315
Belanger AJ, Bobeica I, Higgs DM (2010) The effect of stimulus type and background noise on
hearing abilities of the round goby Neogobius melanostomus . J Fish Biol 77:1488–1504
Berrill NJ, Karp G (1976) Development. McGraw-Hill Book Co, NY, p 324
Bhandiwad AA, Zeddies DG, Raible DW, Rubel EW, Sisneros JA (2013) Auditory sensitivity of
larval zebrafi sh (Danio rerio) measured using a behavioral prepulse inhibition assay. J Exp Biol
15:3504–3513
Bianchi LM, Cohan CS (1993) Effects of the neurotrophins and CNTF on developing statoacoustic
neurons: comparison with an otocyst-derived factor. Dev Biol 159:353–365
Blaxtey JHS, Batty RS (1985) The development of startle responses in herring larvae. J Mar Biol
Assoc UK 65:737–750
Braun CB, Grande T (2008) Evolution of peripheral mechanisms for the enhancement of sound
reception. In: Popper AN, Fay RR, Webb JL (eds) Handbook of auditory research: fi sh bioacoustics. Springer, NY, pp 99–144
Caiger PE, Montgomery JC, Bruce M, Lu J, Radford CA (2013) A proposed mechanism for the
observed ontogenetic improvement in the hearing ability of hapuka ( Polyprion oxygeneios ).
J Comp Physiol A 199:653–661
Coffi n AB, Mohr RA, Sisneros JA (2012) Saccular-specifi c hair cell addition correlates with reproductive state-dependent changes in the auditory saccular sensitivity of a vocal fi sh. J Neurosci
32:1366–1376
Coombs S, Popper AN (1979) Hearing differences among Hawaiian squirrelfi sh (family
Holocentridae) related to differences in the peripheral auditory system. J Comp Physiol A
132:203–207
Corwin JT (1981) Postembryonic production and aging in inner ear hair cells in sharks. J Comp
Neurol 201:541–553
Corwin JT (1983) Postembryonic growth of the macula neglecta auditory detector in the ray, Raja
clavata : continual increases in hair cell number, neural convergence, and physiological sensitivity. J Comp Neurol 217:315–356
D’Amico-Martel A, Noden DM (1983) Contribution of placode and neural crest cells to avian
cranial peripheral ganglia. Am J Anat 166:445–468
de Vries HL (1950) The mechanics of the labyrinth otoliths. Acta Otolaryngol 38:262–273
Detwiler SR, van Dyke RH (1950) The role of the medulla in the differentiation of the otic vesicle.
J Exp Zool 113:179–199
Dijkgraaf S (1960) Hearing in bony fi shes. Proc R Soc Lond B 152:51–54
Egner SA, Mann DA (2005) Auditory sensitivity of sergeant major damselfi sh Abudefduf saxatilis
from post-settlement juvenile to adult. Mar Ecol Prog Ser 285:213–222
Ekker M, Wegner J, Akimenko MA et al (1992) Coordinate embryonic expression of three zebrafish engrailed genes. Development 116:1001–1010
Fay RR (1984) The goldfi sh ear codes the axis of acoustic particle motion in three dimensions.
Science 225:951–954
Fay RR (1988) Hearing in vertebrates: a psychophysics databook. Hill-Fay Associates, Winnetka
Fay RR, Popper AN (1974) Acoustic stimulation of the ear of the goldfi sh ( Carassius auratus ).
