Contact lens emitting WS12
Hydrogel contact lenses that release WS12 address discomfort and dryness by stabilizing and releasing the agonist during wear, improving comfort and reducing symptoms in symptomatic wearers.
Patent Information
- Application Number
- JP2025167315
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-04-29
- Filing Date
- 2025-10-03
- Publication Date
- 2026-02-03
AI Technical Summary
Existing contact lenses cause discomfort and dryness for approximately 50% of wearers, with 25% permanently discontinuing use due to dry eye symptoms, despite advancements in materials.
Hydrogel contact lenses that release WS12, a TRPM8 receptor agonist, during wear to improve comfort and reduce dryness by incorporating WS12 into the lens material, which remains stable during sterilization and storage, and is released over several hours.
The WS12-releasing lenses increase comfortable wear time and reduce dryness in symptomatic wearers, enhancing tear meniscus height and lowering CLDEQ-8 scores, with sensory adaptation minimizing initial discomfort.
Smart Images

Figure 2026016424000001_ABST
Abstract
Description
[Technical Field]
[0001] The field of the invention relates to contact lenses, and more particularly to contact lenses that are more comfortable for symptomatic contact lens wearers. [Background technology]
[0002] An estimated 50% of all contact lens wearers experience discomfort while wearing lenses, and approximately 25% of contact lens wearers permanently discontinue lens wear. Dry eye symptoms are a major reason for contact lens dissatisfaction. Despite advances in contact lens materials, there is a need for improved contact lenses that are comfortable for contact lens wearers who experience dry eye symptoms while wearing currently available contact lenses.
[0003] N-(4-Methoxyphenyl)-5-methyl-2-(1-methylethyl)cyclohexanecarboxamide (CAS No. 68489-09-8), known as WS12, is a synthetic menthol derivative used as a cooling agent and flavoring agent in chewing gum and candy. It selectively activates the transient receptor potential melastatin-8 (TRPM8) ion channel. Therapeutic compositions containing TRPM8 receptor agonists for the treatment of dry eye have been proposed (Belmonte et al., U.S. Pat. No. 10,028,920). Summary of the Invention
[0004] A feature of the present invention is to provide a hydrogel contact lens that is capable of releasing WS12 during lens wear.
[0005] A further feature of the present invention is to provide contact lenses that can be worn comfortably by symptomatic contact lens wearers.
[0006] A further feature of the present invention is to increase the duration of comfortable lens wear time and / or reduce contact lens dryness in symptomatic contact lens wearers.
[0007] Additional features and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by the practice of the invention. The objectives and other advantages of the invention will be realized and attained by means of the elements and combinations particularly pointed out in the description and appended claims.
[0008] To achieve these and other advantages and in accordance with the purpose of the present invention, as embodied and broadly described herein, the present invention relates, in part, to a hydrogel contact lens comprising a predetermined amount of WS12 releasably adhered to the lens, which improves contact lens comfort in symptomatic contact lens wearers and / or reduces contact lens dryness in symptomatic contact lens wearers. In one embodiment, the hydrogel contact lens is a silicone hydrogel contact lens.
[0009] In one example, a silicone hydrogel contact lens can release 0.05 μg to 0.5 μg of WS12 in 1 hour in an in vitro release medium consisting of 25% ethanol by volume in phosphate buffered saline (PBS).
[0010] The present invention further relates to a method for producing the silicone hydrogel contact lens of the present invention, comprising the steps of: (a) polymerizing a polymerizable composition (as described herein) in a contact lens mold to obtain a polymeric lens body, (b) removing the polymeric lens body from the contact lens mold, (c) extracting the polymeric lens body in an organic solvent containing about 5 ppm to about 50 ppm WS12, (d) hydrating the polymeric lens body in a hydration solution to obtain the silicone hydrogel contact lens, (e) sealing the silicone hydrogel contact lens in a package with a packaging solution, and (f) autoclaving the package.
[0011] The present invention further relates to a method for correcting vision in a symptomatic contact lens wearer, comprising providing the symptomatic contact lens wearer with a WS12-releasing hydrogel contact lens, wherein the WS12-releasing hydrogel contact lens increases the duration of comfortable contact lens wear time and / or reduces contact lens dryness in the symptomatic contact lens wearer compared to a control lens not containing WS12. The present invention further relates to a method for increasing the duration of comfortable contact lens wear time and / or reducing symptoms of dryness in the contact lens wearer by releasably attaching a predetermined amount of WS12 to the polymer lens body of the contact lens and / or by providing the contact lens wearer with a WS12-releasing hydrogel contact lens of the present invention. The WS12-releasing hydrogel contact lens advantageously increases the duration of comfortable contact lens wear time and / or reduces contact lens dryness in the symptomatic contact lens wearer compared to a control lens not containing WS12. The contact lens wearer is preferably a symptomatic contact lens wearer. The present invention also relates to the use of an amount of WS12 releasably attached to the polymeric lens body of a hydrogel contact lens in reducing symptoms of dryness in a contact lens wearer, increasing the comfortable lens wear time of a contact lens wearer, increasing the tear meniscus height of a contact lens wearer, and / or reducing the CLDEQ-8 score during contact lens wear in a contact lens wearer, wherein the contact lens wearer is preferably a symptomatic contact lens wearer, and / or the hydrogel contact lens is preferably a contact lens of the present invention described herein.The present invention also relates to a method of selecting a contact lens for correcting a symptomatic contact lens wearer's vision, reducing symptoms of dryness in a contact lens wearer, increasing the contact lens wearer's comfortable lens wear time, increasing the contact lens wearer's tear meniscus height, and / or lowering the contact lens wearer's CLDEQ-8 score, comprising the steps of selecting a hydrogel contact lens of the present invention capable of releasing WS12 during lens wear and providing it to a symptomatic contact lens wearer. The present invention also relates to a composition comprising a hydrogel releasably attached to WS12 for use in correcting a symptomatic contact lens wearer's vision, reducing symptoms of dryness in a contact lens wearer, increasing the contact lens wearer's comfortable lens wear time, increasing the contact lens wearer's tear meniscus height, and / or lowering the contact lens wearer's CLDEQ-8 score, the composition advantageously being in the form of a contact lens of the present invention. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a box plot showing preference of symptomatic and asymptomatic contact lens wearers for either WS12-releasing contact lenses or control lenses after 30 days of lens wear. DETAILED DESCRIPTION OF THE INVENTION
[0013] Through extensive experimentation, the inventors have discovered that, unlike other TRPM8 receptor agonists evaluated, the menthol derivative WS12 (CAS No. 68489-09-8) can be incorporated into hydrogel contact lens materials and remain within the lens material without degradation or leaching during standard contact lens sterilization and storage conditions. When the contact lens is placed on the eye (worn), WS12 is continuously released from the lens over several hours, providing improved comfort for symptomatic contact lens wearers. Thus, hydrogel contact lenses that release WS12 during wear and methods for their manufacture are described herein. Such contact lenses may be referred to herein as WS12-releasing contact lenses. WS12 is released from the lens during wear in amounts that improve contact lens wear comfort for symptomatic contact lens wearers.
