Ophthalmic topical composition containing dobesylic acid for treating diseases of the posterior part of the eye
Topical administration of dobesilic acid salts like CDO and etamsylate bypasses anterior eye barriers, achieving high bioavailability and effective treatment of posterior eye diseases.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2018-11-29
- Publication Date
- 2026-04-15
AI Technical Summary
Current drug delivery methods for treating posterior eye diseases are invasive or have low bioavailability due to the eye's anatomical barriers, making it difficult to effectively administer therapeutically effective amounts of active ingredients to the posterior region.
Pharmaceutically acceptable salts of dobesilic acid, such as CDO and etamsylate, can be administered topically to the ocular surface, bypassing anterior barriers and reaching the retina and optic nerve, offering high bioavailability and stability.
Topical administration of dobesilic acid and its salts provides effective treatment and prevention of posterior segment disorders with high bioavailability, overcoming the limitations of systemic and invasive methods.
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Abstract
Description
[Technical Field]
[0001] This application claims the benefits of European Patent Application No. 17382832.8, filed on 4 December 2017.
[0002] This invention relates to a field of medical approaches for treating diseases of the posterior chamber, including optic nerve pathologies, alongside retinopathy. The invention also relates to ophthalmic compositions. [Background technology]
[0003] The eye is a complex organ with various specialized cells and tissues regulated to maintain optimal visual function. This function is achieved by the presence of tight barriers in the anterior and posterior parts of the eye, which play a crucial role in selectively controlling the inward and / or outward transverse movement of fluids and solutes. Localized and systemic diseases can affect various areas of the eye, but the anatomy of the eye, as well as the complex physiological functions of the retina and optic nerve, make the development of effective drugs challenging.
[0004] The eye is broadly divided into two sections: the anterior (front) and posterior (back) parts of the eye. The anterior part of the eye includes the cornea, conjunctiva, anterior sclera (a part of the sclera that transitions forward to become the cornea at the limbus), iris, ciliary body, aqueous humor, and lens. The posterior part of the eye (also called the posterior segment) includes the anterior vitreous membrane and its posterior structures, the posterior sclera (a part of the sclera that transitions posteriorly into the optic nerve dural sheath), vitreous humor (including vitreous fluid and membranes), retina, macula, choroid, and optic nerve. The posterior part accounts for two-thirds of the eye. Diseases related to the posterior part of the eye are the main causes of visual impairment and irreversible blindness.
[0005] The least invasive route for drug administration to the eye is topical formulations (e.g., eye drops). Topical local administration is the primary mode of treatment for anterior diseases. However, the eye's barriers, designed to prevent pathogens from accessing it, also hinder drug delivery to the anterior region. Furthermore, blinking and tear film turnover, which wash away foreign matter and maintain a smooth, clear anterior surface, also limit drug residence time. Moreover, access to the posterior region is obstructed by the densely packed corneal epithelium and interstitium with varying lipophilicities (see Non-Patent Literature 1). In addition, the direction of aqueous humor flow in the eye (from the ciliary body to the anterior chamber angle) is contrary to the direction of drug delivery via topical routes.
[0006] Nevertheless, even if a drug can ultimately reach the posterior part of the eye, it may be removed from the vitreous cavity by diffusion into the anterior chamber or by the blood-retinal barrier. Both of these make it difficult to treat any posterior disease of the eye by topical administration to the surface of the eye, and the only topical modes routinely used to treat posterior disease of the eye are intravitreal injection (IVT) or periorbital injection. IVT injections circumvent all barriers and offer maximum bioavailability. However, IVT injections carry a small but significant risk of complications including blindness, retinal detachment, and endophthalmitis. Furthermore, these injections are a highly invasive treatment method for the early stages of the disease.
[0007] On the other hand, systemic formulations for treating posterior eye diseases need to overcome the blood-retinal barrier (BRB), which controls the movement of fluids and molecules between the ocular vascular bed and prevents the leakage of macromolecules (such as albumin) and harmful molecules into the retina. The outer and inner layers of the BRB severely limit the inflow of any drug into the retina and vitreous humor. This means that many formulations require high doses of drugs that can have side effects.
[0008] Major posterior ophthalmic disorders include pathological neovascularization and ectopic proliferation, atrophy and neuronal cell death, inflammation and infection, and detachment. Diseases and conditions commonly associated with these symptoms include macular degeneration, diabetic retinopathy, retinopathy of prematurity, retinitis pigmentosa, macular edema, glaucoma, posterior uveitis, endophthalmitis, ocular insults, and ocular manifestations of systemic diseases such as viral infections, arthritis, and rosacea.
[0009] Orally administered calcium dobesylate monohydrate (CDO) is known for the treatment of diabetic retinopathy (DR) and venous insufficiency. Doxium® (Laboratorios Dr. Esteve) is the brand name for hard capsules of calcium dobesylate monohydrate administered for nonproliferative diabetic retinopathy.
[0010] CDO is a monohydrate of the calcium salt of dobesylate, also known as 2,5-dihydroxybenzenesulfonic acid monohydrate. The CAS number for calcium dobesylate is 20123-80-2. CDO (CAS number, 117552-78-0) has the following formula (I). [ka]
[0011] CDO is a compound that can be readily oxidized to calcium 3,6-dioxocyclohexa-1,4-diene-1-sulfonate and is therefore widely known to be highly unstable. This physicochemical property of CDO, which causes rapid oxidation, is considered a disadvantage for topical administration. Furthermore, CDO is a highly hydrophilic molecule and a significant barrier to drug absorption in the eye. It is well known that the corneal epithelium is inherently lipidoid and provides considerable resistance to the penetration of locally administered hydrophilic drugs, and furthermore, the tight junctions of the conjunctival epithelium can further slow the passive movement of hydrophilic molecules (Non-Patent Literature 2). The cornea and conjunctival epithelium are physiological barriers that prevent the penetration of highly hydrophilic molecules such as dobesylic acid and its salts. In addition, the penetration of drugs into posterior ocular tissues is mainly governed by the blood-retinal barrier (BRB), which selectively permeates highly hydrophobic molecules and is another limiting step for highly soluble molecules such as CDO. Because the bioavailability of polar molecules is limited, several strategies for enhancing the absorption of ophthalmic drugs via transcleral retinal delivery have attracted attention in the development of hydrophobic prodrugs (Non-Patent Literature 3).
[0012] CDO-like compounds, particularly salts of diethylamine dobesylate 2,5-dihydroxybenzenesulfonic acid (etamsylate, Dicynone®, Sanofi-Aventis), are disclosed in Patent Document 1 as active ingredients for IVT injections for the treatment of submacular and subvitreous hemorrhage. IVT injections of Dicynone® are also disclosed in Patent Document 2 for the treatment of age-related macular degeneration. Both documents suggest using the ocular surface as an alternative to invasive IVT injections, but no data is presented. This is mainly because the likelihood of the drug reaching the posterior part of the eye is low due to the aforementioned barriers imposed by the anterior part of the eye. This becomes even more difficult if the drug is highly polar or hydrophilic and must pass through the diverse lipophilicity of the various tissues of this anterior part. Also, due to their solubility, soluble drugs are quickly washed away by tears. Furthermore, considering that the drugs are quickly oxidized, local IVT injection appears to be the best option.
[0013] For all these reasons, in addition to systemic administration of CDO (Doxium®) for the treatment of DR, other dobesylate compounds have been proposed today for IVT injections in the treatment of posterior ocular diseases, but there are no compositions of these compounds for topical ocular administration. (See, for example, Non-Patent Document 4; Non-Patent Document 5).
[0014] Salts of dobesilicic acid are used, whether administered orally or by injection, primarily for their vasoprotective and angioprotective effects, in the treatment of posterior ocular diseases. CDO is effective in at least the following mechanisms of action: (i) reducing retinal albumin leakage and capillary permeability and protecting the blood-retinal barrier (BRB); (ii) inhibiting platelet aggregation and blood viscosity; (iii) upregulating endothelium-dependent laxity by increasing nitric oxide synthesis; (iv) inhibiting apoptosis of vascular endothelial cells in blood vessels; (v) antioxidant and anti-radical activity; (vi) protection against reactive oxygen species; (vii) preventing the upregulation of ICAM-1, which modulates inflammation and vascular endothelial growth factor; (viii) anti-inflammatory effects; or (ix) neuroprotection. Etamisilate has also been described as a hemostatic agent that reduces intraocular pressure in rabbits and inhibits prostaglandin biosynthesis (reducing bleeding time).
[0015] These mechanisms of action are primarily based on the properties of dobesylic acid (salt, or ester of the acid or salt), which is a compound with high antioxidant properties, as it is initially oxidized as described above. The fact that diethylamine 2,5-dihydroxybenzenesulfonic acid dobesylate salt (etamsylate, Dicynone®, Sanofi-Aventis) is injected into the vitreous humor in the previously mentioned tests is due to its rapid oxidation. According to prior art, no other topical ophthalmic applications are recommended, mainly because of its high polarity, low expected absorption, and limited residence time once locally administered.
[0016] Those skilled in the art would in any case suggest dobesylate as an oral (systemic) drug in accordance with the teachings of Non-Patent Document 6. Nevertheless, Simo et al. also state that although dobesylate has been suggested as a systemic treatment to block the main pathways involved in the pathogenesis of diabetic retinopathy, it hardly reaches the retina and optic nerve in pharmacological concentrations.
[0017] Furthermore, topical administration of eye drops is only useful for the treatment of anterior eye diseases, and there is scientifically clear approval that the treatment of posterior eye diseases is an important treatment target with unmet medical needs (Non-Patent Document 7).
Prior Art Documents
Patent Documents
[0018]
Patent Document 1
Patent Document 2
Non-Patent Documents
[0019]
Non-Patent Document 1
Non-Patent Document 2
Non-Patent Document 3
Non-Patent Document 4
[0020] Therefore, there remains a need for non-invasive alternative administration routes for topical ophthalmic compositions for the prophylactic and therapeutic treatment of posterior ophthalmic disorders that can deliver therapeutically effective amounts of active ingredients to the posterior region. Methods for the prophylactic and therapeutic treatment of posterior ophthalmic disorders are also needed. [Means for solving the problem]
[0021] The inventors discovered that pharmaceutically acceptable salts of dobesilicic acid, particularly CDO and etamsylate, can be administered topically to the ocular surface and can rapidly pass through all anterior barriers of the eye to reach the retina and optic nerve (fundus). Therefore, upon topical administration, they pass through the cornea, conjunctiva, and sclera, but also overcome the barriers of the iris and lens. This finding is surprising and unexpected, as highly hydrophilic molecules like CDO have poor corneal permeability and hardly reach the posterior chamber of the eye. Furthermore, high water solubility, accompanied by rapid dissolution or dilution of the active ingredient in tears, as well as rapid rinsing and clearance, could reduce drug absorption and bioavailability after topical administration. Surprisingly, despite their antioxidant activity and high reactivity, dobesilates are not degraded in their diffusion pathway from the ocular surface to internal ocular tissues such as the retina and / or optic nerve. Moreover, CDO remains in several posterior structures of the eye for a sufficient period to exert its effects.
