US20040133099A1 - Otologic nanotechnology - Google Patents

Otologic nanotechnology Download PDF

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US20040133099A1
US20040133099A1 US10/740,110 US74011003A US2004133099A1 US 20040133099 A1 US20040133099 A1 US 20040133099A1 US 74011003 A US74011003 A US 74011003A US 2004133099 A1 US2004133099 A1 US 2004133099A1
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membrane
otologic
human ear
nanoparticle
ear
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US10/740,110
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R. Dyer
Jack Hough
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Hough Ear Institute
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Assigned to HOUGH EAR INSTITUTE reassignment HOUGH EAR INSTITUTE ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: DYER JR., R. KENT, HOUGH, JACK V.D.
Publication of US20040133099A1 publication Critical patent/US20040133099A1/en
Priority to US12/148,738 priority patent/US8303990B2/en
Priority to US14/533,759 priority patent/USRE46373E1/en
Priority to US15/494,201 priority patent/USRE47849E1/en
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K41/00Medicinal preparations obtained by treating materials with wave energy or particle radiation ; Therapies using these preparations
    • 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
    • A61K9/0046Ear
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/5094Microcapsules containing magnetic carrier material, e.g. ferrite for drug targeting
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/51Nanocapsules; Nanoparticles
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61NELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
    • A61N2/00Magnetotherapy
    • A61N2/002Magnetotherapy in combination with another treatment
    • 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
    • A61NELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
    • A61N2/00Magnetotherapy
    • A61N2/06Magnetotherapy using magnetic fields produced by permanent magnets

