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Published in: Journal of the Association for Research in Otolaryngology 6/2012

01-12-2012 | Research Article

Perilymph Pharmacokinetics of Markers and Dexamethasone Applied and Sampled at the Lateral Semi-Circular Canal

Authors: Alec N. Salt, Jared J. Hartsock, Ruth M. Gill, Fabrice Piu, Stefan K. Plontke

Published in: Journal of the Association for Research in Otolaryngology | Issue 6/2012

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Abstract

Perilymph pharmacokinetics was investigated by a novel approach, in which solutions containing drug or marker were injected from a pipette sealed into the perilymphatic space of the lateral semi-circular canal (LSCC). The cochlear aqueduct provides the outlet for fluid flow so this procedure allows almost the entire perilymph to be exchanged. After wait times of up to 4 h the injection pipette was removed and multiple, sequential samples of perilymph were collected from the LSCC. Fluid efflux at this site results from cerebrospinal fluid (CSF) entry into the basal turn of scala tympani (ST) so the samples allow drug levels from different locations in the ear to be defined. This method allows the rate of elimination of substances from the inner ear to be determined more reliably than with other delivery methods in which drug may only be applied to part of the ear. Results were compared for the markers trimethylphenylammonium (TMPA) and fluorescein and for the drug dexamethasone (Dex). For each substance, the concentration in fluid samples showed a progressive decrease as the delay time between injection and sampling was increased. This is consistent with the elimination of substance from the ear with time. The decline with time was slowest for fluorescein, was fastest for Dex, with TMPA at an intermediate rate. Simulations of the experiments showed that elimination occurred more rapidly from scala tympani (ST) than from scala vestibuli (SV). Calculated elimination half-times from ST averaged 54.1, 24.5 and 22.5 min for fluorescein, TMPA and Dex respectively and from SV 1730, 229 and 111 min respectively. The elimination of Dex from ST occurred considerably faster than previously appreciated. These pharmacokinetic parameters provide an important foundation for understanding of drug treatments of the inner ear.
Literature
go back to reference Bachmann G, Su J, Zumegen C, Wittekindt C, Michel O (2001) Permeabilität der runden Fenstermembran für Prednisolon-21-Hydrogensuccinat. HNO 49:538–542PubMedCrossRef Bachmann G, Su J, Zumegen C, Wittekindt C, Michel O (2001) Permeabilität der runden Fenstermembran für Prednisolon-21-Hydrogensuccinat. HNO 49:538–542PubMedCrossRef
go back to reference Bird PA, Begg EJ, Zhang M, Keast AT, Murray DP, Balkany TJ (2007) Intratympanic versus intravenous delivery of methylprednisolone to cochlear perilymph. Otol Neurotol 28:1124–1130PubMedCrossRef Bird PA, Begg EJ, Zhang M, Keast AT, Murray DP, Balkany TJ (2007) Intratympanic versus intravenous delivery of methylprednisolone to cochlear perilymph. Otol Neurotol 28:1124–1130PubMedCrossRef
go back to reference Bird PA, Murray DP, Zhang M, Begg EJ (2011) Intratympanic versus intravenous delivery of dexamethasone and dexamethasone sodium phosphate to cochlear perilymph. Otol Neurotol 32:933–936PubMedCrossRef Bird PA, Murray DP, Zhang M, Begg EJ (2011) Intratympanic versus intravenous delivery of dexamethasone and dexamethasone sodium phosphate to cochlear perilymph. Otol Neurotol 32:933–936PubMedCrossRef
go back to reference Borden RC, Saunders JE, Berryhill WE et al (2011) Hyaluronic acid hydrogel sustains the delivery of dexamethasone across the round window membrane. Audiol Neurootol 16:1–11PubMed Borden RC, Saunders JE, Berryhill WE et al (2011) Hyaluronic acid hydrogel sustains the delivery of dexamethasone across the round window membrane. Audiol Neurootol 16:1–11PubMed
