The present invention relates to intraocular lens injector systems, and more particularly relates to an intraocular lens (“IOL”) injector system having a rigid lens engagement surface for advancing the IOL within the injector body during a first stage of plunger advancement, and a soft lens engagement surface for advancing the IOL during a second stage of plunger advancement which concludes by expressing the IOL from the injector and into an eye.
IOLs are well known and are used for implanting into an eye to replace the eye's extracted natural lens in a common surgical procedure known as cataract surgery. There are many different types of IOLs available and the surgeon chooses the IOL according to one or more factors including, for example, the physiology and refractive needs of the patient's eye. IOLs are configured with an optic and one or more haptics extending from the optic which act as anchoring elements to properly position the IOL within the eye. The IOL is implanted in the eye with the optic aligned along the eye's visual axis. The IOL may be implanted in a variety of locations within the eye, but typically is positioned within the capsular bag from which the natural lens has been extracted.
An IOL is implanted in an eye with the aid of an implantation tool such as an IOL injector having a main body portion with a lumen and a plunger telescoping within the lumen. The IOL is placed inside the lumen and the injector tip is inserted into an incision made in the eye. The plunger is then advanced with the lens engagement surface of the plunger tip engaging and pushing the IOL out of the injector tip and into the eye. The injector tip tapers inwardly toward the tip opening causing the IOL to compress as it is pushed further therethrough by the injector tip. Since IOLs are very delicate, there is the chance the plunger tip may damage the IOL as it is pushed, compressed and ultimately ejected from the injector tip by the plunger. The highest (peak) delivery forces against the IOL occur at the injector tip opening, the diameter of which is typically less than about 3 mm, for example.
Plunger tips are designed with a lens engagement surface for engaging and pushing the IOL through the lumen and out the injector tip opening. Both rigid and soft lens engagement surfaces have been proposed in the prior art with each having their own advantages and disadvantages. For example, a plunger tip having a lens engagement surface made of a rigid material has the benefit of providing a secure and controlled engagement profile with the IOL, particularly as the IOL is advanced within the injector lumen. However, a rigid lens engagement surface also has the disadvantage of possibly damaging the IOL due to the unyielding characteristic of the rigid material, particularly at the point of peak delivery force at the tip opening as described above. On the other hand, a plunger tip having a lens engagement surface made of a soft material has the benefit of yielding to the lens during the period of peak delivery force which reduces the risk of damaging the lens, but has the disadvantage of not providing as secure and controlled engagement profile with the IOL as does a rigid plunger tip lens engagement surface.
There therefore remains a need for an improved IOL injector system and method for injecting an IOL into an eye which incorporates the benefits of both a rigid and soft plunger tip lens engagement surface while at the same time reduces or eliminates the disadvantages associated therewith.
The present invention addresses, in one or more embodiments thereof, the above-described need by providing an IOL injector system including a plunger assembly slidably disposed within the lumen of an injector body extending to an injector tip having an opening. The plunger assembly includes a first component comprising a rigid body having a lens engagement surface at its distal end and an interference feature. A compressible sleeve is slidably positioned on the first component. The plunger assembly further includes a second component having proximal and distal ends and a central opening extending longitudinally therebetween. The first component is slidably disposed within the central opening of the second component. The first component, the second component, and the sleeve are configured to slide within the lumen in a first state in which the engagement surface is disposed distally of the compressible sleeve and the IOL is carried in the lumen by the rigid lens engagement surface, thus having the benefit of a secure and controlled lens engagement profile as described above.
The second component of the plunger assembly is configured such that, after the interference feature of the first component interferes with a portion of the injector body, the second component moves relative to the first component causing at least a portion of the sleeve to slide on the first component to become positioned distally of the lens engagement surface. Once the IOL approaches the injector tip, at least a portion of the compressible sleeve advances past the lens engagement surface of the first component and takes over pushing the IOL through the tip and out the tip opening. As mentioned above, the forces imparted on the IOL peak as the IOL is pushed through the tip opening. With the soft, compressible sleeve pushing the IOL out of the tip opening, the benefit of reducing the risk of damage to the IOL during peak delivery force is realized.
The present invention further addresses, in one or more embodiments thereof, the above-described need by providing a method of injecting an intraocular lens into an eye, comprising the steps of providing a plunger assembly and an injector body comprising a lumen extending to an injector tip, the plunger assembly disposed in the lumen, then sliding the plunger assembly within the lumen in a first state during which a first component comprising a rigid lens engagement surface is in contact with the intraocular lens, then interfering the first component with the injector body, and then sliding a second component relative to the first component to move the sleeve relative to the first component to achieve a second state in which the compressible sleeve is in contact with the IOL and the IOL lens exits the injector tip.
An IOL is implanted in an eye by a surgeon with the aid of an injector tool such as IOL injector system 10. Injector system 10 includes an injector body 12 and a plunger assembly 14 which is slidably disposed within a lumen 16 of injector body 12. Lumen 16 of injector body 12 extends to an injector tip 18 terminating in an opening 18′ wherethrough an IOL 20 may pass and thereby expressed from injector system 10 and into an eye (not shown).
Plunger assembly 14 includes a first component 22 comprising a shaft having a lens engagement surface 24 at distal end 22a thereof. First component 22 including lens engagement surface 24 is made from any suitable rigid material such as a metal or plastic, for example. An interference feature 26 is provided at proximal end 22b thereof for the purpose to be explained below.
Plunger assembly 14 further includes a second component 28 having a central opening 30 extending longitudinally between distal and proximal ends 28a, 28b, respectively, and a thumb press 32 located at proximal end 28b. First component 22 is slidably disposed within central opening 30 of second component 28 and first component 22 are together slidably disposed within lumen 16 generally along longitudinal axis X-X seen in
As seen in
A variety of configurations may provide the interface between interference feature 26 and second component 28. In
Once interference feature 26, 26′ is slid into abutting contact with injector body 12, the user continues pressing on thumb press 32 causing second component 28 to slide in the distal direction relative to the first component 22 which itself is prevented from further advancement due to interference feature 26, 26′ abutting injector body 12. During the second stage of plunger assembly advancement occurring between
It will be appreciated that during the first stage of plunger assembly advancement occurring between
There is thus provided an IOL injector system and method which obtains the benefit of a rigid lens engagement surface during a first stage of plunger assembly advancement, and the benefit of a soft lens engagement surface during the second or final stage of plunger assembly advancement during peak IOL delivery force.