[0022] Therefore, dobesylic acid can become unstable through oxidation processes, is highly polar, and soluble in polar solvents. However, dobesylic acid and / or its salts such as CDO and etamsylate, along with esters of its acid or salts, reach and remain in the posterior part of the eye, acting as vascular and neuroprotective agents, particularly through its anti-angiogenic properties.
[0023] These findings are highly advantageous because it has become clear that administering CDO to the ocular surface enables an effective administration route for treating posterior segment disorders, which are important therapeutic targets with unmet medical needs.
[0024] Furthermore, as shown in the examples, topically applied CDOs exhibit high bioavailability in the posterior segment, higher than when administered orally as a single dose. This is quite surprising, as it is widely accepted that, due to several barriers to reach the posterior segment, the bioavailability of drugs in the vitreous fluid and retina after topical ophthalmic administration is very low, resulting in the conclusion that "topical eye drops do not effectively deliver drugs to the retina and choroid" (Ranta et al., "Barrier analysis of periocular drug delivery to the posterior segment", Journal of Controlled Release-2010, vol.no.148, pp.:42-48). Alternatively, as shown by Awwad et al. "Principles of Pharmacology in the Eye", British Journal of Pharmacology - 2017, vol. no. 174 Issue 23, pp.: 4205-4223, drugs applied by conventional topical methods are diluted by a factor between 250,000 and 1,000,000 before reaching the vitreous humor. Therefore, if a particular drug can be administered topically and reach the vitreous fluid, the amount is pharmacologically inefficient.
[0025] Furthermore, it is remarkable that low concentrations of dobesylate (e.g., 1% wt / volume CDO or etamsylate) administered topically to the surface of the eye (cornea, conjunctiva, anterior sclera, iris, and ciliary body) deliver drug doses to the retina and optic nerve for up to 6 hours after topical administration. The assayed concentrations (1% and 10% wt / volume) are lower than those proposed for intravitreal injection of etamsylate disclosed in European Patent Application Publication No. 2875811 and European Patent No. 2777699 (12.5% diethylamine 2,5-dihydroxybenzenesulfonate).
[0026] Finally, the data also demonstrated that topically administered CDO (100 mg / ml) was well tolerable.
[0027] Accordingly, a first aspect of the present invention is dobesilic acid and / or a pharmaceutically acceptable salt thereof, or an ester thereof, for use in the treatment and / or prevention of diseases of the posterior part of the eye, the treatment comprising administering a topical dose of dobesilic acid and / or a pharmaceutically acceptable salt thereof, or an ester thereof, to the anterior part of the eye at a dose of 0.01 mg / day to 400 mg / day.
[0028] The effects of dobesylic acid and / or its salts, or their esters, are based, among other properties, on their roles as vasoprotective, antioxidant, anti-apoptotic, anti-inflammatory, neuroprotective, and anti-angiogenic agents. Therefore, they are intended for use in the specific treatment and / or prevention of any posterior ocular disease related to the activities mentioned.
[0029] To the best of the inventor's knowledge, this is the first time that dobesylic acid or its derivatives (both salts or esters, acids or salts) have been proposed for the treatment or prevention of posterior ocular diseases by topical administration to the anterior surface of the eye.
[0030] This new treatment approach addresses the problems associated with systemic administration side effects or the invasive issues associated with currently administered IVT injections.
[0031] Furthermore, the therapeutically effective dose range is 0.01 mg / day to 400 mg / day, assuming a non-toxic dose far below the dose considered effective. Therefore, as mentioned above, the bioavailability of the drug in the vitreous fluid and retina after ophthalmic topical administration is very low, and effective doses between different administration routes cannot be compared. However, if it is desired to deliver the drug to the posterior part of the eye at the same amount / day as the drug injected intravitreously, any topical composition must contain at least 250,000 times the amount / day compared to the composition for intravitreal injection. This could make the topical ophthalmic drug composition highly concentrated and dangerous (i.e., toxic) to other structures of the eye (e.g., anterior structures).
[0032] This first embodiment may also be formulated as the use of dobesilic acid and / or a pharmaceutically acceptable salt, or an ester of either the salt or the acid, particularly calcium dobesilate or calcium etamsylate (diethylamine 2,5-dihydroxybenzenesulfonate), for the manufacture of a medicament for the treatment and / or prevention of diseases of the posterior part of the eye, wherein the treatment comprises the administration of a topical dose of dobesilic acid and / or a pharmaceutically acceptable salt, or an ester of either thereof, to the ocular surface at a dose of 0.01 mg / day to 400 mg / day. The present invention also relates to a method for treating and / or preventing a disease of the posterior part of the eye, comprising topically administering a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt or ester thereof to the ocular surface (cornea, conjunctiva, anterior sclera, iris and ciliary body) together with a pharmaceutically acceptable excipient and / or carrier to a subject requiring such treatment, including a human, wherein the treatment comprises the administration of a topical dose of dobesilicic acid and / or a pharmaceutically acceptable salt or ester thereof in a dose of 0.01 mg / day to 400 mg / day.
[0033] The topical treatment and / or prevention according to the present invention means that it is administered to the ocular surface (i.e., the cornea, anterior sclera, and other anterior tissues such as the iris and ciliary body or the conjunctival fornix). This is due to the fact that when dobesylic acid and / or salts, or esters of both, are applied topically to the eye, they can reach the retina and optic nerve, as well as other posterior tissues of the eye. This applies to any embodiment and combination of embodiments disclosed in the present invention, and also to any composition comprising the dobesylic acid and / or pharmaceutically acceptable salts, or esters thereof.
[0034] A second aspect of the present invention is a topical ophthalmic pharmaceutical composition for use in the treatment and / or prevention of a disease of the posterior eye, comprising a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of said acid or salt, together with one or more pharmaceutically acceptable topical excipients and / or carriers, wherein the treatment comprises the administration of a topical dose of dobesilicic acid and / or a pharmaceutically acceptable salt or ester thereof in a dose of 0.01 mg / day to 400 mg / day.
[0035] Certain topical ophthalmic pharmaceutical compositions containing dobesylic acid and / or pharmaceutically acceptable salts thereof (such as CDO or etamsylate) have been developed in such a manner that, upon administration to the ocular surface, the acid or pharmaceutically acceptable salt, or their esters, can reach the retina and optic nerve in effective amounts, as well as other structures at the back of the eye (e.g., choroid, posterior sclera, vitreous fluid, etc.).
[0036] Accordingly, a third aspect of the present invention is a topical ophthalmic pharmaceutical composition comprising a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, together with one or more pharmaceutically acceptable topical ophthalmic excipients and / or carriers, the composition being formulated to release dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or salt, for a period of 2 to 30 days.
[0037] The sustained release of the active ingredients in these topical ophthalmic pharmaceutical compositions offers the advantage of reducing the number of administrations while obtaining an effective amount in the target tissue over a desired period of time. [Brief explanation of the drawing]
[0038] [Figure 1] This bar graph shows the concentration of oxidized glutathione (GSSG) in the homogenized retinas of non-diabetic rats (Ctrl), streptozotocin-induced diabetic rats (STZ), and streptozotocin-induced diabetic rats treated with topical eye drops of 10 μl / eye of CDO 10 mg / ml. [Figure 2] This bar graph shows the relative mRNA levels of the inflammatory cytokine TNF-α in the retinas of non-diabetic rats (Ctrl), streptozotocin-induced diabetic rats (STZ), and streptozotocin-induced diabetic rats treated with 10 μl / eye topical eye drops of CDO 10 mg / ml. The increase ratio vs. control indicates the increase relative to the control. [Figure 3]Photograph of the HET-CAM eye irritation assay. Evaluation of lysis, bleeding, or coagulation processes in the oocyte chalazolinum (CAM) after application of NaCl 0.9% (negative control), NaOH 0.1% (positive control), CDO (100 mg / ml), etamsylate (100 mg / ml), and potassium dobesylate (100 mg / ml). [Modes for carrying out the invention]
[0039] All terms used herein are to be understood in the ordinary sense known in the art unless otherwise specified. Other, more specific definitions of certain terms used herein are set forth below and are intended to apply uniformly throughout this specification and the claims unless the definitions set forth clearly provide a broader definition.
[0040] "Pathologies of the retina and / or choroid" are understood as any disease or disorder affecting the retina and / or choroid. This definition includes diseases and disorders with a variety of consequences and symptoms. Examples, in an unrestricted list, include retinal vascular disorders, maculopathy, hereditary fundus dystrophy, idiopathic chorioretinopathy, central serous chorioroidopathy, systemic choroidal dystrophy, and combinations thereof. In specific cases of choroidal pathologies, it refers to diseases affecting the choroid, which is the vascular layer of the eye, containing connective tissue, and is located between the retina and the sclera. Specific diseases include certain inflammatory chorioretinitis, or choroiditis if only the choroid is inflamed; posterior uveitis, which is inflammation of the uvea, the pigmented layer between the inner retina and the outer fibrous layer composed of the sclera and cornea; and common choroidal dystrophy, including choroidal anemia and choroidal atrophy.
[0041] Specific examples of "vascular disorders" of the retina (pathologies involving blood vessels that directly or indirectly perfuse the retina) include the widely known diabetic retinopathy, diabetic papillomatosis, non-diabetic retinopathy (including macular edema caused primarily by uveitis or retinal vascular disease), ischemic syndrome of the eye, hypertensive retinopathy, thalassemia retinopathy, Coats syndrome, Alles syndrome, radiation retinopathy, photoretinopathy, Percher retinopathy, polypoidal choroidal vasculopathy (PCV), retinal microaneurysms, retinal microaneurysms, leukemic retinopathy, retinal ischemia (especially due to central retinal vein occlusion, retinal vein branch occlusion, retinal artery branch occlusion, and retinopathy of prematurity), and chronic retinal disorders (such as acute retinal necrosis syndrome and birdshot retinopathy). Among these, "diabetic retinopathy (DR)" is the leading cause of blindness in working-age adults. Diabetic retinopathy (DR) is seen in up to 90% of patients with long-term (more than 10 years) insulin-dependent diabetes mellitus. In the early stages, hyperglycemic levels common to people with diabetes lead to increased levels of glycosylated proteins and growth factors in the eye. This condition, known as the “pre-diabetic retinopathy stage,” can lead to retinopathy if left untreated prophylactically. Non-proliferative or early-stage diabetic retinopathy, also known as “background diabetic retinopathy,” is characterized by thickening of the basement membrane, loss of pericytes in the retina, microvascular abnormalities, intraretinal microaneurysms, retinal hemorrhages (known as “punctate” or “cotton-like exudates”), retinal edema, capillary occlusion, and soft and hard exudates. Late or proliferative diabetic retinopathy is characterized by neovascularization and fibrovascular proliferation, i.e., scarring of glial and fibrous elements from the retina or optic nerve into the retinal surface or vitreous cavity. In the sense of the present invention, DR includes non-proliferative or early-stage diabetic retinopathy and late or proliferative diabetic retinopathy. Furthermore, the disorder known as diabetic macular edema or diabetic maculopathy, as well as diabetic retinopathy of the fundus, are also included in the meaning of diabetic retinopathy.
