Patent classifications
A61N2007/027
Energy based fat reduction
Systems and methods for non-invasive fat reduction can include targeting a region of interest below a surface of skin, which contains fat and delivering ultrasound energy to the region of interest. The ultrasound energy generates a thermal lesion with said ultrasound energy on a fat cell. The lesion can create an opening in the surface of the fat cell, which allows the draining of a fluid out of the fat cell and through the opening. In addition, by applying ultrasound energy to fat cells to increase the temperature to between 43 degrees and 49 degrees, cell apoptosis can be realized, thereby resulting in reduction of fat.
Cavitation-enhanced targeted drug delivery and dosing
Various approaches for disrupting target tissue for treatment include identifying a target volume of the target tissue; causing disruption of the target tissue in a region corresponding to the target volume so as to increase tissue permeability therein; computationally generating a tissue permeability map of the target volume; and based on the tissue permeability map, computationally evaluating the disruption of the target tissue within the target volume.
Ultrasound therapy catheter with multi-chambered balloons for transluminal longitudinal positioning
A multi-angular ultrasound device. Multi-angular ablation patterns are achieved by a catheter-based ultrasound transducer having a plurality of transducer zones. A multi-chambered balloon is positioned on the catheter.
SYSTEMS AND METHODS FOR PERFORMING TRANSCRANIAL ULTRASOUND THERAPEUTIC AND IMAGING PROCEDURES
Systems and methods are provided for performing transcranial diagnostic procedures using a transcranial ultrasound transducer array. The array elements are positioned and oriented such that far field regions respectively associated therewith spatially overlap within the brain of a patient. The array elements may be oriented approximately normal to the skull, permitting efficient coupling of ultrasound energy into the brain. The array elements are controlled to generate ultrasound pulses, where the timing of the pulses is controlled, based on registration between the array elements and volumetric image data, such that ultrasound energy is focused at a target within spatially overlapping far fields of the array elements. The transcranial ultrasound transducer array elements may be positioned and oriented relative to the skull such that their respective ultrasound beams are focused within the skull and diverging with the brain.
DEVICES AND METHODS FOR MULTI-FOCUS ULTRASOUND THERAPY
Embodiments of a dermatological cosmetic treatment and imaging system and method can include use of transducer to simultaneously or substantially simultaneously produce multiple cosmetic treatment zones in tissue. The system can include a hand wand, a removable transducer module, a control module, and/or graphical user interface. In some embodiments, the cosmetic treatment system may be used in cosmetic procedures, including brow lifts, fat reduction, sweat reduction, and treatment of the dcolletage. Skin tightening, lifting and amelioration of wrinkles and stretch marks are provided.
Devices and methods for multi-focus ultrasound therapy
Embodiments of a dermatological cosmetic treatment and imaging system and method can include use of transducer to simultaneously or substantially simultaneously produce multiple cosmetic treatment zones in tissue. The system can include a hand wand, a removable transducer module, a control module, and/or graphical user interface. In some embodiments, the cosmetic treatment system may be used in cosmetic procedures, including brow lifts, fat reduction, sweat reduction, and treatment of the d?colletage. Skin tightening, lifting and amelioration of wrinkles and stretch marks are provided.
NON-INVASIVE CANCER TREATMENT
An apparatus (1) for treating a cancerous target site is provided. The apparatus comprises an electromagnetic emitter (10) comprising one or more electrodes with an electrically insulating coating for preventing electrical contact between the electrodes and the target site. The electromagnetic emitter (10) is configured to provide a tumour treating field at a target site (30) via the one or more electrodes, the tumour treating field being non-ionizing alternating electromagnetic field having a frequency of between 10 kHz to 300 kHz; and further having a magnetic flux density of between 0.1 pT and 1 mT. The apparatus further comprises a heat source (20) configured to provide heating at the target site to cause hyperthermia at the target site. The apparatus is configured to apply the non-ionizing alternating electromagnetic field and the heating independently. The apparatus comprises an electronic controller for electronically controlling the electromagnetic emitter and the heat source.
Simulation-Based Drug Treatment Planning
Various approaches for computationally generating a protocol for treatment of one or more target BBB regions within a tissue region of interest using a source of focused ultrasound include specifying (i) settings of sonication parameters for applying one or more sequence of sonications to the target BBB region using the source of focused ultrasound and (ii) a characteristic of microbubbles selected to be administered into the target BBB region; electronically simulating treatment in accordance with the protocol at least in part by computationally executing the sequence(s) of sonications and computationally administering the microbubbles having the characteristic; and computationally predicting a tissue disruption effect of the target BBB region resulting from the treatment.
ENERGY BASED FAT REDUCTION
Systems and methods for non-invasive fat reduction can include targeting a region of interest below a surface of skin, which contains fat and delivering ultrasound energy to the region of interest. The ultrasound energy generates a thermal lesion with said ultrasound energy on a fat cell. The lesion can create an opening in the surface of the fat cell, which allows the draining of a fluid out of the fat cell and through the opening. In addition, by applying ultrasound energy to fat cells to increase the temperature to between 43 degrees and 49 degrees, cell apoptosis can be realized, thereby resulting in reduction of fat.
Rib identification for transcostal focused ultrasound surgery
A method for transcostal ultrasound treatment of tissues includes determining rib locations, e.g., based on ultrasound reflections off the ribs or acoustic radiation force signals, and transcostally focusing ultrasound into the tissue while minimizing damage to the ribs.