Methods for assembling nucleic acids

The method addresses DNA assembly errors by using a ligase chain reaction with short oligonucleotides for high-fidelity DNA synthesis, achieving low error rates and efficient, automated assembly of DNA fragments.

JP7742355B2Active Publication Date: 2025-09-19TELESIS BIO INC
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Patent Information

Application Number
JP2022553045
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-03
Filing Date
2021-02-25
Publication Date
2025-09-19
Estimated Expiration
2041-02-25

AI Technical Summary

Technical Problem

Current DNA assembly methods introduce errors during synthesis and require time-consuming, inefficient processes that rely on solid-phase devices and error-correcting enzymes, limiting the production of high-fidelity DNA molecules.

Method used

A method involving a ligase chain reaction with short oligonucleotides, followed by polymerase chain assembly, to create DNA molecules with high sequence fidelity without the need for error-correcting enzymes, performed entirely in solution.

Benefits of technology

The method achieves DNA molecules with error rates below 1 error per 14,000 base pairs, suitable for automated synthesis and assembly of DNA fragments up to 10,000 base pairs, eliminating the need for error correction steps.

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Abstract

The present invention provides a method for assembling a DNA molecule having a desired sequence. The method includes contacting a DNA ligase with a plurality of short oligonucleotides to be assembled and performing a ligase chain reaction, thereby generating a set of polynucleotides. The oligonucleotides in the plurality overlap and are complementary to the sequence of at least one other oligonucleotide in the plurality, and at least 50% of the oligonucleotides in the plurality are 6 to 30 nucleotides in length. To join the set of polynucleotides, the set of polynucleotides produced is contacted with a DNA polymerase and dNTPs in a mixture, thereby creating a DNA molecule having the desired sequence by polymerase chain assembly. The method allows for the production of oligonucleotides of any length with very high sequence fidelity to the desired sequence.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit under 35 U.S.C. §119(e) to U.S. patent application Ser. No. 62 / 984,670, filed March 3, 2020, the entire contents of which are incorporated herein by reference in their entirety.

[0002] FIELD OF THE INVENTION The present invention relates to methods for synthesizing and constructing nucleic acids with low error rates. [Background technology]

[0003] Background of the Invention DNA assembly is a key technology for synthetic biology and genetic engineering, and has attracted considerable effort toward improving the efficiency, fidelity, and simplicity of DNA assembly methods. Various DNA assembly methods are known and have specific advantages. While the Gibson assembly method utilizes DNA sequence complementarity (Gibson et al., 2009), Golden Gate assembly is based on restriction digestion and ligation methods. One important aspect of DNA synthesis is the importance of achieving and maintaining sequence fidelity in DNA sequences, i.e., producing DNA molecules with very low error rates. Chemical synthesis of starting oligonucleotides introduces errors into the synthesized sequence, which then propagate as the desired DNA molecule assembles and amplifies.

[0004] The goal of increasing the fidelity of DNA synthesis and assembly has been addressed by using error-correcting enzymes to reduce errors in synthetic DNA constructed from synthetic oligonucleotides. Although the use of error-correcting enzymes has been an important development, its use also has disadvantages. Furthermore, current methods often rely on synthesizing the desired DNA molecules on DNA chips or other solid-phase devices, making the method substantially less suitable for automated synthesis. These methods are also time-consuming and less efficient in DNA synthesis. There remains a need for new methods for assembling DNA molecules produced from synthetic oligonucleotides that have very high sequence fidelity and do not require the use of error-correcting enzymes. Summary of the Invention

[0005] The present invention provides a method for assembling a DNA molecule having a desired sequence. The method includes contacting a DNA ligase with a plurality of short oligonucleotides to be assembled and performing a ligase chain reaction, thereby generating a set of polynucleotides. The oligonucleotides in the plurality overlap and are complementary to the sequence of at least one other oligonucleotide in the plurality, and at least 50% of the oligonucleotides in the plurality are 8 to 22 nucleotides in length. To join the set of polynucleotides, the set of polynucleotides produced is optionally contacted with a DNA polymerase and dNTPs in a mixture, thereby creating a DNA molecule having the desired sequence by polymerase chain assembly. The DNA fragments can optionally be assembled using a polymerase chain assembly reaction or another oligonucleotide assembly reaction (e.g., OSOS) and optionally amplified via PCR.

[0006] In a first aspect, the present invention provides a method for assembling a DNA molecule having a desired sequence. The method includes contacting a DNA ligase with a plurality of short oligonucleotides having at least a portion of the desired sequence of the DNA molecule to be assembled to form a mixture. At least a portion of the short oligonucleotides in the plurality overlaps with and is complementary to a portion of the sequence of at least one other short oligonucleotide in the plurality, and at least two of the short oligonucleotides are adjacent to each other when ligated to their complementary sequences. At least 50% of the short oligonucleotides in the plurality can be 8 to 30 nucleotides in length. The method also includes performing a ligase chain reaction on the mixture to thereby produce a set of polynucleotides, and contacting the set of polynucleotides with a DNA polymerase and dNTPs to ligate the set of polynucleotides, thereby assembling the DNA molecule having the desired sequence.

[0007] In one embodiment, the set of polynucleotides is joined by polymerase cycling assembly and / or a DNA assembly reaction (e.g., an OSOS reaction). In one embodiment, the method includes contacting multiple short oligonucleotides with a kinase before or simultaneously with contacting the short oligonucleotides with DNA ligase. In one embodiment, the DNA ligase is a thermostable DNA ligase, such as T4 DNA ligase or Taq ligase. Adjacent short oligos can have a phosphorylated 5'-terminal nucleotide of the first short oligo and a 3'-hydroxyl on the 3'-terminal nucleotide of the second short oligo. The method can include amplifying a DNA molecule having a desired sequence using the polymerase chain reaction. In one embodiment, the method is performed in solution. In various embodiments, the DNA molecule having the desired sequence can be 100 to 10,000 base pairs in length or 100 to 5,000 base pairs in length. In one embodiment, the desired sequence further includes a universal 5' flanking sequence and a universal 3' flanking sequence. The method can also include combining multiple pools of sets of polynucleotides to join the polynucleotides via PCA (polymerase cycling assembly).

[0008] In one embodiment, at least 10 cycles of polymerase chain reaction can be performed to amplify a DNA molecule having a desired sequence. In various embodiments, the plurality of short oligonucleotides can contain at least 10 short oligonucleotides, or at least 20 short oligonucleotides, or 2-250 short oligonucleotides. In one embodiment, the plurality of short oligonucleotides is 10-18 nucleotides in length. At least 50% of the short oligonucleotides in the plurality can be 10-18 nucleotides in length. In another embodiment, at least 75% of the oligonucleotides in the plurality are 6-18, or 10-18, or 16-18 nucleotides in length at the start of the method. The method can be performed without the use of restriction enzymes. Assembled DNA molecules of a desired sequence produced by the method can have an error rate of less than 1 error per 2,000 base pairs, or less than 1 error per 14,000 base pairs. Error rates can be achieved by the method without the use of error-correcting enzymes.

