411
References
Aman A, Nguyen M, Piotrowski T (2011) Wnt/Beta-catenin dependent cell proliferation underlies
segmented lateral line morphogenesis. Dev Biol 249:470–482
Amoser S, Ladich F (2003) Diversity in noise-induced temporary hearing loss in otophysine fi shes.
J Acoust Soc Am 113:2170–2179
ASHA (2014) The American Speech-Language-Hearing Association (ASHA) register. http://
www.asha.org . Accessed 10 July 2014
Baggeroer A, Munk W (1992) The Heard Island feasibility test. Phys Today 45:22–30
Bang PI, Sewell WF, Malicki JJ (2000) Behavioral screen for dominant mutations affecting zebrafish auditory system. Assoc Res Otolaryngol Abs 23:177–187
Bang PI, Yelick PC, Malicki JJ et al (2002) High-throughput behavioral screening method for
detection auditory response defects in zebrafi sh. J Neurosci Methods 118:177–187
Barbazuk WB, Korf I, Kadavi C et al (2000) The syntenic relationship of zebrafi sh and human
genomes. Genome Res 10:1351–1358
Bhandiwad AA, Zeddies DG, Raible DW, Rubel EW, Sisneros JA (2013) Auditory sensitivity of
larval zebrafi sh ( Danio rerio ) measured using a prepulse inhibition assay. J Exp Biol
216:3504–3513
Blaxter JA, Fuiman LA (1989) Function of the free neuromasts of marine teleost larvae. In:
Coombs S, Gorner P, Munz H (eds) The mechanosensory lateral line. Springer, New York,
pp 481–499
Boeger WA, Pie MR, Ostrensky A et al (2006) The effect of exposure to seismic prospecting on
coral reef fi shes. Braz J Oceanogr 54:235–239
Brown AD, Mussen TD, Sisneros JA et al (2011) Reevaluating the use of aminoglycoside antibiotics in behavioral studies of the lateral line. Hear Res 272:1–4
Brown AD, Sisneros JA, Jurasin T et al (2013) Differences in lateral line morphology between
hatchery- and wild-origin steelhead. PLoS One 8(3), e59162
Bruintjes R, Radford AN (2013) Context-dependent impacts of anthropogenic noise on individual
and social behavior in a cooperatively breeding fi sh. Anim Behav 85:1343–1349
Buck LM, Winter MJ, Redfern WS et al (2012) Ototoxin-induced cellular damage in neuromasts
disrupts lateral line function in larval zebrafi sh. Hear Res 284:67–81
Casper BM, Popper AN, Matthews F et al (2012) Recovery of barotrauma injuries in Chinook
salmon, Oncorhynchus tshawytscha from exposure to pile driving sound. PLoS One 7, e39593
Casper BM, Smith ME, Halvorsen MB et al (2013a) Effects of exposure to pile driving sounds on
fi sh inner ear tissues. Comp Biochem Physiol A 166:352–360
Casper BM, Halvorsen MB, Mathews F et al (2013b) Recovery of barotrauma injuries resulting
from exposure to pile driving sounds in two sizes of hybrid striped bass. PLoS One 8, e73844
Cervi AL, Poling KR, Higgs DM (2012) Behavioral measure of frequency detection and discrimination in the zebrafi sh, Danio rerio . Zebrafi sh 9:1–7
Cheng AG, Cunningham LL, Rubel EW (2003) Hair cell death in the avian basilar papilla: characterization of the in vivo model and caspase activation. J Assoc Res Otolaryngol 4:91–105
Cheng AG, Cunningham LL, Rubel EW (2005) Mechanisms of hair cell death and protection. Curr
Opin Otolaryngol Head Neck Surg 13:343–348
Chiu LL, Cunningham LL, Raible DW et al (2008) Using the zebrafi sh lateral line to screen for
ototoxicity. J Assoc Res Otolaryngol 9:178–190
Coffey B (2014) Melanin as an oto-protective pigment in two fi sh species: Poecilia latipinna and
Cyprinus carpio . Western Kentucky University, Master’s Thesis
Coffi n AB, Ramcharitar J (2015) Chemical ototoxicity of the fi sh inner ear and lateral line. In:
Sisneros J (ed) Fish hearing and bioacoustics: an anthology in honor of Arthur N. Popper and
Richard R. Fay. Springer, New York (this volume)
Coffi n AB, Kelley M, Manley GA et al (2004) Evolution of sensory hair cells. In: Manley GA,
Popper AN, Fay RR (eds) Evolution of the vertebrate auditory system. Springer, New York,
pp 55–94
Causes and Consequences of Sensory Hair Cell Damage and Recovery in Fishes
References
Aman A, Nguyen M, Piotrowski T (2011) Wnt/Beta-catenin dependent cell proliferation underlies
segmented lateral line morphogenesis. Dev Biol 249:470–482
Amoser S, Ladich F (2003) Diversity in noise-induced temporary hearing loss in otophysine fi shes.
