Accommodating intraocular lenses

Information

  • Patent Grant
  • 10052194
  • Patent Number
    10,052,194
  • Date Filed
    Thursday, June 24, 2010
    14 years ago
  • Date Issued
    Tuesday, August 21, 2018
    6 years ago
Abstract
An intraocular lens is disclosed, with an optic that changes shape in response to a deforming force exerted by the zonules of the eye. A haptic supports the optic around its equator and couples the optic to the capsular bag of the eye. Certain haptic features improve the accommodative performance of the haptic, such that compressive/tensile forces may be more efficiently transferred from the haptic to optic. Furthermore, certain aspects also provide enhanced bag-sizing capability so that the IOL better fits within the capsular bag.
Description
FIELD OF THE INVENTION

The present invention relates to intraocular lenses, and more particularly to accommodating intraocular lenses.


BACKGROUND OF THE INVENTION

A human eye can suffer diseases that impair a patient's vision. For instance, a cataract may increase the opacity of the lens, causing blindness. To restore the patient's vision, the diseased lens may be surgically removed and replaced with an artificial lens, known as an intraocular lens, or IOL. An IOL may also be used for presbyopic lens exchange.


The simplest IOLs have a single focal length, or, equivalently, a single power. Unlike the eye's natural lens, which can adjust its focal length within a particular range in a process known as accommodation, these single focal length IOLs cannot generally accommodate. As a result, objects at a particular position away from the eye appear in focus, while objects at an increasing distance away from that position appear increasingly blurred.


An improvement over the single focal length IOLs is an accommodating IOL, which can adjust its power within a particular range. As a result, the patient can clearly focus on objects in a range of distances away from the eye, rather than at a single distance. This ability to accommodate is of tremendous benefit for the patient, and more closely approximates the patient's natural vision than a single focal length IOL.


When the eye focuses on a relatively distant object, the lens power is at the low end of the accommodation range, which may be referred to as the “far” power. When the eye focuses on a relatively close object, the lens power is at the high end of the accommodation range, which may be referred to as the “near” power. The accommodation range or add power is defined as the near power minus the far power. In general, an accommodation range of 2 to 4 diopters is considered sufficient for most patients.


The human eye contains a structure known as the capsular bag, which surrounds the natural lens. The capsular bag is transparent, and serves to hold the lens. In the natural eye, accommodation is initiated in part by the ciliary muscle and a series of zonular fibers, also known as zonules. The zonules are located in a relatively thick band mostly around the equator of the lens, and impart a largely radial force to the capsular bag that can alter the shape and/or the location of the natural lens and thereby change its effective power.


In a typical surgery in which the natural lens is removed from the eye, the lens material is typically broken up and vacuumed out of the eye, but the capsular bag is left intact. The remaining capsular bag is extremely useful for an accommodating intraocular lens, in that the eye's natural accommodation is initiated at least in part by the zonules through the capsular bag. The capsular bag may be used to house an accommodating IOL, which in turn can change shape and/or shift in some manner to affect the power and/or the axial location of the image.


The IOL has an optic, which refracts light that passes through it and forms an image on the retina, and a haptic, which mechanically couples the optic to the capsular bag or holds the IOL in contact with the capsular bag. During accommodation, the zonules exert a force on the capsular bag, which in turn exerts a force on the optic. The force may be transmitted from the capsular bag directly to the optic, or from the capsular bag through the haptic to the optic.


One challenge in implementing an accommodating optic is designing a suitable haptic to couple the optic to the capsular bag. The haptic should allow distortion of the optic in an efficient manner, so that a relatively small ocular force from the ciliary muscle, zonules, and/or capsular bag can produce a relatively large change in power and/or axial location of the image. This reduces fatigue on the eye, which is highly desirable.


Accordingly, there exists a need for an intraocular lens having a haptic with increased efficiency in converting an ocular force to a change in power and/or a change in axial location of the image.





BRIEF DESCRIPTION OF THE DRAWINGS

Features and advantages of the present invention will become appreciated as the same become better understood with reference to the specification, claims, and appended drawings wherein:



FIG. 1 is a plan drawing of a human eye having an implanted intraocular lens, in an accommodative or “near” state.



FIG. 2 is a plan drawing of the human eye of FIG. 1, in a disaccommodative or “far” state.



FIG. 3 is a perspective view of a haptic for an intraocular lens having a pair of axially spaced-apart and centered rings, and a plurality of plate-like legs radiating outward therefrom;



FIG. 4 is a perspective view of a haptic for an intraocular lens having a centered ring on one side of an optic midplane and a plurality of legs extending outward therefrom in similar spirals;



FIG. 5A is a perspective view of a haptic for an intraocular lens having a central vaulted portion including spokes each having a unitary outer end and axially spaced apart bifurcated inner ends connected in two axially spaced planes;



FIG. 5B is a perspective view of the haptic of FIG. 5A embedded within an accommodative optic;



FIG. 6A is a perspective view of a haptic similar to FIG. 5A but having a more conical central vaulted portion;



FIG. 6B is a perspective view of the haptic of FIG. 6A embedded within an accommodative optic;



FIG. 7 is a perspective view of a haptic similar to FIG. 5A embedded within an accommodative optic and having central throughholes in the vaulted portion;



FIG. 8 is a perspective view of an intraocular lens with a haptic having a central plate on one side of an optic midplane and a plurality of legs radiating outward therefrom, and including a circular array of teeth embedded in the optic;



FIG. 9 is a perspective view of an intraocular lens with a haptic having curved plate-like members that sandwich an optic therebetween, each curved plate-like member having a plurality of legs that extend outward therefrom;



FIG. 10 is a perspective view of a haptic for an intraocular lens having a centered ring and a plurality of legs radiating outward each having an outer end capped with a flap-like appendage for fitting within a capsular bag;



FIG. 11 is a perspective view of a haptic for an intraocular lens having a centered ring and a plurality of legs radiating outward each leg having an outer end that terminates in an annular tip;



FIGS. 12A and 12B are plan and detailed sectional views of a haptic for an intraocular lens having a centered ring and a plurality of legs radiating outward therefrom, each leg having a rounded cross-section;



FIG. 13A is a plan view of a system of a haptic for an intraocular lens and a posterior capsule opacification (PCO) ring, the haptic having a central ring from which a plurality of legs radiate outward at angles to the optic midplane;



FIG. 13B is an elevational view of the haptic of FIG. 13A positioned within a capsular bag shown in phantom;



FIGS. 14A and 14B are perspective and detailed views of an adjustable PCO ring; and



FIGS. 15A and 15B illustrate an intraocular lens having a centered ring, a plurality of haptics radiating outward therefrom, each haptic having an outer end that terminates in an annular tip lying generally parallel to the centered ring, and an inflatable outer ring.





DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

In a healthy human eye, the natural lens is housed in a structure known as the capsular bag. The capsular bag is driven by a ciliary muscle and zonular fibers (also known as zonules) in the eye, which can compress and/or pull on the capsular bag to change its shape. The motions of the capsular bag distort the natural lens in order to change its power and/or the location of the lens, so that the eye can focus on objects at varying distances away from the eye in a process known as accommodation.


For some people suffering from cataracts, the natural lens of the eye becomes clouded or opaque. If left untreated, the vision of the eye becomes degraded and blindness can occur in the eye. A standard treatment is surgery, during which the natural lens is broken up, removed, and replaced with a manufactured intraocular lens. Typically, the capsular bag is left intact in the eye, so that it may house the implanted intraocular lens.


Because the capsular bag is capable of motion, initiated by the ciliary muscle and/or zonules, it is desirable that the implanted intraocular lens change its power and/or location in the eye in a manner similar to that of the natural lens. Such an accommodating lens may produce improved vision over a lens with a fixed power and location that does not accommodate.


A desirable optic for an accommodating IOL is one that distorts in response to a squeezing or expanding radial force applied largely to the equator of the optic (i.e., by pushing or pulling on or near the edge of the optic, circumferentially around the optic axis). Under the influence of a squeezing force, the optic bulges slightly in the axial direction, producing more steeply curved anterior and/or posterior faces, and producing an increase in the power of the optic. Likewise, an expanding radial force produces a decrease in the optic power by flattening the optic. This change in power is accomplished in a manner similar to that of the natural eye and is well adapted to accommodation. Furthermore, this method of changing the lens power reduces any undesirable pressures exerted on some of the structures in the eye.



FIG. 1 shows a human eye 10, after an accommodating intraocular lens has been implanted. Light enters from the left of FIG. 1, and passes through the cornea 11, the anterior chamber 12, the iris 13, and enters the capsular bag 14. Prior to surgery, the natural lens occupies essentially the entire interior of the capsular bag 14. After surgery, the capsular bag 14 houses the intraocular lens, in addition to a fluid that occupies the remaining volume and equalizes the pressure in the eye. The intraocular lens is described in more detail below. After passing through the intraocular lens, light exits the posterior wall 15 of the capsular bag 14, passes through the posterior chamber 24, and strikes the retina 16, which detects the light and converts it to a signal transmitted through the optic nerve 17 to the brain.


A well-corrected eye forms an image at the retina 16. If the lens has too much or too little power, the image shifts axially along the optical axis away from the retina, toward or away from the lens. Note that the power required to focus on a close or near object is more than the power required to focus on a distant or far object. The difference between the “near” and “far” powers is known typically as the add power or as the range of accommodation. A normal range of accommodation is about 2 to 4 diopters, which is considered sufficient for most patients, but some have a range of 1 to 8 diopters.


The capsular bag is acted upon by the ciliary muscle 25 via the zonules 18, which distort the capsular bag 14 by stretching it radially in a relatively thick band about its equator. Experimentally, it is found that the ciliary muscle 25 and/or the zonules 18 typically exert a total ocular force of up to about 10 grams of force, which is distributed generally uniformly around the equator of the capsular bag 14. Although the range of ocular force may vary from patient to patient, it should be noted that for each patient, the range of accommodation is limited by the total ocular force that can be exert. Therefore, it is highly desirable that the intraocular lens be configured to vary its power over the full range of accommodation, in response to this limited range of ocular forces. In other words, it is desirable to have a relatively large change in power for a relatively small driving force.