[0009] In some embodiments, the plurality of short oligonucleotides is comprised in at least 15 pools of oligonucleotides. The method can be performed entirely in vitro. In some embodiments, the oligonucleotides can be 8-mers or 16-mers. DNA molecules can be assembled by the method and can be scarless, i.e., assembled by scarless assembly. In one embodiment, the plurality of short oligonucleotides comprises more than 64 short oligonucleotides. The method can be performed without the use of linker, adapter, or spacer DNA molecules. In the method, the ligase chain reaction can have at least five cycles of denaturation, annealing, and ligation. In any embodiment, the plurality of short oligonucleotides can have more than 64 short oligonucleotides. In various embodiments, less than 10% or less than 1% of the oligonucleotides in the mixture are longer than 20 nucleotides or longer than 30 nucleotides. [The present invention 1001] 1. A method for assembling a DNA molecule having a desired sequence, the method comprising: a) contacting a DNA ligase with a plurality of short oligonucleotides that constitute at least a portion of the desired sequence of the DNA molecule to be assembled to form a mixture; wherein at least a portion of the short oligonucleotides in said plurality overlaps with and is complementary to a portion of the sequence of at least one other short oligonucleotide in said plurality, at least two of said short oligonucleotides are adjacent to each other when bound to their complementary sequences, and at least 50% of the short oligonucleotides in said plurality are between 6 and 30 nucleotides in length; b) performing a ligase chain reaction on the mixture, thereby generating a set of polynucleotides; c) contacting the set of polynucleotides with a DNA polymerase and dNTPs to join the set of polynucleotides, thereby assembling the DNA molecule having the desired sequence. [The present invention 1002] 1001. The method of claim 1001, wherein the set of polynucleotides is combined by a DNA assembly reaction. [The present invention 1003] 1001. The method of claim 1001, wherein said set of polynucleotides is joined by polymerase cycling assembly. [The present invention 1004] The method of any of claims 1001 to 1003, further comprising contacting said plurality of short oligonucleotides with a kinase prior to or simultaneously with said contacting of said short oligonucleotides with said DNA ligase. [The present invention 1005] The method according to any one of claims 1001 to 1004, wherein said DNA ligase is a thermostable DNA ligase. [The present invention 1006] The method according to any one of claims 1001 to 1004, wherein said DNA ligase is T4 DNA ligase or Taq ligase. [The present invention 1007] 1007. The method of any of claims 1001 to 1006, wherein the adjacent short oligos comprise a phosphorylated 5' terminal nucleotide of a first short oligo and a 3' hydroxyl on the 3' terminal nucleotide of a second short oligo. [The present invention 1008] 8. The method of any one of claims 1001 to 1007, further comprising amplifying said DNA molecule having said desired sequence using the polymerase chain reaction. [The present invention 1009] 1009. The method of any one of claims 1001 to 1008, which is carried out in solution. [The present invention 1010] 1009. The method of any one of claims 1001 to 1009, wherein said DNA molecule having said desired sequence is 100 to 10,000 base pairs in length. [The present invention 1011] The method of any one of claims 1001 to 1010, wherein the DNA molecule having the desired sequence is 100 to 5,000 base pairs in length. [The present invention 1012] 1012. The method of any of claims 1001 to 1011, wherein said desired sequence further comprises a universal 5' flanking sequence and a universal 3' flanking sequence. [The present invention 1013] 1013. The method of any of claims 1002 to 1012, further comprising combining multiple pools of polynucleotides to join the polynucleotides via polymerase cycling assembly. [The present invention 1014] 1014. The method of any of claims 1001 to 1013, further comprising at least 10 cycles of polymerase chain reaction to amplify said DNA molecule having said desired sequence. [The present invention 1015] The method of any one of claims 1001 to 1014, wherein said plurality of short oligonucleotides comprises at least 10 short oligonucleotides. [The present invention 1016] 1016. The method of any one of claims 1001 to 1015, wherein said plurality of short oligonucleotides comprises at least 20 short oligonucleotides. [The present invention 1017] The method of any one of claims 1001 to 1014, wherein the plurality of short oligonucleotides comprises 2 to 250 short oligonucleotides. [The present invention 1018] The method of any one of claims 1001 to 1017, wherein the plurality of short oligonucleotides are 6 to 18 nucleotides in length. [The present invention 1019] 19. The method of any of claims 1001 to 1018, wherein at least 50% of the short oligonucleotides in said plurality are 6 to 18 nucleotides in length. [The present invention 1020] 1019. The method of claim 1019, wherein at least 75% of said oligonucleotides in said plurality are 6 to 18 nucleotides in length at the start of said method. [The present invention 1021] 1020. The method of claim 1020, wherein at least 75% of said oligonucleotides in said plurality are 6 to 18 nucleotides in length at the start of said method. [The present invention 1022] 1022. The method of any one of claims 1001 to 1021, which is carried out without using a restriction enzyme. [The present invention 1023] 1023. The method of any of claims 1001 to 1022, wherein the assembled DNA molecule of the desired sequence has an error rate of less than 1 error per 2,000 base pairs. [The present invention 1024] 10. The method of any of claims 1001 to 1022, wherein the assembled DNA molecule of the desired sequence has an error rate of less than 1 error per 14,000 base pairs. [The present invention 1025] 1025. The method of any one of claims 1001 to 1024, wherein the error rate is obtained by the method without using an error-correcting enzyme. [The present invention 1026] 1026. The method of any one of claims 1001 to 1025, wherein said plurality of short oligonucleotides constitutes at least 15 pools of oligonucleotides. [The present invention 1027] The method of any of claims 1001 to 1026, wherein said assembly is carried out entirely in vitro. [The present invention 1028] The method of any one of claims 1001 to 1027, wherein the oligonucleotide is an 8-mer or a 16-mer. [The present invention 1029] The method of any one of claims 1001 to 1028, wherein the DNA molecule is assembled by scarless assembly. [The present invention 1030] 1029. The method of any of claims 1001 to 1029, wherein said plurality of short oligonucleotides comprises more than 64 short oligonucleotides. [The present invention 1031] The method of any of claims 1001 to 1030, performed without the use of a linker, adapter, or spacer DNA molecule. [The present invention 1032] 1032. The method of any of claims 1001 to 1031, wherein said ligase chain reaction comprises at least five cycles of denaturation, annealing, and ligation. [The present invention 1033] The method of any of claims 1001 to 1032, wherein said plurality of short oligonucleotides comprises more than 64 short oligonucleotides. [The present invention 1034] The method of any of claims 1001 to 1033, wherein less than 10% of said oligonucleotides in said mixture are greater than 20 nucleotides in length. [This invention 1035] The method of any of claims 1001 to 1034, wherein less than 1% of said oligonucleotides in said mixture are greater than 20 nucleotides in length. [Brief explanation of the drawings]

[0010] [Figure 1]1 is a schematic diagram of one embodiment of the present invention. Aspects of the method are shown, including single-stranded oligonucleotides, annealing, ligation, and adjacent oligos joined by a ligase in the method. Optional further assembly and / or amplification are also shown. [Figure 2] 1 is an agarose gel showing the formation of a 240 bp product. The results of assembling a 240 bp product from seven overlapping sets of 14x8mers are shown. [Figure 3] Agarose gel showing the assembly of GFP from 16-mer pools into a 901-bp GFP sequence. Lane 1 shows the synthesis of six pools of 32 × 16-mers, which were then all pooled together for PCA and PCR. Lane 2 shows the synthesis of two subpools of 64 × 16-mers, which were then pooled together for LCR. LCR was followed by PCA and PCR (LCR → PCA → PCR). [Figure 4A] Figure 4A is an agarose gel showing the results of assembling 1927 bp and 1609 bp. HA and NA (respectively) from 30-mer and 40-mer pools. Lane 1: Assembly by LCR using 16-mer subpools, each containing 64 16-mer oligos that overlap (128 bp) with adjacent subpools. Lane 2 shows LCR using all 16-mers. Lane 3: LCR using all 30-mers. Lane 4: LCR using all 40-mers. The protocol was as described in Example 1. [Figure 4B] Figure 4B is an agarose gel showing the assembly of HA and NA from pools of eight 16-mers and four 16-mers using LCR followed by PCA and PCR. Dilutions 1 through 4 of LCR are 2.5x, 5x, 10x, and 20x. [Figure 5] A gel showing the assembly of a 10 kb DNA product assembled from 26 overlapping pools of 16mers by LCR followed by PCA and PCR amplification is shown. [Figure 6]Figure 1 shows an agarose gel depicting the results of assembling 32 constructs of variable GC content from 16-mers, 18-mers, or 22-mers, each assembled into a pool. Lanes 1-8 on each gel indicate the sizes of the assembled constructs according to lanes 1-8 on each gel: 1.200 bp, 2.400 bp, 3.600 bp, 4.800 bp, 5.1000 bp, 6.1200 bp, 7.1500 bp, and 8.1800 bp. Oligos were subjected to LCR-PCA-PCR according to the protocol in Example 1. [Figure 7] Figure 1 is a table and two bar graphs showing the error rate and percent of error-free assembled constructs for 16-mers, 18-mers, and 22-mers. ER indicates the error rate, and %EFC indicates the percent of error-free constructs obtained. An overall error rate of 1 in 11,000 base pairs was achieved with the 16-mer, and the percent of error-free constructs varied from 88 to 97%. DETAILED DESCRIPTION OF THE INVENTION

[0011] Detailed Description of the Invention The present invention provides a method for assembling a DNA molecule having a desired sequence. The method involves contacting a DNA ligase with a plurality of short oligonucleotides that constitute at least a portion of the DNA molecule to be assembled, thereby generating a set of polynucleotides or DNA fragments in a mixture. At least a portion of the oligonucleotides in the plurality overlap and are complementary to the sequence of at least one other oligonucleotide in the plurality, and at least 50% of the oligonucleotides in the plurality may be 8 to 22 nucleotides in length. The resulting mixture is contacted with a DNA polymerase and dNTPs and, optionally, subjected to a DNA assembly reaction (e.g., OSOS or PCA) to join the set of DNA fragments, thereby creating a DNA molecule having the desired sequence by polymerase chain assembly. Thus, the method can be applied to hierarchical DNA assembly methods. The plurality of oligonucleotides can be joined using the ligase chain reaction, and the DNA fragments can be assembled using polymerase cycling assembly (PCA) and / or OSOS assembly, and optionally amplified using PCR or another DNA amplification procedure.