[0042] Specific examples of "maculopathy," which is a pathological condition of the macula, the central region of the retina associated with highly sensitive and accurate vision, include, among others, age-related macular degeneration (ARMD), hemorrhagic ARMD, retinal hemangiomatous proliferation, polypoid choroidal vasculopathy, honeycomb choroidal degeneration (malattia leventinese), full-thickness macular hole, epiretinal membrane, macular telangiectasia, cellophane maculopathy or macular packer, myopia maculopathy, exudative maculopathy after venous thrombosis of the retina, acute macular optic neuroretinopathy, macular cystoid, macular edema, retinal angioid streaks, choroidal folds, and hypotension maculopathy. Age-related macular degeneration (AMD or ARMD), also known as macular degeneration, is a medical condition that can cause blurring or loss of vision in the central field of vision. In many cases, there are no symptoms in the early stages. However, over time, some people experience a gradual deterioration of vision that may affect one or both eyes. While complete blindness does not occur, loss of central vision can make it difficult to recognize faces, drive, read, or perform other daily activities. There is an atrophic form (also called dry AMD), in which early signs include the accumulation of a substance called drusen between the retinal pleoplasm (RPE) and Bruch's membrane, impairing the diffusion of oxygen from the choroidal circulation. Advanced disease is often characterized by changes in Bruch's membrane that hinder the proliferation and reattachment of RPE, along with RPE and photoreceptor cell death (geographic atrophy) in localized areas of the peripheral retina. On the other hand, there is the exudative form (wet AMD), which is usually characterized by loss of central vision in both eyes due to damage to retinal pigment epithelial (RPE) cells and infiltration of the extravascular retina by immature blood vessels from choroidal capillaries. Infiltration involves disruption of the RPE cell layer that constitutes the blood-retinal barrier. If the infiltration involves the macula, the patient will have severe visual impairment. The natural course of neovascularization in ARMD is the development of discoid scarring on the macula and irreversible blindness. When AMD is referred to in this invention, it encompasses both dry and wet forms of AMD.
[0043] "Hereditary retinal dystrophy" is associated with retinitis pigmentosa; atypical retinitis pigmentosa, including but not limited to Usher syndrome, punctate retinitis, and Leber congenital amaurosis; cone dystrophy; rod dystrophy; Vietti crystalline corneal-retinal dystrophy; juvenile macular dystrophy; all types of macular dystrophy; Stargardt disease or macular retina; and hereditary disorders, including Usher syndrome.
[0044] "Pathologies of the vitreous fluid" are understood as disorders or diseases of the vitreous structure, including the vitreous humor (the gel-filled space between the lens and retina in the eyeball of humans and other vertebrates) and the vitreous membrane. These disorders include: blood, cells, or other byproducts of inflammation entering the vitreous humor; myodesopsia; astrocyte hyalopathy, submacular and vitreous hemorrhage; vitreous detachment, which occurs when the vitreous humor separates from the retina; and hereditary vitreoretinopathy, including but not limited to retinal schizophrenia, Stickler syndrome, or Wagner syndrome.
[0045] "Patradiopathologies of the optic nerve" refer to pathologies that affect the optic nerve due to a variety of causes, but which lead to dysfunction of the mechanisms that enable the transmission of visual information from the retina to the brain. These pathologies include optic atrophy; optic neuritis (inflammation of the optic nerve due to demyelination, infectious or non-infectious etiologies); neuroretinitis; and ischemic optic neuropathy (sudden loss of blood supply and nutrients to the optic disc); hereditary optic neuropathy (e.g., Leber hereditary optic neuropathy); toxic amblyopia or nutritional optic neuropathy, ocular hypertension, primary glaucoma (including primary open-angle glaucoma and primary closed-angle glaucoma); secondary glaucoma, including but not limited to neovascular glaucoma, inflammatory glaucoma or traumatic glaucoma; iris-corneal endothelial syndrome associated with glaucoma, optic head drusen or optic disc drusen; and papilledema; as well as trauma. This category includes lesions caused by other eye diseases that ultimately affect the optic nerve, such as glaucoma (increased intraocular pressure that reduces vision due to pressure on the nerve). Glaucoma is, next, a group of diseases characterized by a specific pattern of blindness, including optic nerve damage and visual field loss. Elevated intraocular pressure is a risk factor and is part, though not all, of the causes of optic nerve atrophy and retinal cell death in glaucomatous eyes. Glaucoma-related cell death can occur in the retina even without elevated intraocular pressure (IOP). Optic nerve damage occurs when the separation between the optic nerve axon bundle and the retinal nerve fiber layer degenerates.
[0046] "Pathophysiology of the posterior sclera" refers to scleritis, an inflammation of the sclera in the posterior segment of the eye. Posterior scleritis is defined as the involvement of the sclera behind the insertion of the rectus muscle. Although rare, posterior scleritis may manifest as serous retinal detachment, choroidal folds, or both. In many cases, there is pain with eye movement, often accompanied by blindness.
[0047] In the sense of the present invention, “vascular disease of the posterior part of the eye” includes any disease or alteration of the normal function of any of the tissues and / or structures constituting the posterior part of the eye, such disease or alteration is at least in part caused by a disorder of the vascular system that supplies blood to the structures of the eye. Therefore, this term includes diseases or alterations resulting from many different etiologies (genetic predisposition, trauma, other metabolic diseases such as diabetes, etc.), which commonly have dysfunction of one or more of the blood vessels that perfuse the eye (retinal albumin leakage and capillary permeability, increased platelet aggregation and blood viscosity, endothelium-dependent relaxation disorder, etc.); impaired antioxidant and anti-radical activity of cells; presence of reactive oxygen species; inflammation and nerve damage.
[0048] As used herein, the term "therapeutic dose" refers to the amount of a compound administered that is sufficient to prevent or, to some extent, alleviate the onset of one or more symptoms of the disease being treated. The specific dose of a compound administered in accordance with the present invention will, of course, be determined by the specific circumstances surrounding the case, including the compound administered, the route of administration, the specific condition being treated, and similar considerations.
[0049] As used herein, the term “pharmaceutically acceptable” refers to compounds, materials, compositions, and / or dosage forms that, within the bounds of appropriate medical and veterinary judgment, are suitable for use in contact with the tissues of a subject (e.g., human or any other animal) at a reasonable benefit-to-risk ratio, without significant toxicity, irritation, allergic reactions, or other problems or complications. Each carrier, excipient, etc., must also be “acceptable” in the sense that it is compatible with the other components of the pharmaceutical composition. Furthermore, it must be suitable for use in contact with human and animal tissues or organs at a reasonable benefit-to-risk ratio, without excessive toxicity, irritation, allergic reactions, immunogenicity, or other problems or complications. Suitable carriers, excipients, etc., are found in standard pharmaceutical textbooks and include, by example, preservatives, pH adjusters, isotonic agents for adjusting osmotic pressure, chelating agents, penetration enhancers, bioadhesive polymers, stabilizers, thickeners, and antioxidants.
[0050] The terms “pharmaceutically acceptable excipients and / or carriers” or “pharmaceutically acceptable topical ophthalmic excipients and / or carriers” (as used without distinction) refer to excipients or carriers suitable for use in pharmaceutical technology for preparing compositions for topical ophthalmic use in medical applications, i.e., free from significant toxicity, irritation, allergic reactions, or other problems or complications, and commensurate with a reasonable benefit / risk ratio, and applicable to the ocular surface.
[0051] The term "weight / volume percent" refers, for example, to the weight in grams of the compound per 100 ml of the composition, between the entire composition and the dobesylic acid and / or pharmaceutically acceptable salts or esters thereof contained in the composition. It may be expressed as % weight / volume or % only, as indicated.
[0052] The term "pH" is defined as a value given by a suitably and appropriately standardized potentiometric sensor and measuring system. The measuring system is traditionally called a "pH meter." The pH of a composition is measured by official, traditional methods.
[0053] As described above, a first aspect of the present invention relates to dobesilic acid and / or pharmaceutically acceptable salts thereof, or esters of said acid or salt, for use in the treatment and / or prevention of diseases of the posterior part of the eye, wherein the treatment includes the administration of a topical dose of dobesilic acid and / or a pharmaceutically acceptable salt or ester thereof to the ocular surface at a dose of 0.01 mg / day to 400 mg / day.
[0054] In certain embodiments, pharmaceutically acceptable salts of dobesilicic acid are selected from alkali metal salts of dobesilicic acid, alkaline earth metal salts of dobesilicic acid, salts of dobesilicic acid with amines of formula (II), and combinations thereof, where R 1 , R 2 and R 3 This is independently selected from H and / or -(C1~C8)-alkyl radicals. [ka]
[0055] Throughout the specification and claims, the term "-(C1-C8) alkyl radical" shall be interpreted as either a linear or branched chain. This includes any radicals of methyl, ethyl, n-propyl, iso-propyl, cyclopropyl, n-butyl, sec-butyl (or 1-methylpropyl), isobutyl (or 2-methylpropyl), tert-butyl (or 1,1-dimethylethyl), n-pentyl, tert-pentyl (or 2-methylbutan-2-yl), neopentyl (or 2,2-dimethylpropyl), isopentyl (or 3-methylbutyl), sec-pentyl (or pentan-2-yl), 3-pentyl (or pental-3-yl), n-hexyl, isohexyl (or 4-methylpentyl), tert-hexyl, sec-hexyl, n-heptyl, tert-heptyl, isoheptyl, sec-heptyl, n-octyl, tert-octyl, sec-octyl, and isooctyl.