Because the force exerted by the zonules, or ocular force, is limited, in some cases it is desirable to use a fairly thin lens, compared to the full thickness of the capsular bag. In general, a thin lens may distort more easily than a very thick one, and may therefore convert the ocular force more efficiently into a change in power. In other words, for a relatively thin lens, a lower force is required to cover the full range of accommodation. On the other hand, a soft, thicker lens may be capable of changing shape from small capsular bag forces and actually function better with fewer aberrations.


Note that the lens may be designed so that its relaxed state is the “far” condition (sometimes referred to as “disaccommodative biased”), the “near” condition (“accommodative biased”), or some condition in between the two.


The intraocular lens itself generally has two components, an optic 21, which is made of a transparent, deformable and/or elastic material, and a haptic 23, which holds the optic 21 in place and mechanically transfers forces on the capsular bag 14 to the optic 21. The haptic 23 may have an engagement member with a central recess that is sized to receive the peripheral edge of the optic 21. The haptic and optic may be refractive index matched, though if at least some of the haptic is embedded in or otherwise overlapping the optic the two materials must be index matched.


When the eye 10 focuses on a relatively close object, as shown in FIG. 1, the zonules 18 relax and compress the capsular bag 14 returns to its natural shape in which it is relatively thick at its center and has more steeply curved sides. As a result of this action, the power of the lens increases (i.e., one or both of the radii of curvature can decrease, and/or the lens can become thicker, and/or the lens may also move axially), placing the image of the relatively close object at the retina 16. Note that if the lens could not accommodate, the image of the relatively close object would be located behind the retina, and would appear blurred.



FIG. 2 shows a portion of an eye 20 that is focused on a relatively distant object. The cornea 11 and anterior chamber 12 are typically unaffected by accommodation, and are substantially identical to the corresponding elements in FIG. 1. To focus on the distant object, the ciliary muscle 37 contracts and the zonules 26 retract and change the shape of the capsular bag 25, which becomes thinner at its center and has less steeply curved sides. This reduces the lens power by flattening (i.e., lengthening radii of curvature and/or thinning) the lens, placing the image of the relatively distant object at the retina (not shown).


For both the “near” case of FIG. 1 and the “far” case of FIG. 2, the intraocular lens itself deforms and changes in response to the ciliary muscles and/or to the distortion of the capsular bag. For the “near” object, the haptic 23 compresses the optic 21 at its edge, increasing the thickness of the optic 21 at its center and more steeply curving its anterior face 19 and/or its posterior face 22. As a result, the lens power increases. For the “far” object, the haptic 30 expands, pulling on the optic 28 at its edge, and thereby decreasing the thickness of the optic 28 at its center and less steeply curving (e.g., lengthening one or both radius of curvature) its anterior face 27 and/or its posterior face 29. As a result, the lens power decreases.


Note that the specific degrees of change in curvature of the anterior and posterior faces depend on the nominal curvatures. Although the optics 21 and 28 are drawn as bi-convex, they may also be plano-convex, meniscus or other lens shapes. In all of these cases, the optic is compressed or expanded by forces applied by the haptic to the edge and/or faces of the optic. In addition, there may be some axial movement of the optic. In some embodiments, the haptic is configured to transfer the generally symmetric radial forces symmetrically to the optic to deform the optic in a spherically symmetric way. However, in alternate embodiments the haptic is configured non-uniformly (e.g., having different material properties, thickness, dimensions, spacing, angles or curvatures), to allow for non-uniform transfer of forces by the haptic to the optic. For example, this could be used to combat astigmatism, coma or other asymmetric aberrations of the eye/lens system. The optic may optionally have one or more diffractive elements, one or more multifocal elements, and/or one or more aspheric elements.


In many cases, it is desirable that during accommodation, the distortion of the optic produces a change in optic thickness and/or a change in the radius of curvature of the anterior and/or posterior surfaces of the optic. Any other types of distortions to the surface, such as “ripples” or “waves”, may unacceptably degrade the optical performance of the lens. These “ripples” or “waves” are described in more detail below.


Because the optic is round, it may be difficult to envision any undesirable surface ripples that may accompany a squeezing or expanding of the optic about its equator. For this reason, it is instructive to consider the geometry of a linear beam or rod, which can produce analogous ripples along a single dimension. This 1-D geometry is much simpler to visualize, and adequately describes the issue of undesirable surface distortion.


Consider a linear beam or rod, which is being compressed by pushing on its ends. While the intended effect of the compression may be to shorten the beam and/or produce a slight bulge along the length of the beam, an unintended effect may be to cause a small amount of “buckling” along the length of the beam. Similarly, if the beam is stretched by pulling on its ends, the intended effect of the stretching may be to lengthen the beam and/or produce a slight thinning of the beam along its length, but an unintended effect may be to cause a small amount of “cracking” along the surface, similar in character to that of a desert floor. Both the “buckling” and “cracking” may occur along the surface of the beam, while the compression or expansion may be initiated at or near the ends of the beam.


This analogy may be extended to the two-dimensional, essentially circular geometry of the accommodating optic. To focus on relatively near objects, as in FIG. 1, the haptic may squeeze the optic about its equator and cause a radial compression of the optic. The intended effect of the squeezing may be to increase the thickness of the optic and/or change the curvature of the anterior and/or posterior surfaces of the optic. However, an unintended effect may be to produce the two-dimensional, circular equivalent of “buckling” on one or both of these surfaces. Similarly, to focus on relatively distant objects, as in FIG. 2, the haptic may stretch the optic about its equator and cause a radial expansion of the optic. The intended effect of the expansion may be to decrease the thickness of the optic and/or change the curvature of the anterior and/or posterior surfaces of the optic. However, an unintended effect may be to produce the twos dimensional, circular equivalent of “cracking” on one or both of these surfaces. For the purposes of this document, the circular equivalents of “buckling” and “cracking” may be referred to as “ripples” or “waves”. For known optics, these “ripples” or “waves” may degrade the performance of the optic, which is highly undesirable.


It is possible that the “ripples” or “waves” during accommodation may be avoided if the optic has internal stress. For instance, if the haptic applies a compression or expansion force to the optic, separate and distinct from any compression or expansion forces applied by the capsular bag of the eye, then the optic may have some internal stress, which may reduce any “ripples” or “waves” that appear during accommodation. The internal stress in the optic may be present throughout the range of accommodation, or may alternatively pass through “zero” at some point in the range of accommodation.


In some embodiments, the anterior and/or posterior surfaces may be designed so that they attain particular profiles when the optic is compressed about its equator, as occurs when the lens is implanted. For instance, in some embodiments, it may be particularly desirable to have spherical anterior and/or posterior surfaces; in these embodiments, the anterior and/or posterior surface profiles may or may not deviate from spherical when the optic is uncompressed about its equator. In other words, for some embodiments, compressing the optic about its equator causes the anterior and/or posterior surfaces to become more spherical in profile. If there is a sphericity in either surface in the uncompressed state, it may be reduced when the optic is compressed.


For the purposes of this document, an intraocular lens and/or the optic contained therein in which a haptic uses its internal stress to affect the internal stress of the optic may be referred to as a “pre-stressed” intraocular lens and/or a “pre-stressed” optic.


Many embodiments herein provide a haptic partly embedded within an adjustable or accommodative central optic. The haptic transmits forces to alter at least one of the shape and the thickness of the adjustable optic. The materials of the haptic and optic may have similar compressive or spring moduli, to encourage direct transfer of forces and reduce uneven expansion/contraction and accompanying tension therebetween, though the haptics are generally somewhat stiffer to be capable of transmitting capsular forces. Additionally, similar material stiffness may reduce the mismatch in shrinkage rates during molding or post-processing, which mismatch may ultimately negatively impact lens resolution. In one embodiment, the stiffnesses of the two materials are within about 10% of each other and preferably within a range of about 20-100 kPa. Moreover, the two materials have similar refractive indices to reduce any unwanted glare or reflection from light passing across adjacent surfaces. A number of such embedded optics may be seen in U.S. Patent Publications 2008-0161913 and 2008-0161914, the disclosures of which are expressly incorporated herein.


A number of features described herein provide certain advantages to intraocular lenses. For instance, various configurations improve the accommodative performance of the haptic, such that compressive/tensile forces may be more efficiently transferred from the haptic to optic. Furthermore, certain aspects provide enhanced bag-sizing capability so that the IOL better fits within the capsular bag. Some of these features work together to provide both advantages, or may enhance the ability of another feature to perform its function. Indeed, it should be understood that any combination of individual haptic or IOL features described herein may be formed even if not explicitly described or shown.



FIG. 3 is a perspective view of an accommodative haptic 50 for an intraocular lens having a pair of axially spaced-apart rings 52 centered around an optical axis OA, and a plurality of plate-like legs 54 radiating outward from each ring. The haptic 50 is desirably partly embedded within an adjustable or accommodative central optic (not shown) having an axial thickness through the center thereof. For instance, the haptic 50 may be embedded in the optic such that rings 52 are within the optic, but not all of the legs 54. The haptic 50 is configured to transmit forces to alter at least one of the shape and the thickness of the adjustable optic.


Desirably, the haptic 50 is symmetric across a midplane perpendicular to the optical axis OA such that there are matching legs 54 connected to each ring. Preferably, each pair of matching legs 54 joins together at their outer ends in a convex outer curve 56 that has an axial dimension greater than the spacing between the rings 52. That is, in the illustrated embodiment each two legs 54 and outer curve 56 are connected to form an arrowhead shape, with short concave sections 58 therebetween. As illustrated, there may be eight pairs of matching legs 54, though more and as few as three are contemplated. The arrowhead-shaped outer ends of the haptic legs 54 provides a capsular bag-filling outer profile to the haptic 50 that better couples the bag forces to the central softer optic to either expand or contract the optic axially. That is, forces exerted on the outer ends of the haptic legs 54 are transmitted through the legs to cause the spaced rings 52 to move apart or toward each other, thus changing the shape of the surrounding soft optic. The change in the surface shape of the optic changes the optic power thereof. Alternatively, it is also possible to provide two rigid optics, one attached to each of the two haptic rings 52, that move along the optical axis OA to create power change.