[0012] To maximize the ability to form larger DNA pieces and thereby optimize synthesis, synthesis of polynucleotides and DNA fragments has focused on using longer oligonucleotides in synthesis. Longer oligonucleotides have been considered beneficial due to their greater ability to span repetitive regions and to provide greater specificity in assembly reactions due to their higher melting temperatures (Tm) in PCR and other DNA assembly or amplification reactions. The oligonucleotides or DNA fragments produced by these processes are then subjected to error correction using error-correcting enzymes (e.g., mismatch endonucleases) to remove errors and increase the accuracy of the desired DNA sequence. After error correction, the DNA fragments can then be assembled and / or amplified using DNA amplification procedures.

[0013] Although ligase chain reaction (LCR) has been thought to require longer oligonucleotides to provide sufficient opportunity for oligonucleotide annealing in solution, the present inventors have unexpectedly discovered that greater sequence fidelity in the product DNA sequence can be achieved when ligase chain reaction is performed on short oligonucleotides as disclosed herein. The increase in sequence fidelity is surprisingly sufficient to eliminate the need for error correction steps, such as using error-correcting enzymes to correct mismatched nucleotide pairs and achieve higher sequence fidelity. The present inventors have also discovered that the described advantages can be achieved when ligase chain reaction is performed on short oligonucleotides in solution. In any embodiment, the present method can be performed without the use of any type of restriction enzyme (e.g., restriction endonuclease). In any embodiment, the present method can be performed entirely in vitro, i.e., without the use of cloning or the need to clone nucleic acids in a living organism. In any embodiment, the method can be performed in solution, i.e., none of the oligonucleotides (or any portion of the formed polynucleotide) or reaction components in the method (or any step thereof) are bound to or immobilized on a DNA chip, bead, surface, or other solid phase. Thus, in some embodiments, the entire formed oligonucleotide or DNA fragment is in solution, i.e., even the starting oligonucleotide or seed oligonucleotide (e.g., representing the end of a polynucleotide chain) is not bound to a solid support at any point in the method. Thus, the method is highly suitable for automated synthesis, resulting in high yields of high-fidelity product DNA. Any of the embodiments can be performed so that the reaction components are not immobilized on a solid phase.

[0014] Ligation refers to the covalent linking of polynucleotide sequences to form a single sequence. Ligase can catalyze the formation of a covalent phosphodiester bond between the 5'-P end of the first oligo and the 3'-OH end of the second oligo. Either or both of the first and second oligos can be annealed to complementary strands, and the nucleotides with 5'-P and 3'-OH can be positioned adjacent to each other when acted upon by ligase. In other embodiments, ligation can also include other means of covalently linking oligos, for example, using chemical means. The term oligo is used herein to refer to oligonucleotides.

[0015] method The method generally involves providing one or more pools containing multiple short oligonucleotides of any length described herein. In some embodiments, the short oligonucleotides can be treated with a kinase to add a 5' phosphate group, although the 5' phosphate group can also be added during chemical oligo synthesis or simultaneously with the synthesis reaction (e.g., LCR). Thus, the short oligonucleotides can be contacted with a kinase before or simultaneously with contacting the short oligonucleotides with DNA ligase, or before or after LCR. In some embodiments, the reaction can optionally be performed on a thermal cycler to ligate initial or short oligos together, thus forming larger oligos or DNA fragments. In one embodiment, this can be performed by subjecting multiple short oligonucleotides to a ligase cycling reaction (LCR). The resulting DNA fragments (or larger oligos) can then be subjected to additional assembly and / or amplification reactions to construct larger DNA molecules or amplify their quantity. The term polynucleotide refers to a polymer composed of nucleotide units. The term oligonucleotide refers to a polynucleotide having up to 30 nucleotides. A DNA fragment refers to a polynucleotide having more than 30 nucleotides.

[0016] Short oligos can be provided in pools or sets for synthesis into DNA fragments or longer oligonucleotides. In any embodiment, the short oligos can be synthesized using chemical synthesis methods. A set includes all of the oligos that are combined to form longer oligonucleotide molecules, and the longer oligonucleotide molecules can then be further combined to create larger DNA fragments or oligonucleotides. A set can be included in a single pool with overlapping oligos, or in two or more pools that are combined in a manner to form longer oligonucleotides. The short oligos in one or more pools can constitute a set, and an oligo in a set can overlap and be complementary to at least a portion of at least one other oligo in the set, or two oligos in the pool or set, or more than two oligos in the pool or set (in terms of Watson-Crick base pairing). In one embodiment, oligos can be provided in multiple sets, and each set can be included in two pools. In different embodiments, the oligos can be assembled into a single pool or by combining two pools. The two pools can be combined and subjected to LCR and, optionally, PCA and / or OSOS and / or PCR, thereby producing longer oligonucleotides or DNA fragments. One or more pools of oligos or DNA fragments can then also be subjected to LCR and, optionally, OSOS and / or PCA and / or PCR. Thus, hierarchical assembly can be performed to arrive at a product DNA molecule with a defined and desired sequence. The defined and desired sequence can be a specific and predefined sequence determined before starting the method, and short oligonucleotides can be designed to produce the specific, defined and desired sequence in the method.

[0017] The short oligos can together constitute at least a portion of the sequence of a DNA molecule having a desired assembled sequence. The method can be performed using any number of pools. In various embodiments, one pool, two pools, more than two pools, more than four pools, more than eight pools, more than 20 pools, or more than 25 pools of short oligos of the sizes described herein can be utilized. In various embodiments, a pool can contain at least 8 short oligos, at least 16 short oligos, at least 32 short oligos, or at least 64 short oligos, or between 8 and 32 short oligos, or between 8 and 64 short oligos. In various embodiments, polyethylene glycol, glycerol, betaine, sorbitol, or any combination thereof, can be added to a mixture subjected to LCR or to PCA and / or OSOS and / or PCR to assemble DNA molecules of a desired sequence.

[0018] The method of the present invention can assemble DNA molecules with a desired sequence as scarless DNA molecules. Scarless DNA refers to DNA that does not have any nucleotides introduced by or from the DNA synthesis process (e.g., residual nucleotides from linker molecules), or the product DNA does not have any nucleotides present that were not present in one of the original short oligonucleotides, for example, the product DNA does not have any such nucleotides present at the junction where two oligonucleotides are joined. A scarless DNA molecule of a desired sequence can correspond to a natural sequence, a synthetic sequence, or an engineered sequence. The method can also ligate short oligonucleotides in reactions in which all of the short oligonucleotides are present in solution, i.e., in some embodiments, none of the combined oligonucleotides are present on or attached to a solid phase (e.g., a DNA chip, bead, or microarray). In some embodiments, the ligase chain reaction is performed on oligonucleotides in which all of the oligonucleotides in the reaction are present in solution, or in which neither of the two annealing oligonucleotides is present on or attached to a solid phase or solid support. The present method can also simultaneously assemble oligos or DNA fragments and / or DNA molecules of desired sequences, i.e., a single reaction assembles oligonucleotides into longer oligos or DNA fragments. Thus, simultaneous assembly is distinct from methods in which oligos are assembled sequentially, i.e., a second oligo is annealed to a first oligo, and then a third oligo is annealed to a second oligo, so that the oligos are sequentially added to the end of a growing double strand or growing chain. In a simultaneous reaction, all of the oligos that form the longer oligo or DNA fragment, or product DNA molecule, are present in solution at the same time. Also, multiple oligos (or all of the oligos) present in solution at the same time participate in the reaction, anneal, and are joined by a ligase. A simultaneous reaction can also be a one-step reaction.In any embodiment, the method can be performed without using a restriction enzyme or restriction endonuclease, and the DNA molecule can be synthesized. In any embodiment, the DNA molecule of the desired sequence is not circular DNA. In any embodiment, the DNA molecule of the desired sequence is optionally not vector DNA.

