google Scholar 

  • Newton CR, Graham A, Heptinstall LE, Powell SJ, Summers C, Kalsheker N, Smith JC, Markham AF (1989) Analysis of any point mutation in DNA: the amplification refractory mutation system (ARMS). Nucleic Acids Res 17:2503–2516

    Google Scholar 

  • Nichols WC, Liepnieks JJ, McKusick VA, Benson MD (1989) Direct sequencing of the gene for Maryland/German familial amyloidic polyneuropathy type II and genotyping by allele-specific enzymatic amplification. Genomics 5:535–540

    Google Scholar 

  • Okayama H, Curiel DT, Brantly ML, Holmes MD, Crystal RG (1989) Rapid, nonradioactive detection of mutations in the human genome by allele-specific amplification. J Lab Clin Med 114:105–113

    Google Scholar 

  • Parker JD, Rabinovitch PS, Burmer G (1991) Targeted gene walking polymerase chain reaction. Nucleic Acids Res 19:3055–3060

    Google Scholar 

  • Petruska J, Goodman MF, Boosalis MS, Somers LC, Cheong C, Tinoco I Jr (1988) Comparison between DNA melting thermodynamics and DNA polymerase fidelity. Proc Natl Acad Sci USA 85:6252–6256

    Google Scholar 

  • Rychlik W, Spencer WJ, Rhoads RE (1990) Optimization of the annealing temperature for DNA amplification in vitro. Nucleic Acids Res 18:6409–6412

    Google Scholar 

  • Sommer R, Tautz D (1989) Minimal homology requirements for PCR primers. Nucleic Acids Res 17:6749

    Google Scholar 

  • Southern EM (1975) Detection of specific sequences among DNA fragments detected by gel electrophoresis. J Mol Biol 98:503–517

    Google Scholar 

  • Volinia S, Gambari R, Bernardi F, Barrai I (1989) The frequency of oligonucleotides in mammalian genic regions. Comp Appl Biosci 5:33–40

    Google Scholar 

  • Welsh J, McClelland M (1990) Fingerprinting genomes using PCR with arbitrary primers. Nucleic Acids Res 18:7213–7218

    Google Scholar 

  • Williams JGK, Kubelik AR, Livak KJ, Rafalski JA, Tingey SV (1990) DNA polymorphisms amplified by arbitrary primers are useful as genetic markers. Nucleic Acids Res 18:6531–6535

    Google Scholar 

  • Wu DY, Ugozzoli L, Pol BK, Wallace RB (1989) Allele-specific enzymatic amplification of β-globin genomic DNA for diagnosis of sickle cell anemia. Proc Natl Acad Sci USA 86:2759–2760

    Google Scholar 

  • Xodo LE, Manzini G, Quadrifoglio F, van der Marel G, van Boom J (1991) DNA hairpin loops in solution. Correlation between primary structure, thermostability and reactivity with single-strand-specific nuclease from mung bean. Nucleic Acids Res 19:1505–1511

    Google Scholar 

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Communicated by J. Schell

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Caetano-Anollés, G., Bassam, B.J. & Gresshoff, P.M. Primer-template interactions during DNA amplification fingerprinting with single arbitrary oligonucleotides. Molec. Gen. Genet. 235, 157–165 (1992). https://doi.org/10.1007/BF00279356

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  • DOI: https://doi.org/10.1007/BF00279356

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