Definitions

  • This invention relates generally to applications of nanotechnology to the human ear. These applications of otologic nanotechnology can be for diagnostic, therapeutic or other purposes.
  • Nanotechnology involves the application of molecular particles, referred to as nanoparticles, such as ones approximately the size of 10 hydrogen atoms.
  • nanoparticles typically have at least one dimension measured in nanometers (for example, from about one to 100 nanometers).
  • Otologic nanotechnology involves the use of nanoparticles in applications pertaining specifically to the human ear.
  • the middle ear and the inner ear are small, in the middle of the head and surrounded by bone. These characteristics make it difficult to access the middle and inner ears such as when needed to address issues of hearing loss, ear infections and growths such as tumors (malignant and non-malignant), and structural problems such as ossicular damage, for example.
  • the outer ear separated from the middle ear by the tympanic membrane, is more readily accessible.
  • the present invention meets the aforementioned need by providing novel and improved applications of nanotechnology in the field of otology, which applications provide techniques for accessing, diagnosing and treating the human ear.
  • a method of diagnosing or treating a human ear includes transporting a conjugated nanoparticle or a magnetically responsive nanoparticle into a middle or inner ear of a human.
  • Otologic nanophoresis comprises electrically, magnetically or electromagnetically driving a nanoparticle through a membrane of a human ear, including a tympanic membrane, a round window membrane, an oval window membrane, or a circulatory membrane.
  • An otologic diagnostic device includes a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, and metabolically active substances; an otologic therapeutic device includes the same categories of substances as well as chemotherapeutic drugs.
  • Another otologic composition includes a nanoparticle conjugated with a substance perceptible to magnetic resonance imaging.
  • FIG. 1 is a schematic drawing of a human ear having a catheter in a jugular vein for delivering nanoparticles to inner ear circulation.
  • FIG. 2 is a schematic drawing of a human ear having a Eustachian tube catheter passed into the middle ear via the nasopharynx for delivering nanoparticles.
  • FIG. 3 is a schematic drawing of a human ear in which a syringe needle is inserted through the tympanic member for intratympanic delivery of nanoparticles.
  • FIG. 4 is a schematic drawing of a human ear having nanoparticles distributed throughout the cochlea in response to a magnetic field from an external magnet.
  • FIG. 5 is a schematic drawing of a human ear having a catheter placed through the tympanic membrane into the middle ear adjacent the round window membrane for delivering nanoparticles to the inner ear.
  • FIG. 6 is a schematic drawing of a human ear in which a homograft femur ossicular transplant has been implanted between the stapes and malleus and coated with magnetically responsive nanoparticles.
  • nanoparticles relevant to the present invention include:
  • Uncharged hydrophilic polymers e.g., polyethyleneglycol, or PEG
  • Dendrimers branched macro molecules less than five nanometers in diameter which have drug carrying capacity; these have been used in cancer therapy for delivery of Cisplatin and Methotrexate
  • MTCs Magnetic targeted carriers
  • Conjugated nanoparticles are nanoparticles combined with another substance.
  • MTCs have an activated carbon shell which can serve as a carrier or vehicle for delivery of specific pharmaceutical agents.
  • steroids e.g., dexamethasone or methyl prednisolone
  • Other pharmaceutical agents to conjugate with nanoparticles for otologic nanotechnology include, but are not limited to, those described throughout this specification. Conjugation of these substances to nanoparticles is accomplished in suitable manner known in the art to establish suitable coupling, such as chemical bonding, of the materials.
  • the schematically illustrated ear includes an outer ear 2 , a middle ear 4 , and an inner ear 6 .
  • the outer ear 2 has an outer ear canal 8 which is normally closed at its inner end by tympanic membrane, or eardrum, 10 .
  • an ossicular chain which if intact extends from tympanic membrane 10 to oval window 12 defining an entrance to the inner ear 6 .
  • the intact ossicular chain extends through the middle ear 4 and includes a malleus 14 , an incus 16 , and a stapes 18 .
  • a properly functioning ossicular chain transmits vibrations from the tympanic membrane 10 in series through the malleus 14 , the incus 16 and the stapes 18 to the oval window 12 . Vibrations at the oval window 12 stimulate the inner ear 6 whereby the person perceives the sound received in the outer ear 2 .
  • Also marked in the drawings are round window membrane 20 and cochlea 22 .
  • FIG. 1 illustrates a catheter 28 passed through the nasopharynx and into Eustachian tube 30 .
  • Such catheters and their manipulation/use are as known in the art. See FIG. 4 for a representation of an externally applied magnetic field.
  • FIG. 3 schematically illustrates a one cubic centimeter tuberculin syringe 32 attached to a 27-gauge spinal needle 34 inserted into the tympanic membrane for intratympanic delivery of nanoparticles. Delivery from the middle ear to the inner ear, across the round window membrane, is promoted by an externally placed magnetic field in the ear canal which drives the MTCs across the round window membrane into the inner ear fluids (see FIG.
  • the magnet 36 can be implemented magnetically or electromagnetically, and another example is to implement the driving force by an electrical differential, any of which is located relative to the patient's ear or head as appropriate to obtain the desired direction(s) of nanoparticle movement).
  • the present invention provides otologic nanophoresis whereby a (i.e., one or more)) nanoparticle is driven through a membrane of a human ear.
  • the membrane can include a tympanic membrane of the human ear, a round window membrane of the human ear, an oval window membrane of the human ear, or a circulatory membrane in the human ear.
  • the driving occurs electrically, electromagnetically, or magnetically.
  • a micro-catheter such as the intra EAR round window catheter (RW mc-cathTM).
  • RW mc-cathTM intra EAR round window catheter
  • FIG. 5 such a catheter 42 is introduced (such as via a tympanotomy directly or endoscopically) into the middle ear from the ear canal and the distal tip of the catheter 42 is placed immediately adjacent to the round window membrane 20 . Fluid containing nanoparticles is then passed into the catheter 42 and this material is brought into intimate association with the round window membrane facilitating diffusion of nanoparticle carriers into the inner ear.
  • These micro-catheters allow continual controlled pharmaceutical delivery to the round window membrane of the middle ear and can remain in place for up to twenty-nine days (according to one micro-catheter use protocol).
  • Transport of nanoparticles across membranes such as the round window membrane may be facilitated by several mechanisms. For example: lipophilic polymers which pass easily across membranes are conjugated with the nanoparticles; combination with hyaluronidase increases membrane permeability; conjugation with magnetic carriers which respond to externally directed magnetic fields, thereby driving nanoparticles across the membrane by magnetic/electromagnetic attraction or repulsion.
  • Nanoparticles coupled with chemical or biological substances when introduced into an ear, can be used to label middle ear substances for diagnostic investigation.
  • Examples of an otologic marker comprising a nanoparticle are as follows:
  • CSF cerebrospinal fluid
  • a serologic assay for CSF has been developed, which assay is specific for beta 2 transferrin. Beta 2 transferrin is present in spinal fluid and is not found in other fluids within the body. An otologic nanoparticle which specifically binds to beta 2 transferrin is used to detect this. That is, uptake of this marker in the middle ear suggests the presence of spinal fluid.
  • Another example of labeling includes binding to nanoparticles biologically active materials that are preferentially absorbed by diseased middle ear tissues (e.g., for early diagnosis of neoplasm, cholesteatoma, or other pathological processes before they can be detected by conventional scanning techniques presently available).
  • bio-integration is used for labeling specific cellular elements that are unique to that particular disease process.
  • the process of bio-integration involves incorporation of nanoparticles within the cell membrane of tissues under investigation or uptake into the cell cytoplasm. Certain protein and lipid nanoparticles may be then taken into the cell nucleus to become incorporated into the DNA structure of the cell.
