Center for Infectious Disease Research, School of Medicine, Tsinghua University, Beijing, China.
Tsinghua-Peking Center for Life Sciences, Beijing, China.
Environ Microbiol. 2022 Dec;24(12):5774-5787. doi: 10.1111/1462-2920.16169. Epub 2022 Aug 25.
There is a lack of appropriate methods for preparing bacterial RNA-seq library with ultra-low amount of RNA. To address this issue, we developed miniBac-seq, a strand-specific method for high-quality library construction from sub-nanogram of total RNA, which is 100-fold lower than the current benchmark kit and dramatically reduces preparation cost ($28 + $15 × samples). We further demonstrated the high sensitivity of miniBac-seq via detecting more than 500 genes from amount of total RNA equivalent to that of a single bacterial cell. Finally, we profiled the transcriptome of growth-arrested bacteria in isogenic culture of Escherichia coli. This subpopulation of bacteria is generally low in abundance but is a potent reservoir of antibiotic persistence, and their gene expression has been largely unknown due to technical limitations. Using miniBac-seq, we identified potential molecular driver towards arrested growth as well as antibiotic tolerance. Our method thus expands the capacity to quantify bacterial transcriptome in situ, which is useful to the understanding of bacterial physiology and regulation in their native contexts.
目前缺乏适用于从极少量 RNA 制备细菌 RNA-seq 文库的方法。针对这一问题,我们开发了 miniBac-seq,这是一种从亚纳克级总 RNA 制备高质量文库的链特异性方法,比当前的基准试剂盒低 100 倍,极大地降低了制备成本($28 + $15 × 样本)。我们通过从相当于单个细菌细胞的总 RNA 量中检测到超过 500 个基因,进一步证明了 miniBac-seq 的高灵敏度。最后,我们对大肠杆菌同基因培养物中处于生长停滞状态的细菌的转录组进行了分析。由于技术限制,该细菌亚群的丰度通常较低,但却是抗生素持续存在的潜在储存库,其基因表达在很大程度上是未知的。使用 miniBac-seq,我们确定了潜在的分子驱动因素以及对生长停滞和抗生素耐受性的影响。因此,我们的方法扩展了在原位定量细菌转录组的能力,这对于理解细菌在其自然环境中的生理和调控非常有用。