go back to reference Chandrasekhar SS, Rubinstein RY, Kwartler JA, Gatz M, Connelly PE, Huang E, Baredes S (2000) Dexamethasone pharmacokinetics in the inner ear: comparison of route of administration and use of facilitating agents. Otolaryngol Head Neck Surg 122:521–528PubMedCrossRef Chandrasekhar SS, Rubinstein RY, Kwartler JA, Gatz M, Connelly PE, Huang E, Baredes S (2000) Dexamethasone pharmacokinetics in the inner ear: comparison of route of administration and use of facilitating agents. Otolaryngol Head Neck Surg 122:521–528PubMedCrossRef
go back to reference Chen Z, Kujawa SG, McKenna MJ, Fiering JO, Mescher MJ, Borenstein JT, Swan EE, Sewell WF (2005) Inner ear drug delivery via a reciprocating perfusion system in the guinea pig. J Control Release 110:1–19PubMedCrossRef Chen Z, Kujawa SG, McKenna MJ, Fiering JO, Mescher MJ, Borenstein JT, Swan EE, Sewell WF (2005) Inner ear drug delivery via a reciprocating perfusion system in the guinea pig. J Control Release 110:1–19PubMedCrossRef
go back to reference Ferrary E, Sterkers O, Saumon G, Tran Ba Huy P, Amiel C (1987) Facilitated transfer of glucose from blood into perilymph in the rat cochlea. Am J Physiol 253:F59–F65PubMed Ferrary E, Sterkers O, Saumon G, Tran Ba Huy P, Amiel C (1987) Facilitated transfer of glucose from blood into perilymph in the rat cochlea. Am J Physiol 253:F59–F65PubMed
go back to reference Goycoolea MV, Muchow D, Schachern P (1988) Experimental studies on round window structure: function and permeability. Laryngoscope 98(Suppl 44):1–20PubMedCrossRef Goycoolea MV, Muchow D, Schachern P (1988) Experimental studies on round window structure: function and permeability. Laryngoscope 98(Suppl 44):1–20PubMedCrossRef
go back to reference Hahn H, Kammerer B, DiMauro A, Salt AN, Plontke S (2006) Cochlear microdialysis for quantification of dexamethasone and fluorescein entry into scala tympani during round window administration. Hear Res 212:236–244PubMedCrossRef Hahn H, Kammerer B, DiMauro A, Salt AN, Plontke S (2006) Cochlear microdialysis for quantification of dexamethasone and fluorescein entry into scala tympani during round window administration. Hear Res 212:236–244PubMedCrossRef
go back to reference Hahn H, Salt AN, Biegner T, Kammerer B, Delabar U, Hartsock JJ, Plontke SK (2012) Dexamethasone Levels and Base-to-Apex Concentration Gradients in the Scala Tympani Perilymph After Intracochlear Delivery in the Guinea Pig. Otol Neurotol 33:660–665PubMedCrossRef Hahn H, Salt AN, Biegner T, Kammerer B, Delabar U, Hartsock JJ, Plontke SK (2012) Dexamethasone Levels and Base-to-Apex Concentration Gradients in the Scala Tympani Perilymph After Intracochlear Delivery in the Guinea Pig. Otol Neurotol 33:660–665PubMedCrossRef
go back to reference Hara A, Salt AN, Thalmann R (1989) Perilymph composition in scala tympani of the cochlea: Influence of cerebrospinal fluid. Hear Res 42(265):272 Hara A, Salt AN, Thalmann R (1989) Perilymph composition in scala tympani of the cochlea: Influence of cerebrospinal fluid. Hear Res 42(265):272
go back to reference Hargunani CA, Kempton JB, DeGagne JM, Trune DR (2006) Intratympanic injection of dexamethasone: time course of inner ear distribution and conversion to its active form. Otol Neurotol 27:564–569PubMedCrossRef Hargunani CA, Kempton JB, DeGagne JM, Trune DR (2006) Intratympanic injection of dexamethasone: time course of inner ear distribution and conversion to its active form. Otol Neurotol 27:564–569PubMedCrossRef
go back to reference Imamura S, Adams JC (2003) Distribution of gentamicin in the guinea pig inner ear after local or systemic application. J Assoc Res Otolaryngol 4:176–195PubMedCrossRef Imamura S, Adams JC (2003) Distribution of gentamicin in the guinea pig inner ear after local or systemic application. J Assoc Res Otolaryngol 4:176–195PubMedCrossRef
go back to reference Kim SH, Marcus DC (2009) Endolymphatic sodium homeostasis by extramacular epithelium of the saccule. J Neurosci 29:15851–15858PubMedCrossRef Kim SH, Marcus DC (2009) Endolymphatic sodium homeostasis by extramacular epithelium of the saccule. J Neurosci 29:15851–15858PubMedCrossRef
