College of Forestry, Fujian Agriculture and Forestry University, Fuzhou, 350002, China.
Basic Forestry and Proteomics Research Center, School of Future Technology, College of Forestry, Fujian Agriculture and Forestry University, Fuzhou, 350002, China.
J Integr Plant Biol. 2023 Jun;65(6):1369-1382. doi: 10.1111/jipb.13468. Epub 2023 Mar 15.
Bamboo is one of the fastest growing plants among monocotyledonous species and is grown extensively in subtropical regions. Although bamboo has high economic value and produces much biomass quickly, gene functional research is hindered by the low efficiency of genetic transformation in this species. We therefore explored the potential of a bamboo mosaic virus (BaMV)-mediated expression system to investigate genotype-phenotype associations. We determined that the sites between the triple gene block proteins (TGBps) and the coat protein (CP) of BaMV are the most efficient insertion sites for the expression of exogenous genes in both monopodial and sympodial bamboo species. Moreover, we validated this system by individually overexpressing the two endogenous genes ACE1 and DEC1, which resulted in the promotion and suppression of internode elongation, respectively. In particular, this system was able to drive the expression of three 2A-linked betalain biosynthesis genes (more than 4 kb in length) to produce betalain, indicating that it has high cargo capacity and may provide the prerequisite basis for the development of a DNA-free bamboo genome editing platform in the future. Since BaMV can infect multiple bamboo species, we anticipate that the system described in this study will greatly contribute to gene function research and further promote the molecular breeding of bamboo.
竹子是单子叶植物中生长最快的植物之一,广泛生长在亚热带地区。尽管竹子具有很高的经济价值,并且能够快速产生大量生物质,但由于该物种遗传转化效率低,基因功能研究受到阻碍。因此,我们探索了利用毛竹花叶病毒(BaMV)介导的表达系统来研究基因型-表型相关性的潜力。我们确定,BaMV 的三基因结合蛋白(TGBps)和外壳蛋白(CP)之间的位点是单子叶和复叶竹种中外源基因表达最有效的插入位点。此外,我们通过分别过表达两个内源性基因 ACE1 和 DEC1 验证了该系统,这分别导致节间伸长的促进和抑制。特别是,该系统能够驱动三个 2A 连接的甜菜碱生物合成基因(长度超过 4kb)的表达,产生甜菜碱,表明它具有高载量,并且可能为未来无 DNA 的竹子基因组编辑平台的发展提供前提基础。由于 BaMV 可以感染多种竹子,我们预计本研究中描述的系统将极大地促进基因功能研究,并进一步促进竹子的分子育种。