An integrated chemophysical system for treating tinnitus
An integrated therapeutic system using electromagnetic and acoustic signals, combined with oral administration, addresses the limitations of current tinnitus treatments by providing sustained relief tailored to individual needs, effectively reducing tinnitus symptoms through targeted auditory nerve stimulation and cellular deexcitation.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-23
- Publication Date
- 2026-04-01
AI Technical Summary
Current treatments for tinnitus lack effectiveness and versatility, failing to provide significant, sustained relief as they are not tailored to individual patient needs and often lose effect when the delivery device is removed.
An integrated therapeutic system using a device that administers low-frequency and high-frequency electromagnetic waves, combined with acoustic signals and oral administration of natural active ingredients, tailored to individual patient needs through otometric analysis and programmable control.
The system provides sustained reduction and delay of tinnitus symptoms by inducing mild congestion in the auditory nerve and reducing excessive excitation of vibratory cells, achieving a cumulative effect over multiple sessions.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a device for treating tinnitus and a composition for oral administration, and further proposes a new integrated treatment method. The present invention further relates to a treatment kit including the device and the composition.
Background Art
[0002] The term tinnitus refers to a situation where noise is perceived in one or both ears or in the head even when no sound is generated externally. Tinnitus can be defined as "the perception of sound in the absence of physiological stimulation of the acoustic labyrinth of the ear" and is caused by abnormal stress in any region of the acoustic pathway from the cochlea to the central brain regions located in the cortex.
[0003] Therefore, tinnitus is completely different from other noises transmitted through the skull that can occur in blood vessels, the eustachian tube, muscles or the temporomandibular joint. These noises stimulate the ear in a natural way and can also be perceived by people other than the subject suffering from tinnitus. For this reason, such a type of "sound" is defined as objective tinnitus, and the true tinnitus called subjective tinnitus can only be heard by the person complaining of tinnitus.
[0004] Subjective tinnitus mostly tends to be acute and often accompanies hearing loss (deafness). In a hearing test, it is possible to measure the frequency of tinnitus (tinnitus test). Interestingly, when measured with laboratory equipment, the volume of tinnitus is independent of the severity of tinnitus perceived by the same patient.
[0005] Tinnitus has different characteristics for different patients. For example, some people perceive hearing impairment only immediately after being exposed to very strong noise, such as after a concert. In contrast, other subjects say that they hear weak noise every time they pay attention, but most subjects cannot distinguish that noise from other environmental sounds.
[0006] Tinnitus is a symptom of a disease that can affect the ear (caused by ear-related factors) or the entire organism (caused by factors other than ear-related factors).
[0007] Many of the causes of tinnitus are largely unknown, making diagnosis and treatment of the symptoms difficult. However, it appears that neuronal hyperactivity is often at the root of the problem.
[0008] Many treatment options have been proposed and are still in use. Each of them may yield good results in a single case.
[0009] Drug therapy is based on the use of vasodilators, anxiolytics and antidepressants (amitriptyline), herbal medicines (e.g., ginkgo extract), or supplements.
[0010] Surgical treatment is based on demolition surgery and is intended for the most severe cases where the patient loses hearing on the side of the tinnitus.
[0011] Physical therapy is based on the fact that patients become accustomed to listening to relaxing sounds (acoustic therapy) and use specific acoustic prosthetics called maskers that can interfere with the perception of tinnitus by emitting appropriate sounds.
[0012] In some cases, hyperbaric oxygen therapy, performed in a decompression chamber with the aim of oxidizing and reactivating inner ear cells, was also successfully employed.
[0013] From a nutritional standpoint, foods that can cause neurotic hyperactivity are generally not recommended. Good therapeutic effects are thought to be related to the following: ■ A protein-based diet by eliminating glycides and carbohydrates (metabolic ketosis), ■ A diet that eliminates foods that can stimulate histamine release (e.g., salmon and tuna), ■ A diet based on taurine and glycine (these inhibit neurons). ■ A meal based on puddings (green vegetables, non-alcoholic beer, allopurinol).
[0014] Finally, an integrated type of treatment of the kind described in International Publication No. 2018 / 087645(A1) has also been proposed, which provides the use of a device configured to deliver suitable (acoustic and / or electromagnetic) signals in the patient's auditory system, in combination with the administration of a biological functional modifier.
