Biotechnology Bulletin ›› 2026, Vol. 42 ›› Issue (3): 156-171.doi: 10.13560/j.cnki.biotech.bull.1985.2026-0069
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LUO Long-xin1(
), LI Zhi1, LI Tong1, FENG Zi-quan1, ZHAI Xin-yue1,2, LIANG Cheng-lin3, ZHANG Ya-li1, WU Shang1, LI Yuan-yuan1, JIANG Han1(
)
Received:2026-01-15
Online:2026-03-26
Published:2026-04-23
Contact:
JIANG Han
E-mail:fuluobei0601@163.com;jianghan3284@sdau.edu.cn
LUO Long-xin, LI Zhi, LI Tong, FENG Zi-quan, ZHAI Xin-yue, LIANG Cheng-lin, ZHANG Ya-li, WU Shang, LI Yuan-yuan, JIANG Han. Molecular Basis of Sugar Accumulation in Apple Fruits[J]. Biotechnology Bulletin, 2026, 42(3): 156-171.
Fig. 1 Sugar accumulation process in apple fruitSugars are synthesized as photosynthate in leaves, transported over long distances via the phloem and loaded into the fruit phloem, then undergo intracellular transport, conversion and formation within the flesh cells, and are finally stored in the vacuoles
Fig. 2 Molecular mechanism of sugar formation in apple fruitCore transcription factor families (MYB, bZIP, ERF, NAC, and WRKY) orchestrate the expression of sugar transport-related protein families (SUT, TST, and SWEET). These transporters mediate key processes including phloem transport, vacuolar sugar sequestration, and intercellular/intracellular sugar partitioning, ultimately governing the accumulation of fructose, glucose, sucrose, and sorbitol in the fruit
Fig. 3 Molecular network of environmental factors and plant hormones synergistically regulating apple fruit development via the sugar signaling pathwayEnvironmental factors (light, low temperature, nutrients, moderate drought, etc.) regulate the sugar signaling pathway by activating specific signaling molecules (e.g., MdCBF1/2, MdCIPK22, MdDREB2A). Plant hormones (CTK/GA, auxin, ethylene, ABA, etc.) form cross-response and signal synergy with the sugar signaling pathway by regulating photosynthetic area, sink strength, sugar metabolism, and drought response, thereby collectively influencing fruit development
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