[0056] In certain embodiments, the compounds used for ophthalmic treatment are pharmaceutically acceptable salts of dobesilicic acid, selected from alkali metal salts of dobesilicic acid, alkaline earth metal salts of dobesilicic acid, and combinations thereof. More specifically, alkaline earth metal salts of dobesilicic acid. More specifically, calcium salts of dobesilicic acid, also called calcium dobesilate. More specifically, CDO (calcium dobesilate monohydrate). Thus, in this latter particular embodiment, the present invention relates to calcium dobesilate or its hydrate (such as CDO monohydrate) for use in the treatment and / or prevention of diseases of the posterior part of the eye. Other pharmaceutically acceptable salts of dobesilicic acid include magnesium salts, potassium salts, and sodium salts.
[0057] Salts of dobesylic acid may exist in crystalline form as either free solvated compounds or solvated products (e.g., hydrates), and both forms are intended to be within the scope of the present invention. Methods of solvation are generally known in the art. As described above, certain solvated products include hydrated salts, more specifically monohydrate and dihydrate salts of dobesylic acid, as well as esters of said salts.
[0058] In another specific embodiment of the first aspect of the present invention, a pharmaceutically acceptable salt of dobesylic acid is a salt of dobesylic acid with an amine of formula (II), where R 1 and R 2 They are equal to ethyl radicals, and R 3 H is present. This salt of dobesylic acid is also known as etamsylate or diethylamine 2,5-dihydroxybenzenesulfonate. In another specific embodiment, the etamsylate is in an anhydrous form. In another specific embodiment, the etamsylate is in a hydrate form, more specifically selected from etamsylate monohydrate and etamsylate dihydrate.
[0059] "Esters of dobesilic acid or dobesilate salts" refer to pharmaceutically acceptable esters formed from pharmaceutically acceptable, non-toxic organic acids. There are no restrictions on the esters, but if used for therapeutic purposes, they must be pharmaceutically acceptable. Esters of dobesilic acid can be prepared from pharmaceutically acceptable, non-toxic organic acids. Such acids include, in particular, acetic acid, butyric acid, propionic acid, citric acid, fumaric acid, gluconic acid, glutamic acid, lactic acid, maleic acid, malic acid, mandelic acid, succinic acid, and tartaric acid. Examples of ester groups include acetyl, ethanolyl, butyryl, propionyl, acetoxymethyl, methoxymethyl, succinyl, etc., as well as ester groups derived from the coupling of a hydroxyl group at either the C-2 or C-5 carbon atom of the 2,5-dihydroxybenzenesulfonic acid compound of the present invention with the above-mentioned organic acids. In particular, examples of dobesylic acid esters are 2,5-diacetylbenzenesulfonic acid and / or salts of 2,5-diacetylbenzenesulfonic acid. Other specific examples of esters are pharmaceutically acceptable esters formed by the coupling of a hydroxyl group on either the C-2 or C-5 carbon atom of 2,5-dihydroxybenzenesulfonic acid with a pharmaceutically acceptable non-toxic organic acid of the general formula COOH-(C1-C3)alkyl, where (C1-C3)alkyl is selected from methyl, ethyl, n-propyl, isopropyl, and cyclopropyl radicals.
[0060] In certain embodiments, dobesylic acid and / or pharmaceutically acceptable salts thereof, or esters thereof, optionally in combination with any of the embodiments or aspects described above or below, are intended for topical use in the treatment of posterior segment diseases selected from retinal and / or choroidal pathologies, vitreous fluid lesions, posterior scleral pathologies, optic nerve pathologies, and combinations thereof.
[0061] As described above, the use of dobesylic acid and / or its pharmaceutically acceptable salts, or esters thereof, in pathological conditions of the retina, vitreous fluid, choroid, and optic nerve is based on the fact that these compounds possess, among other properties, vasoprotective, antioxidant, anti-apoptotic, anti-inflammatory, neuroprotective, hemostatic, and anti-angiogenic properties. Therefore, they are intended for use in disorders affecting these structures that have been damaged and whose function has been impaired due to vascular problems (e.g., vasoconstriction, vascular occlusion, loss of endothelium-dependent relaxation, high capillary permeability, etc.) or damage associated with stress oxidative states, inflammatory processes, or apoptosis in the tissues mentioned above.
[0062] In a particular embodiment of the first aspect of the present invention, and in combination with any of the embodiments described above or below, the disease of the posterior part of the eye is a pathology of the retina and / or choroid selected from retinal vascular disorders, macular disorders, hereditary fundus dystrophy, idiopathic chorioretinopathy, central serous retinopathy, systemic choroidal dystrophy, and combinations thereof.
[0063] In particular embodiments, retinal vascular disorders are selected from diabetic retinopathy, diabetic papillomatosis, non-diabetic retinopathy, ocular ischemic syndrome, hypertensive retinopathy, thalassemia retinopathy, Coats syndrome, Eels syndrome, radiation retinopathy, solar retinopathy, percher retinopathy, polypoid choroidal vasculopathy (PCV), retinal microaneurysms, retinal microaneurysms, leukemic retinopathy, retinal ischemia, chronic retinal disorders, and combinations thereof. More specifically, the invention is intended for use in diabetic retinopathy, including proliferative diabetic retinopathy and non-proliferative diabetic retinopathy, particularly in both diabetic retinopathy accompanied by diabetic macular edema and / or retinal diabetic retinopathy. More specifically, the invention is intended for use in the early stages of diabetic retinopathy, when neurodegeneration has begun and functional abnormalities such as loss of both color discrimination and contrast sensitivity occur, even before microvascular lesions are detected under ophthalmic examination.
[0064] In another specific embodiment of the first aspect of the present invention, and in combination with any of the embodiments described above or below, the retinal and / choroidal pathologies are maculopathy selected from age-related macular degeneration (ARMD), including dry and wet ARMD; hemorrhagic ARMD; retinal hemangiomatous proliferation; polypoid choroidal vasculopathy; honeycomb choroidal degeneration; full-thickness macular hole; retinal epiretinal membrane; macular telangiectasia; cellophane maculopathy or macular packer; myopic maculopathy; exudative maculopathy after venous thrombosis of the retina; acute macular optic neuroretinopathy; macular cystic macular edema; retinal vascular striae; choroidal folds; hypotension maculopathy; and combinations thereof.
[0065] In another embodiment of the first aspect of the present invention, also in combination with the optional embodiments described above or below, the pathology of the retina and / or choroid is a hereditary fundus dystrophy selected from the group consisting of: retinitis pigmentosa; atypical retinitis pigmentosa including, but not limited to, Usher syndrome, leucocarpal retinitis, and Leber congenital amaurosis; cone dystrophy; rod dystrophy; Vietti crystalline corneal-retinal dystrophy; juvenile macular dystrophy; any type of macular dystrophy; Stargardt disease or macular retina; Usher syndrome; and combinations thereof.
[0066] In another specific embodiment of the first aspect of the present invention, dobesylic acid and / or pharmaceutically acceptable salts thereof, or esters thereof, optionally in combination with any of the embodiments or aspects described above or below, are intended for use by topical administration of these compounds to the ocular surface for the treatment of vitreous fluid conditions selected from the group consisting of submacular and vitreous hemorrhage, astrohyalopathy, vitreous detachment, eye floaters or myodesopsia, retinoschisis, Stickler syndrome or Wagner syndrome, and all combinations thereof.
[0067] Another embodiment of the first aspect of the present invention is dobesylic acid and / or pharmaceutically acceptable salts or esters thereof for use in diseases of the posterior eye, which are optic nerve pathologies selected from the group consisting of optic nerve atrophy; optic neuritis, including demyelinating, infectious, or non-infectious types; neuroretinitis; ischemic neuropathy; hereditary optic neuropathy (e.g., Leber hereditary optic neuropathy); toxic amblyopia or nutritional optic neuropathy; ocular hypertension; primary glaucoma; secondary glaucoma, including but not limited to neovascular glaucoma, inflammatory glaucoma, or traumatic glaucoma; iris-corneal endothelial syndrome associated with glaucoma; optic disc drusen or optic disc drusen; optic disc edema (or papilledema), and combinations thereof.
[0068] In more specific embodiments, the disease of the posterior segment of the eye is selected from pathologies of the retina and / or choroid, pathologies of the optic nerve, the sclera, and combinations thereof, and when administered topically to the ocular surface, dobesylic acid and / or its salts are detected in these tissues of the posterior segment of the eye.
[0069] As shown in the following examples, CDO and etamsylates administered topically to the ocular surface of rabbits or rats were able to reach the posterior sclera, vitreous humor, choroid, retina, and optic nerve. Accordingly, certain embodiments of the present invention relate to calcium dobesylate or calcium etamsylate for use in the treatment and / or prevention of diseases of the posterior part of the eye selected from choroidal pathologies, vitreous humor pathologies, retinal pathologies, optic nerve pathologies, and combinations thereof, wherein the treatment comprises the administration of a topical dose of 0.01 mg / ~400 mg / day of dobesylate and / or pharmaceutically acceptable salts, or esters thereof, to the ocular surface.
[0070] Alongside CDO, other pharmaceutically acceptable salts or esters of dobesylate surprisingly penetrate the posterior ophthalmosin, remain there for extended periods, and exert their effects. As described in the previous paragraph, calcium dobesylate or other pharmaceutically acceptable salts or esters of dobesylate promote the prevention and / or treatment of all these diseases, particularly due to their role as vascular protectants: protecting the blood-retinal barrier (BRB) by reducing retinal albumin leakage and capillary permeability; upregulating endothelial-dependent relaxation due to increased nitric oxide synthesis; inhibiting apoptosis of vascular endothelial cells in blood vessels; protecting from reactive oxygen species (ROS) through antioxidant and anti-radical activity; anti-inflammatory activity; hemostasis; or inhibiting the upregulation of ICAM-1 and vascular endothelial growth factor. Furthermore, all these biochemical effects translate into neuroprotection of neurons in the retina and optic nerve.
[0071] In another specific embodiment of the first aspect of the present invention, dobesylic acid and / or pharmaceutically acceptable salts, or esters thereof, are intended for use in diseases of the posterior part of the eye in mammals, more particularly in humans.
[0072] In yet another specific embodiment of the first embodiment, the topical dose of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either thereof, is 0.01 mg / day to 300 mg / day, more specifically 0.1 mg / day to 300 mg / day. More specifically, 0.1 mg / day to 100 mg / day. In another specific embodiment, 0.01 mg / day to 50 mg / day. In yet another specific embodiment, 0.01 mg / day to 25 mg / day. In other embodiments, 0.01 mg / day to 20 mg / day. More specifically, 0.01 mg / day to 18 mg / day, more specifically 0.1 mg / day to 18 mg / day. In yet another specific embodiment, 0.01 mg / day to 13 mg / day, more specifically 0.1 mg / day to 13 mg / day.
