Devices, systems, and methods for detecting and monitoring inhalation

The interactive inhalation device with sensor feedback addresses the challenges of training and supervision in existing inhalation systems by enhancing accuracy and reproducibility through real-time monitoring and feedback, optimizing inhalation techniques for effective medication delivery.

JP7736637B2Active Publication Date: 2025-09-09MANNKIND CORP
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Patent Information

Application Number
JP2022105253
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-05-19
Filing Date
2022-06-30
Publication Date
2025-09-09
Estimated Expiration
2037-05-19

AI Technical Summary

Technical Problem

Existing inhalation devices require significant training and supervision for proper use, lack flexibility in application, and have limitations in dosing reproducibility and reusability, leading to ineffective treatment due to improper inhalation techniques.

Method used

An interactive device and method for detecting and measuring inhalation characteristics, including a sensor-equipped inhaler accessory that provides real-time feedback and monitoring, allowing for optimal inhalation training and ensuring accurate medication delivery.

Benefits of technology

The solution enhances the accuracy and minimizes training requirements for using inhalation systems, ensuring consistent and reproducible dosing by providing real-time feedback and monitoring inhalation techniques.

✦ Generated by Eureka AI based on patent content.

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Abstract

An interactive device and method for detecting and measuring real-time characteristic patterns of a subject's use of a dry powder inhalation system is provided. The inhalation device can be used in a wireless communication mode to communicate with a display to evaluate the subject's use of the inhalation system as the inhalation is being performed, so that the subject's inhalation can be similarly evaluated as the performance of the inhalation system. The system can also detect identification information such as the drug, its dosage, lot, and breath, as well as a characteristic profile of the dry powder formulation emitted from the inhalation system during use.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 62 / 338,971, filed May 19, 2016, the entire disclosure of which is incorporated herein by reference.

[0002] Described herein are interactive devices and methods for recording, transmitting, and displaying physical measurements in real time based on physiological conditions generated while a subject is performing an inhalation maneuver. [Background technology]

[0003] Inhalation devices are commercially available for administering therapeutic substances via the respiratory tract, particularly to the lungs, to treat local or systemic diseases. For example, nebulizers, propellant-filled devices, and dry powder inhalers have been used to treat systemic diseases such as asthma, respiratory tract infections, and diabetes.

[0004] The efficiency of delivering the required dosage of a therapeutic substance to a patient for the treatment of a disease depends on the efficiency of the device, and overall efficiency can be improved by providing appropriate feedback mechanisms to the patient, clinician, or physician during use of the device, for example, to instruct the patient on proper inhalation technique. Improper use of the device or poor inhalation technique can lead to ineffective treatment of a disease. For example, administering a lower or higher dosage of a therapeutic substance than intended can be harmful to the patient. To efficiently deliver a therapeutic substance to the airways, the patient or user can be trained or instructed on the appropriate use of the device.

[0005] Dry powder inhalers used to deliver drugs to the lungs typically contain a powdered prescription dose supplied in bulk or divided into individual doses stored in unit-dose compartments, such as hard gelatin capsules, cartridges, or blister packs. Dosing reproducibility requires that the prescription be uniform so that the dose can be delivered to the patient with consistent and reproducible results. Thus, dosing can be improved by optimizing the prescription, achieved, for example, by having the patient perform the appropriate inhalation maneuver to achieve the required dose.

[0006] A device for training a patient to properly deliver a therapeutic substance via the pulmonary tract is described, for example, in U.S. Patent No. 5,333,106, which discloses an apparatus for interactive patient training in the use of an aerosol inhaler, including a feedback display based on airflow-volume data using a proper inhalation procedure. U.S. Patent Application Serial No. 10 / 759,859 (U.S. Patent Application Publication No. 2004 / 0187869) discloses a training device for pharmaceutical inhalers, such as dry powder inhalers, that is based on measuring pressure differentials and displaying a single value corresponding to both the inhalation rate and peak inhalation flow rate, and that uses a dry powder inhaler simulator.

[0007] Nos. 8,499,757 and 8,636,001, the entire disclosures of which are incorporated herein by reference, teach dry powder inhalers. Such dry powder inhaler and cartridge systems can generate primary drug particles or a suitable inhalable smoke stream by deagglomerating the powdered formulation within the inhaler and capsule or cartridge during the inhalation maneuver. The advantages of delivering drugs via the pulmonary circulation are numerous, including rapid arterial entry, avoidance of first-barrier drug degradation by hepatic metabolism, and ease of use and comfort compared to other routes of administration, such as injection. These devices have been used clinically and are currently commercially available.

[0008] An interactive apparatus and method for profiling inhalation activity is disclosed in US Pat. No. 9,364,619, the disclosure of which is incorporated herein by reference in its entirety. Summary of the Invention [Problem to be solved by the invention]

[0009] There is a need in the art for improvements in the design and manufacture of inhalation devices that maximize accuracy and require minimal training and activity by the subject for proper use of the inhalation system, as well as minimal supervision of the subject during use of the inhalation system and the entire course of treatment, as well as improvements in flexibility of application to inhaler components, including the inhaler and medication packaging, and reusability of such systems overall. The present disclosure presents devices and methods that achieve these goals. [Means for solving the problem]

[0010] Described herein is an interactive device for detecting and measuring inhalation characteristic parameters of an inhalation system during use, including patient use of the inhaler and an inhaler associated with the device. In disclosed embodiments, the device and methods for using the device are useful for sensing, detecting, measuring, and monitoring a subject's characteristic inhalation profile or breathing pattern, for example, by collecting data generated from the subject's inhalation maneuver and identifying the effort required to deliver an appropriate or therapeutic dose via an inhaler provided to the subject for use in a treatment plan. The device and method are also useful for training / instructing a subject, for example, to use an inhaler to effectively treat their disease, disorder, or condition, thereby ensuring that the subject receives an appropriate dose of the medication being delivered. In certain embodiments, the device can comprise any inhaler, particularly a high-resistance dry powder inhaler for delivery of one or more pharmaceutically active ingredients or drugs to the lungs, thereby treating the subject's pulmonary and systemic circulation. In some embodiments, the dry powder inhaler is breath-actuated, and when used by a patient, the patient can observe the magnitude of the effort exerted during inhalation, which is simultaneously displayed along with the actual inhalation being performed.

[0011] Exemplary embodiments of the inhalation devices and systems disclosed herein include an inhaler accessory that is a separate device, which is attachable or attachable to the inhaler such that it can be attached to or attached to the inhaler during use and is detachable from the inhaler after use.

[0012] In some embodiments, a detection and monitoring system is provided that includes an inhaler used by a patient and a corresponding inhaler accessory configured to fit with or be compatible with the inhaler, such that the inhaler can be removed or disconnected from the inhaler accessory, and the patient can pick up and use the inhaler for self-administration of a dose of medication as prescribed by a physician for inhalation. The inhaler accessory includes a body structurally configured to engage with the inhaler prescribed to the patient, optional display means for displaying visual cues, including, for example, a display screen comprising light-emitting diodes (LEDs) (e.g., for power on and for battery charge status or other status) or a liquid crystal display (LCD), a touchscreen or other interactive display that can be miniaturized to fit with the inhaler accessory or located remotely to other portions of the detection and monitoring system, and an electronics board comprising a microprocessor and one or more sensors. In some embodiments, the inhaler accessory device includes a receiver and transmitter or transceiver for detecting signals emanating from the inhaler, which communicates wirelessly or via wires with a computer, and a personal digital assistant (PDA), tablet, and / or cell phone for displaying information from the inhalation maneuver being performed by the patient or user in an application or otherwise in real time as it is occurring. The inhaler accessory device also preferably includes a serial (e.g., USB) or other port to allow for data transfer and battery charging.

[0013] In some embodiments, a method is provided that includes providing an inhaler accessory for connection to a subject's inhaler, activating the inhaler accessory system, having the subject inhale while simultaneously monitoring the subject's inhalation with the inhaler accessory, and facilitating training and / or monitoring of the subject to achieve an optimal or appropriate exhalation maneuver for effective delivery of therapy to the respiratory system. The detection and monitoring system facilitates training the subject to properly use the inhalation device to achieve a preferred flow profile for the individual, thereby achieving optimal delivery of the medication. The devices and methods can also be used to monitor the performance of the inhalation system provided to the patient, e.g., detection of the delivered dose, quantification of the delivered medication, duration of expulsion of the delivered dose, number of doses administered to the subject, as well as the mechanical integrity of the inhalation system in real time and / or when storing data for future analysis. In certain embodiments, the inhaler or inhaler components (e.g., cartridges) used with the inhaler accessory can include codes or identifiers, e.g., radio frequency identification (RFID), color coding, laser etching, text, etc.

[0014] In exemplary embodiments, an inhaler accessory for an inhalation monitoring system can be made to operate interactively, for example, the device can include a wireless communication interface that allows for remote acquisition of data and transmission of that data to a computer, tablet, smartphone, or other microprocessor-based system that provides interactive data display, data recording, and / or web-based information transfer. Alternatively, other exemplary embodiments can include a wired communication interface.

[0015] In one exemplary embodiment, the device can be adapted for a high resistance dry powder inhalation system, such as those described in U.S. Patent Nos. 7,305,986 and 7,464,706, U.S. Patent Application Nos. 12 / 413,405 and 12 / 484,125, the disclosures of which are all incorporated herein by reference in their entireties for all they disclose regarding dry powder inhalers. The device can include a dry powder inhaler with or without a cartridge for storing a drug formulation, one or more electrical, electronic, electromechanical, electromagnetic, photonic, or photovoltaic transducers, such as pressure, temperature, acoustic, and optical sensors, signal conditioning circuitry and / or a software program, electronic signal communication means, and an output display. In such exemplary embodiments, the device can be used with analog or digital sensors, appropriate signal conditioning such as amplification, signal filtering, analog-to-digital conversion, a microprocessor for on-board processing, and a wireless communicator for communication with a remote computer, tablet, cell phone, or personal digital assistant (PDA) for subsequent signal processing and / or real-time output display. The device can be used to deliver a pharmaceutical composition containing an active ingredient stored in a pre-metered unit dose cartridge for delivery to the pulmonary circulation. In an alternative exemplary embodiment, the sensing monitor can be mounted on or within an inhalation system that includes a dry powder inhaler having a cartridge that is empty or capable of storing a dry powder suitable for delivery to the lungs.

