WO2011028503A1 - Methods for treating acute acoustic trauma - Google Patents

Methods for treating acute acoustic trauma Download PDF

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Publication number
WO2011028503A1
WO2011028503A1 PCT/US2010/046420 US2010046420W WO2011028503A1 WO 2011028503 A1 WO2011028503 A1 WO 2011028503A1 US 2010046420 W US2010046420 W US 2010046420W WO 2011028503 A1 WO2011028503 A1 WO 2011028503A1
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composition
disulfonyl
hearing loss
tertiary butyl
acetylcysteine
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PCT/US2010/046420
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French (fr)
Inventor
Richard Dana Kopke
Robert A. Floyd
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Hough Ear Institute
Oklahoma Medical Research Foundation
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Application filed by Hough Ear Institute, Oklahoma Medical Research Foundation filed Critical Hough Ear Institute
Priority to JP2012526892A priority Critical patent/JP5762414B2/en
Priority to ES10814226.6T priority patent/ES2563777T3/en
Priority to CA2772097A priority patent/CA2772097C/en
Priority to EP10814226.6A priority patent/EP2470015B1/en
Priority to AU2010289838A priority patent/AU2010289838C1/en
Priority to US13/391,772 priority patent/US10555915B2/en
Publication of WO2011028503A1 publication Critical patent/WO2011028503A1/en
Priority to IL218302A priority patent/IL218302A/en
Priority to US15/495,897 priority patent/US20170224635A1/en

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/095Sulfur, selenium, or tellurium compounds, e.g. thiols
    • A61K31/10Sulfides; Sulfoxides; Sulfones
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/13Amines
    • A61K31/15Oximes (>C=N—O—); Hydrazines (>N—N<); Hydrazones (>N—N=) ; Imines (C—N=C)
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/185Acids; Anhydrides, halides or salts thereof, e.g. sulfur acids, imidic, hydrazonic or hydroximic acids
    • A61K31/19Carboxylic acids, e.g. valproic acid
    • A61K31/195Carboxylic acids, e.g. valproic acid having an amino group
    • A61K31/197Carboxylic acids, e.g. valproic acid having an amino group the amino and the carboxyl groups being attached to the same acyclic carbon chain, e.g. gamma-aminobutyric acid [GABA], beta-alanine, epsilon-aminocaproic acid or pantothenic acid
    • A61K31/198Alpha-amino acids, e.g. alanine or edetic acid [EDTA]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K45/00Medicinal preparations containing active ingredients not provided for in groups A61K31/00 - A61K41/00
    • A61K45/06Mixtures of active ingredients without chemical characterisation, e.g. antiphlogistics and cardiaca
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0053Mouth and digestive tract, i.e. intraoral and peroral administration
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P27/00Drugs for disorders of the senses
    • A61P27/16Otologicals
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P39/00General protective or antinoxious agents
    • A61P39/06Free radical scavengers or antioxidants
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P43/00Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00