[0015] However, despite tinnitus being a very common disorder with significant social implications, truly effective and versatile technological systems and treatments—whether standalone or integrated—that are specifically tailored to the needs of individual patients have yet to be found. Furthermore, the systems and treatments currently in use have not succeeded in achieving a significant period of beneficial effect in reducing or delaying the disease, because such effects are lost immediately after the delivery device (e.g., headphones) is removed. [Overview of the project]
[0016] Therefore, the technical problem raised and solved by the present invention is specifically to provide an integrated therapeutic system based on the use of a technological device, which is preferably, but not necessarily, combined with the administration of a substance that can prevent the aforementioned drawbacks and limitations with respect to known technologies.
[0017] Such problems are solved by the device described in claim 1.
[0018] Preferred features of the present invention are described in the dependent claims.
[0019] In this context, “acoustic signal” means a simple or complex combination of sound waves or sounds over any given period of time.
[0020] The present invention is based on an integrated type of treatment method for treating tinnitus.
[0021] Specifically, the device of the present invention enables the treatment of tinnitus by the patient obtaining a significant period showing a beneficial effect on reducing or delaying the same disease.
[0022] Such a method administers the following. - Sound, - Preferably, low-frequency electromagnetic waves quantized, - High-frequency electromagnetic waves supplied within the cochlea, specifically in the region of the organ of Corti, - In some cases, a selected functional regulator by the oral route
[0023] Sound, as well as both high-frequency and low-frequency electromagnetic waves, are preferably administered to the patient by a single dedicated technical device. 3]
[0024] In particular, although not essential but preferably, the method advantageously includes a biochemical step of providing administration of capsules or liquids by the oral route according to a pre-established dosage and pharmacology that synergistically combines various active ingredients, the latter preferably being of natural origin.
[0025] As described above, the method preferably further includes an analysis / sending step for administering high-frequency and low-frequency sounds and electromagnetic waves by the same dedicated technical device.
[0026] Preferably, such a device comprises a dispenser "headphone" and a programmable control unit that enables an operator (otolaryngologist or audiologist) or the patient to customize the treatment to better suit the characteristics of the disease and the actual treatment needs of the patient himself.
[0027] In its preferred embodiment, the proposed method then integrates the following six separate therapeutic interventions. - Otometric analysis of the disease, - Preparation of the treatment program, - Administration of sound, - Administration of low-frequency electromagnetic waves, - Administration of high-frequency electromagnetic waves, - Potential administration of substances via the oral route.
[0028] Other advantages, features, and modes of use of the present invention will become apparent from the following detailed description of several embodiments, which are shown by way of example and not for the purpose of limitation.
Brief Description of the Drawings
[0029] Refer to the figures in the accompanying drawings. [Figure 1] A schematic diagram of a technical device is shown, which is intended for use in the same tinnitus treatment, preferably together with a composition for oral administration according to the present invention, for the administration of sound and low- and high-frequency electromagnetic waves according to a preferred embodiment of the present invention. [Figure 1A] A preferred embodiment of capacitive means for electromagnetic stimulation, which is implemented within the device of the present invention, is shown. [Figure 2] A block diagram of the circuit design of a preferred embodiment of the acoustic / electromagnetic device shown in FIG. 1 is shown.
Modes for Carrying Out the Invention
[0030] First, by referring to FIG. 1, a device for administration / acoustic and electromagnetic stimulation according to the present invention, which is generally designated by 200, will be described.
[0031] A preferred embodiment of such a device, specifically a schematic diagram of the block circuit diagram implemented by the device, is shown in FIG. 2.
[0032] The device 200 comprises a wearable support 201, preferably in the form of a headset.
[0033] The device 200 comprises a pair of acoustic dispensers, or emitters, connected to a support 201. Specifically, a right dispenser 202 and a left dispenser 203 are provided, each adapted and suitably molded for the purpose of delivering an acoustic signal to the respective auricle. The dispensers 202 and 203 may be fixed or movable according to one or more degrees of freedom, and may be detachably connected to the support 201.
[0034] Each dispenser 202, 203 or its vicinity is further provided with electromagnetic stimulation means, which will be described in detail below.
[0035] The emitters 202 and 203 and the electromagnetic stimulating means are preferably connected to an additional unit of the device 200, which is a signal mixing unit 210 that preferably provides acoustic and electrical signals directly to such emitters and electromagnetic stimulating means, respectively. The mixing unit 210 can also supply their relative energy.
[0036] Next, the mixing unit 210 preferably communicates bidirectionally with one or more additional components of the device 200 described below.
