The phosphate-responsive protein MdEXO enhances postharvest firmness in apple by modulating brassinosteroid biosynthesis and cell wall metabolism

Jun-Cheng Mao , Jiu-Cheng Zhang , Wen-Yan Wang , Ying Xiang , Yu-Wen Zhao , Chang-Ning Ma , Fei-Fei Pei , Fan Xiao , Wang-Jiang Zhang , Da-Gang Hu

Horticulture Advances ›› 2026, Vol. 4 ›› Issue (1) : 12

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Horticulture Advances ›› 2026, Vol. 4 ›› Issue (1) :12 DOI: 10.1007/s44281-026-00101-1
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The phosphate-responsive protein MdEXO enhances postharvest firmness in apple by modulating brassinosteroid biosynthesis and cell wall metabolism
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Abstract

Fruit softening is a critical determinant of shelf life and quality of apples (Malus domestica). While the degradation of cell wall components is a well-established driver of this process, the specific involvement of brassinosteroids (BRs) in postharvest apple softening and how their upstream regulators influence cell wall integrity perception remain unclear. In this study, transcriptomic analysis identified EXORDIUM (MdEXO) as a gene whose expression declined during storage. Real-time quantitative PCR (RT–qPCR) assays and in situ hybridization confirmed this downregulation and revealed a positive correlation between MdEXO expression level and fruit firmness. Further characterization showed that the MdEXO protein was phosphate-responsive and localized to the cell wall. Functional studies demonstrated that overexpression of MdEXO significantly enhanced fruit firmness, increased protopectin and cellulose content, and reduced soluble pectin levels. These changes were accompanied by the downregulation of key cell wall degradation-related genes, including polygalacturonase 1 (MdPG1), pectate lyase 5 (MdPL5), and β-galactosidase 9 (Mdβ-Gal9). Additionally, MdEXO overexpression increased endogenous BR levels by upregulating the BR biosynthetic gene DWARF 4 (MdDWF4). On the contrary, treatment with brassinazole (BRZ), the BR biosynthesis inhibitor attenuated the firmness-promoting effect of MdEXO overexpression. Furthermore, VIGS-mediated transient silencing of MdEXO in apple fruits produced the opposite phenotypic effects compared to the overexpression lines. These results demonstrate that MdEXO delays apple fruit softening by modulating BR biosynthesis, offering new insights into the hormonal regulation of postharvest fruit quality.

Keywords

Malus domestica / Fruit softening / MdEXO / Brassinosteroids / Cell wall metabolism

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Jun-Cheng Mao, Jiu-Cheng Zhang, Wen-Yan Wang, Ying Xiang, Yu-Wen Zhao, Chang-Ning Ma, Fei-Fei Pei, Fan Xiao, Wang-Jiang Zhang, Da-Gang Hu. The phosphate-responsive protein MdEXO enhances postharvest firmness in apple by modulating brassinosteroid biosynthesis and cell wall metabolism. Horticulture Advances, 2026, 4(1): 12 DOI:10.1007/s44281-026-00101-1

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References

[1]

Atkinson RG, Schröder R, Hallett IC, Cohen D, MacRae EA. Overexpression of polygalacturonase in transgenic apple trees leads to a range of novel phenotypes involving changes in cell adhesion. Plant Physiol, 2002, 129: 122-133

[2]

Atkinson RG, Sutherland PW, Johnston SL, Gunaseelan K, Hallett IC, Mitra D, et al. . Down-regulation of POLYGALACTURONASE1 alters firmness, tensile strength and water loss in apple (Malus x domestica) fruit. BMC Plant Biol, 2012, 12 129

[3]

Bose SK, Howlader P, Wang W, Yin H. Oligosaccharide is a promising natural preservative for improving postharvest preservation of fruit: a review. Food Chem, 2021, 341 128178

[4]

Bustamante CA, Civello PM, Martínez GA. Cloning of the promoter region of β-xylosidase (FaXyl1) gene and effect of plant growth regulators on the expression of FaXyl1 in strawberry fruit. Plant Sci, 2009, 177: 49-56

[5]