  • tumor cells with rapid mitotic activity may specifically bind nanoparticles which have been conjugated to proteins needed for cellular differentiation and division.
  • a nanoparticle which is selectively absorbed by tumor cells, and which is conjugated with the contrast medium gadolinium perceptible to magnetic resonance imaging (MRI), increases the sensitivity of MRI for detecting a neoplastic process within the temporal bone.
  • Two methods of such labeling are the following. The first involves binding of gadolinium to an activated carbon molecule on the nanoparticle carrier. A second method of labeling involves using an antibody (a protein) which binds gadolinium to a nanoparticle.
  • the present invention also provides an otologic composition
  • an otologic composition comprising a nanoparticle conjugated with protein that binds with pathological tissue in a human ear.
  • This can further comprise a therapeutic substance conjugated with the nanoparticle for treating pathological tissue to which the protein binds.
  • Nanoparticles can be conjugated with chemotherapeutic drugs or metabolically active substances which selectively bind to pathological tissues to promote healing, retard tumor growth (malignant or non-malignant), or resolve chronic inflammation or infection in the middle ear (including a combination of the foregoing).
  • chemotherapeutic drugs or metabolically active substances which selectively bind to pathological tissues to promote healing, retard tumor growth (malignant or non-malignant), or resolve chronic inflammation or infection in the middle ear (including a combination of the foregoing).
  • An otologic growth composition comprises a nanoparticle conjugated with a growth factor or a growth hormone.
  • nanoparticles bound to growth factors are applied to tympanic membrane perforations to promote healing of the perforation.
  • Growth factors which promote angiogenesis can be delivered either topically or via the circulation. The binding of these factors to the target is facilitated by nanoparticles which are designed to adhere to breaks in the epithelial surface of the tympanic membrane.
  • Nanoparticles which bind to fibrin exudate for example, tend to preferentially attach to surfaces which are in the process of healing, such as a tympanic membrane perforation.
  • magnetically charged nanoparticles conjugated with growth factors are concentrated in the region of the tympanic membrane or middle ear or inner ear by an externally applied magnetic field which is introduced into the ear canal.
  • Nanoparticles bound to growth factors are applied directly to the ossicular chain to promote osteogenesis in patients with specific ossicular pathology (e.g., incus necrosis).
  • Growth factors attached to the ossicular chain stimulate ingrowth of new blood vessels as well as osteocytes. This process involves stimulation of fibrous tissue as well as the possibility of new bone formation to promote healing of fractures of the ossicular chain.
  • Growth factors also stimulate ingrowth of mucosa around a homograft, autograft or ossicle replacement prosthesis in order to promote bio-integration of the prosthesis into the middle ear and reduce the possibility of foreign body reaction.
  • homograft femur for creating ossicular replacement prostheses has been used for many years.
  • These homograft ossicles when placed into the middle ear of individuals with conductive or mixed hearing loss to reconstruct the ossicular chain, frequently become bio-integrated.
  • New osteocytes are often seen and these homografts are usually covered by living mucosa when they are examined at a later date.
  • nanoparticles are used to provide factors necessary for enhancing mucosalization and in-growth of new osteocytes into homograft ossicles, thereby facilitating bio-integration.
  • Chemotherapeutic agents e.g., Methotrexate
  • Conjugated nanoparticles bound to antibiotics are directed against inflammatory tissues in the middle ear and mastoid by combining these antibiotics with lipophilic polymers which are able to penetrate cell wall membranes. Concentration of antibiotics inside the middle ear and mastoid cavity are enhanced by using magnetically targeted carriers with an attached antibiotic that are directed to the ear by an externally placed magnetic or electromagnetic field.
  • a third mechanism to enhance delivery of drugs to areas of infection within the ear uses the process of phagocytosis of polymers by inflammatory cells such as macrophages. In the process of phagocytosis, the macrophage literally engulfs the lipophilic carrier with attached antibiotic enhancing delivery of the antibiotic inside the macrophage where killing of bacteria normally occurs.
  • Nanoparticles bound to steroid preparations or other metabolically active agents are diffused across the round or oval window membranes (including across both) into the inner ear. Another way to deliver them is via the circulation. These are used for treatment of various conditions that alter inner ear physiologic function, such as Meniere's disease or autoimmune inner ear disturbances, for example.
  • the oval window membrane is permeable to various metabolically active substances such as lipophilic polymers, dendrimers, uncharged hydrophilic polymers, and MTCs which all act to increase membrane permeability. This increases diffusion of pharmaceutical agents across the membrane barrier.
  • Nanoparticle carriers by improving round window membrane transport, provide delivery of drugs intended to be in a more consistent and reliable fashion than is presently possible into the inner ear.
  • the issue of round window membrane transport is particularly applicable in the treatment of Meniere's disease.
  • Gentamycin which is a selectively ototoxic antibiotic acting primarily on the vestibular system, can be administered transtympanically for delivery to the inner ear in patients with Meniere's disease.
  • the absorption of Gentamycin across the round window membrane is extremely variable between patients. Therefore, it is difficult to establish the optimal dose of Gentamycin delivery in treatment of Meniere's.
  • a nanoparticle carrier for Gentamycin provides delivery of the drug to the inner ear.
  • Damage to cochlear and vestibular neuro-elements related to external assaults such as viral or bacterial infection, ototoxic drugs (e.g., Cisplatin/aminoglycoside antibiotics) and acoustic trauma may be either prevented or repaired via the introduction of conjugated nanoparticles into the inner ear.
  • Conjugated nanoparticles deliver substances which either promote hair cell regeneration or make neuro-elements within the labyrinth resistant to toxins or acoustic trauma.
  • Certain chemicals, such as free radical scavengers and antioxidants have been found in animal models to protect the inner ear from sensorineural hearing loss if applied prior to noise exposure.
  • the present invention provides a protective composition for cochlear and vestibular neuroelements, comprising a nanoparticle conjugated with at least one of an antioxidant and a free radical scavenger.
  • FIG. 1 Another therapeutic application of nanoparticles involves transmission of vibrational energy into the inner ear across the ossicular chain or directly across the round window or oval window membrane itself.
  • the magnetically responsive material can be physiologically attached to its target tissue within the ear.
  • homograft or autograft tissues are coated with magnetically active nanoparticles, thereby making the ossicular chain with which they are grafted magnetically responsive.
  • FIG. 6 schematically illustrates a homograft femur ossicular transplant 44 that has been coated with magnetically responsive nanoparticles and inserted between the stapes and malleus in a patient with incus necrosis.
  • magnétiqueally active nanoparticles Another application of magnetically active nanoparticles is the coating of a middle ear prosthesis with them, which when implanted into the middle ear makes the ossicular chain magnetically active; this prosthesis may be composed of synthetic materials such as hydroxyapatite, titanium, gold, or polyethylene.
  • This middle ear vibratory examples allow the ossicular chain to vibrate in response to an externally applied magnetic or electromagnetic field, providing improved hearing for individuals with mixed, conductive, and sensorineural hearing loss.
  • the present invention also provides an otologic diagnostic device and an otologic therapeutic device, each respectively comprising a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, and metabolically active substances.
  • the conjugated material for the therapeutic device can also include chemotherapeutic drugs.

