Zinc oxide nanoparticles (ZnO NPs) induced nephrotoxicity in male sprague dawley rats

Paper Details

Research Paper 01/11/2018
Views (771)
current_issue_feature_image
publication_file

Zinc oxide nanoparticles (ZnO NPs) induced nephrotoxicity in male sprague dawley rats

Sana Kausar, Farhat Jabeen, Salma Sultana, Azhar Rasul
Int. J. Biosci. 13(5), 457-463, November 2018.
Copyright Statement: Copyright 2018; The Author(s).
License: CC BY-NC 4.0

Abstract

Nano size particles (<100nm) have various applications in electronics, coating, cosmetics, packaging and biotechnology. Zinc Oxide nanoparticles (ZnO NPs) are being used in ceramics, leather manufacturing, plastics, rubber, glass, fire retardants and batteries along with having antimicrobial and anticancerous properties. In present research, 25 post weaning male Sprague Dawley rats of similar weight were procured from the animal house of Government College University Faisalabad after approval of the ethical committee on animal experimentation. Rats were kept in 5 cages (n=5) and varying levels of ZnO NPs were injected intraperitoneally (i.p.) for 28 days on alternate days to treated groups at the dose of either 10 or 20 or 30 mg/kg and named as group one (G1), two (G2) and three (G3), respectively for the assessment of toxicity for better understanding of precautionary measures in near future. Without any treatment groups i.e., control (C) and saline(S) received normal diet and saline water (0.9% sodium chloride), respectively. Histological changes were investigated in kidney tissues of all groups. Groups receiving 10 and 20mg/kg of NPs showed moderate pathological changes like atrophic glomerulus, inter-tubular space, degeneration of tubular epithelium and tubules and accumulation of ZnONPs. While, G3 group showed congestion, accumulation of RBCs and hemorrhages in kidney tissues along with above noticed variations. Whereas, no alterations were seen in control groups (C &S). It is concluded that ZnO NPs at higher concentration are more toxic to Sprague Dawley rats than at lower concentrations.

Abbasalipourkabir R, Moradi H, Zarei S, Asadi S, Salehzadeh A, Ghafourikhosroshahi A, Ziamajidi N. 2015. Toxicity of zinc oxide nanoparticles on adult male Wistar rats. Food and Chemical Toxicology 84, 154-160. http://dx.doi.org/10.1016/j.fct.2015.08.019.

Ahmadi F, Ebrahimnezhad Y, Sis NM, Ghalehkandi JG. 2013. The effects of zinc oxide nanoparticles on performance, digestive organs and serum lipid concentrations in broiler chickens during starter period. International Journal of Biosciences 3(7), 23-29. http://dx.doi.org/10.12692/ijb/3.7.23-29.

Alferah MAZ. 2015. Renal toxicity of Zinc oxide nanoparticles (ZnO NPs) of male wistar rats. International Journal of Science and Research 7(2), 2319-7064. http://dx.doi.org/10.21275/16021801.

Baek M, Chung HE, Yu J, Lee JA, Kim TH, Oh JM, Choy JH. 2012. Pharmacokinetics, tissue distribution, and excretion of zinc oxide nanoparticles. International Journal of Nanomedicine 7, 3081. PMID: 22811602. http://dx.doi.org/10.2147/IJN.S325.93

Esmaeillou M, Moharamnejad M, Hsankhani R, Tehrani AA, Maadi H. 2013. Toxicity of ZnO nanoparticles in healthy adult mice. Environmental Toxicology and Pharmacology 35(1), 67-71. http://dx.doi.org/10.1016/j.etap.2012.11.003.

Haq ANU, Nadhman A, Ullah I, Mustafa G, Yasinzai M, Khan I. 2017. Synthesis approaches of Zinc Oxide nanoparticles: The dilemma of ecotoxicity. Journal of Nanomaterials 1-14. https://doi.org/10.1155/2017/8510342.

Khatoon N, Mazumder JA, Sardar M. 2017. Biotechnological applications of green synthesized silver nanoparticles. Journal of Nano sciences Current Research 2(107), 2. http://dx.doi.org/10.4172/2572-0813.1000107.