Coll-Garcia D, Mazuch J, Altmann T, Müssig C. Exordium regulates brassinosteroid-responsive genes. FEBS Lett, 2004, 563: 82-86

[6]

Defilippi BG, Kader AA, Dandekar AM. Apple aroma: alcohol acyltransferase, a rate limiting step for ester biosynthesis, is regulated by ethylene. Plant Sci, 2005, 168: 1199-1210

[7]

Farrar K, Evans IM, Topping JF, Souter MA, Nielsen JE, Lindsey K. EXORDIUM– a gene expressed in proliferating cells and with a role in meristem function, identified by promoter trapping in Arabidopsis. Plant J, 2003, 33: 61-73

[8]

Gapper NE, McQuinn RP, Giovannoni JJ. Molecular and genetic regulation of fruit ripening. Plant Mol Biol, 2013, 82: 575-591

[9]

He Y, Li J, Ban Q, Han S, Rao J. Role of brassinosteroids in persimmon (Diospyros kaki L.) fruit ripening. J Agric Food Chem, 2018, 66: 2637-2644

[10]

Hu L, Hu S, Wu J, Li Y, Zheng J, Wei Z, et al. . Hydrogen sulfide prolongs postharvest shelf life of strawberry and plays an antioxidative role in fruits. J Agric Food Chem, 2012, 60: 8684-8693

[11]

Hu S, Liu L, Li S, Shao Z, Meng F, Liu H, et al. . Regulation of fruit ripening by the brassinosteroid biosynthetic gene SlCYP90B3 via an ethylene-dependent pathway in tomato. Hortic Res, 2020, 7 163

[12]

Huang H, He W. Application of exogenous cytokinin regulates cytokinin oxidase and antioxidant activity to maintain chlorophyll pigment during ripening of banana fruit. Food Biosci, 2023, 55 102998

[13]

Ji Y, Qu Y, Jiang Z, Yan J, Chu J, Xu M, et al. . The mechanism for brassinosteroids suppressing climacteric fruit ripening. Plant Physiol, 2021, 185: 1875-1893

[14]

Li X, Chen X, Guo X, Yin L, Ahammed GJ, Xu C, et al. . DWARF overexpression induces alteration in phytohormone homeostasis, development, architecture and carotenoid accumulation in tomato. Plant Biotechnol J, 2016, 14: 1021-1033

[15]

Lin Y, Lin H, Fan Z, Wang H, Lin M, Chen Y, et al. . Inhibitory effect of propyl gallate on pulp breakdown of longan fruit and its relationship with ROS metabolism. Postharvest Biol Technol, 2020, 168 111272

[16]

Liu Y, Tang M, Liu M, Su D, Chen J, Gao Y, et al. . The molecular regulation of ethylene in fruit ripening. Small Methods, 2020, 4 1900485

[17]

Liu X, Li D, Li Y, Li S, Zhao Z. Brassinosteroids are involved in volatile compounds biosynthesis related to MdBZR1 in ‘Ruixue’ (Malus × domestica Borkh.) fruit. Postharvest Biol Technol, 2022, 189 111931

[18]

Liu H, Liu L, Liang D, Zhang M, Jia C, Qi M, et al. SlBES1 promotes tomato fruit softening through transcriptional repression of PMEU1. iScience. 2021;24:102926. https://doi.org/10.1016/j.isci.2021.102926.

[19]

Ma Q, Sun M, Kang H, Lu J, You C, Hao Y. A CIPK protein kinase targets sucrose transporter MdSUT2.2 at Ser254 for phosphorylation to enhance salt tolerance. Plant Cell Environ, 2019, 42: 918-930

[20]

Ma L, Zhao Y, Chen M, Li Y, Shen Z, Cao Y, et al. . The microRNA ppe-miR393 mediates auxin-induced peach fruit softening by promoting ethylene production. Plant Physiol, 2023, 192: 1638-1655

[21]

Meng F, Liu H, Hu S, Jia C, Zhang M, Li S, et al. . The brassinosteroid signaling component SlBZR1 promotes tomato fruit ripening and carotenoid accumulation. J Integr Plant Biol, 2023, 65: 1794-1813

[22]