Definitions

  • AAT Acute acoustic trauma
  • SNHL sensorineural hearing loss
  • the current invention provides a method for treating hearing loss.
  • a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl ⁇ -phenyl tertiary butyl nitrone is particularly useful for treating AAT- induced hearing loss.
  • the current invention provides a method for treating hearing loss.
  • a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl a-phenyl tertiary butyl nitrone and N-acetylcysteine is particularly useful for treating AAT-induced hearing loss,
  • the present invention is directed to a method of treating AAT-induced hearing loss by orally administering a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl a-phenyl tertiary butyl nitrone and N-acetylcysteine (NAC).
  • the current invention provides a composition suitable for treating hearing loss resulting from oxidative stress such as may be induced by AAT.
  • the composition comprises a pharmaceutically effective amount of 2,4-disulfonyl a-phenyl tertiary butyl nitrone.
  • the composition is suitable for oral administration to a patient.
  • the current invention provides a composition suitable for treating hearing loss resulting from oxidative stress such as may be induced by AAT.
  • the composition comprises pharmaceutically effective amounts of 2,4-disulfonyl ⁇ -phenyl tertiary butyl nitrone and N-acetylcysteine.
  • the composition is suitable for oral adrninistration to a patient.
  • the current invention provides a composition comprising
  • FIG, 1 corresponds to Example 1 and demonstrates the combined average threshold shift at all frequencies tested (2, 4, 6 and 8 kHz) in control and 2,4-disulfonyl PBN (HPN-07) treated subjects.
  • FIG. 2 corresponds to Example 1 and demonstrates the average threshold shift at each individual frequency (0.5, 1, 2, 4, 6 and 8 kHz) in control and 2,4-disulfonyl PBN (HPN- 07) treated subjects.
  • FIG. 3 corresponds to Example 2 and demonstrates the average threshold shift at 2, 4, 8 and 16 kHz; in subjects treated with NAC at the indicated doses and time points post-AAT,
  • FIG. 4A corresponds to Example 3 and demonstrates the average threshold shift at each individual frequency (0.5, 1, 2, 4, 6 and 8 kHz) in control, 2,4-disulfonyl PBN (HPN-07) and 2,4-disulfonyl PBN (HPN-07) + NAC treated subjects.
  • FIG. 4B corresponds to Example 3 and demonstrates the combined average threshold shift at all frequencies tested (2, 4, 6 and 8 kHz) in control, 2,4-disulfonyl PBN (HPN-07) and
  • FIG. 5A corresponds to Example 3 and demonstrates the average threshold shift at 2 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) + NAC at the indicated time points post AAT.
  • FIG. 5B corresponds to Example 3 and demonstrates the average threshold shift at 4 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) + NAC at the indicated time points post AAT.
  • FIG. 5C corresponds to Example 3 and demonstrates the average threshold shift at 8 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) + NAC at the indicated time points post AAT,
  • FIG. 5D corresponds to Example 3 and demonstrates the average threshold shift at 16 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) +NAC at the indicated time points post AAT.
  • This invention provides methods for treating sensorineural hearing loss resulting from AAT and likely other causes of deafness related to oxidative stress, programmed cell death, or inflainmatory processes.
  • Other causes of SNHL include but are not limited to, age related hearing loss or presbyacusis, toxin-induced hearing loss, trauma induced hearing loss, viral or bacterial infection leading to hearing loss, hearing loss due to prematurity, hearing loss due to cochlear ischemia, congenital hearing loss, genetic hearing loss, Meniere's disease, sudden hearing loss, and hearing loss related to thyroid disorders or diabetes mellitus.
  • the current invention demonstrates the functionality of 2,4-disulfonyl a-phenyl tertiary butyl nitrone as a free radical trap and the synergistic effect of combining the 2,4-disulfonyl ⁇ -phenyl tertiary butyl nitrone with N-acetylcysteine (NAC) in the treatment of AAT.
  • NAC N-acetylcysteine
  • the 2,4-disulfonyl PBN has the following structure:
  • the acid form of the compound has the following structure:
  • the acid form may be a solid or found in low pH solutions.
  • the ionized- salt form of the compound exists at higher pH and may be represented by either of the following structures:
  • X is a pharmaceutically acceptable cation.
  • this cation is a monovalent material such as sodium, potassium or ammonium, but it can also be a multivalent alone or cation in combination with a pharmaceutically acceptable monovalent anion, for example calcium with a chloride, bromide, iodide, hydroxy., nitrate, sulfonate, acetate, tartrate, oxalate, succinate, palmoate or the like anion; magnesium with such anions; zinc with such anions or the like.
  • antioxidant peptides which target the mitochondria
  • These compounds preclude the generation of intracellular reactive oxygen species (ROS) which leads to oxidative stress and damage of the mitochondria. Oxidative damage of the mitochondria is known to cause apoptosis and necrosis leading to cell death.
  • the preferred antioxidant peptides are Szeto-Schiller (SS) peptides and their functional analogs. These compounds have alternating aromatic residues and basic amino acids.
  • SS Szeto-Schiller
  • peptides having tyrosine (Tyr) or dimethyltyrosme (Dmt) analogs can scavenge oxyradicals.
  • SS-peptides include compounds such as SS-31 (D-Arg-Dmt-Lys- Phe-NH 2 ) and SS-02 (Dmt-D-Arg-Phe-Lys-NH 2 ).
  • tryptophan containing SS-peptides are also useful in the current invention.
  • the amino acids found in the SS-peptides may be L or D and may be naturally occuring, non- naturally occurrng and derivatives of naturally occurring amino acids.
  • the SS- peptides disclosed in PCT published application WO 2005/072295 are suitable for use in the current invention. The entire disclosure of WO 2005/072295, published on August 11, 2005 is incorporated herein by reference.
  • the current invention provides methods and compositions suitable for treating the referenced hearing conditions.
  • the current invention utilizes 2,4- disulfonyl PBN and N-acetylcysteine to treat AAT.
  • the composition of the current invention may optionally include additional antioxidant componds including, but not limited to, Acetyl-Lr Carnitine (ALCAR), glutathione monoethylester, ebselen, D-methionine.
  • compositions of the current invention will preferably be administered orally; however, other delivery methods including, but not limited to, intravenously, subcutaneously, by inhalation, sublingually, subdermally or locally within the ear are also suitable.
  • the active composition may be administered as a nanoparticle or dendrimer formulation.
  • the nanoparticle may be multifunctional and composed of a polymer and paramagnetic iron oxide particles to allow the application of external magnetic forces to aid in the delivery of the drug to the desired target such as the inner ear.
  • the composition may be formulated with additives known to those skilled in the art to enhance oral absotbtion and alter bioavailability kinetics.