[0019] In some embodiments, the method does not use linker or spacer sequences or oligos. Linker or adapter DNA or sequences can be short oligonucleotides that can be ligated to the ends of other DNA or oligonucleotide molecules. Linker, adapter, or spacer molecules or sequences can also be used to release polynucleotides from a solid support or to link or tether polynucleotides to a solid support. These molecules or sequences can provide sticky ends and / or overhangs that enable ligation. Linker, adapter, or spacer DNA sequences can also include, for example, restriction sites, recognition sites (e.g., in the case of a nicking endonuclease), poly-U sequences, or sequences with one or more uracil residues. Linker, adapter, or spacer DNA or sequences can be any nucleotide or nucleotide sequence that is not found in the DNA molecules of the desired sequence assembled by the method. In some embodiments, none of the oligonucleotides used in the method contain linker, adapter, or spacer sequences. In some embodiments, the method does not involve the use of linker, adapter, or spacer DNA or sequences. This is a further advantage of the method, making it more suitable for automation.

[0020] The DNA molecule assembled by this method and having a desired sequence can be any DNA molecule. In various embodiments, the DNA molecule having a desired sequence is 100 to 5,000 bp in length, or 100 to 10,000 bp in length, or 5,000 to 10,000 bp in length, or 5,000 to 15,000 bp in length, or 10,000 to 15,000 bp in length, or 10,000 to 20,000 bp in length, or 10,000 to 25,000 bp in length, or more than 1 kb in length, or more than 2 kb in length, or more than 3 kb in length, or more than 5 kb in length, or more than 10 kb in length, or more than 15 kb in length, or more than 20 kb in length.

[0021] Error rate The method of the present invention can produce DNA molecules of desired sequence with an error rate of less than 1 error per 2,000 base pairs, or less than 1 error per 5,000 base pairs, or less than 1 error per 7,500 base pairs, or less than 1 error per 10,000 base pairs, or less than 1 error per 11,000 base pairs, or less than 1 error per 12,000 base pairs, or less than 1 error per 13,000 base pairs, or less than 1 error per 14,000 base pairs, or less than 1 error per 15,000 base pairs, or less than 1 error per 16,000 base pairs, or less than 1 error per 17,000 base pairs, or less than 1 error per 20,000 base pairs, or less than 1 error per 25,000 base pairs.In any embodiment, the method can produce DNA molecules with the very low error rate described herein without using error-correcting enzymes.Error-correcting enzymes are enzymes used to correct errors in DNA synthesis. In one embodiment, an error-correcting enzyme can identify a mismatch in a double-stranded DNA molecule and initiate a double-strand break as a result of the mismatch. The double-strand break can be at or near the site of the mismatch. The mismatch can be excised by the same or another enzyme (e.g., an exonuclease), and the DNA reassembles without sequence errors and in the correct sequence. An example of an error-correcting enzyme is a mismatch endonuclease (e.g., CEL I and / or CEL II) known to those skilled in the art. Other (non-limiting) examples of error-correcting enzymes include any one or more of mung bean endonuclease, T7 endonuclease I, and endonuclease V.

[0022] Oligo In various embodiments of the method, a DNA ligase is contacted with a plurality of short oligonucleotides having at least a portion of the desired sequence of a DNA molecule to form a mixture. The plurality of initial or short oligonucleotides used in the method can be 2-250, 2-100, or 6-30 nucleotides (nt) in length, but may be 6-10 nt, 6-12 nt, 6-13 nt, 6-14 nt, 6-15 nt, 6-17 nt, 6-18 nt, 6-19 nt, 6-20 nt, 6-22 nt, 6-25 nt, 6-30 nt, 6-35 nt, 5-16 nt, 5-17 nt, 5-18 nt, 5-19 nt, 7-10 nt, 7-12 nt, 7-15 nt, or 7-18 nt. The initial oligo or short oligo can be 7 nt, or 7-18 nt, or 7-19 nt, or 7-20 nt, or 7-25 nt, or 7-30 nt, or 7-35 nt, or 8-12 nt, or 8-15 nt, or 8-17 nt, or 8-18 nt, or 8-19 nt, or 8-20 nt, or 8-21 nt, or 8-22 nt, or 8-25 nt, or 8-30 nt, or 8-35 nt, or 10-22 nt, or 16-18 nt, or 15-19 nt, or 14-20 nt, or less than 18 nt, or less than 17 nt, or less than 16 nt, or less than 15 nt, or less than 12 nt. The initial oligo or short oligo can be included in one or more oligo pools. In various embodiments, at least 25%, or at least 30%, or at least 40%, or at least 50%, or at least 60%, or at least 70%, or at least 80%, or at least 90%, or at least 95%, or at least 97% of the initial oligos or short oligos in each oligo pool or set (or in the mixture contacted with DNA ligase) may be within any of the size ranges described herein.In any embodiment, the oligos in the pool or contacted with the DNA ligase can overlap by, for example, 3 nt, or 4 nt, or 5 nt, or 6 nt, or 7 nt, or 8 nt, or 9 nt, or 10 nt, or more than 10 nt, or about half the length of the oligos (which may be rounded up or down, or optionally within 1 nt, 2 nt, or 3 nt of the half length). Thus, in some embodiments, the oligos are 8-mers and have a 4-nt overlap with an at least partially complementary 8-mer, or the oligos are 16-mers and have an 8-nt overlap with an at least partially complementary oligonucleotide. In other embodiments, the short oligos in the plurality of short oligonucleotides overlap by at least 3 nt, or at least 4 nt, or at least 5 nt, or at least 6 nt, or at least 7 nt, or at least 8 nt, or at least 9 nt. In another embodiment, the short oligos in the plurality can overlap by about half the length of the shorter of the overlapping oligos, e.g., 16-mers can overlap by 8 nt. When short oligos of different lengths are used, they can overlap by half the length of the shorter of the overlapping oligos. In any embodiment, less than 10%, or less than 5%, or less than 3%, or less than 1% of the short oligos in the mixture of DNA ligase and initial or short oligos (or in the pool for performing the ligase chain reaction) are longer than 30 nt, or 29 nt, or 25 nt, or 22 nt, or 20 nt, or 18 nt, or 17 nt, or 16 nt.

[0023] In some embodiments, a mix of sizes may be used. In various embodiments, the oligos in each pool may be of any of the length ranges described, present in any of the percentage amounts described. In any embodiment, short or long oligos may be 5' phosphorylated. 5' phosphorylation may also be achieved by contacting the oligos with a suitable kinase, which may occur prior to the ligase chain reaction step. Oligos may also be pre-synthesized with 5'-P. However, any method that provides 5' phosphorylated oligonucleotides may be used. In one embodiment, the kinase may be T4 polynucleotide kinase (T4PNK), although any suitable kinase may be used.

[0024] In any embodiment of the method or DNA assembly reaction, there can be no nucleic acids in the mixture of DNA ligase and a plurality of short oligonucleotides that have a length longer than 16 nt, or longer than 22 nt, or longer than 25 nt, or longer than 30 nt, or less than 10%, or less than 5%, or less than 3%, or less than 1% (by molar amount or number of oligos) of the oligonucleotides in the mixture have a length longer than 22 nt, or 25 nt, or 30 nt.

[0025] In various embodiments, the method can utilize oligos in one or more pools. In various embodiments, a pool or set can contain 2 to 250, or 2 to 150, or 2 to 125 short oligos, which can be combined in oligo pools or pairs of pools. In other embodiments, 8 to 250, or 8 to 150, or 8 to 125 short oligos can be included in a pool or set and used to initiate the method. In more embodiments, the plurality of short oligos can comprise one or more pool sizes or set sizes of at least 15 oligos, or at least 20 oligos, or at least 50 oligos, or more than 64 oligos, or more than 65 oligos, or at least 75 oligos, or at least 100 oligos, or 15-250 oligos, or 20-250 oligos, or 30-250 oligos, or 40-250 oligos, or 50-250 oligos, or 20-200 oligos, or 30-200 oligos, or 40-200 oligos, or 50-200 oligos, or 15-150 oligos, or 20-150 oligos, or 30-150 oligos, or 40-150 oligos, or 50-150 oligos.