Molina-Hidalgo F, Franco A, Villatoro C, Medina-Puche L, Mercado J, Hidalgo M, et al. . The strawberry (Fragaria × ananassa) fruit-specific rhamnogalacturonate lyase 1 (FaRGLyase1) gene encodes an enzyme involved in the degradation of cell-wall middle lamellae. J Exp Bot, 2013, 64: 1471-1483

[23]

Musseau C, Jorly J, Gadin S, Sørensen I, Deborde C, Bernillon S, et al. . The tomato guanylate-binding protein SlGBP1 enables fruit tissue differentiation by maintaining endopolyploid cells in a non-proliferative state. Plant Cell, 2020, 32: 3188-3205

[24]

Nardi CF, Villarreal NM, Opazo MC, Martínez GA, Moya-León MA, Civello PM. Expression of FaXTH1 and FaXTH2 genes in strawberry fruit. Cloning of promoter regions and effect of plant growth regulators. Sci Hortic, 2014, 165: 111-122

[25]

Oh M, Honey SH, Tax FE. The control of cell expansion, cell division, and vascular development by brassinosteroids: a historical perspective. Int J Mol Sci, 2020, 21 1743

[26]

Paniagua C, Posé S, Morris VJ, Kirby AR, Quesada MA, Mercado JA. Fruit softening and pectin disassembly: an overview of nanostructural pectin modifications assessed by atomic force microscopy. Ann Bot, 2014, 114: 1375-1383

[27]

Posé S, Paniagua C, Matas AJ, Gunning AP, Morris VJ, Quesada MA, Mercado JA. A nanostructural view of the cell wall disassembly process during fruit ripening and postharvest storage by atomic force microscopy. Trends Food Sci Tech, 2019, 87: 47-58

[28]

Ranjbar S, Ramezanian A, Rahemi M. Nano-calcium and its potential to improve ‘Red Delicious’ apple fruit characteristics. Hortic Environ Biotechnol, 2020, 61: 23-30

[29]

Reiter WD. The molecular analysis of cell wall components. Trends Plant Sci, 1998, 3: 27-32

[30]

Santiago-Doménech N, Jiménez-Bemúdez S, Matas AJ, Rose JKC, Muñoz-Blanco J, Mercado JA, Quesada MA. Antisense inhibition of a pectate lyase gene supports a role for pectin depolymerization in strawberry fruit softening. J Exp Bot, 2008, 59: 2769-2779

[31]

Schröder F, Lisso J, Lange P, Müssig C. The extracellular EXO protein mediates cell expansion in Arabidopsis leaves. BMC Plant Biol, 2009, 9 20

[32]

Su D, Liu K, Yu Z, Li Y, Zhang Y, Zhu Y, et al. . Genome-wide characterization of the tomato GASA family identifies SlGASA1 as a repressor of fruit ripening. Hortic Res, 2023, 10 uhac222

[33]

Tacken E, Ireland H, Gunaseelan K, Karunairetnam S, Wang D, Schultz K, et al. . The role of ethylene and cold temperature in the regulation of the apple POLYGALACTURONASE1 gene and fruit softening. Plant Physiol, 2010, 153: 294-305

[34]

Tucker G, Yin X, Zhang A, Wang M, Zhu Q, Liu X, et al. . Ethylene and fruit softening. Food Qual Saf, 2017, 1: 253-267

[35]

Uluisik S, Chapman NH, Smith R, Poole M, Adams G, Gillis RB, et al. . Genetic improvement of tomato by targeted control of fruit softening. Nat Biotechnol, 2016, 34: 950-952

[36]

Wang Y, Wang J, Shi B, Yu T, Qi J, Meyerowitz EM, Jiao Y. The stem cell niche in leaf axils is established by auxin and cytokinin in Arabidopsis. Plant Cell, 2014, 26: 2055-2067

[37]

Wang D, Yeats TH, Uluisik S, Rose JKC, Seymour GB. Fruit softening: revisiting the role of pectin. Trends Plant Sci, 2018, 23: 302-310

[38]

Wang S, Saito T, Ohkawa K, Ohara H, Suktawee S, Ikeura H, et al. . Abscisic acid is involved in aromatic ester biosynthesis related with ethylene in green apples. J Plant Physiol, 2018, 221: 85-93

