EP2764458A2

Methods and processes for non-invasive assessment of genetic variations

Abstract

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Term

6 yearsto projected expiry

Projected expiry 5 October 2032, counted from filing; an application has no term until it is granted.

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97 claims: 51 independent, 46 dependent

  1. 1
    Claims of equivalent WO 2013052907 A2 What is claimed is:1 . A method for detecting the presence or absence of a genetic variation, comprising: (a) obtaining counts of partial nucleotide sequence reads mapped to genomic sections of a reference genome, which partial nucleotide sequence reads are reads of circulating cell-free nucleic acid from a test sample, wherein at least some of the partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or a combination of (i) and (ii), (b) normalizing the counts of the partial nucleotide sequence reads, thereby providing normalized counts, and (c) detecting the presence or absence of a genetic variation based on the normalized counts.
  2. 5
    The method of any one of claims 1 to 4, comprising comparing the normalized counts to a reference, thereby making a comparison, wherein determining the presence or absence of the genetic variation in (c) is based on the normalized counts and the comparison.
  3. 8
    The method of any one of claims 5 to 7, wherein the counts of the partial nucleotide sequence reads obtained in (a) comprise counts of partial nucleotide sequence reads mapped to a test chromosome or segment thereof.
  4. 11
    1 1 . The method of any one of claims 1 to 10, wherein the normalizing in (b) comprises normalizing according to guanine and cytosine (GC) content of the genomic sections, and providing calculated genomic section levels.
  5. 12
    The method of any one of claims 1 to 1 1 , wherein the normalizing in (b) comprises:(i) determining a guanine and cytosine (GC) bias for each of the genomic sections for multiple samples from a fitted relation for each sample between (1 ) the counts of the partial nucleotide sequence reads mapped to each of the genomic sections, and (2) GC content for each of the genomic sections;and (ii) calculating a genomic section level for each of the genomic sections from a fitted relation between (1 ) the GC bias and (2) the counts of the partial nucleotide sequence reads mapped to each of the genomic sections, thereby providing calculated genomic section levels, whereby bias in the counts of the partial nucleotide sequence reads mapped to each of the portions of the reference genome is reduced in the calculated genomic section levels, and wherein the normalized counts in (b) comprise the calculated genomic section levels.
  6. 14
    The method of any one of claims 1 to 13, wherein the normalized counts are adjusted for a first level for a first set of genomic sections which first level is significantly different than a second level for a second set of genomic sections, thereby providing adjusted normalized counts, wherein determining the presence or absence of the genetic variation in (c) is based on the adjusted normalized counts.
  7. 17
    The method of any one of claims 1 to 16, wherein the normalizing in (b) comprises performing a local regression on the counts of the partial nucleotide sequence reads or the calculated genomic section levels, or the counts of the partial nucleotide sequence reads and the calculated genomic section levels.
  8. 20
    The method of any one of claims 1 to 19, wherein the partial nucleotide sequence reads are unary partial reads, for which unary partial reads one nucleotide species is known at known positions and the other positions can be any one of three other nucleotide species.
  9. 22
    The method of any one of claims 1 to 19, wherein the partial nucleotide sequence reads are binary partial reads, for which binary partial reads a first nucleotide class consisting of two possible bases is known at known positions and a second nucleotide class consisting of two possible bases is known at known positions, wherein the bases of the first nucleotide class are different than the bases of the second nucleotide class.
  10. 24
    The method of any one of claims 1 to 19, wherein the partial nucleotide sequence reads are ternary partial reads, for which ternary partial reads a first nucleotide species is known at known positions, a second nucleotide species is known at other known positions and the other positions are any one of two nucleotide species other than the first nucleotide species and the second nucleotide species.
  11. 26
    The method of any one of claims 1 to 25, comprising determining partial nucleotide sequence reads of the nucleic acid from the test sample.
  12. 29
    The method of any one of claims 1 to 28, comprising isolating the nucleic acid from the test sample.
  13. 30
    The method of any one of claims 1 to 29, comprising obtaining the test sample.
  14. 32
    The method of any one of claims 1 to 31 , wherein the test sample is blood plasma, blood serum or urine.
  15. 33
    A system comprising one or more processors and memory, which memory comprises instructions executable by the one or more processors and which memory comprises counts of partial nucleotide sequence reads mapped to genomic sections of a reference genome, which partial nucleotide sequence reads are reads of circulating cell-free nucleic acid from a test sample, wherein at least some of the partial nucleotide sequence reads comprise:i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or a combination of (i) and (ii);and which instructions executable by the one or more processors are configured to: (a) normalize the counts of the partial nucleotide sequence reads, thereby providing normalized counts, and (b) detect the presence or absence of a genetic variation based on the normalized counts.