[0026] In this method, oligonucleotides can be present together to form a mixture.The mixture can contain oligos in a suitable buffer, and the oligos can anneal to complementary oligos in the mixture.In some embodiments, the overlap is about half the length of the oligo.Thus, a 16nt oligo can overlap with another oligo in the mixture by 8nt.In other embodiments, the overlap can be greater or less than half the length of the oligo, for example, the overlap can be half the length of the oligo plus or minus 1, 2, 3, 4, or 5nt.

[0027] A plurality of short oligos (or sets of DNA fragments), when mapped and placed adjacent to one another, can constitute at least a portion (or the entire sequence) of the assembled product DNA molecule having the desired sequence. In some embodiments, at least a portion of the short oligonucleotide overlaps with and is complementary to a portion of the sequence of at least one other short oligonucleotide in the plurality. The plurality of oligos can be divided into one or more pools to constitute oligo sets. In some embodiments, the short oligonucleotides in the plurality overlap with two other short oligonucleotides in the plurality, except for terminal (short) oligonucleotides, which can overlap with only one other short oligonucleotide. The terminal short oligonucleotides comprise the 5' and 3' ends of the product nucleic acid molecule to be assembled (or comprise the 5' and 3' ends of flanking sequences, if present). Optionally, the terminal short oligos are not part of any flanking sequences.

[0028] The short oligos can have any length listed herein, but in various embodiments, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90% of the short oligonucleotides overlap with two other short oligonucleotides. As shown in Figure 1, at least two of the short oligonucleotides are adjacent to each other when bound to their complementary sequences, with adjacent oligos being bound to complementary sequences, with the 5' nucleotide of the first oligo being bound to the nucleotide on the complementary sequence adjacent to the 3' nucleotide of the second oligo, or vice versa; i.e., the first and second oligos are adjacent or adjacent to each other. In any embodiment, binding can refer to Watson-Crick base pairing or hydrogen bonding between base pairs. When the short oligonucleotides are annealed to complementary sequences and adjacent to each other, they can be covalently ligated by a DNA ligase. The 5'-P of the first oligo can be ligated to the 3'-OH of the second oligo by a ligase. In some embodiments, the overlap constitutes about half the length of the oligo that is bound to the neighboring oligo (e.g., a 16-mer can have an 8 bp overlap with one or two neighboring oligos). In some embodiments, at least 75%, or at least 80%, or at least 90% of the short oligonucleotides are capable of binding to complementary oligo sequences in the mixture, and two out of three oligonucleotides are adjacent to each other when so bound.

[0029] In some embodiments, a DNA ligase can be contacted with multiple initial oligonucleotides or short oligonucleotides (or a set of DNA fragments) to form a mixture. Examples of DNA ligases that can be used include T4 DNA ligase (derived from bacteriophage T4), but any suitable DNA ligase can be used that catalyzes the formation of a covalent phosphodiester bond between the 3' hydroxyl end of one annealed oligonucleotide and the 5' phosphate end of the directly adjacent annealed oligonucleotide, thereby linking the oligonucleotides to form a covalent bond and a longer oligonucleotide or double-stranded DNA fragment. Further examples of DNA ligases include (but are not limited to) T3 DNA ligase, T7 DNA ligase, Taq DNA ligase, and 9°N™ DNA ligase. In some embodiments, the DNA ligase may be a thermostable DNA ligase, i.e., stable at temperatures above 70°C, while in other embodiments, the thermostable ligase may be stable at temperatures above 90°C, or above 93°C, or above 94°C, or at 90-100°C, and for any period selected from at least 30 seconds, or at least 60 seconds, or from 30-60 seconds to at least 30 minutes to at least 60 minutes. Thermostable DNA ligases may also remain active after exposure to temperatures of at least 70°C, or 85°C, for 20 minutes, 30 minutes, or 1 hour. In various embodiments, contacting may include ATP and / or NAD, or other cofactors or requirements for a particular ligase may be used.

[0030] The desired sequence DNA molecule can have any sequence. In some embodiments, the method can be sequence-independent, meaning that no specific sequence must be present for the method to function and produce the desired sequence DNA molecule. In various embodiments, the desired sequence DNA molecule synthesized by the method can be at least 20 bp, or at least 30 bp, or at least 40 bp, or at least 60 bp, or 40-60 bp, or 20-100 bp. Because the method can apply hierarchical assembly, desired sequence DNA molecules of any size, for example, greater than 1 kb, or 1-3 kb, or greater than 10 kb, or 1-10 kb, or 1-12 kb, can be assembled by the method. The desired sequence DNA molecule can also include flanking sequences, such as UTRs, promoters, introns, or flanking homologous sequences. In various embodiments, the DNA molecule of the desired sequence can have a GC content of at least 30%, or at least 40%, or at least 50%, or at least 60%, or 30-60%.

[0031] Ligase chain reaction Ligase chain reaction (LCR) (also called ligase cycling reaction) is a method of DNA assembly, which can optionally be combined with a subsequent polynucleotide assembly reaction (e.g., PCA, OSOS, or overlap-extension PCR (OE-PCR)) and amplification of the DNA product (e.g., by PCR). LCR involves denaturation, annealing, and ligation of adjacent oligonucleotides by ligase in a reaction process that can be cyclically repeated. In LCR, DNA ligase contacts first and second adjacent oligonucleotides, which are annealed to a third oligonucleotide that has a sequence complementary to and overlapping a portion of at least one (or both) of the first and second oligonucleotides (Figure 1). The 5'-terminal nucleotide of the first oligo can be ligated to the 3'-terminal nucleotide of the second oligo by DNA ligase. The 5'-terminal nucleotide of the first oligo is phosphorylated, and the 3'-terminal nucleotide of the second oligo has a 3'-OH, thereby providing a 5'-P and 3'-OH substrate for the ligase on the adjacent first and second oligos. The ligated oligo (now the longer oligonucleotide) and the (complementary) third oligo can then be denatured, and the cycle can be repeated. In various embodiments, at least two, or at least five, or at least 10, or at least 15, or at least 20, or at least 25 cycles of denaturation, annealing, and ligation can be performed in the LCR protocol. Thus, LCR can include contacting a DNA ligase with three or more polynucleotides to form a mixture; annealing the polynucleotides such that the first and second polynucleotides are adjacent to each other while annealing to a third (complementary) polynucleotide having a sequence complementary to one or both of the first and second polynucleotides; and performing ligation between the first and second polynucleotides to provide a nucleic acid product.The polynucleotides are then optionally subjected to denaturation and annealing, and the process can optionally be repeated.

[0032] LCR can be followed by a DNA assembly and / or amplification procedure utilizing a thermostable DNA polymerase (e.g., Taq polymerase) to assemble or amplify oligos resulting from successful ligation, e.g., PCA, OSOS, OE-PCR, or PCR protocols (or any combination and variation thereof). In different embodiments, LCR can be performed with or without primers. In the present invention, LCR, PCA, OSOS, or OE-PCR can be performed on short oligos of any size described herein, including (but not limited to) oligos less than 30 nucleotides, or less than 22 nucleotides, or less than 20 nucleotides, or less than 15 nucleotides, or less than 12 nucleotides, or oligos greater than 6 nucleotides, or greater than 12 nucleotides, or greater than 13 nucleotides, or oligos of 19 nucleotides, or 18 nucleotides, or 16 nucleotides, or less than 16 nucleotides, or 8-18 nucleotides, or 8-17 nucleotides, or 8-16 nucleotides, or 8-15 nucleotides. In some embodiments, any of these reactions can also include longer complementary sequences, which in some embodiments can be 2-4 times longer than the short oligos in the mixture. However, any of the oligo lengths described herein can be utilized in LCR or other DNA assembly and / or amplification reactions. In some embodiments, annealing and / or ligation can be performed at or near the melting temperature of one or both of the oligos involved in the ligation reaction, e.g., within 1°C, 2°C, 3°C, or 5°C. In various embodiments, LCR can be performed with at least two, or at least three, or at least eight oligos, or at least 16 oligos, or at least 32 oligos, or at least 64 oligos, or 8-32 oligos, or 8-64 oligos, and the oligos can have any length described herein.LCR can include (or be preceded by) phosphorylation of the 5'-P of the donor oligonucleotide so that a ligase can join the 5'-P of the donor to the 3'-OH of the acceptor oligo. In one embodiment, phosphorylation is performed by contacting the oligo with a kinase, such as any kinase described herein. In some embodiments, the method is performed isothermally, i.e., the temperature is not varied in a gradient that determines the assembly order of the oligonucleotides. In some embodiments, LCR can be performed isothermally. In various embodiments, any of LCR, PCA, OSOS, and PCR can be performed without the use of exonucleases.

