Selenium phytofortification: enhanced stress resistance and nutraceutical enrichment in horticultural crops

Yuxi Shangguan , Jin Zhu , Jianhui Ye , Helena Korpelainen , Chunyang Li

Horticulture Research ›› 2025, Vol. 12 ›› Issue (12) : 236

PDF (1955KB)
Horticulture Research ›› 2025, Vol. 12 ›› Issue (12) :236 DOI: 10.1093/hr/uhaf236
Review
research-article
Selenium phytofortification: enhanced stress resistance and nutraceutical enrichment in horticultural crops
Author information +
History +
PDF (1955KB)

Abstract

As a bridge between human health and plant nutrition, Selenium (Se) phytofortification represents a promising strategy for achieving a safe and effective dietary Se supplementation. Due to chemical similarities, Se absorption, transformation, and storage in crops primarily follow the sulfur metabolic pathway. Se enhances horticultural crop resilience against abiotic and biotic stresses by: (i) boosting antioxidant capacity, (ii) inducing hormonal cascades, (iii) promoting the accumulation of key metabolites (e.g. amino acids, flavonoids), (iv) strengthening cellular functions, and (v) harnessing plant-microbiome interactions. In horticultural crops, most Se exists in organic forms, such as selenoamino acids, selenoproteins, selenium-polysaccharides, and selenium-polyphenols, which contribute to unique quality traits. Additionally, Se regulates the synthesis of core nutrients, including amino acids, flavonoids, phenolic compounds, soluble sugars, mineral elements, alkaloids, and volatile compounds. It also extends postharvest shelf life by delaying senescence and deterioration. Current phytofortification strategies focus on enhancing bioavailable Se in edible parts through agronomic interventions and plant breeding. Artificial Se fertilization is the most common agronomic approach, classified by the application method (soil fertilization, foliar spraying, hydroponic supplementation, and seed soaking) and fertilizer type (inorganic, organic, nano-Se, and biosynthesized fertilizers). Optimizing plant species, fertilization methods, dosage, timing, and elemental synergies maximize phytofortification efficiency.

Cite this article

Download citation ▾
Yuxi Shangguan, Jin Zhu, Jianhui Ye, Helena Korpelainen, Chunyang Li. Selenium phytofortification: enhanced stress resistance and nutraceutical enrichment in horticultural crops. Horticulture Research, 2025, 12(12): 236 DOI:10.1093/hr/uhaf236

登录浏览全文

4963

注册一个新账户 忘记密码

Acknowledgments

This work was supported by the Talent Program of the Zhejiang University (0022112).

Data availability

No data was used for the research described in the article.

Conflict of interest statement

There are no conflicts of interest to declare.

References

[1]

Wen D. Selenium in horticultural crops. Sci Hortic. 2021; 289:110441

[2]

Murtaza G, Ahmed Z, Rizwan M. et al. Selenium biofortification in horticultural crops. In: Shah AN, Faiz S, Aslam M, Iqbal J, Qayyum A (ed). Crop Biofortification:Biotechnological Approaches for Achieving Nutritional Security under Changing Climate. Springer Cham: Cham, 2025,187-200

[3]

Yang H, Yang X, Ning Z. et al. The beneficial and hazardous effects of selenium on the health of the soil-plant-human sys-tem: an overview. J Hazard Mater. 2022; 422:126876

[4]

Schiavon M, Nardi S, Dalla Vecchia F. et al. Selenium bioforti-fication in the 21st century: status and challenges for healthy human nutrition. Plant Soil. 2020; 453:245-70

[5]

Luo N, Wang B, Yu R. et al. Effects of selenium nanoparticles on cadmium uptake, selenium transformation, and metabolomics in Agaricus blazei murill. Sci Rep. 2025; 15:20380

[6]

Chen Z, Lu Y, Dun X. et al. Research progress of selenium-enriched foods. Nutrients. 2023; 15:4189

[7]

Tangjaidee P, Swedlund P, Xiang J. et al. Selenium-enriched plant foods: selenium accumulation, speciation, and health function-ality. Front Nutr. 2023; 9:962312

[8]

Syed F, Zahid NY, Hayat R. et al. Biofortification of horticultural crops with selenium. Agrobiol Rec. 2021; 6:36-42

[9]

Yang F, Pan Y, Ali A. et al. Agronomic biofortification of garlic through selenium and arbuscular mycorrhizal fungi applica-tion. Horticulturae. 2021; 7:230

[10]

Poblaciones MJ, Broadley MR. Foliar selenium biofortification of broccolini: effects on plant growth and mineral accumulation. J Hortic Sci Biotechnol. 2022; 97:730-8

[11]

Xu X, Wang J, Wu H. et al. Effects of selenium fertilizer appli-cation and tomato varieties on tomato fruit quality: a meta-analysis. Sci Hortic. 2022; 304:111242

[12]

Zang H, Tong X, Yuan L. et al. Life-cycle selenium accumulation and its correlations with the rhizobacteria and endophytes in the hyperaccumulating plant Cardamine hupingshanensis. Ecotox-icol Environ Saf. 2023; 264:115450

[13]

Pourebrahimi M, Eshghi S, Ramezanian A. et al. Effect of com-bined application of selenium and hydrogen sulfide under salinity stress on yield, physiological traits and biofortifi-cation of strawberries in hydroponic cultivation. Sci Hortic. 2023; 315:111982

[14]

García Márquez V, Morelos Moreno Á, Benavides MA. et al. Ionic selenium and nanoselenium as biofortifiers and stimulators of plant metabolism. Agronomy. 2020; 10:1399

[15]

Mezey J, Mezeyová I, Selnekovic A. et al. Foliar selenium biofor-tification in temperate fruit crops: impact on selenium accu-mulation and nutritional quality of fruits and juices. Beverages. 2025; 11:53

[16]

Li L, Luo L, Zhan J. et al. Combined application of Bacillus amy-loliquefaciens and sodium selenite promotes tea seedling growth and selenium uptake by regulating the rhizosphere bacterial community. Biol Fertil Soils. 2025; 61:259-75

[17]

Guo Q, Ye J, Zeng J. et al. Selenium species transforming along soil-plant continuum and their beneficial roles for horticultural crops. Hortic Res. 2023;10:uhac270

[18]

Zhang R, Tang H, Hu X. et al. Selenium improves the flavor-promoting substances of summer tea (Camellia sinensis) by alter-ing the expression of flavonoid and amino acids metabolic genes. Hortic Adv. 2025; 3:4

[19]

Zhang H, Hao X, Zhang J. et al. Genome-wide identification of SULTR genes in tea plant and analysis of their expres-sion in response to sulfur and selenium. Protoplasma. 2022; 259: 127-40

[20]

Kang Y, Qin H, Wang G. et al. Selenium nanoparticles mitigate cadmium stress in tomato through enhanced accumulation and transport of sulfate/selenite and polyamines. J Agric Food Chem. 2024; 72:1473-86

[21]

White PJ. Selenium metabolism in plants. BBA-Gen Subj. 2018; 1862:2333-42

[22]

Zheng Q, Guo L, Huang J. et al. Comparative transcriptomics provides novel insights into the mechanisms of selenium accu-mulation and transportation in tea cultivars (Camellia sinensis (L.) O. Kuntze). Front Plant Sci. 2023; 14:1268537

[23]

Somagattu P, Chinnannan K, Yammanuru H. et al. Sele-nium dynamics in plants: uptake, transport, toxicity, and sus-tainable management strategies. Sci Total Environ. 2024; 949: 175033

[24]

Cao D, Liu Y, Ma L. et al. Genome-wide identification and char-acterization of phosphate transporter gene family members in tea plants (Camellia sinensis L.O. Kuntze) under different selenite levels. Plant Physiol Biochem. 2021; 166:668-76

[25]

Chao W, Rao S, Chen Q. et al. Advances in research on the involvement of selenium in regulating plant ecosystems. Plants. 2022; 11:2712

[26]

Liu M, Ye L, Zhao W. et al. Nano-selenium elevating leaf quality and growth via microbial-regulating nitrogen availability under ammonium and nitrate spraying in tea plants. Plant Cell Environ. 2025; 48:3981-96

[27]

Ren H, Li X, Guo L. et al. Integrative transcriptome and proteome analysis reveals the absorption and metabolism of selenium in tea plants [Camellia sinensis (L.) O. Kuntze]. Front Plant Sci. 2022; 13:848349

[28]

Trippe RC III, Pilon-Smits EAH. Selenium transport and metabolism in plants: phytoremediation and biofortification implications. J Hazard Mater. 2021; 404:124178

[29]

Huang X, Tang Q, Chen C. et al. Combined analysis of transcrip-tome and metabolome provides insights into nano-selenium foliar applications to improve summer tea quality (Camellia sinensis). LWT Food Sci Technol. 2023; 175:114496

[30]

Wang X, Hussain B, Xin X. et al. Fate and physiological effects of foliar selenium nanoparticles in wheat. ACS Nano. 2025; 19: 21792-806

[31]

El-Ramady H, El-Sakhawy T, Omara AED. et al. Selenium and nano-selenium for plant nutrition and crop quality. In: Hossain MA, Ahammed GJ, Kolbert Z. et al.eds., Selenium and Nano-Selenium in Environmental Stress Management and Crop Quality Improvement. Springer International Publishing: Cham, 2022, 55-78

[32]

Wu H, Zhang D, Wu X. et al. Uptake and transport of selenium in a soil-tea plant-tea infusion system: a study of typical tea plantations in a selenium-rich area of China. Forests. 2024; 15:914

[33]

Wang Y, Feng LJ, Sun XD. et al. Incorporation of selenium derived from nanoparticles into plant proteins in vivo. ACS Nano. 2023; 17:15847-56

[34]

Zhang X, Li X, Chen F. et al. Selenium nanomaterials enhance the nutrients and functional components of Fuding Dabai tea. Nanomaterials. 2024; 14:681

[35]

Lanza MGDB, Dos Reis AR. Roles of selenium in mineral plant nutrition: ROS scavenging responses against abiotic stresses. Plant Physiol Biochem. 2021; 164:27-43

[36]

Wang K, Fang Q, He P. et al. Unveiling the potential of selenium-enriched tea: compositional profiles, physiological activities, and health benefits. Trends Food Sci Technol. 2024; 145: 104356

[37]

Xiang J, Rao S, Chen Q. et al. Research progress on the effects of selenium on the growth and quality of tea plants. Plants. 2022; 11:2491

[38]

Gomes FTD, Chales AS, Borghi EJA. et al. Agronomic biofor-tification with selenium and zinc in tomato plants (Solanum lycopersicum L.) and their effects on nutrient content and crop production. J Soil Sci Plant Nutr. 2025; 25:2503-17.

[39]

Khan Z, Thounaojam TC, Chowdhury D. et al. The role of sele-nium and nano selenium on physiological responses in plant: a review. Plant Growth Regul. 2023; 100:409-33

[40]

Guo A, Jia W, Wang X. Selenium-mediated (-) -epigallocatechin-3-gallate dynamics via flavanone-3-hydroxylase regulation of flavonoid biosynthesis in Fu tea (Camellia sinensis (L.) O. Kuntze). J Agric Food Chem. 2024; 72:13769-84

[41]

Fan Z, Jia W, Du A. et al. Discovery of Se-containing flavone in Se-enriched green tea and the potential applica-tion value in the immune regulation. Food Chem. 2022; 394: 133468

[42]

Qu L, Xu J, Dai Z. et al. Selenium in soil-plant system: transport, detoxification and bioremediation. J Hazard Mater. 2023; 452:131272

[43]

Wang Y, Sun P, Nie M. et al. Integration of metabolomics and transcriptomics analyses reveals the effects of nano-selenium on pak choi. Sci Rep. 2025; 15:11215

[44]

Ikram S, Li Y, Lin C. et al. Selenium in plants: a nexus of growth, antioxidants, and phytohormones. J Plant Physiol. 2024; 296:154237

[45]

Erdem SO, Karakoyun M, Karaer M. Impact of sodium selenate foliar application under water stress conditions on yield, quality, and mineral composition in strawberry cultivation. NZJCrop Hortic Sci. 2025; 53:2353-66.