[0037] Preferably, a control unit (not shown) is provided, configured to process a programming acoustic signal. Such a signal is measured by an audiometry test to determine the frequency and intensity of a tinnitus disorder, and the control unit is configured to control a first acoustic generator 207, which in turn emits a main acoustic signal, called a therapeutic signal, which is suitable for contrasting tinnitus perception.
[0038] Preferably, the therapeutic acoustic signal associated with the generator 207 is sent by emitters 202 and 203 through the mixing unit 210.
[0039] Specifically, the control unit stores and processes data obtained from the hearing test and uses it to program the therapeutic acoustic signal generator 207. Preferably, the control unit and / or other components of the device 200 are provided with means for measuring and / or determining the frequency and intensity of both the acoustic and electromagnetic signals.
[0040] The generator 207, via dispensers 202 and 203, preferably administers a therapeutic acoustic signal to the subject that has the same characteristics as a programmed acoustic signal or (partially) different acoustic signal determined by an audiometry test in terms of frequency and intensity.
[0041] Preferably, the therapeutic acoustic signal associated with the generator 207, which is administered to the subject, is mixed (or modulated) with a secondary acoustic signal (i.e., a sub-signal), such as musical notes, music, or noise like white noise.
[0042] For this purpose, device 200 is provided with a second generator of acoustic signals, i.e., an auxiliary generator indicated by reference number 208, which communicates with the mixing unit 210.
[0043] The auxiliary generator 208 is configured to emit secondary acoustic signals, specifically, specific sounds ranging from subtones to ultrasound.
[0044] Such secondary acoustic signals are preferably sinusoidal and have frequencies ranging from approximately 5 Hz (second tone) to approximately 20 kHz (ultrasonic threshold). These secondary acoustic signals can be suitably selected by the operator in terms of both frequency and intensity based on the type of application to be performed. The operator can then, for example, search for, select, and store one or more suitable frequencies (and corresponding intensities) of the second acoustic signal.
[0045] The auxiliary sound generator 208 preferably includes, or is associated with, a control panel for controlling and adjusting the secondary sound signal to be transmitted. In a preferred embodiment, the auxiliary sound generator 208 includes internal storage means.
[0046] In a preferred embodiment, the secondary acoustic signal is mixed with the primary acoustic signal provided by the generator 207 via the mixing unit 210. The thus mixed signal is then administered to the subject as a therapeutic acoustic signal via emitters 202, 203.
[0047] Advantageously, a second acoustic signal, ranging from 5 Hz (secondary tone) to 20 kHz (ultrasonic threshold), may be provided via dispensers 202 and 203, separately from or in conjunction with the primary therapeutic acoustic signal described above.
[0048] In some embodiments, the second acoustic signal may have the function of modulating the main acoustic signal obtained via the first acoustic generator 207.
[0049] In further embodiments, the secondary acoustic signal may be pre-stored in the generator 208, or it may be provided via an auxiliary input 211 that connects the generator 208 to a data bank or external generator of music signals, noise, or other acoustic signals (music therapy).
[0050] In the example shown in Figure 1, the auxiliary sound generator 208 may be configured as an amplifier of an acoustic signal provided together with the auxiliary input 211.
[0051] Device 200 preferably comprises suitable electronic components for managing acoustic signals of different natures or origins, such as amplifiers, analog-to-digital converters, audiometry devices, and multiplexers, which are generally indicated by reference numeral A in Figure 2.
[0052] The control unit preferably communicates bidirectionally with all units and components of the device itself.
[0053] As expected, the device 200 further comprises electromagnetic stimulating means, specifically inductive means and capacitive means.
[0054] The induction-type electromagnetic stimulation means comprises a signal generator, indicated by reference numeral 209 in the figure, and preferably an inductor solenoid 204, 205 in or near each dispenser 202, 203.
[0055] In a preferred embodiment, each inductor solenoid 204, 205 consists of a winding of enameled copper wire having a cross-section in the range of 0.2 to 0.4 mm and a number of turns in the range of 20 to 100, for example, to create an electromagnetic field suitable for generating electrical induction of minute electrical signals within the inner ear region and auditory nerve.
[0056] According to one embodiment, an acoustic signal obtained by one or more of the sound generators 207 and 208 is sent to the electromagnetic stimulation inductive means 204 and 205 by the control unit, and optionally by the control unit of the mixing unit 210. The control unit processes / converts the received signal and provides control corresponding to the electromagnetic stimulation inductive means 204 and 205.