[0033] Briefly, the LCR reaction involves thermal decomposition or denaturation of the oligos in a set. The temperature is then lowered, and the oligos anneal to their complementary strands in the oligo set. The oligos are designed so that the two oligos to be linked anneal directly adjacent to each other on the same complementary strand, with complementary sequences for each oligo. The first oligo has a phosphate group on its 5'-terminal nucleotide, and the second oligo has a 3'-hydroxyl group on its 3'-terminal nucleotide, thus providing 5'-P and 3'-OH substrates for the ligase. The ligase then covalently links the adjacent oligos to a single (now larger) polynucleotide linked to the complementary strand. In subsequent cycles, the linked polynucleotide is then thermally decomposed and reannealed to the complementary strand again, next to and adjacent to the directly adjacent oligo, and religated by the ligase. One or more additional cycles of denaturation, annealing, and ligation can then be performed. A step of phosphorylating the 5' nucleotide can be optionally included. In various embodiments, at least 10, or at least 15, or at least 19, or at least 20, or at least 25 cycles can be included in the LCR protocol. LCR usually produces double-stranded DNA. An example of an LCR protocol is provided in Example 1.

[0034] OSOS "one-step, one-shot" is a PCR-type reaction for assembling DNA using DNA polymerase, dNTPs, and (optionally) a crowding agent, which can include (optionally) amplifying overlapping oligonucleotides to form a nucleic acid product. Details regarding these reactions can be found, for example, in US2014 / 0308710, published October 16, 2014, which is incorporated herein by reference in its entirety, including all tables, figures, and claims. In one example, an OSOS protocol is shown in Example 1. However, those skilled in the art using this disclosure will recognize that protocols can be varied and adapted depending on the specific nucleic acid being assembled. In this protocol, the reaction is cycled nine times, but in other embodiments, it may be cycled at least five times, or at least 10 times, or at least 12 times, or at least 15 times, or at least 19 times, or at least 20 times, or at least 25 times. OSOS involves cycling through annealing, extension, and denaturation steps. In OSOS, any one or more of the steps can be time-varying steps. A time-varying step is a step that occurs over a period of time that varies or changes between cycles. A time-varying step of a cycle (e.g., a time-varying extension step as shown in step 5 of the protocol) can be increased or decreased in time compared to the same step in the previous cycle, or compared to the first such step in the cycle, or compared to the step in the first cycle of the method. For example, in one embodiment, the extension step of each cycle is a time-varying step. The time change can be an increase of about 10 seconds per cycle, or about 12 seconds per cycle, or about 14 seconds per cycle, or about 15 seconds per cycle, or about 17 seconds per cycle, or about 20 seconds per cycle. In some embodiments, OSOS is performed with a primer in the reaction; in other embodiments, OSOS is performed without a primer, and the primer can optionally be a terminal primer. A primer or terminal primer can be used, for example, if amplification is also desired.In various embodiments, the primers can be at least 3, or at least 4, or at least 5, or at least 6, or 4 to 6, or 4 to 8, or 6 to 15 nucleotides in length. In any embodiment, the crowding agent can be polyethylene glycol (e.g., PEG 8000), which can be provided in the reaction buffer at a concentration greater than 0.0188%, or greater than 0.025%, or greater than 0.375%.

[0035] Thus, in one embodiment, an OSOS reaction can include assembling a nucleic acid molecule from a set of overlapping oligonucleotides in a single step. The reaction can include one or more of the following steps: combining a set of at least five overlapping oligonucleotides with a DNA polymerase, a mixture of dNTPs, and (optionally, a crowding agent) in a reaction vessel to form an assembly mixture; subjecting the assembly mixture to at least 25 cycles (each cycle including an annealing step performed at 50°C to 77°C, an extension step performed at 50°C to 77°C, and a denaturation step performed above 90°C); and thereby assembling a nucleic acid molecule from the set of overlapping oligonucleotides in a single step.

[0036] Polymerase cycling assembly (PCA) is a method known to those skilled in the art for assembling larger nucleic acid molecules from shorter fragments. PCA can be performed on the products of an LCR reaction. Similar to how forward and reverse primers exist that allow DNA polymerase to fill in the entire template sequence, PCA uses a similar technique but with multiple oligonucleotides. PCA utilizes DNA hybridization and annealing, using DNA polymerase to assemble DNA sequences in the correct order based on single-stranded oligos (or overhangs) with complementary sequences. PCA can assemble oligonucleotides or DNA fragments (optionally at least 30 nucleotides or at least 60 nucleotides) into larger DNA molecules. Larger DNA molecules can be assembled using cycling reactions that include annealing, extension, and denaturation steps. In some embodiments, PCA reactions can be performed without primers (e.g., terminal primers). However, in some embodiments, such primers can be used in PCA protocols, for example, when amplification is desired.

[0037] In some embodiments, the DNA ligase used in LCR is a thermostable ligase. For example, if a thermostable DNA ligase is used, it can be T4 DNA ligase or Taq ligase. However, other ligases, such as Pfu DNA ligase, or others, can also be used. In one embodiment, the thermostable ligase can maintain its activity at temperatures above 45°C for at least 1 hour. In some embodiments, the thermostable ligase used in the method is active at about 45-65°C or 45-80°C, optionally for at least 1 hour. In some embodiments, the ligase has a half-life of at least 48 hours at 65°C and / or a half-life of more than 1 hour at 95°C. In some embodiments, the activity of the ligase is NAD-dependent, and in such cases, NAD is present in the reaction mixture. "Activity" refers to at least 50% of the activity of a reaction performed under standard reaction conditions for evaluating the enzyme.

[0038] In some embodiments, the oligos or sets that are combined in this method (or in the LCR, PCA, OSOS, OE-PCR reaction that can be used in this method) are in solution; that is, in some embodiments, none of the oligos in the multiple or set are immobilized or bound to a microarray, DNA chip, bead, or other solid support that binds to one or more of the oligos, and no reaction components are immobilized or bound to them.In one embodiment, all of the longer oligos of desired sequence or the short oligos that are assembled into DNA fragments or DNA molecules are in solution.Because this method can be applied using oligonucleotides in solution, they are therefore suitable for automation.

[0039] Longer oligos or DNA fragments produced by ligase chain reaction can be further assembled by any DNA assembly technique, such as OSOS and / or polymerase cycling assembly (PCA). In various embodiments, the LCR reaction or method disclosed herein can be performed as a single-step or one-step reaction, meaning that once the reaction components are placed in a reaction vessel, the reaction is carried out, and DNA molecules of the desired sequence are assembled without the need to reopen the vessel, and optionally, the vessel does not need to be opened during subsequent DNA assembly reactions (e.g., PCA and / or PCR reactions) (if used). In any embodiment, LCR can be followed by a DNA assembly reaction (e.g., OSOS). LCR can also be followed by a PCA reaction. LCR can also be followed by a PCA reaction and, optionally, a DNA assembly reaction. In any of the embodiments, the series of reactions can be followed by PCR for amplification. When PCA and / or PCR are used, short oligonucleotides and DNA ligase can form a mixture, and after performing LCR, the resulting longer oligos or DNA fragments can be contacted with DNA polymerase and dNTPs, as well as any other necessary components, to join the set of longer oligos or DNA fragments, thereby assembling a DNA molecule having a desired sequence.

