Uptake of the cyanobacterial toxin microcystin by crop plants irrigated with contaminated wastewater: a review

Abdallah MF et al (2021) Cyanotoxins and food contamination in developing countries: review of their types, toxicity, analysis, occurrence and mitigation strategies. Toxins 13(11):786

Article  CAS  Google Scholar 

Abdullahi H et al (2022) Assessment of microcystins in surface water and irrigated vegetables in Kwaru stream, Hayin Danmani, Kaduna-Nigeria. Environ Sci Pollut Res Int 29:78303–78313

Article  CAS  Google Scholar 

Ai Y, Lee S, Lee J (2020) Drinking water treatment residuals from cyanobacteria bloom-affected areas: Investigation of potential impact on agricultural land application. Sci Total Environ 706:135756

Article  CAS  Google Scholar 

Alhaithloul HAS et al (2024) Corrigendum: Performance evaluation of Moringa oleifera seeds aqueous extract for removing Microcystis aeruginosa and microcystins from municipal treated-water. Front Bioeng Biotechnol 12:1487259

Article  Google Scholar 

Amorim CA, Ulisses C, Moura AN (2017) Biometric and physiological responses of Egeria densa planch. Cultivated with toxic and non-toxic strains of Microcystis. Aquatic Toxicol 191:201–208

Article  CAS  Google Scholar 

Azevedo CC et al (2013) Early physiological and biochemical responses of rice seedlings to low concentration of microcystin-LR. Ecotoxicology 23(2):107–121

Article  Google Scholar 

Babica P, Bláha L, Maršálek B (2006) Exploring the natural role of microcystins-a review of effects on photoautotrophic organisms. J Phycol 42(1):9–20

Article  Google Scholar 

Bartos AD (2020) Harmful algal blooms: dominance in lakes and risk for cyanotoxin exposure in food crops. ProQuest Dissertations Publishing

Biales AD et al (2020) Global transcriptomic profiling of microcystin-LR or -RR treated hepatocytes (HepaRG). Toxicon X 8:100060–100060

Article  CAS  Google Scholar 

Bittencourt-Oliveira MC et al (2016) Lettuce irrigated with contaminated water: Photosynthetic effects, antioxidative response and bioaccumulation of microcystin congeners. Ecotoxicol Environ Saf 128:83–90

Article  CAS  Google Scholar 

Bolotaolo M et al (2020) Analysis of covalently bound microcystins in sediments and clam tissue in the Sacramento-San Joaquin River Delta, California, USA. Toxins 12(3):178

Article  CAS  Google Scholar 

Bouaïcha N (2016) Cyanobacterial toxins emerging contaminants in soils : a review of sources, fate and impacts on ecosystems, plants and animal and human health. IntechOpen 21:105–126

Google Scholar 

Bouaïcha N et al (2019) Structural diversity, characterization and toxicology of microcystins. Toxins 11(12):714

Article  Google Scholar 

Breidenbach JD et al (2022) Microcystin-LR aerosol induces inflammatory responses in healthy human primary airway epithelium. Environ Int 169:107531–107531

Article  CAS  Google Scholar 

Buratti FM et al (2017) Cyanotoxins: producing organisms, occurrence, toxicity, mechanism of action and human health toxicological risk evaluation. Archiv Toxicol Archiv Für Toxikologie 91(3):1049–1130

CAS  Google Scholar 

Cao Q et al (2023) Effect of different irrigation methods on the toxicity and bioavailability of microcystin-LR to lettuce and carrot. Environ Sci Pollut Res Int 30(47):104554–62. https://doi.org/10.1007/s11356-023-29800-2.

Article  CAS  Google Scholar 

Campos A et al (2021) Impacts of microcystins on morphological and physiological parameters of agricultural plants: A review. Plants (Basel) 10(4):639

Google Scholar 

Cao Q et al (2018) Bioaccumulation of microcystin congeners in soil-plant system and human health risk assessment: a field study from Lake Taihu region of China. Environ Pollut (240):44–50

Article  Google Scholar 

Cao Q et al (2022) Using soil amendments to reduce microcystin-LR bioaccumulation in lettuce. Environ Pollut (292):118354–118354

Article  Google Scholar 

Cao Q et al (2017) Toxicological and biochemical responses of the earthworm Eisenia fetida to cyanobacteria toxins. Sci Rep 7(1):15954–15959

Article  Google Scholar 

Cao Q et al (2017) Effects of microcystins contamination on soil enzyme activities and microbial community in two typical lakeside soils. Environ Pollut 231:134–142

