Corneal topography measurements and fiducial mark incisions in laser surgical procedures
A method of cataract surgery in an eye of a patient includes identifying a feature selected from the group consisting of an axis, a meridian, and a structure of an eye by corneal topography and forming fiducial mark incisions with a laser beam along the axis, meridian or structure in the cornea outside the optical zone of the eye. A laser cataract surgery system a laser source, a topography measurement system, an integrated optical subsystem, and a processor in operable communication with the laser source, corneal topography subsystem and the integrated optical system. The processor includes a tangible non-volatile computer readable medium comprising instructions to determine one of an axis, meridian and structure of an eye of the patient based on the measurements received from topography measurement system, and direct the treatment beam so as to incise radial fiducial mark incisions.
1 . A method of laser-assisted cataract surgery in an eye of a patient, comprising:
measuring a topography or tomography of the eye without a patient interface contacting the eye;
placing a patient interface in contact with the eye;
determining locations and incision profiles of one or more fiducial marker incisions with the patient interface contacting the eye based on the topography or tomography of the eye that has been measured without the patient interface contacting the eye;
with the patient interface contacting the eye, incising one or more tissues of the eye using a pulsed laser beam, including incising the one or more fiducial marker incisions based on the determined locations and incision profiles of the one or more fiducial marker incisions; and
after the incising step, removing the patient interface from the eye.
2 . The method of claim 1 , wherein the one or more fiducial marker incisions are intrastromal corneal incisions.
3 . The method of claim 1 , wherein a length of each of the one or more fiducial marker incision is less than 1.5 mm.
4 . The method of claim 1 , wherein the step of measuring topography or tomography of the eye comprises measuring a corneal topography with one or more of a keratometry system, an optical coherence tomography system, a Placido disc topography system, a Hartmann-Shack topography system, a Scheimpflug image topography system, a confocal tomography system, or a low coherence reflectometry system.
5 . The method of claim 1 , further comprising, after removing the patient interface from the eye:
removing a crystalline lens from the eye;
placing an intraocular lens having an aberration correcting axis in the eye; and
aligning the aberration correcting axis of the intraocular lens based on the one or more fiducial marker incisions.
6 . The method of claim 1 , further comprising:
before placing the patient interface in contact with the eye, capturing a non-contact iris image of the eye;
identifying one or more tissue structures of the eye in the non-contact iris image;
determining a non-contact treatment axis of the eye based on the topography or tomography of the eye that has been measured without the patient interface contacting the eye;
after placing the patient interface in contact with the eye, capturing a contact iris image of the eye;
identifying the one or more tissue structures of the eye in the contact iris image; and
based on the identified tissue structures in the non-contact and contact iris images, determining a rotation and translation between the non-contact and contact iris images;
wherein the step of determining locations and incision profiles of the one or more fiducial marker incisions includes determining the locations and incision profiles based on the non-contact treatment axis and the rotation and translation.
7 . The method of claim 1 , wherein the locations of the one or more fiducial marker incisions correspond to an axis, a meridian, or a structure of the eye.
8 . The method of claim 1 , wherein the locations of the one or more fiducial marker incisions are in a cornea of the eye outside an optical zone of the eye.
9 . The method of claim 6 , wherein the one or more tissue structures include one or more of a limbus, a sclera, blood vessels, an iris, a pupil, a pupil center, a natural pupil, a natural pupil center, a cornea, a cornea anterior surface, astigmatic axes of the cornea anterior surface, a cornea posterior surface, a meridian of the cornea, a thickness profile of cornea, a vertex of the cornea, a lens, a lens anterior surface, an astigmatic axes of the lens anterior surface, a lens posterior surface, an astigmatic axis of the lens posterior surface, a retina, an anterior optical node of the eye, a posterior optical node of the eye, an optical axis of the eye, a line of sight of the eye, a pupillary axis of the eye, a visual axis of the eye, a nodal axis of the eye, a center of curvature of an anterior corneal surface, a center of curvature of a posterior corneal surface, a center of curvature of a lens anterior surface, and a lens posterior surface.
10 . The method of claim 1 , wherein the one or more fiducial marker incisions include two radial incisions in a cornea of the eye disposed at a periphery of the eye along a selected axis and centered on one of a limbus, iris or scanned capsule of the eye.