[0057] The electromagnetic stimulation inducting means 204, 205 emit a first electromagnetic signal that can induce a minute electrical stimulus within the auditory nerve region that causes mild congestion and prevents the transmission of disease to the brain.
[0058] Such minute electrical signals induced in the auditory nerve, through the delivery of thermal energy, activate the conversion of ATP to ADP (via microvascular pathways) at the cellular level, accompanied by a relative demand for oxygen, thereby reducing the electrical space available for disease signals in electroneuronal transmission.
[0059] The capacitive means is configured to emit a second electromagnetic signal in the cochlea, specifically within the organ of Corti. The electromagnetic stimulation capacitive means includes capacitive emitters 214 and 215 in each of the dispensers 202 and 203.
[0060] Preferably, the electromagnetically stimulating capacitive means is supported by a support 201 of the device 200 so that it is positioned on the organ of Corti when in use.
[0061] Specifically, the electromagnetically stimulating capacitive means is arranged within the support 201 and is configured to emit signals in the organ of Corti and the entire cochlear region, the organ of Corti being located in the central region of the cochlea.
[0062] In addition to the electromagnetic stimulation obtained by the induction path, the electromagnetic stimulation capacitive means enables the transmission of a second additional high-frequency electromagnetic signal, specifically a radio frequency signal, preferably a signal with a frequency in the range of 1 MHz to 100 MHz.
[0063] The high-frequency electromagnetic signal may be configured to include both a primary signal, indicated as the "fundamental wave," and secondary signals of different frequencies, indicated as "harmonics." For example, such harmonics may provide frequencies ranging from 2 MHz to 100 MHz and be transmitted simultaneously with the fundamental signal, with their width gradually decreasing.
[0064] In a preferred embodiment, as shown in the example in Figure 1A, the electromagnetic stimulation capacitive means 214, 215 comprises a capacitor C implemented via a pair of conductive elements C', C''. Preferably, a capacitor C is present in each acoustic emitter 202, 203.
[0065] The conductive elements C' and C'' are insulated from each other and from the outside of the device 200, specifically from the skin of the patient to whom the device is worn, so as to constitute a typical conductor-insulator-conductor configuration of a capacitor.
[0066] Preferably, each conductive element is mounted in the form of a substantially semicircular plate-like element, or a plate, or an outer casing. As a result, advantageously, a reduced overall size mounting is possible (specifically, inside the structure of the device 200 pavilion).
[0067] According to a preferred embodiment, the conductive elements C' and C'' have a multilayer structure and can be obtained starting from a printed circuit.
[0068] The conductive elements C' and C'' are made of conductive material and are spaced, for example, about 5 mm apart.
[0069] The conductive elements C' and C'' are preferably coated onto a support having a planar size of 40 mm or less, i.e., a substrate S. The capacitive means 214 and 215 can be coated with an insulating means, such as a layer of printed circuit paint.
[0070] According to a preferred embodiment, the insulating means comprises a sheet F made of an insulating material, which is applied to the layer of paint if present. The sheet F preferably has a thickness of about one-tenth of a millimeter. The thickness of the sheet F may be selected according to a value in volts corresponding to the (radio) frequency from which the electromagnetic signal is emitted by the capacitive emitter.
[0071] Preferably, the conductive elements C' and C'' are incorporated into the device 200 such that the insulating means, specifically the insulating sheet F, faces the patient under the conditions of the device being worn.
[0072] Each capacitive emitter 214, 215, specifically each pair of conductive elements C' and C'', is connected to a radio frequency signal generator shown as reference numeral 206 in Figure 1.
[0073] The radio frequency signal generator transmits the signal to the capacitive emitters 214 and 215 via the control unit, preferably the mixing unit 210.
[0074] Specifically, each capacitive emitter 214, 215, or each pair of conductive elements constituting them, will be positioned on the organ of Corti of the patient wearing the device during use.
[0075] Advantageously, the electromagnetically stimulated capacitive means is configured to transmit a second high-frequency electromagnetic signal, preferably at a low intensity, for example, within the range of 5 mW to 50 mW.
[0076] The second electromagnetic signal obtained through the capacitive pathway can reduce the potential overexcitation or inflammation of the vibrating cells that make up the organ of Corti or other parts of the cochlear region, located in the center of the cochlear region, by causing their deexcitation effect and thus reducing their ability to generate the electrical signals that are the origin of tinnitus disorders.