[0040] Illustrative Embodiments In one embodiment, DNA molecules of a desired sequence are assembled using a method in which a mixture of DNA ligase and short oligonucleotides contains 2 to 250 short oligonucleotides of 8 to 30 or 8 to 22 nucleotides in length. In one embodiment, LCR is followed by PCA and PCR. In another embodiment, DNA molecules of a desired sequence are assembled from 8 to 150 short oligonucleotides of 8 to 30 or 8 to 22 nucleotides in length. The short oligonucleotides can optionally constitute at least 50%, at least 75%, or at least 90% (by molar ratio or w / w) of the polynucleotides present in the mixture. In this embodiment, the method can be performed entirely in solution. Optionally, no oligonucleotides longer than 30 nucleotides in length can be present in the mixture, although longer oligonucleotides can optionally be present, where less than 10%, less than 5%, less than 3%, or less than 1% (by molar ratio) of the oligonucleotides in the mixture have a length longer than 30 nt. In certain embodiments, the short oligonucleotides are 8-mers or 16-mers, or have a length of 8 to 16 nucleotides. In any embodiment herein, the assembled DNA molecule can have an error rate of less than 1 error per 10,000 nucleotides. In any embodiment, the DNA molecule of the desired sequence can have a GC content of at least 30% or 30 to 60%.

[0041] In one embodiment, the method includes contacting a DNA ligase with a plurality of short oligos 8-22 nucleotides in length to form a mixture. At least 50% of the short oligos can be 8-22 or 10-22 nucleotides in length, or optionally, at least 70%, or at least 90%, or 100% of the short oligos in the DNA ligase mixture can be 8-22 or 10-22 nucleotides in length. In certain embodiments, the short oligos are 8-mers or 16-mers, or 8-16 nucleotides in length. In this embodiment, the method can be performed entirely in solution. Optionally, no oligonucleotides longer than 22 nucleotides in length are present in the mixture, although longer oligonucleotides can optionally be present in a small amount of longer polynucleotides, e.g., less than 10%, or less than 5%, or less than 3%, or less than 1% (by number of oligos) of the oligonucleotides in the mixture are longer than 20 nt or 22 nt in length. In certain embodiments, the short oligonucleotides are 8-mers or 16-mers, or have a length of 8 to 16 nucleotides. In any embodiment herein, the assembled DNA molecule can have an error rate of less than 1 error per 8,000 or 10,000 nucleotides.

[0042] In another embodiment, the method includes contacting a DNA ligase with a plurality of short oligos 14-20 nucleotides in length to form a mixture or oligos 16-18 nucleotides in length. At least 50%, at least 75%, or at least 90% of the short oligos can be 16-18 nucleotides in length, or 15-19 nucleotides in length, or 14-20 nucleotides in length. In certain embodiments, the short oligos are 16-mers, 17-mers, or 18-mers. In this embodiment, the method can be performed entirely in solution. Optionally, no oligonucleotides longer than 20 nucleotides in length are present in the mixture, although longer oligonucleotides can optionally be present in a small amount of longer polynucleotides, e.g., less than 10%, less than 5%, less than 3%, or less than 1% (by number of oligos) of the oligonucleotides in the mixture have a length longer than 20 nt. In any embodiment herein, the assembled DNA molecules can have an error rate of less than 1 error per 8,000, or 9,000, or 10,000 nucleotides.

[0043] In any embodiment, a DNA molecule of a desired sequence can be assembled in this manner from overlapping sets of 14 x 8 mers. Various numbers of sets can be used, for example, 5, or 7, or 9.

[0044] In one embodiment, DNA molecules of desired sequence are assembled in this method from a mixture containing six pools of 32 oligos, or two pools of 64 oligos, or one pool of 111 oligos. LCR is optionally followed by OSOS and / or PCA and / or PCR.

[0045] In one embodiment, DNA molecules of desired sequence are assembled by the present method from a mixture containing more than 65 short oligonucleotides.

[0046] In any embodiment of this method, the mixture can contain short oligonucleotides that overlap by about half the length of the short oligos, e.g., within 1-2 nucleotides in length. For example, in any embodiment of this method, the mixture can contain short oligonucleotides that are 8-mers that overlap by 4 nt, or 16-mers that overlap by 8 nt, or 8-mers that overlap by 3-5 nt, or 16-mers that overlap by 7-9 nt.

[0047] In any embodiment of the method, LCR is performed with 64 oligos, or more than 65 oligos, or more than 65 oligos.

[0048] In any embodiment, LCR can be followed by a DNA assembly reaction (e.g., OSOS) with a time-varying step, where the time-varying step is an extension step, and the extension step increments by 15 seconds per cycle. [Example]

[0049] Example 1 This example demonstrates the synthesis of a 240-bp DNA fragment of a randomly generated synthetic sequence with approximately 50% GC content. Seven overlapping pools of 14 8-mers (14 x 8-mers) containing oligos with 4-bp overlaps were ligated using T4 DNA ligase to form seven pools of 60-mers, with pools overlapping with the oligos in adjacent pools. After LCR, these seven pools of 60-mers were combined into one pool, and the final 240-bp product was assembled by polymerase chain assembly reaction. The 240-bp product is shown in Figure 2. Cloning and Sanger sequencing of 96 clones for the final 240-bp product was performed for validation using the Zero Blunt® PCR Cloning Kit (ThermoFisher, Waltham, MA) for cloning blunt-end PCR products (Table 1).

[0050] Two pools were formed in a volume of 25 nl using an acoustic liquid handling system to distribute the fluid, and 16 μl of water was added to achieve a concentration of approximately 30 nM / oligo. To each 16 μl pool, 10 μl of a master mix containing a 1:1 ratio of T4PNK and LCR mixtures was added, mixed thoroughly, and incubated in a thermal cycler for approximately 5 hours for phosphorylation, denaturation, annealing, and LCR according to the following protocol: The T4PNK mixture contained 2 μl of water, 2 μl of 10× T4 DNA ligase buffer, and 1 μl of T4PNK. The LCR mixture had 1.5 μl of water, 2.5 μl of 10× Taq ligase buffer, and 1 μl of Taq ligase. The T4PNK-LCR protocol was as follows: 1. 37℃ 30 minutes 2. 98℃ 2 minutes 3. 85°C for 2 minutes, ramp 1°C / sec 4. 50°C for 5 minutes, ramp 0.1°C / sec 5. 37℃ 5 minutes 6. 95℃ 10 seconds 7. 85°C 1 minute, ramp 1°C / sec 8. 55°C 1 minute, ramp 1°C / sec 9. 50℃ 2 minutes 10. 45℃ 5 minutes 11. Move to 6, 9 times 12. 95℃ 10 seconds 13. 65℃ 5 minutes 14. 55℃ 10 minutes 15. 50℃ 5 minutes 16. 45℃ 5 minutes 17. Move to 12, 19 times 18. 50℃ 30 minutes 19. 10℃ 0 (permanent)

[0051] After the PNK-LCR protocol, 20 μl of PCA mix (PCR mix of primer-free Phusion® DNA polymerase (Finnzymes Oy, Vantaa, Finland) and 50 mM TMAC (tetramethylammonium chloride)) was added to each well along with 6 μl of master mix, as described above. Ten cycles of OSOS "One Step One Shot" (PCR-type protocol) were performed using the following protocol: 1. 98℃ 1 minute 2. 98℃ 30 seconds 3. 68℃ 1 minute 4. 60℃ 1 minute 5. Add 55℃ 1 minute, 15 seconds per cycle 6. 50℃ 1 minute 7. Go to 2, 9 times 8. 72℃ 5 minutes 9. 10℃ 0 (permanent)

[0052] 20 μl of PCR mix (including primers) was added to each of the wells with the PCA reaction. PCR was performed using the following protocol: 1. 98℃ 1 minute 2. 98℃ 30 seconds 3. 72℃ 45 seconds, add 15 seconds per cycle 4. 55℃ 1 minute, 15 seconds / cycle added 5. Go to 2, 9 times 6. 98℃ 30 seconds 7. 72℃ 4 minutes 8. 65℃ 6 minutes 9. Move to 6, 19 times 10. 72℃ 5 minutes 11. 10℃ 0 (permanent)

[0053] The products were then loaded onto a gel for confirmation of the formation of the desired DNA molecule shown in FIG.

