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Keywords: Mercury toxicity, n Mentha spicatan , Sand culture, Stem anatomy, Heavy metals
Mercury (Hg) contamination adversely affects plant growth and anatomical development and poses risks for medicinal and aromatic plants. This study evaluated the effects of HgCl2 concentrations (0–3 mg/L) on shoot growth, biomass production, mercury accumulation in stems, and stem tissues of Mentha spicata L. grown under sand culture conditions. The experiment was conducted for 60 days in a randomized block design with five replicates. Increasing Hg concentrations significantly reduced stem length, stem area, number of branches and leaves, and fresh and dry biomass. Decreases were also observed in cortex + epidermis, phloem + cambium, pith, xylem and mean xylem vessel lumen areas, with the strongest inhibition at 2.5 and 3 mg/L. In contrast, mercury accumulation in stems increased with increasing Hg concentrations. These findings indicate that Hg exposure induces concentration-dependent reductions in shoot growth and stem tissue development in M. spicata and may pose risks to product safety in medicinal and aromatic plant cultivation.
Bücker-Neto L, Paiva ALS, Machado RD, Arenhart RA, Margis-Pinheiro M (2017) Interactions between plant hormones and heavy metals responses. Gen Mol Biol 40(1):373–386. https://doi.org/10.1590/1678-4685-GMB-2016-0087
Cavallini A, Natali L, Durante M, Maserti B (1999) Mercury uptake, distribution and DNA affinity in durum wheat (Triticum durum Desf.) plants. Sci Total Environ 243:119–127. https://doi.org/10.1016/S0048-9697(99)00367-8
Chaudhry NY, Khan AS (2007) Role of mercury and exogenous IAA on xylem vessels and sieve elements in Cucumis sativus L. Pak J Bot 39(1):135
Chibuike G, Obiora S (2014) Heavy metal polluted soils: effect on plants and bioremediation methods. Appl Environ Soil Sci 2014:1–12. https://doi.org/10.1155/2014/752708
Clemens S (2006) Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants. Biochimie 88(11):1707–1719. https://doi.org/10.1016/j.biochi.2006.07.003
Emamverdian A, Ding Y, Mokhberdoran F, Xie Y (2015) Heavy metal stress and some mechanisms of plant defense response. Sci World J 2015:1–18. https://doi.org/10.1155/2015/756120
Godbold DL, Hüttermann A (1988) Inhibition of photosynthesis and transpiration in relation to mercury-induced root damage in spruce seedlings. Physiol Plant 74(2):270–275. https://doi.org/10.1111/j.1399-3054.1988.tb00631.x
Gusmao M (2010) Grass pea (Lathyrus sativus cv. Ceora): adaptation to water deficit and benefit in crop rotation. University of Western Australia, Perth
Hall JL (2002) Cellular mechanisms for heavy metal detoxification and tolerance. J Exp Bot 53(366):1–11. https://doi.org/10.1093/jexbot/53.366.1
Hamim H, Mutyandini A, Sulistyaningsih YC, Putra HF, Saprudin D, Setyaningsih L (2019) Effect of mercury on growth, anatomy and physiology of four non-edible oil-producing species. Asian J Plant Sci 18(4):164–174. https://doi.org/10.3923/ajps.2019.164.174
Hewitt EJ (1966) Sand and water culture methods used in the study of plant nutrition. Technical Communication No. 22, Commonwealth Bureau of Horticulture and Plantation Crops, England.
Hoagland DR, Arnon DI (1950) The water culture method for growing plants without soil. Calif Agric Exp Stn 347:32
Huang P, de-Bashan L, Crocker T, Kloepper JW, Bashan Y (2017) Evidence that fresh weight measurement is imprecise for reporting the effect of plant growth-promoting (rhizo)bacteria on growth promotion of crop plants. Biol Fertil Soils 53:199–208. https://doi.org/10.1007/s00374-016-1160-2
Iqbal MZ, Shafiq M, Athar M (2014) Phytotoxic effects of mercury on seed germination and seedling growth of Albizia lebbeck (L.) Benth. (Leguminosae). Adv Environ Res 3(3):207–216. https://doi.org/10.12989/aer.2014.3.3.207
Israr M, Sahi S, Datta R, Sarkar D (2006) Bioaccumulation and physiological effects of mercury in Sesbania drummondii. Chemosphere 65(4):591–598. https://doi.org/10.1016/j.chemosphere.2006.02.016
Javot H, Maurel C (2002) The role of aquaporins in root water uptake. Ann Bot 90(3):301–313. https://doi.org/10.1093/aob/mcf199
Johansen DA (1940) Plant microtechnique. McGraw-Hill, New York