[0014] As an option, the contact lenses are free of other TRPM8 receptor agonists.
[0015] As an option, there are no other medications for dry eyes in contact lenses.
[0016] A WS12-releasing contact lens includes a polymeric lens body and a quantity of WS12 releasably attached to the polymeric lens body. In one example, the contact lens is the reaction product of a non-silicone hydrogel polymerizable composition. Non-silicone hydrogel contact lenses are typically formed from the polymerization of one or more hydrophilic monomers, such as 2-hydroxyethyl methacrylate (HEMA) or vinyl alcohol, optionally combined with other monomers, but do not contain siloxane molecules.
[0017] In one example, a contact lens includes a polymeric lens body that is the reaction product of a polymerizable composition including at least one siloxane monomer and at least one hydrophilic monomer and / or at least one hydrophilic polymer. Advantageously, as described in more detail below, a cured polymeric lens body for a silicone hydrogel can be extracted in an extraction solvent containing WS12, resulting in a desired amount of WS12 adhering to the polymeric lens body. Alternatively or additionally, WS12 can be added to the polymerizable composition. WS12 can be attached to the polymeric lens body through hydrophobic interactions and / or physically entrapped by the polymer network of the polymeric lens body.
[0018] The amount of WS12 "releasably attached" to the polymeric lens body refers to the total amount of WS12 that can be extracted from the contact lens using the ethanol (EtOH) extraction method described below in Example 1. In one example, the amount of WS12 releasably attached to the polymeric lens body can be at least about 0.25 μg or 0.50 μg, up to about 2.5 μg, 5.0 μg, or 10.0 μg, such as from about 0.30 μg to about 3.0 μg.
[0019] As used herein, unless otherwise indicated, references to the in vitro release profile of a WS12-releasing contact lens refer to the amount of WS12 released from the lens over a given period of time, as measured using an in vitro release medium (25% by volume EtOH in PBS) and the method described in Example 4 below. In vitro release methods employing an ethanol-containing, protein-free release medium provide a less variable release profile than when an artificial tear film composition (ATF) is used as the release medium, and are useful for determining the impact of a particular lens material on WS12 release. For example, a polymeric lens body made of one material and having a given amount of WS12 releasably attached thereto may have a different WS12 release profile than a polymeric lens body made of a different material and having the same amount of WS12 releasably attached thereto. Some properties of a polymeric lens body that can affect the WS12 release profile include the hydrophobicity of the material, the water content, and the degree of crosslinking of the polymeric lens body. Additionally, encapsulation techniques such as liposomes or erodible nanoparticles can be used to partially or completely encapsulate WS12 prior to incorporation into the polymer lens body, thereby delaying or extending the release of WS12 from the lens. For example, 10% to 80% or more by weight of WS12 incorporated into a contact lens can have such a delayed-release profile. A WS12-releasing contact lens is considered to have sustained release of WS12 for a given x hours when the amount of WS12 released after x hours is greater than the amount of WS12 released after (x-1) hours, as measured using the in vitro release method of Example 4 below, using 25% by volume EtOH in PBS as the release medium. In one example, a WS12-releasing lens sustains release of WS12 for at least 6 hours.In one embodiment, the WS12-releasing lenses may have an in vitro release profile of 0.05 μg to 0.5 μg of WS12 released per hour for at least 6 hours, or 0.1 μg to 0.4 μg of WS12 released per hour for at least 6 hours, or 0.1 μg to 0.3 μg of WS12 released per hour for at least 6 hours, as measured using the in vitro release method of Example 4. In some examples, the contact lenses sustain release of WS12 for at least 8 hours, or at least 10 hours.
[0020] To measure the amount of WS12 released from WS12-releasing contact lenses during wear, human subjects (n=3) wear WS12-releasing lenses in both eyes for a specified period of time. The amount of WS12 released from the lenses at a specified time point is the difference between the average amount of WS12 in the unworn WS12-releasing lenses (n=3) and the average amount of WS12 remaining in the worn lenses at that test time point. In one example, the WS12-releasing lenses release 0.05 μg to 0.75 μg of WS12, or 0.05 μg to 0.50 μg of WS12 after 1 hour of wear. In a further example, the WS12-releasing lenses release 0.10 μg to 1.5 μg of WS12, or 0.25 μg to 1.0 μg of WS12 after 3 hours of wear. In yet another example, a WS12-releasing lens releases between 0.25 μg and 2.0 μg, or between 0.5 μg and 1.5 μg of WS12 after 6 hours of wear.
