Reconstruction of the raffinose family oligosaccharide pathway in maize improves heat stress tolerance

Zhongchun Dong , Tao Li , Xudong Li , Dan Li , Xianfei Shi , Jiahao Chai , Lynnette M. A. Dirk , A. Bruce Downie , Tianyong Zhao

Stress Biology ›› 2026, Vol. 6 ›› Issue (1) : 49

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Stress Biology ›› 2026, Vol. 6 ›› Issue (1) :49 DOI: 10.1007/s44154-026-00326-0
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Reconstruction of the raffinose family oligosaccharide pathway in maize improves heat stress tolerance
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Abstract

Raffinose family oligosaccharides (RFOs), primarily raffinose and stachyose, are crucial for plant abiotic stress tolerance. Raffinose is synthesized by RAFFINOSE SYNTHASE (RAFS) from galactinol and sucrose, whereas stachyose can be produced by STACHYOSE SYNTHASE (STS) from galactinol and raffinose. While Arabidopsis possesses functional RAFS and STS genes and produces both raffinose and stachyose, maize lacks both a functional STS gene and endogenous stachyose. Here, we show that Arabidopsis STACHYOSE SYNTHASE (AtSTS) is induced by heat stress, and its overexpression and subsequent stachyose accumulation enhance heat tolerance. To extend the RFOs pathway in maize, we introduced the AtSTS expression cassette into the maize genome. The resulting transgenic maize lines accumulated stachyose and exhibited improved heat tolerance. Under heat stress, stachyose amounts in these lines increased significantly, likely due to the induction of endogenous ZmRAFS and subsequent protein and raffinose production, the latter serving as the STS substrate. Compared with wild-type controls, transgenic maize seedlings showed reduced leaf damage, higher survival, and lower ion leakage under high-temperature conditions. The application of exogenous stachyose similarly improved heat tolerance in wild-type maize, providing further evidence of its protective function. Moreover, AtSTS overexpression reduced reactive oxygen species (ROS) accumulation, indicating that stachyose helps mitigate oxidative damage. These findings establish stachyose as a contributor to heat stress resilience and propose a promising strategy for improving crop tolerance to increasing global temperatures.

Keywords

Raffinose family oligosaccharides (RFOs) / Maize / Arabidopsis / Stachyose synthase / Stachyose / Heat tolerance

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Zhongchun Dong, Tao Li, Xudong Li, Dan Li, Xianfei Shi, Jiahao Chai, Lynnette M. A. Dirk, A. Bruce Downie, Tianyong Zhao. Reconstruction of the raffinose family oligosaccharide pathway in maize improves heat stress tolerance. Stress Biology, 2026, 6 (1) : 49 DOI:10.1007/s44154-026-00326-0

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References

[1]

Cacela C, Hincha DK. Monosaccharide composition, chain length and linkage type influence the interactions of oligosaccharides with dry phosphatidylcholine membranes. Biochimica Et Biophysica Acta (BBA) - Biomembranes, 2006, 1758(5): 680-691

[2]

Cheikh N, Jones RJ. Disruption of maize kernel growth and development by heat stress (role of cytokinin/abscisic acid balance). Plant Physiol, 1994, 106(1): 45-51

[3]

Cho M-J, Wu E, Kwan J, Yu M, Banh J, Linn W, Anand A, Li Z, TeRonde S, Register JC, Jones TJ, Zhao Z-Y. Agrobacterium -mediated high-frequency transformation of an elite commercial maize (Zea mays L.) inbred line. Plant Cell Rep, 2014, 33(10): 1767-1777

[4]

Gangl R, Behmüller R, Tenhaken R. Molecular cloning of AtRS4, a seed specific multifunctional RFO synthase/galactosylhydrolase in Arabidopsis thaliana. Front Plant Sci, 2015

[5]

Gu L, Han Z, Zhang L, Downie B, Zhao T. Functional analysis of the 5′ regulatory region of the maize GALACTINOL SYNTHASE2 gene. Plant Sci, 2013, 213: 38-45

[6]

Gu L, Zhang Y, Zhang M, Li T, Dirk LMA, Downie B, Zhao T. ZmGOLS2, a target of transcription factor ZmDREB2A, offers similar protection against abiotic stress as ZmDREB2A. Plant Mol Biol, 2016, 90(1-2): 157-170

[7]

Gu L, Jiang T, Zhang C, Li X, Wang C, Zhang Y, Li T, Dirk LMA, Downie AB, Zhao T. Maize HSFA2 and HSBP2 antagonistically modulate raffinose biosynthesis and heat tolerance in Arabidopsis. Plant J, 2019, 100(1): 128-142

[8]

Haab CI, Keller F. Purification and characterization of the raffinose oligosaccharide chain elongation enzyme, galactan : galactan galactosyltransferase (GGT), from Ajuga reptans leaves. Physiol Plant, 2002, 114(3): 361-371

[9]

Kuo TM, VanMiddlesworth JF, Wolf WJ. Content of raffinose oligosaccharides and sucrose in various plant seeds. J Agric Food Chem, 1988, 36(1): 32-36

