European Journal of Experimental Biology Open Access

  • ISSN: 2248-9215
  • Journal h-index: 45
  • Journal CiteScore: 34.35
  • Average acceptance to publication time (5-7 days)
  • Average article processing time (30-45 days) Less than 5 volumes 30 days
    8 - 9 volumes 40 days
    10 and more volumes 45 days
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Articles published in European Journal of Experimental Biology have been cited by esteemed scholars and scientists all around the world. European Journal of Experimental Biology has got h-index 45, which means every article in European Journal of Experimental Biology has got 45 average citations.

Following are the list of articles that have cited the articles published in European Journal of Experimental Biology.

  2021 2020 2019 2018 2017 2016

Year wise published articles

33 22 20 35 42 53

Year wise citations received

1416 1346 1310 1210 1156 951
Journal total citations count 11765
Journal cite score 34.35
Journal h-index 45
Journal Impact Factor 2020 formula
IF= Citations(y)/{Publications(y-1)+ Publications(y-2)} Y= Year
Journal 5-year Impact Factor 2020 formula
Citations(2016 + 2017 + 2018 + 2019 + 2020)/
{Published articles(2016 + 2017 + 2018 + 2019 + 2020)}
Journal citescore
Citescorey = Citationsy + Citationsy-1 + Citationsy-2 + Citations y-3 / Published articlesy + Published articlesy-1 + Published articlesy-2 + Published articles y-3
Important citations
Lambert C, Bisson J, Waffo-Téguo P, Papastamoulis Y, Richard T, et al. (2012) Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family. J Agric Food Chem 60:11859-11868.
Nair SS, Kavrekar V, Mishra A (2013) In vitro studies on alpha amylase and alpha glucosidase inhibitory activities of selected plant extracts. Eur J Exp Bio 3:128-132.
Khureldavaa O, He J, Hou D, Zhang R, Zhang F (2014) Residual characteristics of HCHs and DDTs in soil and dust of some parks in Ulaanbaatar, Mongolia. Mongolian Journal of Chemistry 15:15-20.
Ferreira MS. Uso da ractopamina em programa step up associada a dois níveis de lisina em rações para suínos em terminação.
Yodrasing P, Boontanon N, Boontanon SK, Polprasert C. Analysis of Beta-agonists in Animal Feeds by Liquid Chromatography-Tandem Mass Spectrometry and Health Risk Assessment.
Roy SP, Nath A (2016) Biomonitoring of DDT in Blood and its Toxicity may lead to Breast Cancer. IJSR 9:86-89.
Teeyapant P, Ramchiun S, Polputpisatkul D, Uttawichai C, Parnmen S (2014) Serum concentrations of organochlorine pesticides p, p-DDE in adult Thai residents with background levels of exposure. J Toxicol Sci 39:121-127.
Study on Toxicological Effects of Nano - silver in Water Environment Based on Rare Carassius auratus. Journal of Scientific Research]. Journal of Biomedical Engineering]. Journal of Central South University of Technology (Natural Science Edition)
Ghobadi S, Rajabi H, Hosseinifard M, Palangi L (2014) Survey on Effects of Different Levels of Nano Iron on Growth and Nutrition Performance in Rainbow Trout. Breeding & Aquaculture Sciences Journal 1: 67-82.
Kumar B, Verma VK, Mishra M, Gaur R, Kumar S, et al. (2014) DDT and HCH (organochlorine pesticides) in residential soils and health assessment for human populations in Korba, India. Hum ecol risk assess 20:1538-1549.
MIREÅžAN V, COCAN D, MICLÄ‚UÅž V, CONSTANTINESCU R, RÄ‚DUCU C, et al. (2014) Some Aspects of the Histological Structure of Liver in Rainbow Trout (Oncorhynchus mykiss) under the Influence of Growth Systems. Bulletin UASVM Animal Science and Biotechnologies71: 2.
Phatak KA, Khanna PK, Nath BB (2016) Particle size-independent induction of leucism in Drosophila melanogaster by silver: nano vs. micro. Metallomics 8: 1243-1254.
Aghamirkarimi S, Mashinchian  AM, Sharifpour I, Jamili S, Mostafavi PG (2017) Sublethal effects of copper nanoparticles on the histology of gill, liver and kidney of the Caspian roach, Rutilus rutilus caspicus. Global Journal of Environmental Science and Management. 
Valerio-García RC, Carbajal-Hernández AL, Martínez-Ruíz EB, Jarquín-Díaz VH, Haro-Pérez C, et al. (2017) Exposure to silver nanoparticles produces oxidative stress and affects macromolecular and metabolic biomarkers in the goodeid fish Chapalichthys pardalis. Science of The Total Environment 583: 308-318.
Khan MS, Qureshi NA, Jabeen F, Asghar MS, Shakeel M, et al. (2016) Eco-Friendly Synthesis of Silver Nanoparticles Through Economical Methods and Assessment of Toxicity Through Oxidative Stress Analysis in the Labeo Rohita. Biological Trace Element Research 2:1-3.
Sharma N, Rather MA, Ajima MN, Gireesh-Babu P, Kumar K, et al. (2016) Assessment of DNA damage and molecular responses in Labeo rohita (Hamilton, 1822) following short-term exposure to silver nanoparticles. Food and Chemical Toxicology 96:122-132.
Córdova DI, Ruíz RM, González JA, Díaz JC, López JA (2014) Haloarcula marismortui, eighty-four years after its discovery in the Dead Sea, Review. IJERT 3: 1257-1267.
Bahador A, Khaledi A, Ghorbanzadeh R (2013) Evaluation of antibacterial properties of nano silver Iranian MTA against Fusobacterium nucleatum. European Journal of Experimental Biology 3: 88-94.
Murray L. Effect of nanosilver particles on metabolism and cortisol release in rainbow trout (Oncorhynchus mykiss) (Doctoral dissertation, University of Manitoba).
Moghaddam RE, Sargazy E, Gholamalizadeh A (2015) Ecological Properties of Tamarix Habitats in Sistan Plain, Iran. ECOPERSIA 3:1201-1211.