go back to reference King EB, Salt AN, Eastwood HT, O’Leary SJ (2011) Direct entry of gadolinium into the vestibule following intratympanic applications in Guinea pigs and the influence of cochlear implantation. J Assoc Res Otolaryngol 12:741–751PubMedCrossRef King EB, Salt AN, Eastwood HT, O’Leary SJ (2011) Direct entry of gadolinium into the vestibule following intratympanic applications in Guinea pigs and the influence of cochlear implantation. J Assoc Res Otolaryngol 12:741–751PubMedCrossRef
go back to reference Lecain E, Yang TH, Tran Ba Huy P (2003) Steroidogenic enzyme expression in the rat cochlea. Acta Otolaryngol 123:187–191PubMedCrossRef Lecain E, Yang TH, Tran Ba Huy P (2003) Steroidogenic enzyme expression in the rat cochlea. Acta Otolaryngol 123:187–191PubMedCrossRef
go back to reference Liu HJ, Dong MM, Chi FL (2006) Dexamethasone pharmacokinetics in guinea pig inner ear perilymph. ORL J Otorhinolaryngol Relat Spec 68:93–98PubMedCrossRef Liu HJ, Dong MM, Chi FL (2006) Dexamethasone pharmacokinetics in guinea pig inner ear perilymph. ORL J Otorhinolaryngol Relat Spec 68:93–98PubMedCrossRef
go back to reference Mikulec AA, Plontke SK, Hartsock JJ, Salt AN (2009) Entry of substances into perilymph through the bone of the otic capsule following intratympanic applications in guinea pigs: Implications for local drug delivery in humans. Otol Neurotol 30:131–138PubMedCrossRef Mikulec AA, Plontke SK, Hartsock JJ, Salt AN (2009) Entry of substances into perilymph through the bone of the otic capsule following intratympanic applications in guinea pigs: Implications for local drug delivery in humans. Otol Neurotol 30:131–138PubMedCrossRef
go back to reference Mynatt R, Hale SA, Gill RM, Plontke SKR, Salt AN (2006) Demonstration of a longitudinal concentration gradient along scala tympani by sequential sampling of perilymph from the cochlear apex. J Assoc Res Otolaryngol 7:182–193PubMedCrossRef Mynatt R, Hale SA, Gill RM, Plontke SKR, Salt AN (2006) Demonstration of a longitudinal concentration gradient along scala tympani by sequential sampling of perilymph from the cochlear apex. J Assoc Res Otolaryngol 7:182–193PubMedCrossRef
go back to reference Nomura Y (1984) Otological significance of the round window. Adv Otorhinolaryngol 33:66–72 Nomura Y (1984) Otological significance of the round window. Adv Otorhinolaryngol 33:66–72
go back to reference Parnes LS, Sun AH, Freeman DJ (1999) Corticosteroid pharmacokinetics in the inner ear fluids: an animal study followed by clinical application. Laryngoscope 109:1–17PubMedCrossRef Parnes LS, Sun AH, Freeman DJ (1999) Corticosteroid pharmacokinetics in the inner ear fluids: an animal study followed by clinical application. Laryngoscope 109:1–17PubMedCrossRef
go back to reference Phillips AJ, Marchbanks RJ (1989) Effects of posture and age on tympanic membrane displacement measurements. Br J Audiol 23:279–284PubMedCrossRef Phillips AJ, Marchbanks RJ (1989) Effects of posture and age on tympanic membrane displacement measurements. Br J Audiol 23:279–284PubMedCrossRef
go back to reference Plontke SK, Salt AN (2003) Quantitative interpretation of corticosteroid pharmacokinetics in inner ear fluids using computer simulations. Hear Res 182:34–42PubMedCrossRef Plontke SK, Salt AN (2003) Quantitative interpretation of corticosteroid pharmacokinetics in inner ear fluids using computer simulations. Hear Res 182:34–42PubMedCrossRef
go back to reference Plontke SK, Mynatt R, Gill RM, Salt AN (2007) Concentration gradient along scala tympani following the local application of gentamicin to the round window membrane. Laryngoscope 117:1191–1198PubMedCrossRef Plontke SK, Mynatt R, Gill RM, Salt AN (2007) Concentration gradient along scala tympani following the local application of gentamicin to the round window membrane. Laryngoscope 117:1191–1198PubMedCrossRef
go back to reference Plontke SK, Mikulec AA, Salt AN (2008a) Rapid clearance of methylprednisolone after intratympanic application in humans. Otol Neurotol 29:732–733PubMedCrossRef Plontke SK, Mikulec AA, Salt AN (2008a) Rapid clearance of methylprednisolone after intratympanic application in humans. Otol Neurotol 29:732–733PubMedCrossRef