  • iNOS inducible nitric oxide synthase
  • the sound spectrum output of the system was calibrated with a sound level meter centered at an octave bandwidth of 4 kHz.
  • a condenser microphone (B&K 2804, Norcross, GA) coupled to the preamplifier was placed between the two wire cages at the level of the animals' heads to monitor the noise level.
  • the noise level was continually and visually monitored using the PULSE software system [B&K, Sound & Vibration Measurement (version 10.0), Norcross, GA] including FFT Analysis Type 7770 and CPB Analysis 7771.
  • NAC-50 50 mg/kg of NAC (NAC-50; FIG. 3);
  • the treatments were administered a total of five times including one dose 4 hours post-AAT, and two doses daily on days 1 and 2 post AAT.
  • ABR auditory brainstem response
  • Auditory stimuli was generated using a computer-aided system (Intelligent Hearing Systems, Miami, FL) coupled to high frequency transducers. Acoustic stimuli were tone pips (5 ms duration and I ms Blackman rise and fall) at frequencies of 0,5, 1, 2, 4, 6, 8, and 16 kHz.
  • Hearing thresholds were tasted in 10 dB descending steps until near the threshold, and then 5 dB ascending steps were taken to determine the threshold. Threshold was defined as the midpoint between the lowest level of a clear response and the next level where no response was observed. The threshold shift refers to the difference in threshold prior to and following AAT. The investigators performing the ABR measurements were blinded as to the identity of the animal groups.
  • 2,4-disulfonyl PBN improves hearing in animals exposed to AAT.
  • the purpose of this example is to demonstrate the effectiveness of NAC in treating hearing loss in an animal model.
  • Six chinchillas per experimental group were administered either saline (control), 50,100, or 200 mg/kg of NAC via intraperitoneal (i.p.) injection at 4 hours post AAT exposure.
  • Statistical analysis was performed using a two way ANOVA and Post hoc test, denotes a p ⁇ 0.05,
  • NAC demonstrates a mild effect on threshold shift soon aft er treatment. However, at 21 days following AAT exposure, there is a significant decrease in threshold shift in animals receiving 100 mg/kg and 200 mg/kg of NAC. These results demonstrate that antioxidants, such as NAC, are effective in treating hearing loss associated with AAT.
  • the purpose of this example is to demonstrate the effectiveness of 2,4-disulfonyl PBN in combination with NAC for treating hearing loss in an animal model
  • Figures 4A and 4B illustrate the synergistic effect of a combination treatment comprising NAC and 2,4-disulfonyl PBN.
  • Data in Figure 4 A represents the average threshold shift for each individual frequency tested.
  • the data in Figure 4B represents the combined average threshold shift data from 2 kHz to 8 kHz. Data were analyzed via a two-way ANOVA, Bonferroni test "**" denotes a p value of less than 0.01 and "***" denotes a p value of less than 0.001.
  • Threshold shift s were found in the control group and treated groups at all frequencies with greater shifts in the high frequencies (2-8 kHz). See Figure 4A, As demonstrated in Figure 4A, treatment with HPN-07 alone resulted in a significant reduction in threshold shift at 0,5, 1, 4 and 6 kHz. The addition of NAC to the HPN-07 treatment composition resulted in a significant reduction in threshold shift across all frequencies tested, Furthermore, the combined data in Figure 4B demonstrates an overall significant reduction in threshold shift when subjects were administered either HPN-07 alone or in combination with NAC. Moreover, Figures 4A and 4B clearly demonstrates that administration of NAC in combination with HPN-07 provides a more robust decrease in threshold shift as compared to treatment with HPN-07 alone. Taken together, these results support the use of 2,4-disulfonyl PBN and NAC in a combination therapy for treating hearing loss.
  • Figure 5A-D depicts the effects of HPN-07+NAC on hearing loss (threshold shift) as a function of time in a rat model of AAT. Rats were randomly assigned to either treatment or control groups which consisted of 6 rats per time point (8h, 24h, 7d and 2 Id) post AAT. In order to induce AAT, rats were anesthetized with ketamine/xylazine and exposed for lh to 115 dB SPL one-octave band noise centered at 14 kHz, HPN-07 (300 mg kg) in combination with NAC (300 mg/kg) was administered via i.p.
  • the hearing loss produced in the rat model was substantially greater than that observed in the chinchilla model (50-70 dB threshold shift compared to approximately 35 dB, respectively).
  • the HPN-07+NAC combination treatment was successful in significantly reducing the threshold shift as early as 24 hours post AAT (23 hours following administration of treatment).
  • HPN-07+NAC treatment resulted in significant reduction in threshold shift at all frequencies at 7 and 21 days post AAT.
  • the results in Figures 5A-D demonstrate that the combination of 2,4-disulfonyi PBN with NAC is extremely effective in reducing permanent hearing loss
  • the current disclosure demonstrates me effectiveness of 2,4-disulfonyl PBN in treating subjects subjected to AAT,
  • the use of 2,4-disulfonyl PBN as a treatment for AAT has been shown to at least reduce hearing loss in subjects that have experienced AAT.
  • the combination of 2,4-disulfonyl PBN with NAC produces a synergistic result and further reduces hearing loss
  • a "pharmaceutically effective amount” is an amount of a pharmaceutical compound or composition having a therapeutically relevant effect on hearing loss,
  • a therapeutically relevant effect relates to some improvement in hearing capacity or a change in the cellular, physiological or biochemical parameters associated with any of the causes of sensorineural hearing loss including but not limited to age related hearing loss or presbyacusis, toxin-induced hearing loss, trauma induced hearing loss, viral or bacterial infection leading to hearing loss, hearing loss due to prematurity, hearing loss due to cochlear ischemia, congenital hearing loss, genetic hearing loss, Meniere's disease, sudden hearing loss, and hearing loss related to thyroid disorders or diabetes mellitus.
  • 2,4-disulfonyl PBN and NAC may be administered in dosages which are pharmaceutically effective for each compound, or in dosages which are sub-clinical, i,e,, less than pharmaceutically effective for each, or a combination thereof, provided that the combined dosages are pharmaceutically effective.
  • a composition comprising 2,4-disulfonyl PBN with NAC will have two parts NAC for every part of 2,4-disulfonyl PBN, i.e. a ratio of 2:1, NAC to 2,4-disulfonyl PBN.
  • concentration of NAC used in the composition of NAC with 2,4-disulfonyl PBN will be substantially less than treatment of a patient with NAC alone.
  • the compositions may comprise between about 70 mg and about 1200 mg of
  • compositions comprising 2,4-disulfonyl PBN may be administered at a dose of between about 1 mg/kg to about 400 mg/kg body weight and more likely around 300 tag/kg body weight
  • compositions comprising NAC may be administered at a dose of between about 5 mg/kg to about 300 mg/kg body weight