[0021] The polymeric lens body can comprise any hydrogel material suitable for use as a contact lens material. Silicone hydrogel materials for contact lenses are typically formed by curing a polymerizable composition (i.e., a monomer mixture) containing at least one siloxane monomer and at least one hydrophilic monomer, or at least one hydrophilic polymer, or a combination thereof. As used herein, the term "siloxane monomer" refers to a molecule containing at least one Si-O group and at least one polymerizable group. Siloxane monomers used in contact lens compositions are well known in the art (see, e.g., U.S. Pat. Nos. 8,658,747 and 6,867,245). (All patents and publications mentioned herein are incorporated by reference in their entirety.) In some examples, the polymerizable composition comprises a total amount of siloxane monomer of at least 10%, 20%, or 30% by weight, up to about 40%, 50%, 60%, or 70% by weight. Unless otherwise specified, as used herein, a given weight percent (wt. %) of a component of a polymerizable composition is based on the total weight of all polymerizable components and the IPN polymer (discussed further below) in that polymerizable composition. The weight of the polymerizable composition contributed by components that are not incorporated into the final contact lens product, such as diluents, is not included in the wt. % calculation.
[0022] In certain embodiments, the polymerizable composition includes a hydrophilic vinyl monomer. As used herein, the term "hydrophilic vinyl monomer" refers to a siloxane-free (i.e., Si-O-free) hydrophilic monomer having a polymerizable (polymerizable) carbon-carbon double bond (i.e., vinyl group) in its molecular structure that is not part of an acrylic group. The carbon-carbon double bond of the vinyl group is less reactive than the carbon-carbon double bond present in a methacrylate group that is polymerizable under free radical polymerization. As used herein, the term "acrylic group" refers to a polymerizable group present in acrylates, methacrylates, acrylamides, etc. Thus, although carbon-carbon double bonds are also present in acrylate and methacrylate groups, such polymerizable groups are not considered vinyl groups as used herein. Furthermore, as used herein, a monomer is "hydrophilic" if at least 50 grams of the monomer is completely soluble in 1 liter of water at 20°C (i.e., approximately 5% soluble in water), as determined visually using a standard shake flask method. In various embodiments, the hydrophilic vinyl monomer is N-vinyl-N-methylacetamide (VMA), N-vinylpyrrolidone (NVP), 1,4-butanediol vinyl ether (BVE), ethylene glycol vinyl ether (EGVE), diethylene glycol vinyl ether (DEGVE), or any combination thereof. In one embodiment, the polymerizable composition comprises at least 10%, 15%, 20%, or 25% by weight, up to about 45%, 60%, or 75% by weight of the hydrophilic vinyl monomer. As used herein, a given weight percent of a particular class of component (e.g., hydrophilic vinyl monomer, siloxane monomer, etc.) in the polymerizable composition is equal to the sum of the weight percentages of each component in the composition that falls within that class. Thus, for example, a polymerizable composition containing 5% by weight BVE and 25% by weight NVP, but no other hydrophilic vinyl monomers, is said to contain 30% by weight of hydrophilic vinyl monomer. In one embodiment, the hydrophilic vinyl monomer is a vinylamide monomer. Exemplary hydrophilic vinylamide monomers are VMA and NVP.In certain embodiments, the polymerizable composition comprises at least 25% by weight of vinylamide monomer. In another particular embodiment, the polymerizable composition comprises from about 25% by weight to about 75% by weight of VMA, NVP, or a combination thereof. Additional hydrophilic monomers that may be included in the polymerizable composition are N,N-dimethylacrylamide (DMA), 2-hydroxyethyl methacrylate (HEMA), ethoxyethyl methacrylamide (EOEMA), ethylene glycol methyl ether methacrylate (EGMA), and combinations thereof.
[0023] In addition to or as an alternative to hydrophilic monomers, the polymerizable composition can include a non-polymerizable hydrophilic polymer, resulting in a polymeric lens body comprising an interpenetrating polymer network (IPN) in which the non-polymerizable hydrophilic polymer interpenetrates with the silicone hydrogel polymer matrix. In this embodiment, the non-polymerizable hydrophilic polymer is referred to as an IPN polymer, which acts as an internal wetting agent for the contact lens. In contrast, polymer chains within the silicone hydrogel network formed by polymerization of monomers present in the polymerizable composition are not considered IPN polymers. The IPN polymer can be a high molecular weight hydrophilic polymer, e.g., from about 50,000 to about 500,000 daltons. In certain embodiments, the IPN polymer is polyvinylpyrrolidone (PVP). In other embodiments, the polymerizable composition is substantially free of polyvinylpyrrolidone or other IPN polymers.
