Molecular cloning encompasses a series of laboratory techniques needed to produce plasmids containing specific recombinant DNA1. These ubiquitous techniques often act as a bottleneck in the experimental workflow2. Many molecular cloning techniques rely on the assembly of DNA fragments in vitro using a series of enzymatic reactions prior to transformation into a host strain (e.g., Escherichia coli DH5a) for amplification3,4,5,6,7. As in vitro plasmid assembly methods rely on enzymes, purchasing or purifying enzymes can be both costly and time-consuming.
In vivo assembly (IVA) is a molecular cloning method that relies on intermolecular recombination of DNA fragments in a suitable host8,9,10,11,12. The basis of this method was the observation that commonly used recA- cloning strains of E. coli could mediate intermolecular recombination of a single-stranded primer with a plasmid cleaved by restriction enzymes13. The use of PCR to generate homologous DNA ends for plasmid assembly in E. coli was described in the 1990s and this method was named recombination PCR3,14. The efficiency of recombination PCR was reported to be approximately 50%14. However, this method was not widely adopted, likely due to the high cost of primers and the risk of introducing unwanted mutations using low-fidelity polymerases to amplify large DNA fragments. These drawbacks were significant in the 1990s and could be avoided by using in vitro cloning methods such as restriction-enzyme-mediated cloning.
In recent years, the cost of primers has decreased, and new commercial polymerases have increased the fidelity of PCR amplification. As a result, recombination PCR was revisited as a rapid and cost-effective molecular cloning technique and rebranded as IVA2,9,15,16. With increased feasibility, IVA was further explored, and the method was optimized to reach cloning efficiencies of up to 99%16. Optimizations identified features of homologous DNA, such as number of base pairs and melting temperature, that maximize in vivo recombination efficiency2,16. Further analysis showed that up to 6 DNA fragments ranging from 150 bp to 7 kbp could be assembled efficiently by IVA15. In addition, our group recently used IVA to assemble a plasmid series with different antibiotic resistance cassettes and origins of replication17. In this study, IVA cloning was highly efficient (71-100%) with a small number of clones tested for each plasmid (n = 2)17. Here we describe the IVA protocol used by our laboratory.