Abstract

Diagnosing or treating a human ear includes transporting a conjugated nanoparticle or a magnetically responsive nanoparticle into a human's middle or inner ear. Otologic nanophoresis includes electrically, magnetically or electromagnetically driving a nanoparticle through a membrane of the ear, including a tympanic membrane, a round window membrane, an oval window membrane, or a circulatory membrane. An otologic diagnostic device includes a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, and metabolically active substances; an otologic therapeutic device includes the same categories of substances and chemotherapeutic drugs. Another otologic composition includes a nanoparticle conjugated with a substance perceptible to magnetic resonance imaging.

Description

    CROSS-REFERENCE TO RELATED APPLICATION
  • This application claims the benefit of U.S. Provisional Application No. 60/434,480 entitled OTOLOGIC NANOTECHNOLOGY filed on Dec. 18, 2002.[0001]
  • BACKGROUND OF THE INVENTION
  • This invention relates generally to applications of nanotechnology to the human ear. These applications of otologic nanotechnology can be for diagnostic, therapeutic or other purposes. [0002]
  • Nanotechnology involves the application of molecular particles, referred to as nanoparticles, such as ones approximately the size of 10 hydrogen atoms. In general, nanoparticles typically have at least one dimension measured in nanometers (for example, from about one to 100 nanometers). Otologic nanotechnology involves the use of nanoparticles in applications pertaining specifically to the human ear. [0003]
  • Diagnosing and treating problems in the human ear can be difficult. The middle ear and the inner ear are small, in the middle of the head and surrounded by bone. These characteristics make it difficult to access the middle and inner ears such as when needed to address issues of hearing loss, ear infections and growths such as tumors (malignant and non-malignant), and structural problems such as ossicular damage, for example. The outer ear, separated from the middle ear by the tympanic membrane, is more readily accessible. [0004]
  • In view of the foregoing, there is the need for improved techniques for accessing, diagnosing and treating the human ear. [0005]
  • SUMMARY OF THE INVENTION
  • The present invention meets the aforementioned need by providing novel and improved applications of nanotechnology in the field of otology, which applications provide techniques for accessing, diagnosing and treating the human ear. [0006]
  • The present invention more particularly provides the following. A method of diagnosing or treating a human ear includes transporting a conjugated nanoparticle or a magnetically responsive nanoparticle into a middle or inner ear of a human. Otologic nanophoresis comprises electrically, magnetically or electromagnetically driving a nanoparticle through a membrane of a human ear, including a tympanic membrane, a round window membrane, an oval window membrane, or a circulatory membrane. An otologic diagnostic device includes a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, and metabolically active substances; an otologic therapeutic device includes the same categories of substances as well as chemotherapeutic drugs. Another otologic composition includes a nanoparticle conjugated with a substance perceptible to magnetic resonance imaging. [0007]
  • Therefore, from the foregoing, it is a general object of the present invention to provide novel and improved applications of nanotechnology in the field of otology useful for accessing, diagnosing and treating the human ear. Other and further objects, features and advantages of the present invention will be readily apparent to those skilled in the art when the following description of the preferred embodiments is read in conjunction with the accompanying drawings. [0008]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a schematic drawing of a human ear having a catheter in a jugular vein for delivering nanoparticles to inner ear circulation. [0009]
  • FIG. 2 is a schematic drawing of a human ear having a Eustachian tube catheter passed into the middle ear via the nasopharynx for delivering nanoparticles. [0010]
  • FIG. 3 is a schematic drawing of a human ear in which a syringe needle is inserted through the tympanic member for intratympanic delivery of nanoparticles. [0011]
  • FIG. 4 is a schematic drawing of a human ear having nanoparticles distributed throughout the cochlea in response to a magnetic field from an external magnet. [0012]
  • FIG. 5 is a schematic drawing of a human ear having a catheter placed through the tympanic membrane into the middle ear adjacent the round window membrane for delivering nanoparticles to the inner ear. [0013]
  • FIG. 6 is a schematic drawing of a human ear in which a homograft femur ossicular transplant has been implanted between the stapes and malleus and coated with magnetically responsive nanoparticles.[0014]
  • DETAILED DESCRIPTION OF THE INVENTION
  • Examples of nanoparticles relevant to the present invention include: [0015]
  • 1) Water soluble polymers [0016]
  • 2) Uncharged hydrophilic polymers (e.g., polyethyleneglycol, or PEG) [0017]
  • 3) Micelles composed of copolymers with hydrophilic shells and amino acid cores [0018]
  • 4) Dendrimers (branched macro molecules less than five nanometers in diameter which have drug carrying capacity; these have been used in cancer therapy for delivery of Cisplatin and Methotrexate) [0019]
  • 5) Magnetic targeted carriers (MTCs) (nanoparticles composed of metallic iron and activated carbon prepared by a high energy milling process). [0020]
  • Broader aspects of the present invention are not limited to the foregoing. [0021]
  • Conjugated nanoparticles are nanoparticles combined with another substance. For example, MTCs have an activated carbon shell which can serve as a carrier or vehicle for delivery of specific pharmaceutical agents. For example, steroids (e.g., dexamethasone or methyl prednisolone) can be attached to the activated carbon molecule for delivery into the inner ear in response to an externally applied magnetic field. Other pharmaceutical agents to conjugate with nanoparticles for otologic nanotechnology include, but are not limited to, those described throughout this specification. Conjugation of these substances to nanoparticles is accomplished in suitable manner known in the art to establish suitable coupling, such as chemical bonding, of the materials. [0022]
  • Delivery of conjugated nanoparticles to the ear may occur via the circulatory system, across the tympanic membrane, through the eustachian tube, or with direct middle ear application via tympanotomy exposure. Following are examples, some of which refer to the drawings in which a human ear is represented. The schematically illustrated ear includes an [0023] outer ear 2, a middle ear 4, and an inner ear 6. The outer ear 2 has an outer ear canal 8 which is normally closed at its inner end by tympanic membrane, or eardrum, 10. Also pertinent is an ossicular chain, which if intact extends from tympanic membrane 10 to oval window 12 defining an entrance to the inner ear 6. The intact ossicular chain extends through the middle ear 4 and includes a malleus 14, an incus 16, and a stapes 18. A properly functioning ossicular chain transmits vibrations from the tympanic membrane 10 in series through the malleus 14, the incus 16 and the stapes 18 to the oval window 12. Vibrations at the oval window 12 stimulate the inner ear 6 whereby the person perceives the sound received in the outer ear 2. Also marked in the drawings are round window membrane 20 and cochlea 22.
  • Delivery of nanoparticles via the circulation is guided by an external magnetic field if MTCs or other magnetic nanoparticles are used as a carrier. For example, a catheter is placed into the circulatory system near the inner ear target and magnetically active particles are carried through the catheter and into the inner ear in response to an externally placed magnetic or electromagnetic field. Referring to FIG. 1, such nanoparticles are illustrated to be delivered via a [0024] catheter 24 inserted in a jugular vein 26. Catheterization through the Eustachian tube is another delivery technique. For example, FIG. 2 illustrates a catheter 28 passed through the nasopharynx and into Eustachian tube 30. Such catheters and their manipulation/use are as known in the art. See FIG. 4 for a representation of an externally applied magnetic field.
  • Middle ear delivery of conjugated magnetically/electromagnetically responsive nanoparticles is facilitated by, for example, a transtympanic injection of MTCs into the middle ear (such as via the tympanic membrane using a tympanotomy approach). FIG. 3 schematically illustrates a one cubic [0025] centimeter tuberculin syringe 32 attached to a 27-gauge spinal needle 34 inserted into the tympanic membrane for intratympanic delivery of nanoparticles. Delivery from the middle ear to the inner ear, across the round window membrane, is promoted by an externally placed magnetic field in the ear canal which drives the MTCs across the round window membrane into the inner ear fluids (see FIG. 4 representing an external magnet 36 providing a magnetic field 38 that attracts magnetically responsive nanoparticles 40 for distribution throughout the cochlea 22; the magnet 36 can be implemented magnetically or electromagnetically, and another example is to implement the driving force by an electrical differential, any of which is located relative to the patient's ear or head as appropriate to obtain the desired direction(s) of nanoparticle movement). Thus, the present invention provides otologic nanophoresis whereby a (i.e., one or more)) nanoparticle is driven through a membrane of a human ear. The membrane can include a tympanic membrane of the human ear, a round window membrane of the human ear, an oval window membrane of the human ear, or a circulatory membrane in the human ear. The driving occurs electrically, electromagnetically, or magnetically.
  • Another method of otologic delivery of nanoparticles, which need not be magnetic, involves the use of a micro-catheter, such as the intra EAR round window catheter (RW mc-cath™). Referring to FIG. 5, such a [0026] catheter 42 is introduced (such as via a tympanotomy directly or endoscopically) into the middle ear from the ear canal and the distal tip of the catheter 42 is placed immediately adjacent to the round window membrane 20. Fluid containing nanoparticles is then passed into the catheter 42 and this material is brought into intimate association with the round window membrane facilitating diffusion of nanoparticle carriers into the inner ear. These micro-catheters allow continual controlled pharmaceutical delivery to the round window membrane of the middle ear and can remain in place for up to twenty-nine days (according to one micro-catheter use protocol).
  • Transport of nanoparticles across membranes such as the round window membrane may be facilitated by several mechanisms. For example: lipophilic polymers which pass easily across membranes are conjugated with the nanoparticles; combination with hyaluronidase increases membrane permeability; conjugation with magnetic carriers which respond to externally directed magnetic fields, thereby driving nanoparticles across the membrane by magnetic/electromagnetic attraction or repulsion. [0027]
  • Specific conjugated nanoparticles to be delivered by any suitable one or more of the foregoing techniques have coupled chemical or biological substances (the word “or” including both) that are to be used in the ear regions to which they are delivered. Following are examples. [0028]
  • Nanoparticles coupled with chemical or biological substances, when introduced into an ear, can be used to label middle ear substances for diagnostic investigation. Examples of an otologic marker comprising a nanoparticle are as follows: [0029]
  • Occasionally patients who have skull base fractures related to head trauma will develop leakage of cerebrospinal fluid (CSF) into the middle ear, which ultimately drains out of the ear canal or out the eustachian tube into the nose. A way of definitively diagnosing CSF in the middle ear would be very helpful. A serologic assay for CSF has been developed, which assay is specific for [0030] beta 2 transferrin. Beta 2 transferrin is present in spinal fluid and is not found in other fluids within the body. An otologic nanoparticle which specifically binds to beta 2 transferrin is used to detect this. That is, uptake of this marker in the middle ear suggests the presence of spinal fluid.