[0077] As expected, the control unit may be provided as a common component, i.e., a shared component, of the various generators, units, and elements described above. Preferably, the control unit is of the microprocessor type.
[0078] Furthermore, although the aforementioned units and generators are described as structurally different, they are advantageously integrated into the same multi-functional device.
[0079] Therefore, the programmed acoustic signal is determined based on tests performed on the patient through hearing tests that identify the intensity and frequency of tinnitus during typical use of the device. Once such a determination is made, a therapeutic signal to be emitted is developed, which can be stored in the acoustic generators 207, 208, if applicable, and used stably.
[0080] Advantageously, the therapeutic signal provides a primary acoustic signal in combination with additional acoustic and / or electromagnetic signals.
[0081] The characteristics of the therapeutic signal, specifically the frequency of the modulated signal and the frequency of the modulated signal of the electromagnetic portion of the stimulus, can be established in the first therapeutic session by testing the patient's sensation of reduced tinnitus noise.
[0082] Referring to the embodiment of the device shown in Figure 2, the electromagnetic stimulation inductive means can transmit a first electromagnetic signal of various frequencies, preferably from 1 kHz to 30 kHz, simultaneously with the transmission of an acoustic signal.
[0083] For example, the operator can select the frequency and / or intensity of the main acoustic signal to be generated by means 207 via the control panel P.
[0084] The main acoustic signal may be mixed (or modulated) with the secondary acoustic signals 208' and / or 208'' with an acoustic signal equivalent to, for example, fundamental +10%, fundamental -10%, or white noise. It is preferable that means M for selecting the type of modulated acoustic signal is provided.
[0085] The mixed (or modulated) acoustic signal thus obtained is sent to the acoustic emitters 202, 203 and / or processed by the mixing unit 210, and can then be associated with an inductive means and act as a modulated signal of the electromagnetic signal generated by the generator 209.
[0086] A test frequency equal to the frequency (and / or intensity) of an inductive electromagnetic signal, for example, 5 kHz, 10 kHz, may be used, and test frequencies up to 30 kHz may be gradually tested.
[0087] Although not shown in Figure 2, a similar procedure can also be applied by modulating the selected signal with the signal from the radio frequency generator 206, either in place of or in combination with the electromagnetically stimulated capacitive means.
[0088] You can also select the best frequency and verify it in a second session.
[0089] The acoustic and / or electromagnetic signals administered to the subject using emitters 202, 203, electromagnetic stimulation induction means 204, 205, and / or capacitive means 214, 215, respectively, may have different characteristics with respect to the right or left auricle, or may be administered to only one auricle, depending on the characteristics of the disease found during the diagnostic step.
[0090] In Figure 2, the blocks indicated by reference numerals R and L represent the possibility of independently or combined selection of the right or left channel of device 200 for each type of therapeutic (or programming) (acoustic / electromagnetic) signal being transmitted.
[0091] Advantageously, the entire device 200, including the acoustic emitters 202-203, stimulation induction means 204-205, stimulation capacity means 214, 215, generators and units 206-211, is fully mountable; that is, such generators and units are positioned on the support 201 or on a separate portable base that can be applied to the patient's body.
[0092] Device 200 may be self-powered by a rechargeable battery and / or connected to an external energy source. Battery depletion may be communicated, for example, on a control panel, and a connection to a battery charger may be enabled.
[0093] In a preferred embodiment, the device 200 includes bidirectional communication means configured to establish a connection between the device and a control and programming system. Such bidirectional communication means enables the transmission and / or storage of data to and from the device 200, as well as the remote programming of the latter.
[0094] Advantageously, such connection is preferably a wireless network connection, and the bidirectional communication means comprises an operating system provided with an operator interface intended to be implemented by a control and programming system and a user interface for the connected device (200) at the time of use.
[0095] For example, device 200 is provided with an electronic system and multiple technologies for network connectivity, including a patient interface and a physician interface, either directly or via iCloud, for the purpose of programmability of the system and clinical treatment using relative parameters and remote operation and health commands via ports of various natures such as USB, Ethernet, and WiFi. This ability to operate remotely makes it possible to read and store instructions and permissions given to the patient, ensuring checks and permissions for locking and unlocking operations, treatment faithful to the original medical instructions, and obtaining diagnostic / treatment health services certified as telemedicine in accordance with national and international health organization guidelines.
