| Literature DB >> 33719095 |
Qintao Wang1,2,3, Yanhai Gong1,2,3, Yuehui He1,2,3, Yi Xin1,2,3, Nana Lv1,2,3, Xuefeng Du1,2,3, Yun Li1,2,3, Byeong-Ryool Jeong1,4, Jian Xu1,2,3.
Abstract
Industrial microalgae are promising photosynthetic cell factories, yet tools for large-scale targeted genome engineering are limited. Here for the model industrial oleaginous microalga Nannochloropsis oceanica, we established a method to precisely and serially delete large genome fragments of ~100 kb from its 30.01 Mb nuclear genome. We started by identifying the 'non-essential' chromosomal regions (i.e. low expression region or LER) based on minimal gene expression under N-replete and N-depleted conditions. The largest such LER (LER1) is ~98 kb in size, located near the telomere of the 502.09-kb-long Chromosome 30 (Chr 30). We deleted 81 kb and further distal and proximal deletions of up to 110 kb (21.9% of Chr 30) in LER1 by dual targeting the boundaries with the episome-based CRISPR/Cas9 system. The telomere-deletion mutants showed normal telomeres consisting of CCCTAA repeats, revealing telomere regeneration capability after losing the distal part of Chr 30. Interestingly, the deletions caused no significant alteration in growth, lipid production or photosynthesis (transcript-abundance change for < 3% genes under N depletion). We also achieved double-deletion of both LER1 and LER2 (from Chr 9) that total ~214 kb at maximum, which can result in slightly higher growth rate and biomass productivity than the wild-type. Therefore, loss of the large, yet 'non-essential' regions does not necessarily sacrifice important traits. Such serial targeted deletions of large genomic regions had not been previously reported in microalgae, and will accelerate crafting minimal genomes as chassis for photosynthetic production.Entities:
Keywords: CRISPR-Cas system; Nannochloropsis spp.; genome editing; large genome fragment deletion; oleaginous microalgae
Mesh:
Year: 2021 PMID: 33719095 DOI: 10.1111/tpj.15227
Source DB: PubMed Journal: Plant J ISSN: 0960-7412 Impact factor: 6.417