Key Laboratory of Plant Resource Conservation and Germplasm Innovation in Mountainous Region (Ministry of Education), Guizhou University, Guiyang, China.
College of Agriculture/Guizhou Engineering Research Centre for Fruit Crops, Guizhou University, Guiyang, China.
Physiol Plant. 2024 Jul-Aug;176(4):e14465. doi: 10.1111/ppl.14465.
Sugar is vital for plant growth and determines fruit quality via its content and composition. This study explores the differential sugar accumulation in two plum varieties, 'Fengtangli (FTL)' and 'Siyueli (SYL)'. The result showed that 'FTL' fruit displayed higher soluble solids and sugar content at various development stages. Metabolomic analysis indicated increased sorbitol in 'FTL', linked to elevated sorbitol-6-phosphate-dehydrogenase (S6PDH) activity. Transcriptome analysis identified a key gene for sorbitol synthesis, PsS6PDH4, which was significantly higher expressed in 'FTL' than in 'SYL'. The function of the PsS6PDH4 gene was verified in strawberry, apple, and plum fruits using transient overexpression and virus-induced gene silencing techniques. The results showed that overexpression of the PsS6PDH4 gene in strawberry, apple, and plum fruits promoted the accumulation of soluble solids content and sorbitol, while inhibition of the gene reduced soluble solids content and sorbitol content. Meanwhile, analysis of the relationship between PsS6PDH4 gene expression, sorbitol, and soluble solids content in four different plum varieties revealed a significant correlation between PsS6PDH4 gene expression and soluble solids content as well as sorbitol content. This research discovered PsS6PDH4 as a crucial regulator of sugar metabolism in plum, with potential applications in improving fruit sweetness and nutritional value in various fruit species. Understanding these molecular pathways can lead to innovative approaches for enhancing fruit quality, benefiting sustainable agriculture and consumer preferences in the global fruit industry.
糖对于植物的生长至关重要,其含量和组成决定了果实的品质。本研究探讨了两个李品种‘丰塘李(FTL)’和‘四月李(SYL)’中糖的差异积累。结果表明,FTL 果实各发育阶段的可溶性固形物和糖含量较高。代谢组学分析表明,FTL 中的山梨醇增加,与山梨醇-6-磷酸脱氢酶(S6PDH)活性升高有关。转录组分析鉴定出一个关键的山梨醇合成基因 PsS6PDH4,其在 FTL 中的表达明显高于 SYL。使用瞬时过表达和病毒诱导基因沉默技术,在草莓、苹果和李果实中验证了 PsS6PDH4 基因的功能。结果表明,草莓、苹果和李果实中 PsS6PDH4 基因的过表达促进了可溶性固形物含量和山梨醇的积累,而基因的抑制则降低了可溶性固形物含量和山梨醇含量。同时,对四个不同李品种中 PsS6PDH4 基因表达、山梨醇和可溶性固形物含量之间的关系进行分析,发现 PsS6PDH4 基因表达与可溶性固形物含量和山梨醇含量之间存在显著相关性。本研究发现 PsS6PDH4 是李糖代谢的关键调节因子,在提高不同水果品种的果实甜度和营养价值方面具有应用潜力。了解这些分子途径可以为提高果实品质提供创新方法,有利于可持续农业和全球水果产业中消费者的偏好。