J Acoust Soc Am 113:2170–2179
ASHA (2014) The American Speech-Language-Hearing Association (ASHA) register. http://
www.asha.org . Accessed 10 July 2014
Baggeroer A, Munk W (1992) The Heard Island feasibility test. Phys Today 45:22–30
Bang PI, Sewell WF, Malicki JJ (2000) Behavioral screen for dominant mutations affecting zebrafish auditory system. Assoc Res Otolaryngol Abs 23:177–187
Bang PI, Yelick PC, Malicki JJ et al (2002) High-throughput behavioral screening method for
detection auditory response defects in zebrafi sh. J Neurosci Methods 118:177–187
Barbazuk WB, Korf I, Kadavi C et al (2000) The syntenic relationship of zebrafi sh and human
genomes. Genome Res 10:1351–1358
Bhandiwad AA, Zeddies DG, Raible DW, Rubel EW, Sisneros JA (2013) Auditory sensitivity of
larval zebrafi sh ( Danio rerio ) measured using a prepulse inhibition assay. J Exp Biol
216:3504–3513
Blaxter JA, Fuiman LA (1989) Function of the free neuromasts of marine teleost larvae. In:
Coombs S, Gorner P, Munz H (eds) The mechanosensory lateral line. Springer, New York,
pp 481–499
Boeger WA, Pie MR, Ostrensky A et al (2006) The effect of exposure to seismic prospecting on
coral reef fi shes. Braz J Oceanogr 54:235–239
Brown AD, Mussen TD, Sisneros JA et al (2011) Reevaluating the use of aminoglycoside antibiotics in behavioral studies of the lateral line. Hear Res 272:1–4
Brown AD, Sisneros JA, Jurasin T et al (2013) Differences in lateral line morphology between
hatchery- and wild-origin steelhead. PLoS One 8(3), e59162
Bruintjes R, Radford AN (2013) Context-dependent impacts of anthropogenic noise on individual
and social behavior in a cooperatively breeding fi sh. Anim Behav 85:1343–1349
Buck LM, Winter MJ, Redfern WS et al (2012) Ototoxin-induced cellular damage in neuromasts
disrupts lateral line function in larval zebrafi sh. Hear Res 284:67–81
Casper BM, Popper AN, Matthews F et al (2012) Recovery of barotrauma injuries in Chinook
salmon, Oncorhynchus tshawytscha from exposure to pile driving sound. PLoS One 7, e39593
Casper BM, Smith ME, Halvorsen MB et al (2013a) Effects of exposure to pile driving sounds on
fi sh inner ear tissues. Comp Biochem Physiol A 166:352–360
Casper BM, Halvorsen MB, Mathews F et al (2013b) Recovery of barotrauma injuries resulting
from exposure to pile driving sounds in two sizes of hybrid striped bass. PLoS One 8, e73844
Cervi AL, Poling KR, Higgs DM (2012) Behavioral measure of frequency detection and discrimination in the zebrafi sh, Danio rerio . Zebrafi sh 9:1–7
Cheng AG, Cunningham LL, Rubel EW (2003) Hair cell death in the avian basilar papilla: characterization of the in vivo model and caspase activation. J Assoc Res Otolaryngol 4:91–105
Cheng AG, Cunningham LL, Rubel EW (2005) Mechanisms of hair cell death and protection. Curr
Opin Otolaryngol Head Neck Surg 13:343–348
Chiu LL, Cunningham LL, Raible DW et al (2008) Using the zebrafi sh lateral line to screen for
ototoxicity. J Assoc Res Otolaryngol 9:178–190
Coffey B (2014) Melanin as an oto-protective pigment in two fi sh species: Poecilia latipinna and
Cyprinus carpio . Western Kentucky University, Master’s Thesis
Coffi n AB, Ramcharitar J (2015) Chemical ototoxicity of the fi sh inner ear and lateral line. In:
Sisneros J (ed) Fish hearing and bioacoustics: an anthology in honor of Arthur N. Popper and
Richard R. Fay. Springer, New York (this volume)
Coffi n AB, Kelley M, Manley GA et al (2004) Evolution of sensory hair cells. In: Manley GA,
Popper AN, Fay RR (eds) Evolution of the vertebrate auditory system. Springer, New York,
pp 55–94
Causes and Consequences of Sensory Hair Cell Damage and Recovery in Fishes
