Patent classifications
A61F2009/00885
VITREOUS FLOATER TREATMENT USING RESONANT SCANNER-BASED SLO
Particular embodiments disclosed herein provide a system for treating vitreous floaters. Light from a first laser (e.g., laser diode) is focused at a plurality of points within a vitreous of a patient's eye using a scanner while measuring reflected light from the plurality of points. The reflected light (e.g., images) are evaluated to identify a portion of the plurality of points corresponding to one or more vitreous floaters. Second light from a second laser (e.g., pulsed laser) is focused at the portion of the plurality of points using the scanner in order to disintegrate the one or more vitreous floaters.
INTRAOCULAR DRUG DELIVERY AND FILTER DEVICE AND METHODS OF USING SAME
The present disclosure provides an implantable device comprising a substrate capable of capturing an intraocular target molecule and to methods of use thereof.
System and method for determining dosimetry in ophthalmic photomedicine
A system and method for treating ophthalmic target tissue, including a light source for generating a beam of light, a beam delivery system that includes a scanner for generating patterns, and a controller for controlling the light source and delivery system to create a dosimetry pattern of the light beam on the ophthalmic target tissue. One or more dosage parameters of the light beam vary within the dosimetry pattern, to create varying exposures on the target tissue. A visualization device observes lesions formed on the ophthalmic target tissue by the dosimetry pattern. The controller selects dosage parameters for the treatment beam based upon the lesions resulting from the dosimetry pattern, either automatically or in response to user input, so that a desired clinical effect is achieved by selecting the character of the lesions as determined by the dosimetry pattern lesions.
METHODS AND APPARATUS FOR TREATING GLAUCOMA
An ocular implant for treating glaucoma is provided, which may include any number of features. More particularly, the present invention relates to implants that facilitate the transfer of fluid from within one area of the eye to another area of the eye. One feature of the implant is that it includes a proximal inlet portion and a distal inlet portion adapted to be inserted into the anterior chamber of the eye, and an intermediate portion adapted to be inserted into Schlemm's canal. Another feature of the implant is that it can be biased to assume a predetermined shape to aid in placement within the eye.
Methods and apparatus for treating glaucoma
An ocular implant for treating glaucoma is provided, which may include any number of features. More particularly, the present invention relates to implants that facilitate the transfer of fluid from within one area of the eye to another area of the eye. One feature of the implant is that it includes a proximal inlet portion and a distal inlet portion adapted to be inserted into the anterior chamber of the eye, and an intermediate portion adapted to be inserted into Schlemm's canal. Another feature of the implant is that it can be biased to assume a predetermined shape to aid in placement within the eye.
Intraocular drug delivery and filter device and methods of using same
The present disclosure provides an implantable device comprising a substrate capable of capturing an intraocular target molecule and to methods of use thereof.
Scanning laser ophthalmic treatment system and method of operation
An ophthalmic laser treatment delivers patterned laser energy to an eye of a patient. A pattern-scanning laser device of the laser treatment system includes a laser module, a scanning module and delivery optics. The laser module generates laser energy (e.g. via a green laser diode), which is directed to the scanning module via a fiber optic cable. The scanning module produces the patterned laser energy by reflecting the laser energy into the delivery optics at different angles via a dielectric MEMS scanning mirror. The delivery optics includes an F-theta lens, a motorized and wirelessly-controlled spot-size selector module, and a focusing lens. A mobile computing device receives parameter information via a graphical user interface or voice control and sends the parameter information to the pattern-scanning laser device. In response to receiving activation signals from an activation unit, the pattern-scanning laser device emits the patterned laser energy based on the parameter information.
Second pass femtosecond laser for incomplete laser full or partial thickness corneal incisions
A method for forming an incision in an eye, the method including performing a first pass of a first laser beam along a path within an eye, wherein after completion of the first pass there exists a residual uncut layer at an anterior surface of a cornea of the eye. The method further including performing a second pass of a second laser beam only along a portion of the path that contains the residual uncut layer, wherein after completion of the second pass, the residual uncut layer is transformed into a full complete through surface incision.
Steerable laser probe
A steerable laser probe may include a handle having a handle distal end and a handle proximal end, a flexible housing tube having a flexible housing tube distal end and a flexible housing tube proximal end, an actuation mechanism control of the handle, and an optic fiber disposed within an inner bore of the handle and within the flexible housing tube. An actuation of the actuation mechanism control may be configured to gradually curve the flexible housing tube. A gradual curving of the flexible housing tube may be configured to gradually curve the optic fiber. An actuation of the actuation mechanism control may be configured to gradually straighten the flexible housing tube. A gradual straightening of the flexible housing tube may be configured to gradually straighten the optic fiber.
Scanning laser ophthalmic treatment system and method of operation
An ophthalmic laser treatment delivers patterned laser energy to an eye of a patient. A pattern-scanning laser device of the laser treatment system includes a laser module, a scanning module and delivery optics. The laser module generates laser energy (e.g. via a green laser diode), which is directed to the scanning module via a fiber optic cable. The scanning module produces the patterned laser energy by reflecting the laser energy into the delivery optics at different angles via a dielectric MEMS scanning mirror. The delivery optics includes an F-theta lens, a motorized and wirelessly-controlled spot-size selector module, and a focusing lens. A mobile computing device receives parameter information via a graphical user interface or voice control and sends the parameter information to the pattern-scanning laser device. In response to receiving activation signals from an activation unit, the pattern-scanning laser device emits the patterned laser energy based on the parameter information.