  • Another example of labeling includes binding to nanoparticles biologically active materials that are preferentially absorbed by diseased middle ear tissues (e.g., for early diagnosis of neoplasm, cholesteatoma, or other pathological processes before they can be detected by conventional scanning techniques presently available). For example, bio-integration is used for labeling specific cellular elements that are unique to that particular disease process. The process of bio-integration involves incorporation of nanoparticles within the cell membrane of tissues under investigation or uptake into the cell cytoplasm. Certain protein and lipid nanoparticles may be then taken into the cell nucleus to become incorporated into the DNA structure of the cell. For example, tumor cells with rapid mitotic activity may specifically bind nanoparticles which have been conjugated to proteins needed for cellular differentiation and division. A nanoparticle which is selectively absorbed by tumor cells, and which is conjugated with the contrast medium gadolinium perceptible to magnetic resonance imaging (MRI), increases the sensitivity of MRI for detecting a neoplastic process within the temporal bone. Two methods of such labeling are the following. The first involves binding of gadolinium to an activated carbon molecule on the nanoparticle carrier. A second method of labeling involves using an antibody (a protein) which binds gadolinium to a nanoparticle. Thus, the present invention also provides an otologic composition comprising a nanoparticle conjugated with protein that binds with pathological tissue in a human ear. This can further comprise a therapeutic substance conjugated with the nanoparticle for treating pathological tissue to which the protein binds. [0031]
  • Other therapeutic applications of nanoparticles in the middle ear and inner ear include the following examples. [0032]
  • Nanoparticles can be conjugated with chemotherapeutic drugs or metabolically active substances which selectively bind to pathological tissues to promote healing, retard tumor growth (malignant or non-malignant), or resolve chronic inflammation or infection in the middle ear (including a combination of the foregoing). For example: [0033]
  • An otologic growth composition comprises a nanoparticle conjugated with a growth factor or a growth hormone. As an example, nanoparticles bound to growth factors are applied to tympanic membrane perforations to promote healing of the perforation. Growth factors which promote angiogenesis can be delivered either topically or via the circulation. The binding of these factors to the target is facilitated by nanoparticles which are designed to adhere to breaks in the epithelial surface of the tympanic membrane. Nanoparticles which bind to fibrin exudate, for example, tend to preferentially attach to surfaces which are in the process of healing, such as a tympanic membrane perforation. As another example, magnetically charged nanoparticles conjugated with growth factors are concentrated in the region of the tympanic membrane or middle ear or inner ear by an externally applied magnetic field which is introduced into the ear canal. [0034]
  • Nanoparticles bound to growth factors are applied directly to the ossicular chain to promote osteogenesis in patients with specific ossicular pathology (e.g., incus necrosis). Growth factors attached to the ossicular chain stimulate ingrowth of new blood vessels as well as osteocytes. This process involves stimulation of fibrous tissue as well as the possibility of new bone formation to promote healing of fractures of the ossicular chain. Growth factors also stimulate ingrowth of mucosa around a homograft, autograft or ossicle replacement prosthesis in order to promote bio-integration of the prosthesis into the middle ear and reduce the possibility of foreign body reaction. For example, homograft femur for creating ossicular replacement prostheses has been used for many years. These homograft ossicles, when placed into the middle ear of individuals with conductive or mixed hearing loss to reconstruct the ossicular chain, frequently become bio-integrated. New osteocytes are often seen and these homografts are usually covered by living mucosa when they are examined at a later date. In accordance with the present invention, nanoparticles are used to provide factors necessary for enhancing mucosalization and in-growth of new osteocytes into homograft ossicles, thereby facilitating bio-integration. [0035]
  • Chemotherapeutic agents (e.g., Methotrexate) are concentrated within the tumor by binding to dendrimers or other lipophilic polymers which leak out of permeable vascular channels within tumor tissues, preferentially concentrating the drug within the tumor itself and thereby retarding tumor growth. [0036]
  • Conjugated nanoparticles bound to antibiotics are directed against inflammatory tissues in the middle ear and mastoid by combining these antibiotics with lipophilic polymers which are able to penetrate cell wall membranes. Concentration of antibiotics inside the middle ear and mastoid cavity are enhanced by using magnetically targeted carriers with an attached antibiotic that are directed to the ear by an externally placed magnetic or electromagnetic field. A third mechanism to enhance delivery of drugs to areas of infection within the ear uses the process of phagocytosis of polymers by inflammatory cells such as macrophages. In the process of phagocytosis, the macrophage literally engulfs the lipophilic carrier with attached antibiotic enhancing delivery of the antibiotic inside the macrophage where killing of bacteria normally occurs. [0037]
  • Nanoparticles bound to steroid preparations or other metabolically active agents are diffused across the round or oval window membranes (including across both) into the inner ear. Another way to deliver them is via the circulation. These are used for treatment of various conditions that alter inner ear physiologic function, such as Meniere's disease or autoimmune inner ear disturbances, for example. The oval window membrane is permeable to various metabolically active substances such as lipophilic polymers, dendrimers, uncharged hydrophilic polymers, and MTCs which all act to increase membrane permeability. This increases diffusion of pharmaceutical agents across the membrane barrier. [0038]
  • A major problem encountered with transtympanic administration of drugs to the inner ear relates to inconsistent absorption of the substances across the round window membrane. Nanoparticle carriers, by improving round window membrane transport, provide delivery of drugs intended to be in a more consistent and reliable fashion than is presently possible into the inner ear. The issue of round window membrane transport is particularly applicable in the treatment of Meniere's disease. Gentamycin, which is a selectively ototoxic antibiotic acting primarily on the vestibular system, can be administered transtympanically for delivery to the inner ear in patients with Meniere's disease. However, the absorption of Gentamycin across the round window membrane is extremely variable between patients. Therefore, it is difficult to establish the optimal dose of Gentamycin delivery in treatment of Meniere's. Preferably a nanoparticle carrier for Gentamycin provides delivery of the drug to the inner ear. [0039]
  • Damage to cochlear and vestibular neuro-elements related to external assaults such as viral or bacterial infection, ototoxic drugs (e.g., Cisplatin/aminoglycoside antibiotics) and acoustic trauma may be either prevented or repaired via the introduction of conjugated nanoparticles into the inner ear. Conjugated nanoparticles deliver substances which either promote hair cell regeneration or make neuro-elements within the labyrinth resistant to toxins or acoustic trauma. Certain chemicals, such as free radical scavengers and antioxidants, have been found in animal models to protect the inner ear from sensorineural hearing loss if applied prior to noise exposure. These agents may also be able to reverse cochlear hair cell injury if delivered soon after noise exposure has occurred. Thus, the present invention provides a protective composition for cochlear and vestibular neuroelements, comprising a nanoparticle conjugated with at least one of an antioxidant and a free radical scavenger. [0040]
  • More particularly, repair or prevention of hair cell damage in the inner ear secondary to noise exposure is ultimately related to reduction of free radicals or reactive oxygen species (ROS). Noise exposure has been shown to increase intracochlear free radical formation. The inner ear combats free radical damage by activation of antioxidant enzymes. Antioxidants such as salicylate plus N-L acetylcysteine (L-NAC), iron chelators and reduced glutathione (GSH) have been shown to prevent noise induced hair cell loss in chinchillas. Assuming these protect noise induced hearing loss in humans, combining these compounds with nanoparticles which enhance round window membrane permeability is intended to protect individuals who are exposed to loud noises (such as soldiers) from experiencing hair cell damage and irreversible hearing loss. [0041]
  • Another therapeutic application of nanoparticles involves transmission of vibrational energy into the inner ear across the ossicular chain or directly across the round window or oval window membrane itself. U.S. Pat. No. 6,436,028, which is incorporated herein by reference, discloses the concept of a biomagnetic drive system in which magnetically responsive material is attached to a moveable body for transmission of vibrational energy into the inner ear in response to an electromagnetic field. The magnetically responsive material can be physiologically attached to its target tissue within the ear. In the present invention, homograft or autograft tissues are coated with magnetically active nanoparticles, thereby making the ossicular chain with which they are grafted magnetically responsive. For example, particular target tissues within the middle ear are homograft femur ossicular transplants fashioned by a micro-lathing process using homograft femur cortex which is sculpted into various prosthesis designs. Three basic ossicular replacement prosthesis designs have been created at the Otologic Medical Clinic, Oklahoma City, Okla., including a stapes prosthesis (S), an incus replacement prosthesis (SHM), and an incus-stapes replacement prosthesis (FPM). FIG. 6 schematically illustrates a homograft [0042] femur ossicular transplant 44 that has been coated with magnetically responsive nanoparticles and inserted between the stapes and malleus in a patient with incus necrosis. Another application of magnetically active nanoparticles is the coating of a middle ear prosthesis with them, which when implanted into the middle ear makes the ossicular chain magnetically active; this prosthesis may be composed of synthetic materials such as hydroxyapatite, titanium, gold, or polyethylene. The foregoing middle ear vibratory examples allow the ossicular chain to vibrate in response to an externally applied magnetic or electromagnetic field, providing improved hearing for individuals with mixed, conductive, and sensorineural hearing loss.
  • From the foregoing, the present invention also provides an otologic diagnostic device and an otologic therapeutic device, each respectively comprising a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, and metabolically active substances. The conjugated material for the therapeutic device can also include chemotherapeutic drugs. [0043]
  • Thus, the present invention is well adapted to carry out the objects and attain the ends and advantages mentioned above as well as those inherent therein. While preferred embodiments of the invention have been described for the purpose of this disclosure, changes in the construction and arrangement of parts and the performance of steps can be made by those skilled in the art, which changes are encompassed within the spirit of this invention. [0044]