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Abstract

The current invention provides methods and compositions for treating sensorineural hearing loss including but not limited to acute acoustic trauma (AAT). The composition 2,4- disulfonyl α-phenyl tertiary butyl nitrone and N-acetylcysteine (NAC). Preferably, the compositions for treating AAT will be administered orally. However, other methods which deliver the compositions for treating AAT systemically to the body should work equally well.

Description

METHODS FOR TREATING ACUTE ACOUSTIC TRAUMA
Related Application
[0001] This application claims the benefit of U.S. Provisional Patent Application No, 61/274,118 filed on August 24, 2009.
Background of the Invention
[0002] Acute acoustic trauma (AAT) is known to cause permanent hearing loss. Hearing loss from AAT is also enhanced by simultaneous exposure to other toxins such as low levels of carbon monoxide or acrylonitrile. Recent studies indicate that free radical processes are involved in the AAT-induced hearing loss. At this time an FDA approved treatment does not exist for the treatment of AAT or other causes of sensorineural hearing loss (SNHL). Thus, a substantial need exists for treatment methods and compounds suitable for treating victims of AAT events. Additionally, a need exists for treatment of all forms of SNHL,
[0003] ϊη a co-pending application, U.S. Ser. No. 12/374,970, filed on January 23, 2009, previously published as PCT Application, Publication No, 2008/013866, the inventors describe the ability to treat AAT-induced hearing loss with the preferred combination of 4-hydroxy- α- phenyl butyl nitrone and N-acetylcysteine. The entire disclosures of U.S. Provisional Application Ser. No.60/833,114 filed on July 25, 2006, and U.S. Provisional Application Serial No, 60/833,452 filed on July 26, 2006, are incorporated herein by reference. Additionally, the entire disclosures of pending U.S. Application Ser. No. 12/374,970 and published PCT Application, Publication No. 2008/013866, are incorporated herein by reference.
Summary of the Invention
[0004] In one embodiment, the current invention provides a method for treating hearing loss. In the method of the current invention, a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl α-phenyl tertiary butyl nitrone is particularly useful for treating AAT- induced hearing loss.
[0005] In another embodiment, the current invention provides a method for treating hearing loss. In the method of the current invention, a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl a-phenyl tertiary butyl nitrone and N-acetylcysteine is particularly useful for treating AAT-induced hearing loss,
[0006] Additionally, the present invention is directed to a method of treating AAT-induced hearing loss by orally administering a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl a-phenyl tertiary butyl nitrone and N-acetylcysteine (NAC). [0007] In yet another embodiment, the current invention provides a composition suitable for treating hearing loss resulting from oxidative stress such as may be induced by AAT. The composition comprises a pharmaceutically effective amount of 2,4-disulfonyl a-phenyl tertiary butyl nitrone. Preferably, the composition is suitable for oral administration to a patient.
[0008] Still further, the current invention provides a composition suitable for treating hearing loss resulting from oxidative stress such as may be induced by AAT. The composition comprises pharmaceutically effective amounts of 2,4-disulfonyl α-phenyl tertiary butyl nitrone and N-acetylcysteine. Preferably, the composition is suitable for oral adrninistration to a patient.
[0009] In another embodiment, the current invention provides a composition comprising
2,4-disulfonyl a-phenyl tertiary butyl nitrone and N-acetylcysteine. The individual components of this composition may be at less than pharmaceutically effective amounts yet the combination thereof is pharmaceutically effective for treating sensorineural hearing loss.
Brief Description of the Drawings
[0010] FIG, 1 corresponds to Example 1 and demonstrates the combined average threshold shift at all frequencies tested (2, 4, 6 and 8 kHz) in control and 2,4-disulfonyl PBN (HPN-07) treated subjects.
[0011] FIG. 2 corresponds to Example 1 and demonstrates the average threshold shift at each individual frequency (0.5, 1, 2, 4, 6 and 8 kHz) in control and 2,4-disulfonyl PBN (HPN- 07) treated subjects.
[0012] FIG. 3 corresponds to Example 2 and demonstrates the average threshold shift at 2, 4, 8 and 16 kHz; in subjects treated with NAC at the indicated doses and time points post-AAT,
[0013] FIG. 4A corresponds to Example 3 and demonstrates the average threshold shift at each individual frequency (0.5, 1, 2, 4, 6 and 8 kHz) in control, 2,4-disulfonyl PBN (HPN-07) and 2,4-disulfonyl PBN (HPN-07) + NAC treated subjects.
[0014] FIG. 4B corresponds to Example 3 and demonstrates the combined average threshold shift at all frequencies tested (2, 4, 6 and 8 kHz) in control, 2,4-disulfonyl PBN (HPN-07) and
2,4-disulfonyl PBN (HPN-07) + NAC treated subjects.
[0015] FIG. 5A corresponds to Example 3 and demonstrates the average threshold shift at 2 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) + NAC at the indicated time points post AAT.
[0016] FIG. 5B corresponds to Example 3 and demonstrates the average threshold shift at 4 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) + NAC at the indicated time points post AAT. [0017] FIG. 5C corresponds to Example 3 and demonstrates the average threshold shift at 8 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) + NAC at the indicated time points post AAT,
[0018] FIG. 5D corresponds to Example 3 and demonstrates the average threshold shift at 16 kHz in subjects treated with 2,4-disulfonyl PBN (HPN-07) +NAC at the indicated time points post AAT.
Detailed Description of the Preferred Embodiments of the Current Invention
[0019] This invention provides methods for treating sensorineural hearing loss resulting from AAT and likely other causes of deafness related to oxidative stress, programmed cell death, or inflainmatory processes. Examples of other causes of SNHL include but are not limited to, age related hearing loss or presbyacusis, toxin-induced hearing loss, trauma induced hearing loss, viral or bacterial infection leading to hearing loss, hearing loss due to prematurity, hearing loss due to cochlear ischemia, congenital hearing loss, genetic hearing loss, Meniere's disease, sudden hearing loss, and hearing loss related to thyroid disorders or diabetes mellitus. The current invention demonstrates the functionality of 2,4-disulfonyl a-phenyl tertiary butyl nitrone as a free radical trap and the synergistic effect of combining the 2,4-disulfonyl α-phenyl tertiary butyl nitrone with N-acetylcysteine (NAC) in the treatment of AAT. For the purposes of the remainder of this disclosure, 2,4-disulfonyl a-phenyl tertiary butyl nitrone will be referred to as
2,4-disulfonyl PBN or HPN-07.
[0020] The 2,4-disulfonyl PBN has the following structure:
Figure imgf000004_0001
The acid form of the compound has the following structure:
Figure imgf000004_0002
The acid form may be a solid or found in low pH solutions. The ionized- salt form of the compound exists at higher pH and may be represented by either of the following structures:
Figure imgf000005_0001
In the salt form, X is a pharmaceutically acceptable cation. Most commonly, this cation is a monovalent material such as sodium, potassium or ammonium, but it can also be a multivalent alone or cation in combination with a pharmaceutically acceptable monovalent anion, for example calcium with a chloride, bromide, iodide, hydroxy., nitrate, sulfonate, acetate, tartrate, oxalate, succinate, palmoate or the like anion; magnesium with such anions; zinc with such anions or the like. Among these materials, the free acid and the simple sodium, potassium or ammonium salts are most preferred with the calcium and magnesium salts also being preferred but somewhat less so, The 2,4-disulfonyl PBN compound is described in detail by U.S. Patent No. 5,488,145, The entire disclosure of U.S. Patent No. 5,488,145 is incorporated herein by reference, The salts of 2,4-disulfonyl PBN may also be used for the treatment of AAT in a manner similar to the use of 2,4-disulfonyl PBN as discussed below,