J Exp Biol 61:243–260
Fay RR, Popper AN (1975) Modes of stimulation of the teleost ear. J Exp Biol 62:379–387
Fay RR, Popper AN (1980) Structure and function in teleost auditory systems. In: Popper AN, Fay
RR (eds) Comparative studies of hearing in vertebrates. Springer, New York, pp 3–42
Fay RR, Popper AN (2000) Evolution of hearing in vertebrates: the inner ears and processing. Hear
Res 149:1–10
Fritzsch B, Tessarollo L, Coppola E et al (2004) Neurotrophins in the ear: their roles in sensory
neuron survival and fi ber guidance. Prog Brain Res 146:265–278
Fuiman LA, Smith ME, Malley VN (1999) Ontogeny of routine swimming speed and startle
responses in red drum, with a comparison of responses to acoustic and visual stimuli. J Fish
Biol 55:215–226
Gilland E, Baker R (1993) Conservation of neuroepithelial and mesodermal segments in the
embryonic vertebrate head. Acta Anat 148:110–123
Development of Structure and Sensitivity of the Fish Inner Ear
Belanger AJ, Bobeica I, Higgs DM (2010) The effect of stimulus type and background noise on
hearing abilities of the round goby Neogobius melanostomus . J Fish Biol 77:1488–1504
Berrill NJ, Karp G (1976) Development. McGraw-Hill Book Co, NY, p 324
Bhandiwad AA, Zeddies DG, Raible DW, Rubel EW, Sisneros JA (2013) Auditory sensitivity of
larval zebrafi sh (Danio rerio) measured using a behavioral prepulse inhibition assay. J Exp Biol
15:3504–3513
Bianchi LM, Cohan CS (1993) Effects of the neurotrophins and CNTF on developing statoacoustic
neurons: comparison with an otocyst-derived factor. Dev Biol 159:353–365
Blaxtey JHS, Batty RS (1985) The development of startle responses in herring larvae. J Mar Biol
Assoc UK 65:737–750
Braun CB, Grande T (2008) Evolution of peripheral mechanisms for the enhancement of sound
reception. In: Popper AN, Fay RR, Webb JL (eds) Handbook of auditory research: fi sh bioacoustics. Springer, NY, pp 99–144
Caiger PE, Montgomery JC, Bruce M, Lu J, Radford CA (2013) A proposed mechanism for the
observed ontogenetic improvement in the hearing ability of hapuka ( Polyprion oxygeneios ).
J Comp Physiol A 199:653–661
Coffi n AB, Mohr RA, Sisneros JA (2012) Saccular-specifi c hair cell addition correlates with reproductive state-dependent changes in the auditory saccular sensitivity of a vocal fi sh. J Neurosci
32:1366–1376
Coombs S, Popper AN (1979) Hearing differences among Hawaiian squirrelfi sh (family
Holocentridae) related to differences in the peripheral auditory system. J Comp Physiol A
132:203–207
Corwin JT (1981) Postembryonic production and aging in inner ear hair cells in sharks. J Comp
Neurol 201:541–553
Corwin JT (1983) Postembryonic growth of the macula neglecta auditory detector in the ray, Raja
clavata : continual increases in hair cell number, neural convergence, and physiological sensitivity. J Comp Neurol 217:315–356
D’Amico-Martel A, Noden DM (1983) Contribution of placode and neural crest cells to avian
cranial peripheral ganglia. Am J Anat 166:445–468
de Vries HL (1950) The mechanics of the labyrinth otoliths. Acta Otolaryngol 38:262–273
Detwiler SR, van Dyke RH (1950) The role of the medulla in the differentiation of the otic vesicle.
J Exp Zool 113:179–199
Dijkgraaf S (1960) Hearing in bony fi shes. Proc R Soc Lond B 152:51–54
Egner SA, Mann DA (2005) Auditory sensitivity of sergeant major damselfi sh Abudefduf saxatilis
from post-settlement juvenile to adult. Mar Ecol Prog Ser 285:213–222
Ekker M, Wegner J, Akimenko MA et al (1992) Coordinate embryonic expression of three zebrafish engrailed genes. Development 116:1001–1010
Fay RR (1984) The goldfi sh ear codes the axis of acoustic particle motion in three dimensions.
Science 225:951–954
Fay RR (1988) Hearing in vertebrates: a psychophysics databook. Hill-Fay Associates, Winnetka
Fay RR, Popper AN (1974) Acoustic stimulation of the ear of the goldfi sh ( Carassius auratus ).
J Exp Biol 61:243–260
Fay RR, Popper AN (1975) Modes of stimulation of the teleost ear. J Exp Biol 62:379–387
Fay RR, Popper AN (1980) Structure and function in teleost auditory systems. In: Popper AN, Fay
RR (eds) Comparative studies of hearing in vertebrates. Springer, New York, pp 3–42
Fay RR, Popper AN (2000) Evolution of hearing in vertebrates: the inner ears and processing. Hear
Res 149:1–10
Fritzsch B, Tessarollo L, Coppola E et al (2004) Neurotrophins in the ear: their roles in sensory
neuron survival and fi ber guidance. Prog Brain Res 146:265–278
Fuiman LA, Smith ME, Malley VN (1999) Ontogeny of routine swimming speed and startle
responses in red drum, with a comparison of responses to acoustic and visual stimuli. J Fish
Biol 55:215–226
Gilland E, Baker R (1993) Conservation of neuroepithelial and mesodermal segments in the
embryonic vertebrate head. Acta Anat 148:110–123
Development of Structure and Sensitivity of the Fish Inner Ear