Claims (27)

What is claimed is:
1. A method of diagnosing or treating a human ear, comprising transporting a conjugated nanoparticle into a middle or inner ear of a human.
2. A method of diagnosing or treating a human ear, comprising transporting a magnetically responsive nanoparticle into a middle or inner ear of a human.
3. Otologic nanophoresis, comprising electrically driving a nanoparticle through a membrane of a human ear.
4. Otologic nanophoresis as defined in claim 3, wherein the membrane includes a tympanic membrane of the human ear.
5. Otologic nanophoresis as defined in claim 3, wherein the membrane includes a round window membrane of the human ear.
6. Otologic nanophoresis as defined in claim 3, wherein the membrane includes an oval window membrane of the human ear.
7. Otologic nanophoresis as defined in claim 3, wherein the membrane includes a circulatry membrane in the human ear.
8. Otologic nanophoresis as defined in claim 3, wherein the membrane includes a membranous element of a malignant or non-malignant tumor in the human ear.
9. Otologic nanophoresis, comprising magnetically driving a nanoparticle through a membrane of a human ear.
10. Otologic nanophoresis as defined in claim 9, wherein the membrane includes a tympanic membrane of the human ear.
11. Otologic nanophoresis as defined in claim 9, wherein the membrane includes a round window membrane of the human ear.
12. Otologic nanophoresis as defined in claim 9, wherein the membrane includes an oval window membrane of the human ear.
13. Otologic nanophoresis as defined in claim 9, wherein the membrane includes a circulatory membrane in the human ear.
14. Otologic nanophoresis as defined in claim 9, wherein the membrane includes a membranous element of a malignant or non-malignant tumor in the human ear.
15. Otologic nanophoresis, comprising electromagnetically driving a nanoparticle through a membrane of a human ear.
16. Otologic nanophoresis as defined in claim 15, wherein the membrane includes a tympanic membrane of the human ear.
17. Otologic nanophoresis as defined in claim 15, wherein the membrane includes a round window membrane of the human ear.
18. Otologic nanophoresis as defined in claim 15, wherein the membrane includes an oval window membrane of the human ear.
19. Otologic nanophoresis as defined in claim 15, wherein the membrane includes a circulatory membrane in the human ear.
20. Otologic nanophoresis as defined in claim 15, wherein the membrane includes a membranous element of a malignant or non-malignant tumor in the human ear.
21. An otologic diagnostic device, comprising a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, and metabolically active substances.
22. An otologic therapeutic device, comprising a nanoparticle conjugated with a material selected from the group consisting of lipids, proteins, growth factors, growth hormones, antioxidants, free radical scavengers, steroid preparations, metabolically active substances, and chemotherapeutic drugs.
23. An otologic growth composition, comprising a nanoparticle conjugated with at least a growth factor or a growth hormone.
24. A protective composition for cochlear and vestibular neuroelements, comprising a nanoparticle conjugated with at least one of an antioxidant and a free radical scavenger.
25. An otologic composition, comprising a nanoparticle conjugated with protein that binds with pathological tissue in a human ear.
26. An otologic composition as defined in claim 25, further comprising a therapeutic substance conjugated with the nanoparticle for treating pathological tissue to which the protein binds.
27. An otologic marker, comprising a nanoparticle conjugated with a substance perceptible to magnetic resonance imaging.
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Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050271732A1 (en) * 2003-06-18 2005-12-08 Seeney Charles E Delivery of bioactive substances to target cells
US7344491B1 (en) 2003-11-26 2008-03-18 Nanobiomagnetics, Inc. Method and apparatus for improving hearing
US20090088844A1 (en) * 2007-07-03 2009-04-02 Keegan Mark E Drug-eluting stapes prosthesis
WO2010115827A1 (en) * 2009-04-08 2010-10-14 Siemens Medical Instruments Pte. Ltd. Magnetofluidic hearing aid system and hearing aid
WO2011153348A2 (en) 2010-06-04 2011-12-08 Hough Ear Institute Composition and method for inner ear sensory hair cell regeneration and replacement
US8651113B2 (en) 2003-06-18 2014-02-18 Swr&D Inc. Magnetically responsive nanoparticle therapeutic constructs and methods of making and using
US8968243B2 (en) 2009-10-15 2015-03-03 Entratympanic, Llc Device and method for delivering medicine into the tympanic cavity,with sliding assist
US20150342883A1 (en) * 2014-05-30 2015-12-03 Drexel University Hyaluronidase and a Low Density Second PEG Layer on the Surface of Therapeutic-Encapsulated Nanoparticles to Enhance Nanoparticle Diffusion and Circulation
EP2635259A4 (en) * 2010-11-04 2016-07-06 Philadelphia Children Hospital Magnetic targeting device, system and method
US10327945B2 (en) * 2012-11-07 2019-06-25 Emmetrope, Inc. Magnetic eye shields and methods of treatment and diagnosis using the same
WO2020240590A1 (en) * 2019-05-30 2020-12-03 Indian Institute Of Science Controlling motion of magnetically-driven microscopic particles
WO2021150894A3 (en) * 2020-01-24 2021-09-10 Spiral Therapeutics Inc. Systems and methods for treating hearing loss

Families Citing this family (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040057983A1 (en) 2002-09-25 2004-03-25 David Schmidt Biomolecular wearable apparatus
US8602961B2 (en) * 2008-05-15 2013-12-10 Lifewave Products Llc Apparatus and method of stimulating elevation of glutathione levels in a subject
US11890226B2 (en) * 2009-02-25 2024-02-06 University Of Maryland, College Park Device and methods for directing agents into an eye
DE102010020350B4 (en) * 2010-05-12 2017-02-23 Siemens Healthcare Gmbh Method for positioning the focus of a gradient field and treatment device
US20130225905A1 (en) * 2010-08-19 2013-08-29 INSERM (Institut National de la Santé et de la Recherche Médicale) Device that is implantable in the temporal bone for delivering a material, and hearing aid provided with such a device
EP2825244A4 (en) * 2012-03-15 2016-07-27 Med El Elektromed Geraete Gmbh Accessory device for inner ear drug delivery
CN102885778A (en) * 2012-10-29 2013-01-23 中国人民解放军军事医学科学院毒物药物研究所 Active carbon paclitaxel nano-drug delivery system, and preparation method and application thereof
US9532150B2 (en) 2013-03-05 2016-12-27 Wisconsin Alumni Research Foundation Eardrum supported nanomembrane transducer
EP3962533A4 (en) 2019-04-30 2023-01-25 The Medical College of Wisconsin, Inc. Trans-tympanic membrane delivery platform and uses thereof
CA3233538A1 (en) * 2021-09-29 2023-04-06 Signe Erickson Cochlea injection devices, systems, and methods for otology

Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US37853A (en) * 1863-03-10 Improvement in devices for gumming saws
US4356029A (en) * 1981-12-23 1982-10-26 Westinghouse Electric Corp. Titanium product collection in a plasma reactor
US4376740A (en) * 1981-01-05 1983-03-15 National Research Institute For Metals Process for production fine metal particles
US4687511A (en) * 1986-05-15 1987-08-18 Gte Products Corporation Metal matrix composite powders and process for producing same
US5549915A (en) * 1993-01-29 1996-08-27 Magnetic Delivered Therapeutics, Inc. Magnetically responsive composition for carrying biologically active substances and methods of production
US5702727A (en) * 1993-02-22 1997-12-30 Alza Corporation Compositions and methods for the oral delivery of active agents
US5788738A (en) * 1996-09-03 1998-08-04 Nanomaterials Research Corporation Method of producing nanoscale powders by quenching of vapors
US5851507A (en) * 1996-09-03 1998-12-22 Nanomaterials Research Corporation Integrated thermal process for the continuous synthesis of nanoscale powders
US5876683A (en) * 1995-11-02 1999-03-02 Glumac; Nicholas Combustion flame synthesis of nanophase materials
US5984997A (en) * 1997-08-29 1999-11-16 Nanomaterials Research Corporation Combustion of emulsions: A method and process for producing fine powders
US6165500A (en) * 1990-08-24 2000-12-26 Idea Ag Preparation for the application of agents in mini-droplets
US6200547B1 (en) * 1994-01-26 2001-03-13 Ferx Incorporated Magnetically responsive compositions for carrying biologically active substances and methods of production and use
US6254940B1 (en) * 1996-07-11 2001-07-03 University Of Cincinnati Electrically assisted synthesis of particles and film with precisely controlled characteristic
US20010039919A1 (en) * 1995-08-04 2001-11-15 Hunt Andrew T. Chemical vapor deposition and powder formation using thermal spray
US20020037855A1 (en) * 2000-05-05 2002-03-28 Fritz Stanislaus Stabilized medicament containing cysteinyl derivatives
US20020046993A1 (en) * 2000-10-24 2002-04-25 Peterson Dennis Roger Electrothermal gun for direct electrothermal-physical conversion of precursor into nanopowder
US20020053557A1 (en) * 1999-09-15 2002-05-09 Peterson Dennis Roger Method and apparatus for producing bulk quantities of nano-sized materials by electrothermal gun synthesis
US6436028B1 (en) * 1999-12-28 2002-08-20 Soundtec, Inc. Direct drive movement of body constituent
US20020155059A1 (en) * 2001-04-24 2002-10-24 Tekna Plasma Systems Inc. Plasma synthesis of titanium dioxide nanopowder and powder doping and surface modification process
US6472632B1 (en) * 1999-09-15 2002-10-29 Nanoscale Engineering And Technology Corporation Method and apparatus for direct electrothermal-physical conversion of ceramic into nanopowder

Family Cites Families (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0093757A1 (en) 1981-11-12 1983-11-16 Ulf SCHRÖDER Intravascularly administrable, magnetically responsive nanosphere or nanoparticle, a process for the production thereof, and the use thereof
JPS6055265A (en) * 1983-09-06 1985-03-30 Fujirebio Inc Measuring method of antigen and antibody by using magnetic particle
US4652257A (en) 1985-03-21 1987-03-24 The United States Of America As Represented By The Secretary Of The Navy Magnetically-localizable, polymerized lipid vesicles and method of disrupting same
US4690130A (en) 1985-12-19 1987-09-01 Mirell Stuart G Electromagnetic therapy control system
US5827819A (en) * 1990-11-01 1998-10-27 Oregon Health Sciences University Covalent polar lipid conjugates with neurologically active compounds for targeting
US5916539A (en) 1993-03-02 1999-06-29 Silica Gel Ges. M.B.H. Superparamagnetic particles, process for producing the same and their use
DE4309333A1 (en) 1993-03-17 1994-09-22 Silica Gel Gmbh Superparamagnetic particles, process for their production and use thereof
ATE354377T1 (en) * 1993-12-02 2007-03-15 Max Delbrueck Centrum ANTITUMOR AGENT CONTAINING A CYTOSTATIC AND A CONTRAST AGENT
DE59508069D1 (en) 1994-07-27 2000-04-27 Herbert Pilgrimm SUPERPARAMAGNETIC PARTICLES, METHOD FOR THE PRODUCTION AND USE THEREOF
US6121235A (en) * 1995-12-29 2000-09-19 Genentech, Inc. Treatment of balance impairments
US5837681A (en) * 1996-02-23 1998-11-17 Amgen Inc. Method for treating sensorineural hearing loss using glial cell line-derived neurotrophic factor (GDNF) protein product
DK0986404T3 (en) * 1996-07-10 2002-05-13 West Pharm Serv Drug Res Ltd Gene therapy administration system targeted to endothelium
DE19635419C1 (en) * 1996-08-23 1998-08-20 Schering Ag Bismuth dendrimers and their use as X-ray contrast media
US6545101B2 (en) * 1997-06-25 2003-04-08 Exxonmobil Chemical Patents Inc. Star-branched polymer with dendrimer core
US6043221A (en) 1997-07-30 2000-03-28 Amgen Inc. Method for preventing and treating hearing loss using a neuturin protein product
US6014580A (en) 1997-11-12 2000-01-11 Stereotaxis, Inc. Device and method for specifying magnetic field for surgical applications
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
US7132406B2 (en) * 1998-02-23 2006-11-07 Sound Pharmaceuticals Incorporated Stimulation of cellular regeneration and differentiation in the inner ear
HU226710B1 (en) * 1998-05-27 2009-07-28 Euro Celtique Sa Preparations for the application of anti-inflammatory, especially antiseptic agents and/or agents promoting the healing of wounds, to the upper respiratory tract and/or the ear
GB9812519D0 (en) 1998-06-10 1998-08-05 Immunoporation Ltd Treating cells
US6767635B1 (en) 1999-09-14 2004-07-27 Biomedical Apherese Systeme Gmbh Magnetic nanoparticles having biochemical activity, method for the production thereof and their use
US6548264B1 (en) 2000-05-17 2003-04-15 University Of Florida Coated nanoparticles
US20020086842A1 (en) 2000-06-26 2002-07-04 Christian Plank Method for transfecting cells using a magnetic field
SE0100158D0 (en) * 2001-01-19 2001-01-19 Synphora Ab Novel method and composition for local treatment of Meniere's disease and tinnitus
US20050171054A1 (en) * 2001-01-19 2005-08-04 Helge Rask-Andersen Novel method and composition for local treatment of meniere's disease, tinnitus and/or hearing loss
DK1474109T3 (en) * 2001-12-21 2010-10-25 Alcon Inc Use of synthetic inorganic nanoparticles as carriers of ophthalmic drugs
WO2003071986A2 (en) * 2002-02-22 2003-09-04 Control Delivery Systems, Inc. Method for treating otic disorders
US20030215394A1 (en) 2002-05-17 2003-11-20 Short Robert E. Microparticles having a matrix interior useful for ultrasound triggered delivery of drugs into the bloodstream
US7611907B2 (en) * 2002-06-27 2009-11-03 Georgia Tech Research Corporation Nano-sized optical fluorescence labels and uses thereof
US7189198B2 (en) 2002-07-03 2007-03-13 Stereotaxis, Inc. Magnetically guidable carriers and methods for the targeted magnetic delivery of substances in the body
WO2004006765A1 (en) 2002-07-17 2004-01-22 Dailey James P Delivery of therapeutic agent affixed to magnetic particle
EP2881736B1 (en) * 2008-03-31 2017-06-07 Pacific Biosciences of California, Inc. Single polymerase molecule loading methods and compositions

