Expanding the use of homebase-related parameters to investigate how distinct stressful conditions affect zebrafish behaviors
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A. Luchiari | de Vasconcelos Bezerra Rosemberg | Julia Canzian | João V. Borba | C. M. Resmim | F. L. Gonçalves
[1] I. A. Adedara,et al. Influence of acute and unpredictable chronic stress on spatio-temporal dynamics of exploratory activity in zebrafish with emphasis on homebase-related behaviors , 2022, Behavioural Brain Research.
[2] A. Kalueff,et al. Understanding how stress responses and stress-related behaviors have evolved in zebrafish and mammals , 2021, Neurobiology of Stress.
[3] D. B. Rosemberg,et al. Taurine modulates behavioral effects of intermittent ethanol exposure without changing brain monoamine oxidase activity in zebrafish: Attenuation of shoal- and anxiety-like responses, and abolishment of memory acquisition deficit , 2021, Pharmacology, Biochemistry and Behavior.
[4] D. B. Rosemberg,et al. Acute effects of ethanol on behavioral responses of male and female zebrafish in the open field test with the influence of a non-familiar object , 2021, Behavioural Processes.
[5] A. Kalueff,et al. Unconventional anxiety pharmacology in zebrafish: Drugs beyond traditional anxiogenic and anxiolytic spectra , 2021, Pharmacology Biochemistry and Behavior.
[6] M. Marcon,et al. How do zebrafish (Danio rerio) respond to MK‐801 and amphetamine? Relevance for assessing schizophrenia‐related endophenotypes in alternative model organisms , 2020, Journal of neuroscience research.
[7] J. Thayer,et al. Stress and Health: A Review of Psychobiological Processes. , 2020, Annual review of psychology.
[8] F. Kermen,et al. Chronic unpredictable stress induces anxiety-like behaviors in young zebrafish , 2020, Scientific Reports.
[9] Fabiano V. Costa,et al. Three- and bi-dimensional analyses of the shoaling behavior in zebrafish: Influence of modulators of anxiety-like responses , 2020, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[10] Rory S Telemeco,et al. Analyzing Stress as a Multivariate Phenotype. , 2020, Integrative and comparative biology.
[11] A. Kalueff,et al. Understanding neurobehavioral effects of acute and chronic stress in zebrafish , 2020, Stress.
[12] S. Cooke,et al. Cortisol modulates metabolism and energy mobilization in wild-caught pumpkinseed (Lepomis gibbosus) , 2019, Fish Physiology and Biochemistry.
[13] N. Rohleder. Stress and inflammation – The need to address the gap in the transition between acute and chronic stress effects , 2019, Psychoneuroendocrinology.
[14] S. Lightman,et al. The human stress response , 2019, Nature Reviews Endocrinology.
[15] Haldun Akoglu,et al. User's guide to correlation coefficients , 2018, Turkish journal of emergency medicine.
[16] Ricieri Mocelin,et al. Environmental enrichment modulates the response to chronic stress in zebrafish , 2018, Journal of Experimental Biology.
[17] Fabiano V. Costa,et al. Different effects of caffeine on behavioral neurophenotypes of two zebrafish populations , 2018, Pharmacology Biochemistry and Behavior.
[18] A. Piato,et al. Divergent effect of fluoxetine on the response to physical or chemical stressors in zebrafish , 2017, PeerJ.
[19] M. Bogo,et al. Prevention of unpredictable chronic stress-related phenomena in zebrafish exposed to bromazepam, fluoxetine and nortriptyline , 2016, Psychopharmacology.
[20] D. B. Rosemberg,et al. Strain- and context-dependent behavioural responses of acute alarm substance exposure in zebrafish , 2016, Behavioural Processes.
[21] Roland Eils,et al. circlize implements and enhances circular visualization in R , 2014, Bioinform..
[22] M. Westerfield,et al. Zebrafish models in translational research: tipping the scales toward advancements in human health , 2014, Disease Models & Mechanisms.
[23] Robert Gerlai,et al. Zebrafish models for translational neuroscience research: from tank to bedside , 2014, Trends in Neurosciences.
[24] M. Idris,et al. Chronic Unpredictable Stress (CUS)-Induced Anxiety and Related Mood Disorders in a Zebrafish Model: Altered Brain Proteome Profile Implicates Mitochondrial Dysfunction , 2013, PloS one.
[25] Stephan C F Neuhauss,et al. Towards a comprehensive catalog of zebrafish behavior 1.0 and beyond. , 2013, Zebrafish.
[26] Siddharth Gaikwad,et al. Unique and potent effects of acute ibogaine on zebrafish: The developing utility of novel aquatic models for hallucinogenic drug research , 2013, Behavioural Brain Research.
