[1]

McKee SP, Levi DM, Movshon JA. 2003. The pattern of visual deficits in amblyopia. Journal of Vision 3(5):380−405

doi: 10.1167/3.5.5
[2]

Levi DM, Knill DC, Bavelier D. 2015. Stereopsis and amblyopia: A mini-review. Vision Research 114:17−30

doi: 10.1016/j.visres.2015.01.002
[3]

Birch EE. 2013. Amblyopia and binocular vision. Progress in Retinal and Eye Research 33:67−84

doi: 10.1016/j.preteyeres.2012.11.001
[4]

Li YT, Chou XL, Tao HW. 2014. Monocular deprivation in mice. Bio-Protocol 4:e1024

doi: 10.21769/bioprotoc.1024
[5]

Wiesel TN, Hubel DH. 1963. Single-Cell Responses in Striate Cortex of Kittens Deprived of Vision in One Eye. Journal of neurophysiology 26:1003−17

doi: 10.1152/jn.1963.26.6.1003
[6]

Duffy KR, Bear MF, Patel NB, Das VE, Tychsen L. 2023. Human deprivation amblyopia: treatment insights from animal models. Frontiers in Neuroscience 17:1249466

doi: 10.3389/fnins.2023.1249466
[7]

Sale A, Maya Vetencourt JF, Medini P, Cenni MC, Baroncelli L, et al. 2007. Environmental enrichment in adulthood promotes amblyopia recovery through a reduction of intracortical inhibition. Nature Neuroscience 10(6):679−681

doi: 10.1038/nn1899
[8]

Montey KL, Quinlan EM. 2011. Recovery from chronic monocular deprivation following reactivation of thalamocortical plasticity by dark exposure. Nature Communications 2:317

doi: 10.1038/ncomms1312
[9]

Fong MF, Duffy KR, Leet MP, Candler CT, Bear MF. 2021. Correction of amblyopia in cats and mice after the critical period. eLife 10:e70023

[10]

Fong MF, Mitchell DE, Duffy KR, Bear MF. 2016. Rapid recovery from the effects of early monocular deprivation is enabled by temporary inactivation of the retinas. Proceedings of the National Academy of Sciences of the United States of America 113(49):14139−14144

doi: 10.1073/pnas.1613279113
[11]

Grieco SF, Qiao X, Zheng X, Liu Y, Chen L, et al. 2020. Subanesthetic ketamine reactivates adult cortical plasticity to restore vision from amblyopia. Current Biology 30(18):3591−3603.e8

doi: 10.1016/j.cub.2020.07.008
[12]

Venturino A, Schulz R, De Jesús-Cortés H, Maes ME, Nagy B, et al. 2021. Microglia enable mature perineuronal nets disassembly upon anesthetic ketamine exposure or 60-Hz light entrainment in the healthy brain. Cell Reports 36(1):109313

doi: 10.1016/j.celrep.2021.109313
[13]

Gibson EJ, Walk RD. 1976. The "visual cliff". Scientific American 202(4):64−71

doi: 10.1038/scientificamerican0460-64
[14]

Kaufman LW. 1976. Duration of early visual experience and visual cliff behavior of chicks. Developmental Psychobiology 9(1):1−4

doi: 10.1002/dev.420090102
[15]

Rodkey EN. 2015. The visual cliff's forgotten menagerie: rats, goats, babies, and myth-making in the history of psychology. Journal of the History of the Behavioral Sciences 51(2):113−140

doi: 10.1002/jhbs.21712
[16]

Witherington DC, Campos JJ, Anderson DI, Lejeune L, Seah E. 2005. Avoidance of heights on the visual cliff in newly walking infants. Infancy 7(3):285−298

doi: 10.1207/s15327078in0703_4
[17]

Green PR, Davies IB, Davies MN. 1993. Interaction of visual and tactile information in the control of chicks' locomotion in the visual cliff. Perception 22(11):1319−1231

doi: 10.1068/p221319
[18]

Cornwell P, Overman W, Levitsky C, Shipley J, Lezynski B. 1976. Performance on the visual cliff by cats with marginal gyrus lesions. Journal of Comparative and Physiological Psychology 90(10):996−1010

doi: 10.1037/h0077281
[19]

Morrison PR. 1982. Distance cues and depth avoidance on the visual cliff. erceptual and Motor Skills 54:1195−1198

doi: 10.2466/pms.1982.54.3c.1195
[20]

Baroncelli L, Braschi C, Maffei L. 2013. Visual depth perception in normal and deprived rats: effects of environmental enrichment. Neuroscience 236:313−319

doi: 10.1016/j.neuroscience.2013.01.036
[21]

Sansevero G, Baroncelli L, Scali M, Sale A. 2019. Intranasal BDNF administration promotes visual function recovery in adult amblyopic rats. Neuropharmacology 145:114−122

doi: 10.1016/j.neuropharm.2018.02.006
[22]

Waugh KT. 1910. The rôle of vision in the mental life of the mouse. Journal of Comparative Neurology and Psychology 20(6):549−599

doi: 10.1002/cne.920200602
[23]