[0073] Dobesilic acid or any pharmaceutically acceptable salt, as well as any ester of any acid or salt, can be the active ingredient in different types of topical ophthalmic pharmaceutical compositions. Accordingly, the present invention also relates, in a second embodiment, to a topical ophthalmic pharmaceutical composition for use in the treatment and / or prevention of diseases of the posterior part of the eye, comprising a therapeutically effective amount of dobesilic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or salt, together with one or more pharmaceutically acceptable topical excipients and / or carriers, wherein the treatment comprises the administration of a topical dose of dobesilic acid and / or a pharmaceutically acceptable salt thereof, or an ester of either thereof, in a topical dose of 0.01 mg / day to 400 mg / day.
[0074] In certain embodiments of the topical ophthalmic pharmaceutical composition for the above-described use, the composition contains 0.02% to 20% by weight / volume of dobesilicic acid and / or a pharmaceutically acceptable salt of dobesilicic acid, or an ester of the acid or salt, in weight / volume percentage. More specifically, the weight / volume percentage is 0.05% to 15% by weight / volume. More specifically, it is selected from 0.05%, 0.1%, 0.5%, 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, and 15% by weight / volume. More specifically, it is 0.05% to 10% by weight / volume. In another particular embodiment, the percentage of dobesilicic acid and / or a pharmaceutically acceptable salt of dobesilicic acid, or an ester of the acid or salt, is 11% to 20% by weight / volume.
[0075] In certain embodiments, the compositions for use described above comprise pharmaceutically acceptable salts of dobesilicic acid, more particularly alkali metal or alkaline earth metal salts of dobesilicic acid. More specifically, the compositions comprise calcium dobesilate, more specifically CDO (calcium dobesilate monohydrate). Other pharmaceutically acceptable salts of dobesilicic acid include magnesium, potassium, and sodium salts.
[0076] In another specific embodiment of a second aspect of the present invention, a pharmaceutically acceptable salt of dobesylic acid is a salt of dobesylic acid with an amine of formula (II), where R 1 and R2 are equal and are ethyl radicals, and R 3 is H. This salt of dobesilate is also known as etamsylate or diethylamine 2,5-dihydroxybenzenesulfonate. Hydrated salts of etamsylate are also included.
[0077] In another specific embodiment, the topical ophthalmic pharmaceutical composition for the above use is formulated to provide a dosage of 0.01 mg / day to 400 mg / day by topical administration to the ocular surface. The ability to deliver the active ingredient can be adjusted by the excipients and / or carriers associated therewith. In order to prepare a pharmaceutical composition that can be topically administered to the eye for the intended use of the present invention, the excipients must be selected from those that do not decompose the active ingredient. Suitable carriers, excipients, etc. can be found in standard pharmaceutical textbooks and include, by way of example, preservatives, pH adjusters, isotonic agents that adjust osmotic pressure, chelating agents, penetration enhancers, surfactants, bioadhesive polymers, stabilizers, thickeners, and antioxidants.
[0078] In yet another specific embodiment, the topical ophthalmic pharmaceutical composition for the use disclosed above contains an antioxidant compound.
[0079] The antioxidant compound is selected from the group consisting of butylated hydroxyanisole, butylated hydroxytoluene, tert-butylhydroquinone, tertiary butylhydroquinone, dilauryl thiodipropionate, ethoxyquin, propyl gallate, 2,4,5-trihydroxybutyrophenone, thiodipropionic acid, alpha-tocopherol, ascorbic acid, sodium ascorbate, potassium sulfite, potassium bisulfite, potassium metabisulfite, potassium bisulfite, potassium sorbate, sodium benzoate, sodium iodide, sodium disulfite, sodium bisulfite, sodium bisulfite, calcium sulfite, calcium bisulfite, sodium succinate hexahydrate, sodium sulfite, sodium tartrate, sodium thiosulfate, sorbic acid, trisodium citrate dihydrate, and mixtures thereof.
[0080] Topical ophthalmic dosage forms of pharmaceutical compositions for use according to the present invention are suitable for stabilizing the active ingredient and enabling topical application to the surface of the eye (cornea, conjunctiva, anterior sclera, iris, or ciliary body). In certain embodiments, compositions for use in the treatment of posterior ocular diseases by topical administration of dobesylic acid and / or its salts (or esters thereof) are in forms selected from the group consisting of solutions, micellar solutions, gels, lotions, ointments, liposomes, suspensions, emulsions, nanoemulsions, microemulsions, and creams.
[0081] To enable patients to easily administer such compositions and to avoid, as much as possible, interference with vision when the compositions are applied, the compositions for use according to the present invention are, in certain embodiments, in the form of eye drops. More specifically, they are eye drops in the form of a clear solution.
[0082] As shown in the following examples, CDO and etamsilate administered as eye drops were able to pass through the cornea, sclera, and / or conjunctiva, avoiding washout by tears, and ultimately reaching the retina and optic nerve, where a large amount of the drug could be detected. This is highly relevant because even in simple pharmaceutical compositions that maintain vision, the active ingredients can reach the target tissue because they are clear and transparent.
[0083] Indeed, as will be demonstrated below, liquid pharmaceutical compositions comprising a therapeutically effective amount of dobesilicic acid and / or another salt thereof, all properly sterilized (e.g., by UV means or sterile filtration), along with an ester of the acid or salt, a pH adjuster, optionally an antioxidant compound, and water, can be used for the treatment and / or prevention of diseases of the posterior part of the eye, the treatment comprising the administration of a topical dose of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt.
[0084] In another specific embodiment, a composition for use in treating diseases of the posterior eye by topical administration of a dose of the active ingredient to the surface of the eye, optionally in combination with any of the embodiments described above or below, further comprises excipients selected from preservatives, pH adjusters, isotonic agents for adjusting osmotic pressure, chelating agents, penetration enhancers, bioadhesive polymers, stabilizers, thickeners, tension activators, antioxidants, and mixtures thereof.
[0085] Excipients used as pH adjusters enable a pH of 3.8 to 8.6, more specifically 4.5 to 8.0, even more specifically 4.8 to 7.5, preferably 5.0 to 7.3, and even more preferably 5.5 to 6.9. Examples of pH adjusters include citrates (citric acid / citrate buffer), phosphates (phosphate / phosphate buffer), borates (boric acid / borate buffer), and mixtures thereof, all of which are pharmaceutically acceptable. The pH buffer may further contain amino acids, particularly arginine, lysine, and amine-derived compounds selected from methylglucamine and trometamol, as well as mixtures thereof.
[0086] Accordingly, in a particular embodiment of the second aspect of the present invention, the topical pharmaceutical composition for use disclosed above has a pH of 3.8 to 8.6, more particularly 4.5 to 8.0, even more particularly 4.8 to 7.5, preferably 5.0 to 7.3, and even more preferably 5.5 to 6.9.
[0087] The term "pH adjuster" refers to an acid or base, or a mixture thereof, that can be used to adjust the pH of the finished product to a desired level without affecting the stability of the composition. In one embodiment, compositions for use according to the present invention include lactic acid and its salts (sodium lactate, potassium lactate, calcium lactate, etc.), citric acid and its salts (sodium citrate, potassium citrate, calcium citrate, lithium citrate, trisodium citrate, disodium hydrogen citrate, etc.), tartaric acid and its salts (sodium tartrate, potassium tartrate, calcium tartrate, etc.), acetic acid and its salts (sodium acetate, potassium acetate, calcium acetate, etc.), hydrochloric acid, boric acid and its salts (sodium borate), sulfuric acid and its salts (sodium sulfate, potassium sulfate, etc.), nitric acid, hydrochloric acid, phosphoric acid and its salts (sodium dihydrogen phosphate, monosodium hydrogen phosphate, dihydrogen phosphate). The pH adjuster is further selected from the group consisting of potassium, lithium phosphate, potassium phosphate, and calcium phosphate (e.g.), carbonates and their salts (e.g., sodium carbonate, sodium bicarbonate, and potassium bicarbonate), maleic acid and its salts (e.g., lithium maleate, sodium maleate, potassium maleate, and calcium maleate), succinic acid and its salts (e.g., lithium succinate, sodium succinate, potassium succinate, and calcium succinate), sodium hydroxide, potassium hydroxide, triethanolamine, diisopropanolamine, ammonia, tris(hydroxymethyl)aminomethane, tris(hydroxymethyl)aminomethane hydrochloride, and mixtures thereof. In one embodiment, the pH adjuster is selected from the group consisting of tris(hydroxymethyl)aminomethane, tris(hydroxymethyl)aminomethane hydrochloride, potassium dihydrogen phosphate, disodium hydrogen phosphate, and mixtures thereof.
[0088] In another embodiment, the composition comprises a pH adjuster selected from the group consisting of acetic acid, boric acid, sorbic acid, citric acid, phosphoric acid, sodium phosphate, disodium phosphate, monosodium phosphate, potassium dihydrogen phosphate and their salts, hydrochloric acid, sodium hydroxide, sodium thiosulfite, sodium sulfite, sodium sulfate, tris(hydroxymethyl)aminomethane, tris(hydroxymethyl)aminomethane hydrochloride, sodium bicarbonate, sodium borate, sodium acetate, sodium bisulfate, sodium benzoate, sodium citrate and mixtures thereof.
[0089] Other components in topical ophthalmic compositions for use according to the present invention include, in certain embodiments, tension activators, solvents (organic and inorganic solvents; i.e., water), thickeners (also called viscosizing agents), preservatives, isotonic agents, mucosal adhesion polymers, chelating agents, and enhancers for active ingredients (i.e., dobesylic acid and / or its salts or esters).
[0090] Among tension surfactants, nonionic surfactants are not limited to (C 30 ~C 40 ) Containing alkyl poly(ethylene oxide), poly(ethylene oxide) and poly(propylene oxide) block copolymers (commercially called poloxamers or poloxamines), octyl glucoside and decyl maltoside (C8~C 14 Examples include alkyl polyglucosides, fatty alcohols containing cetyl alcohol and oleyl alcohol, cocamide MEA, cocamide DEA, sorbitan esters and their derivatives, or sorbitan ester ethoxylates and their derivatives.
[0091] Thickening agents include, in particular, polyvinyl alcohol, compounds derived from cellulose such as methylcellulose hydroxymethylcellulose, hydroxyethylcellulose, carboxymethylcellulose sodium, and hydroxypropylmethylcellulose, carbomers, polyethylene glycol, polyalcohols, chitosan, hyaluronic acid, and mixtures thereof.
