Methods for improving polynucleotide cluster clonality
The present invention is concerned with compositions and methods for improving the generation of monoclonal clusters in an array by tuning the degree of homology between target nucleic acid adapters and the primers attached to the array to encode a kinetic delay into seeded target nucleic acids.
1 . A composition comprising an array of amplification sites and at least one target nucleic acid bound to an amplification site,
wherein the amplification sites comprise two populations of capture nucleic acids attached to the amplification sites, each population comprising a capture sequence,
wherein a first population comprises a first capture sequence and a second population comprises a second capture sequence,
wherein the target nucleic acid comprises at the 3′ end a first universal capture binding sequence having less affinity for the first capture sequence than a first universal capture binding sequence having 100% complementarity with the first capture sequence,
wherein the target nucleic acid universal capture binding sequence is hybridized to the first capture sequence.
2 . The composition of claim 1 , wherein the first universal capture binding sequence has less than 100% complementarity with the first capture sequence.
3 . The composition of claim 1 , wherein the first universal capture binding sequence comprises 1, 2, or 3 nucleotides that are non-complementary to the first capture sequence.
4 . The composition of claim 1 , wherein at least 30% of the amplification sites of the array are occupied by at least one target nucleic acid.
5 . The composition of claim 4 , wherein the first universal capture binding sequence comprises a heterogeneous population, wherein the heterogeneous population comprises individual first universal capture binding sequences having (i) 1, 2, or 3 nucleotides that are non-complementary to the first capture sequence, or (ii) 100% complementarity with the first capture sequence, and wherein members of the heterogeneous population are bound to different amplification sites.
6 . The composition of claim 5 , wherein the members of the heterogeneous population having 100% complementarity with the first capture sequence are present at a greater number than the other members of the heterogeneous population.
7 . The composition of claim 1 , wherein the target nucleic acid further comprises at the 5′ end a second universal capture binding sequence, wherein the second universal capture binding sequence has a length that is less than the length of the second capture sequence.
8 . The composition of claim 7 , wherein the second universal capture binding sequence has a length that is from 1 to 12 nucleotides less than the length of the second capture sequence.
9 . The composition of claim 8 , wherein the composition comprises a plurality of different target nucleic acids, the different target nucleic acids comprising a heterogeneous population of first universal capture binding sequences, wherein the heterogeneous population comprises individual first universal capture binding sequences having from 1 to 12 nucleotides less than the length of the first capture sequence.
10 . The composition of claim 5 , wherein the heterogeneous population further comprises individual first universal capture binding sequences having (iii) a length that is less than the length of the first capture sequence.
11 . The composition of claim 10 , wherein individual first universal capture binding sequences comprising a reduced length have a length that is from 1 to 12 nucleotides less than the length of the first capture sequence.
12 . The composition of claim 10 , wherein the individual members of the heterogeneous population having a reduced length comprise 1, 2, or 3 nucleotides that are non-complementary to the sequence of the first capture sequence, or 100 % complementarity with the sequence of the first capture sequence.
13 . The composition of claim 1 , wherein the composition comprises a plurality of different target nucleic acids, the different target nucleic acids comprising at the 5′ end a second universal capture binding sequence having a complement that has less affinity for the second capture sequence than a second universal capture binding sequence having a complement with 100% complementarity to the second capture sequence.
14 . The composition of claim 13 , wherein the complement of the second universal capture binding sequence has less than 100% complementarity with the second capture sequence.
15 . The composition of claim 14 , wherein the complement of the second universal capture binding sequence comprises 1, 2, or 3 nucleotides that are non-complementary to the second capture sequence.
16 . The composition of claim 14 , wherein the composition comprises a plurality of different target nucleic acids, the different target nucleic acids comprising a heterogeneous population of second universal capture binding sequences, wherein the heterogeneous population comprises individual second universal capture binding sequences comprising a complement having (i) 1, 2, or 3 nucleotides that are non-complementary to the second capture sequence, or (ii) 100% complementarity with the second capture sequence.
17 . The composition of claim 14 , wherein the members of the heterogeneous population comprising a complement having 100% complementarity with the second capture sequence are present at a greater number than the other members of the heterogeneous population.
18 . The composition of claim 1 , wherein the target nucleic acid comprises at the 5′ end a second universal capture binding sequence having has a length that is less than the length of the second capture sequence.
19 . The composition of claim 18 , wherein the second universal capture binding sequence has a length that is from 1 to 12 nucleotides less than the length of the second capture sequence.
20 . The composition of claim 18 , wherein the composition comprises a plurality of different target nucleic acids, the different target nucleic acids comprising a heterogeneous population of second universal capture binding sequences, wherein the heterogeneous population comprises individual second universal capture binding sequences having from 1 to 12 nucleotides less than the length of the second capture sequence.
21 . The composition of claim 16 , wherein the heterogeneous population further comprises individual second universal capture binding sequences having (iii) a length that is less than the length of the second capture sequence.
22 . The composition of claim 21 , wherein individual second universal capture binding sequences have a length that is from 1 to 12 nucleotides less than the length of the second capture sequence.
23 . The composition of claim 22 , wherein the individual members of the heterogeneous population having a length that is less than the length of the second capture sequence comprise a complement comprising 1, 2, or 3 nucleotides that are non-complementary to the sequence of the second capture sequence, or 100% complementarity with the sequence of the second capture sequence.
24 . The composition of claim 1 , wherein the target nucleic acid is DNA.
25 . The composition of claim 3 , wherein each of the non-complementary nucleotides are a wobble mismatch.
26 . The composition of claim 1 , wherein the universal capture binding sequence has a combination of one or more mismatched nucleotides and a shortened length.