Article  CAS  Google Scholar 

Cao Q et al (2018a) Combined toxicity of microcystin-LR and copper on lettuce (Lactuca sativa L.). Chemosphere 206:474–482

Article  CAS  Google Scholar 

Cao Q et al (2018b) Effect of microcystins on root growth, oxidative response, and exudation of rice (Oryza sativa). Ecotoxicol Environ Saf 149:143–149

Article  CAS  Google Scholar 

Cao Q et al (2019) Bioaccumulation and detoxication of microcystin-LR in three submerged macrophytes: the important role of glutathione biosynthesis. Chemosphere 225:935–942

Article  CAS  Google Scholar 

Chen W et al (2006) Sorption, degradation and mobility of microcystins in Chinese agriculture soils: risk assessment for groundwater protection. Environ Pollut 144(3):752–758

Article  CAS  Google Scholar 

Chen W et al (2008) Reduction in microcystin concentrations in large and shallow lakes: water and sediment-interface contributions. Water Res 42(3):763–773

Article  CAS  Google Scholar 

Chen J et al (2010) Bioaccumulation of microcystin and its oxidative stress in the apple (Malus pumila). Ecotoxicol 19(4):796–803

Article  CAS  Google Scholar 

Chen J et al (2012) Accumulation and phytotoxicity of microcystin-LR in rice (Oryza sativa). Ecotoxicol Environ Saf 76(1):193–199

Article  CAS  Google Scholar 

Codd GA, Metcalf JS, Beattie KA (1999) Retention of Microcystis aeruginosa and microcystin by salad lettuce ( Lactuca sativa) after spray irrigation with water containing cyanobacteria. Toxicon 37(8):1181–1185

Article  CAS  Google Scholar 

Communications N (2018) Epidemiology is a science of high importance. Nature communications 9(1) 1703–2

Corbel S et al (2015a) Soil irrigation with water and toxic cyanobacterial microcystins accelerates tomato development. Environ Chem Lett 13(4):447–452

Article  CAS  Google Scholar 

Corbel S et al (2015b) Evaluation of phytotoxicity and ecotoxicity potentials of a cyanobacterial extract containing microcystins under realistic environmental concentrations and in a soil–plant system. Chemosphere 128:332–340

Article  CAS  Google Scholar 

Corbel S et al (2016) Evaluation of the transfer and the accumulation of microcystins in tomato (Solanum lycopersicum cultivar MicroTom) tissues using a cyanobacterial extract containing microcystins and the radiolabeled microcystin-LR (14C-MC-LR). Sci Total Environ 541:1052–1058

Article  CAS  Google Scholar 

Corbel S, Bouaïcha N, Mougin C (2014b) Dynamics of the toxic cyanobacterial microcystin-leucine-arginine peptide in agricultural soil. Environ Chem Lett 12(4):535–541

Article  CAS  Google Scholar 

Corbel S, Mougin C, Bouaïcha N (2014a) Cyanobacterial toxins: Modes of actions, fate in aquatic and soil ecosystems, phytotoxicity and bioaccumulation in agricultural crops. Chemosphere 96:1–15

Article  CAS  Google Scholar 

Cordeiro-Araújo MK et al (2016) Microcystin-LR bioaccumulation and depuration kinetics in lettuce and arugula: Human health risk assessment. Sci Total Environ 566–567:1379–1386

Article  Google Scholar 

Crush JR et al (2008) Effect of irrigation with lake water containing microcystins on microcystin content and growth of ryegrass, clover, rape, and lettuce. Environ Toxicol 23(4):246–252

Article  CAS  Google Scholar 

Ding Q et al (2020) Effects of microcystin-LR on metabolic functions and structure succession of sediment bacterial community under anaerobic conditions. Toxins 12(3):183

Article  CAS  Google Scholar 

Drobac D et al (2013) Human exposure to cyanotoxins and their effects on health. Arh Hig Rada Toksikol 64(2):119–130

Article  Google Scholar 

Drobac D et al (2017) Microcystin accumulation and potential effects on antioxidant capacity of leaves and fruits of Capsicum annuum. J Toxicol Environ Health-Part A-Curr Issues 80(3):145–154

Article  CAS  Google Scholar 

Díez-Quijada L et al (2018) New method for simultaneous determination of microcystins and cylindrospermopsin in vegetable matrices by SPE-UPLC-MS/MS. Toxins 10(10):406

Article  Google Scholar 

Díez-Quijada L et al (2019) Microcystin-RR: Occurrence, content in water and food and toxicological studies. Rev Environ Res 168:467–489

Article  Google Scholar 

Edwards C et al (2008) Biodegradation of microcystins and nodularin in freshwaters. Chemosphere 73(8):1315–1321

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