[0092] Examples of preservatives suitable for the present invention include, but are not limited to, benzalkonium chloride, cetalkonium chloride, bezethonium chloride, chlorhexidine, benzyl alcohol, chlorobutanol, 2-phenylethanol, propylparaben, methylparaben, phenylmercury acetate, phenylmercury borate, sodium dehydroacetate, phenylmercury sorbate nitrate, cetylpyridinium chloride, cetrimonium bromide, benzyl bromide, sodium perborate, thimerosal, and mixtures thereof.
[0093] The isotonic agent is selected from the group consisting of sodium chloride, potassium chloride, calcium chloride, sodium phosphate, potassium phosphate, sodium bicarbonate, calcium carbonate, sodium lactate, sorbitol, mannitol, xylitol, dextrose, polyethylene glycol, propylene glycol, dextran, and mixtures thereof, and is preferably glycerin.
[0094] Drugs that enhance the absorption of the active ingredient, also known as "enhancers," include sorbitan monolaurate, sorbitan monopalmitate, sorbitan trioleate, polyoxyethylene 20 sorbitan monolaurate, polyoxyethylene 20 sorbitan monopalmitate, polyoxyethylene 5 sorbitan monooleate, polyoxyethylene 20 sorbitan trioleate, polyoxyethylene 9 lauryl ether, polyoxyethylene 23 lauryl ether, polyoxyethylene 20 cetyl ether, polyoxyethylene 20 oleyl ether, polyethylene glycol octadecyl ether, polyoxyethylene 40 stearate, polyoxyethylene 50 stearate, palmitoyl carnitine, sodium caprate, stearylamine, sodium dodecyl sulfate, etc. These include surfactants, bile acids such as deoxycholic acid, taurocholic acid, taurodeoxycholic acid, urodeoxycholic acid, and tauroursodeoxycholic acid, capric acid, caprylic acid, oleic acid, lauralkonium chloride, benzalkonium chloride, cetalkonium chloride, cetrimonium bromide, chlorhexidine digluconate, benzyl alcohol, chlorbutanol, 2-phenylethanol, parabens, propylparaben and methylparaben, EDTA, 1-dodecyl azacycloheptan-2-one (azone), hexamethylene lauramide, hexamethylene octanamide, decyl methyl sulfoxide, saponins, cyclodextrins, pz-peptides, α-amino acids, cetylpyridinium chloride, cytochalasins, ionophores and other fatty acids, or mixtures thereof.
[0095] Mucosal-adhering polymers, also known as "bioadhesive polymers," refer to substances that can increase the residence time of the composition of the present invention. Examples of bioadhesive polymers suitable for the present invention include polyvinylpyrrolidones such as povidone K17, povidone K25, povidone K30, and povidone K90F; polyvinyl alcohol; xanthan gum; guar gum; gellan gum; tragacanth gum; ceratonia gum; agar; methylcellulose; ethylcellulose; hydroxyethylcellulose; hydroxyethyl methylcellulose; hydroxypropylcellulose; hydroxypropyl methylcellulose; hydroxypropyl methylcellulose phthalate; (acetic acid / succinate) hydroxypropyl methylcellulose; sodium carboxymethylcellulose; calcium carboxymethylcellulose; polyethylene glycol; glycerin; carrageenan; alginic acid; sodium alginate; potassium alginate; propylene glycol alginate; hyaluronic acid; sodium hyaluronate; poly(acrylic acid) derivatives such as carbomer and polycarbol; poloxamer; chitosan and chitosan derivatives; vinyl methyl ether / maleic anhydride copolymer; maltodextrin; polycaprolactone; and mixtures thereof.
[0096] The terms "chelating agent" and "chelate" have the same meaning and are used interchangeably. A chelating agent refers to a compound that can complex ions. Examples of chelating agents include citric acid, especially citric acid monohydrate, EDTA (ethylenediaminetetraacetic acid), and salts of EDTA such as EDTA dipotassium, EDTA disodium, EDTA calcium disodium, EDTA sodium, and EDTA trisodium, fumaric acid, malic acid, and maltol. In one embodiment, the chelating agent is selected from the group consisting of sodium edetate, citric acid, and their salts and mixtures.
[0097] The topical ophthalmic compositions of the present invention may be prepared according to methods well known in the art. Suitable excipients and / or carriers, as well as any pH adjusters, and their amounts, can be readily determined by those skilled in the art, depending on the type of formulation being prepared.
[0098] In certain embodiments of the topical ophthalmic pharmaceutical compositions disclosed above, the compositions are for the immediate release of dobesilicic acid and / or pharmaceutically acceptable salts, or esters thereof. These types of formulations allow for the rapid release of the active ingredient, which ultimately serves the purpose of acting rapidly on the various tissues of the posterior eye to which they are reached.
[0099] Alternatively, in another specific embodiment, the topical ophthalmic pharmaceutical compositions for use as defined above are compositions for controlled, prolonged release of the active ingredient, also called controlled-release compositions or dosage forms. In particular, those for releasing the active ingredient over a period of 2 to 30 days. These compositions allow for shorter administration times and facilitate simpler pharmacokinetics. Examples of these non-immediate-release compositions in which the active ingredient is released over a period of time include sustained-release compositions and long-release compositions. Sustained-release dosage forms are dosage forms designed to release (release) the drug at a predetermined rate to maintain a constant drug concentration over a specific period of time with minimal side effects. This can be achieved through various formulations, including drug-polymer conjugates. Long-release compositions are compositions in which the drug is delivered over a period of time (usually sustained release at a constant rate) or to a specific target in the body (targeted-release dosage).
[0100] With respect to "release over 2 to 30 days," if relating to any aspect or embodiment of the present invention, it is understood that the release of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, is achieved such that at least 85% of the active ingredient in the formulation is released within any number of days indicated in the formulation from the day of administration (e.g., 2 days, 5 days, 10 days, 20 days, or 30 days). That is, a topical ophthalmic pharmaceutical composition formulated for the release of the active ingredient over 2 days means that at least 85%, more specifically 90%, and more specifically 100%, of the active ingredient is released on day 2. Similarly, a release over 30 days means that at least 85%, more specifically 90%, and more specifically 100%, of the active ingredient is released on day 30. Those skilled in the art of topical ophthalmic compositions will know standard protocols for determining the release percentage of the active ingredient.
[0101] In another specific embodiment of a second aspect of the present invention, the topical ophthalmic pharmaceutical composition for use disclosed above is formulated for once-monthly administration to a subject, particularly a mammal, more specifically a human.
[0102] In more specific embodiments, a topical ophthalmic pharmaceutical composition formulated for controlled-release administration contains 1 mg to 700 mg of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either thereof.
[0103] In another specific embodiment of a second aspect of the present invention, the topical ophthalmic pharmaceutical composition for use disclosed above is formulated for administration to a subject, particularly a mammal, more specifically a human, once every 2, 4, 6, 8, 12, or 24 hours. This particular embodiment is more common in the proposed topical ophthalmic composition for use, which is in the form of a liquid composition such as an eye drop, a suspension, or a solution, and the general pharmacologics involve the application of one to several drops at predetermined time intervals (e.g., two drops every 6 hours).
[0104] As indicated with respect to the active ingredients, the topical ophthalmic pharmaceutical compositions disclosed above for use are for the prevention and / or treatment of diseases selected from retinal pathologies, vitreous fluid pathologies, choroidal pathologies, optic nerve pathologies, posterior scleral pathologies, and combinations thereof.
[0105] In fact, topical pharmaceutical compositions containing therapeutically effective amounts of dobesylic acid and / or pharmaceutically acceptable salts, or esters of either the acid or salt, are intended for use in diseases of the posterior part of the eye, in which any of the vascular systems of the posterior tissues are impaired. In particular, the retinal vascular system (which is also a branch of the ophthalmic artery but originates from the central retinal artery that passes through with the optic nerve) and the vascular system known as the uveoid circulation (including the ciliary body, iris, and choroid).
[0106] In certain embodiments, the topical pharmaceutical composition, according to the present invention, is intended for use in the treatment and / or prevention of the diseases listed above, when referring to dobesylic acid and / or its salts or their esters.
[0107] In a third aspect of the present invention, the present invention provides a topical ophthalmic pharmaceutical composition comprising a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, together with one or more pharmaceutically acceptable topical ophthalmic excipients and / or carriers, the composition being formulated to release dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, for a period of 2 to 30 days.
[0108] The topical ophthalmic pharmaceutical compositions according to the third embodiment are release-modulated compositions selected from sustained-release compositions and long-release compositions.
[0109] In a particular embodiment of this third aspect, the composition comprises 1 mg to 700 mg of a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt. In yet another, more particular embodiment, the topical ophthalmic pharmaceutical composition comprises 10 mg to 500 mg of a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, and the composition is formulated to release dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, for 30 days.
[0110] In yet another specific embodiment of the composition of this third aspect of the present invention, the composition comprises a pharmaceutically acceptable salt of dobesilicic acid, more specifically an alkali metal or alkaline earth metal salt of dobesilicic acid. More specifically, the composition comprises calcium dobesilate, more specifically CDO (calcium dobesilate monohydrate). Other pharmaceutically acceptable salts of dobesilicic acid in another specific embodiment are selected from magnesium salts, potassium salts, sodium salts, and mixtures thereof.
[0111] In another specific embodiment of a third aspect of the present invention, a pharmaceutically acceptable salt of dobesylic acid is a salt of dobesylic acid with an amine of formula (II), where R 1 and R 2 They are equal to ethyl radicals, and R 3 This is H. This salt of dobesylic acid is also known as etamsylate or diethylamine 2,5-dihydroxybenzenesulfonate. The hydrated salt of etamsylate is also used as an ingredient in the topical ophthalmic composition according to the third embodiment.
[0112] In another specific embodiment of the third aspect of the present invention, the composition further comprises preservatives, pH adjusters, isotonic agents for adjusting osmotic pressure, chelating agents, penetration enhancers, bioadhesive polymers, stabilizers, thickeners, tension activators, antioxidants, and mixtures thereof. Specific excipients and / or carriers disclosed and enumerated above when referring to compositions for use according to the second aspect of the present invention are also excipients and / or carriers applicable to topical ophthalmic pharmaceutical compositions of the third aspect of the present invention.
