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A Gap Prepulse with a Principal Stimulus Yields a Combined Auditory Late Response

  • Lee, Jae-Hun (Beckman Laser Institute Korea, College of Medicine, Dankook University) ;
  • Jung, Jae Yun (Beckman Laser Institute Korea, College of Medicine, Dankook University) ;
  • Park, Ilyong (Beckman Laser Institute Korea, College of Medicine, Dankook University)
  • Received : 2019.09.17
  • Accepted : 2020.01.23
  • Published : 2020.07.20

Abstract

Background and Objectives: The gap prepulse inhibition of the acoustic startle response has been used to screen tinnitus in an animal model. Here, we examined changes in the auditory late response under various conditions of gap prepulse inhibition. Subjects and Methods: We recruited 19 healthy adults (5 males, 14 females) and their auditory late responses were recorded after various stimuli with or without gap prepulsing. The N1 and P2 responses were selected for analysis. The gap prepulse inhibition was estimated to determine the optimal auditory late response in the gap prepulse paradigm. Results: We found that the gap per se generated a response that was very similar to the response elicited by sound stimuli. This critically affected the gap associated with the maximal inhibition of the stimulus response. Among the various gap-stimulus intervals (GSIs) between the gap and principal stimulus, the GSI of 150 ms maximally inhibited the response. However, after zero padding was used to minimize artifacts after a P2 response to a gap stimulus, the differences among the GSIs disappeared. Conclusions: Overall, the data suggest that both the prepulse inhibition and the gap per se should be considered when using the gap prepulse paradigm to assess tinnitus in humans.

Keywords

Acknowledgement

This study was supported by the Ministry of Science, Information and Communications technology (ICT) and Future Planning grant funded by the Korean Government (NRF- 2017R1D1A1B03033219).