[0096] In summary, the physical part of this method operates according to the following main steps. ■The method of analyzing hearing tests determines the signals that cause tinnitus (defining the severity of the disorder in addition to frequency). This is done internally with a version of the device that enables this, or using external measuring instruments. ■When mixed with additional acoustic signals that can compress and reduce the transmission of disease signals to the brain, the acoustic signal corresponding to the disease should be administered. ■ By inducing mild congestion and occupying nerve transmission, an inductive electromagnetic stimulation method is used to induce low-frequency minute electrical signals within the auditory nerve region, thereby preventing the transmission of disease to the brain. ■High-frequency electromagnetic signals are applied within the organ of Corti region by capacitive electromagnetic stimulation means that reduce excessive excitation of vibratory cells and potential inflammation, thereby constituting the organ of Corti and preventing the transmission of disease to the brain.
[0097] Preferably, the above steps are administered by oral route and concurrently with the administration of the active ingredients described below.
[0098] Compositions for oral administration may contain one or more of the following active ingredients: vitamin B1, vitamin B6, vitamin B12, lithium orotate, magnesium, ginger, hawthorn, and lemon balm.
[0099] Examples of the concentration of the active ingredient per dose unit used in the composition are as follows: ■ 5 mg to 50 mg, preferably 25 mg of vitamin B1, ■ 0.5 to 2 mg, preferably 1 mg of vitamin B6, ■ 0.5 mg to 2 mg, preferably 1 mg of vitamin B12, ■ 0.5 mg to 2 mg, preferably 1 mg, lithium orotinate ■ 100 mg to 500 mg, preferably 300 mg of magnesium, ■ 500mg to 1000mg, preferably 700mg of ginger, ■ 400 mg to 1200 mg, preferably 600 mg of hawthorn, ■ 600mg to 1200mg, preferably 900mg, of lemon balm.
[0100] In preferred embodiments, the composition contains vitamin B1, vitamin B6, vitamin B12, lithium orotate, magnesium, ginger, hawthorn extract, and lemon balm extract as active ingredients.
[0101] In one embodiment, the composition uses hawthorn as an extract of the leaves and flowers of Crataegus monogyna, specifically a 1:2 ratio of leaf and flower extracts, and a powder of dried fruit and / or an extract of dried lemon balm leaves.
[0102] The composition may be a formulation such as a capsule, soft capsule, tablet, pill, jelly, powder or granule, liquid, or suspension, and may contain one or more excipients. Such excipients may be selected from those commonly known in the art, for example, a) carriers, such as sodium citrate and calcium phosphate; b) fillers, such as starch, lactose, microcrystalline cellulose, sucrose, glucose, mannitol, and colloidal silica; c) wetting agents, such as glycerol; d) disintegrants, such as alginates, calcium carbonate, starch, starch derivatives, cellulose derivatives, polyvinylpyrrolidone derivatives, silicates, and sodium carbonate; e) binders, such as carboxymethylcellulose, alginates, gelatin, polyvinylpyrrolidone, and sucrose. f) Retardants such as cellulose polymer derivatives and starch derivatives, g) Absorption enhancers such as paraffin, cellulose polymers, and fatty acid esters, h) Wetting agents and surfactants such as cetyl alcohol and monostearate glycerol, i) Adsorbents such as bentonite clay and kaolin, k) Lubricants such as talc, calcium stearate, magnesium stearate, polyethylene glycol, sodium lauryl sulfate, and sodium stearyl fumarate, j) Flow enhancers such as talc and colloidal silica, but are not limited to these.
[0103] Solid dosage forms such as tablets, capsules, soft capsules, jellies, pills, and granules may be coated with enteric coatings, gastric coatings, or other types known in the art. These may contain matting agents that allow for the release of only the active ingredient, or, in the case of delayed release, preferably in a specific tubule of the intestine. Substances that can enable such delayed release include, but are not limited to, polymers and waxes.
[0104] The compositions include, for example, medical devices, nutritional supplements, nutritional supplements, meals and nutritional compositions, foods, beverages, nutritional supplements, pharmaceuticals, medicinal foods, foods for specific medical purposes, and foods. The combinations of active ingredients described above can be formulated and used in single compositions according to various embodiments described above, or in kits containing different distinct ingredients, for example, in single compositions such as capsules, pills, or lozenges for sequential or simultaneous administration of different ingredients.
[0105] The above composition is intended for use as a pharmaceutical, specifically in a method for the prevention and / or treatment of tinnitus. Preferably, it is used in a treatment in which the composition is administered at least once a day.