11 . The method of claim 1 , wherein the incising step further includes incising a capsularhexis incision, limbal relaxing incisions, or lens fragmentation incisions, and wherein the one or more fiducial marker incisions are performed at a first laser pulse energy which is lower than a second laser pulse energy used to perform the capsularhexis incision, limbal relaxing incisions, or lens fragmentation incisions.
12 . A laser cataract surgery system for treating an eye of a patient, comprising:
a laser source configured to produce a pulsed laser beam;
a topography or tomography measurement system configured to measure a topography or tomography of the eye;
a camera configured to capture images of the eye;
an optical system configured to receive and direct the pulsed laser beam to the eye;
a processor in operable communication with the laser source, the topography or tomography measurement system, the camera, and the optical system, wherein the processor is configured to:
control the topography or tomography measurement system to measure a topography or tomography of the eye without a patient interface contacting the eye;
control the camera to capture a non-contact iris image of the eye without the patient interface contacting the eye;
identify one or more tissue structures of the eye in the non-contact iris image;
determine a non-contact treatment axis of the eye based on the topography or tomography of the eye that has been measured without the patient interface contacting the eye;
after the patient interface has been placed in contact with the eye, control the camera to capture a contact iris image of the eye with the patient interface contacting the eye;
identify the one or more tissue structures of the eye in the contact iris image;
based on the identified tissue structures in the non-contact and contact iris images, determine a rotation and translation between the non-contact and contact iris images;
determine locations and incision profiles of one or more fiducial marker incisions with the patient interface contacting the eye based on the non-contact treatment axis and the rotation and translation; and
with the patient interface contacting the eye, control the laser source and the optical system to form one or more incisions in one or more tissues of the eye using the pulsed laser beam, including forming the one or more fiducial marker incisions based on the determined locations and incision profiles of the one or more fiducial marker incisions.
13 . The system of claim 12 , wherein the topography or tomography measurement system is one or more of a keratometry system, an optical coherence tomography system, a Placido disc topography system, a Hartmann-Shack topography system, a Scheimpflug image topography system, a confocal tomography system, or a low coherence reflectometry system.
14 . The system of claim 12 , wherein the locations of the one or more fiducial marker incisions correspond to an axis, a meridian, or a structure of the eye.
15 . The system of claim 12 , wherein the one or more fiducial marker incisions are intrastromal corneal incisions.
16 . The system of claim 12 , wherein a length of each of the one or more fiducial marker incision is less than 1.5 mm.
17 . The system of claim 12 , wherein the locations of the one or more fiducial marker incisions are in a cornea of the eye outside an optical zone of the eye.
18 . The system of claim 12 , wherein the one or more fiducial marker incisions include two radial incisions in a cornea of the eye disposed at a periphery of the eye along a selected axis and centered on one of a limbus, iris or scanned capsule of the eye.
19 . The system of claim 12 , wherein the one or more tissue structures include one or more of a limbus, a sclera, blood vessels, an iris, a pupil, a pupil center, a natural pupil, a natural pupil center, a cornea, a cornea anterior surface, astigmatic axes of the cornea anterior surface, a cornea posterior surface, a meridian of the cornea, a thickness profile of cornea, a vertex of the cornea, a lens, a lens anterior surface, an astigmatic axes of the lens anterior surface, a lens posterior surface, an astigmatic axis of the lens posterior surface, a retina, an anterior optical node of the eye, a posterior optical node of the eye, an optical axis of the eye, a line of sight of the eye, a pupillary axis of the eye, a visual axis of the eye, a nodal axis of the eye, a center of curvature of an anterior corneal surface, a center of curvature of a posterior corneal surface, a center of curvature of a lens anterior surface, and a lens posterior surface.
20 . The system of claim 12 , wherein the one or more incisions further includes a capsularhexis incision, limbal relaxing incisions, or lens fragmentation incisions, and wherein the one or more fiducial marker incisions are formed at a first laser pulse energy which is lower than a second laser pulse energy used to form the capsularhexis incision, limbal relaxing incisions, or lens fragmentation incisions.