  16. 34
    An apparatus comprising one or more processors and memory, which memory comprises instructions executable by the one or more processors and which memory comprises counts of partial nucleotide sequence reads mapped to genomic sections of a reference genome, which partial nucleotide sequence reads are reads of circulating cell-free nucleic acid from a test sample, wherein at least some of the partial nucleotide sequence reads comprise:i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or a combination of (i) and (ii);and which instructions executable by the one or more processors are configured to: (a) normalize the counts of the partial nucleotide sequence reads, thereby providing normalized counts, and (b) detect the presence or absence of a genetic variation based on the normalized counts.
  17. 35
    A computer program product tangibly embodied on a computer-readable medium, comprising instructions that when executed by one or more processors are configured to:(a) access counts of partial nucleotide sequence reads mapped to genomic sections of a reference genome, which partial nucleotide sequence reads are reads of circulating cell-free nucleic acid from a test sample, wherein at least some of the partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or a combination of (i) and (ii), (b) normalize the counts of the partial nucleotide sequence reads, thereby providing normalized counts, and (c) detect the presence or absence of a genetic variation based on the normalized counts.
  18. 36
    A method for detecting the presence or absence of a fetal aneuploidy comprising:(a) obtaining partial nucleotide sequence reads from a sample comprising circulating, cell-free nucleic acid from a pregnant female, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (b) mapping the partial nucleotide sequence reads to reference genome sections, (c) counting the number of partial nucleotide sequence reads mapped to each reference genome section, (d) comparing the number of counts of the partial nucleotide sequence reads mapped in (c), or derivative thereof, to a reference, thereby making a comparison, and (e) determining the presence or absence of a fetal aneuploidy based on the comparison.
  19. 37
    A method for detecting the presence or absence of a fetal aneuploidy comprising:(a) mapping partial nucleotide sequence reads that have been obtained from a sample comprising circulating, cell-free nucleic acid from a pregnant female, to reference genome sections, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (b) counting the number of partial nucleotide sequence reads mapped to each reference genome section, (c) comparing the number of counts of the partial nucleotide sequence reads mapped in (b), or derivative thereof, to a reference, thereby making a comparison, and (d) determining the presence or absence of a fetal aneuploidy based on the comparison.
  20. 38
    A method for detecting the presence or absence of a fetal aneuploidy comprising:(a) obtaining a sample comprising circulating, cell-free nucleic acid from a pregnant female, (b) isolating sample nucleic acid from the sample, (c) obtaining partial nucleotide sequence reads from the sample nucleic acid, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (d) mapping the partial nucleotide sequence reads to reference genome sections, (e) counting the number of partial nucleotide sequence reads mapped to each reference genome section, (f) comparing the number of counts of the partial nucleotide sequence reads mapped in (e), or derivative thereof, to a reference, thereby making a comparison, and (g) determining the presence or absence of a fetal aneuploidy based on the comparison.
  21. 39
    A method for detecting the presence or absence of a genetic variation comprising:(a) obtaining partial nucleotide sequence reads from a sample comprising nucleic acid from a subject, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (b) mapping the partial nucleotide sequence reads to reference genome sections, (c) comparing the partial nucleotide sequence reads mapped in (b) to a reference, thereby making a comparison, and (d) determining the presence or absence of a genetic variation based on the comparison.
  22. 40
    A method for detecting the presence or absence of a genetic variation comprising:(a) mapping partial nucleotide sequence reads that have been obtained from a sample comprising nucleic acid from a subject, to reference genome sections, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (b) comparing the partial nucleotide sequence reads mapped in (a) to a reference, thereby making a comparison, and (c) determining the presence or absence of a genetic variation based on the comparison.
  23. 41
    A method for detecting the presence or absence of a genetic variation comprising:(a) obtaining a sample comprising nucleic acid from a subject, (b) isolating sample nucleic acid from the sample, (c) obtaining partial nucleotide sequence reads from the sample nucleic acid, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (d) mapping the partial nucleotide sequence reads to reference genome sections, (e) comparing the partial nucleotide sequence reads mapped in (d) to a reference, thereby making a comparison, and (f) determining the presence or absence of a genetic variation based on the comparison.
  24. 42
    The method of any one of claims 39 to 41 , wherein the genetic variation is a nucleic acid sequence variation.
  25. 45
    The method of any one of claims 39 to 41 , wherein the genetic variation is a nucleic acid copy number variation.
  26. 48
    The method of any one of claims 39 to 47, wherein the subject is a fetus and the sample is from a pregnant female that bears a fetus.
  27. 51
    The method of any one of claims 1 to 50, wherein the sample is blood.