[0016] Dry powders comprised of microparticles suitable for pulmonary delivery are well known in the art, as disclosed, for example, in U.S. Patent Nos. 8,499,757 and 8,636,001, the disclosures of which are incorporated herein by reference in their entireties for all they disclose regarding microparticles. In each exemplary embodiment of the dry powder, the active ingredient can be, for example, a protein, peptide, or polypeptide, and combinations thereof, and can be an endocrine hormone, such as insulin, glucagon-like peptide-1 (GLP-1), parathyroid hormone, or analogs thereof.

[0017] In certain embodiments, the dry powder formulation for delivery to the pulmonary circulation is comprised of an active ingredient or agent such as a peptide, protein, hormone, analogue thereof, or combination thereof, the active ingredient being insulin, calcitonin, growth hormone, treprostinil, palonosetron, tobramycin, filgastrin, erythropoietin, granulocyte-macrophage colony-stimulating factor (GM-CSF), chorionic gonadotropin-releasing factor, luteinizing hormone, follicle-stimulating hormone (FSH), vasoactive intestinal peptide, parathyroid hormone (including black bear PTH), parathyroid hormone-related protein, glucagon-like peptide-1 (GLP-1), exendin, pramlintide, oxyntomodulin, peptide YY, deoxyribonuclease 1, interleukin-2-inducible tyrosine kinase, Bruton's tyrosine kinase (BTK), inositol-requiring kinase 1 (IRE1), or analogs, active fragments, PC-DAC modified derivatives, or O-glycosylated forms thereof, epinephrine, antibacterial agents, or antifungal agents. In certain embodiments, the pharmaceutical composition or dry powder formulation consists of fumaryl diketopiperazine, wherein the active ingredient is one or more selected from insulin, parathyroid hormone 1-34, GLP-1, oxyntomodulin, peptide YY, heparin, parathyroid hormone releasing peptide (PTHrP), 5-hydroxytryptamine receptor, prostacyclin or PGI2, neurotransmitter agonists and antagonists including epinephrine, norepinephrine, and analogs thereof.

[0018] In one exemplary embodiment described herein, the device includes a sensor in communication with the dry powder inhaler, the sensor being capable of detecting at least one signal, including pressure, flow rate, temperature, and acoustic signals generated from the dry powder inhaler system, and transmitting the signal to at least one device for analysis, storage, printing, or display. In such an exemplary embodiment, the sensor is configured to be internal to or attachable to the dry powder inhaler, and the sensor may be a microphone.

[0019] In one exemplary embodiment, the inhalation system includes a dry powder inhaler having a high resistance to airflow, with a resistance value between about 0.065 (√kPa) / liter per minute and about 0.200 (√kPa) / liter per minute. The high resistance inhalation system can be provided with a detection and monitoring device. In some embodiments, a sensor can detect an intrinsic characteristic signal generated by the inhaler during use. In another exemplary embodiment, the sensor is an acoustic sensor including an acoustic detection device or microphone, configured to transmit an acoustic signal to at least one other device in the system via wired or wireless communication. The detection and monitoring device for a dry powder inhaler described herein can further be associated with an analog-to-digital converter that transmits at least one signal, such as an acoustic signal, to a microprocessor configured to analyze and process the signal. In another exemplary embodiment, the at least one device is an analog-to-digital converter.

[0020] In one exemplary embodiment, a monitoring system for a dry powder inhaler is described that includes a monitoring device that includes at least one sensor, an analog-to-digital converter, and a data storage medium that includes a set of machine-readable instructions that are executable by a processing device that implements an algorithm, the algorithm including instructions for manipulating the data including one or more of receiving data from the at least one sensor, filtering the data, converting the data, analyzing the data, and monitoring a patient using the data.

[0021] In exemplary embodiments in which at least one sensor is a microphone, the sensor is located anywhere within the inhaler, for example, within the airflow conduit, within the wall of the inhaler, or as a separate component on the exterior of the inhaler. In another exemplary embodiment, the monitoring device may be a removable device that may be attachable or attachable to the dry powder inhaler. In yet another exemplary embodiment, the monitoring device provides a graphical display that is a real-time graph of inhalation.

[0022] In another exemplary embodiment, the acoustic signal is an acoustic signal amplitude, an acoustic signal frequency, or a combination thereof. In yet another exemplary embodiment, the sensor further measures at least one acoustic signal at a different frequency. In another exemplary embodiment, the dry powder inhaler further comprises a cartridge, which can contain a dry powder for delivery to the lungs. Further, the dry powder can include diketopiperazine microparticles and at least one active ingredient. In yet another embodiment, the at least one drug comprises insulin, GLP-1, parathyroid hormone, calcitonin, an analog thereof, or a combination thereof.

[0023] In a further embodiment, the sensing and / or monitoring device is configured to detect signals from the delivered dose. In this embodiment, the sensing and monitoring system can detect the movement of powder particles within the inhaler and cartridge system during use, from the start of powder delivery from the cartridge to the end of powder particle delivery, with sensors detecting changes in essential characteristics of the inhaler's acoustics and the acoustics of the powder particles emanating from the inhalation system. Data obtained from the detection can be analyzed and correlated with the dose emitted or delivered through the inhalation system, the time elapsed for dose delivery, and the performance of the inhalation system.

[0024] In another exemplary embodiment, the detection and monitoring device can be provided as a removable device, such as a jacket or saddle structure on the dry powder inhaler. In this embodiment, the removable device facilitates use of the inhalation system because the structure or configuration of the dry powder inhaler is not altered. Thus, once the characteristic performance of the inhaler has been determined and the subject is able to use it properly, the same inhaler can be used without the jacket. In embodiments herein, a sensor, such as a miniature microphone, can be suitably attached to any area of ​​the jacket, for example, embedded in the wall of the jacket or adapter, or extending from the wall of the jacket. In this embodiment, the detection and monitoring device can provide a more accurate indication of the acoustic signature emanating from the dry powder inhaler and cartridge system during use.

[0025] In one embodiment, a method for measuring pressure differences during an inhalation maneuver is described, the method including providing an inhaler to a subject, the inhaler comprising a sensor configured to detect at least one amplitude of an acoustic signal, at least one frequency of an acoustic signal, or a combination thereof, generated from the inhaler, and having the subject inhale for at least one second; analyzing the at least one amplitude of the acoustic signal, the at least one frequency of the acoustic signal, or a combination thereof, using an algorithm provided by a microprocessor of a computer system to generate a data set; and displaying, printing, or storing the data set as a function of time and pressure.

[0026] In a further embodiment, a monitoring system for a dry powder inhaler is described herein, the monitoring system comprising a monitoring device having at least one sensor including an acoustic sensor, a Doppler, an analog-to-digital converter, and a data storage medium, the data storage medium comprising a set of machine-readable instructions executable by a processing unit that implements an algorithm, the algorithm comprising instructions for manipulating the data including receiving data from the at least one sensor, filtering the data, converting the data, analyzing the data, and monitoring the patient using the data.

[0027] Still further, in some embodiments, a method of measuring pressure differences during an inhalation maneuver is described herein, the method including providing an inhaler to a subject, the inhaler comprising a sensor configured to detect at least one amplitude of an acoustic signal, at least one frequency of an acoustic signal, or a combination thereof, generated from the inhaler, and having the subject inhale for at least one second; analyzing the at least one amplitude of the acoustic signal, at least one frequency of the acoustic signal, or a combination thereof, using an algorithm provided by a computer system to generate a dataset; and displaying, printing, or storing the dataset as a function of time and pressure.

[0028] In other embodiments, an interactive dry powder inhalation system for monitoring inhalations performed by a user is described herein, the interactive dry powder inhalation system including an inhaler accessory device having at least one microprocessor and one or more active sensors, including a Doppler effect sensor and / or an infrared sensor, capable of measuring air or gas flow; and a dry powder inhaler having a cartridge with a type identifier, such as color, laser etching, printed numbers, printed letters, or the like, that is identifiable by a perception beam, including a laser beam, RFID, optical recognition, image sensor, or the like, where the perception beam can detect the identifier code integral with the cartridge to detect color, dose type, dose amount, or the like. An image detection sensor may be used with on-board or remote computing to detect dose or other identifier using optical character recognition. In some embodiments, the dry powder inhaler has a flow resistance of 0.065 (√kPa) / liter per minute to 0.200 (√kPa) / liter per minute, a transducer configured to detect a signal generated from the inhaler during use, and a display configured to display inhalation maneuvers performed by the user in real time. In another embodiment, the transducer detects and measures a pressure difference within the inhaler. Additionally, the transducer may be a flow meter configured to detect and measure the flow rate through the air conduit of the dry powder inhaler. The transducer may be, for example, a microphone configured to detect and measure acoustic signals generated from within the inhaler.

[0029] In yet another embodiment, a detection and monitoring device for fitting to a dry powder inhaler is described herein, the detection and monitoring device comprising a removable device structurally configured to fit to the dry powder inhaler, the removable device comprising a microphone for detecting sound generated in the dry powder inhaler, the dry powder inhaler having a flow resistance value of between 0.065 (√kPa) / liter per minute and 0.200 (√kPa) / liter per minute.

[0030] Further, in some embodiments, a detection monitoring device for a dry powder inhalation system is described, the dry powder inhalation system comprising a dry powder inhaler and a cartridge, and the detection monitoring device comprising a microphone configured to detect an acoustic signal generated from a dry powder formulation released from the dry powder inhalation system.

