Institute of Molecular Biology, University of Oregon, Eugene, OR 97403, USA.
Nucleic Acids Res. 2013 Jun;41(11):e119. doi: 10.1093/nar/gkt257. Epub 2013 Apr 19.
Restriction endonucleases are highly specific in recognizing the particular DNA sequence they act on. However, their activity is affected by sequence context, enzyme concentration and buffer composition. Changes in these factors may lead to either ineffective cleavage at the cognate restriction site or relaxed specificity allowing cleavage of degenerate 'star' sites. Additionally, uncharacterized restriction endonucleases and engineered variants present novel activities. Traditionally, restriction endonuclease activity is assayed on simple substrates such as plasmids and synthesized oligonucleotides. We present and use high-throughput Illumina sequencing-based strategies to assay the sequence specificity and flanking sequence preference of restriction endonucleases. The techniques use fragmented DNA from sequenced genomes to quantify restriction endonuclease cleavage on a complex genomic DNA substrate in a single reaction. By mapping millions of restriction site-flanking reads back to the Escherichia coli and Drosophila melanogaster genomes we were able to quantitatively characterize the cognate and star site activity of EcoRI and MfeI and demonstrate genome-wide decreases in star activity with engineered high-fidelity variants EcoRI-HF and MfeI-HF, as well as quantify the influence on MfeI cleavage conferred by flanking nucleotides. The methods presented are readily applicable to all type II restriction endonucleases that cleave both strands of double-stranded DNA.
限制内切酶在识别其作用的特定 DNA 序列方面具有高度特异性。然而,它们的活性受到序列背景、酶浓度和缓冲组成的影响。这些因素的变化可能导致在同源限制位点的无效切割,或者放松特异性允许退化的“星号”位点的切割。此外,未表征的限制内切酶和工程变体具有新的活性。传统上,限制内切酶的活性是在简单的底物上进行测定的,如质粒和合成的寡核苷酸。我们提出并使用基于高通量 Illumina 测序的策略来测定限制内切酶的序列特异性和侧翼序列偏好。这些技术使用来自测序基因组的片段化 DNA,在单个反应中定量测定复杂基因组 DNA 底物上的限制内切酶切割。通过将数百万个限制位点侧翼的读数映射回大肠杆菌和黑腹果蝇基因组,我们能够定量表征 EcoRI 和 MfeI 的同源和星号位点活性,并证明工程高保真变体 EcoRI-HF 和 MfeI-HF 导致星号活性的全基因组降低,以及量化侧翼核苷酸对 MfeI 切割的影响。所提出的方法易于应用于所有切割双链 DNA 的 II 型限制内切酶。