[0024] Optionally, one or more non-silicon-containing hydrophobic monomers may be present as part of the polymerizable composition, where a hydrophobic monomer may be understood to be any monomer in which 50 grams of the monomer cannot be visually completely dissolved in 1 liter of water at 20° C. using standard shake flask techniques. Examples of suitable hydrophobic monomers include methyl acrylate, or ethyl acrylate, or propyl acrylate, or isopropyl acrylate, or cyclohexyl acrylate, or 2-ethylhexyl acrylate, or methyl methacrylate (MMA), or ethyl methacrylate, or propyl methacrylate, or butyl acrylate, or 2-hydroxybutyl methacrylate, or vinyl acetate, or vinyl propionate, or vinyl butyrate, or vinyl valerate, or styrene, or chloroprene, or vinyl chloride, or vinylidene chloride, or acrylonitrile, or 1-butene, or butadiene, or methacrylonitrile, or vinyl toluene, or vinyl ethyl ether, or perfluorohexylethylthiocarbonylaminoethyl methacrylate, or isobornyl methacrylate (IBM), or trifluoroethyl methacrylate, or hexafluoroisopropyl methacrylate, or tetrafluoropropyl methacrylate, or hexafluorobutyl methacrylate, or any combination thereof.
[0025] If used, the hydrophobic monomer may be present in the reaction product of the polymerizable composition in an amount of from 1 wt % to about 30 wt %, e.g., from 1 wt % to 25 wt %, from 1 wt % to 20 wt %, from 1 wt % to 15 wt %, from 2 wt % to 20 wt %, from 3 wt % to 20 wt %, from 5 wt % to 20 wt %, from 5 wt % to 15 wt %, or from 1 wt % to 10 wt %, based on the total weight of the polymerizable composition.
[0026] As will be appreciated by those skilled in the art, the polymerizable composition may include additional polymerizable or non-polymerizable components conventionally used in contact lens formulations, such as one or more of a polymerization initiator, UV absorber, colorant, oxygen scavenger, chain transfer agent, etc. In some examples, the polymerizable composition may include an organic diluent in an amount that prevents or minimizes phase separation between the hydrophilic and hydrophobic components of the polymerizable composition, resulting in an optically clear lens. Diluents commonly used in contact lens formulations include hexanol, ethanol, and / or other alcohols. In other examples, the polymerizable composition is free of, or substantially free of (e.g., less than 500 ppm) organic diluents. In such examples, the use of siloxane monomers containing hydrophilic moieties, such as polyethylene oxide groups, pendant hydroxyl groups, or other hydrophilic groups, may obviate the need to include a diluent in the polymerizable composition. Non-limiting examples of these and additional components that may be included in the polymerizable composition are provided in U.S. Pat. No. 8,231,218.
[0027] Non-limiting examples of silicone hydrogels that can be used include comfilcon A, fanfilcon A, stenfilcon A, senofilcon A, senofilcon C, somofilcon A, narafilcon A, derefilcon A, narafilcon A, lotrafilcon A, lotrafilcon B, balafilcon A, samfilcon A, galyfilcon A, and asmofilcon A.
[0028] A specific embodiment of the silicone hydrogel contact lens of the present invention is based on a polymerizable composition containing 25% to 55% by weight of a siloxane monomer, 30% to 55% by weight of a vinyl monomer selected from NVP, VMA, or a combination thereof, and optionally about 1% to about 20% by weight of a hydrophilic monomer selected from N,N-dimethylacrylamide (DMA), 2-hydroxyethyl methacrylate (HEMA), ethoxyethyl methacrylamide (EOEMA), ethylene glycol methyl ether methacrylate (EGMA), or any combination thereof, and optionally about 1% to about 20% by weight of a hydrophobic monomer selected from methyl methacrylate (MMA), isobornyl methacrylate (IBM), 2-hydroxybutyl methacrylate (HOB), or any combination thereof. Silicone hydrogel materials produced from this specific embodiment of the polymerizable composition include stenfilcon A, confilcon A, somofilcon A, funficon A, and enfilcon A.
[0029] Conventional methods can be used to manufacture the contact lenses of the present invention. In one example, polymerizable components for a silicone hydrogel composition are dispensed into a female mold member having a concave surface that defines the anterior surface of the contact lens. A male mold member having a convex surface that defines the posterior, i.e., corneal-contacting, surface of the contact lens is mated with the female mold member to form a contact lens mold assembly, which is exposed to curing conditions, such as UV or thermal curing conditions. Under the curing conditions, the curable composition forms a polymeric lens body. The female and male mold members can be non-polar or polar. The mold assembly is disassembled (i.e., demolded), and the polymeric lens body is removed from the mold and contacted with a solvent, e.g., an organic solvent such as ethanol, to extract unreacted components from the lens body. After extraction, the lens body is hydrated in one or more hydrating liquids, such as water or an aqueous solution, and packaged. An exemplary method for manufacturing silicone hydrogel contact lenses is described in U.S. Pat. No. 8,865,789.
[0030] WS12 can be loaded into the polymer lens during the extraction process. Typically, after curing, the polymer lens body is swollen in an extraction solvent, such as ethanol, containing WS12. The extracted polymer lens body is then placed in a hydration solution, such as deionized water, and the extraction solvent is removed, leaving the WS12 attached to the polymer lens body.
[0031] Examples of extraction solvents and hydration liquids used in the extraction and hydration processes can include denatured ethanol, a 50 / 50 (by volume) mixture of denatured ethanol and deionized water, and deionized water. As an example, the extraction and hydration processes can include at least one extraction step in denatured ethanol followed by a 50:50 mixture of ethanol and water, followed by at least one hydration step in deionized water, each of which can last from about 15 minutes to about 3 hours at a temperature of from about 20°C to about 30°C. The extraction solvent can contain WS12 to achieve uploading of WS12 into the polymer lens body.
[0032] The extraction solvent used as the upload solution for WS12 can contain WS12 at a concentration of at least 1.0 μg / ml. This concentration can be at least 2.5 μg / ml, at least 5.0 μg / ml, or at least 10.0 μg / ml of WS12. In one embodiment, the concentration of WS12 in the extraction solvent is from about 5.0 μg / ml to about 50.0 μg / ml (i.e., from about 5 ppm to about 50 ppm).