[0031] In some embodiments, the dry powder inhaler includes a housing, a movable member, and a mouthpiece, the movable member being operable to move the container from a powder storage position to a dispensing position. In this and other embodiments, the movable member can be configured as part of a lid assembly at the proximal end of the inhaler and form part of the cartridge mounting area. In this embodiment, the mouthpiece is integrally constructed with a lid or cover that covers the housing over the cartridge mounting area when the inhaler is closed. Moving the mouthpiece downward from a horizontal plane moves the lid or cover at an angle relative to the vertical position, opening the inhaler to provide access to the interior of the inhaler and allowing for loading and unloading of a cartridge. Conversely, moving the mouthpiece upward from a vertical plane to a horizontal plane closes the inhaler and automatically creates an opening of an airway between the inhaler and a cartridge loaded on the cartridge mounting area.

[0032] In another embodiment, a dry powder inhaler comprises a body, a housing, and a mouthpiece, the inhaler structurally configured to have an open position, a closed position, and a mechanism operatively configured to receive and retain a cartridge and to reconfigure the cartridge from a storage position to a dispensing, dosing, or dose delivery position upon moving the inhaler from the open position to the closed position. In a variation of this embodiment, the mechanism is also capable of reconfiguring a cartridge attached to the inhaler from a dosing position to a storage position when the inhaler is opened after use and the used cartridge is removed. In some embodiments, the mechanism is capable of reconfiguring the cartridge to a disposable or disposal configuration after use.

[0033] In some embodiments, the inhaler body comprises a proximal portion comprising a mouthpiece, a body, and a distal portion comprising a housing structurally configured as a slip-on cover over portions of the body and internal components of the inhaler, the housing having a distal end and a proximal end, the proximal end having an opening for fitting and sealing portions of the inhaler body. In some embodiments, the proximal end contacts or abuts the inhaler body to close the inhaler from the external environment. From the closed configuration, the inhaler is opened by moving the housing in a translational motion distally on the body to reach an inhaler loading and / or unloading position for inserting or removing a cartridge. When the cartridge is attached to the inhaler, translational movement of the housing on the body from distal to proximal moves the cartridge from the storage configuration to the dispensing configuration, and the cartridge container is pushed to the dispensing configuration by a protrusion configured on the interior of the housing that extends beyond the opening at the proximal end. In the closed configuration, the cartridge attached to the inhaler is reconfigured to form an additional air flow path with the mouthpiece and ambient air for accessing the dry powder in the cartridge in the dosing configuration upon inhalation. In this and other embodiments, the air flow path of the cartridge in the dosing configuration has an air inlet and an air outlet that communicates with the air flow path of the mouthpiece, and the mouthpiece has its own air inlet and air outlet.

[0034] In some embodiments, the inhaler body includes a mouthpiece formed at the proximal end of the body, which communicates with the interior of the housing and has an air conduit that can communicate directly with the air outlet of a cartridge attached to the inhaler and with ambient air. The inhaler body also includes a cartridge mounting region that is structurally continuous with the mouthpiece and has a distal portion and a proximal portion, which form a single piece with the mouthpiece and are insertable into the housing. In some embodiments, the body and housing can be separated to reach an open configuration of the inhaler for access to the internal components. In this open configuration, a cartridge containing dry powder can be loaded or attached to the cartridge mounting region of the body, and the body and housing can be pushed or pulled to open or close the inhaler. In some embodiments, the housing is movable over the distal portion of the body from the open configuration to a closed configuration, which together close the inhaler and create an air conduit through the cartridge attached to the cartridge mounting region. In this configuration, the inhaler reaches a dispensing configuration in which powder in the cartridge is released from the inhaler upon oral inhalation by a user through the mouthpiece. In the dispensing configuration of this embodiment, the body and housing abut against each other and are tightly fitted together by one or more anti-slip structures to prevent the inhaler from coming apart. Examples of anti-slip features are snap rings or detents, which can generate a sound to notify the user that the inhaler is ready for use. In some embodiments, the inhaler is generally rectangular in shape, with shorter distal and proximal lengths, and movement of the housing over the body, or vice versa, is achieved by pulling or pushing, as well as the inhaler body having guide rails or tracks extending outward from the longer sides (first and second sides) of the inhaler in a longitudinal cross section. In this embodiment, the inhaler body is designed with an opening at its distal end to fit into the opening at the distal end of the housing to receive and direct ambient air into the internal chamber of the inhaler during inhalation.The housing is also suitably configured with grooves or slots for sliding on the guide rails during movement, and further includes stops to prevent disassembly of the inhaler, and a push element for placing the cartridge in a dispensing configuration after installation and closing of the inhaler. The push element moves the cartridge cup or container relative to the cartridge lid to form an air flow path through the cartridge, creating an air inlet and an air outlet, and allowing aerosolization of powder in the cup during inhalation for delivery of aerosolized particles to the inhaler mouthpiece and the user. In another embodiment, the push element also moves the cartridge assembly to position the lid against the inlet opening located in the floor of the mouthpiece. In one aspect of this embodiment, the dry powder inhaler includes a housing with a push element, which places the cartridge in alignment with the mouthpiece by translating the housing over the inhaler body from an open configuration to a closed configuration.

[0035] In some embodiments, a dry powder inhaler includes a housing having a distal end and an opening configured for communication with ambient air. In some embodiments, the housing is configured in the form of a cover that slides over the inhaler body, substantially enclosing a portion of the inhaler body, and the housing moves translationally over the distal portion of the body. The inhaler can reach two configurations: a first position that opens the inhaler to access its internal compartment, the chamber, and a second position that abuts the proximal end to close the inhaler. In some embodiments, the distal portion of the housing is also movable relative to the proximal end in a horizontal plane and extends distally to allow access to the inhaler's internal components and completely surround the inhaler body. In a variation of this embodiment, the distal portion of the housing includes a juxtaposed structure or flange for engaging a portion of the inhaler body, e.g., forming a locking mechanism for locking the inhaler body with the housing to secure the two parts together and maintain a dosing configuration. In certain embodiments, the distal portion of the housing has an opening at its distal end for communicating with the interior of the inhaler and configured to slide over the inhaler body. The distal portion of the housing also comprises an outer surface, an inner surface, and a chamber configured to slide over the inhaler body. In some embodiments, the distal portion of the inhaler comprises parallel wing-like structures on its upper surface to direct airflow to the mouthpiece during inhalation.

[0036] In alternative embodiments, the mouthpiece is engaged with the body of the inhaler by various mechanisms, including movable members such as hinges, and is integrally configured with a movable assembly including a rack for moving the cartridge lid relative to the cartridge cup or receptacle. The movable assembly is configured to receive and reconfigure a cartridge attached to the inhaler from a storage position to a dispensing position, and can be designed to operate manually or automatically when moving the inhaler components, for example, by closing the device from an open configuration. In some embodiments, the mechanism for reconfiguring the cartridge is attached to the mouthpiece and comprises a sliding tray or sled movably attached to the housing. In another embodiment, the mechanism is attached to or adapted to the inhaler, for example, comprising a geared mechanism integrally mounted within the hinge of the inhaler device. In yet another embodiment, the mechanism configured to receive and reconfigure a cartridge from a storage position to a dispensing position comprises, for example, a cam that can reconfigure the cartridge upon rotation of the housing or mouthpiece. In some embodiments, angular rotation of the mouthpiece from a horizontal plane opens the inhaler to allow for installation or removal of the cartridge, and angular movement of the mouthpiece from a vertical plane to a horizontal plane closes the mouthpiece and automatically reconfigures the cartridge from the storage position to the dispensing position. In certain embodiments, a gear mechanism in motion positions the cartridge lid against the entrance opening of the mouthpiece and translates the cup to the dispensing configuration.

[0037] In some embodiments, the subject is provided with an inhaler for use by the subject, and a patient inhalation profile is determined using an inhaler accessory device adapted to the inhaler by activating the inhaler device and system and asking the patient to inhale using the inhaler mouthpiece. Simultaneously with the patient's breathing, the inhaler accessory device displays data detected and monitored by a system or indicator related to such data generated in real time from the patient's breathing. In this and other embodiments, the display can be viewed on a mobile phone, tablet, PDA, or computer equipped with an algorithmic application that communicates with a microprocessor on the inhaler accessory device equipped with a microwave wireless signal transmitter and receiver, or transceiver, such as Bluetooth®, Zigbee®, WiFi, SmartWave, or Z-Wave, where the microwave wireless signal is detectable by an application provided on the mobile phone that can communicate with the inhaler accessory. In some embodiments, the microwave wireless signal from the transceiver can be transmitted from the microprocessor and received by the transceiver of the computer for communication with each other. In one embodiment, the inhaler accessory communicates with a tablet, personal digital assistant (PDA), or cell phone, which, when turned on, has access to a programmed application that displays a screen with a graphical interface that can communicate with the inhaler accessory and detect any information / signals generated from the inhalation system. [Brief explanation of the drawings]

