Russian Quantum Center, Skolkovo, Moscow, 143025, Russia.
Genotek ltd., Moscow, 105120, Russia.
Sci Rep. 2021 Jun 23;11(1):13183. doi: 10.1038/s41598-021-88321-5.
Recent advances in DNA sequencing open prospects to make whole-genome analysis rapid and reliable, which is promising for various applications including personalized medicine. However, existing techniques for de novo genome assembly, which is used for the analysis of genomic rearrangements, chromosome phasing, and reconstructing genomes without a reference, require solving tasks of high computational complexity. Here we demonstrate a method for solving genome assembly tasks with the use of quantum and quantum-inspired optimization techniques. Within this method, we present experimental results on genome assembly using quantum annealers both for simulated data and the [Formula: see text]X 174 bacteriophage. Our results pave a way for a significant increase in the efficiency of solving bioinformatics problems with the use of quantum computing technologies and, in particular, quantum annealing might be an effective method. We expect that the new generation of quantum annealing devices would outperform existing techniques for de novo genome assembly. To the best of our knowledge, this is the first experimental study of de novo genome assembly problems both for real and synthetic data on quantum annealing devices and quantum-inspired techniques.
近年来,DNA 测序技术的进步为全基因组分析提供了快速可靠的前景,这在包括个性化医疗在内的各种应用中具有广阔的前景。然而,现有的从头基因组组装技术,用于分析基因组重排、染色体定相和在没有参考的情况下重建基因组,需要解决计算复杂度高的任务。在这里,我们展示了一种使用量子和量子启发式优化技术解决基因组组装任务的方法。在该方法中,我们展示了使用量子退火机进行基因组组装的实验结果,包括模拟数据和 [Formula: see text]X 174 噬菌体。我们的结果为使用量子计算技术提高生物信息学问题的解决效率铺平了道路,特别是量子退火可能是一种有效的方法。我们预计新一代量子退火设备将在从头基因组组装方面超越现有的技术。据我们所知,这是在量子退火设备和量子启发式技术上对真实和合成数据的从头基因组组装问题进行的首次实验研究。