[0021] Additionally, antioxidant peptides, which target the mitochondria, are useful in the present invention and may be included as part of the composition for treating AAT, These compounds preclude the generation of intracellular reactive oxygen species (ROS) which leads to oxidative stress and damage of the mitochondria. Oxidative damage of the mitochondria is known to cause apoptosis and necrosis leading to cell death. The preferred antioxidant peptides are Szeto-Schiller (SS) peptides and their functional analogs. These compounds have alternating aromatic residues and basic amino acids. In particular, peptides having tyrosine (Tyr) or dimethyltyrosme (Dmt) analogs can scavenge oxyradicals. These compounds inhibit oxidation of low-density lipoproteins. SS-peptides include compounds such as SS-31 (D-Arg-Dmt-Lys- Phe-NH2) and SS-02 (Dmt-D-Arg-Phe-Lys-NH2). In addition to the Tyr and Dmt containing SS-peptides, tryptophan containing SS-peptides are also useful in the current invention. Finally, the amino acids found in the SS-peptides may be L or D and may be naturally occuring, non- naturally occurrng and derivatives of naturally occurring amino acids. In particular, the SS- peptides disclosed in PCT published application WO 2005/072295 are suitable for use in the current invention. The entire disclosure of WO 2005/072295, published on August 11, 2005 is incorporated herein by reference.
[0022] Thus, the current invention provides methods and compositions suitable for treating the referenced hearing conditions. In a preferred embodiment, the current invention utilizes 2,4- disulfonyl PBN and N-acetylcysteine to treat AAT, The composition of the current invention may optionally include additional antioxidant componds including, but not limited to, Acetyl-Lr Carnitine (ALCAR), glutathione monoethylester, ebselen, D-methionine.
[0023} The compositions of the current invention will preferably be administered orally; however, other delivery methods including, but not limited to, intravenously, subcutaneously, by inhalation, sublingually, subdermally or locally within the ear are also suitable. Further the active composition may be administered as a nanoparticle or dendrimer formulation. The nanoparticle may be multifunctional and composed of a polymer and paramagnetic iron oxide particles to allow the application of external magnetic forces to aid in the delivery of the drug to the desired target such as the inner ear. Additionally, the composition may be formulated with additives known to those skilled in the art to enhance oral absotbtion and alter bioavailability kinetics.
[0024] Without wishing to be limited by theory, we believe that at least part of the functionality of 2,4-disulfonyl PBN results from its ability to inhibit the activity or up regulation of inducible nitric oxide synthase (iNOS). iNOS is responsible for activating neural inflammation which may increase the effect of oxidative stress or other injury to the inner ear tissues.
[0025] We have discovered that 2,4-disulfonyl PBN given as an oral administration to chinchillas that have been exposed to an AAT significantly protected them from hearing loss due to AAT. The data demonstrating this functionality is presented in Figures 1-2, 4A and 4B. Furthermore, we have discovered that antioxidants such as NAC are also effecting in protecting from AAT-induced hearing loss and provide a synergistic effect when used in combination with
2,4 - disulfonyl PBN. The data demonstrating tm's functionality is presented in Figures 3, 4A-B and 5A-D.
[0026] For the experiments and examples described herein, the following methods were generally employed except for those described with respect to Figure 5, Female adult chinchilla l niger (Mouton Chinchilla Ranch, Rochester, MN) weighing 500-850 grams were placed, two at a time, in two small wire restraint cages on a wooden plate where the AAT was induced by a 105 dB SPL octave-band noise centered at 4 kHz for 6 hours in a sound isolation boom [Industrial Acoustics Company (IAC), New York, NY], The noise was digitally generated by a Tucker Davis Technologies (TDT, Alachua, FL) device and passed through a real time attenuator (TDT, RP2), filtered, amplified with a preamplifier (QSC audio power, Costa Mesa, CA), and transduced with a high frequency acoustic driver and an acoustic speaker (JBL 2350,Northridge, CA) suspended from the ceiling of the sound booth which is placed directly above the wire cages. Before noise exposure, the sound spectrum output of the system was calibrated with a sound level meter centered at an octave bandwidth of 4 kHz. A condenser microphone (B&K 2804, Norcross, GA) coupled to the preamplifier was placed between the two wire cages at the level of the animals' heads to monitor the noise level. During noise exposure, the noise level was continually and visually monitored using the PULSE software system [B&K, Sound & Vibration Measurement (version 10.0), Norcross, GA] including FFT Analysis Type 7770 and CPB Analysis 7771.
[0027] Subjects were administered one of the following treatments ("mg/kg" denotes mg of compound per kg body weight):
(1) 300 mg/kg 2,4-disulfonyl PBN (HPN-07; FIGS. 1-2, 4A-B);
(2) 50 mg/kg of NAC (NAC-50; FIG. 3);
(3) 100 mg/kg of NAC (NAC-100; FIG.3);
(4) 200 mg/kg of NAC (NAC-200; FIG. 3);
(4) 300 mg/kg 2,4-disulfonyl PBN + 300 mg/kg of NAC (HPN-07 + NAC; FIGS.
4A-B and 5); or
(5) control - 10% sucrose solution (oral) or saline (intraperitoneal) (FIGS. 1-5).
The treatments were administered a total of five times including one dose 4 hours post-AAT, and two doses daily on days 1 and 2 post AAT.
[0028] Hearing was assessed as auditory brainstem response (ABR) which was measured at between 1 and 3 days prior to AAT and at one or more of the following time points post AAT: 1 hr, 8 hr, 24 hr 7 day and 21 days. The 21 day test point was considered the permanent threshold shift (PTS). ABR recordings were performed under light ketamme (20 mg/kg) and xylazine (1 mg/kg) anesthesia. Small supplemental doses (1/3 of initial dose) were given if needed. ABR thresholds were recorded from subcutaneous needle electrodes placed under the skin of the head. An active needle electrode and a reference electrode were placed proximal to the right ear and the left ear, respectively while a ground electrode was placed at the vertex. Auditory stimuli was generated using a computer-aided system (Intelligent Hearing Systems, Miami, FL) coupled to high frequency transducers. Acoustic stimuli were tone pips (5 ms duration and I ms Blackman rise and fall) at frequencies of 0,5, 1, 2, 4, 6, 8, and 16 kHz. All acoustic stimuli were transduced through the computer-controlled attenuator to a 3 A insert earphone [Etymotic Research (ER)-3A, Etymotic Research Inc., Elk Grove Village, IL] placed about 5 ram from the tympanic membrane, The insert earphone was calibrated with a coupler mounted to the sound level meter approximating its placement, The electrical responses obtained from the electrodes were amplified (χΙΟΟ,ΟΟΟ), filtered (100-3,000 Hz), and digitized through an A/D converter on a signal processing board, They were averaged at a sample rate of 1024 for each level,
[0029] Hearing thresholds were tasted in 10 dB descending steps until near the threshold, and then 5 dB ascending steps were taken to determine the threshold. Threshold was defined as the midpoint between the lowest level of a clear response and the next level where no response was observed. The threshold shift refers to the difference in threshold prior to and following AAT. The investigators performing the ABR measurements were blinded as to the identity of the animal groups.
[0030] Example 1
[0031] The purpose of this example is to demonstrate that 2,4-disulfonyl PBN (HPN-07) is effective to treat hearing loss induced by AAT.
[0032] All data values in Figures 1 and 2 are represented as meansiSEM. Statistically significant differences in threshold shifts were tested via ANOVA (SPSS 14.0 for Windows), Frequency was treated as within-subject factor while treatment was the between-subjects factor. When a main effect was found, post-hoc tests such as LSD and Tukey was performed for mean comparisons among different groups. A p-value less than 0,05 represents a statistically significant difference,