[0038] [Figure 1] FIG. 1 shows an isometric view of an embodiment of a wireless dry powder detection and sensing inhaler accessory attached to an inhaler. [Figure 2] FIG. 2 shows an isometric view of an embodiment of a wired dry powder detection sensing inhaler accessory embodiment attached to an inhaler. [Figure 3] FIG. 3 shows a top isometric view of an embodiment of a wireless detection sensing inhaler accessory. [Figure 4] FIG. 4 shows a bottom isometric view of an embodiment of a wireless detection and sensing inhaler accessory, showing the electronics board. [Figure 5] FIG. 5 shows a top view of the electronic board of FIG. [Figure 6] FIG. 6 shows an isometric view of a dry powder inhaler coupled to an embodiment of a detection sensing inhaler accessory such as that shown in FIG. 1, including an integrated signal indicator button. [Figure 7] FIG. 7 shows an isometric view of a dry powder inhaler coupled to an embodiment of a detection sensing inhaler accessory such as that shown in FIG. 2, including a local signal indication button. [Figure 8] FIG. 8 shows an isometric view of an embodiment of a wireless dry powder detection and sensing inhaler accessory that is attached to an inhaler and includes an integrated display screen. [Figure 9] FIG. 9 shows a block diagram of an overall embodiment of the wireless detection and monitoring system disclosed herein. [Figure 10] FIG. 10 shows a block diagram of an embodiment of a detection monitoring system disclosed herein. [Figure 11] FIG. 11 shows a block diagram of another embodiment of a detection monitoring system disclosed herein. [Figure 12] FIG. 12 visually illustrates an inhalation maneuver performed by a subject instructed to inhale to monitor inhalation efficacy for medication administration. [Figure 13] FIG. 13 shows a block diagram of an embodiment of the wireless detection and monitoring system disclosed herein in which the inhaler accessory includes a pressure sensor. [Figure 14] FIG. 14 shows a block diagram of an embodiment of the detection and monitoring system disclosed herein in which the inhaler accessory includes a pressure sensor and a display. [Figure 15] FIG. 15 shows a block diagram of another embodiment of the detection and monitoring system disclosed herein in which the inhaler accessory includes a pressure sensor and a visual indicator. [Figure 16]FIG. 16 shows a block diagram of an embodiment of the wireless detection and monitoring system disclosed herein in which the inhaler accessory includes a color detection sensor and a pressure sensor. [Figure 17] FIG. 17 shows a block diagram of an embodiment of the detection monitoring system disclosed herein in which the inhaler accessory includes a color detection sensor and a display. [Figure 18] FIG. 18 shows a block diagram of another embodiment of the detection monitoring system disclosed herein in which the inhaler accessory includes a color detection sensor and a visual indicator. [Figure 19] FIG. 19 illustrates a method for training or monitoring a user's inhalation with the system of FIG. DETAILED DESCRIPTION OF THE INVENTION

[0039] Disclosed herein are devices and / or apparatuses having an interactive system for measuring or monitoring real-time changes in pressure or pressure drop and / or flow characteristics from a subject during an inhalation maneuver through an inhaler, and methods thereof. The devices can be used in conjunction with an inhalation device to detect, monitor, and consequently train the subject to maximize the efficiency of their breathing maneuver, and can also be used to monitor inspiration during drug delivery to detect proper dose delivery, dose delivery timing, and proper performance of the inhalation system during use. In one exemplary embodiment, the detection and monitoring device can be applied in conjunction with a high-resistance inhaler. In embodiments herein, the detection and monitoring system can be used in conjunction with an inhaler, particularly a dry powder inhaler, to measure a number of characteristic parameters of the inhalation maneuver, including data generated to assess peak inhalation activity (PIP2) within the first two seconds of inhalation, total inhalation activity (AUC1) during the first second of inhalation, total inhaled volume during the patient's inhalation activity, and duration of inhalation. Although the handheld inhaler system is described as having two parts, an inhaler and an inhaler accessory, those skilled in the art will appreciate that the inventive design of the present system and method for measuring or monitoring data and characteristics during an inhalation maneuver can also be applied to devices in which the accessory functions are integrated into the inhaler itself, albeit at the expense of versatility and reusability.

[0040] The device includes an inhaler accessory suitable for mounting on or otherwise associating with an inhaler. The device, in turn, includes at least one transducer or sensor capable of detecting at least one measurement, including pressure, airflow, air volume, humidity, and temperature, and converting it into an electrical signal. In some embodiments, the sensor can include a Doppler sensing device capable of detecting the flow of air or gas through the inhaler. In other embodiments, the sensor includes a pressure sensor capable of detecting a pressure drop during an inhalation maneuver. The inhaler accessory can further include an electronics board having circuitry including appropriate signal conditioning circuitry, such as signal filtering, amplification, and analog-to-digital conversion, as well as processing circuitry, such as a microprocessor, for simultaneously or in real time transmitting the generated signals to a receiving computer or personal digital assistant (PDA), including a mobile phone, for display of the signals or processed information, and a wired or wireless communication interface. In some embodiments, the output display can be an interactive display, whereby the display device provides visual support to allow the physician and / or patient to view the achieved inhalation maneuver parameters. In this manner, the information obtained can serve as a teaching guide for the subject to perform a repeatable inhalation maneuver in real time, thereby facilitating proper inhalation delivery of the medication when self-administered. In another exemplary embodiment, the data can be stored for later analysis.

[0041] 1-7 illustrate embodiments of a dry powder inhaler system or training device and its component parts. The training device interactive system described herein is adapted for high resistance dry powder inhalers such as those disclosed in U.S. Pat. No. 8,499,757, U.S. Pat. No. 8,636,001, and U.S. Provisional Patent Application No. 62 / 289,095, the disclosures of which are incorporated herein by reference for all they disclose regarding dry powder inhalers.

[0042] 1 and 2 illustrate wireless and wired inhalation detection and monitoring systems 10, 12, respectively. The systems include an inhaler 14 with a mouthpiece 15 having an air conduit 16 and an air outlet port 17 for delivering powder to a user / patient. The inhalation detection and monitoring systems 10, 12 also include an inhaler accessory 18 suitable for mounting on, connecting to, or otherwise associating with the inhaler 14. In this embodiment, the inhaler accessory includes an actuator button 19 for powering the system 10, 12 on and off. Air conduits are established between one or more air inlet ports to establish air conduit paths through the system, at least one of which, during use, travels through a receptacle that stores dry powder for delivery to an individual. In some embodiments, the inhaler does not contain powder during patient training in proper use of the inhaler. In the embodiments of FIGS. 1 and 2, the inhaler 14 is the same type of dry powder inhaler, and the inhaler accessory 18 is compatible with the top surface of the inhaler 14. FIG. 2 shows an inhaler accessory 18 having wires 22 connected to the system for connection to a power source and / or computer.

[0043] FIG. 3 shows a top isometric view of another embodiment of an inhaler accessory 24 designed to fit into an inhaler. FIG. 4 shows a bottom isometric view of the accessory 24. As can be seen from FIGS. 3 and 4, the accessory 24 preferably includes a body having tabs 25, 25′ for attaching to the inhaler. However, other types of fastening devices known to those skilled in the art can be used to engage the device with the inhaler. The accessory 24 also preferably includes an actuator button 26 for activating the device for use. In this embodiment, the body has a top surface 27, a bottom surface 28, and an electronics board 30 attached to the bottom surface. FIG. 4 shows an embodiment of the inhaler accessory 24 having the electronics board 30 integrally incorporated into its bottom surface 28. FIGS. 4 and 5 further illustrate the electronics board 30. The electronics board 30 preferably includes an actuator 26′ mechanically or otherwise connected to the actuator button 26, a sensor 29, and a microprocessor 32. The microprocessor 32 provides for initiation, detection, and processing of signals from the associated inhaler and communication of information / signals to a display device. In this embodiment, the electronics board 30 is configured as a signal processing / interface board. The sensor 29 can be any type of sensor, such as an acoustic sensor for detecting sounds produced during inhalation or a pressure sensor for detecting pressure drops during inhalation. The inhaler accessory 24 is also preferably provided with a battery as a power source for activating the system when the actuator button is depressed. Those skilled in the art will appreciate that the electronics included in the inhaler accessory 24 can be provided as separate circuit components on separate boards, connected by appropriate means as needed for functionality. For example, the microprocessor 32 can reside on a separate board from the sensor 29, depending on the placement needs of the sensor 29.

[0044] In another embodiment, the inhalation detection and monitoring system is provided with indicators as shown in FIGS. 6 and 7. FIG. 6 shows an isometric view of the dry powder inhaler coupled to the inhaler accessory shown in FIG. 1, showing signal indicators 35, 36. FIG. 7 shows an isometric view of the dry powder inhaler coupled to the inhaler accessory 18 shown in FIG. 2, showing signal indicators 35, 36. The signal indicators 35, 36 are preferably light-emitting diodes or other light indicators for indicating a particular status to the user. For example, they can be used to indicate whether the inhalation of the drug was successful. In this case, for example, one indicator can show a red signal light and the other can show a green signal light during operation. The signal indicators 35, 36 indicate failure or success accordingly. A failed inhalation indicator (red light) indicates that the subject's or patient's inhalation attempt did not meet one or more predetermined criteria for inhaling the powder dose contained in the inhaler, while a successful inhalation indicator (green light) indicates that the subject's or patient's inhalation attempt met the appropriate criteria for delivering the powder dose contained in the inhaler. Alternatively, only one signal indicator may be used where the color can be selected based on the status, or where, for example, flashing can be used to indicate the status. Other uses of the signal indicators 35, 36 could include indicating power on / off, power failure, or low battery, or the connection status between an accessory device and the inhaler.

[0045] FIG. 8 shows an isometric view of an alternative embodiment of the wireless dry powder detection and sensing inhalation system 12, depicting an inhaler accessory 42 mounted on an inhaler 14 and having a display screen 44 integrally configured on the body of the accessory 42, thereby allowing the patient to visualize their inhalation maneuver simultaneously. In this embodiment, the inhaler accessory 42 includes an electronics board 30, as shown in FIGS. 4 and 5, where signal information relating to the inhaler is processed by a microprocessor 32 and the resulting processed information is communicated to the display screen 44, where it is preferably presented as a graphical display compared to one or more predetermined criteria for the inhaler being used. The graph and associated data points are preferably stored locally on the electronics board 30, but can also be stored remotely. In this and other embodiments, the predetermined criteria for the inhaler depend on the inhaler and drug being used. In some embodiments, and in the embodiment shown in the figures herewith, the criteria used are those previously indicated, such as peak inspiratory pressure, emitted dose, etc.