FIG. 4 is a perspective view of a further haptic 60 for an intraocular lens having a ring 62 centered around an optical axis OA and on one side of an optic midplane perpendicular to the axis. A plurality of legs 64 extend outward from the ring 62 in similar spirals and curve axially. The legs 64 define outermost convex curves 66 and continue radially inward on the opposite side of the optic midplane from the ring 62 to terminate in free ends 68. Indeed, the legs 64 are desirably outwardly convex along their lengths to conform closely to a surrounding capsular bag (not shown). The legs 64 preferably have a circumferential width that exceeds their radial thickness (as measured in the midplane). The resulting shape is analogous to a twisting pin-cushion.


As mentioned above, the haptic 60 is desirably partly embedded within an adjustable or accommodative central optic (not shown) having an axial thickness through the center thereof. For instance, the haptic 60 may be embedded in the optic such that ring 62 is within the optic, but not all of the legs 64. In one embodiment, the ring 62 and the free ends 68 of the legs are embedded in the optic, but the outermost convex curves 66 are not. The haptic 60 transmits forces imparted by the surrounding capsular bag to alter at least one of the shape and the thickness of the adjustable optic. As can be appreciated, a compressive force radially inward on the outermost convex curves 66 will tend to displace the ring 62 and the free ends 68 of the legs axially apart through the straightening or “unwinding” of the spiral legs 64.


The haptic 60 of FIG. 4 may incorporate two optics axially spaced along the optical axis OA such that at least one of the lenses rotates relative or opposite to the other during accommodation. For instance, one of the optics could be aspheric/asymmetrical such that the relative rotation causes a power change in addition to any power change caused by axial movement. In one embodiment, one optic spans and embeds the ring 62 and another optic spans and embeds the free ends 68. Although not shown here, it is also possible to construct a haptic that is similar to this one but symmetric about the horizontal plane so that two of the rings 62 are attached to the legs (without the free ends 68).



FIG. 5A illustrates a haptic 70 for an intraocular lens, while FIG. 5B shows the haptic embedded within an accommodative optic 72 (shown translucent). The haptic 70 has a vaulted portion centered around an optical axis OA including spokes 74 each having a unitary outer end 76 and axially spaced apart bifurcated inner ends 78 connected in two axially spaced planes. In particular, the inner ends of the spokes 74 converge in two axially spaced-apart solid plates 80, denoted anterior and posterior plates. The vaulted spokes 74 resembles a cage structure. As mentioned above, the haptic 70 desirably is index matched with the optic 72.


The spokes 74 preferably have a circumferential width that exceeds their radial thickness (as measured in the midplane). More preferably, the circumferential width of the spokes 74 gradually increases from their connection with the central plates 80 outward to a maximum at their connection to the unitary outer ends 76. The term “unitary” is meant simply differentiate the bifurcated inner ends, and can be a variety of shapes. In the illustrated embodiment, the outer ends 76 comprises cylindrical rods or stubs that project radially outward from convex outer portions of the spokes 74. Rounded or other more bag-conforming structures may be provided on the outer ends of the cylindrical rods as desired.


As with the earlier haptics, the haptic 70 transmits forces imparted by the surrounding capsular bag to alter at least one of the shape and the thickness of the adjustable optic. Namely, a compressive force radially inward on the outer ends 76 will tend to spread the bifurcated inner spoke ends apart, thus separating the anterior and posterior plates 80 and accordingly axially thickening the optic 72. Conversely, a relaxation of the capsular bag forces causes the spokes 74 to return outward, thus allowing the anterior and posterior plates 80 to move together again. The radial length of the cylindrical rods 76 may be varied to provide a number of different sizes of IOLs so as to better fit various capsular bag sizes.



FIGS. 6A and 6B show a haptic 90 similar to that in FIG. 5A but having a more conical central vaulted portion 92. It is also worth mentioning that the haptics 70, 90 of FIGS. 5-6 include haptics having a central solid portion across the optical axis OA. By choosing materials of the haptic and optic that have similar refractive indices, the haptics can exist even across the central optic zone. This configuration makes possible a number of novel haptic shapes that may improve their accommodative performance. That is, compressive/tensile forces may be more efficiently transferred from the haptic to optic by providing this central solid zone.



FIG. 7 is a perspective view of a haptic 100 also similar to that in FIG. 5A embedded within an accommodative optic 102, yet having central throughholes 104 in the vaulted portion.



FIG. 8 shows another haptic 110 having a solid central plate 112 on one side of an optic midplane, and a plurality of legs 114 radiating outward therefrom. A circular array of teeth 116 projects generally axially (parallel to the optical axis) from one side of the central plate 112 and is embedded in a dome-like lens body 118. The central plate 112 is stiffer than the lens body 118, and the two are not necessarily index matched.


Each leg 114 has an outermost convex curve 120 to conform to the capsular bag. The curved outer ends of the haptic legs 114 provide a capsular bag-filling outer profile to the haptic 110 that better fits the interior of the bag. As with the other embodiments described herein, the legs 114 transmit forces exerted on the outer ends 120 to cause a change in surface shape or curvature of the lens body 118, thus changing the optic power.


Each tooth 116 defines a rectilinear solid that gradually narrows from a base at the central plate 112 to a tip 122. For instance, lateral sides 124 of each tooth 116 may have a modified quadrilateral shape as shown with an arcuate base at the central plate 112, two elongated linear sides and a short linear side at the tip 122. The teeth are angled generally normal to the concave inner surface of the plate 112 so that they converge radially inward toward each other. Desirably, the central plate 112, connected outer legs 114, and teeth 116 are all made of a stiffer material than the softer dome-like lens body 118. During accommodation, the teeth-like protrusions 116 of harder material inside the softer material of the body 118 act to further transmit the forces and alter the curvature of the lens body 118. The teeth 116 also act to squeeze the softer lens body 118 and cause its surface curvature to change, ideally in the opposite direction of the central plate 112, to enhance power change.



FIG. 9 illustrates a further haptic 130 having opposed curved plate-like members 132 that sandwich an optic 134 therebetween. Each plate-like member 132 defines a concave face toward the optic 134 and a convex face away from the optic, and a plurality of legs 136 that extend outward from the perimeter of the optic along generally the same curvature to contact the capsular bag (however, in some cases dissimilar haptic leg curvatures may be desirable). The haptic legs 136 of the opposed plate-like members 132 are interwoven so as to present alternating axially-spaced legs to support the inside of the capsular bag. Moreover, the legs 136 are desirably wider than they are thick, so as to form curved plates, and have a width that increases radially outward to resemble the legs of an Iron Cross. The outer edges 138 of the legs 136 are the widest, and are desirably angled or contoured to more closely match the curvature of the surrounding capsular bag. Other conforming structure may be used, such as the flexible tips described below.


The opposing plate-like members 132 including the outer legs 136 are typically stiffer materials than the softer optic 134. As before, the haptic 130 transmits forces from the surrounding capsular bag to alter at least one of the shape and the thickness of the adjustable optic 134. The stresses transmitted through the outer legs 136 causes the plate-like members 132 to bow or flatten, which then alters the thickness and/or curvature of the softer central optic 134. As with most of the configurations described herein, the different materials would typically be refractive index matched to avoid unwanted optical effects. In some configurations, some difference in refractive index is acceptable.


The haptic 150 of FIG. 10 includes a centered ring 152 and a plurality of spoke-like legs 154 radiating outward therefrom. Each leg 154 has an outer end connected by a peripheral ring 156 and is capped with a flap-like appendage 158 for fitting within a capsular bag. More specifically, the flap-like appendage 158 extends generally axially in at least one direction from the outer end of the respective leg 154. To better conform to the capsular bag, each appendage 158 features a rounded or convex outer surface 160 and an arcuate free edge 162 at its axial extent.


As before, the haptic 150 is configured to transmit forces from the capsular bag to alter at least one of the shape and the thickness of an adjustable optic (not shown) within which the haptic is embedded. The legs 154 are wedge-shaped with narrower inner ends at the centered ring 152 and wider outer ends at the peripheral ring 156. FIG. 10 also shows optional cuts 164 in the inner ring 152 that assist in reducing the resistance of movement of the ring to radial pressure from the bag. The cuts 164 may also be wider spaces or slots.


The flap-like appendages 158 provide some flexibility or resilience at the outer ends of the legs 154 so that the sizing of the intraocular lens within the capsular bag is not as critical. That is, the capsular bag is measured and an IOL chosen therefrom, but due to an incremental size selection of haptics the spectrum of capsular bag sizes cannot be precisely matched. However, the appendages 158 are cantilevered from the legs 154 so that they bend somewhat if the bag is slightly smaller than expected, thus providing a better structural engagement with the bag. The haptic 150 is thus bag-size forgiving in that the floppy appendages 158 will give more or less depending on bag size. Further, the appendages 158 store some potential energy from bending to help assist in transmitting bag forces into the central optic.



FIG. 11 shows another haptic 170 for an intraocular lens having a centered ring 172 embedded in an optic 174 and a plurality of legs 176 radiating outward therefrom. Each leg 176 terminates in an outer end that defines an annular tip 178. Each annular tip 178 is oriented generally parallel to the centered ring 172 such that an oval-shaped central opening 180 therein has an axis parallel to the optical axis OA. The annular tips 178 are connected by a peripheral ring 182 with bowed out sections between the legs 176.


The haptic legs 176 act as bumpers to allow some forgiveness in bag-sizing whereby the annular tips 178 flex and absorb compressive forces from the surrounding capsular bag. The bowed out sections of the peripheral ring 182 also assist this flexing. This enhances the ability of the haptic 170 to be properly sized within a range of bag sizes and shapes. The peripheral ring 182 helps even out capsular bag forces to adjacent legs 176. The tips 178 and bowed out sections of the peripheral ring 182 give or squeeze a bit without compromising the accommodating function of the IOL. Preferably there is some give which does not significantly affect the magnitude of force from the bag being applied into the central optic, or responsiveness to such capsular bag movement.


It should also be noted that all surfaces of the haptic 170 are rounded to enhance conformity to the capsular bag and reduce irritation that might occur from abrasion of sharp corners. The rounded surfaces also help to reduce glare and reflections.