[10]

Li T, Zhang YM, Wang D, Liu Y, Dirk LMA, Goodman J, Downie AB, Wang JM, Wang GY, Zhao TY. Regulation of Seed Vigor by Manipulation of Raffinose Family Oligosaccharides in Maize and Arabidopsis thaliana. Mol Plant, 2017, 10(12): 1540-1555

[11]

Li T, Zhang YM, Liu Y, Li XD, Hao GL, Han QH, Dirk LMA, Downie AB, Ruan YL, Wang JM, Wang GY, Zhao TY. Raffinose synthase enhances drought tolerance through raffinose synthesis or galactinol hydrolysis in maize and Arabidopsis plants. J Biol Chem, 2020, 295(23): 8064-8077

[12]

Li T, Liu YY, Duan TC, Guo C, Liu B, Fu XQ, Wang L, Wang XY, Dong XY, Wang CN, Lu YL, Wang Y, Shi L, Tian HL, Yang XB. Nondigestible stachyose binds membranous HSP90β on small intestinal epithelium to regulate the exosomal miRNAs: A new function and mechanism. Cell Metab, 2025, 37(2): 345-360

[13]

Liu Y, Li T, Zhang C, Zhang W, Deng N, Dirk LMA, Downie AB, Zhao T. Raffinose positively regulates maize drought tolerance by reducing leaf transpiration. Plant J, 2023, 114(1): 55-67

[14]

Nishizawa A, Yabuta Y, Shigeoka S. Galactinol and raffinose constitute a novel function to protect plants from oxidative damage. Plant Physiol, 2008, 147(3): 1251-1263

[15]

Nishizawa-Yokoi A, Yabuta Y, Shigeoka S. The contribution of carbohydrates including raffinose family oligosaccharides and sugar alcohols to protection of plant cells from oxidative damage. Plant Signal Behav, 2008, 3(11): 1016-1018

[16]

Nleya T, Chungu C, Kleinjan J. Corn growth and development. iGrow corn: best management practices, 2016South Dakota State Universityvol 5

[17]

Okemo P, Long H, Cheng Y, Mundree S, Williams B. Stachyose triggers apoptotic like cell death in drought sensitive but not resilient plants. Sci Rep, 2021, 11(1): 1-9

[18]

Peterbauer T, Richter A. Biochemistry and physiology of raffinose family oligosaccharides and galactosyl cyclitols in seeds. Seed Sci Res, 2001, 11(3): 185-197

[19]

Peterbauer T, Mach L, Mucha J, Richter A. Functional expression of a cDNA encoding pea ( Pisum sativum L.) raffinose synthase, partial purification of the enzyme from maturing seeds, and steady-state kinetic analysis of raffinose synthesis. Planta, 2002, 215(5): 839-846

[20]

Porebski S, Bailey LG, Baum BR. Modification of a CTAB DNA extraction protocol for plants containing high polysaccharide and polyphenol components. Plant Mol Biol Rep, 1997, 15(1): 15

[21]

Selvaraj MG, Ishizaki T, Valencia M, Ogawa S, Dedicova B, Ogata T, Yoshiwara K, Maruyama K, Kusano M, Saito K, Takahashi F, Shinozaki K, Nakashima K, Ishitani M. Overexpression of an Arabidopsis thaliana galactinol synthase gene improves drought tolerance in transgenic rice and increased grain yield in the field. Plant Biotechnol J, 2017, 15(11): 1465-1477

[22]

Wen WW, Jin M, Li K, Liu HJ, Xiao YJ, Zhao MC, Alseekh S, Li WQ, de Abreu e Lima F, Brotman Y, Willmitzer L, Fernie AR, Yan JB (2018) An integrated multi-layered analysis of the metabolic networks of different tissues uncovers key genetic components of primary metabolism in maize. Plant J 93 (6):1116–1128. https://doi.org/10.1111/tpj.13835

[23]

Zhao TY, Thacker R, Corum JW, Snyder JC, Meeley RB, Obendorf RL, Downie B. Expression of the maize GALACTINOL SYNTHASE gene family: (I) Expression of two different genes during seed development and germination. Physiol Plant, 2004, 121(4): 634-646

[24]

Zhao C, Liu B, Piao S, Wang X, Lobell DB, Huang Y, Huang M, Yao Y, Bassu S, Ciais P, Durand J-L, Elliott J, Ewert F, Janssens IA, Li T, Lin E, Liu Q, Martre P, Müller C, Peng S, Peñuelas J, Ruane AC, Wallach D, Wang T, Wu D, Liu Z, Zhu Y, Zhu Z, Asseng S. Temperature increase reduces global yields of major crops in four independent estimates. Proc Natl Acad Sci, 2017, 114(35): 9326-9331

Funding

National Natural Science Foundation of China(32171984)

Hatch grant(KY011038)

Youth and Middle-aged Scientific and Technological Innovation Leading Talents Program of the Corps(L2025-CXNL-KCPT-GNYZZX-01)

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