[0033] Figure 1 represents the average threshold shift across alt frequencies tested at 21 days post AAT. As demonstrated therein, adult chinchillas receiving HPN-07 (n=5) had a significantly decreased average threshold shift compared to control animals not receiving the compound (n-6), As demonstrated in Figure 2, the most pronounced effect of HPN-07 occurred at 0.5, 1, 6 and 8 kHz, while the effect was less prominent at 2 and 4 kHz, This suggests that animals receiving HPN-07 were able to detect the test tone at a lower decibel value than control animals. Effective results should be realized at dosages between 5 mg/kg and about 300 mg/kg for 2,4-disulfonyl PBN. Additionally, in view of the resulting ABR data, one would expect a statistically significant reduction in outer hair cell loss in animals treated with 2,4-disulfonyl PBN when compared to the control group of animals. In sum, Figures 1 and 2 demonstrate that
2,4-disulfonyl PBN improves hearing in animals exposed to AAT.
[0034] Example 2
[0035] The purpose of this example is to demonstrate the effectiveness of NAC in treating hearing loss in an animal model. [0036] Six chinchillas per experimental group were administered either saline (control), 50,100, or 200 mg/kg of NAC via intraperitoneal (i.p.) injection at 4 hours post AAT exposure. Statistical analysis was performed using a two way ANOVA and Post hoc test, denotes a p < 0.05,
[0037] As depicted in Figure 3, NAC demonstrates a mild effect on threshold shift soon aft er treatment. However, at 21 days following AAT exposure, there is a significant decrease in threshold shift in animals receiving 100 mg/kg and 200 mg/kg of NAC. These results demonstrate that antioxidants, such as NAC, are effective in treating hearing loss associated with AAT.
[0038] Example 3
[0039] The purpose of this example is to demonstrate the effectiveness of 2,4-disulfonyl PBN in combination with NAC for treating hearing loss in an animal model
[0040] Figures 4A and 4B illustrate the synergistic effect of a combination treatment comprising NAC and 2,4-disulfonyl PBN. In this example, chinchillas were orally administered either control (10% sucrose) (n=6), HPN-07 (n=5) or HPN-07+NAC (n=3). Threshold was measured 21 days post AAT. Data in Figure 4 A represents the average threshold shift for each individual frequency tested. The data in Figure 4B represents the combined average threshold shift data from 2 kHz to 8 kHz. Data were analyzed via a two-way ANOVA, Bonferroni test "**" denotes a p value of less than 0.01 and "***" denotes a p value of less than 0.001.
[0041] Threshold shift s were found in the control group and treated groups at all frequencies with greater shifts in the high frequencies (2-8 kHz). See Figure 4A, As demonstrated in Figure 4A, treatment with HPN-07 alone resulted in a significant reduction in threshold shift at 0,5, 1, 4 and 6 kHz. The addition of NAC to the HPN-07 treatment composition resulted in a significant reduction in threshold shift across all frequencies tested, Furthermore, the combined data in Figure 4B demonstrates an overall significant reduction in threshold shift when subjects were administered either HPN-07 alone or in combination with NAC. Moreover, Figures 4A and 4B clearly demonstrates that administration of NAC in combination with HPN-07 provides a more robust decrease in threshold shift as compared to treatment with HPN-07 alone. Taken together, these results support the use of 2,4-disulfonyl PBN and NAC in a combination therapy for treating hearing loss.
[0042] Figure 5A-D depicts the effects of HPN-07+NAC on hearing loss (threshold shift) as a function of time in a rat model of AAT. Rats were randomly assigned to either treatment or control groups which consisted of 6 rats per time point (8h, 24h, 7d and 2 Id) post AAT. In order to induce AAT, rats were anesthetized with ketamine/xylazine and exposed for lh to 115 dB SPL one-octave band noise centered at 14 kHz, HPN-07 (300 mg kg) in combination with NAC (300 mg/kg) was administered via i.p. injection one hour aft er noise exposure and then administered twice a day on days 1 and 2 post AAT. Controls received the same volume of saline at the same time points. The Figure shows average ABR threshold shift s with error bars at each time point Data were analyzed via a two-way ANOVA, Bonferroni test, * p < 0,05, ** p < 0.01.
[0043] First, it should be noted that the hearing loss produced in the rat model was substantially greater than that observed in the chinchilla model (50-70 dB threshold shift compared to approximately 35 dB, respectively), As demonstrated in Figures 5 and 5B, the HPN-07+NAC combination treatment was successful in significantly reducing the threshold shift as early as 24 hours post AAT (23 hours following administration of treatment). Furthermore, HPN-07+NAC treatment resulted in significant reduction in threshold shift at all frequencies at 7 and 21 days post AAT. In light of the severity of the hearing loss demonstrated in the rat model, the results in Figures 5A-D demonstrate that the combination of 2,4-disulfonyi PBN with NAC is extremely effective in reducing permanent hearing loss,
[0044] In general it is expected that treatment of hearing loss resulting from AAT should begin as soon as possible. For treatment of ouier types of sensorineural hearing loss treatment using the methods and compositions described herein will vary depending on the cause of hearing loss. For example hearing loss due to age may require delivery of one of the above described compositions on a regular treatment schedule such daily, alternating days or weekly depending on the nature of the hearing loss. In cases relating to hearing loss resulting from toxins or radiation, treatment should begin as soon as possible and will likely conclude upon restoration of hearing.
[0045] The current disclosure demonstrates me effectiveness of 2,4-disulfonyl PBN in treating subjects subjected to AAT, In particular, the use of 2,4-disulfonyl PBN as a treatment for AAT has been shown to at least reduce hearing loss in subjects that have experienced AAT. In addition, the combination of 2,4-disulfonyl PBN with NAC produces a synergistic result and further reduces hearing loss,
[0046] As used herein, a "pharmaceutically effective amount" is an amount of a pharmaceutical compound or composition having a therapeutically relevant effect on hearing loss, A therapeutically relevant effect relates to some improvement in hearing capacity or a change in the cellular, physiological or biochemical parameters associated with any of the causes of sensorineural hearing loss including but not limited to age related hearing loss or presbyacusis, toxin-induced hearing loss, trauma induced hearing loss, viral or bacterial infection leading to hearing loss, hearing loss due to prematurity, hearing loss due to cochlear ischemia, congenital hearing loss, genetic hearing loss, Meniere's disease, sudden hearing loss, and hearing loss related to thyroid disorders or diabetes mellitus. 2,4-disulfonyl PBN and NAC may be administered in dosages which are pharmaceutically effective for each compound, or in dosages which are sub-clinical, i,e,, less than pharmaceutically effective for each, or a combination thereof, provided that the combined dosages are pharmaceutically effective.
[0047] Typically, a composition comprising 2,4-disulfonyl PBN with NAC will have two parts NAC for every part of 2,4-disulfonyl PBN, i.e. a ratio of 2:1, NAC to 2,4-disulfonyl PBN. Thus, the concentration of NAC used in the composition of NAC with 2,4-disulfonyl PBN will be substantially less than treatment of a patient with NAC alone. Based on the examples provided herein, the compositions may comprise between about 70 mg and about 1200 mg of
2,4-disulfonyl PBN and from about 700 mg and about 4000 mg of NAC. Furthermore, compositions comprising 2,4-disulfonyl PBN may be administered at a dose of between about 1 mg/kg to about 400 mg/kg body weight and more likely around 300 tag/kg body weight Compositions comprising NAC may be administered at a dose of between about 5 mg/kg to about 300 mg/kg body weight These ranges are based on the examples included herein and do not limit the range of pharmaceutically effective amounts for other organisms.
[0048] One skilled in the art from a reading of this disclosure will likely recognize related compounds which will also provide satisfactory results. Further, although the foregoing examples treated the test subjects four hours post AAT, treatments administered within shorter time periods should be as effective and will likely be preferred. In addition, treatments administered longer than 48 hour post AAT, stress or injury may also be effective. As such the foregoing disclosure is merely considered to be exemplary of the current invention with the true scope of the current invention being defined by the claims.