Khorsandi L, Heidari-Moghadam A, Jozi Z. 2018. Nephrotoxic effects of low-dose zinc oxide nanoparticles in rats. Journal of Nephropathology 7(3), 158-165. http://dx.doi.org/10.15171/jnp.2018.35.

Lin YF, Chiu IJ, Cheng FY, Lee YH, Wang YJ, Hsu YH, Chiu HW. 2015. The role of hypoxia-inducible factor-1α in zinc oxide nanoparticle-induced nephrotoxicity in vitro and in vivo. Particle and Fibre Toxicology 13(1), 52. https://doi.org/10.1186/s12989-016-0163-3.

Nawaz HR, Solangi BA, Zehra B, Nadeem U. 2011. Preparation of nano zinc oxide and its application in leather as a retanning and antibacterial agent. Canadian Journal on Scientific and Industrial Research 2, 164-170.

Noori A, Karimi F, Fatahian S, Yazdani F. 2014. Effects of zinc oxide nanoparticles on renal function in mice. International Journal of Biosciences 5(9), 140-146. http://dx.doi.org/10.12692/ijb/5.9.140-146.

Reddy KY, Ch S, Sridhar Y, Shankaraiah P. 2014. Naringenin prevents the zinc oxide nanoparticles induced toxicity in swiss albino mice. Journal of Pharmacology and Clinical Toxicology 2(1), 1021.

Siddiqi KS, Ur-Rahman A, Husen A. 2018. Properties of zinc oxide nanoparticles and their activity against microbes. Nanoscale Research Letters 13(1), 141. http://dx.doi.org/10.1186/s11671-018-2532-3.

Wang C, Lu J, Zhou L, Li J, Xu J, Li W, Wang T. 2016. Effects of long-term exposure to zinc oxide nanoparticles on development, zinc metabolism and biodistribution of minerals (Zn, Fe, Cu, Mn) in mice. PloS one 11(10), e0164434. https://doi.org/10.1371/journal.pone.0164434

Yah CS, Simate GS, Iyuke SE. 2012.Nanoparticles toxicity and their routes of exposures. Pakistan Journal of Pharmaceutical Sciences 25(2), 477-491.

Related Articles

Perceptions, effectiveness, and credibility of artificial intelligence in healthcare among medical students and interns: A cross-sectional study

Shabeer Khan, Shafee Ur Rehman*, Naile Aleyna Dede, Mishal Tahir, Romana Hussain, Int. J. Biosci. 28(4), 8-16, April 2026.

A review on ethnomedicinal uses, phytochemical profile and pharmacological properties of Tetrastigma leucostaphylum (Dennst.) Alston ex Mabb.

P. P. Stephy, Prasobh K. Mohan, Anas Bin Firoz, S. Soosai Raj*, Int. J. Biosci. 28(4), 1-7, April 2026.

Influence of climatic factors on the spatial and temporal distribution of mealybugs, vectors of swollen shoot disease of cocoa tree in Koda, South-West Côte d’Ivoire

Akoua Miézan Claudine N’guettia, Zokou Franck Oro, Yédé Jean Aliko, San-Whouly Mauricette Ouali N’goran, Int. J. Biosci. 28(3), 115-124, March 2026.

Surveillance and detection of the occurrence of African swine fever in abattoirs in the different municipalities of the second district of Cagayan, Philippines

Maricel F. Campanano, Dennis M. Oyardo, Mary Ann M. Santos*, Int. J. Biosci. 28(3), 106-114, March 2026.

Spawn preparation and cultivation of Volvariella volvacea (Bull. ex Fr.) Singer on paddy straw substrate

A. Anees Fathima*, J. Jayasree, Int. J. Biosci. 28(3), 97-105, March 2026.

Effects of dairy cattle rotational grazing on soil properties in the grassland area of CSU Piat, Cagayan

Andrea Flores Dawan*, Nonito Baliuag Pattugalan, Juan Sales Daquioag II, Int. J. Biosci. 28(3), 90-96, March 2026.

Diversity of melliferous plants in a forest ecosystem in the Sudanian zone: The case of the Badenou classified forest in northern Côte d’Ivoire

Dofoungo Koné*, Pagadjovongo Adama Silué, Fofana Séguéna, Bruno Marcel Iritié, Doudjo Noufou Ouattara, Wandan Eboua Narcisse, Int. J. Biosci. 28(3), 80-89, March 2026.