[0054] [Table 1]

[0055] As shown in Table 1, cloning and sequencing confirmation of the final assembly revealed an overall error rate of 1 at 14,400 bp. This is approximately 14-fold higher sequence fidelity than that obtained in synthetic DNA constructs using standard 40-mers (without exposure to an enzymatic step of error correction). This resulted in a percent error-free molecule (%EFM) rate of approximately 95%, where %EFM describes the percentage of colonies per clone that would be expected to be error-free if sequenced in their entirety.

[0056] Example 2 This example demonstrates the synthesis of GFP fragments from 16-mers, 30-mers, and 40-mers. The protocol used is the same as that provided in Example 1. First, a pool of short oligonucleotides (16-mers) was used to construct a 901-bp sequence of GFP. Varying numbers of 16-mers were used at various dilutions using Taq ligase. Pool sizes were six pools of 32 × 16-mers, two pools of 64 × 16-mers, and one pool of 111 × 16-mers. The oligos were 5'-phosphorylated using T4 polynucleotide kinase and assembled using ligase chain reaction, followed by PCA and PCR to assemble and amplify the DNA products. Assembly was successful for all pool sizes, as shown in Figure 3a. Gelation was performed, and confirmation of assembly is provided in Figure 3a.

[0057] Sequencing was performed to confirm the sequences of the resulting DNA molecules. An error rate of 1 error per 8500 bp was observed for a subset of the assembled DNA molecules. Therefore, it was demonstrated that highly complex mixtures of short oligos can be assembled using a method involving LCR and PCA / PCR. For comparison, 30-mer and 40-mer oligos were synthesized and used in this method to assemble and amplify GFP assembled from a single pool of 30-mer and 40-mer oligos for LCR. Following LCR, OSOS and PCR were performed. This method also successfully assembled all pool sizes, demonstrating the robustness of the method. [The resulting gel is shown in Figure 3b.]

[0058] Example 3 To demonstrate the ability of this method to assemble larger DNA molecules, influenza HA (1927 bp) and NA (1609 bp) nucleic acids with vector ends were assembled using this method. Various pooling scenarios were performed, and DNA molecules were successfully assembled, including 16-mers divided into five subpools (each subpool containing 64 oligos overlapping with adjacent subpools (128 bp)), 16-mers as a single pool, 30-mers as a single pool, and 40-mers as a single pool. Sequencing confirmation of the assembled nucleic acid molecules showed that 92% and 89% of the HA and NA molecules were assembled error-free. This was compared to the assembly of molecules from 60-mers, where 37% and 29% of the HA and NA molecules were assembled error-free. The resulting gel is shown in Figure 4a.

[0059] Example 4 This example demonstrates the assembly of 3100 bp HA and 2800 bp NA nucleic acid constructs using 16mers under various pooling scenarios, including 8 x 16mer oligos and 4 x 16mers, which were found to successfully assemble desired DNA molecules of specific sequence using the disclosed method, which involves LCR, followed by a step of polymerase cycling assembly (PCA), followed by another step of PCR, all performed according to the protocol in Example 1. The results are shown in Figure 4b.

[0060] Example 5 This example shows the assembly of a 10 kb portion of the Bacillus subtilis genome sequence using 26 overlapping pools of 16mers using LCR followed by PCA and PCR for final assembly using the protocol shown in Example 1. Figure 5 demonstrates the formation of a 10 kb product.

[0061] Example 6 This example demonstrates that our method achieves significantly higher sequence fidelity than other methods. Thirty-two DNA constructs, ranging in size from 200 bp to 1800 bp and with varying degrees of GC content, were assembled from 16-mers, 18-mers, and 22-mers. The GC percentages were 30%, 40%, 50%, or 60% (GC4 panel). The gel is shown in Figure 6. As shown in Figure 6, assembly was robust and performed well at all small oligo sizes and all levels of GC content. Figure 7 shows that the highest sequence fidelity was obtained starting with 16-mers and 18-mers.

Claims

1. 1. A method for assembling oligonucleotides into a DNA molecule having a desired sequence, comprising: a) contacting a DNA ligase with a plurality of short oligonucleotides that constitute at least a portion of the desired sequence of the DNA molecule to be assembled to form a mixture; wherein at least a portion of the plurality of short oligonucleotides overlaps with and is complementary to a portion of the sequence of at least one other short oligonucleotide in the plurality of short oligonucleotides, at least two of the short oligonucleotides are adjacent to each other when bound to their complementary sequences, and the plurality of short oligonucleotides are 6-16 nucleotides in length; b) performing a ligase chain reaction on the mixture, thereby generating a set of polynucleotides; c) contacting the set of polynucleotides with a DNA polymerase and dNTPs to join the set of polynucleotides, thereby assembling the DNA molecule having the desired sequence. Including, wherein none of the oligonucleotides in the mixture are immobilized on a solid support. method.

2. The method of claim 1 , wherein the set of polynucleotides is combined by a DNA assembly reaction.

3. The method of claim 1 , wherein the set of polynucleotides is joined by polymerase cycling assembly.

4. 4. The method of any one of claims 1 to 3, further comprising contacting the plurality of short oligonucleotides with a kinase prior to or simultaneously with the contacting of the plurality of short oligonucleotides with the DNA ligase.

5. The method according to any one of claims 1 to 4, wherein the DNA ligase is a thermostable DNA ligase.

6. The method according to any one of claims 1 to 4, wherein the DNA ligase is T4 DNA ligase or Taq ligase.

7. 7. The method of any one of claims 1 to 6, wherein the adjacent short oligonucleotides comprise a phosphorylated 5' terminal nucleotide of a first short oligonucleotide and a 3' hydroxyl on the 3' terminal nucleotide of a second short oligonucleotide.

8. The method of any one of claims 1 to 7, further comprising amplifying the DNA molecule having the desired sequence using the polymerase chain reaction.

9. The method according to any one of claims 1 to 8, which is carried out in solution.

10. 10. The method of any one of claims 1 to 9, wherein the DNA molecule having the desired sequence is 100 to 10,000 base pairs in length.

11. The method of any one of claims 1 to 10, wherein the DNA molecule having the desired sequence is 100 to 5,000 base pairs in length.

12. The method of any one of claims 1 to 11, wherein the desired sequence further comprises a universal 5' flanking sequence and a universal 3' flanking sequence.

13. The method of any one of claims 2 to 12, further comprising combining multiple pools of polynucleotides to join the polynucleotides via polymerase cycling assembly.

14. The method of any one of claims 1 to 13, further comprising at least 10 cycles of polymerase chain reaction to amplify the DNA molecule having the desired sequence.

15. The method of any one of claims 1 to 14, wherein the plurality of short oligonucleotides comprises at least 10 short oligonucleotides.

16. The method of any one of claims 1 to 15, wherein the plurality of short oligonucleotides comprises at least 20 short oligonucleotides.

17. 15. The method of any one of claims 1 to 14, wherein the plurality of short oligonucleotides comprises 2 to 250 short oligonucleotides.

18. The method of any one of claims 1 to 17, which is carried out without the use of restriction enzymes.

19. 19. The method of any one of claims 1 to 18, wherein the DNA molecule having the desired sequence has an error rate of less than 1 error per 2,000 base pairs.

20. 19. The method of any one of claims 1 to 18, wherein the DNA molecule having the desired sequence has an error rate of less than 1 error per 14,000 base pairs.

21. 21. The method according to claim 19 or 20, wherein said error rate is obtained by said method without the use of error correcting enzymes.

22. 22. The method of any one of claims 1 to 21, wherein the plurality of short oligonucleotides constitutes at least 15 pools of oligonucleotides.

23. The method of any one of claims 1 to 22, wherein the assembly is carried out entirely in vitro.

24. The method of any one of claims 1 to 23, wherein the plurality of short oligonucleotides are 8-mers or 16-mers.

25. The method according to any one of claims 1 to 24, wherein the DNA molecule having the desired sequence is a scarless DNA molecule.

26. 26. The method of any one of claims 1 to 25, wherein the plurality of short oligonucleotides comprises more than 64 short oligonucleotides.

27. 27. The method of any one of claims 1 to 26, performed without the use of linker, adapter, or spacer DNA molecules.

28. 28. The method of any one of claims 1 to 27, wherein the ligase chain reaction comprises at least five cycles of denaturation, annealing, and ligation.

29. 29. The method of any one of claims 1 to 28, wherein the plurality of short oligonucleotides comprises more than 64 short oligonucleotides.

Citation Information

Patent Citations

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