[0046] Figures 9, 10, and 11 illustrate various operational embodiments of the inhalation detection and monitoring system shown in Figures 1-8. Figure 9 illustrates a block diagram of an overall embodiment of a wireless detection and monitoring system 50 disclosed herein. In Figure 9, the system 50 includes two components: an accessory 54 and a processing system 56. In this embodiment, the inhaler accessory 54 includes an electronics board having two sensors 51, 52, a battery 53, a microprocessor 70, and a radio or transceiver 72. The analog sensor 51 and the digital sensor 52 are positioned adjacent to the inhaler airflow conduit so that they can detect an acoustic signal or pressure differential across the inhaler 14 when the inhalation detection and monitoring system 10, 12 is activated or turned on. The system is powered on by depressing the actuator buttons 19, 26, which are connected to a power source, such as a battery 53, that also provides power to the system. Alternatively, the system can be powered by a wire, such as a USB port. The sensors 51, 52 are preferably located at any point within or adjacent to the air conduit of the inhaler accessory 18, 24. In some exemplary embodiments, the sensors 18, 24 may be located in the air conduit within the body 20 of the accessory or near the mouthpiece 15 of the inhaler being used.

[0047] Processing system 56 may include a PDA, tablet, cell phone, or computer 57, a display 58, a wireless communication device 59, and an output 55, which may be in the form of digital storage, a web interface, a printout, or email. It should be understood by those skilled in the art that display 58, wireless communication device 59, and output 55 may simply reside within PDA / tablet / cell phone / computer 57 rather than being separate elements. In this exemplary embodiment, a user can activate inhaler accessory device 54 by depressing a power button, e.g., button 19 on device 10, which also activates processing system 56. Computer 57 preferably includes an algorithm in the form of a software application or program designed to collect and display inhalation activity. When the software program embedded in computer 57 is initiated, a start signal appears on display 58. When the system is activated, the user's inhalation 60 causes a pressure drop within inhaler training device 50, which is converted into an electrical signal by one or more of sensors 51, 52. In this embodiment, sensors 51 and 52 may be pressure, flow, sound, light, gas, humidity, or temperature transducers, either analog or digital. The electrical signal generated by sensor 51 is then transmitted to signal conditioner 61 to remove unwanted portions of the signal, such as signal noise. Conditioned electrical signal 62 is then transmitted to band limiter 63, which reduces the signal frequency to a desired reduction range and selects the data that needs to be analyzed. The signal is then transmitted to signal amplifier 64, where the selected signal is amplified to a predetermined voltage range and can be transmitted as amplified signal 65. Amplified signal 65 is then converted to digital signal 67 via analog-to-digital converter 66. It should be understood by those skilled in the art that certain “smart” sensors can be used that integrate some of the conditioning, filtering, amplification, and conversion functions into the sensor itself. Accordingly, references to these subsequent elements herein can be substituted for the use of such integrated sensors.The digital signal 67 is then received by the microprocessor 70 and transmitted to a radio or transceiver 72 designed for transmission using a wireless technology standard (e.g., Bluetooth®) via connection 74 for transmission to a computer 57 having a radio 59 for receiving the wireless (e.g., Bluetooth®) signal 69. A software program embedded / programmed into the microprocessor 70 or computer 57 facilitates basic inhaler accessory device functions, including indicating radio presence, connecting to the radio or transceiver 59, and passing data from element to element via the wireless signal 69. The program also converts the electrical signals from the sensors 1 and 2 into pressure values ​​that can be visually displayed on the display 58. The display 58 can be a screen with an LED, OLED, LCD, touchscreen, or other interactive display. In some embodiments, a baseline curve for the user is stored in the system 50 and provided to the display 58 along with the inhalation signal information. The baseline curve indicates the level of performance for the inhaler type and delivers the approximately correct dose to the patient measured using the inhaler training device 10 as a reference standard to guide the user's inhalation. Thus, during inhalation, the user can visually compare their inhalation performance to the baseline standard. During user training, the drug-form inhaler can be removed, thereby preventing medication from being wasted due to an incorrect inhalation. In this way, the user can modify their inhalation activity to conform to the baseline conditions when the medication is actually inhaled. Display data for each inhalation performed by the subject can be saved to output 55 via second connection 76, where it can be stored or transferred as needed. For example, output 55 can be in the form of a disk drive, flash drive, or printer, or it can be transmitted to a physician via email or text for review or further training, if necessary.In some embodiments, signals from the inhalation exerciser device can be transmitted to a computer / PDA / phone / tablet, and signals from the computer / PDA / phone / tablet can be received by the inhalation exerciser device, thereby establishing two-way communication between the two components. For example, a user can input specific information into computer 57, such as a patient number, medication strength, and comments about the patient's condition. In this and other embodiments, sensor 52 is a digital sensor or a sensor capable of generating a digital output. It can be an accelerometer, Doppler sensor, luxometer, or laser, and the detected signal can be transmitted directly to an onboard microprocessor for subsequent analysis, processing, and transmission. The signal information in the microprocessor can be analyzed and processed using algorithms, converting the data into a pressure versus time curve that can be displayed, for example, using a graphical interface. When both are employed, the signal from sensor 52 can convey information about flow and pressure differentials that differ from the signal from sensor 51.

[0048] Additionally, other on-board devices 78 can send data to and receive data from microprocessor 70 via one or more cables 79. For example, other on-board devices can include digital output sensors, temperature sensors, light-emitting diodes (LEDs), audible alerts, and other on-board sensors. These on-board devices can be used to output success / failure criteria for an inhalation maneuver, such as LED illumination or an audible indicator of such failure / failure. Temperature, humidity, or other environmental data can be used to determine the environment in which the inhaler was used.

[0049] For the output of sensor 51, following signal amplification, the amplified signal 65 can alternatively be transmitted directly via wireless communication 72 to computer 506, which can perform analog-to-digital conversion and other required analysis steps.

[0050] Figure 10 shows a block diagram of an embodiment of the detection and monitoring system disclosed in Figure 8 with an integrated display. The inhalation detection and sensing device 82 comprises an inhaler accessory with an on-board electronics system having a built-in display 84, a microprocessor 86, an analog sensor 88, and a digital sensor 89. In use, the system is activated by a user 90 depressing the actuator button 19 with power provided by a battery 92. When a user inhales through an inhaler that is matched with the inhaler accessory with the on-board electronics system 82, one or more of the sensors 88, 89 generate a signal that is transmitted to the microprocessor 86. For example, an acoustic sensor or microphone 88 can be used to generate an electrical signal 94 that is transmitted to a signal conditioner 96 to remove excess noise, then the electrical signal is sent to a band limiter 98 to reduce the frequency of the signal to a desired range that reduces the data that needs to be analyzed, and then the signal is transmitted to a signal amplifier 95, which amplifies the signal and transmits it to an analog-to-digital converter 97, and the digital signal is communicated to the onboard microprocessor 86 for analysis and conversion of the information into a graph that is transmitted to the display 84 for visualization. A digital sensor 89 can be used in place of or in conjunction with the sensor 88 to detect signals and generate a set of signals for transmission to the microprocessor 86, which can then be analyzed, stored, and similarly transmitted to the display 82. Other devices, including other sensors 99, can also be included to detect other parameters of the inhaler or system.

[0051] FIG. 11 shows a block diagram of an embodiment of the detection and monitoring system 100 disclosed herein that has a visual indicator of performance rather than an integrated display showing the operating parts of the system. In this embodiment, two sensors are provided: an analog sensor 101 and a digital sensor 102. Upon activation of the system 100, which is powered by a battery 103, the patient / user 105 inhales, generating a signal, such as sound, from the airflow traveling through the inhaler conduit. The sensors 101 and 102 are activated to generate a signal from the inhaler and transmit the signal downstream. The sensor 102 can be a Doppler sensor that can receive, for example, an output signal from airflow detection, which can be analog or digital. If the output signal from the sensor 102 is digital, it is transmitted directly to a microprocessor 110 for analysis and processing of the incoming information. Simultaneously, the sensor 101 generates an electrical signal that is sensed at the inhaler through a signal conditioner 106 to remove excess noise, and the conditioned signal is then transmitted to a band limiter 108 to select the data for analysis. The limited signal is then transmitted to a signal amplifier 109, where the signal is amplified and transmitted to an analog-to-digital converter 112. The received signal is then converted to a digital signal and transmitted to an on-board microprocessor for analysis and processing, for example, with an algorithm that converts the data into a visual or optical signal, which can be displayed as a visual indicator, such as a green or red light, indicating whether the patient's inhalation activity was "successful," meaning an inhalation with adequate activity to deliver a dry powder dose, or whether the patient's inhalation activity was insufficient to deliver a dry powder dose from the inhaler being tested. In this embodiment, other sensors or other on-board devices 115, such as signal conditioners, amplifiers, and analog-to-digital converters, can be integrated into the circuit, depending on the type of sensor used. For example, an inhaler accessory device can have two or more analog sensors, and therefore the electrical signal must pass through an analog-to-digital converter before being transmitted to the microprocessor for analysis and processing of the information.In an alternative embodiment, a digital sensor may be used whose output signal can be communicated directly to a microprocessor.

[0052] In other embodiments, the inhaler accessory can have one or more sensors, including a temperature sensor, a laser beam, a Doppler sensor, a luxometer, a color sensor, text recognition, RFID, optical character recognition, optical identification, pattern recognition, and the output signal, for example, if not a digital signal output, can be an analog signal output that must be converted to a digital signal upon reaching the microprocessor for further analysis and processing. These sensors preferably identify which medication contained on the inhaler accessory has been loaded into the inhaler for administration, and which cartridge type or dosage of such medication has been loaded into the inhaler.