[0033] In some embodiments, WS12 is stable once attached to the polymeric lens body and is not substantially released or degraded from the polymeric lens body during autoclaving of a sealed contact lens package containing an unworn silicone hydrogel contact lens in the packaging solution or during storage in the packaging solution, but is released during lens wear. Thus, the packaging solution in which the contact lens is immersed before autoclaving, immediately after autoclaving, 1 day, 30 days, 60 days, or 120 days thereafter may have a concentration of WS12 that is less than 0.1 μg / ml, or less than 0.05 μg / ml, or a concentration of WS12 below the level of detection as determined by HPLC.
[0034] As part of the present invention, contact lenses can be sealed in a contact lens package. The packaging solution sealed in the contact lens package can be any conventional contact lens fitting solution. In one embodiment, the packaging solution comprises, consists of, or consists essentially of an aqueous solution of a buffer and / or a tonicity agent. In another embodiment, the packaging solution contains additional adjuvants, such as one or more additional antimicrobial agents, comfort agents, hydrophilic polymers, surfactants, and / or other beneficial agents. In some embodiments, the packaging solution can contain polysaccharides (e.g., hyaluronic acid, hydroxypropylmethylcellulose, hydroxypropylcellulose, hydroxyethylcellulose, etc.) or other high molecular weight polymers, such as polyvinylpyrrolidone, which are commonly used as comfort polymers or thickeners in ophthalmic solutions and contact lens packaging solutions. In other embodiments, the packaging solution can contain an ophthalmic medication (eye drops). The packaging solution can have a pH ranging from about 6.8 or 7.0 to about 7.8 or 8.0. In one embodiment, the packaging solution comprises a phosphate buffer or a borate buffer, hi another embodiment, the packaging solution comprises a tonicity agent selected from sodium chloride or sorbitol in an amount to maintain an osmolality in the range of about 200 to 400 mOsm / kg, typically about 270 mOsm / kg to about 310 mOsm / kg.
[0035] With respect to contact lens packages, the packages may include a plastic base member including a cavity configured to hold a contact lens and packaging solution and a flange region extending outwardly around the cavity. A removable foil is attached to the flange region to provide a sealed contact lens package. Such contact lens packages are commonly referred to as "blister packs" and are well known in the art (e.g., U.S. Pat. No. 7,426,993).
[0036] It will be appreciated that conventional manufacturing methods can be utilized to produce the sealed contact lens package. In a method for producing a contact lens package, the method can include placing an unworn contact lens and contact lens packaging solution in a receptacle, placing a cover over the receptacle, and sealing the cover over the receptacle. Generally, the receptacle is configured to receive a single contact lens and a sufficient amount of packaging solution to completely cover the contact lens, typically about 0.5 to 1.5 ml. The receptacle can be manufactured from any suitable material, such as glass or plastic. In one embodiment, the receptacle comprises a plastic base member including a cavity configured to hold the contact lens and packaging solution and a flange region extending outwardly around the cavity, and the cover has a removable foil attached to the flange region to provide a sealed contact lens package. The removable foil can be sealed by any conventional means, such as heat sealing or gluing. In another embodiment, the receptacle is in the form of a plastic base member including a plurality of threads, and the cover includes a plastic cap member including a set of compatible threads for engaging with the threads of the base member, thereby providing a resealable cover. It should be understood that other types of packaging may be utilized to provide a resealable package. For example, the contact lens package may include a plastic cover including features that engage with matching features on the receptacle to form an interference fit. The method of manufacturing a sealed contact lens package may further include sterilizing an unworn contact lens by autoclaving the sealed contact lens package. The autoclaving step generally involves subjecting the sealed contact lens package to a temperature of at least 121°C for at least 20 minutes.
[0037] The contact lenses may be provided unused (i.e., new contact lenses not previously used by a patient), immersed in packaging solution, and sealed in a package. The package may be a blister package, glass vial, or other suitable container. The package includes a base member having a cavity for receiving the packaging solution and the unworn contact lens. The sealed package may be sterilized by a prescribed amount of radiation sterilization, including heat or steam, such as autoclaving, gamma radiation, electron beam radiation, ultraviolet radiation, etc.
[0038] In certain embodiments, the packaged contact lenses are sterilized by autoclaving.
[0039] The final product can be a sterilized and packaged contact lens (eg, a silicone hydrogel contact lens) with ophthalmically acceptable surface wettability.
[0040] The WS12-releasing hydrogel contact lenses described herein can be used to correct the vision of symptomatic contact lens wearers. For example, WS12-releasing hydrogel contact lenses can increase the duration of comfortable contact lens wear in symptomatic contact lens wearers. References herein to "symptomatic contact lens wearers" or "symptomatic subjects" refer to lens wearers who are classified as symptomatic using the method described in Example 6, adapted from Young et al. (See Young et al., "Characterizing contact lens-related dryness symptoms in a cross-section of UK soft lens wearers." Contact Lens & Anterior Eye 34 (2011) 64-70).
[0041] The WS12-releasing hydrogel contact lenses described herein can be worn by symptomatic contact lens wearers and can reduce the sensation of "dryness," particularly at the end of the day, compared to control lenses or the symptomatic wearer's regular lenses. References herein to "control lenses" refer to contact lenses that do not contain WS12 but are otherwise identical to the comparative WS12-releasing lenses. Reduction of lens dryness during contact lens wear can be determined using the characterization method described in Example 6. Overall lens preference for WS12-releasing hydrogel contact lenses in symptomatic contact lens wearers is another way to measure / confirm the beneficial impact on contact lens discomfort / dryness.
