Fan Yue, Xue Luyao, Shang Meiqi, Gao Shaopei, Zhao Ning, Zhai Hong, He Shaozhen, Zhang Huan, Liu Qingchang
Key Laboratory of Sweetpotato Biology and Biotechnology, Ministry of Agriculture and Rural Affairs/Beijing Key Laboratory of Crop Genetic Improvement/Laboratory of Crop Heterosis and Utilization, Ministry of Education, College of Agronomy & Biotechnology, China Agricultural University, Beijing, 100193, China.
J Integr Plant Biol. 2025 Jul;67(7):1879-1894. doi: 10.1111/jipb.13916. Epub 2025 May 2.
Sweetpotato (Ipomoea batatas) starch is in high demand globally as a food and industrial product. However, the regulatory mechanisms governing starch biosynthesis and starch properties in this important crop remain largely unknown. Here we identified a natural allelic variant in the promoter of IbNAC22, encoding a NAC (NAM, ATAF1/2, and CUC2) transcription factor, which is closely linked to starch content in sweetpotato. In high-starch sweetpotato varieties, the T/C haplotype and a 13-bp deletion in the IbNAC22 promoter resulted in higher transcriptional activity. The high-starch IbNAC22 haplotype is more prevalent in regions of China where the sweetpotato starch industry is well developed, indicating that this advantageous allele type has been utilized in breeding starchy sweetpotato varieties in China. IbNAC22 is highly expressed in storage roots and starch-rich sweetpotato accessions. Overexpression of IbNAC22 significantly improved starch and amylose contents, as well as granule size and gelatinization temperature, and decreased starch crystallinity, whereas IbNAC22 knockdown had the opposite effects. IbNAC22 directly activates the expression of IbGBSSI, a key gene for amylose biosynthesis, but suppresses the expression of IbSBEI, a key gene for amylopectin biosynthesis. IbNAC22 directly interacts with IbNF-YA10. Overexpressing of IbNF-YA10 significantly improved starch and amylose contents, and starch gelatinization temperature, but decreased granule size, crystallinity, and amylopectin chain length distribution. IbNF-YA10 directly activates IbAGPL and IbGBSSI, which are key genes involved in starch and amylose biosynthesis. IbNAC22-IbNF-YA10 heterodimers further enhance the IbNF-YA10-induced activation of IbAGPL and IbGBSSI. These findings increase our understanding of starch biosynthesis and starch properties and provide strategies and candidate genes for the improvement of starchy root and tuber crops.
甘薯(Ipomoea batatas)淀粉作为一种食品和工业产品,在全球有着很高的需求。然而,在这种重要作物中,调控淀粉生物合成和淀粉特性的机制在很大程度上仍不清楚。在这里,我们在IbNAC22(编码一个NAC(NAM、ATAF1/2和CUC2)转录因子)的启动子中鉴定出一个天然等位变异体,它与甘薯中的淀粉含量密切相关。在高淀粉甘薯品种中,IbNAC22启动子中的T/C单倍型和一个13bp的缺失导致了更高的转录活性。高淀粉IbNAC22单倍型在中国甘薯淀粉产业发达的地区更为普遍,这表明这种有利的等位基因类型已在中国用于培育淀粉型甘薯品种。IbNAC22在贮藏根和富含淀粉的甘薯种质中高表达。过表达IbNAC22显著提高了淀粉和直链淀粉含量,以及颗粒大小和糊化温度,并降低了淀粉结晶度,而敲低IbNAC22则产生相反的效果。IbNAC22直接激活直链淀粉生物合成的关键基因IbGBSSI的表达,但抑制支链淀粉生物合成的关键基因IbSBEI的表达。IbNAC22直接与IbNF-YA10相互作用。过表达IbNF-YA10显著提高了淀粉和直链淀粉含量以及淀粉糊化温度,但降低了颗粒大小、结晶度和支链淀粉链长分布。IbNF-YA10直接激活参与淀粉和直链淀粉生物合成的关键基因IbAGPL和IbGBSSI。IbNAC22-IbNF-YA10异二聚体进一步增强了IbNF-YA10诱导的对IbAGPL和IbGBSSI的激活。这些发现增进了我们对淀粉生物合成和淀粉特性的理解,并为改良块根和块茎作物提供了策略和候选基因。