FIG. 12A is a plan view of a further haptic 190 for an intraocular lens having a centered ring 192, a plurality of legs 194 radiating outward therefrom, and a peripheral ring 196 connecting the outer ends of the legs. As seen in the detail of FIG. 12B, each leg has a rounded cross-section as with the haptic 170 above to reduce irritation with the capsular bag, as well as optical glare and reflections. The peripheral ring 196 has an undulating circumferential profile with inward bows between the legs 194.



FIGS. 13A and 13B illustrate a system of a haptic 200 for an intraocular lens and a surrounding posterior capsule opacification (PCO) ring 202. The haptic 200 has a circular ring 204 in the optic midplane MP from which a plurality of legs 206 radiate outward at angles to the optic midplane to form two circumferential and axially-spaced arrays of haptic leg ends 208 to contact a capsular bag 210, shown in phantom in FIG. 13B. The haptic 200 is partly embedded within an adjustable optic 212 and provides accommodation thereto as described. There are preferably at least three haptic legs 206 angled to each side of the optic midplane MP as shown, though more may be utilized (for instance, an Iron Cross configuration as above). The legs 206 may be arranged symmetrically across the optic midplane MP as shown or offset circumferentially. The anterior and posterior side legs 206 are desirably equivalent in size and shape, though different lengths and/or configurations are contemplated. Likewise, the number of legs 206 on each side of the optic midplane MP may not be equal.


The two-piece IOL system including the haptic 200 and PCO ring 202 may be implanted separately, typically the ring 202 first. The PCO ring 202 is formed as thin as possible and will not affect accommodation provided by the haptic 200 to the optic 202. The system accomplishes bag-sizing and PCO prevention by using the capsular tension-type ring 202 around the bag equator to limit the migration of lens epithelial cells (i.e. PCO) from the equator behind the optic 212. The haptic legs 206 are offset angularly so that they do not terminate along the equator and interfere with the PCO ring. Some non-contiguous IOL designs may allow PCO to creep in behind the optic, and therefore PCO is handled by including the solid ring 202, preferably with a sharp edge, with the haptic 200 shaped to work around that ring.



FIGS. 14A and 14B are perspective and detailed views of an adjustable PCO ring 220 that may be used in place of the solid ring 202 of FIGS. 13A-13B. The ring 220 may include, for example, a zip-tie configuration with a male end 222 having ratchet teeth that fits into a female end 224 with a mating sleeve or pocket. The adjustable PCO ring 220 is used to both adjustably size itself against the capsular bag and also provide a measurement of the bag size based on the amount that the ring is contracted to fit. This can be calibrated to the number of teeth clicks, for example. The zip-tie ring will really help address (IOL) sizing in vivo and help ensure contact with the periphery of capsular bag to translate forces from ciliary body/zonules for accommodation while preventing PCO.


It should be noted that the rings 202, 220 in FIG. 13 or 14 could also provide a drug-delivery type system, such as a drug-eluting material, to further help prevent PCO.


According to another embodiment, an IOL may comprise one or more haptics and/or one or more rings around an optic, wherein the haptics and/or rings may be inflated. Inflation of the haptics and/or rings may adjust the size of the haptics and/or rings to create a better fit within the capsular bag and/or alter the stress on the optics. The haptics may be of varying shapes, including but not limited to a pie or wedge shape as illustrated in FIGS. 15A and 15B, a wheel/spoke configuration, or other configuration described herein. The level of inflation of the haptics and/or rings may be adjusted at the time of the initial implantation of the IOL. The level of inflation may also be adjusted or fine tuned during the life of the IOL, including but not limited to soon after implantation, and/or months or years after implantation. The fine tuning or adjustment may be made to enhance the patient's visual outcome over time. The haptics may be filled with anything known in the art including, but not limited to, saline, air, and/or silicone. The optic, haptics, and/or rings may have varying flexibility/stiffness depending upon the needs of the patient, the characteristics of the patient's eye, and/or the desired characteristics of the IOL. The haptics and/or rings may also have multiple chambers within each haptic and/or ring that are inflatable. Each chamber may be filled to different levels, thereby customizing the shape of the IOL to the capsular bag and/or varying the stresses on the optic to allow for non-uniform transfer of forces by the haptic to the optic.



FIGS. 15A and 15B illustrate an embodiment of the present invention. In FIG. 15A, multiple wedge shaped haptics are shown radiating outward around a center optic. The haptics are connected to an inner ring of the optic and an inflatable outer ring. Inflation of the outer ring adjusts the overall size of the IOL, as seen in FIG. 15B, enabling better fit of the IOL within the capsular bag. The inflation may also place stress on the optics as the haptics are connected to the inner ring of the optic and the inflatable outer ring. Such stress may change the thickness and/or shape of the optic. It is also envisioned that an IOL of the present invention comprises an inflatable inner ring and an inflatable outer ring, both of which are adjustable. The inner ring may be connected to the optic.


While the invention has been described in its preferred embodiments, it is to be understood that the words which have been used are words of description and not of limitation. Therefore, changes may be made within the appended claims without departing from the true scope of the invention.

Claims
  • 1. An intraocular lens for implantation into an eye, comprising: a deformable optic having an anterior face, a posterior face, and an axial thickness through a center thereof; anda haptic comprising a vaulted portion centered around an optical axis and a plurality of spokes, each spoke comprising a pair of spoke segments including a first spoke segment and a second spoke segment, wherein each pair of spoke segments extends between a respective unitary outer end and respective inner ends bifurcated in a direction along the optical axis, wherein, for each respective pair of spoke segments, the first spoke segment of the respective pair is spaced apart in the direction along the optical axis from the second spoke segment of the respective pair by a respective gap, the respective gap extending radially from the respective bifurcated inner ends to the respective unitary outer end of the respective pair of spoke segments,wherein the first spoke segment and the second spoke segment of each pair of spoke segments are entirely embedded within the deformable optic,wherein the spokes lie in a plane perpendicular to the optical axis, andwhereby the haptic is configured to transmit forces that result in the bifurcated inner ends of each pair of spoke segments vaulting to increase the respective gap between the first and second spoke segments of each pair of spoke segments and to increase the axial thickness of the deformable optic thereby more steeply curving the anterior face and the posterior face such that the anterior face and posterior face move apart from each other to change an accommodation of the intraocular lens.
  • 2. The intraocular lens of claim of claim 1, wherein the haptic further comprises a first central plate and a second central plate spaced apart from the first central plate along the optical axis, the first central plate connecting innermost ends of the first spoke segments of each pair of spoke segments, the second central plate connecting innermost ends of the second spoke segments of each pair of spoke segments.
  • 3. The intraocular lens of claim 2, wherein the spokes have a circumferential width that exceeds a radial thickness of the spokes.
  • 4. The intraocular lens of claim 3, wherein the circumferential width of the spokes gradually increases from their connection with the first and second central plates outward to a maximum at their connection to the respective unitary outer ends.
  • 5. The intraocular lens of claim 1, wherein the haptic further comprises cylindrical rods or stubs that project radially outward from the respective unitary outer ends of the spokes.
  • 6. The intraocular lens of claim 1, wherein the respective unitary outer ends of the spokes are rounded.
  • 7. The intraocular lens of claim 1, wherein the central vaulted portion is conical.
  • 8. The intraocular lens of claim of claim 7, wherein the bifurcated inner ends of the spokes are connected in two axially spaced planes.
  • 9. The intraocular lens of claim 7, wherein the spokes have a circumferential width that exceeds their radial thickness.
  • 10. The intraocular lens of claim 9, wherein the circumferential width of the spokes gradually increases from their connection with central plates outward to a maximum at their connection to the respective unitary outer ends.
  • 11. The intraocular lens of claim 7, wherein each unitary outer end is comprised of a cylindrical rod or stub that projects radially outward from respective outer portions of the spokes.
  • 12. The intraocular lens of claim 7, wherein each unitary outer end is rounded.
  • 13. The intraocular lens of claim 1, wherein the central vaulted portion is comprised of central throughholes.
  • 14. The intraocular lens of claim of claim 13, wherein the bifurcated inner ends of the spokes are connected in two axially spaced planes.
  • 15. The intraocular lens of claim 13, wherein the spokes have a circumferential width that exceeds their radial thickness.
  • 16. The intraocular lens of claim 15, wherein the circumferential width of the spokes gradually increases from their connection with central plates outward to a maximum at their connection to the respective unitary outer ends.
  • 17. The intraocular lens of claim 13, wherein each unitary outer end is comprised of a cylindrical rod or stub that projects radially outward from respective outer portions of the spokes.
  • 18. The intraocular lens of claim 13, wherein each unitary outer end is rounded.
Parent Case Info

The present application claims priority under 35 U.S.C. § 119(e) to provisional application No. 61/220,887, filed on Jun. 26, 2009 under the same title, which is incorporated herein by reference in its entirety. Full Paris Convention priority is hereby expressly reserved.

