EP1549772B1

Methods and compositions for detection and analysis of polynucleotides using light harvesting multichromophores

Abstract

This record has no abstract on file.

EP1549772B1, drawing sheet 1
Sheet 1 of 13

Term

Term ended

Expired 26 August 2023, 3.1 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

55 claims: 6 independent, 49 dependent

  1. 1
    An assay method comprising:providing a sample that is suspected of containing a target polynucleotide;providing a polycationic multichromophore that upon excitation is capable of transferring energy to a signaling chromophore;providing an anionic sensor polynucleotide that is complementary to the target polynucleotide, said anionic sensor being conjugated to the signaling chromophore, wherein said sensor polynucleotide can interact with the multichromophore and emitted light can be produced from the signaling chromophore upon excitation of the multichromophore, and wherein a greater amount of emitted light is produced from the signaling chromophore upon excitation of the multichromophore in the presence of target polynucleotide as compared to in the presence of a noncomplementary polynucleotide;contacting the sample with the sensor polynucleotide and the multichromophore in a solution under conditions in which the sensor polynucleotide can hybridize to the target polynucleotide, if present;exciting the multichromophore with a light source;and detecting if light is emitted from the signaling chromophore.
  2. 10
    The method of any of the claims, wherein the sample is contacted with the sensor polynucleotide and the multichromophore in the presence of a sufficient amount of an organic solvent to decrease hydrophobic interactions between the sensor polynucleotide and the multichromophore.
  3. 11
    The method of any of the claims, wherein the sample is contacted with a plurality of different sensor polynucleotides having corresponding different sequences, each of said different sensor polynucleotides comprising a corresponding different signaling chromophore, wherein each of said different sensor polynucleotides can selectively hybridize to a corresponding different target polynucleotide.
  4. 12
    The method of any of claims 1-11, wherein the signaling chromophore is a fluorophore.
  5. 18
    The method of any of claims 1-17, wherein the target polynucleotide is DNA.
  6. 19
    The method of any of claims 1-17, wherein the target polynucleotide is RNA.
  7. 20
    The method of any of claims 1-19, wherein the sample comprises single-stranded target polynucleotide.
  8. 21
    The method of any of claims 1-19, wherein the sample comprises double-stranded target polynucleotide.
  9. 22
    The method of any of claims 1-20, wherein the target polynucleotide is produced via an amplification reaction.
  10. 23
    A polynucleotide sensing solution comprising:an anionic sensor polynucleotide conjugated to a signaling chromophore;said sensor being complementary to the target polynucleotide, and a polycationic multichromophore comprising a molecule selected from a dendrimer and a conjugated polymer, wherein said multichromophore is capable of transferring energy to the signaling chromophore upon excitation when brought into proximity thereto, wherein a greater amount of energy can be produced from the signaling chromophore in the presence of the polynucleotide being sensed when the multichromophore is excited.
  11. 24
    A kit for assaying a sample for a target polynucleotide comprising:an anionic sensor polynucleotide conjugated to a signaling chromophore said sensor being complementary to the target polynucleotide;a second chromophore;a polycationic multichromopnore that is capable of transferring energy to the signaling chromophore upon excitation when brought into proximity thereto, wherein said sensor polynucleotide capable of interacting with the multichromophore and a detectibly greater amount of emitted light can be produced from the signaling chromophore upon excitation of the multichromophore in the presence of target polynucleotide than in the presence of a noncomplementary polynucleotide;and a housing for retaining the reagents of the kit.
  12. 28
    The method of any of claims 1-21, wherein the target polynucleotide is not amplified.
  13. 29
    The method of any of claims 1-22 and 25-28, wherein the method is performed on a substrate.
  14. 38
    The method of any of claims 1 and 29, wherein the method comprises performing fluorescence in situ hybridization (FISH).
  15. 40
    The method of any of claims 1-22 and 25-40, further comprising contacting the sample in a solution comprising the sensor polynucleotide, the multichromophore and a second signaling chromophore that can absorb energy from the signaling chromophore in the presence of target and emit light, and wherein detecting if light is emitted from the signaling chromophore comprises detecting if light is emitted from the second signaling chromophore.
  16. 51
    A sensing complex comprising:an anionic sensor polynucleotide that is complementary to a target polynucleotide, said sensor polynucleotide attached to a signaling chromophore;a polycationic multichromophore that is capable of transferring energy to the signaling chromophore upon excitation when brought into proximity thereto, wherein said sensor polynucleotide, capable of interacting with the multichromophore and emitted light can be produced from the signaling chromophore upon excitation of the multichromophore in the absence of target polynucleotide, and wherein a greater amount of emitted light is produced from the signaling chromophore upon excitation of the multichromophore in the presence of target polynucleotide than in the presence of a noncomplementary polynucleotide.