Samonds JM, Choi V, Priebe NJ. 2019. Mice discriminate stereoscopic surfaces without fixating in depth. The Journal of Neuroscience 39(41):8024−8037

doi: 10.1523/JNEUROSCI.0895-19.2019
[24]

Dräger UC. 1978. Observations on monocular deprivation in mice. Journal of neurophysiology 41(1):28−42

doi: 10.1152/jn.1978.41.1.28
[25]

Heesy CP. 2004. On the relationship between orbit orientation and binocular visual field overlap in mammals. The Anatomical Record 281A(1):1104−1110

doi: 10.1002/ar.a.20116
[26]

Scholl B, Burge J, Priebe NJ. 2013. Binocular integration and disparity selectivity in mouse primary visual cortex. Journal of neurophysiology 109(12):3013−3024

doi: 10.1152/jn.01021.2012
[27]

Williams B, Del Rosario J, Muzzu T, Peelman K, Coletta S, et al. 2021. Spatial modulation of dark versus bright stimulus responses in the mouse visual system. Current Biology 31(18):4172−4179.e6

doi: 10.1016/j.cub.2021.06.094
[28]

Mazziotti R, Baroncelli L, Ceglia N, Chelini G, Della Sala G, et al. 2017. Mir-132/212 is required for maturation of binocular matching of orientation preference and depth perception. Nature Communications 8:15488

doi: 10.1038/ncomms15488
[29]

Boone HC, Samonds JM, Crouse EC, Barr C, Priebe NJ, et al. 2021. Natural binocular depth discrimination behavior in mice explained by visual cortical activity. Current Biology 31(10):2191−2198.e3

doi: 10.1016/j.cub.2021.02.031
[30]

Han KS, Cooke SF, Xu W. 2017. Experience-Dependent Equilibration of AMPAR-Mediated Synaptic Transmission during the Critical Period. Cell Reports 18(4):892−904

doi: 10.1016/j.celrep.2016.12.084
[31]

Sansevero G, Torelli C, Mazziotti R, Consorti A, Pizzorusso T, et al. 2020. Running towards amblyopia recovery. Scientific Reports 10(1):12661

doi: 10.1038/s41598-020-69630-7
[32]

Baroncelli L, Scali M, Sansevero G, Olimpico F, Manno I, Costa M, et al. 2016. Experience affects critical period plasticity in the visual cortex through an epigenetic regulation of histone post-translational modifications. The Journal of Neuroscience 36(12):3430−3440

doi: 10.1523/jneurosci.1787-15.2016
[33]

Pennington ZT, Dong Z, Feng Y, Vetere LM, Page-Harley L, Shuman T, et al. 2019. ezTrack: An open-source video analysis pipeline for the investigation of animal behavior. Scientific Reports 9(1):19979

doi: 10.1038/s41598-019-56408-9
[34]

Faul F, Erdfelder E, Lang AG, Buchner A. 2007. G*Power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behavior Research Methods 39(2):175−191

doi: 10.3758/BF03193146
[35]

Pennington ZT, Diego KS, Francisco TR, LaBanca AR, Lamsifer SI, et al. 2021. ezTrack-A Step-by-Step Guide to Behavior Tracking. Current Protocols 1(10):e255

doi: 10.1002/cpz1.255
[36]

Jiménez JR, Castro JJ, Jiménez R, Hita E. 2008. Interocular differences in higher-order aberrations on binocular visual performance. Optometry and Vision Science 85(3):174−179

doi: 10.1097/OPX.0b013e31816445a7
[37]

Gomes J, Sapkota K, Franco S. 2023. Central and peripheral ocular high-order aberrations and their relationship with accommodation and refractive error. A review. Vision 7(1):19

doi: 10.3390/vision7010019
[38]

Hooks BM, Chen C. 2020. Circuitry Underlying Experience-Dependent Plasticity in the Mouse Visual System. Neuron 106(1):21−36

doi: 10.1016/j.neuron.2020.01.031
[39]

Legge GE, Gu YC. 1989. Stereopsis and contrast. Vision Research 29(8):989−1004

doi: 10.1016/0042-6989(89)90114-4
[40]

Westheimer G, McKee SP. 1980. Stereogram design for testing local stereopsis. Investigative Ophthalmology & Visual Science 19(7):802−809

[41]

Ellard CG, Goodale MA, Scorfield DM, Lawrence C. 1986. Visual cortical lesions abolish the use of motion parallax in the Mongolian gerbil. Experimental Brain Research 64(3):599−602

doi: 10.1007/BF00340498
[42]

Ellard CG, Goodale MA, Timney B. 1984. Distance estimation in the Mongolian gerbil: the role of dynamic depth cues. Behavioural Brain Research 14(1):29−39

doi: 10.1016/0166-4328(84)90017-2
[43]

Fox MW. 1965. The visual cliff test for the study of visual depth perception in the mouse. Animal Behaviour 13(2):232−233

doi: 10.1016/0003-3472(65)90040-0