US Referenced Citations (631)
Number Name Date Kind
1483509 Bugbee Feb 1924 A
2129305 William Sep 1938 A
2274142 Houchin Feb 1942 A
2405989 Beach Aug 1946 A
2511517 Spiegel Jun 1950 A
2834023 Lieb May 1958 A
3004470 Hans Oct 1961 A
3031927 Wesley May 1962 A
3034403 Neefe May 1962 A
RE25286 De Carle Nov 1962 E
3210894 Bentley et al. Oct 1965 A
3222432 Grandperret Dec 1965 A
3227507 William Jan 1966 A
3305294 Alvarez Feb 1967 A
3339997 Wesley Sep 1967 A
3415597 Willard Dec 1968 A
3420006 Howard Jan 1969 A
3431327 George Mar 1969 A
3482906 David Dec 1969 A
3507565 Luis et al. Apr 1970 A
3542461 Louis et al. Nov 1970 A
3583790 Baker Jun 1971 A
3617116 Jones Nov 1971 A
3632696 Donald Jan 1972 A
3673616 Fedorov et al. Jul 1972 A
3673816 Kuszaj Jul 1972 A
3693301 Lemaitre Sep 1972 A
3711870 Deitrick Jan 1973 A
3718870 Keller Feb 1973 A
3751138 Humphrey Aug 1973 A
3760045 Thiele et al. Sep 1973 A
3794414 Wesley Feb 1974 A
3827798 Alvarez Aug 1974 A
3866249 Flom Feb 1975 A
3906551 Otter Sep 1975 A
3913148 Potthast Oct 1975 A
3922728 Krasnov Dec 1975 A
3925825 Richards et al. Dec 1975 A
3932148 Krewalk, Sr. Jan 1976 A
3996626 Richards et al. Dec 1976 A
4010496 Neefe Mar 1977 A
4014049 Richards et al. Mar 1977 A
4038088 White et al. Jul 1977 A
4041552 Ganias Aug 1977 A
4053953 Flom et al. Oct 1977 A
4055378 Feneberg et al. Oct 1977 A
4056855 Kelman Nov 1977 A
4062629 Winthrop Dec 1977 A
4073579 Deeg et al. Feb 1978 A
4074368 Levy et al. Feb 1978 A
4087866 Choyce et al. May 1978 A
4102567 Cuffe et al. Jul 1978 A
4110848 Jensen Sep 1978 A
4118808 Poler Oct 1978 A
4159546 Shearing Jul 1979 A
4162122 Cohen Jul 1979 A
4195919 Shelton Apr 1980 A
4199231 Evans Apr 1980 A
4210391 Cohen Jul 1980 A
4240163 Galin Dec 1980 A
4240719 Guilino et al. Dec 1980 A
4244060 Hoffer Jan 1981 A
4244597 Dandl Jan 1981 A
4251887 Anis Feb 1981 A
4253199 Banko Mar 1981 A
4254509 Tennant Mar 1981 A
4261065 Tennant Apr 1981 A
4274717 Davenport Jun 1981 A
4285072 Morcher et al. Aug 1981 A
4298994 Clayman Nov 1981 A
4304012 Richard Dec 1981 A
4307945 Kitchen et al. Dec 1981 A
4315336 Poler Feb 1982 A
4315673 Guilino et al. Feb 1982 A
4316293 Bayers Feb 1982 A
4326306 Poler Apr 1982 A
4338005 Cohen Jul 1982 A
4340283 Cohen Jul 1982 A
4340979 Kelman Jul 1982 A
4361913 Streck Dec 1982 A
4363143 Callahan Dec 1982 A
4366582 Faulkner Jan 1983 A
4370760 Kelman Feb 1983 A
4373218 Schachar Feb 1983 A
4377329 Poler Mar 1983 A
4377873 Reichert Mar 1983 A
4402579 Poler Sep 1983 A
4404694 Kelman Sep 1983 A
4409691 Levy Oct 1983 A
4418991 Breger Dec 1983 A
4424597 Schlegel Jan 1984 A
4426741 Bittner Jan 1984 A
4435856 L'Esperance Mar 1984 A
4442553 Hessburg Apr 1984 A
4457592 Baker Jul 1984 A
4463458 Seidner Aug 1984 A
4474751 Haslam et al. Oct 1984 A
4474752 Haslam et al. Oct 1984 A
4474753 Haslam et al. Oct 1984 A
4476591 Arnott Oct 1984 A
4478822 Haslam et al. Oct 1984 A
4503953 Majewski Mar 1985 A
4504981 Walman Mar 1985 A
4504982 Burk Mar 1985 A
4512040 McClure Apr 1985 A
4542542 Wright Sep 1985 A
4551864 Akhavi Nov 1985 A
4560383 Leiske Dec 1985 A
4562600 Ginsberg et al. Jan 1986 A
4573775 Bayshore Mar 1986 A
4573998 Mazzocco Mar 1986 A
4575877 Herrick Mar 1986 A
4575878 Dubroff Mar 1986 A
4576607 Kelman Mar 1986 A
4580882 Nuchman et al. Apr 1986 A
4581033 Callahan Apr 1986 A
4596578 Kelman Jun 1986 A
4601545 Kern Jul 1986 A
4608050 Wright et al. Aug 1986 A
4615701 Woods Oct 1986 A
4617023 Peyman Oct 1986 A
4618228 Baron et al. Oct 1986 A
4618229 Jacobstein et al. Oct 1986 A
4624669 Grendahl Nov 1986 A
4629460 Dyer Dec 1986 A
4636049 Blaker Jan 1987 A
4636210 Hoffer Jan 1987 A
4636211 Nielsen et al. Jan 1987 A
4637697 Freeman Jan 1987 A
4641934 Freeman Feb 1987 A
4642112 Freeman Feb 1987 A
4642114 Rosa Feb 1987 A
4646720 Peyman et al. Mar 1987 A
4648878 Kelman Mar 1987 A
4650292 Baker et al. Mar 1987 A
4655770 Gupta et al. Apr 1987 A
4661108 Grendahl et al. Apr 1987 A
4662882 Hoffer May 1987 A
4664666 Barrett May 1987 A
4666444 Pannu May 1987 A
4666445 Tillay May 1987 A
4676792 Praeger Jun 1987 A
4676793 Bechert, II Jun 1987 A
4687484 Kaplan Aug 1987 A
4693572 Tsuetaki et al. Sep 1987 A
4693716 MacKool Sep 1987 A
RE32525 Pannu Oct 1987 E
4702244 Mazzocco Oct 1987 A
4704016 De Carle Nov 1987 A
4710193 Volk Dec 1987 A
4710194 Kelman Dec 1987 A
4711638 Lindstrom Dec 1987 A
4720286 Bailey et al. Jan 1988 A
4725278 Shearing Feb 1988 A
4731078 Stoy et al. Mar 1988 A
4737322 Bruns et al. Apr 1988 A
4752123 Blaker Jun 1988 A
4759762 Grendahl Jul 1988 A
4769033 Nordan Sep 1988 A
4769035 Kelman Sep 1988 A
4780154 Mori et al. Oct 1988 A
4781718 Lindstrom Nov 1988 A
4787903 Grendahl Nov 1988 A
4790847 Woods Dec 1988 A
4808170 Thornton et al. Feb 1989 A
4813955 Achatz et al. Mar 1989 A
4816030 Robinson Mar 1989 A
4816031 Pfoff Mar 1989 A
4816032 Hetland Mar 1989 A
4822360 Deacon Apr 1989 A
4828558 Kelman May 1989 A
4830481 Futhey et al. May 1989 A
4834749 Orlosky May 1989 A
4840627 Blumenthal Jun 1989 A
4842601 Smith Jun 1989 A
4863463 Tjan Sep 1989 A
4865601 Caldwell et al. Sep 1989 A
4878910 Koziol et al. Nov 1989 A
4878911 Anis Nov 1989 A
4880427 Anis Nov 1989 A
4881804 Cohen Nov 1989 A
4883485 Patel Nov 1989 A
4888012 Horn et al. Dec 1989 A
4888014 Nguyen Dec 1989 A
4888015 Domino Dec 1989 A
4888016 Langerman Dec 1989 A
4890912 Visser Jan 1990 A
4890913 De Carle Jan 1990 A
4892543 Turley Jan 1990 A
4898416 Hubbard et al. Feb 1990 A
4898461 Portney Feb 1990 A
4902293 Feaster Feb 1990 A
4906246 Grendahl Mar 1990 A
4917681 Nordan Apr 1990 A
4919663 Grendahl Apr 1990 A
4921496 Grendahl May 1990 A
4923296 Erickson May 1990 A
4929289 Moriya et al. May 1990 A
4932966 Christie et al. Jun 1990 A
4932968 Caldwell et al. Jun 1990 A
4932971 Kelman Jun 1990 A
4938583 Miller Jul 1990 A
4946469 Sarfarazi Aug 1990 A
4955902 Kelman Sep 1990 A
4961746 Lim et al. Oct 1990 A
4963148 Sulc et al. Oct 1990 A
4976534 Miege et al. Dec 1990 A
4976732 Vorosmarthy Dec 1990 A
4990159 Kraff Feb 1991 A
4994058 Raven et al. Feb 1991 A
4994080 Shepard Feb 1991 A
4994082 Richards et al. Feb 1991 A
4994083 Sulc et al. Feb 1991 A
4995880 Galib Feb 1991 A
4997442 Barrett Mar 1991 A
5000559 Takahashi et al. Mar 1991 A
5002382 Seidner Mar 1991 A
5002571 O'Donnell et al. Mar 1991 A
5018504 Terbrugge et al. May 1991 A
5019098 Mercier May 1991 A
5019099 Nordan May 1991 A
5026396 Darin Jun 1991 A
5044742 Cohen Sep 1991 A
5047051 Cumming Sep 1991 A
5047052 Dubroff Sep 1991 A
5054905 Cohen Oct 1991 A
5056908 Cohen Oct 1991 A
5066301 Wiley Nov 1991 A
5071432 Baikoff Dec 1991 A
5074877 Nordan Dec 1991 A
5074942 Kearns et al. Dec 1991 A
5078740 Walman Jan 1992 A
5089024 Christie et al. Feb 1992 A
5096285 Silberman Mar 1992 A
5108429 Wiley Apr 1992 A
5112351 Christie et al. May 1992 A
5117306 Cohen May 1992 A
5123921 Werblin et al. Jun 1992 A
5129718 Futhey et al. Jul 1992 A
5133748 Feaster Jul 1992 A
5133749 Nordan Jul 1992 A
5141507 Parekh Aug 1992 A
5147397 Christ et al. Sep 1992 A
5152788 Isaacson et al. Oct 1992 A
5152789 Willis Oct 1992 A
5158572 Nielsen Oct 1992 A
5166711 Portney Nov 1992 A
5166712 Portney Nov 1992 A
5166719 Chinzei et al. Nov 1992 A
5171266 Wiley et al. Dec 1992 A
5171267 Ratner et al. Dec 1992 A
5171320 Nishi Dec 1992 A
5172723 Sturgis Dec 1992 A
5173723 Volk Dec 1992 A