John R, Ahmad P, Gadgil K, Sharma S (2009) Heavy metal toxicity: effect on plant growth, biochemical parameters and metal accumulation by Brassica juncea L. Int J Plant Prod 3(3):65–75
Kastratović V, Blagojević N, Vukašinović-Pešić V (2022) Bioaccumulation and translocation of some transition metals in Mentha spicata and Mentha longifolia. Pol J Environ Stud. https://doi.org/10.15244/pjoes/150390
Küpper H, Küpper F, Spiller M (1996) Environmental relevance of heavy metal-substituted chlorophylls using the example of water plants. J Exp Bot 47(2):259–266. https://doi.org/10.1093/jxb/47.2.259
Maggio A, Joly RJ (1995) Effects of mercuric chloride on the hydraulic conductivity of tomato root systems (evidence for a channel-mediated water pathway). Plant Physiol 109(1):331–335. https://doi.org/10.1104/pp.109.1.331
Manikandan R, Sahi SV, Venkatachalam P (2015) Impact assessment of mercury accumulation and biochemical and molecular response of Mentha arvensis: a potential hyperaccumulator plant. Sci World J 2015:715217. https://doi.org/10.1155/2015/715217
Marrugo-Negrete J, Durango-Hernández J, Pinedo-Hernández J, Enamorado-Montes G, Díez S (2016) Mercury uptake and effects on growth in Jatropha curcas. J Environ Sci 48:120–125. https://doi.org/10.1016/j.jes.2015.10.036
Mehdizadeh L, Moghaddam M, Ganjeali A, Rahimmalek M (2024) Salicylic acid elicitation effect on phenolic profile and antioxidant activity of Mentha piperita L. in relation to zinc concentration under soilless culture. S Afr J Bot 168:509–517. https://doi.org/10.1016/j.sajb.2024.03.050
Mei L, Zhu Y, Zhang X, Zhou X, Zhong Z, Li H, Zhu S (2021) Mercury-induced phytotoxicity and responses in upland cotton (Gossypium hirsutum L.) seedlings. Plants (Basel) 10(8):1494. https://doi.org/10.3390/plants10081494
Mishra S, Dubey RS (2006) Heavy metal uptake and detoxification mechanisms in plants. Int J Agric Res 1(2):122–141
Moreno-Jiménez E, Esteban E, Carpena-Ruiz RO, Peñalosa JM (2009) Arsenic and mercury-induced phytotoxicity in the Mediterranean shrubs Pistacia lentiscus and Tamarix gallica grown in hydroponic culture. Ecotoxicol Environ Saf 72(6):1781–1789. https://doi.org/10.1016/j.ecoenv.2009.04.022
Patra M, Sharma A (2000) Mercury toxicity in plants. Bot Rev 66:379–422. https://doi.org/10.1007/BF02868923
Patra M, Bhowmik N, Bandopadhyay B, Sharma A (2004) Comparison of mercury, lead and arsenic with respect to genotoxic effects on plant systems and the development of genetic tolerance. Environ Exp Bot 52:199–223. https://doi.org/10.1016/j.envexpbot.2004.02.009
Rodríguez E, Peralta-Videa JR, Israr M, Sahi SV, Pelayo H, Sánchez-Salcido B, Gardea-Torresdey JL (2009) Effect of mercury and gold on growth, nutrient uptake, and anatomical changes in Chilopsis linearis. Environ Exp Bot 65(2–3):253–262. https://doi.org/10.1016/j.envexpbot.2008.09.014
Rodríguez-Alonso J, Sierra MJ, Lominchar MÁ, Millán R (2019) Effects of mercury on the germination and growth of Quercus ilex L. seedlings. Environ Sci Pollut Res 26:30930–30940. https://doi.org/10.1007/s11356-019-06186-8
Salehi B, Stojanović-Radić Z, Matejić J, Sharopov F, Antolak H, Kręgiel D, Sen S, Sharifi-Rad M, Acharya K, Sharifi-Rad R, Martorell M, Sureda A, Martins N, Sharifi-Rad J (2018) Plants of genus Mentha: from farm to food factory. Plants 7(3):70. https://doi.org/10.3390/plants7030070
Sudheeshna PK, Hussain K (2021) Response of fresh and rooted cuttings of Plectranthus amboinicus (Lour.) Spreng towards mercury. Plant Funct Biol 48:80–85
Wang X, Tam NFY, He H, Ye Z (2015) The role of root anatomy, organic acids and iron plaque on mercury accumulation in rice. Plant Soil 394:301–313. https://doi.org/10.1007/s11104-015-2537-y
Wu S, Feng X, Wittmeier A (1997) Microwave digestion of plant and grain reference materials in nitric acid or a mixture of nitric acid and hydrogen peroxide for the determination of multi-elements by inductively coupled plasma mass spectrometry. J Anal Atomic Spect 12(8):797–806. https://doi.org/10.1039/A607217H
Xu J, Zhang J, Lv Y, Xu K, Lu S, Liu X, Yang Y (2020) Effect of soil mercury pollution on ginger (Zingiber officinale Roscoe): growth, product quality, health risks and silicon mitigation. Ecotoxicol Environ Saf 195:1–10. https://doi.org/10.1016/j.ecoenv.2020.110472
Department of Medical Services and Techniques, Kagizman Vocational School, Kafkas University, Kars, Turkey