Claims

We claim: 1. A method for treating sensorineural hearing loss comprising:
deliverying to an organism which has experienced sensorineural hearing loss a pharmaceutically effective amount of a composition comprising 2,4-disulfonyl a-phenyl tertiary butyl nitrone.
2. The method of claim 1, wherein the step of delivering is carried out by a method selected from the group consisting of orally, intravenously, subcutaneousry, by inhalation, sublingually, subdermally or injection locally within the ear.
3. The method of claim 1, wherein said composition further comprises an anti-oxidant.
4. The method of claim 1, wherein said composition further comprises one or more compounds selected from the group consisting of N-acetylcysteine, Acetyl-L-Carnitine, glutathione monoethylestef, ebselen, D-methionine, carbamathione and Szeto-Schiller peptides and their functional analogs.
5. The method of claim 4, wherein said composition further comprises at least N- acerylcysteine.
6. The method of any of claims 1 to 5, wherein said composition is initially administered within four hours of an acute acoustic trauma event
7. The method of any of claims 1 to 5, wherein said composition is delivered at least two times within twenty-four hours of an acute acoustic trauma event.
8. The method of any of claims 1 to 5, wherein said composition comprises from about 1 mg/kg to about 400 mg/kg organism body weight of 2,4-disulfonyl α-phenyl tertiary butyl nitrone.
9. The method of claim 5, wherein said composition comprises from about 1 mg/kg to about 400 mg/kg organism body weight of 2,4-disulfonyl α-phenyl tertiary butyl nitrone and from about 5 mg/kg to about 300 mg/kg organism body weight of N-acetylcysteine.
10. A composition for treating sensorineural hearing loss comprising a pharmaceutically effective amount of 2,4-disidfonyl a-phenyl tertiary butyl nitrone.
11. The composition of claim 10, wherein said composition comprises from about 70 mg and about 1200 mg of 2,4-disulfonyl a-phenyl tertiary butyl nitrone.
1 2. The composition of claim 10, wherein said composition further comprises an antioxidant.
13. The composition of claim 1 2, wherein said anti-oxidant is a pharmaceutically effective amount of N-acetylcysteine.
14. The composition of claim 13, wherein said composition comprises from about 70 mg and about 1200 mg of 2,4-disulfonyl α-phenyl tertiary butyl nitrone and from about 700 mg and about 000 mg of N-acetylcysteine.
15. A composition for treating sensorineural hearing loss comprising a pharmaceutically effective amount of 2,4-disulfonyl α-phenyl tertiary butyl nitrone and a pharmaceutically effective amount of N-acetylcysteine,
16. The composition of claim 15, wherein said composition comprises from about 70 mg and about 1200 mg of 2,4-disulfonyl α-phenyl tertiary butyl nitrone and from about 700 mg and about 4000 mg of N-acetylcysteine.
17. The composition of claim 1 , wherein said composition further comprises from about 70 mg and about 1200 mg of Acetyl-L-Camitme,
18. A composition for treating sensorineural hearing loss comprising:
a first component comprising a pharmaceutically effective amount of 2,4-disulfonyl a- phenyl tertiary butyl nitrone; and
a second component comprising a pharmaceutically effective amount of one or more compounds selected from the group consisting of N-acetylcysteine, Acetyl-L-Carnitine, glutathione monoethylester, ebselen, D-methionine, carbamathione and Szeto-Schiller peptides and their functional analogs.
19. The composition of claim 18 wherein the second component is at least N-acetylcysteine.
20. A composition comprising 2,4-disulfonyl α-phenyl tertiary butyl nitrone and N- acetylcysteine, wherein the combination thereof is pharmaceutically effective for treating sensorineural hearing loss.
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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016131981A1 (en) * 2015-02-20 2016-08-25 Institut Pasteur Prevention and/or treatment of hearing loss or impairment
WO2019213245A1 (en) * 2018-05-03 2019-11-07 Hough Ear Institute Methods for reducing accumulated pathologic tau protein
EP3570826A4 (en) * 2017-01-19 2020-09-23 Otologic Pharmaceutics, Inc. Formulations of n-acetylcysteine and uses thereof
US11147248B2 (en) 2017-09-21 2021-10-19 Keio University Method for producing acoustic trauma deafness model animal, and acoustic trauma deafness model animal produced by the same
EP4309655A1 (en) * 2022-07-22 2024-01-24 Consejo Superior de Investigaciones Científicas (CSIC) Quinolylnitrone derivatives for use in the prevention and/or treatment of hearing loss