[0042] The WS12-releasing hydrogel contact lenses described herein may reduce lens consciousness and / or cause fewer "lens consciousness events" during the day compared to control lenses. Lens consciousness and / or reduced lens consciousness events during contact lens wear may be determined using the "lens consciousness logger" described by Read et al. (See Read et al., "Monitoring ocular discomfort using a wrist-mounted electronic logger," Contact Lens and Anterior Eye Vol. 43 (2020) 476-485).
[0043] The WS12-releasing hydrogel contact lenses described herein may provide an increased tear film meniscus height compared to control lenses after wearing the lenses for 1 hour, 2 hours, 4 hours, or more. Tear film meniscus height may be measured by optical coherence tomography (OCT) or other suitable method.
[0044] The WS12-releasing hydrogel contact lenses described herein may improve (i.e., reduce) CLDEQ-8 scores in symptomatic lens wearers (see Chalmers et al., Contact Lens Dry Eye Questionnaire-8 (CLDEQ-8) and opinion of contact lens performance, Optom Vis Sci 2012;89(10):1435-1442). Improvements in CLDEQ-8 scores may be observed after one week, two weeks, or four weeks of wearing WS12-releasing hydrogel contact lenses.
[0045] Some subjects may initially experience a tingling or cooling sensation after inserting WS12-releasing lenses. However, these symptoms diminish after wearing the lenses daily for a period of time, indicating adaptation to WS12. The initial discomfort can be reduced or avoided by having the patient begin using WS12-releasing contact lenses with a lower WS12 release rate. After wearing low-dose WS12-releasing contact lenses for several days, the patient adapts to WS12 and can switch to contact lenses with a higher WS12 release rate without experiencing discomfort upon initial insertion. Low-dose WS12-releasing contact lenses can be considered "starter" WS12-releasing lenses. In some instances, patients can wear starter WS12-releasing lenses daily, for example, for 3, 5, 7, or 10 days, before switching to WS12-releasing contact lenses with a higher WS12 release rate to improve contact lens wear comfort in symptomatic contact lens wearers. A starter WS12 releasing lens may release from about 0.05 μg up to about 0.2 μg of WS12 after 1 hour in an in vitro release medium according to the method of Example 4.
[0046] A "starter trial pack" or kit may be provided that includes at least two WS12-releasing contact lenses, where a first contact lens may include a first polymer lens body and a first amount of WS12 releasably attached to the first polymer lens body, and a second contact lens may include a second polymer lens body and a second amount of WS12 releasably attached to the second polymer lens body, the second amount being greater than the first amount, and the first polymer lens body and the second polymer lens body may comprise the same material. In some examples, the starter trial pack may include a third WS12-releasing contact lens that includes a third polymer lens body and a third amount of WS12 releasably attached to the third polymer lens body, the third amount being greater than the second amount, and the first polymer lens body, the second polymer lens body, and the third polymer lens body may comprise the same material. Individual WS12-releasing contact lenses of the starter trial pack can be immersed in a packaging solution, sealed in a package such as a blister package, sterilized, and packaged in a secondary package such as a carton. The secondary package can include a package insert instructing the lens wearer to wear lenses containing a lower amount of WS12 before wearing lenses containing a higher amount of WS12. The primary packaging of the starter WS12-releasing lenses can differ in appearance, for example, by color, from lenses having a higher WS12 release rate.
[0047] The following examples are intended to illustrate certain aspects and advantages of the present invention, but should not be construed as limiting thereof.
[0048] Example 1. Preparation of WS12-releasing contact lenses
[0049] Silicone hydrogel contact lenses were prepared by curing the Stenfilcon A formulation in a contact lens mold. The cured Stenfilcon A was removed from the mold and extracted by immersion for 215 minutes in ethanol (EtOH) containing WS12 (Tocris Bioscience) at the loading concentration shown in Table 1. The lenses were removed from the EtOH and washed with deionized (DI) water for approximately 6 minutes, followed by two changes of DI water for 30 minutes each. The lenses were transferred to 6 mL glass vials containing 3 mL of phosphate-buffered saline (PBS) at pH 7.5 (0.78 wt% NaCl, 0.05 wt% monobasic sodium phosphate, 0.36 wt% dibasic sodium phosphate), herein referred to as PBS. The vials were sealed and autoclaved.
[0050] Each autoclaved lens was transferred to a vial containing 3 ml of EtOH and stored overnight at room temperature on a shaker at 150 rpm to extract WS12 from the lens. The EtOH extracts and the PBS in which the lenses were autoclaved were analyzed by HPLC (detection wavelength = 250 nm) against calibration standards to determine the average amount of WS12 loaded in each (n = 5) and whether WS12 leached from the lenses during autoclaving. The results are shown in Table 1.
[0051] Table 1 TIFF2026016424000002.tif34155
[0052] Silicone hydrogel contact lenses were prepared by curing a formulation of Confilcon A in a contact lens mold and subjecting the lenses to the same extraction, hydration, and autoclaving procedures described above for lenses made with Stenfilcon A, except that a single 15 μg / mL WS12 concentration was used in the ethanol extraction step. The lenses (Lens D) were subjected to HPLC analysis for WS12 content and shown to have an average WS12 uptake of 1.04 μg / lens.