[39]

Wang D, Samsulrizal NH, Yan C, Allcock NS, Craigon J, Blanco-Ulate B, et al. . Characterization of CRISPR mutants targeting genes modulating pectin degradation in ripening tomato. Plant Physiol, 2019, 179: 544-557

[40]

Wang W, Yu J, Du M, Wang J, Hu D. Basic helix-loop-helix (bHLH) transcription factor MdbHLH3 negatively affects the storage performance of postharvest apple fruit. Hortic Plant J, 2022, 8: 700-712

[41]

Wang J, Sun Q, Ma C, Wei M, Wang C, Zhao Y, et al. . MdWRKY31-MdNAC7 regulatory network: orchestrating fruit softening by modulating cell wall-modifying enzyme MdXTH2 in response to ethylene signalling. Plant Biotechnol J, 2024, 22: 3244-3261

[42]

Wang C, Xiao F, Wei M, Cheng L, Tsai Y, Du L, et al. . MdARF2-mediated ABA signaling orchestrates malate biosynthesis and transport via repression of MdcyMDH and MdMATEL1 in apple. New Phytol, 2025, 247: 1263-1279

[43]

Wei Y, Liu Z, Lv T, Xu Y, Wei Y, Liu W, et al. . Ethylene enhances MdMAPK3-mediated phosphorylation of MdNAC72 to promote apple fruit softening. Plant Cell, 2023, 35: 2887-2909

[44]

Xiang Y, Zhao Y, Wu J, Bai X, Wang C, Ma C, et al. . MdABCI17 acts as a positive regulator to enhance apple resistance to Botryosphaeria dothidea. Mol Breeding, 2024, 44 61

[45]

Xie Y, Wang W, Wang C, Chen Z, Wang Y, Zhang R, et al. . MdMYB93 activates MdHCT6 expression via transcriptional regulation to enhance chlorogenic acid biosynthesis in apple. Hortic Plant J, 2025, 11: 1830-1846

[46]

Yang L, Huang W, Xiong F, Xian Z, Su D, Ren M, Li Z. Silencing of SlPL, which encodes a pectate lyase in tomato, confers enhanced fruit firmness, prolonged shelf-life and reduced susceptibility to grey mould. Plant Biotechnol J, 2017, 15: 1544-1555

[47]

Yu J, Liu X, Wang W, Zhang L, Wang C, Zhang Q, et al. . MdCIbHLH1 modulates sugar metabolism and accumulation in apple fruits by coordinating carbohydrate synthesis and allocation. Hortic Plant J, 2025, 11: 578-592

[48]

Zhang J, Wang X, Wang X, Wang F, Ji X, An J, et al. . Abscisic acid alleviates iron deficiency by regulating iron distribution in roots and shoots of apple. Sci Hortic, 2020, 262 109018

[49]

Zhang W, Zhao S, Gu S, Cao X, Zhang Y, Niu J, et al. . FvWRKY48 binds to the pectate lyase FvPLA promoter to control fruit softening in Fragaria vesca. Plant Physiol, 2022, 189: 1037-1049

[50]

Zhao Y, Zhao T, Sun Q, Liu X, Huang X, Li L, et al. . Enrichment of two important metabolites D-galacturonic acid and D-glucuronic acid inhibits MdHb1-mediated fruit softening in apple. Nat Plants, 2025, 11: 891-908

[51]

Zhiponova MK, Vanhoutte I, Boudolf V, Betti C, Dhondt S, Coppens F, et al. . Brassinosteroid production and signaling differentially control cell division and expansion in the leaf. New Phytol, 2013, 197: 490-502

[52]

Zhu J, Li C, Sun L, Cheng Y, Hou J, Fan Y, Ge Y. Application of γ-aminobutyric acid induces disease resistance in apples through regulation of polyamine metabolism, GABA shunt and reactive oxygen species metabolism. Sci Hortic, 2022, 291 110588

Funding

National Key Research and Development Program of China(2022YFD2100100)

National Natural Science Foundation of China(32572986)

Taishan Scholar Project Special Funds of China(Grant No. tstp20250723)

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