go back to reference Plontke SK, Biegner T, Kammerer B, Delabar U, Salt AN (2008b) Dexamethasone concentration gradients along scala tympani after application to the round window membrane. Otol Neurotol 29:401–406PubMedCrossRef Plontke SK, Biegner T, Kammerer B, Delabar U, Salt AN (2008b) Dexamethasone concentration gradients along scala tympani after application to the round window membrane. Otol Neurotol 29:401–406PubMedCrossRef
go back to reference Pondugula SR, Sanneman JD, Wangemann P, Milhaud PG, Marcus DC (2004) Glucocorticoids stimulate cation absorption by semicircular canal duct epithelium via epithelial sodium channel. Am J Physiol Renal Physiol 286:F1127–F1135PubMedCrossRef Pondugula SR, Sanneman JD, Wangemann P, Milhaud PG, Marcus DC (2004) Glucocorticoids stimulate cation absorption by semicircular canal duct epithelium via epithelial sodium channel. Am J Physiol Renal Physiol 286:F1127–F1135PubMedCrossRef
go back to reference Rask-Andersen H, Schrott-Fischer A, Pfaller K, Glueckert R (2006) Perilymph/modiolar communication routes in the human cochlea. Ear Hear 27:457–465PubMedCrossRef Rask-Andersen H, Schrott-Fischer A, Pfaller K, Glueckert R (2006) Perilymph/modiolar communication routes in the human cochlea. Ear Hear 27:457–465PubMedCrossRef
go back to reference Saijo S, Kimura RS (1984) Distribution of HRP in the inner ear after injection into the middle ear cavity. Acta Otolaryngol 97:593–610PubMedCrossRef Saijo S, Kimura RS (1984) Distribution of HRP in the inner ear after injection into the middle ear cavity. Acta Otolaryngol 97:593–610PubMedCrossRef
go back to reference Salt AN, DeMott JE (1998) Longitudinal endolymph movements induced by perilymphatic injections. Hear Res 123:137–147PubMedCrossRef Salt AN, DeMott JE (1998) Longitudinal endolymph movements induced by perilymphatic injections. Hear Res 123:137–147PubMedCrossRef
go back to reference Salt AN, Ohyama K, Thalmann R (1991) Radial communication between the perilymphatic scalae of the cochlea. I. Estimation by tracer perfusion. Hear Res 56:29–36PubMedCrossRef Salt AN, Ohyama K, Thalmann R (1991) Radial communication between the perilymphatic scalae of the cochlea. I. Estimation by tracer perfusion. Hear Res 56:29–36PubMedCrossRef
go back to reference Salt AN, Ma Y (2001) Quantification of solute entry into cochlear perilymph through the round window membrane. Hear Res 154:88–97PubMedCrossRef Salt AN, Ma Y (2001) Quantification of solute entry into cochlear perilymph through the round window membrane. Hear Res 154:88–97PubMedCrossRef
go back to reference Salt AN, Kellner C, Hale S (2003) Contamination of perilymph sampled from the basal cochlear turn with cerebrospinal fluid. Hear Res 182:24–33PubMedCrossRef Salt AN, Kellner C, Hale S (2003) Contamination of perilymph sampled from the basal cochlear turn with cerebrospinal fluid. Hear Res 182:24–33PubMedCrossRef
go back to reference Salt AN and Plontke SKR (2005) Local Inner ear drug delivery and pharmacokinetics. In: Hearing Research and Drug Discovery : Drug Discov Today. 10:1299–1306 Salt AN and Plontke SKR (2005) Local Inner ear drug delivery and pharmacokinetics. In: Hearing Research and Drug Discovery : Drug Discov Today. 10:1299–1306
go back to reference Salt AN, Plontke SK (2009) Principles of local drug delivery to the inner ear. Audiol Neurootol 14:350–360PubMedCrossRef Salt AN, Plontke SK (2009) Principles of local drug delivery to the inner ear. Audiol Neurootol 14:350–360PubMedCrossRef
go back to reference Salt AN, Hartsock JJ, Plontke SK, LeBel C, Piu F (2011a) Distribution of dexamethasone and preservation of inner ear function following intratympanic delivery of a gel-based formulation. Audiol Neuro otol 16:323–335CrossRef Salt AN, Hartsock JJ, Plontke SK, LeBel C, Piu F (2011a) Distribution of dexamethasone and preservation of inner ear function following intratympanic delivery of a gel-based formulation. Audiol Neuro otol 16:323–335CrossRef