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20180256756A1 (en) * 2015-09-18 2018-09-13 Oklahoma Medical Research Foundation Method of transporting an agent across blood-brain, blood-cochlear or blood-cerebrospinal fluid barrier
TWI642431B (en) * 2016-10-28 2018-12-01 西德有機化學藥品股份有限公司 Method of treating sudden sensorineural hearing loss by n-acetylcysteine
US10576125B2 (en) * 2016-10-31 2020-03-03 Hough Ear Institute Methods for enhancing synaptogenesis and neuritogenesis
US20230157980A1 (en) * 2018-09-12 2023-05-25 Hough Ear Institute Methods for treating hearing loss incident to cochlear implant surgery
US11857551B1 (en) 2020-07-10 2024-01-02 Ting Therapeutics Llc Methods for the prevention and treatment of hearing loss

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5475032A (en) * 1993-12-23 1995-12-12 Oklahoma Medical Research Foundation 2,4-disulfonyl phenyl butyl nitrone, its salts, and their use as pharmaceuticals
US20020177558A1 (en) * 2000-04-21 2002-11-28 Meyerhoff James L. Method of treating, preventing or inhibiting central nervous system injuries and diseases
US20030191064A1 (en) * 2001-01-23 2003-10-09 Kopke Richard D. Methods for preventing and treating loss of balance function due to oxidative stress
US20040247570A1 (en) * 2002-01-17 2004-12-09 Miller Josef M. Auditory nerve protection and re-growth
US20050054646A1 (en) * 2003-06-09 2005-03-10 Pharmacia Corporation Compositions of a cyclooxygenase-2 selective inhibitor and an antioxidant agent for the treatment of central nervous system disorders
WO2007119578A1 (en) * 2006-03-29 2007-10-25 Kaneka Corporation Agent for improving nervous system cell functions
WO2008013866A2 (en) * 2006-07-25 2008-01-31 Hough Ear Institute Methods for treating acute acoustic trauma
US20080107641A1 (en) * 2006-08-29 2008-05-08 Genentech, Inc. Method of treating stroke with thrombolytic agent
US20080161406A1 (en) * 2000-05-23 2008-07-03 Mats Andersson Novel formulations of alpha-2,4-disulfophenyl-N-tert-butylnitrone
US20090306225A1 (en) * 2008-04-21 2009-12-10 Otonomy, Inc. Auris formulations for treating otic diseases and conditions

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6177434B1 (en) * 1997-12-16 2001-01-23 The United States Of America As Represented By The Secretary Of The Navy Prevention or reversal of sensorineural hearing loss (SNHL) through biologic mechanisms
US6649621B2 (en) * 1997-12-16 2003-11-18 The United States Of America As Represented By The Secretary Of The Navy Prevention or reversal of sensorineural hearing loss (SNHL) through biologic mechanisms
US20050182060A1 (en) 2004-02-13 2005-08-18 Kelly Michael G. 2-Substituted and 4-substituted aryl nitrone compounds
US20100234402A1 (en) * 2007-05-31 2010-09-16 Gideon Dreyfuss Methods and compositions for treating spinal muscular atrophy
CN103930603A (en) 2011-09-06 2014-07-16 西南纳米技术公司 Single wall carbon nanotube purification process and improved single wall carbon nanotubes

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5475032A (en) * 1993-12-23 1995-12-12 Oklahoma Medical Research Foundation 2,4-disulfonyl phenyl butyl nitrone, its salts, and their use as pharmaceuticals
US20020177558A1 (en) * 2000-04-21 2002-11-28 Meyerhoff James L. Method of treating, preventing or inhibiting central nervous system injuries and diseases
US20080161406A1 (en) * 2000-05-23 2008-07-03 Mats Andersson Novel formulations of alpha-2,4-disulfophenyl-N-tert-butylnitrone
US20030191064A1 (en) * 2001-01-23 2003-10-09 Kopke Richard D. Methods for preventing and treating loss of balance function due to oxidative stress
US20040247570A1 (en) * 2002-01-17 2004-12-09 Miller Josef M. Auditory nerve protection and re-growth
US20050054646A1 (en) * 2003-06-09 2005-03-10 Pharmacia Corporation Compositions of a cyclooxygenase-2 selective inhibitor and an antioxidant agent for the treatment of central nervous system disorders
WO2007119578A1 (en) * 2006-03-29 2007-10-25 Kaneka Corporation Agent for improving nervous system cell functions
WO2008013866A2 (en) * 2006-07-25 2008-01-31 Hough Ear Institute Methods for treating acute acoustic trauma
US20080107641A1 (en) * 2006-08-29 2008-05-08 Genentech, Inc. Method of treating stroke with thrombolytic agent
US20090306225A1 (en) * 2008-04-21 2009-12-10 Otonomy, Inc. Auris formulations for treating otic diseases and conditions

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP2470015A4 *

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016131981A1 (en) * 2015-02-20 2016-08-25 Institut Pasteur Prevention and/or treatment of hearing loss or impairment
US10751385B2 (en) 2015-02-20 2020-08-25 Institut Pasteur Prevention and/or treatment of hearing loss or impairment
US11679140B2 (en) 2015-02-20 2023-06-20 Institut Pasteur Prevention and/or treatment of hearing loss or impairment
EP3570826A4 (en) * 2017-01-19 2020-09-23 Otologic Pharmaceutics, Inc. Formulations of n-acetylcysteine and uses thereof
US11020354B2 (en) 2017-01-19 2021-06-01 Otologic Pharmaceuticals, Inc. Formulations of n-acetylcysteine and uses thereof
US11147248B2 (en) 2017-09-21 2021-10-19 Keio University Method for producing acoustic trauma deafness model animal, and acoustic trauma deafness model animal produced by the same
WO2019213245A1 (en) * 2018-05-03 2019-11-07 Hough Ear Institute Methods for reducing accumulated pathologic tau protein
EP4309655A1 (en) * 2022-07-22 2024-01-24 Consejo Superior de Investigaciones Científicas (CSIC) Quinolylnitrone derivatives for use in the prevention and/or treatment of hearing loss
WO2024018073A1 (en) * 2022-07-22 2024-01-25 Consejo Superior De Investigaciones Científicas (Csic) Quinolylnitrone derivatives for use in the prevention and/or treatment of hearing loss

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