Patent Citations (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US37853A (en) * 1863-03-10 Improvement in devices for gumming saws
US4376740A (en) * 1981-01-05 1983-03-15 National Research Institute For Metals Process for production fine metal particles
US4356029A (en) * 1981-12-23 1982-10-26 Westinghouse Electric Corp. Titanium product collection in a plasma reactor
US4687511A (en) * 1986-05-15 1987-08-18 Gte Products Corporation Metal matrix composite powders and process for producing same
US6165500A (en) * 1990-08-24 2000-12-26 Idea Ag Preparation for the application of agents in mini-droplets
US5705195A (en) * 1993-01-29 1998-01-06 Magnetic Delivered Therapeutics, Inc. Magnetically responsive composition for carrying biologically active substances and methods of production and use
US5549915A (en) * 1993-01-29 1996-08-27 Magnetic Delivered Therapeutics, Inc. Magnetically responsive composition for carrying biologically active substances and methods of production
US5702727A (en) * 1993-02-22 1997-12-30 Alza Corporation Compositions and methods for the oral delivery of active agents
US6200547B1 (en) * 1994-01-26 2001-03-13 Ferx Incorporated Magnetically responsive compositions for carrying biologically active substances and methods of production and use
US20010039919A1 (en) * 1995-08-04 2001-11-15 Hunt Andrew T. Chemical vapor deposition and powder formation using thermal spray
US5876683A (en) * 1995-11-02 1999-03-02 Glumac; Nicholas Combustion flame synthesis of nanophase materials
US6254940B1 (en) * 1996-07-11 2001-07-03 University Of Cincinnati Electrically assisted synthesis of particles and film with precisely controlled characteristic
US5788738A (en) * 1996-09-03 1998-08-04 Nanomaterials Research Corporation Method of producing nanoscale powders by quenching of vapors
US5851507A (en) * 1996-09-03 1998-12-22 Nanomaterials Research Corporation Integrated thermal process for the continuous synthesis of nanoscale powders
US5984997A (en) * 1997-08-29 1999-11-16 Nanomaterials Research Corporation Combustion of emulsions: A method and process for producing fine powders
US20020053557A1 (en) * 1999-09-15 2002-05-09 Peterson Dennis Roger Method and apparatus for producing bulk quantities of nano-sized materials by electrothermal gun synthesis
US6472632B1 (en) * 1999-09-15 2002-10-29 Nanoscale Engineering And Technology Corporation Method and apparatus for direct electrothermal-physical conversion of ceramic into nanopowder
US6436028B1 (en) * 1999-12-28 2002-08-20 Soundtec, Inc. Direct drive movement of body constituent
US20020037855A1 (en) * 2000-05-05 2002-03-28 Fritz Stanislaus Stabilized medicament containing cysteinyl derivatives
US20020046993A1 (en) * 2000-10-24 2002-04-25 Peterson Dennis Roger Electrothermal gun for direct electrothermal-physical conversion of precursor into nanopowder
US20020155059A1 (en) * 2001-04-24 2002-10-24 Tekna Plasma Systems Inc. Plasma synthesis of titanium dioxide nanopowder and powder doping and surface modification process

Cited By (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8651113B2 (en) 2003-06-18 2014-02-18 Swr&D Inc. Magnetically responsive nanoparticle therapeutic constructs and methods of making and using
US20050271732A1 (en) * 2003-06-18 2005-12-08 Seeney Charles E Delivery of bioactive substances to target cells
US7344491B1 (en) 2003-11-26 2008-03-18 Nanobiomagnetics, Inc. Method and apparatus for improving hearing
US7819795B1 (en) 2003-11-26 2010-10-26 Nanobiomagnetics, Inc. Method and apparatus for improving hearing
US20090088844A1 (en) * 2007-07-03 2009-04-02 Keegan Mark E Drug-eluting stapes prosthesis
US9662201B2 (en) 2007-07-03 2017-05-30 Massachusetts Eye And Ear Infirmary Drug-eluting stapes prosthesis
WO2010115827A1 (en) * 2009-04-08 2010-10-14 Siemens Medical Instruments Pte. Ltd. Magnetofluidic hearing aid system and hearing aid
US8968243B2 (en) 2009-10-15 2015-03-03 Entratympanic, Llc Device and method for delivering medicine into the tympanic cavity,with sliding assist
US9814624B2 (en) 2010-03-15 2017-11-14 Entratympanic, Llc Device and method for delivering medicine into the tympanic cavity, with sliding assist
WO2011153348A2 (en) 2010-06-04 2011-12-08 Hough Ear Institute Composition and method for inner ear sensory hair cell regeneration and replacement
EP2635259A4 (en) * 2010-11-04 2016-07-06 Philadelphia Children Hospital Magnetic targeting device, system and method
US10327945B2 (en) * 2012-11-07 2019-06-25 Emmetrope, Inc. Magnetic eye shields and methods of treatment and diagnosis using the same
US20150342883A1 (en) * 2014-05-30 2015-12-03 Drexel University Hyaluronidase and a Low Density Second PEG Layer on the Surface of Therapeutic-Encapsulated Nanoparticles to Enhance Nanoparticle Diffusion and Circulation
US10117886B2 (en) * 2014-05-30 2018-11-06 Hao Cheng Hyaluronidase and a low density second PEG layer on the surface of therapeutic-encapsulated nanoparticles to enhance nanoparticle diffusion and circulation
WO2020240590A1 (en) * 2019-05-30 2020-12-03 Indian Institute Of Science Controlling motion of magnetically-driven microscopic particles
WO2021150894A3 (en) * 2020-01-24 2021-09-10 Spiral Therapeutics Inc. Systems and methods for treating hearing loss
US11467386B2 (en) 2020-01-24 2022-10-11 Spiral Therapeutics Inc. Systems and methods for treating hearing loss
US11662561B2 (en) 2020-01-24 2023-05-30 Spiral Therapeutics Inc. Systems and methods for treating hearing loss
US11796781B2 (en) 2020-01-24 2023-10-24 Spiral Therapeutics Inc. Visualization devices, systems, and methods for otology and other uses

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USRE47849E1 (en) 2020-02-11
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AU2003301077A1 (en) 2004-08-23
US20080199400A1 (en) 2008-08-21
US8303990B2 (en) 2012-11-06
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WO2004066975A1 (en) 2004-08-12
EP1631259A1 (en) 2006-03-08

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