  28. 52
    The method of any one of claims 1 to 50, wherein the sample is urine.
  29. 53
    The method of any one of claims 1 to 50, wherein the sample is saliva.
  30. 54
    The method of any one of claims 1 to 50, wherein the sample is a cervical swab.
  31. 55
    The method of any one of claims 1 to 50, wherein the sample is serum.
  32. 56
    The method of any one of claims 1 to 50, wherein the sample is plasma.
  33. 57
    The method of any one of claims 1 to 56, wherein the partial nucleotide sequence reads comprise relative positional information for one or more nucleobase species.
  34. 60
    The method of any one of claims 57 to 59, wherein the partial nucleotide sequence reads contain relative positional information for thymine.
  35. 61
    The method of any one of claims 57 to 60, wherein the partial nucleotide sequence reads contain relative positional information for cytosine.
  36. 62
    The method of any one of claims 57 to 61 , wherein the partial nucleotide sequence reads contain relative positional information for methyl-cytosine.
  37. 68
    The method of any one of claims 1 to 56, wherein the nucleobase class is purine.
  38. 69
    The method of any one of claims 1 to 56, wherein the nucleobase class is pyrimidine.
  39. 71
    The method of any one of claims 1 to 56, wherein the sample nucleic acid comprises single stranded nucleic acid.
  40. 72
    The method of any one of claims 1 to 56, wherein the sample nucleic acid comprises double stranded nucleic acid.
  41. 74
    The method of any one of claims 1 to 73, wherein obtaining partial nucleotide sequence reads includes subjecting the sample nucleic acid to a sequencing process using a sequencing device.
  42. 80
    The method of claim 80, wherein the partial nucleotide sequence reads are obtained by sequencing by hybridization.
  43. 81
    The method of any one of claims 1 to 80, wherein the partial nucleotide sequence reads comprise a number of discrete position identities sufficient to map to a reference genome section.
  44. 82
    The method of any one of claims 1 to 80, wherein the partial nucleotide sequence read is of sufficient length to map to a reference genome section.
  45. 86
    The method of any one of claims 1 to 85, wherein the nucleobase gaps in each partial nucleotide sequence read independently are about 1 to about 100 sequential nucleobases.
  46. 87
    The method of any one of claims 1 to 86, which comprises obtaining full nucleotide sequence reads, which nucleotide sequence reads do not contain nucleobase gaps between identified nucleobases or a nucleobase class comprising a subset of nucleobases present in the sample nucleic acid.
  47. 88
    The method of any one of claims 36 to 38, wherein the fetal aneuploidy is trisomy 13.
  48. 89
    The method of any one of claims 36 to 38, wherein the fetal aneuploidy is trisomy 18.
  49. 90
    The method of any one of claims 36 to 38, wherein the fetal aneuploidy is trisomy 21 .
  50. 91
    The method of any one of claims 39 to 41 , wherein the genetic variation is associated with a medical condition.
  51. 94
    A computer program product, comprising a computer usable medium having a computer readable program code embodied therein, the computer readable program code comprising distinct software modules comprising a sequence receiving module, a logic processing module, and a data display organization module, the computer readable program code adapted to be executed to implement a method for identifying the presence or absence of a fetal aneuploidy, the method comprising:(a) obtaining, by the sequence receiving module, partial nucleotide sequence reads from a sample comprising circulating, cell-free nucleic acid from a pregnant female, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii);(b) receiving, by the logic processing module, the partial nucleotide sequence reads;(c) mapping, by the logic processing module, the partial nucleotide sequence reads to reference genome sections;(d) counting, by the logic processing module, the number of partial nucleotide sequence reads mapped to each reference genome section;(e) comparing, by the logic processing module, the number of counts of the partial nucleotide sequence reads, or derivative thereof, to a reference, or portion thereof, thereby making a comparison;(f) providing, by the logic processing module, an outcome determinative of the presence or absence of a fetal aneuploidy based on the comparison;and (g) organizing, by the data display organization module in response to being determined by the logic processing module, a data display indicating the presence or absence of a fetal aneuploidy.
  52. 97
    A system comprising a nucleic acid sequencing apparatus and a processing apparatus, wherein the sequencing apparatus obtains sequence reads from a sample, and the processing apparatus obtains the sequence reads from the sequencing apparatus and carries out a method comprising:(a) mapping partial nucleotide sequence reads from the sequencing apparatus that have been obtained from a sample comprising circulating, cell-free nucleic acid from a pregnant female, to reference genome sections, wherein at least some partial nucleotide sequence reads comprise: i) multiple nucleobase gaps between identified nucleobases, or ii) one or more nucleobase classes, wherein each nucleobase class comprises a subset of nucleobases present in the sample nucleic acid, or combination of (i) and (ii), (b) counting the number of partial nucleotide sequence reads mapped to each reference genome section, (c) comparing the number of counts of the partial nucleotide sequence reads mapped in (b), or derivative thereof, to a reference, or portion thereof, thereby making a comparison, and (d) determining the presence or absence of a fetal aneuploidy based on the comparison.
Independent claims52