[27] F. Guimarães,et al. Animal models of anxiety disorders and stress. , 2013, Revista brasileira de psiquiatria.
[28] Michael Lardelli,et al. Regular Care and Maintenance of a Zebrafish (Danio rerio) Laboratory: An Introduction , 2012, Journal of visualized experiments : JoVE.
[29] M. Calcagnotto,et al. Behavioral effects of taurine pretreatment in zebrafish acutely exposed to ethanol , 2012, Neuropharmacology.
[30] M. Mukaka,et al. Statistics corner: A guide to appropriate use of correlation coefficient in medical research. , 2012, Malawi medical journal : the journal of Medical Association of Malawi.
[31] Siddharth Gaikwad,et al. Understanding spatio-temporal strategies of adult zebrafish exploration in the open field test , 2012, Brain Research.
[32] M. Calcagnotto,et al. Differences in Spatio-Temporal Behavior of Zebrafish in the Open Tank Paradigm after a Short-Period Confinement into Dark and Bright Environments , 2011, PloS one.
[33] M. Bogo,et al. Unpredictable chronic stress model in zebrafish (Danio rerio): Behavioral and physiological responses , 2011, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[34] Evan J. Kyzar,et al. Three-Dimensional Neurophenotyping of Adult Zebrafish Behavior , 2011, PloS one.
[35] Silvio Morato,et al. Measuring anxiety in zebrafish: A critical review , 2010, Behavioural Brain Research.
[36] Siddharth Gaikwad,et al. Characterization of behavioral and endocrine effects of LSD on zebrafish , 2010, Behavioural Brain Research.
[37] A. Stewart,et al. Homebase behavior of zebrafish in novelty-based paradigms , 2010, Behavioural Processes.
[38] Silvio Morato,et al. Parametric analyses of anxiety in zebrafish scototaxis , 2010, Behavioural Brain Research.
[39] R. E. Blaser,et al. Behavioral measures of anxiety in zebrafish (Danio rerio) , 2010, Behavioural Brain Research.
[40] Allan V. Kalueff,et al. Understanding behavioral and physiological phenotypes of stress and anxiety in zebrafish , 2009, Behavioural Brain Research.
[41] N. Bernier,et al. Ontogeny of the corticotropin-releasing factor system in zebrafish. , 2009, General and comparative endocrinology.
[42] M. Vijayan,et al. The zebrafish stress axis: molecular fallout from the teleost-specific genome duplication event. , 2009, General and comparative endocrinology.
[43] R. Gerlai,et al. Alarm substance induced behavioral responses in zebrafish (Danio rerio) , 2008, Behavioural Brain Research.
[44] N. Bury,et al. Evolution of the corticosteroid receptor signalling pathway in fish. , 2007, General and comparative endocrinology.
[45] B. McEwen. Physiology and neurobiology of stress and adaptation: central role of the brain. , 2007, Physiological reviews.
[46] Masaru Ishii,et al. Spot pattern of leopard Danio is caused by mutation in the zebrafish connexin41.8 gene , 2006, EMBO reports.
[47] Reut Avni,et al. Exploration in a dark open field: A shift from directional to positional progression and a proposed model of acquiring spatial information , 2006, Behavioural Brain Research.
[48] D. Eilam,et al. Psychostimulant-Induced Behavior as an Animal Model of Obsessive-Compulsive Disorder: An Ethological Approach to the Form of Compulsive Rituals , 2005, CNS Spectrums.
[49] D. Eilam. Locomotor activity in common spiny mice (Acomys cahirinuse): The effect of light and environmental complexity , 2004, BMC Ecology.
[50] T. W. Moon,et al. Cortisol in teleosts: dynamics, mechanisms of action, and metabolic regulation , 1999, Reviews in Fish Biology and Fisheries.
[51] David Eilam,et al. Open-field behavior withstands drastic changes in arena size , 2003, Behavioural Brain Research.
[52] Jill Duncan,et al. Analyzing microarray data using cluster analysis. , 2003, Pharmacogenomics.
[53] G. Marshall,et al. Stress effects on immunity and its application to clinical immunology , 2001, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[54] David Eilam,et al. Quinpirole induces compulsive checking behavior in rats: a potential animal model of obsessive-compulsive disorder (OCD). , 1998, Behavioral neuroscience.
[55] G. Chrousos,et al. Molecular determinants of glucocorticoid receptor function and tissue sensitivity to glucocorticoids. , 1996, Endocrine reviews.
[56] D. Eilam,et al. Home base behavior in amphetamine-treated tame wild rats (Rattus norvegicus) , 1990, Behavioural Brain Research.
[57] D. Eilam,et al. Home base behavior of rats (Rattus norvegicus) exploring a novel environment , 1989, Behavioural Brain Research.