[0053] Example 2. In vitro release of WS12 release contact lenses in 5% EtOH by volume
[0054] Lenses B and D from Example 1 were removed from their vials, and excess packaging solution was shaken off each lens. Each lens (n=3 per time point) was transferred to a 6 ml glass vial containing 3 ml of 5% ethanol by volume in PBS at 35°C. The vials were placed on a shaker at 125 rpm in a 35°C incubator. At 30 minutes and 1 hour, 2.5 ml of EtOH release medium was removed (from the vials at 30 minutes and 1 hour, respectively) and subjected to HPLC analysis. At 1 hour and at subsequent time points (i.e., 2 hours, 3 hours, and 4 hours), 2.5 ml of EtOH release medium was removed from each of the remaining vials, and 2.5 ml of fresh EtOH release medium was added to each vial. Table 2 below shows the cumulative WS12 release (amount) for each lens material. For example, the 3 hour time point is the sum of the amount of WS12 detected in the release medium collected at 1 hour, 2 hours and 3 hours.
[0055] Table 2 TIFF2026016424000003.tif66154
[0056] Example 3. WS12 release from contact lenses during lens wear
[0057] Lens B was worn by human subjects for 1, 3, and 6 hours (n=2 per time point). At the end of each lens wear period, the lenses were extracted in EtOH using the method described in Example 1. The extracts were subjected to HPLC analysis to determine the amount of residual WS12 remaining in the lenses, and the amount of WS12 released during wear was calculated. The average amount and percentage of WS12 released during lens wear are shown in Table 3.
[0058] Table 3 TIFF2026016424000004.tif39153
[0059] Example 4. In vitro release of WS12 release contact lenses in 25% EtOH by volume.
[0060] To achieve an in vitro release method that more closely approximates the release of WS12 during lens wear, the release of WS12 from Lens B was tested using the method of Example 2, except that higher concentrations of EtOH were used in the release medium: 15%, 20%, 25%, or 30%. A release medium consisting of 25% (v / v) EtOH / 75% (v / v) PBS most closely approximated the release of WS12 from the lenses during 6 hours of wear. The results are shown in Table 4.
[0061] Table 4 TIFF2026016424000005.tif50153
[0062] Example 5. One-day escalating dose clinical study of WS12-releasing contact lenses.
[0063] Two subjects participated in the study, evaluating all three loading concentrations of Example 1. Each subject was exposed to Lenses A, B, and C of Example 1 for 30 minutes in one eye, wearing them contralaterally. On the first study day, subjects wore Lenses B and C contralaterally, followed by Lenses B and A contralaterally on another day. With Lens C, one subject experienced a burning (stinging) sensation, while the other subject experienced a cooling sensation. With Lens B, both subjects experienced a mild cooling / burning sensation that lasted approximately one hour. Lens A caused the subjects a brief cooling / wet sensation. Lens B was selected for further evaluation.
[0064] Example 6. 30-day clinical study of WS12 releasing contact lenses.
[0065] Thirty-three subjects were enrolled in a 1-month, bilateral, randomized, crossover double-masked study wearing Lens B of Example 1 (test) or MyDay® brand contact lenses (control). Subjects were classified as symptomatic (S) or asymptomatic (A) contact lens wearers using the classification system outlined in Table 5, which was adapted from the classification proposed by Young et al. (supra).
[0066] Table 5 TIFF2026016424000006.tif50153
[0067] Sixteen subjects were classified as symptomatic contact lens wearers, reporting a rating of 2 or greater on a 5-point scale for the intensity of contact lens dryness / discomfort and a rating of "sometimes, frequently, or always" for the frequency of contact lens dryness / discomfort. Seventeen subjects were classified as asymptomatic contact lens wearers, reporting a rating of 0 or 1 on a 5-point scale for the intensity of contact lens dryness / discomfort and a rating of "rarely or never" for the frequency of contact lens dryness / discomfort.
[0068] After a 3-7 day washout period in which subjects wore their regular lenses, the second lens type in their randomized order (i.e., either Example 1 (test) or MyDay® brand (control) contact lenses) was worn for one month. Ratings of comfort, dryness, coolness, pleasantness, and CLDEQ-8 scores were monitored (Chalmers et al., supra).
[0069] At one week, the test lenses were rated as significantly less comfortable to wear than the control lenses, but this difference diminished after one month of wear. This change was likely due to a decreased cooling sensation, likely due to sensory adaptation in subjects wearing the test lenses. There was no significant difference in overall comfort ratings between the test and control lenses at one week or one month. However, after one month of wear, twice as many subjects reported increased comfort with the test lenses compared with the control lenses. Overall dryness ratings were significantly better (i.e., lower) for the test lenses compared with the control lenses at both one week and one month. Tear meniscus height, measured using a Visante OCT (Carl Zeiss Meditec Inc., Dublin, CA), was significantly increased after one month of wear of the test lenses compared with the control lenses. CLDEQ-8 scores were significantly lower after one month of wear of the test lenses compared with the control lenses. This difference was statistically significant among symptomatic subjects. After one month of lens wear, of the 33 subjects, 19 (58%) preferred the test lenses, 11 (33%) preferred the control lenses, and 3 (9%) reported no preference. Of the 16 symptomatic subjects, 11 (69%) preferred the test lenses and 5 (31%) preferred the control lenses. The results are shown in Figure 1.
[0070] While the disclosure herein refers to specific illustrated embodiments, it should be understood that these embodiments are presented by way of example and not limitation. The intent of the foregoing detailed description, while discussing exemplary embodiments, is to be construed to encompass all modifications, alternatives, and equivalents of such embodiments, which may fall within the spirit and scope of the invention and may be defined as additional disclosure.