[0113] In a more specific embodiment of a third aspect of the present invention, the topical ophthalmic pharmaceutical composition has a pH of 3.8 to 8.6, more specifically 4.5 to 8.0, even more specifically 4.8 to 7.5, preferably 5.0 to 7.3, and even more preferably 5.5 to 6.9. In a particular embodiment, this pH is achieved by a suitable pH adjuster selected from the group consisting of acetic acid, boric acid, sorbic acid, citric acid, phosphoric acid, sodium phosphate, disodium phosphate, monosodium phosphate, potassium dihydrogen phosphate and their salts, hydrochloric acid, sodium hydroxide, sodium thiosulfite, sodium sulfite, sodium sulfate, tris(hydroxymethyl)aminomethane, tris(hydroxymethyl)aminomethane hydrochloride, sodium bicarbonate, sodium borate, sodium acetate, sodium bisulfate, sodium benzoate, sodium citrate and mixtures thereof.
[0114] In yet another specific embodiment of a third aspect of the present invention, the composition may optionally be combined with any of the embodiments described above or below to further include a chelating agent selected from the group consisting of citric acid, particularly citric acid monohydrate, EDTA, and salts of EDTA such as EDTA dipotassium, EDTA disodium, EDTA calcium disodium, EDTA sodium, and EDTA trisodium, fumaric acid, malic acid, and maltol. In one embodiment, the chelating agent is selected from the group consisting of sodium edetate, citric acid, and salts and mixtures thereof.
[0115] In yet another specific embodiment of the third aspect of the present invention, the composition further comprises an effective amount of bioadhesive polymer, optionally in combination with any of the embodiments described above or below. In certain embodiments, the bioadhesive polymer is selected from the group consisting of polyvinylpyrrolidone such as povidone K17, povidone K25, povidone K30, and povidone K90F; polyvinyl alcohol; xanthan gum; guar gum; gellan gum; tragacanth gum; ceratonia gum; agar; methylcellulose; ethylcellulose; hydroxyethylcellulose; hydroxyethyl methylcellulose; hydroxypropylcellulose; hydroxypropyl methylcellulose; hydroxypropyl methylcellulose phthalate; (acetic acid / succinate) hydroxypropyl methylcellulose; sodium carboxymethylcellulose; calcium carboxymethylcellulose; polyethylene glycol; glycerin; carrageenan; alginic acid; sodium alginate; potassium alginate; propylene glycol alginate; hyaluronic acid; sodium hyaluronate; poly(acrylic acid) derivatives such as carbomer and polycarbol; poloxamer; chitosan and chitosan derivatives; vinyl methyl ether / maleic anhydride copolymer; maltodextrin; polycaprolactone; and mixtures thereof.
[0116] In yet another specific embodiment, a topical ophthalmic pharmaceutical composition according to a third aspect of the present invention further comprises an effective amount of an antioxidant selected from the group consisting of, in particular, butylated hydroxyanisole, butylated hydroxytoluene, tert-butylhydroquinone, tertiary butylhydroquinone, dilaurylthiopropionate, ethoxyquin, propyl gallate, 2,4,5-trihydroxybutyrophenone, thiodipropionic acid, alpha-tocopherol, ascorbic acid, sodium metabisulfite, sodium ascorbate, potassium metabisulfite, potassium sorbate, sodium benzoate, sodium iodide, sodium succinate hexahydrate, sodium sulfite, sodium tartrate, sodium thiosulfate, sorbic acid, trisodium citrate dihydrate, and mixtures thereof.
[0117] Optionally, a composition according to a third aspect of the present invention comprises a pharmaceutically acceptable delivery system which is a compound or mixture of compounds that preserves the active form of dobesilicic acid and / or a pharmaceutically acceptable salt thereof, or an ester thereof, in the composition, enabling the release of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, to reach the posterior part of the eye in the active form and in an effective amount.
[0118] Examples of these delivery systems include compounds that stabilize the active ingredient and / or increase its residence time in target tissue, thereby reducing its elimination by the blood-retinal barrier.
[0119] Other topical ophthalmic pharmaceutical compositions according to the present invention include the following: -A therapeutically effective amount of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, -One or more pharmaceutically acceptable topical ophthalmic excipients and / or carriers, the excipients and / or carriers comprising a pH adjuster.
[0120] In particular embodiments of compositions containing pH adjusters, the agents in this category include compounds selected from the list shown above for a second aspect of the present invention. In more specific embodiments, topical ophthalmic compositions include pH adjusters selected from the group consisting of acetic acid, boric acid, sorbic acid, citric acid, phosphoric acid, sodium phosphate, disodium phosphate, monosodium phosphate, potassium dihydrogen phosphate and their salts, hydrochloric acid, sodium hydroxide, sodium thiosulfite, sodium sulfite, sodium sulfate, tris(hydroxymethyl)aminomethane, tris(hydroxymethyl)aminomethane hydrochloride, sodium bicarbonate, sodium borate, sodium acetate, sodium bisulfate, sodium benzoate, sodium citrate and mixtures thereof.
[0121] In more specific embodiments of these compositions containing pH adjusters, they further include chelating agents. Specific chelating agents are listed in reference to a second embodiment of the present invention. More specifically, they are selected from the group consisting of citric acid, particularly citric acid monohydrate, EDTA, and salts of EDTA such as EDTA dipotassium, EDTA disodium, EDTA calcium disodium, EDTA sodium, and EDTA trisodium, fumaric acid, malic acid, and maltol. In one embodiment, the chelating agent is selected from the group consisting of sodium edetate, citric acid, and salts and mixtures thereof.
[0122] In another specific embodiment, these compositions, which include a pH adjuster, further include an effective amount of a bioadhesive polymer. In certain embodiments, the bioadhesive polymer is selected from the group consisting of polyvinylpyrrolidone such as povidone K17, povidone K25, povidone K30, and povidone K90F; polyvinyl alcohol; xanthan gum; guar gum; gellan gum; tragacanth gum; ceratonia gum; agar; methylcellulose; ethylcellulose; hydroxyethylcellulose; hydroxyethyl methylcellulose; hydroxypropylcellulose; hydroxypropyl methylcellulose; hydroxypropyl methylcellulose phthalate; (acetic acid / succinate) hydroxypropyl methylcellulose; sodium carboxymethylcellulose; calcium carboxymethylcellulose; polyethylene glycol; glycerin; carrageenan; alginic acid; sodium alginate; potassium alginate; propylene glycol alginate; hyaluronic acid; sodium hyaluronate; poly(acrylic acid) derivatives such as carbomer and polycarbol; poloxamer; chitosan and chitosan derivatives; vinyl methyl ether / maleic anhydride copolymer; maltodextrin; polycaprolactone; and mixtures thereof.
[0123] In yet another specific embodiment, the topical ophthalmic pharmaceutical composition with the pH adjuster of the present invention further comprises an effective amount of an antioxidant selected from the group consisting of butylated hydroxyanisole, butylated hydroxytoluene, tert-butylhydroquinone, tertiary butylhydroquinone, dilaurylthiopropionate, ethoxyquin, propyl gallate, 2,4,5-trihydroxybutyrophenone, thiodipropionic acid, alpha-tocopherol, ascorbic acid, sodium ascorbate, potassium metabisulfite, potassium sorbate, sodium benzoate, sodium iodide, sodium succinate hexahydrate, sodium sulfite, sodium tartrate, sodium thiosulfate, sorbic acid, trisodium citrate dihydrate, and mixtures thereof.
[0124] As shown for the composition of the third embodiment, the topical ophthalmic pharmaceutical composition comprising a pH adjuster also includes, in another specific embodiment, a pharmaceutically acceptable delivery system as defined for the composition of the third embodiment of the present invention.
[0125] The present invention also relates to alkali metal and alkaline earth metal salts or esters of dobesilic acid (i.e., calcium dobesilate, potassium dobesilate, sodium dobesilate, magnesium dobesilate) themselves, or in pharmaceutical compositions for use in the treatment and / or prevention of diseases of the posterior part of the eye. In particular, for use in the treatment and / or prevention of diseases of the posterior part of the eye selected from pathologies of the retina and / or choroid, pathologies of the vitreous fluid, pathologies of the optic nerve, pathologies of the posterior sclera, and combinations thereof, the treatment comprises the administration of a topical dose of alkali metal and alkaline earth metal salts or esters of dobesilic acid to the ocular surface. In particular, the present invention is for the treatment and / or prevention of any of the above categories of diseases.
[0126] Throughout this specification and the claims, “including” and variations thereof are not intended to exclude other technical features, additions, components, or processes. Furthermore, the word “including” encompasses the case of “consisting of.” Further objects, advantages, and features of the present invention may become apparent to those skilled in the art through the examination of this specification or may be acquired through the practice of the present invention. The following examples are provided as illustrative examples and are not intended to limit the present invention. Furthermore, the present invention encompasses all possible combinations of the specific and preferred embodiments described herein. [Examples]
[0127] Example 1. Composition Measure an appropriate amount of CDO or etamsilate into a suitable container and add the distilled water shown in Table 1.
[0128] Dissolve CDO or etamsilate in water while gently stirring. [Table 1]
[0129] Example 2. Intraocular distribution of CDO in rats and rabbits (topical ocular administration vs. single oral administration). method To compare bioavailability after oral administration and after ophthalmic instillation, the intraocular distribution of CDO was determined in rat and rabbit animal models.
[0130] Intraocular distribution of CDO in rats (topical ocular administration vs. oral administration) In Sprague Dawley (SD) rats weighing approximately 200 g, CDO was administered either by topical ophthalmic instillation (10 μl / eye) at 10 mg / ml (Composition 2 of Example 1) or 100 mg / ml (Composition 5 of Example 1), or by forced oral administration in aqueous solutions at 50 mg / kg, 200 mg / kg, or 750 mg / kg, respectively. The animals were euthanized at 15, 60, 180, and 360 minutes after administration, and plasma and ocular tissue, including the sclera, cornea, retina, vitreous fluid / lens, and optic nerve, were collected.
[0131] An oral dose of 50 mg / kg (10 mg) in rats was equivalent to one 500 mg capsule of Doxium®, four 500 mg capsules of Doxium® at a dose of 200 mg / kg (40 mg) to 15 capsules of Doxium®, and 750 mg / kg (150 mg) to 15 capsules of Doxium®, based on the Human Equivalent Dose (HED) (Guidance for Industry Estimating the Maximum Safe Starting Dose in Initial Clinical Trials for Therapeutics in Adult Healthy Volunteers USD Department of Health and Human Services Food and Drug Administration Center for Drug Evaluation and Research (CDER) July 2005 Pharmacology and Toxicology).