[0053] FIG. 12 shows a screenshot of the tablet / computer / PDA / phone 57 of the processing system 56 of FIG. 9 . The computer 57 is used to remotely communicate with the inhaler accessory 54 using Bluetooth® or another remote wireless technology. The inhaler accessory 54 is fitted to the inhaler, and the subject is asked to inhale through the inhaler mouthpiece when the system is activated. The resulting graph on the screen shown in FIG. 12 plots inhalation activity on the y-axis corresponding to the inhalation maneuver and considers sensor (e.g., pressure) measurements and flow versus time (seconds) on the x-axis. The subject's inhalation activity is represented by curve A above the trapezoid B diagram at the bottom of the graph. The outer limits of trapezoid B (i.e., above the area) are interpreted as indicating the threshold or minimum inhalation activity that the subject must strive to achieve in order to efficiently and continuously inhale the powder dose from the inhaler used to empty the inhaler's powder contents upon ingesting the dose. An identification sensor, such as those described herein, located on the inhaler accessory detects and transmits data associated with the inhaler, drug type, dosage, lot, exhaled breath, etc. Such data is processed to identify corresponding threshold data for user instruction. The trapezoid also represents the minimum performance criteria exhibited by the inhaler, or the effort required for the inhaler to consistently deliver a dry powder dose that is greater than 90% of that required for the patient. Figure 12 visually illustrates an exemplary display of an inhalation maneuver performed by a subject asked to inhale deeply, with the display screen on the tablet visible as the inhalation is performed. As can be seen from such a curve, the subject performed perfectly within acceptable values ​​in region A.

[0054] FIG. 12 further illustrates baseline inhalation performance criteria for the inhaler accessory device 10 and drug discrimination. The user's detected curve A is flanked by a warning region immediately above region B and an acceptable or preferred region C above the warning region. Regions B and C, as well as the warning region, can be displayed in different colors to facilitate identification of the regions when monitoring an individual's performance during inhalation. Region B, for example, can be displayed in red, indicating that the inhalation maneuver does not meet the baseline condition and therefore the delivery system is not optimal for effectively delivering the drug. The warning region can be displayed in yellow, indicating that the inhalation maneuver is approaching an unacceptable performance effort. Preferred region C can be displayed in green, indicating that inhalation performance is approaching an acceptable effort for effectively delivering the drug. This displayed information, detected from one or more sensors in the device, can be used by a clinician, physician, or user to determine whether proper dosing has occurred, or the information can be used to train users based on how much effort is required to ensure proper dosing of the drug.

[0055] Figures 13, 14, and 15 illustrate various operational embodiments of the inhalation detection and monitoring system shown in Figures 1-8. Figure 13 illustrates a block diagram of an overall embodiment of the wireless detection and monitoring system disclosed herein. In Figure 13, system 120 includes two components: an inhaler training device or accessory device 124 and a processing system 126. Processing system 126 may include a PDA, cell phone, or computer 127, a display 128, a wireless communication device 129, and an output 125, which may be in the form of a digital storage device, a web interface, a printout, or the like. In this exemplary embodiment, a user can activate inhaler training device or equipment 120 by depressing a power button, e.g., button 19 on training device 10, which also activates processing system 126. When a software program embedded in computer 127 is started, a start signal appears on display 128. In this embodiment, accessory device 120 includes an electronics board that preferably has two pressure sensors 121 and 122 positioned adjacent to the inhaler airflow conduit so that when device 10, 12 is activated or turned on by depressing actuator buttons 19, 26 connected to a power source such as battery 123 that also provides power to the system, the differential pressure from the inhaler and the absolute pressure of the environment from inhaler 14 can be detected. When the system is activated, the user's inhalation 130 causes a pressure drop within inhaler training device 120 that is measured by sensor 121. Absolute pressure sensor 122 provides data or a signal that is used to correct the differential pressure reading for atmospheric conditions.

[0056] In this embodiment, sensors 121 and 122 are pressure sensors that are digital. The signals generated by sensors 121 and 122 are then transmitted to microprocessor 131 and then to radio 132. A software program embedded / programmed into microprocessor 131 or computer 127 converts the signals generated by sensors 121 and 122 into (corrected) pressure values ​​that can be visually displayed on display 58, which can be a screen with an LED, OLED, LCD, touchscreen, or other interactive display.

[0057] FIG. 14 shows a block diagram of an embodiment of the detection and monitoring system disclosed herein. The inhalation detection and sensing device comprises an inhaler accessory with an onboard electronics system 140 having a built-in or integrated display 144, a microprocessor 143, and pressure sensors 141 and 142. In use, the system is activated by a user 146 with power provided by a battery 145. When the system is activated, the user's inhalation 146 creates a pressure drop within the inhaler training device 140, which is measured by sensor 141. Absolute pressure sensor 142 provides data or a signal used to correct the differential pressure reading for atmospheric conditions. In this embodiment, sensors 141 and 142 are digital pressure sensors. If analog sensors were implemented, additional circuitry would be required to condition, filter, amplify, and / or convert the signals, as described above. The signals generated by pressure sensors 141 and 142 are then transmitted to microprocessor 143. A software program embedded / programmed into the microprocessor 143 converts the signals generated by the sensors 141 and 142 into (corrected) pressure values ​​that can be visually displayed on the display 144, which can be a screen with an LED, OLED, LCD, touch screen, or other interactive display.

[0058] FIG. 15 shows a block diagram of an embodiment of the detection and monitoring system disclosed herein. The inhalation detection and sensing device comprises an inhaler accessory with an onboard electronics system 150 having an integrated visual indicator 154, a microprocessor 153, and pressure sensors 151 and 152. In use, the system is activated by a user 156 with power provided by a battery 155. When the system is activated, the user's inhalation 156 creates a pressure drop within the inhaler training device 150, which is measured by sensor 151. Absolute pressure sensor 152 provides data or a signal used to correct the differential pressure reading for atmospheric conditions. In this embodiment, sensors 151 and 152 are digital pressure sensors. If analog sensors were implemented, additional circuitry would be required to condition, filter, amplify, and / or convert the signals, as described above. The signals generated by pressure sensors 151 and 152 are then transmitted to microprocessor 153. A software program embedded / programmed into the microprocessor 153 converts the signals generated by the sensors 151 and 152 into (corrected) pressure values ​​that can be used to activate a visual indicator 154 that can be used to indicate proper inhalation or other information.

[0059] FIG. 16 further illustrates a block diagram of an inhaler training device, such as device 10, showing various additional operational components. In FIG. 16, system 160 includes two components: inhaler training device or accessory device 164 and processing system 166. Processing system 166 includes a tablet, PDA, cell phone, or computer 167, a display 168, a wireless communication device 169, and output 165, which may be in the form of digital storage, a web interface, a printout, or the like. In this exemplary embodiment, a user can activate inhaler training device 160 by pressing down a power button, e.g., button 19 on training device 10, which also activates processing system 160. When a software program embedded in computer 167 is initiated, a start signal appears on display 168. When the system is activated, the user's inhalation 170 causes a pressure drop within inhaler training device 160, which is measured by sensor 161. In this embodiment, sensors 161 and 162 are pressure sensors that are digital. The signals generated by color detection sensor 173 and pressure sensors 161 and 162 are then transmitted to microprocessor 171 and then to wireless radio 172. A software program embedded / programmed into microprocessor 171 or computer 167 converts the signals generated by color detection sensor 173 and sensors 161 and 162, respectively, into cartridge information values ​​and pressure values ​​that can be visually displayed on display 168, which can be a screen with an LED, OLED, LCD, touchscreen, or other interactive display. The cartridge information values ​​provide limits on powder dose effectiveness and can be used to plot a Trapezoid B or other threshold indication on a graph. As referenced in previous embodiments, in addition to the color detection device, other devices on the device board can include lasers, RFID, pattern or text / character readers, or sensors connected to the microprocessor to otherwise identify the inhaler, the medication, or the substance / medicine cartridge / packaging.These sensors / readers function to provide data to systems and microprocessors associated with the drug, substance, packaging, medication, inhaler, etc., so that corresponding data can be read from storage and used as a data point on any visual, audible, or other indicator, including a graph, presented to the user. As an example, certain cartridges or other packaging can be color-coded or contain RFID tags containing specific information about them, including encrypted or encoded text, lot, expiration date, dosage, etc. A reader or sensor can detect the code and transmit corresponding data to a microprocessor for use in calculations, identified actions, and data display. Perhaps a particular color package indicates the use of a drug dose that requires greater effort for proper inhalation. In this case, an accessory device or system would identify the appropriate color through the sensor / reader and use the appropriate data for user instructions.

[0060] FIG. 17 shows a block diagram of an embodiment of the detection monitoring system disclosed herein. Inhalation detection and sensing device 180 comprises an inhaler accessory with an on-board electronics system having a built-in or integrated display 184, a microprocessor 183, a color detection sensor 187, and pressure sensors 181 (differential pressure) and 182 (absolute pressure). In use, the system is activated by a user 186 with power provided by a battery 185. When the system is activated, the user's inhalation 186 creates a pressure drop within the inhaler accessory, which is measured by sensor 181. Absolute pressure sensor 182 provides data or a signal used to correct the differential pressure reading for atmospheric conditions. In this embodiment, sensors 181 and 182 are digital pressure sensors. The signals generated by color detection sensor 187 and pressure sensors 181 and 182 are then transmitted to microprocessor 183. A software program embedded / programmed into the microprocessor 183 converts the signals generated by the color detection sensor 187 and sensors 181 and 182 into cartridge information values ​​and (corrected) pressure values ​​that can be visually displayed on the display 184, which can be a screen with an LED, OLED, LCD, touch screen, or other interactive display.

[0061] FIG. 18 shows a block diagram of an embodiment of the detection monitoring system disclosed herein. Inhalation detection and sensing device 190 comprises an inhaler accessory with an on-board electronics system having an integrated visual indicator 194, a microprocessor 193, a color detection sensor 197, and pressure sensors 191 (differential pressure) and 192 (absolute pressure). In use, the system is activated by a user 196 with power provided by a battery 195. When the system is activated, the user's inhalation 196 creates a pressure drop within the inhaler accessory, which is measured by sensor 191. Absolute pressure sensor 192 provides data or a signal used to correct the differential pressure reading for atmospheric conditions. In this embodiment, sensors 191 and 192 are digital pressure sensors. The signals generated by color detection sensor 197 and pressure sensors 191 and 192 are then transmitted to microprocessor 193. A software program embedded / programmed into the microprocessor 193 converts the signals generated by the color detection sensor 197 and sensors 191 and 192 into cartridge information values ​​and (corrected) pressure values, respectively, that can be used to activate a visual indicator 194 that can be used to indicate proper inhalation or other information.