5180390 Drews Jan 1993 A
5192317 Kalb Mar 1993 A
5192318 Schneider et al. Mar 1993 A
5196026 Barrett et al. Mar 1993 A
5197981 Southard Mar 1993 A
5201762 Hauber Apr 1993 A
5203788 Wiley Apr 1993 A
5213579 Yamada et al. May 1993 A
5217491 Vanderbilt Jun 1993 A
5225858 Portney Jul 1993 A
5229797 Futhey et al. Jul 1993 A
5236452 Nordan Aug 1993 A
5236970 Christ et al. Aug 1993 A
5258025 Fedorov et al. Nov 1993 A
5260727 Oksman et al. Nov 1993 A
5270744 Portney Dec 1993 A
5275623 Sarfarazi Jan 1994 A
5275624 Hara et al. Jan 1994 A
5296881 Freeman Mar 1994 A
5326347 Cumming Jul 1994 A
5336261 Barrett et al. Aug 1994 A
5344448 Schneider et al. Sep 1994 A
5349394 Freeman et al. Sep 1994 A
5354335 Lipshitz et al. Oct 1994 A
5358520 Patel Oct 1994 A
5366499 Py Nov 1994 A
5366502 Patel Nov 1994 A
5376694 Christ et al. Dec 1994 A
5391202 Lipshitz et al. Feb 1995 A
5405386 Rheinish et al. Apr 1995 A
5408281 Zhang Apr 1995 A
5423929 Doyle et al. Jun 1995 A
RE34988 Yang Jul 1995 E
RE34998 Langerman Jul 1995 E
5443506 Garabet Aug 1995 A
5476445 Baerveldt et al. Dec 1995 A
5476514 Cumming Dec 1995 A
5480428 Fedorov et al. Jan 1996 A
5489301 Barber Feb 1996 A
5489302 Skottun Feb 1996 A
5494946 Christ et al. Feb 1996 A
5496366 Cumming Mar 1996 A
5503165 Schachar Apr 1996 A
5521656 Portney May 1996 A
5522891 Klaas Jun 1996 A
5523029 Korgel et al. Jun 1996 A
5549760 Becker Aug 1996 A
5562731 Cumming Oct 1996 A
5574518 Mercure Nov 1996 A
5578081 McDonald Nov 1996 A
5593436 Langerman Jan 1997 A
5607472 Thompson Mar 1997 A
5608471 Miller Mar 1997 A
5609630 Crozafon Mar 1997 A
5628795 Langerman May 1997 A
5628796 Suzuki May 1997 A
5628797 Richer May 1997 A
5650837 Roffman et al. Jul 1997 A
5652014 Galin et al. Jul 1997 A
5652638 Roffman et al. Jul 1997 A
5653754 Nakajima et al. Aug 1997 A
5657108 Portney Aug 1997 A
5661195 Christ et al. Aug 1997 A
5674282 Cumming Oct 1997 A
5682223 Menezes et al. Oct 1997 A
5684560 Roffman et al. Nov 1997 A
5695509 El Hage Dec 1997 A
5702440 Portney Dec 1997 A
5713958 Weiser Feb 1998 A
5716403 Tran et al. Feb 1998 A
5725576 Fedorov et al. Mar 1998 A
5728155 Anello et al. Mar 1998 A
5760871 Kosoburd et al. Jun 1998 A
5766244 Binder Jun 1998 A
5769890 McDonald Jun 1998 A
5770125 O'Connor et al. Jun 1998 A
5776191 Mazzocco Jul 1998 A
5776192 McDonald Jul 1998 A
5800533 Eggleston et al. Sep 1998 A
5814103 Lipshitz et al. Sep 1998 A
5824074 Koch Oct 1998 A
5843188 McDonald Dec 1998 A
5847802 Menezes et al. Dec 1998 A
5864378 Portney Jan 1999 A
5869549 Christ et al. Feb 1999 A
RE36150 Gupta Mar 1999 E
5876441 Shibuya Mar 1999 A
5876442 Lipshitz et al. Mar 1999 A
5885279 Bretton Mar 1999 A
5895422 Hauber Apr 1999 A
5898473 Seidner et al. Apr 1999 A
5928283 Gross et al. Jul 1999 A
5929969 Roffman Jul 1999 A
5968094 Werblin et al. Oct 1999 A
5984962 Anello et al. Nov 1999 A
6013101 Israel Jan 2000 A
6015435 Valunin et al. Jan 2000 A
6050970 Baerveldt Apr 2000 A
6051024 Cumming Apr 2000 A
6063118 Nagamoto May 2000 A
6083261 Callahan et al. Jul 2000 A
6090141 Lindstrom Jul 2000 A
6096078 McDonald Aug 2000 A
6102946 Nigam Aug 2000 A
6106553 Feingold Aug 2000 A
6106554 Bretton Aug 2000 A
6110202 Barraquer et al. Aug 2000 A
6113633 Portney Sep 2000 A
6117171 Skottun Sep 2000 A
6120538 Rizzo, III et al. Sep 2000 A
6136026 Israel Oct 2000 A
6139576 Doyle et al. Oct 2000 A
6152958 Nordan Nov 2000 A
6162249 Deacon et al. Dec 2000 A
6176878 Gwon et al. Jan 2001 B1
6186148 Okada Feb 2001 B1
6197058 Portney Mar 2001 B1
6197059 Cumming Mar 2001 B1
6200342 Tassignon Mar 2001 B1
6210005 Portney Apr 2001 B1
6217612 Woods Apr 2001 B1
6221105 Portney Apr 2001 B1
6224628 Callahan et al. May 2001 B1
6228115 Hoffmann et al. May 2001 B1
6231603 Lang et al. May 2001 B1
6238433 Portney May 2001 B1
6241777 Kellan Jun 2001 B1
6251312 Phan et al. Jun 2001 B1
6258123 Young et al. Jul 2001 B1
6261321 Kellan Jul 2001 B1
6277146 Peyman et al. Aug 2001 B1
6277147 Christ et al. Aug 2001 B1
6280471 Peyman et al. Aug 2001 B1
6299641 Woods Oct 2001 B1
6302911 Hanna Oct 2001 B1
6322213 Altieri et al. Nov 2001 B1
6322589 Cumming Nov 2001 B1
6327772 Zadno-Azizi et al. Dec 2001 B1
6342073 Cumming et al. Jan 2002 B1
6358280 Herrick Mar 2002 B1
6364906 Baikoff et al. Apr 2002 B1
6387126 Cumming May 2002 B1
6399734 Hodd et al. Jun 2002 B1
6406494 Laguette et al. Jun 2002 B1
6423094 Sarfarazi Jul 2002 B1
6425917 Blake Jul 2002 B1
6443985 Woods Sep 2002 B1
6450642 Jethmalani et al. Sep 2002 B1
6454802 Bretton et al. Sep 2002 B1
6457826 Lett Oct 2002 B1
6464725 Skotton et al. Oct 2002 B2
6468306 Paul et al. Oct 2002 B1
6474814 Griffin Nov 2002 B1
6475240 Paul Nov 2002 B1
6478821 Laguette et al. Nov 2002 B1
6485516 Boehm Nov 2002 B2
6488708 Sarfarazi Dec 2002 B2
6494911 Cumming Dec 2002 B2
6503276 Lang et al. Jan 2003 B2
6517577 Callahan et al. Feb 2003 B1
6524340 Israel Feb 2003 B2
6533813 Lin et al. Mar 2003 B1
6533814 Jansen Mar 2003 B1
6536899 Fiala Mar 2003 B1
6547822 Lang Apr 2003 B1
6551354 Ghazizadeh et al. Apr 2003 B1
6554859 Lang et al. Apr 2003 B1
6558420 Green May 2003 B2
6559317 Hupperts et al. May 2003 B2
6589550 Hodd et al. Jul 2003 B1
6592621 Domino Jul 2003 B1
6598606 Terwee et al. Jul 2003 B2
6599317 Weinschenk, III Jul 2003 B1
6609793 Norrby et al. Aug 2003 B2
6616691 Tran Sep 2003 B1
6616692 Glick et al. Sep 2003 B1
6616693 Nguyen Sep 2003 B1
6638305 Laguette Oct 2003 B2
6638306 Cumming Oct 2003 B2
6645246 Weinschenk, III Nov 2003 B1
6660035 Lang et al. Dec 2003 B1
6685315 De Feb 2004 B1
6695881 Peng et al. Feb 2004 B2
6721104 Schachar et al. Apr 2004 B2
6730123 Klopotek May 2004 B1
6749633 Lorenzo et al. Jun 2004 B1
6749634 Hanna Jun 2004 B2
6761737 Zadno-Azizi et al. Jul 2004 B2
6764511 Zadno-Azizi et al. Jul 2004 B2
6767363 Bandhauer et al. Jul 2004 B1
6786934 Zadno-Azizi et al. Sep 2004 B2
6818017 Shu Nov 2004 B1
6818158 Pham et al. Nov 2004 B2
6827738 Willis et al. Dec 2004 B2
6836374 Esch et al. Dec 2004 B2
6846326 Zadno-Azizi et al. Jan 2005 B2
6855164 Glazier Feb 2005 B2
6858040 Nguyen et al. Feb 2005 B2
6884261 Zadno-Azizi et al. Apr 2005 B2
6884262 Brady et al. Apr 2005 B2
6884263 Valyunin et al. Apr 2005 B2
6899732 Zadno-Azizi et al. May 2005 B2
6926736 Peng et al. Aug 2005 B2
6930838 Schachar Aug 2005 B2
6932839 Kamerling et al. Aug 2005 B1
6942695 Chapoy et al. Sep 2005 B1
6966649 Shadduck Nov 2005 B2
7018409 Glick et al. Mar 2006 B2
7021760 Newman Apr 2006 B2
7025783 Brady et al. Apr 2006 B2
7041134 Nguyen et al. May 2006 B2
7073906 Portney Jul 2006 B1
7087080 Zadno-Azizi et al. Aug 2006 B2
7097660 Portney Aug 2006 B2
7118596 Zadno-Azizi et al. Oct 2006 B2
7118597 Miller et al. Oct 2006 B2
7122053 Esch Oct 2006 B2
7125422 Woods et al. Oct 2006 B2
7150759 Paul et al. Dec 2006 B2
7179292 Worst et al. Feb 2007 B2
7182780 Terwee et al. Feb 2007 B2
7186266 Peyman Mar 2007 B2
7188949 Bandhauer et al. Mar 2007 B2
7198640 Nguyen Apr 2007 B2
7217288 Esch et al. May 2007 B2
7220279 Nun May 2007 B2
7223288 Zhang et al. May 2007 B2
7226478 Ting et al. Jun 2007 B2
7238201 Portney et al. Jul 2007 B2
7247168 Esch et al. Jul 2007 B2
7261737 Esch et al. Aug 2007 B2
7344617 Dubrow Mar 2008 B2
7452362 Zadno-Azizi et al. Nov 2008 B2
7452378 Zadno-Azizi et al. Nov 2008 B2
7503938 Phillips Mar 2009 B2
7615056 Ayton et al. Nov 2009 B2