go back to reference Salt AN, Hartsock J, Bretan M, Gill R (2011b) Evaluation of a Ten-Compartment Computer Model of the Inner Ear Fluid Spaces. 34th Midwinter Research Meeting of the Association for Research In Otolaryngology, Baltimore, (Abstract) Salt AN, Hartsock J, Bretan M, Gill R (2011b) Evaluation of a Ten-Compartment Computer Model of the Inner Ear Fluid Spaces. 34th Midwinter Research Meeting of the Association for Research In Otolaryngology, Baltimore, (Abstract)
go back to reference Salt AN, King EB, Hartsock JJ, Gill RM, O’Leary SJ (2012) Marker entry into vestibular perilymph via the stapes following applications to the round window niche of guinea pigs. Hear Res 283:14–23PubMedCrossRef Salt AN, King EB, Hartsock JJ, Gill RM, O’Leary SJ (2012) Marker entry into vestibular perilymph via the stapes following applications to the round window niche of guinea pigs. Hear Res 283:14–23PubMedCrossRef
go back to reference Shepherd RK, Colreavy MP (2004) Surface microstructure of the perilymphatic space: implications for cochlear implants and cell- or drug-based therapies. Arch Otolaryngol Head Neck Surg 130:518–523PubMedCrossRef Shepherd RK, Colreavy MP (2004) Surface microstructure of the perilymphatic space: implications for cochlear implants and cell- or drug-based therapies. Arch Otolaryngol Head Neck Surg 130:518–523PubMedCrossRef
go back to reference Shinomori Y, Spack DS, Jones DD, Kimura RS (2001) Ann Otol Rhinol Laryngol 110:91–98PubMed Shinomori Y, Spack DS, Jones DD, Kimura RS (2001) Ann Otol Rhinol Laryngol 110:91–98PubMed
go back to reference Sterkers O, Ferrary E, Amiel C (1988) Production of inner ear fluids. Physiol Rev 68:1083–1128PubMed Sterkers O, Ferrary E, Amiel C (1988) Production of inner ear fluids. Physiol Rev 68:1083–1128PubMed
go back to reference Stöver T, Yagi M, Raphael Y (1999) Cochlear gene transfer: round window versus cochleostomy inoculation. Hear Res 136:124–130PubMedCrossRef Stöver T, Yagi M, Raphael Y (1999) Cochlear gene transfer: round window versus cochleostomy inoculation. Hear Res 136:124–130PubMedCrossRef
go back to reference Tomlinson ES, Lewis DF, Maggs JL, Kroemer HK, Park BK, Back DJ (1997) In vitro metabolism of dexamethasone (DEX) in human liver and kidney: the involvement of CYP3A4 and CYP17 (17,20 LYASE) and molecular modelling studies. Biochem Pharmacol 54:605–611PubMedCrossRef Tomlinson ES, Lewis DF, Maggs JL, Kroemer HK, Park BK, Back DJ (1997) In vitro metabolism of dexamethasone (DEX) in human liver and kidney: the involvement of CYP3A4 and CYP17 (17,20 LYASE) and molecular modelling studies. Biochem Pharmacol 54:605–611PubMedCrossRef
go back to reference Wang X, Dellamary L, Fernandez R, Harrop A, Keithley EM, Harris JP, Ye Q, Lichter J, LeBel C, Piu F (2009) Dose-dependent sustained release of dexamethasone in inner ear cochlear fluids using a novel local delivery approach. Audiol Neuro otol 14:393–401CrossRef Wang X, Dellamary L, Fernandez R, Harrop A, Keithley EM, Harris JP, Ye Q, Lichter J, LeBel C, Piu F (2009) Dose-dependent sustained release of dexamethasone in inner ear cochlear fluids using a novel local delivery approach. Audiol Neuro otol 14:393–401CrossRef
go back to reference Yang J, Wu H, Zhang P, Hou DM, Chen J, Zhang SG (2008) The pharmacokinetic profiles of dexamethasone and methylprednisolone concentration in perilymph and plasma following systemic and local administration. Acta Otolaryngol 128:496–504PubMedCrossRef Yang J, Wu H, Zhang P, Hou DM, Chen J, Zhang SG (2008) The pharmacokinetic profiles of dexamethasone and methylprednisolone concentration in perilymph and plasma following systemic and local administration. Acta Otolaryngol 128:496–504PubMedCrossRef
Metadata
Title
Perilymph Pharmacokinetics of Markers and Dexamethasone Applied and Sampled at the Lateral Semi-Circular Canal
Authors
Alec N. Salt
Jared J. Hartsock
Ruth M. Gill
Fabrice Piu
Stefan K. Plontke
Publication date
01-12-2012
Publisher
Springer-Verlag
Published in
Journal of the Association for Research in Otolaryngology / Issue 6/2012
Print ISSN: 1525-3961
Electronic ISSN: 1438-7573
DOI
https://doi.org/10.1007/s10162-012-0347-y

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