College of Forestry, Guizhou University, Guiyang, Guizhou, China.
College of Life Sciences, Huizhou College, Huizhou, Guangdong, China.
BMC Plant Biol. 2022 Apr 29;22(1):223. doi: 10.1186/s12870-022-03585-x.
Blueberry is one of the most important fruit crops worldwide. Anthocyanin is an important secondary metabolites that affects the appearance and nutritive quality of blueberries. However, few studies have focused on the molecular mechanism underlying anthocyanin accumulation induced by light intensity in blueberries.
The metabolic analysis revealed that there were 134 significantly changed metabolites in the natural light compared to the control, and flavone, flavonol, and anthocyanins were the most significantly increased. Transcriptome analysis found 6 candidate genes for the anthocyanin synthesis pathway. Quantitative reverse transcription PCR (qRT-PCR) results confirmed changes in the expression levels of genes encoding metabolites involved in the flavonoid synthesis pathways. The flavonoid metabolic flux in the light intensity-treatment increased the accumulation of delphinidin-3-O-arabinoside compared to under the shading-treatment. Furthermore, we performed qRT-PCR analysis of anthocyanin biosynthesis genes and predicted that the gene of VcF3'5'H4 may be a candidate gene for anthocyanin accumulation and is highly expressed in light intensity-treated fruit. Through the co-expression analysis of transcription factors and anthocyanin synthesis pathway genes, we found that the VcbHLH004 gene may regulate VcF3'5'H4, and then we transformed VcbHLH004 heterologously into tomato to verify its function.
These results provide novel insights into light intensity regulation of blueberry anthocyanin accumulation and represent a valuable data set to guide future functional studies and blueberry breeding.
蓝莓是全球最重要的水果作物之一。花色苷是一种重要的次生代谢物,影响蓝莓的外观和营养价值。然而,很少有研究关注光照强度对蓝莓花色苷积累的分子机制。
代谢分析表明,自然光下有 134 种代谢物与对照相比发生了显著变化,其中黄酮类、黄酮醇类和花色苷类增加最为显著。转录组分析发现花色苷合成途径的 6 个候选基因。定量反转录 PCR(qRT-PCR)结果证实了参与类黄酮合成途径的代谢物编码基因表达水平的变化。与遮荫处理相比,光强处理下类黄酮代谢通量增加了飞燕草素-3-O-阿拉伯糖苷的积累。此外,我们对花色苷生物合成基因进行了 qRT-PCR 分析,预测 VcF3'5'H4 基因可能是花色苷积累的候选基因,在光照强度处理的果实中高度表达。通过转录因子和花色苷合成途径基因的共表达分析,我们发现 VcbHLH004 基因可能调控 VcF3'5'H4,然后我们将 VcbHLH004 异源转化到番茄中进行功能验证。
这些结果为光照强度对蓝莓花色苷积累的调控提供了新的见解,为未来的功能研究和蓝莓育种提供了有价值的数据集。