7645300 Tsai Jan 2010 B2
7662180 Paul et al. Feb 2010 B2
7744603 Zadno-Azizi et al. Jun 2010 B2
7744646 Zadno-Azizi et al. Jun 2010 B2
7815678 Ben Nun Oct 2010 B2
7922326 Bandhauer et al. Apr 2011 B2
8034108 Bumbalough Oct 2011 B2
8052752 Woods et al. Nov 2011 B2
8343217 Bumbalough Jan 2013 B2
9198752 Woods Dec 2015 B2
9277987 Smiley et al. Mar 2016 B2
9364318 Beer Jun 2016 B2
9433498 Masket et al. Sep 2016 B2
20010001836 Cumming May 2001 A1
20010004708 Nagai Jun 2001 A1
20010018612 Carson et al. Aug 2001 A1
20010039451 Barnett Nov 2001 A1
20010044657 Kellan Nov 2001 A1
20020004682 Zhou et al. Jan 2002 A1
20020011167 Figov et al. Jan 2002 A1
20020072796 Hoffmann et al. Jun 2002 A1
20020103536 Landreville et al. Aug 2002 A1
20020120329 Lang et al. Aug 2002 A1
20020151973 Arita et al. Oct 2002 A1
20020161434 Laguette et al. Oct 2002 A1
20020193876 Lang et al. Dec 2002 A1
20030002404 Maekawa Jan 2003 A1
20030004569 Haefliger Jan 2003 A1
20030013073 Duncan et al. Jan 2003 A1
20030020425 Ricotti Jan 2003 A1
20030033013 Callahan et al. Feb 2003 A1
20030045933 Brady Mar 2003 A1
20030050696 Cumming Mar 2003 A1
20030050697 Paul Mar 2003 A1
20030060878 Shadduck Mar 2003 A1
20030060881 Glick et al. Mar 2003 A1
20030078657 Zadno-Azizi et al. Apr 2003 A1
20030078658 Zadno-Azizi Apr 2003 A1
20030083744 Khoury May 2003 A1
20030086057 Cleveland May 2003 A1
20030105522 Glazier Jun 2003 A1
20030109925 Ghazizadeh et al. Jun 2003 A1
20030114927 Nagamoto Jun 2003 A1
20030130732 Sarfarazi Jul 2003 A1
20030149480 Shadduck Aug 2003 A1
20030158599 Brady et al. Aug 2003 A1
20030187504 Weinschenk et al. Oct 2003 A1
20030187505 Liao Oct 2003 A1
20040002757 Lai et al. Jan 2004 A1
20040010496 Behrendt et al. Jan 2004 A1
20040014049 Cowsert et al. Jan 2004 A1
20040015236 Sarfarazi Jan 2004 A1
20040034415 Terwee et al. Feb 2004 A1
20040039446 McNicholas Feb 2004 A1
20040082993 Woods Apr 2004 A1
20040082995 Woods Apr 2004 A1
20040106992 Lang et al. Jun 2004 A1
20040111153 Woods et al. Jun 2004 A1
20040117013 Schachar Jun 2004 A1
20040148023 Shu Jul 2004 A1
20040156014 Piers et al. Aug 2004 A1
20040158322 Shen Aug 2004 A1
20040167621 Peyman Aug 2004 A1
20040181279 Nun Sep 2004 A1
20040215340 Messner et al. Oct 2004 A1
20040230299 Simpson et al. Nov 2004 A1
20040230300 Bandhauer et al. Nov 2004 A1
20040236423 Zhang et al. Nov 2004 A1
20040249456 Cumming Dec 2004 A1
20050018504 Marinelli et al. Jan 2005 A1
20050021139 Shadduck Jan 2005 A1
20050021140 Liao Jan 2005 A1
20050027354 Brady et al. Feb 2005 A1
20050038510 Portney et al. Feb 2005 A1
20050060032 Magnante et al. Mar 2005 A1
20050085906 Hanna Apr 2005 A1
20050085907 Hanna Apr 2005 A1
20050099597 Sandstedt et al. May 2005 A1
20050125056 Deacon et al. Jun 2005 A1
20050125057 Cumming Jun 2005 A1
20050125058 Cumming et al. Jun 2005 A1
20050125059 Pinchuk et al. Jun 2005 A1
20050131535 Woods Jun 2005 A1
20050137703 Chen Jun 2005 A1
20050234547 Nguyen et al. Oct 2005 A1
20050246019 Blake et al. Nov 2005 A1
20050267575 Nguyen et al. Dec 2005 A1
20050288785 Portney et al. Dec 2005 A1
20060030938 Altmann Feb 2006 A1
20060064162 Klima Mar 2006 A1
20060095127 Feingold et al. May 2006 A1
20060098162 Bandhauer et al. May 2006 A1
20060100703 Evans et al. May 2006 A1
20060111776 Glick et al. May 2006 A1
20060116764 Simpson Jun 2006 A1
20060116765 Blake et al. Jun 2006 A1
20060149369 Cumming et al. Jul 2006 A1
20060178741 Zadno-Azizi et al. Aug 2006 A1
20060184244 Nguyen et al. Aug 2006 A1
20060209430 Spivey Sep 2006 A1
20060209431 Spivey Sep 2006 A1
20060235513 Price, Jr. Oct 2006 A1
20060238702 Glick et al. Oct 2006 A1
20060259139 Zadno-Azizi et al. Nov 2006 A1
20060271187 Zadno-Azizi et al. Nov 2006 A1
20070032866 Portney Feb 2007 A1
20070050025 Nguyen et al. Mar 2007 A1
20070067872 Mittendorf et al. Mar 2007 A1
20070078515 Brady Apr 2007 A1
20070088433 Esch et al. Apr 2007 A1
20070100444 Brady et al. May 2007 A1
20070100445 Shadduck May 2007 A1
20070106377 Smith et al. May 2007 A1
20070106379 Messner May 2007 A1
20070106381 Blake May 2007 A1
20070108643 Zadno-Azizi et al. May 2007 A1
20070123591 Kuppuswamy et al. May 2007 A1
20070129798 Chawdhary Jun 2007 A1
20070135915 Klima Jun 2007 A1
20070156236 Stenger Jul 2007 A1
20070213817 Esch et al. Sep 2007 A1
20070258143 Portney Nov 2007 A1
20070260309 Richardson Nov 2007 A1
20070282247 Desai et al. Dec 2007 A1
20070299487 Shadduck Dec 2007 A1
20080004699 Ben Nun Jan 2008 A1
20080125790 Tsai et al. May 2008 A1
20080140192 Humayun et al. Jun 2008 A1
20080161913 Brady Jul 2008 A1
20080161914 Brady Jul 2008 A1
20080300680 Joshua Dec 2008 A1
20090012609 Geraghty et al. Jan 2009 A1
20090234448 Weeber et al. Sep 2009 A1
20090248154 Dell Oct 2009 A1
20100057203 Glick et al. Mar 2010 A1
20100228346 Esch Sep 2010 A1
20110035001 Woods Feb 2011 A1
20110251686 Masket Oct 2011 A1
20120046744 Woods et al. Feb 2012 A1
20150173890 Portney et al. Jun 2015 A1
20160220351 Dorronsoro et al. Aug 2016 A1
Foreign Referenced Citations (166)
Number Date Country
3225789 Oct 1989 AU
2752743 Sep 2010 CA
681687 May 1993 CH
2702117 Jul 1978 DE
3246306 Jun 1984 DE
4038088 Jun 1992 DE
19501444 Jul 1996 DE
20109306 Aug 2001 DE
10059482 Jun 2002 DE
10125829 Nov 2002 DE
64812 Nov 1982 EP
162573 Nov 1985 EP
212616 Mar 1987 EP
246216 Nov 1987 EP
328117 Aug 1989 EP
329981 Aug 1989 EP
331457 Sep 1989 EP
336877 Oct 1989 EP
0337390 Oct 1989 EP
342895 Nov 1989 EP
351471 Jan 1990 EP
356050 Feb 1990 EP
337390 May 1990 EP
402825 Dec 1990 EP
420549 Apr 1991 EP
470811 Feb 1992 EP
480748 Apr 1992 EP
488835 Jun 1992 EP
492126 Jul 1992 EP
507292 Oct 1992 EP
566170 Oct 1993 EP
601845 Jun 1994 EP
605841 Jul 1994 EP
691109 Jan 1996 EP
766540 Apr 1997 EP
779063 Jun 1997 EP
780718 Jun 1997 EP
897702 Feb 1999 EP
766540 Aug 1999 EP
1108402 Jun 2001 EP
1321112 Jun 2003 EP
1647241 Apr 2006 EP
1424049 Jun 2009 EP
2523632 Nov 2012 EP
488835 Nov 1918 FR
2666504 Mar 1992 FR
2666735 Mar 1992 FR
2681524 Mar 1993 FR
2745711 Sep 1997 FR
2778093 Nov 1999 FR
2784575 Apr 2000 FR
939016 Oct 1963 GB
2058391 Apr 1981 GB
2124500 Feb 1984 GB
2129155 May 1984 GB
2146791 Apr 1985 GB
2192291 Jan 1988 GB
2215076 Sep 1989 GB
0211134 Jan 1990 JP
2126847 May 1990 JP
H06508279 Sep 1994 JP
7005399 Jan 1995 JP
7222760 Aug 1995 JP
H09501856 Feb 1997 JP
H09502542 Mar 1997 JP
10000211 Jan 1998 JP
H11500030 Jan 1999 JP
11047168 Feb 1999 JP
2000508588 Jul 2000 JP
2003513704 Apr 2003 JP
2003190193 Jul 2003 JP
2003522592 Jul 2003 JP
2003525694 Sep 2003 JP
2014038 Jun 1994 RU
2014039 Jun 1994 RU
8404449 Nov 1984 WO
8603961 Jul 1986 WO
8700299 Jan 1987 WO
8707496 Dec 1987 WO
8803961 Jun 1988 WO
8902251 Mar 1989 WO
8911672 Nov 1989 WO
8911872 Dec 1989 WO
9000889 Feb 1990 WO
9109336 Jun 1991 WO
9302639 Feb 1993 WO
9416648 Aug 1994 WO
9503783 Feb 1995 WO
9610968 Apr 1996 WO
9615734 May 1996 WO
9625126 Aug 1996 WO
9635398 Nov 1996 WO
9712272 Apr 1997 WO
9727825 Aug 1997 WO
9743984 Nov 1997 WO
9805273 Feb 1998 WO
9821621 May 1998 WO
9849594 Nov 1998 WO
9856315 Dec 1998 WO
9903427 Jan 1999 WO
9907309 Feb 1999 WO
9920206 Apr 1999 WO
9921491 May 1999 WO
9929266 Jun 1999 WO
0021467 Apr 2000 WO
0027315 May 2000 WO
0035379 Jun 2000 WO
0046629 Aug 2000 WO
0059407 Oct 2000 WO
0061036 Oct 2000 WO
0066037 Nov 2000 WO
0066039 Nov 2000 WO