References

  1. Norena A, Cransac H, Chery-Croze S. Towards an objectification by classification of tinnitus. Clin Neurophysiol 1999;110:666-75. https://doi.org/10.1016/S1388-2457(98)00034-0
  2. Lee CY, Jaw FS, Pan SL, Lin MY, Young YH. Auditory cortical evoked potentials in tinnitus patients with normal audiological presentation. J Formos Med Assoc 2007;106:979-85. https://doi.org/10.1016/S0929-6646(08)60072-8
  3. Graham FK. Presidential Address, 1974. The more or less startling effects of weak prestimulation. Psychophysiology 1975;12:238-48. https://doi.org/10.1111/j.1469-8986.1975.tb01284.x
  4. Swerdlow NR, Braff DL, Geyer MA. Animal models of deficient sensorimotor gating: what we know, what we think we know, and what we hope to know soon. Behav Pharmacol 2000;11:185-204. https://doi.org/10.1097/00008877-200006000-00002
  5. Kedzior KK, Martin-Iverson MT. Chronic cannabis use is associated with attention-modulated reduction in prepulse inhibition of the startle reflex in healthy humans. J Psychopharmacol 2006;20:471-84. https://doi.org/10.1177/0269881105057516
  6. Turner JG, Brozoski TJ, Bauer CA, Parrish JL, Myers K, Hughes LF, et al. Gap detection deficits in rats with tinnitus: a potential novel screening tool. Behav Neurosci 2006;120:188-95. https://doi.org/10.1037/0735-7044.120.1.188
  7. Chen G, Lee C, Sandridge SA, Butler HM, Manzoor NF, Kaltenbach JA. Behavioral evidence for possible simultaneous induction of hyperacusis and tinnitus following intense sound exposure. J Assoc Res Otolaryngol 2013;14:413-24. https://doi.org/10.1007/s10162-013-0375-2
  8. Lobarinas E, Hayes SH, Allman BL. The gap-startle paradigm for tinnitus screening in animal models: limitations and optimization. Hear Res 2013;295:150-60. https://doi.org/10.1016/j.heares.2012.06.001
  9. Blumenthal TD. Prepulse inhibition of the startle eyeblink as an indicator of temporal summation. Percept Psychophys 1995;57:487-94. https://doi.org/10.3758/BF03213074
  10. Braff DL, Geyer MA, Swerdlow NR. Human studies of prepulse inhibition of startle: normal subjects, patient groups, and pharmacological studies. Psychopharmacology (Berl) 2001;156:234-58. https://doi.org/10.1007/s002130100810
  11. Hairston IS, Talbot LS, Eidelman P, Gruber J, Harvey AG. Sensory gating in primary insomnia. Eur J Neurosci 2010;31:2112-21. https://doi.org/10.1111/j.1460-9568.2010.07237.x
  12. Grillon C, Morgan CA 3rd, Davis M, Southwick SM. Effects of experimental context and explicit threat cues on acoustic startle in Vietnam veterans with posttraumatic stress disorder. Biol Psychiatry 1998;44:1027-36. https://doi.org/10.1016/S0006-3223(98)00034-1
  13. Ku Y, Ahn JW, Kwon C, Suh MW, Lee JH, Oh SH, et al. Gap prepulse inhibition of the auditory late response in healthy subjects. Psychophysiology 2015;52:1511-9. https://doi.org/10.1111/psyp.12507
  14. Ozdamar O, Bohorquez J. Signal-to-noise ratio and frequency analysis of continuous loop averaging deconvolution (CLAD) of overlapping evoked potentials. J Acoust Soc Am 2006;119:429-38. https://doi.org/10.1121/1.2133682
  15. Burkard RF, Eggermont JJ, Don M. Stimuli for auditory evoked potential assessment. Auditory evoked potentials: basic principles and clinical application. 1st ed. Baltimore, USA: Lippincott Williams & Wilkins;2007. p.42-73.
  16. Sussman E, Steinschneider M, Gumenyuk V, Grushko J, Lawson K. The maturation of human evoked brain potentials to sounds presented at different stimulus rates. Hear Res 2008;236:61-79. https://doi.org/10.1016/j.heares.2007.12.001
  17. Squires KC, Hecox KE. Electrophysiological evaluation of higher level auditory processing. Seminars in Hearing. New York, USA: Thieme Medical Publishers, Inc.;1983. p.415-32.
  18. Palmer SB, Musiek FE. N1-p2 recordings to gaps in broadband noise. J Am Acad Audiol 2013;24:37-45. https://doi.org/10.3766/jaaa.24.1.5
  19. Kujawa SG, Liberman MC. Synaptopathy in the noise-exposed and aging cochlea: primary neural degeneration in acquired sensorineural hearing loss. Hear Res 2015;330:191-9. https://doi.org/10.1016/j.heares.2015.02.009
  20. Graham SJ, Scaife JC, Balboa Verduzco AM, Langley RW, Bradshaw CM, Szabadi E. Effects of quetiapine and haloperidol on prepulse inhibition of the acoustic startle (eyeblink) response and the N1/P2 auditory evoked response in man. J Psychopharmacol 2004;18:173-80. https://doi.org/10.1177/0269881104042615
  21. Fournier P, Hebert S. The gap-startle paradigm to assess auditory temporal processing: bridging animal and human research. Psychophysiology 2016;53:759-66. https://doi.org/10.1111/psyp.12620
  22. Ku Y, Ahn JW, Kwon C, Kim DY, Suh MW, Park MK, et al. The gapprepulse inhibition deficit of the cortical N1-P2 complex in patients with tinnitus: the effect of gap duration. Hear Res 2017;348:120-8. https://doi.org/10.1016/j.heares.2017.03.003
  23. Firszt JB, Chambers RD, Kraus And N, Reeder RM. Neurophysiology of cochlear implant users I: effects of stimulus current level and electrode site on the electrical ABR, MLR, and N1-P2 response. Ear Hear 2002;23:502-15. https://doi.org/10.1097/00003446-200212000-00002
  24. Graham SJ, Langley RW, Bradshaw CM, Szabadi E. Effects of haloperidol and clozapine on prepulse inhibition of the acoustic startle response and the N1/P2 auditory evoked potential in man. J Psychopharmacol 2001;15:243-50. https://doi.org/10.1177/026988110101500411
  25. Shahriari Y, Krusienski D, Dadi YS, Seo M, Shin HS, Choi JH. Impaired auditory evoked potentials and oscillations in frontal and auditory cortex of a schizophrenia mouse model. World J Biol Psychiatry 2016;17:439-48. https://doi.org/10.3109/15622975.2015.1112036
  26. Inui K, Tsuruhara A, Kodaira M, Motomura E, Tanii H, Nishihara M, et al. Prepulse inhibition of auditory change-related cortical responses. BMC Neurosci 2012;13:135. https://doi.org/10.1186/1471-2202-13-135
  27. Phillips MA, Langley RW, Bradshaw CM, Szabadi E. The effects of some antidepressant drugs on prepulse inhibition of the acoustic startle (eyeblink) response and the N1/P2 auditory evoked response in man. J Psychopharmacol 2000;14:40-5. https://doi.org/10.1177/026988110001400105
  28. Phillips MA, Oxtoby EK, Langley RW, Bradshaw CM, Szabadi E. Effects of acute tryptophan depletion on prepulse inhibition of the acoustic startle (eyeblink) response and the N1/P2 auditory evoked response in man. J Psychopharmacol 2000;14:258-65. https://doi.org/10.1177/026988110001400308
  29. Shi L, Chang Y, Li X, Aiken SJ, Liu L, Wang J. Coding deficits in noise-induced hidden hearing loss may stem from incomplete repair of ribbon synapses in the cochlea. Front Neurosci 2016;10:231. https://doi.org/10.3389/fnins.2016.00231