Tian Tian, Kang Jing Wei, Kang Aram, Lee Taek Soon
Joint BioEnergy Institute , 5885 Hollis Street , Emeryville , California 94608 , United States.
Biological Systems & Engineering Division , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , United States.
ACS Synth Biol. 2019 Feb 15;8(2):391-402. doi: 10.1021/acssynbio.8b00429. Epub 2019 Feb 5.
CRISPR interference (CRISPRi) via target guide RNA (gRNA) arrays and a deactivated Cas9 (dCas9) protein has been shown to simultaneously repress expression of multiple genomic DNA loci. By knocking down endogenous genes in competing pathways, CRISPRi technology can be utilized to redirect metabolic flux toward target metabolite. In this study, we constructed a CRISPRi-mediated multiplex repression system to silence transcription of several endogenous genes to increase precursor availability in a heterologous isopentenol biosynthesis pathway. To identify genomic knockdown targets in competing pathways, we first designed a single-gRNA library with 15 individual targets, where 3 gRNA cassettes targeting gene asnA, prpE, and gldA increased isopentenol titer by 18-24%. We then combined the 3 single-gRNA cassettes into a two- or three-gRNA array and observed up to 98% enhancement in production by fine-tuning the repression level through titrating dCas9 expression. Our strategy shows that multiplex combinatorial knockdown of competing genes using CRISPRi can increase production of the target metabolite, while the repression level needs to be adjusted to balance the metabolic network and achieve the maximum titer improvement.
通过靶向引导RNA(gRNA)阵列和失活的Cas9(dCas9)蛋白进行的CRISPR干扰(CRISPRi)已被证明可同时抑制多个基因组DNA位点的表达。通过敲低竞争途径中的内源基因,CRISPRi技术可用于将代谢通量重定向至目标代谢物。在本研究中,我们构建了一个CRISPRi介导的多重抑制系统,以沉默几个内源基因的转录,从而提高异源异戊烯醇生物合成途径中前体的可用性。为了确定竞争途径中的基因组敲低靶点,我们首先设计了一个包含15个单独靶点的单gRNA文库,其中靶向基因asnA、prpE和gldA的3个gRNA盒使异戊烯醇滴度提高了18 - 24%。然后,我们将这3个单gRNA盒组合成一个双gRNA或三gRNA阵列,并通过滴定dCas9表达来微调抑制水平,观察到产量提高了98%。我们的策略表明,使用CRISPRi对竞争基因进行多重组合敲低可以提高目标代谢物的产量,同时需要调整抑制水平以平衡代谢网络并实现最大滴度提高。