0066040 Nov 2000 WO
0066041 Nov 2000 WO
0108605 Feb 2001 WO
0119289 Mar 2001 WO
WO0119288 Mar 2001 WO
0128144 Apr 2001 WO
0134061 May 2001 WO
0134066 May 2001 WO
0134067 May 2001 WO
0156510 Aug 2001 WO
0160286 Aug 2001 WO
0164135 Sep 2001 WO
0164136 Sep 2001 WO
0166042 Sep 2001 WO
0182839 Nov 2001 WO
0189816 Nov 2001 WO
0209620 Feb 2002 WO
0212523 Feb 2002 WO
WO0219949 Mar 2002 WO
02058391 Jul 2002 WO
02071983 Sep 2002 WO
02098328 Dec 2002 WO
03009051 Jan 2003 WO
03015657 Feb 2003 WO
03015669 Feb 2003 WO
03034949 May 2003 WO
03049646 Jun 2003 WO
03057081 Jul 2003 WO
03059196 Jul 2003 WO
03059208 Jul 2003 WO
03075810 Sep 2003 WO
03084441 Oct 2003 WO
03092552 Nov 2003 WO
04000171 Dec 2003 WO
04020549 Mar 2004 WO
04037127 May 2004 WO
04073559 Sep 2004 WO
05011531 Feb 2005 WO
05018504 Mar 2005 WO
2005019871 Mar 2005 WO
03082147 Aug 2005 WO
05084587 Sep 2005 WO
WO2005115278 Dec 2005 WO
06025726 Mar 2006 WO
06118452 Nov 2006 WO
2007040964 Apr 2007 WO
2007067872 Jun 2007 WO
WO2008079671 Jul 2008 WO
WO20080777925 Jul 2008 WO
WO 2008108524 Sep 2008 WO
WO2009021327 Feb 2009 WO
2010093823 Aug 2010 WO
2011017322 Feb 2011 WO
8808414 Jul 1989 ZA
Non-Patent Literature Citations (57)
Entry
English translation of WO 93/05733 A1.
U.S. Appl. No. 09/656,661, filed Sep. 7, 2000.
Thornton S., “Accommodation in Pseudophakia,” 1991, pp. 159-162.
U.S. Appl. No. 09/721,072, filed Nov. 22, 2000.
International Search Report for Application No. PCT/US2010/039860, dated Dec. 14, 2010, 4 pages.
Partial International Search Report for Application No. PCT/US2010/039858, dated Oct. 5, 2010, 2 pages.
International Search Report for Application No. PCT/US2010/039858, dated Jan. 20, 2011, 3 pages.
World Optics Inc., Ophthalmology Times, Mar. 15, 1995.
Adler-Grinberg D., “Questioning Our Classical Understanding of Accomodation and Presbyopia,” American Journal of Optometry & Physiological Optics, 1986, vol. 63 (7), pp. 571-580.
Altan-Yaycioglu R., et al., “Pseudo-accomodation with Intraocular Lenses Implanted in the Bag,” Journal of Refractive Surgery, 2002, vol. 18 (3), pp. 271-275.
Amo Specs Model AC-21B, AMO Classic Series, 1992, 1 page.
Chauvin-Opsia, Azurite ACL (0459).
Chiron, Clemente Optfit Model SP525, Brochure Translation, Jul. 12, 1998.
Chrion Vision, Nuvita MA20, 1997, 1 page.
Cohen A.L., “Diffractive Bifocal Lens Design,” Optometry and Vision Science, 1993, vol. 70 (6), pp. 461-468.
Cohen A.L., “Practical Design of a Bifocal Hologram Contact Lens or Intraocular Lens,” Applied Optics, 1992, vol. 31 (19), pp. 3750-3754.
European Search Report for Application No. EP09009432, dated Aug. 27, 2009, 2 pages.
European Search Report for Application No. EP09178394, dated Jan. 25, 2010, 2 pages.
European Search Report for Application No. EP10181797, dated Jan. 28, 2011, 2 pages.
European Search Report for Application No. EP11152227, dated Oct. 21, 2011, 7 pages.
Extended European Search Report for Application No. EP11152508, dated Oct. 25, 2011, 7 pages.
Fechner P.U., et al., “Iris-Claw Lens in Phakic Eyes to Correct Hyperopia: Preliminary Study,” Journal of Cataract and Refractive Surgery, 1998, vol. 24 (1), pp. 48-56.
Foldable Intraocular Lens Implants and Small Incision Cataract Surgery, Ohio Valley Eye Physicians, 2004.
Hanita Lenses, Source Ocular Surgery News International, 1 page.
Hara T., et al., “Accommodative Intraocular Lens with Spring Action Part 1 Design and Placement in an Excised Animal Eye,” Ophthalmic Surgery, 1990, vol. 21 (2), pp. 128-133.
Hecht E., et al., “Optics”, 4th Edition, Addison-Wesley Publishing Company, 1979, pp. 188-190.
Holladay J.T., et al., “A Three-Part System for Refining Intraocular Lens Power Calculations,” Journal of Cataract and Refractive Surgery, 1988, vol. 14 (1), pp. 17-24.
Holladay J.T., et al., “Analysis of Edge Glare Phenomena in Intraocular Lens Edge Designs,” Journal of Cataract and Refractive Surgery, 1999, vol. 25 (6), pp. 748-752.
Iolab Corp., Source Ophthalmology Times, Mar. 15, 1995, 1 page.
Jacobi F.K., et al., “Bilateral Implantation of Asymmetrical Diffractive Multifocal Intraocular Lenses,” Archives of Ophthalmology, 1999, vol. 117 (1), pp. 17-23.
Klien S.A., “Understanding the Diffractive Bifocal Contact Lens,” Optometry and Vision Science, 1993, vol. 70 (6), pp. 439-460.
Kuchle M., et al., “Implantation of a New Accommodative Posterior Chamber Intraocular Lens,” Journal of Refractive Surgery, 2002, vol. 18 (3), pp. 208-216.
Lane S.S., et al., “Polysulfone Intracorneal Lenses,” International Ophthalmology Clinics, 1991, vol. 31 (1), pp. 37-46.
Mandell R.B., “Contact Lens Practice”, 4th Edition, Charles C. Thomas Publishers, 1988, 11 pages.
Mandell R.B., et al., “Mathematical Model of the Corneal Contour,” 1965, School of Optometry, University of Califomia, Berkeley, pp. 183-197.
Marron J.C., et al., “Higher-order Kinoforms,” Computer and Optically Formed Holographic Optics, 1990, vol. 1211, pp. 62-66.
McCarey B.E., et al., “Modeling Glucose Distribution In the Cornea,” Current Eye Research, 1990, vol. 9 (11), pp. 1025-1039.
Mediphacos Ltda, Ocular Surgery News International.
Menezo J.L., et al., “Endothelial Study of Iris-Claw Phakic Lens: Four Year Follow-Up,” Journal of Cataract Refractive Surgery, 1998, vol. 24 (8), pp. 1039-1049.
Office Action dated Jul. 19, 2011 for Japanese Application No. 2006526344, filed Sep. 10, 2004.
Opthalmed Inc., OMAC-260.
Pending Claims dated Jul. 29, 2009 for U.S. Appl. No. 11/618,411, filed Dec. 29, 2006.
Prosecution History for U.S. Appl. No. 10/958,871 (US20050234547), filed Oct. 5, 2004.
Prosecution History for U.S. Appl. No. 11/057,705 (US20060184244), filed Feb. 14, 2005.
Prosecution History for U.S. Appl. No. 11/195,422 (US20050267575), filed Aug. 1, 2005.
Prosecution History for U.S. Appl. No. 11/426,888, filed Jun. 27, 2006.
Ramocki J.M., et al., “Foldable Posterior Chamber Intraocular Lens Implantation in the Absence of Capsular and Zonular Support,” American Journal of Ophthalmology, 1999, vol. 127 (2), pp. 213-216.
Simonov A.N., et al., “Cubic Optical Elements for an Accommodative Intraocular Lens,” Optics Express, 2006, vol. 14 (17), pp. 7757-7775.
Storz Opthalmics Inc., Model L122UV ACL.
Supplementary European Search Report for Application No. EP00980998, dated Sep. 21, 2007, 2 pages.
Supplementary European Search Report for Application No. EP02748257, dated Jun. 13, 2008, 2 pages.
Supplementary European Search Report for Application No. EP03777934, dated Jan. 26, 2010, 3 pages.
Supplementary European Search Report for Application No. EP03809651, dated Aug. 11, 2006, 2 pages.
Supplementary European Search Report for Application No. EP04814069, dated Jul. 12, 2007, 1 page.
Taylor B.N., ed., The International System of Units (SI), 1991, NIST Special Publication 330, 4 pages.
Tetz M., et al., “Evaluating and Defining the Sharpness of Intraocular Lenses: Part 1: Influence of Optic Design on the Growth of the Lens Epithelial Cells in Vitro,” Journal of Cataract and Refractive Surgery, 2005, vol. 31 (11), pp. 2172-2179.
Universe IOL Center, Ocular Surgery News International.
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20110054600 A1 Mar 2011 US
Provisional Applications (1)
Number Date Country
61220887 Jun 2009 US