[0062] FIG. 19 shows a flowchart of an embodiment of a method 200 for detecting, monitoring, and training an inhalation subject according to the system disclosed in FIG. 16. When a user uses the device and system, they activate the system by depressing an actuator on the inhaler accessory to begin. Next, in step 202, the inhaler accessory's wireless communicator connects to the user's smartphone, for example, using standard Bluetooth® technology, and an application on the smartphone displays a ready message and instructs the user to load the associated inhaler with which the device is engaged or to provide a cartridge or other disposable package of the substance to be inhaled into the inhaler. In step 204, after such loading, an identification sensor, in this case color detection sensor 173, determines the color of the cartridge and stores it in a data storage device on the accessory board or transmits it via Bluetooth® to processing system 166 (phone) for storage. In step 206, the application displays a graph with the corresponding threshold data points provided based on the color detection. Next, in step 208, the user is instructed to inhale using several visual, audible, or screen-based messages. In step 210, sensors 161, 162 read the pressure drop during the inhalation maneuver. Step 212 then indicates corrective steps taken by the system based on atmospheric conditions occurring approximately simultaneously with or shortly after step 210. In either case, in step 214, the pressure data is stored as described above and preferably plotted on a graph. In step 216, the inhalation maneuver graph is displayed to the user, along with a threshold graph indicating either a pass (successful inhalation) or a fail (failed inhalation). At that time, the user can depress the actuator to exit the program, and the data remains stored on output 165 for future use.

[0063] In some exemplary embodiments disclosed herein, one or more key parameters can define an acceptable inhalation maneuver, including total inhalation time, peak inspiratory pressure, time to peak inspiratory pressure, and average pressure from the peak to approximately 75% of the total inhalation time. In certain embodiments, the total inhalation time may be greater than 5 seconds, the peak differential inspiratory pressure may be greater than approximately 6 kPa, the time to peak inspiratory pressure may be less than approximately 1.1 seconds, and the average pressure from the peak differential inhalation to 75% of the total inhalation time is approximately 4 kPa. These values ​​represent values ​​for the inhalation monitoring system 10, 12 and device 18, and associated algorithms / programs used for training and monitoring. They can be modified for alternative inhaler training devices depending on the performance parameters (including resistance) required for optimal inhaler delivery of medication.

[0064] In another exemplary embodiment, the dry powder inhaler can be provided with a sensing and / or monitoring device that can monitor and / or detect signals generated by or within the dry powder inhaler during an inhalation maneuver by a patient. The dry powder inhaler can be provided with a sensor device that is integrated into or attached to the device. Alternatively, in certain exemplary embodiments, the accessory devices 18, 24 can be provided as an integral part of the dry powder inhaler, in the mouthpiece or housing, as needed.

[0065] In an alternative embodiment, the inhaler accessory device 18, 24 is an attachable / detachable detection and monitoring device that can be separated from the inhaler and is provided in the form of a jacket or cap, and the detachable detection and monitoring device can be provided as a detachable part that can be fitted to the dry powder inhaler, particularly for wireless communication, thereby allowing easier access and mobility for the subject using the device. In this embodiment, the jacket is fabricated as a separate, detachable device with on-board electronics including one or more microprocessors, wireless transceivers, analog-to-digital converters, sensors (such as pressure sensors or microphones) that can detect signals and enable storage, transmission, or display of the signals.

[0066] When using an acoustic sensor, sound waves emanating from the inhaler with or without dry powder during use are detected by a microphone, and the signal is analyzed and, depending on the type of sensor used, can be correlated to powder expulsion time if dry powder is present, airflow velocity, end of powder expulsion during an inhalation maneuver, temperature within the inhaler pathway, etc. For example, an increase in sound can be correlated to an increase in flow rate through the device and / or impaction of powder particles within the airflow during delivery.

[0067] Due to its small size, a sensor such as a microphone can be placed anywhere within the inhaler. In embodiments where the sensor is a pressure transducer, the sensor can be placed in the air conduit that passes through one of the inhaler's chambers. The sensor can be provided, for example, on or in the air conduit of the inhaler, or as a separate, removable part as an attachment to the inhaler having a shape or configuration that can fit onto the inhaler, which can include a cap, jacket, sleeve, or saddle-like configuration that can fit onto or attach to the inhaler.

[0068] For detachable embodiments, the sensing and monitoring accessory is easy and inexpensive to manufacture, can be made from plastic, and works well with high resistance dry powder inhalers. In some embodiments, the sensor can be any sensor, such as a thermocouple, pressure transducer, analog sensor, microphone, optical sensor, gas sensor, or any sensor capable of detecting a signal generated within the inhaler. The sensors described herein may be adapted to communicate or transmit a signal with a transceiver device, or the signal may be transmitted or stored using a wired connection to an analog-to-digital converter before transmission of the signal to a microprocessor.

[0069] Alternatively, an analog-to-digital converter may be provided within the inhaler device, and the resulting digital data may be transferred directly from the device. The signals provided by the sensors described herein may take several forms, including sounds generated in the inhaler due to airflow through the air conduit and / or the impact of powder particles carried in the airflow path, and pressure drops detected in the vicinity of the airflow path due to the inhalation maneuver. Signals generated by the inhaler may be detected by the sensor and stored, transmitted, or displayed. Other types of signals that may be detected by the system include text, color, encryption, or code, which may be detected with optical beams, laser beams, and Doppler sensors, preferably integrated into the electronics board. Data may be generated from the signals and analyzed qualitatively and / or quantitatively. In this manner, measurements may be generated, including dose release time, dose amount, dose type, ingestion time, etc. Furthermore, these signals may be associated with, for example, patient, drug type and dosage, inhaler, or other identification, and may be used to model data requirements for proper inhalation and facilitate inhaler user training.

[0070] In one exemplary embodiment, a detection monitoring system for an inhaler includes an accessory device structurally configured to be compatible with the inhaler: a sensor; a microprocessor; an optional analog-to-digital converter; and a data storage medium. The data storage medium may include a disk drive, DVD, CD-ROM, server, flash card or drive, memory card, etc., and includes a set of machine-readable instructions executable by a microprocessor or other processing device that executes an algorithm. When executed, the algorithm initiates the steps of generating a logical subsystem generation number derived from the detected signal, storing the logical subsystem generation number in a data track within the logical subsystem, where the logical subsystem generation number and the processing device's cluster generation number are compared, and storing and / or displaying information from the algorithm as a result from the inhalation operation.

[0071] In certain embodiments, the inhaler accessory is useful for dry powder inhalers, particularly unit dose cartridges, and the drug delivery formulation comprises active ingredients such as diketopiperazines, particularly fumaryl diketopiperazine, and peptides and proteins, including endocrine hormones (including parathyroid hormone, insulin, oxyntomodulin, and glucagon-like peptide 1), cannabinoids, neurotransmitters, including 5-hydroxytryptamine, dopaminergic, prostacyclin, and opioid agonists and antagonists. In some embodiments, the active ingredient of the prescription drug comprises one or more of the following active agents, including, but not limited to, treprostinil, salmeterol, epinephrine, tacrolimus, vancomycin, linezolid, filgastrin, fentanyl, cannabidiol, THC, palonosetron, amphotericin B, phosphodiesterase inhibitors (including PDE5 inhibitors such as sildenafil, avanafil, verdenafil, and tadalafil), prostaglandins, prostacyclins, neurotransmitter agonists, neurotransmitter antagonists (including antinociceptive agents), opioid analgesics (e.g., delta opioid agonists and antagonists, kappa opioid receptor agonists and antagonists, mu opioid receptor agonists and antagonists). [Example]

[0072] Example 1 Use of an Integrated Training Device A 60-year-old patient with type 1 diabetes was diagnosed with elevated hemoglobin A1c levels and was deemed uncontrolled. He was instructed to receive insulin inhalation delivered via a dry powder inhalation system for meal-based therapy. The patient uses an insulin pump for basal insulin. The patient was trained in wireless inhalation using a device similar to that shown in Figure 1, with a removable inhalation attachment, as shown in Figures 3-5. The patient was given this device and asked to take deep, fast breaths while using the training device, which may or may not contain medication.

[0073] A pressure sensor on the inhalation device was used to detect pressure drops during inhalation, and the data was transmitted to a Bluetooth-enabled tablet via an associated application. A color-detection sensor detected the color of the cartridge (full or empty), and the data was used to identify a threshold region for minimum inhalation pressure. Data was collected on the tablet with a preprogrammed application capable of reading the wireless signal from the device, allowing the patient to view this data in real time on a display screen. This patient's first inhalation attempt was shown on the screen to be too slow and falling into the red "unacceptable region" (region B) of Figure 12. The patient was instructed to take another quick breath, slightly faster and deeper than the previous attempt. Upon completing the inhalation, the graph showed that the patient's inhalation maneuver was acceptable and well within the acceptable region (region C) of the graph in Figure 12. Once familiarized with the training, the patient was familiar with using similar inhalation devices loaded with medication.

[0074] The patient was prescribed a dry powder inhaler similar to the type shown in Figure 1 and cartridges filled with various doses of inhalable insulin to treat the patient's diabetes. Six months after being prescribed inhaled insulin, the patient's diabetes was diagnosed as being under control.

[0075] Example 2 Use of an Attachable Training Device A 59-year-old patient with type II diabetes was instructed to receive insulin inhalation from a dry powder inhalation system. The patient requested the inhalation system for convenience reasons. The patient was trained in wireless inhalation using a device such as that shown in Figure 1. The patient was given the device of Figure 1 with an attachable inhaler device similar to those in Figures 3-5 and was asked to take deep, fast breaths while using the training device.

[0076] Pressure and color-coded data was collected on the cell phone, and the patient could view the data in real time on a display screen. This patient's first attempt was acceptable, as indicated by the threshold versus inhalation data, which was graphed or otherwise visually presented as software results. Once trained, this patient was comfortable using the device.

[0077] The patient-attachable sensor was removed from the dry powder inhaler. The patient was given the dry powder inhaler and a cartridge filled with inhalable insulin to treat the patient's diabetes. Six months after being prescribed inhaled insulin, the patient's diabetes was diagnosed as being under control, and the patient commented that the device was very convenient.

[0078] The foregoing disclosure is an illustrative embodiment. It should be understood by those skilled in the art that the techniques disclosed herein demonstrate representative techniques that work well in practicing the present disclosure. However, those skilled in the art should, in light of the present disclosure, understand that many changes can be made in the specific embodiments disclosed and still obtain a like or similar result without departing from the spirit and scope of the present disclosure.

[0079] Unless otherwise indicated, all numbers expressing quantities of ingredients, properties, such as molecular weights, reaction conditions, etc., used in the specification and claims should be understood in all instances to be modified by the term "about." Accordingly, unless indicated to the contrary, the numerical parameters set forth in the specification and appended claims are approximations that may vary depending upon the desired properties sought to be obtained. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the disclosed embodiments are approximations, the numerical values ​​set forth in the specific examples are reported as precisely as possible. However, any numerical value inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements.

[0080] The terms "a," "an," "the," "the," and similar referents, as used in the context of describing the disclosed embodiments (particularly in the context of the appended claims), should be construed to encompass both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. The recitation of ranges of values ​​herein is merely intended to serve as a shorthand method of referring individually to each separate value falling within the range. Unless otherwise indicated herein, each individual value is incorporated herein as if that value were individually recited herein. All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. The use of any and all examples or exemplary language (e.g., "such as") provided herein is intended merely to better clarify the disclosed embodiments and does not otherwise pose a limitation on the scope of the claimed embodiments. No language in the specification should be construed as indicating any non-claimed element essential to the practice of the disclosed and contemplated embodiments.

[0081] Certain embodiments disclosed herein may be further limited in the claims using the phrases "consisting of" and "consisting essentially of." The transitional phrase "consisting of," when used in a claim, whether as filed or added via amendment, excludes any element, step, or ingredient not specified in the claim. The transitional phrase "consisting essentially of" limits the scope of the claim to particular materials or steps, and those that do not materially affect the basic and novel characteristics. Embodiments so claimed are essentially or expressly described and enabled herein.

[0082] Groupings of alternative elements or embodiments disclosed herein are not to be construed as limitations. Each group member may be individually referenced or claimed, or may be in any combination with other members of the group or other elements found herein. It is anticipated that one or more members of a group may be included in or deleted from a group for reasons of convenience and / or patentability. When any such inclusion or deletion occurs, the specification includes the group as modified and, therefore, is deemed to satisfy the description requirements of all Markush groups used in the appended claims.

[0083] Certain embodiments are described herein, including the best mode known to the authors of the present disclosure for carrying out the disclosed and contemplated embodiments. Of course, variations on these described embodiments will become apparent to those of ordinary skill in the art upon reading the foregoing description. The authors anticipate that skilled artisans will employ such variations as appropriate, and the authors intend for the disclosed and contemplated embodiments to be practiced in ways other than as specifically described herein. Accordingly, the presently disclosed and contemplated embodiments include all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Furthermore, any combination of the above-described elements in all possible variations thereof is encompassed by the present disclosure unless otherwise indicated herein or otherwise clearly contradicted by context.

[0084] Additionally, numerous references are made to patents and publications throughout this specification, each of which is individually incorporated herein by reference in its entirety.

[0085] Finally, it is to be understood that the embodiments disclosed and contemplated herein are illustrative of the principles of the contemplated invention. Other modifications that may be employed are within the scope of the present disclosure. Thus, by way of example, and not of limitation, alternative configurations may be utilized in accordance with the teachings herein. Accordingly, the disclosed embodiments are not limited to the exact ones shown and described.

Claims

1. An inhaler accessory, a body configured to attach to or connect to a dry powder inhaler; a microprocessor; At least two sensors; Equipped with the at least two sensors include a first sensor and a second sensor; the first sensor detects encoded or coded information on the dry powder inhaler, inhaler cartridge, or other portion of medication packaging, the information including an expiration date and / or a dosage; the second sensor includes a differential pressure sensor for detecting a pressure drop within the dry powder inhaler and an absolute pressure sensor for measuring external atmospheric pressure, the outputs of the differential pressure sensor and the absolute pressure sensor together producing a signal indicative of the pressure drop calibrated to atmospheric pressure; The inhaler accessory includes a microprocessor that receives signals output from the first sensor and the second sensor, processes the signals, and generates an indication of success or failure regarding the completion of an inhalation maneuver.

2. 10. The inhaler accessory of claim 1, wherein the first sensor and the second sensor are digital sensors and their outputs are in digital format.

3. 10. The inhaler accessory of claim 1, wherein the second sensor is an analog sensor whose output is in analog form, and the device further comprises circuitry for conditioning, filtering, amplifying, and / or converting the sensor signal to digital form.

4. 10. The inhaler accessory of claim 1, wherein the dry powder inhaler comprises a cartridge and a dry powder formulation.

5. 5. The inhaler accessory of claim 4, wherein the dry powder formulation comprises a diketopiperazine and at least one active ingredient.

6. 2. The inhaler accessory of claim 1, wherein the first sensor is one or more of a color detection sensor for detecting the color of an inhaler cartridge or other medication package loaded into the inhaler, an RFID reader for reading an RFID tag on a cartridge or other medication package loaded into the inhaler, and an image detection sensor capable of identifying characteristics, codes, or text information provided on the inhaler or the inhaler cartridge or other medication package.

7. 10. The inhaler accessory of claim 1, further comprising a wireless transceiver through which data received from the at least two sensors is transmitted to a remote processing system.

8. 8. The inhaler accessory of claim 7, further comprising an electronics board, the microprocessor, the sensor, and the wireless transceiver being connected to and / or disposed on the electronics board.

9. 10. The inhaler accessory of claim 1, further comprising a visual indicator or display for providing a success / failure indication to the user.

10. The inhaler accessory according to claim 1, wherein the microprocessor outputs threshold data calculated based on the signals output from the first sensor and the second sensor.

11. 10. The inhaler accessory of claim 1, wherein the microprocessor outputs a pressure versus time curve to a display simultaneously with or immediately after the patient inhales.

12. 1. A dry powder inhalation monitoring and detection system comprising: a dry powder inhaler; a microprocessor; A radio transmitter / receiver; At least two sensors; Equipped with the at least two sensors include a first sensor and a second sensor; the first sensor detects encoded or coded information on a portion of the dry powder inhaler, inhaler cartridge, or other medication package, the information including lot, expiration date, and dosage information; the second sensor includes a differential pressure sensor for detecting a pressure drop within the dry powder inhaler and an absolute pressure sensor for measuring external atmospheric pressure, the outputs of the differential pressure sensor and the absolute pressure sensor together producing a signal indicative of the pressure drop calibrated to atmospheric pressure; A microprocessor receives signals output from the first sensor and the second sensor, processes the signals, and provides an indication of success or failure regarding the completion of an inhalation maneuver.

13. The dry powder inhalation monitoring and detection system further includes a remote processing system; the remotely controlled system includes a display, a wireless transceiver, and a microprocessor; 13. The dry powder inhalation monitoring and detection system of claim 12, wherein the microprocessor graphically displays the success or failure, the display showing threshold data corresponding to the information detected by the first sensor and the user's inhalation data corresponding to the signal of the second sensor.

14. 13. The dry powder inhalation monitoring and detection system of claim 12, further comprising a removable inhaler accessory for attachment to or connection to the inhaler, the removable inhaler accessory comprising a body in which the microprocessor, wireless transceiver, and sensor are disposed.

15. 1. A method for monitoring and detecting accurate data valuable for user training of a dry powder inhaler, comprising: displaying instructions to load the medication into the inhaler; obtaining device data by reading medication data relating to the medication or information about the inhaler; displaying an instruction to start an inhalation maneuver; identifying absolute pressure data, which is the outside atmospheric pressure, before inhalation by the user; identifying pressure differential data during inhalation by a user; correcting the pressure difference data with the absolute pressure data; determining a threshold value according to the instrument data and the corrected pressure difference data; and The method includes determining whether the user has successfully or unsuccessfully completed an inhalation maneuver based on whether the threshold is met or exceeded.

16. 16. The method of claim 15, further comprising the step of transmitting and displaying whether the user has successfully or unsuccessfully completed the inhalation maneuver.

17. 17. The method of claim 16, wherein the transmitting and displaying steps include displaying on a processing system such as a smartphone, tablet, computer, or other wireless communication enabled device.

18. 18. The method of claim 17, wherein the transmitting and displaying step includes transmitting the drug data and the pressure difference data to the processing system via wireless transmission and displaying a pressure versus time curve on the system along with a threshold value corresponding to the drug data.

19. 6. The inhaler accessory of claim 5, wherein the at least one active ingredient comprises insulin or an insulin analogue.

20. The inhaler accessory of claim 1, further comprising a battery connection port.

Citation Information

Patent Citations

  • Anesthetic vaporizer

    JP1994319802A

  • Nebulizer, and dosage detection method for nebulizer

    JP2007181724A

  • Respiratory gas measuring device

    JP2008546476A

  • Interactive device and method for profiling inhalation effort in real time

    JP2011525138A

  • Color detection system for detecting the presence and contents of storage containers within medical fluid administration devices

    JP2012513828A