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Author Correction: SMURF-seq: efficient copy number profiling on long-read sequencers

机译:作者更正:SMIrf-SEQ:长读序列仪上的高效拷贝数分析

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Additional file 1: Additional text 1. Supplementary methods. Additional text 2. Mapping SMURF-seq reads. Additional text 3. Short molecule sequencing with long-read sequencers. Additional table 3. Summary of sequencing runs. Figure S1. Distribution of length between restriction sites computed by measuring the distance between the recognition sites on the human reference genome. Figure S2. Schematic of SMURF-seq protocol. Figure S3. Sequencing of restriction enzyme digested normal diploid genome without SMURF-seq. Figure S4. Sequencing normal diploid genome using SMURF-seq. Figure S5. Sequencing normal diploid genome using SMURF-seq with 1D Rapid kit. Figure S6. Sequencing SK-BR-3 cancer genome using SMURF-seq. Figure S7. Replicate sequencing run of normal diploid genome using SMURF-seq. Figure S8. Replicate sequencing run of SK-BR-3 cancer genome using SMURF-seq. Figure S9. High-resolution CNV profile generated using SMURF-seq is highly concordant with the profile generated with Illumina WGS. Figure S10. SMURF-seq generates fragments at a faster rate than sequencing short molecules directly. Figure S11. CNV profile with reads obtained in first few minutes of sequencing. Figure S12. Multiplexed sequencing of normal diploid (barcode01) and SK-BR-3 cancer genome (barcode02) in a single sequencing run. Figure S13. Speed of nanopore sequencing as a function of read length. Figure S14. Biases correlated with GC content are reduced with LOWESS smoothing.
机译:附加文件1:附加文本1.补充方法。附加文字2.映射SMURF-SEQ读取。附加文本3.使用长读序列仪进行短分子测序。附加表3.排序运行摘要。图S1。通过测量人参考基因组上识别位点之间的距离计算的限制性位点之间的长度分布。图S2。 SMIRF-SEQ协议的示意图。图S3。没有SMURF-SEQ的限制酶消化正常二倍体基因组的测序。图S4。使用SMURF-SEQ测序正常二倍体基因组。图S5。使用SMURF-SEQ测序正常二倍体基因组,具有1D快速套件。图S6。使用SMURF-SEQ测序SK-BR-3癌症基因组。图S7。使用SMURF-SEQ复制正常二倍体基因组的测序运行。图S8。使用SMURF-SEQ复制SK-BR-3癌症基因组的测序运行。图S9。使用SMURF-SEQ产生的高分辨率CNV轮廓与Illumina WG生成的型材非常合作。图S10。 SMIRF-SEQ以比直接测序短分子更快的速率产生碎片。图S11。 CNV轮廓具有在测序的前几分钟内获得的读数。图S12。普通二倍体(条形码01)和SK-BR-3癌症基因组(Barcode02)的复用序列在单个测序运行中。图S13。纳米孔测序的速度作为读取长度的函数。图S14。使用Lowets平滑降低与GC含量相关的偏差。

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