EP0333465A2

Mutation detection by competitive oligonucleotide priming.

Abstract

The present invention relates to a process for the rapid and simple detection of mutations in DNA and differences between DNA sequences. This competitive oligonucleotide priming system can be used for the detection of any differences between DNA sequences for which a DNA sequence is known. In its basic form the invention comprises the steps of:- adding competitive oligonucleotide primers to a sample of nucleic acid or mixture of nucleic acids, wherein said competitive oligonucleotide primers include at least two primers, one being substantially complementary to the specific known sequence and at least one having a base mismatch with the specific known sequence; preferentially hybridizing the substantially complementary primer to the specific known sequence under competitive conditions; extending the preferentially hybridized primer from its 3′ terminus to synthesize an extension product complementary to the strand to which the primer is hybridized; and identifying said extension product. Preferably the method includes the further steps of:- adding a common oligonucleotide primer prior to said identifying step; separating said extension product from its complementary strand; and repeating said preferentially hybridizing and said extending steps.

EP0333465A2, drawing sheet 1
Sheet 1 of 11

Term

Term ended

Projected expiry passed 15 March 2009, 17.5 years ago.

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22 claims: 5 independent, 17 dependent

  1. 1
    A method for detecting the presence or absence of a specific known nucleic acid sequence, or distinguishing between different sequences, comprising the steps of:adding competitive oligonucleotide primers to a sample of nucleic acid or mixture of nucleic acids, wherein said competitive oligonucleotide primers include at least two primers, one being substantially complementary to the specific known sequence and at least one having a base mismatch with the specific known sequence;preferentially hybridizing the substantially complementary primer to the specific known sequence under competitive conditions;extending the preferentially hybridized primer from its 3′ terminus to synthesize an extension product complementary to the strand to which the primer is hybridized;and identifying said extension product.
  2. 3
    The method cf claim 1, wherein at least one of said competitive oligonucleotides primers is labeled and said extension product is identified by determining the presence or absence of said label in said extension product.
  3. 7
    A competitive oligonucleotide primer method for detecting the presence or absence of a specific known nucleic acid sequence in a sample containing a mixture of separate complementary nucleic acid strands, or distinguishing between at least two different sequences in the sample, comprising the steps of:adding competitive oligonucleotide primers to a sample of nucleic acid or mixture of nucleic acids, wherein said competitive oligonucleotide primers include at least two primers, one being substantially complementary to the specific known sequence and at least one having a base mismatch with the specific known sequence;annealing said substantially complementary competitive olignucleotide primer and a common nucleotide primer to separate complementary strands under conditions in which said common primer anneals to one of the complementary strands and said substantially complementary competitive oligonucleotide primer anneals to the other complementary strand containing the specific known sequence;extending said annealed primers from their 3′ terminus to synthesize an extension product complementary to the strands annealed to said primers, said extension product, after separation from its complement, serving as a template for the synthesis of an extension product of the other of said annealed primers;separating said extension products from said templates to produce single-stranded molecules;amplifying said single-stranded molecules comprising said specific known sequence by repeating, at least once, said annealing, extending and separating steps;and identifying said amplified extension product.
  4. 12
    A competitive oligonucleotide primer method for detecting the presence or absence of a plurality of specific known nucleic acid sequences in a sample containing a mixture of nucleic acid strands, comprising the steps of:annealing a specific oligonucleotide primer to each specific known sequence;extending each of said annealed primers from its 3′ terminus to synthesize an extension product complementary to said strand annealed to the primer, said extension product, after separation from its complement, serving as a template for synthesis of an extension product of another of said primers;separating said primer extension product from said templates on which they were synthesized to produce single stranded molecules;amplifying said single-stranded molecular comprising said specific known sequence by repeating, at least once, said annealing, extending and separating steps;adding competitive oligonucleotide primers to said sample, wherein said competitive oligonucleotide primers include at least two primers for each specific known sequence, one being substantially complementary to said specific known sequence and at least one having a base mismatch with the specific known sequence;preferentially hybridizing said substantially complementary primer to said specific known sequence under competitive conditions;extending said preferentially hybridized primer from its 3′ terminus to synthesize a competitive extension product complementary to said strand to which it is hybridized;and identifying said competitive extension product.
  5. 19
    A competitive oligonucleotide primer method of detecting a genetic disease which results from at least one mutation in a specific known nucleic acid sequence, comprising the steps of:adding competitive oligonucleotide primers to a sample of nucleic acid or a mixture of nucleic acids, wherein said competitive oligonucleotide primers include at least two primers, one being substantially complementary to the normal genetic sequence and at least one being substantially complementary to the mutated genetic sequence;preferentially hybridizing said substantially complementary primers to the appropriate strands containing said specific known sequence under competitive conditions;extending said preferentially hybridized primers from their 3′ terminus to synthesize an extension product complementary to said strands to which the primers are hybridized;identifying said extension products.