[0071] References herein to "examples," "particular examples," "aspects," "embodiments," or similar phrases are intended to introduce one or more features of WS12-releasing silicone hydrogel contact lenses, components thereof, sealed contact lens packages, components thereof, or methods of making WS12-releasing silicone hydrogel contact lenses (depending on the context). They may be combined with any combination of examples, aspects, or embodiments (i.e., features) described above or below, unless particular combinations of features are mutually exclusive or the context indicates otherwise. Furthermore, as used herein, the singular forms "a," "an," and "the" include plural referents (e.g., at least one or more) unless the context clearly indicates otherwise. Thus, for example, reference to "a" or "contact lens" includes a single lens as well as two or more lenses, whether the same or different.
[0072] The entire contents of all references cited in this disclosure are incorporated by reference herein to the extent not inconsistent with this disclosure.
[0073] The present invention may include any combination of the various features or embodiments described above and / or in the claims below, as set forth in sentences and / or paragraphs. Any combination of features disclosed herein is considered part of the present invention. No limitations are intended with respect to features that can be combined.
[0074] Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only. A true scope and spirit of the invention is indicated by the following claims and their equivalents.
Claims
1. 1. An unworn, sterilized hydrogel contact lens immersed in a packaging solution and sealed in a package, comprising: (a) a polymer lens body; (b) a quantity of WS12 releasably attached to said polymeric lens body; A contact lens comprising:
2. In a release medium consisting of 25% ethanol by volume in PBS, the in vitro release profile ranges from 0.05 μg to 0.5 μg of WS12 in 1 hour.
2. The contact lens of claim 1.
3. The polymeric lens body is the reaction product of a polymerizable composition comprising at least one siloxane monomer and at least one hydrophilic monomer, or at least one hydrophilic polymer, or both at least one hydrophilic monomer and at least one hydrophilic polymer.
3. The contact lens according to claim 1 or 2.
4. The amount of WS12 releasably attached to the polymeric lens body is about 0.25 μg to about 10.0 μg.
4. The contact lens according to claim 1.
5. The amount of WS12 releasably attached to the polymeric lens body is about 0.50 μg to about 5.0 μg.
5. The contact lens according to claim 1.
6. The contact lens sustains release of WS12 in the release medium for at least 6 hours.
6. The contact lens according to claim 1.
7. The release profile has a release of 0.05 μg to 0.5 μg of WS12 per hour for up to 6 hours.
7. The contact lens according to claim 1.
8. The release profile has a release of 0.1 μg to 0.3 μg of WS12 per hour for up to 6 hours.
8. The contact lens according to claim 1.
9. The package has been autoclaved 9. The contact lens according to claim 1.
10. The package comprises: (a) a base member having a cavity for holding the packaging solution; (b) a cover that forms a fluid-tight seal with the base member; 10. The contact lens according to claim 1, wherein
11. A contact lens immersed in a packaging solution and sealed in a package, comprising: the contact lens is an unworn, sterile silicone hydrogel contact lens; (a) a polymer lens body; (b) a quantity of WS12 releasably attached to said polymeric lens body; Equipped with The contact lenses release 0.05 μg to 0.50 μg of WS12 after one hour of wear by a person. A contact lens characterized by:
12. After 3 hours of human wear, the device releases 0.10 μg to 1.5 μg of WS12.
12. The contact lens of claim 11.
13. Releases 0.25 μg to 2.0 μg of WS12 after 6 hours of human wear 13. The contact lens according to claim 11 or 12.
14. 14. Use of a contact lens according to any one of claims 1 to 13 for correcting the vision of a symptomatic contact lens wearer.
15. 15. The use of claim 14 for reducing symptoms of dryness in a contact lens wearer.
16. 15. Use according to claim 14 for increasing the comfortable lens wearing time by the contact lens wearer.
17. 15. The use according to claim 14 for increasing the tear meniscus height of the contact lens wearer.
18. 15. The use according to claim 14 for reducing the CLDEQ-8 score of the lens wearer.
19. For use in correcting vision in symptomatic contact lens wearers, For use in reducing symptoms of dryness in contact lens wearers. For use in increasing comfortable lens wear time by contact lens wearers, For use in increasing the tear meniscus height in contact lens wearers; and / or For use in reducing CLDEQ-8 scores while wearing contact lenses 1. A composition comprising: The composition has a predetermined amount of WS12 releasably attached to a polymeric silicone hydrogel contact lens body. A composition characterized by:
20. 20. The composition of claim 19 in the form of a contact lens according to any one of claims 1 to 13.
21. 14. A method of increasing the duration of comfortable contact lens wear time and / or reducing contact lens dryness in a symptomatic contact lens wearer by releasably attaching a predetermined amount of WS12 to a polymer lens body of a silicone hydrogel contact lens to form a contact lens as defined in any one of claims 1-13, and / or by providing a silicone hydrogel contact lens as defined in any one of claims 1-13 to a symptomatic contact lens wearer.
22. A method for manufacturing a contact lens according to any one of claims 1 to 13, comprising the steps of: (a) polymerizing a polymerizable composition in a contact lens mold to obtain said polymer lens body; (b) removing the polymer lens body from the contact lens mold; (c) extracting the polymeric lens body in an organic solvent containing about 5 ppm to about 50 ppm WS12; (d) hydrating the polymeric lens body in a hydration liquid to obtain a hydrogel contact lens; (e) sealing the hydrogel contact lens in a package with a packaging solution; (f) autoclaving the package; A method comprising:
23. 1. A kit comprising at least two WS12 emitting contact lenses, a first contact lens comprising a first polymer lens body and a first amount of WS12 releasably attached to the first polymer lens body; a second contact lens comprising a second polymer lens body and a second amount of WS12 releasably attached to the second polymer lens body; the second amount is greater than the first amount; The first polymer lens body and the second polymer lens body comprise the same material. A kit characterized by: