Plant Soil Environ., 2026, 72(7):427-437
The effects of cadmium on the AsA-GSH cycle and antioxidant compounds in different cultivars of perennial ryegrassOriginal Paper
- 1 Faculty of Animal Science and Technology, Yunnan Agricultural University, Kunming, P.R. China
- 2 Kunming Geological Exploration Institute of China Metallurgical Geology Bureau, Kunming, P.R. China
Cadmium (Cd) is a common heavy metal contaminant in agricultural soils; its high bioaccumulation potential and toxicity mean it enters the human body via the food chain, posing a health risk. Perennial ryegrass (Lolium perenne L.) is renowned for its high tolerance to heavy metal toxicity and is frequently used in phytoremediation. This study examined growth morphology, activities of ascorbate peroxidase (APX), dehydroascorbate reductase (DHAR), glutathione peroxidase (GPX), and glutathione reductase (GR), as well as non-enzymatic antioxidant contents in two perennial ryegrass cultivars: WNS (Venus, low Cd accumulation) and YY (Excellent, high Cd accumulation), under Cd treatments of 0, 3, 6, and 12 mg/kg Cd2+. Under Cd stress, WNS exhibited significantly higher plant height, leaf length, tiller number, GPX activity, and glutathione (GSH) content compared with YY. At 12 mg/kg Cd, GR activity in WNS was also significantly higher than in YY (P < 0.05). In contrast, at each Cd level, YY showed significantly higher leaf Cd accumulation, APX and DHAR activities, and ascorbic acid (AsA) content than WNS (P < 0.05), accompanied by elevated oxidised glutathione (GSSG) content. The comprehensive response index of YY under 3, 6, and 12 mg/kg Cd was 2.77, 2.91, and 2.94 times that of WNS, respectively. These findings suggest that WNS mitigates Cd toxicity and sustains growth homeostasis by maintaining higher GPX and GR activities and higher GSH content within the GSH-GSSG cycle. This study provides a theoretical basis for elucidating the differential Cd tolerance mechanisms among ryegrass cultivars with contrasting Cd accumulation capacities and offers insights to refine phytoremediation strategies in Cd-contaminated soils.
Keywords: heavy metal; cultivars comparison; accumulation capacity; soil pollution; antioxidant system
Received: March 10, 2026; Revised: July 5, 2026; Accepted: July 14, 2026; Published: July 23, 2026 Show citation
References
- Al-Huqail A.A., Al-Malki M.A.-R., Melebari D.M., Osman H.E.S., Alshehri D., Alghanem S.M.S., Abeed A.H.A., Mousavi H. (2025): Mitigating salinity and cadmium stress in rice (Oryza sativa L.) using PGPR and salicylic acid: rhizosphere, health risk, and physiological insights. Plant Signal-ling and Behaviour, 20: 2553803.
Go to original source...
Go to PubMed... - Ali S., Khan A.S., Nawaz A., Naz S., Ejaz S., Ullah S. (2023): Glutathione application delays surface browning of fresh-cut lotus (Nelumbo nucifera Gaertn.) root slices during low temperature storage. Postharvest Biology and Technology, 200: 112311.
Go to original source... - Ali S., Rehman R.N.U., Khan A.S., Nawaz A., Naz S., Khaliq G., Haider M.W. (2025): Combined sodium alginate and glutathione treatment delays water chestnut (Trapa natans L.) browning by regulating oxidative stress and ascorbate glutathione cycle. International Journal of Biological Mac-romolecules, 319: 145419.
Go to original source...
Go to PubMed... - Anjum S.A., Tanveer M., Hussain S., Bao M., Wang L., Khan I., Ullah E., Tung S.A., Samad R.A., Shahzad B. (2015): Cadmium toxicity in maize (Zea mays L.): consequences on antioxidative systems, reactive oxygen species and cadmium accumulation. Environmental Science and Pollution Research International, 22: 17022-17030.
Go to original source...
Go to PubMed... - Bai X., Chen L., Wang Z., Lock T.R (2024): Physiological and metabolic responses of Lolium perenne L. roots to acid stress in cadmium-contaminated soil. Plant, Soil and Environment, 70: 366-376.
Go to original source... - Bashir S., Bhat S.A., Rather R.A., Wani U.M., Raja V., John R. (2025): Targeting antioxidant pathways for improved tolerance to chromium exposure. International Journal of Phytoremediation, 27: 1887-1902.
Go to original source...
Go to PubMed... - Bibi A., Ullah M.S., Mahmood A., Shahzad M., Javaid M.M., Nadeem M.A., Altihani F.A., Hashem M., Qari S.H. (2025): Indole-3-acetic acid im-proves growth, physiology, photosynthesis, and ion balance under cadmium stress in Sorghum bicolor. Scientific Reports, 15: 33971.
Go to original source...
Go to PubMed... - Boysan Canal S., Bozkurt M.A., Yílmaz H. (2023): Humic acid ameliorates phytoremediation, plant growth and antioxidative enzymes in forage tur-nip (Brassica rapa L.). Plant, Soil and Environment, 69: 567-576.
Go to original source... - Cao S., Wang M., Pan J., Luo D., Mubeen S., Wang C., Yue J., Wu X., Wu Q., Zhang H., Chen C., Rehman M., Xie S., Li R., Chen P. (2024): Physio-logical, transcriptome and gene functional analysis provide novel insights into cadmium accumulation and tolerance mechanisms in kenaf. Journal of Environmental Sciences-China, 137: 500-514.
Go to original source...
Go to PubMed... - Chen F., Jiang F., Okla M.K., Abbas Z.K., Al-Qahtani S.M., Al-Harbi N.A., Abdel-Maksoud M.A., Gómez-Oliván L.M. (2024): Nanoparticles synergy: enhancing wheat (Triticum aestivum L.) cadmium tolerance with iron oxide and selenium. Science of the Total Environment, 915: 169869.
Go to original source... - Cobbett C., Goldsbrough P. (2002): Phytochelatins and metallothioneins: roles in heavy metal detoxification and homeostasis. Annual Review of Plant Biology, 53: 159-182.
Go to original source...
Go to PubMed... - Dai H., Wei S., Twardowska I., Hou N., Zhang Q. (2022): Cosmopolitan cadmium hyperaccumulator Solanum nigrum: exploring cadmium uptake, transport and physiological mechanisms of accumulation in different ecotypes as a way of enhancing its hyperaccumulative capacity. Journal of Envi-ronmental Management, 320: 115878.
Go to original source...
Go to PubMed... - Deutsch J.C. (2000): Dehydroascorbic acid. Journal of Chromatography A, 881: 299-307.
Go to original source...
Go to PubMed... - Ekmekçi Y., Tanyolaç D., Ayhan B. (2008): Effects of cadmium on antioxidant enzyme and photosynthetic activities in leaves of two maize cultivars. Journal of Plant Physiology, 165: 600-611.
Go to original source... - Elhakem A.H. (2024): Alleviating cadmium toxicity in maize plants: role of glycine betaine in enhancing growth, photosynthetic efficiency, water status, and antioxidant defence mechanism. Plant, Soil and Environment, 70: 617-631.
Go to original source... - Fan P., Shi H., Ling H., Li B., Yang F., Huang C., Zhang L. (2025): Combined soil and atmospheric cadmium stresses: cadmium accumulation and physiological responses in Nicotiana tabacum L. Physiologia Plantarum, 177: e70484.
Go to original source... - Farooq M.A., Ali S., Hameed A., Bharwana S.A., Rizwan M., Ishaque W., Farid M., Mahmood K., Iqbal Z. (2016): Cadmium stress in cotton seed-lings: physiological, photosynthesis and oxidative damages alleviated by glycinebetaine. South African Journal of Botany, 104: 61-68.
Go to original source... - Flores-Cáceres M.L., Hattab S., Hattab S., Boussetta H., Banni M., Hernández L.E. (2015): Specific mechanisms of tolerance to copper and cadmium are compromised by a limited concentration of glutathione in alfalfa plants. Plant Science, 233: 165-173.
Go to original source... - Gao W., Wu D., Zhang D., Geng Z., Tong M., Duan Y., Xia W., Chu J., Yao X. (2024): Comparative analysis of the effects of microplastics and nitro-gen on maize and wheat: growth, redox homeostasis, photosynthesis, and AsA-GSH cycle. Science of the Total Environment, 932: 172555.
Go to original source... - Genchi G., Sinicropi M.S., Lauria G., Carocci A., Catalano A. (2020): The effects of cadmium toxicity. International Journal of Environmental Re-search and Public Health, 17: 3782.
Go to original source...
Go to PubMed... - Hasan S.A., Fariduddin Q., Ali B., Hayat S., Ahmad A. (2009): Cadmium: toxicity and tolerance in plants. Journal of Environmental Biology, 30: 165-174.
- Hasanuzzaman M., Nahar K., Anee T.I., Fujita M. (2017): Exogenous silicon attenuates cadmium-induced oxidative stress in Brassica napus L. by modulating AsA-GSH pathway and glyoxalase system. Frontiers in Plant Science, 8: 1061.
Go to original source... - Jia L., Yu G., Zhao Z., Lü L. (2025): Effects of cadmium (Cd) on photosynthetic characteristics and chlorophyll fluorescence parameters in the orna-mental plant Salvia splendens Ker-Gawl. Physiology and Molecular Biology of Plants, 31: 507-519.
Go to original source... - Jiang N., Li Z., Yang J., Zu Y. (2022): Responses of antioxidant enzymes and key resistant substances in perennial ryegrass (Lolium perenne L.) to cadmium and arsenic stresses. BMC Plant Biology, 22: 145.
Go to original source...
Go to PubMed... - Jung H.I., Lee T.G., Lee J., Chae M.J., Lee E.J., Kim M.S., Jung G.B., Emmanuel A., Jeon S., Lee B.R. (2021): Foliar-applied glutathione mitigates cadmium-induced oxidative stress by modulating antioxidant-scavenging, redox-regulating, and hormone-balancing systems in Brassica napus. Frontiers in Plant Science, 12: 700413.
Go to original source...
Go to PubMed... - Lane T.W., Saito M.A., George G.N., Pickering I.J., Prince R.C., Morel F.M.M. (2005): Biochemistry: a cadmium enzyme from a marine diatom. Nature, 435: 42.
Go to original source...
Go to PubMed... - Li G.-Z., Wang Y.-Y., Liu J., Liu H.-T., Liu H.-P., Kang G.-Z. (2022): Exogenous melatonin mitigates cadmium toxicity through ascorbic acid and glutathione pathway in wheat. Ecotoxicology and Environmental Safety, 237: 113533.
Go to original source... - Li G., Chen F., Jia S., Wang Z., Zuo Q., He H. (2020): Effect of biochar on Cd and pyrene removal and bacteria communities variations in soils with culturing ryegrass (Lolium perenne L.). Environmental Pollution, 265: 114887.
Go to original source...
Go to PubMed... - Liu J., Cai G., Qian M., Wang D., Xu J., Yang J., Zhu Q. (2007): Effect of Cd on the growth, dry matter accumulation and grain yield of different rice cultivars. Journal of the Science of Food and Agriculture, 87: 1088-1095.
Go to original source... - Lou L., Kang J., Pang H., Li Q., Du X., Wu W., Chen J., Lv J. (2017): Sulfur protects Pakchoi (Brassica chinensis L.) seedlings against cadmium stress by regulating ascorbate-glutathione metabolism. International Journal of Molecular Sciences, 18: 1628.
Go to original source...
Go to PubMed... - Mengdi X., Wenqing C., Haibo D., Xiaoqing W., Li Y., Yuchen K., Hui S., Lei W. (2021): Cadmium-induced hormesis effect in medicinal herbs im-proves the efficiency of safe utilization for low cadmium-contaminated farmland soil. Ecotoxicology and Environmental Safety, 225: 112724.
Go to original source...
Go to PubMed... - Mesnoua M., Mateos-Naranjo E., Barcia-Piedras J.M., Pérez-Romero J.A., Lotmani B., Redondo-Gómez S. (2016): Physiological and biochemical mechanisms preventing Cd-toxicity in the hyperaccumulator Atriplex halimus L. Plant Physiology and Biochemistry, 106: 30-38.
Go to original source...
Go to PubMed... - Mir I.R., Gautam H., Anjum N.A., Masood A., Khan N.A. (2022): Calcium and nitric oxide signaling in plant cadmium stress tolerance: a cross talk. South African Journal of Botany, 150: 387-403.
Go to original source... - Ortega-Villasante C., Rellán-Alvarez R., Del Campo F.F., Carpena-Ruiz R.O., Hernández L.E. (2005): Cellular damage induced by cadmium and mercury in Medicago sativa. Journal of Experimental Botany, 56: 2239-2251.
Go to original source...
Go to PubMed... - Riaz M., Kamran M., Rizwan M., Ali S., Parveen A., Malik Z., Wang X. (2021): Cadmium uptake and translocation: selenium and silicon roles in Cd detoxification for the production of low Cd crops: a critical review. Chemosphere, 273: 129690.
Go to original source...
Go to PubMed... - Saeed S.H., Shah G.M., Mahmood Q., Shaheen S., Zeb B.S., Nawazish S., Almutairi K.F., Avila-Quezada G.D., Abd_Allah E.F. (2024): Phytoremedia-tion ability and selected genetic transcription in Hydrocotyle umbellata-under cadmium stress. International Journal of Phytoremediation, 26: 1144-1153.
Go to original source... - Song L., Zhou J., Xu X., Na M., Xu S., Huang Y., Zhang J., Li X., Zheng X. (2024): Inoculation of cadmium-tolerant bacteria to regulate microbial activity and key bacterial population in cadmium-contaminated soils during bioremediation. Ecotoxicology and Environmental Safety, 271: 115957.
Go to original source... - Tan Z., Wu C., Xuan Z., Cheng Y., Xiong R., Su Z., Wang D. (2022): Lead exposure dose-dependently affects oxidative stress, AsA-GSH, photosyn-thesis, and mineral content in pakchoi (Brassica chinensis L.). Frontiers in Plant Science, 13: 1007276.
Go to original source...
Go to PubMed... - Wang J., Zhao J., Feng S., Zhang J., Gong S., Qiao K., Zhou A. (2020): Comparison of cadmium uptake and transcriptional responses in roots reveal key transcripts from high and low-cadmium tolerance ryegrass cultivars. Ecotoxicology and Environmental Safety, 203: 110961.
Go to original source...
Go to PubMed... - Wang M., Zou J., Duan X., Jiang W., Liu D. (2007): Cadmium accumulation and its effects on metal uptake in maize (Zea mays L.). Bioresource Technology, 98: 82-88.
Go to original source...
Go to PubMed... - Wu L., Zhang Q., Lu N. (2024): Poly-glutamic acid reinforces wheat cadmium tolerance by modulating ascorbic acid and glutathione metabolism. Plant, Soil and Environment, 70: 483-491.
Go to original source... - Wu Z., Zhao X., Sun X., Tan Q., Tang Y., Nie Z., Qu C., Chen Z., Hu C. (2015): Antioxidant enzyme systems and the ascorbate-glutathione cycle as contributing factors to cadmium accumulation and tolerance in two oilseed rape cultivars (Brassica napus L.) under moderate cadmium stress. Chemosphere, 138: 526-536.
Go to original source...
Go to PubMed... - Zhang Y., Ni C., Dong Y., Jiang X., Liu C., Wang W., Zhao C., Li G., Xu K., Huo Z. (2023): The role of the ascorbic acid-glutathione cycle in young wheat ears' response to spring freezing stress. Plants-Basel, 12: 4170.
Go to original source...
Go to PubMed... - Zhu S., Sun S., Zhao W., Yang X., Chen Z., Mao H., Sheng L. (2024): Comprehensive physiology and proteomics analysis revealed the resistance mechanism of rice (Oryza sativa L) to cadmium stress. Ecotoxicology and Environmental Safety, 278: 116413.
Go to original source...
Go to PubMed...
This is an open access article distributed under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.