[0106] In one embodiment, the present invention provides the use of the compositions described herein in a treatment for a person suffering from tinnitus, the treatment comprising the person wearing a device in any of the forms described herein. ***
[0107] In fact, it has been experimentally found that patients in a relaxed state are more receptive to the aforementioned methods, and at this point, it will be more understood that the proposed system and method can, but not necessarily, provide a synchronizing function for gastrointestinal intake to the synchronous use of pharmacological principles, preferably of phytotherapy origin. Such principles prepare the auditory organs and their transmission systems for the targeted action of physical means guided by the auditory measurement analysis step, using both their anti-inflammatory and circulatory, as well as relaxant effects. The entire therapeutic system is clearly synergistic, in contrast to currently used methods, which are applied in separate, random ways and have much more limited partial effects.
[0108] Specifically, the proposed system and method overcome the problems of known solutions, which are primarily aimed at shielding and modulating acoustic signals to increase disease tolerance, and also demonstrate a cumulative effect with increasing gradual reduction of the disease through subsequent treatment sessions, thereby enabling a specific effect of reducing and eliminating tinnitus over periods of several hours or several days.
[0109] Advantageously, in clinical practice, the methods enabled by the present invention specifically relate to a preliminary counseling step that helps explore all possibilities and fully explain the patient's symptoms and possible treatments.
[0110] Preferably, the diagnosis is completed by a specialist examination, specifically by evaluation using equipment intended for ear testing such as audiometry, tinnitus testing, impedance analysis, and ABR, and systematically explained by various types of other checks adapted to diagnose secondary tinnitus to further ear-related causes, such as blood tests, ECG, Holter ECG and blood pressure, Eco-Doppler TSA, X-rays, electroencephalography (EEG), and magnetic resonance imaging (MR).
[0111] A further aspect of the present invention provides a method for treating a patient suffering from tinnitus, which preferably includes, but does not necessarily, the step of administering an oral composition as described above to the patient, and a further step of administering sound and electromagnetic waves, preferably using the device described above.
[0112] According to a preferred embodiment, the treatment method includes the steps illustrated below.
[0113] First, the capsule or liquid formulation is taken orally. Preferably, the administration follows this protocol (in the morning, for example, before breakfast).
[0114] After ingestion, for example, at least 30 minutes later, proceed to the first control session and linked programming as shown below.
[0115] Using the sound generator 207, the frequency and intensity of tinnitus disorders are determined, the latter being quantified individually in dB units and recorded in a (paper or electronic) table, which is then displayed, for example, on the control panel of device 200. This table shows the correspondence of each type, such as F1 (Hz), B1 (dB); F2 (Hz), B2 (dB), etc., depending on the number of frequency / intensity pairs associated with the tinnitus disorder.
[0116] The obtained data is used to (re)program the sound generator 207 and, if applicable, the auxiliary sound generator 208.
[0117] For example, the therapeutic acoustic signal emitted by the acoustic generator 207 is programmed (preferably automatically by the "Enter" button), and the signal may, as described above, be generated by an auxiliary generator 208 or mixed with a secondary acoustic signal (sub-signal or external signal) provided by the auxiliary input 211.
[0118] Once the above-mentioned measurement, verification, and programming steps (including hearing tests) are performed, the system proceeds to transmit therapeutic acoustic signals and / or therapeutic electromagnetic signals.
[0119] A first electromagnetic signal with the following frequencies, preferably ranging from 1 kHz to 30 kHz, is administered to the subject via the electromagnetic stimulation inductive means 204, 205 of the headphones 200, for example, when modulated by signals associated with the generators of acoustic signals 207 and / or 208.
[0120] Preferably, the stimulus-inducing means transmits an electromagnetic signal over an application time that preferably includes 15 to 30 minutes.
[0121] Simultaneously, the electromagnetic stimulation capacitive means 214, 215 preferably emit high-frequency, specifically radio frequency, electromagnetic signals via capacitor C. The capacitive means emit the electromagnetic signals in the organ of Corti and the surrounding organs belonging to the cochlear region, the organ of Corti being located in the center of the cochlear region, preferably adjusted so that the patient feels slight heat within this region.
[0122] Once the aforementioned application time has elapsed, control measures will be taken to address the disease status.
[0123] At the end of the session and control, the automated portable device is handed over to the patient. This device is programmed to deliver as determined in the previous step and should be used in the morning over a treatment time that preferably includes 15 to 30 minutes.