[46]

Tallarita AV, Golubkina N, De Pascale S. et al. Effects of sele-nium/iodine foliar application and seasonal conditions on yield and quality of perennial wall rocket. Horticulturae. 2025; 11:211

[47]

Zohra E, Ikram M, Omar AA. et al. Potential applications of biogenic selenium nanoparticles in alleviating biotic and abiotic stresses in plants: a comprehensive insight on the mechanistic approach and future perspectives. Green Process Synth. 2021; 10: 456-75

[48]

Ali J, Jan I, Ullah H. et al. Biochemical response of okra (Abel-moschus esculentus L.) to selenium (Se) under drought stress. Sustainability. 2023; 15:5694

[49]

Paiva LGD, Grangeiro LC, et al. Selenium as an inorganic biostimulant in onion grown in a semi-arid climate. Rev Bras Eng Agric Ambient. 2024; 28:e279061

[50]

Raza MAS, Aslam MU, Valipour M. et al. Seed priming with selenium improves growth and yield of quinoa plants suffering drought. Sci Rep. 2024; 14:886

[51]

Ahmad F, Javied S, Ashraf K. et al. Effect of selenium and compost on physiological, biochemical, and productivity of chili under chromium stress. Sci Rep. 2025; 15:10076

[52]

Yu Y, Yang Y, Guo Y. et al. Exogenous selenium enhances cad-mium stress tolerance by improving physiological characteris-tics of Artemisia argyi seedlings. Sci Rep. 2025; 15:3450

[53]

Shalaby TA, Abd-Alkarim E, El-Aidy F. et al. Nano-selenium, silicon and H2O2 boost growth and productivity of cucumber under combined salinity and heat stress. Ecotoxicol Environ Saf. 2021; 212:111962

[54]

Liu K, Li S, Han J. et al. Effect of selenium on tea (Camellia sinensis) under low temperature: changes in physiological and biochem-ical responses and quality. Environ Exp Bot. 2021; 188:104475

[55]

Ahmed AF. The role of selenium in mitigating the harmful effects of alkalinity stress in tomato seedlings. Appl Ecol Environ Res. 2025; 23:2779-91

[56]

Xu X, Chen Z, Wang W. et al. The effect of selenium biological enhancement on cucumber growth and powdery mildew con-trol under greenhouse conditions. Sci Rep. 2025; 15:10363

[57]

Hussain S, Ahmed S, Akram W. et al. Selenium seed priming enhanced the growth of salt-stressed Brassica rapa L. through improving plant nutrition and the antioxidant system. Front Plant Sci. 2023; 13:1050359

[58]

Fatahiyan F, Najafi F, Shirkhani Z. et al. Selenium enhances salt tolerance in safflower via biochemical and molecular modula-tion. Sci Rep. 2025; 15:21453

[59]

Alvan HA, Jabbarzadeh Z, Fard JR. et al. Selenium foliar applica-tion alleviates salinity stress in sweet William (Dianthus barbatus L.) by enhancing growth and reducing oxidative damage. Sci Rep. 2025; 15:5570

[60]

Ghanbari F, Bag-Nazari M, Azizi A. et al. Exogenous application of selenium and nano-selenium alleviates salt stress and improves secondary metabolites in lemon verbena under salinity stress. Sci Rep. 2023; 13:5352

[61]

Xu J, Zhang Y, Zhang M. et al. Effects of foliar selenium appli-cation on Se accumulation, elements uptake, nutrition quality, sensory quality and antioxidant response in summer-autumn tea. Food Res Int. 2024; 175:113618

[62]

Zhang Y, Sun Q, Zhang Q. et al. Combined analysis of the tran-scriptome and metabolome revealed that selenium nanoparti-cles mediate root development in cucumber (Cucumis sativus L.). Plant Physiol Biochem. 2025; 226:110064

[63]

SeyedHajizadeh H, Esmaili S, Zahedi SM. et al. Silicon dioxide and selenium nanoparticles enhance vase life and physiological quality in black magic roses. Sci Rep. 2024; 14:22848

[64]

Hasanuzzaman M, Nahar K, García-Caparrós P. et al. Selenium supplementation and crop plant tolerance to metal/metalloid toxicity. Frontiers. Plant Sci. 2022; 12:792770

[65]

Cao D, Li J, Ma L. et al. Genome-wide identification of selenium-responsive microRNAs in tea plant (Camellia sinensis L.O. Kuntze). Horticulturae. 2023; 9:1278

[66]

Abouelhamd N, Gharib FAEL, Amin AA. et al. Impact of foliar spray with Se, nano-Se and sodium sulfate on growth, yield and metabolic activities of red kidney bean. Sci Rep. 2023; 13: 17102

[67]

Li D, Zhou C, Zou N. et al. Nanoselenium foliar applica-tion enhances biosynthesis of tea leaves in metabolic cycles and associated responsive pathways. Environ Pollut. 2021; 273: 116503

[68]

Sabatino L, La Bella S, Ntatsi G. et al. Selenium biofortification and grafting modulate plant performance and functional fea-tures of cherry tomato grown in a soilless system. Sci Hortic. 2021; 285:110095

[69]

García-Locascio E, Valenzuela EI, Cervantes-Avilés P. et al. Impact of seed priming with selenium nanoparticles on germi-nation and seedlings growth of tomato. Sci Rep. 2024; 14:6726

[70]

Cheng W, Yu X, Wang X. Molecular insights into benefi-cial effects of tea-plant growth and selenium enrichment by Herbaspirillum camelliae. Appl Microbiol Theory Technol. 2021; 2 :37-51

[71]

Xu X, Cheng W, Liu X. et al. Selenate reduction and selenium enrichment of tea by the endophytic Herbaspirillum sp. strain WT00C. Curr Microbiol. 2020; 77:588-601

[72]

Marfetan JA, Gallo AL, Farias ME. et al. Exiguobacterium sp. as a bioinoculant for plant-growth promotion and selenium bio-fortification strategies in horticultural plants. World J Microbiol Biotechnol. 2023; 39:134

[73]

Tang Y, Zhou Y, Wang P. et al. Selenium-mediated shaping of citrus rhizobiome for promotion in root growth and soil phos-phorus activation. J Agric Food Chem. 2024; 72:16624-37

[74]

Guo Q, Xiao Y, Zhu Y. et al. Selenium availability in tea: unrav-eling the role of microbiota assembly and functions. Sci Total Environ. 2024; 952:175995

[75]

Hashem AH, Abdelaziz AM, Attia MS. et al. Selenium and nano-selenium-mediated biotic stress tolerance in plants. In: Hossain M A, Ahammed G J, Kolbert Z, El-Ramady H, Islam T,Schi-avon M (ed). Selenium and Nano-Selenium in Environmental Stress Management and Crop Quality Improvement. Springer International Publishing: Cham, 2022,209-26

[76]

Zhang X, He H, Xiang J. et al. Selenium-containing proteins/pep-tides from plants: a review on the structures and functions. J Agric Food Chem. 2020; 68:15061-73

[77]

Dervisi I, Koletti A, Agalou A. et al. Selenium-binding protein 1 (SBP1): a new putative player of stress sensing in plants. Int J Mol Sci. 2024; 25:9372

[78]

Zhou N, Long H, Wang C. et al. Research progress on the biolog-ical activities of selenium polysaccharides. Food Funct. 2020; 11: 4834-52

[79]

Zhu J, Chen X, Li F. et al. Preparation, physicochemical and hypoglycemic properties of natural selenium-enriched coarse tea glycoproteins. Plant Foods Hum Nutr. 2022; 77: 258-64

[80]

Hu W, Su Y, Yang R. et al. Effect of foliar application of silicon and selenium on the growth, yield and fruit quality of tomato in the field. Horticulturae. 2023; 9:1126

[81]

Ye Y, Yan W, Peng L. et al. Insights into the key quality com-ponents in Se-enriched green tea and their relationship with selenium. Food Res Int. 2023; 165:112460

[82]

Zhang X, Yang X, Ruan J. et al. Epigallocatechin gallate (EGCG) nanoselenium application improves tea quality (Camellia sinen-sis L.) and soil quality index without losing microbial diver-sity: a pot experiment under field condition. Sci Total Environ. 2024; 914:169923

[83]

Eslamiparvar A, Hosseinifarahi M, Amiri S. et al. Combined bio-fortification of spinach plant through foliar spraying with iodine and selenium elements. Sci Rep. 2025; 15:6722

[84]

Ghafouri M, Razavi F, Arghavani M. et al. Delaying postharvest senescence and improving antioxidant capacity of kiwifruits cv.Hayward by preharvest selenium application. J Food Process Preserv. 2022; 46:e17185

[85]

Wei Y, Zhang D, Liang Y. et al. Chemical profiles, dissolution patterns, and in vitro bioactivities of selenium-enriched green teas: impact of brewing conditions. Food Innov Adv. 2024; 3:372-84

[86]

Gui JY, Rao S, Huang X. et al. Interaction between selenium and essential micronutrient elements in plants: a systematic review. Sci Total Environ. 2022; 853:158673

[87]

Rady MM, Belal HE, Gadallah FM. et al. Selenium application in two methods promotes drought tolerance in Solanum lycop-ersicum plant by inducing the antioxidant defense system. Sci Hortic. 2020; 266:109290

[88]

Pérez MB, Lipinski VM, Filippini MF. et al. Selenium biofortifica-tion on garlic growth and other nutrients accumulation. Hortic Bras. 2019; 37:294-301

[89]

Abdoun KA, Altahir OA, Alsagan AA. et al. Effect of irrigation frequency and selenium fertilization on the vegetative growth and biomass yield of Moringa oleifera and Moringa peregrina. Sci Rep. 2022; 12:22379

[90]

Sun MF, Wang JJ, Liu W. et al. Effect and mechanism of exogenous selenium on selenium content and quality of fresh tea leaves. Not Bot Horti Agrobot Cluj-Na. 2022; 50:12814

[91]

Liu J, Qi WY, Chen H. et al. Selenium nanoparticles as an inno-vative selenium fertilizer exert less disturbance to soil microor-ganisms. Front Microbiol. 2021; 12:746046

[92]

Liu H, Xiao C, Qiu T. et al. Selenium regulates antioxidant, photosynthesis, and cell permeability in plants under various abiotic stresses: a review. Plants. 2022; 12:44

[93]

Cao D, Li J, Ma L. et al. Unlocking tea’s potential: the synergistic role of selenium and phosphorus in enhancing tea quality. Plant Physiol Biochem. 2025; 221:109670

[94]

Zhao S, Bai Y, Jin Z. et al. Effects of the combined application of nitrogen and selenium on tea quality and the expression of genes involved in nitrogen uptake and utilization in tea cultivar ‘Chuancha No. 2’. Agronomy. 2023; 13:2997

[95]

Guo J, Zhang S, Li J. Impact of three exogenous phosphorus-solubilizing bacteria on zinc and selenium contents and rhi-zosphere soil nutrients of Longjing and Huangjinya tea plants. Front Microbiol. 2024; 15:1413538

[96]

Liu X, Cheng H, Cheng S. et al. Advances in research on influenc-ing factors of selenium enrichment in plants. Plant Growth Regul. 2024; 103:243-55

PDF (1955KB)

483

Accesses

0

Citation

Detail

Sections
Recommended

/