[0124] Preferably, about seven days after the first session, input into a module describing key parameters to verify the effectiveness of the programming, and, if necessary, adjust the automated programming of the device supplied to the patient.
[0125] Subsequently, modules are entered once a week, and in some cases, a second module may be entered every other week with additional evaluation parameters.
[0126] A 30-day post-treatment control session allows for the first evaluation of the effectiveness of the treatment itself.
[0127] As described above, advantageously, the method is performed using the same programmable device used in the clinic during preliminary sessions, and then its use at home is left to the patient. Preferably, the device of the present invention cannot be programmed by the patient themselves.
[0128] The present invention has been described above with reference to preferred embodiments. This means that other embodiments belonging to the core of the same invention may exist, as defined by the scope of protection of the claims reported below.
Claims
1. An acoustic device (200) configured to treat tinnitus, wherein the acoustic device (200) - A mountable support (201), - Acoustic signal generating means (207, 208) configured to transmit therapeutic acoustic signals, - A pair of acoustic emitters (202, 203) connected to the acoustic signal generating means (207, 208), each acoustic emitter being positioned on the wearable support (201) so as to be positioned on the user's respective ear during use, - Means for generating electromagnetic signals (206, 209), the means comprising a first inductive stimulator (204, 205) and a second capacitive stimulator (214, 215) configured to transmit therapeutic electromagnetic signals and supported by the support (201) so as to be positioned on the user's auricle during use, Acoustic device (200), wherein the first inductive stimulating means (204, 205) is configured to transmit a first electromagnetic signal within the auditory nerve region, and the second capacitive stimulating means (214, 215) is configured to transmit a second electromagnetic signal within the cochlear region.
2. The acoustic device (200) according to claim 1, wherein the second capacitive stimulating means (214, 215) is configured to transmit a second electromagnetic signal of radio frequency in the frequency range of 1 MHz to 100 MHz.
3. The acoustic device (200) according to claim 2, wherein the second electromagnetic signal of the radio frequency comprises a main signal and one or more secondary signals, the one or more secondary signals comprising a frequency of 2 MHz to 100 MHz, the one or more secondary signals being transmitted simultaneously with the main signal, and the frequency bandwidth of the one or more secondary signals gradually decreasing.
4. The acoustic device (200) according to any one of claims 1 to 3, wherein the second capacitive stimulating means (214, 215) comprises a capacitor formed by a pair of semicircular plate-shaped elements.
5. The acoustic device (200) according to any one of claims 1 to 3, wherein the capacitive stimulating means (214, 215) are coated with an insulating material having a thickness proportional to the frequency of the second electromagnetic signal being transmitted.
6. The acoustic device (200) according to any one of claims 1 to 5, wherein the first inductive stimulating means (204, 205) is configured to transmit the first electromagnetic signal at a frequency included in 1 kHz to 30 kHz.
7. The acoustic device (200) according to any one of claims 1 to 6, further comprising a mixing unit (210) configured to receive two or more input acoustic signals from the acoustic signal generating means (207, 208) and to transmit the therapeutic acoustic signal.
8. The acoustic device (200) according to any one of claims 1 to 7, wherein the acoustic signal generating means (207, 208) is configured to transmit a therapeutic acoustic signal having a variable frequency.
9. The acoustic device (200) according to any one of claims 1 to 8, wherein the acoustic signal generating means (207, 208) comprises an auxiliary acoustic generator (208) configured to generate a secondary acoustic signal having a frequency in the range of 5 Hz to 20 kHz.
10. The acoustic device (200) according to any one of claims 1 to 9, wherein the acoustic signal generating means (207, 208) and / or means for generating the electromagnetic signal (206, 209) are provided with storage means.
11. The acoustic device (200) according to any one of claims 1 to 10, wherein the acoustic signal generating means (207, 208) is configured to be connected to an external signal database (211) of the acoustic device.
12. The acoustic device (200) according to any one of claims 1 to 11, further comprising bidirectional communication means configured to establish a connection between the acoustic device and a control and programming system configured to transmit and / or store data and to remotely program the acoustic device itself.
13. The acoustic device (200) according to claim 12, wherein the connection is a wireless network connection, and the bidirectional communication means comprises an operating system having an operator interface intended to be implemented by the control and programming system and a user interface for the acoustic device (200) that is connected when in use.
14. A kit for treating tinnitus, comprising an acoustic device (200) according to any one of claims 1 to 13, and a composition administered orally simultaneously with the acoustic device (200).
Citation Information
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