[0132] 500 mg of CDO Doxium® (for a human weighing 60 kg) = 8.3 mg CDO / kg human HED (Rat / Human) = 6.2 8.3 × 6.2 = 51.5 mg / kg rat (rat body weight 0.2 kg) = 10 mg (rat dose equivalent)
[0133] Intraocular distribution of CDO in rabbits (topical ocular administration vs. oral administration) New Zealand white rabbits weighing approximately 1.8 kg were administered CDO by topical eye drops at 10 mg / ml (composition 2 of Example 1) or 100 mg / ml (composition 5 of Example 1) (33 μl / eye), or by forced oral administration of 25 mg / kg in an aqueous solution (composition 1 of Example 1). The animals were euthanized at 15, 60, 180, and 360 minutes after administration, and plasma, as well as eye tissue including the retina / choroid and optic nerve, were collected.
[0134] Based on HED's calculations, an oral dose of 25 mg / kg (45 mg) in rabbits was equivalent to one 500 mg capsule of Doxium® in humans.
[0135] 500 mg of CDO Doxium® (for a human weighing 60 kg) = 8.3 mg CDO / kg human HED (Rabbit / Human) = 3.1 8.3 × 3.1 = 25.7 mg / kg rabbit (rabbit weight 1.75 kg) = 45 mg (rabbit dose equivalent)
[0136] Analysis conditions: Depending on the matrix type, bioanalysis of CDO was performed. In the case of plasma, methanol was used to precipitate the proteins. In the case of tissue, the sample was pulverized using a Mini Bead Beater with zirconium beads and methanol / water (1:1) (volt / volt) as the solvent. After centrifugation, the sample was analyzed by UPLC-MS / MS.
[0137] Chromatographic separation was performed using an Acquity CSH Fluoro Phenyl column (1.7 μm, 50 × 2.1 mm). The mobile phase consisted of a gradient using 0.1% formic acid in water and 5% to 45% acetonitrile over 4.5 minutes at a flow rate of 0.6 ml / min.
[0138] For mass spectrometry detection, the electrospray ionization source was operated to record negative ions. Multiple Reaction Monitoring (MRM) mode was performed for deprotonated molecular ions. The monitored transition for CDO was m / z 189.0 → 80.1, with a cone voltage of 45V and a collision energy of 25eV.
[0139] result Intraocular distribution of CDO in rats (topical ocular administration vs. oral administration)
[0140] Table 2 shows the concentrations of μg / g tissue CDO at various test times. [Table 2]
[0141] The data show that topical ocular administration in rats leads to a decrease in plasma levels, which may mean that the microvessels in the anterior part of the eye and the BRBs in the posterior part of the eye avoid diffusion from behind the eye into the systemic circulation.
[0142] When CDO is applied locally to the ocular surface, its absorption and distribution become faster.
[0143] In rats, a single local instillation of a 1% by weight / volume dose (Composition 2 of Example 1) (10 μl droplet) enables detection of CDO in the optic nerve.
[0144] Since 1 mg of CDO administered as eye drops shows retinal levels equivalent to 40-150 mg of orally administered CDO, better bioavailability exists along the local pathway of the eye.
[0145] Intraocular distribution of CDO in rabbits (topical ocular administration vs. oral administration)
[0146] Table 3 shows the concentrations of μg / g tissue CDO at various test times. [Table 3]
[0147] The data show that topical ocular administration in rabbits (single low dose of 0.3 mg) yields CDO values in target tissue equivalent to a single oral dose (45 mg). When a higher single dose (CDO 3.3 mg) is applied topically to the eye, higher levels of drug are detected than those obtained after a single oral administration. Even in this case, the CDO applied topically to the surface of the eye demonstrated high bioavailability.
[0148] Furthermore, CDO levels could be detected in target tissues, particularly the optic nerve and retinochoroid, 6 hours after local ocular administration in both animal models.
[0149] Example 3. Intraocular distribution of etamsilate after a single local ocular administration in rats. method To confirm drug absorption into the posterior part of the eye, the intraocular distribution of etamisilate was determined in rats.
[0150] Etamcilate was administered to Sprague Dawley (SD) rats weighing approximately 200 g by topical eye drops (10 μl / eye) of compositions 6 and 7 of Example 1. The animals were euthanized at 15, 60, and 180 minutes after administration, and eye tissue, including the retina and optic nerve, was collected.
[0151] Analysis conditions: As described in Example 2.
[0152] result The experimental results are shown in Table 4 below. [Table 4]
[0153] Absorption of another dobesilate (etamisilate) has been confirmed. When the active ingredient is applied topically to the ocular surface (corneal and conjunctival eye drops), it reaches the posterior segment of the eye, particularly the retina and optic nerve, in large quantities.
[0154] Based on these data, we can conclude that dobesylic acid in salt form is absorbed and rapidly transported to the posterior part of the eye structure independently of the salt.
[0155] Example 4. Intraocular distribution of CDO after repeated local ocular administration in rats. method To evaluate CDO levels in the steady state retina, a 28-day repeated dose study was conducted in diabetic rats. CDO compositions 2 and 5 of Example 1 were administered topically via TID (10 μl / eye) for 28 days. On day 29, CDO was instilled once, and the retina was collected 15 minutes after administration.
[0156] Analysis conditions: As described in Example 2.
[0157] result Table 5 shows the concentration of CDO in retinal tissue in μg / g, measured 15 minutes after a single dose of CDO on day 29, following a 28-day repeated-dose study. [Table 5]
[0158] The summary data above supports the correct absorption and distribution of CDO after topical ocular administration, as well as the increase in drug concentration in retinal tissue. Steady-state studies have also observed a good correlation between CDO dose and concentration in the retina. Repeated dosing reinforces data obtained after single-dose administration.
[0159] Example 5. Efficacy of CDO in a rat streptozotocin-induced diabetic retinopathy model. method Diabetes mellitus was induced in male SD rats by a single intraperitoneal injection of streptozotocin (STZ) at a dose of 60 mg / kg body weight in citrate buffer (pH 4.5). Blood glucose levels were measured 7 days after STZ administration, with a threshold of 250 mg / dl considered inducing diabetes. Once hyperglycemia was confirmed, ophthalmic treatment with 10 mg / ml CDO (10 μl / eye topical instillation) was initiated and continued three times daily (TID) for 28 days. Rats were randomly divided into three groups: I. control (non-diabetic), II. untreated diabetic rats, and III. diabetic rats receiving 10 mg / ml CDO.
[0160] On day 29, in group III, CDO was administered as a single eye drop at a dose of 10 mg / ml, the rats were euthanized, and the retinas were collected 15 minutes after administration.
[0161] retinal vascularity Based on the ability of Evans Blue (EB) to bind to serum albumin immediately after intravenous injection, retinal blood vessels were observed by EB staining. Therefore, 3% Evans Blue was injected via the tail vein at a dose of 1 ml / kg 60 minutes before euthanasia on day 29. The eyeballs were fixed with 4% paraformaldehyde. The retina was mounted on a slide immediately after dissection and observed under a fluorescence microscope.
[0162] Antioxidant ability Antioxidant capacity was evaluated by measuring the concentration of glutathione disulfide (GSSG) or oxidized glutathione in homogenized retina. Tissue was collected on day 29 and homogenized in PBS pH 6-7 with 1 mM EDTA. After centrifugation at 10,000 rpm, aliquots of the supernatant were diluted with 0.1% formic acid and analyzed by ULC-MS / MS.
[0163] Chromatographic analysis was performed using an Acquity HSST3 column (1.8 μm, 50 × 2.1 mm). Isocratic elution was performed at a flow rate of 0.6 ml / min using a mobile phase of a mixture of 0.1% formic acid and methanol (99:1).
[0164] For mass spectrometry detection, the electrospray ionization source was operated to record negative ions. A multiple reaction monitoring acquisition mode for deprotonated molecular ions was performed. The transition monitored for the GSSG was m / z 611.2 → 306.2, with a cone voltage of 45V and a collision energy of 25eV.
[0165] anti-inflammatory activity RNA was isolated from each retina using a commercially available kit, the SV Total RNA Isolation System (Promega), and stored at -80°C until use. Relative mRNA levels were quantified using the MX3000 (Stratagene) quantitative PCR system. Reverse transcription and cDNA amplification were performed using a one-step qRT-PCR SYBR green PCR master mix with gene target-specific primers. Thermocycler parameters were 15 minutes at 50°C for one cycle; 2 minutes at 95°C, followed by 40 cycles of 30 seconds at 95°C, 30 seconds at 55°C, and 30 seconds at 68°C, and finally 1 cycle of 60 seconds at 95°C, 30 seconds at 55°C, and 30 seconds at 95°C.
[0166] The primer sequence is as follows: β-actin: (forward primer, 5'-GTCGTACCACTGGCATTGTG-3' (SEQ ID NO: 1); and reverse primer, 5'-CTCTCAGCTGTGGTGGTGAA-3' (SEQ ID NO: 2)). TNF-α: (Forward primer, 5'-ATCTACTCCAGGTCCTCTTC-3' (SEQ ID NO: 3); and reverse primer, 5'-GATGCGGCTGATGGTGTG-3' (SEQ ID NO: 4)).
[0167] The qPCR system detects fluorescence emitted by SYBR, and its increase corresponds to an exponential increase in PCR products. The software calculates the threshold cycle (Ct) at which fluorescence exceeds the background signal. Relative changes in gene expression were calculated using the ΔCt method. Gene expression levels were normalized relative to β-actin as a housekeeping gene. Relative mRNA expression in test samples was determined as an increase ratio compared to a control sample (non-diabetic).
[0168] result Retinal vascularity: The retina was evaluated using a fluorescence microscope. In diabetic rats (untreated group II), the retinal vascular distribution was clearly impaired, and microvascular lesions were observed, consistent with the early stages of diabetic retinopathy. Clear retinal vascular leakage was observed, along with increased permeability from the capillaries. In this untreated group II, a non-severe neovascular process was observed. Diabetic rats treated with 10 mg / ml CDO (group III) had well-preserved retinas and showed clear vascularity with no signs of vascular damage. The overall appearance of the retina was similar to that of the non-diabetic control group I.
[0169] Antioxidant capacity: Figure 1 shows the concentrations of GSSG determined in control group I, alongside homogenized retinas of diabetic rats (untreated groups II and III). The retinal concentration of GSSG in diabetic rats (untreated) was higher than that in the control group (P<0.05, one-way ANOVA with Bonferroni correction). Nevertheless, diabetic rats treated with 10 mg / ml CDO were able to return to the same level of GSSG concentration as the control group (P<0.01, group II vs group III, one-way ANOVA with Bonferroni correction), demonstrating the antioxidant capacity of CDO in a rat model of diabetic retinopathy. These results support the activity of CDO in target tissues and its significant prevention of reactive oxygen species generation associated with oxidative stress processes caused by high blood glucose levels.
[0170] Anti-inflammatory activity: Figure 2 shows the relative expression of TNF-α mRNA in the retinas of diabetic rats (untreated group II and treated group III) and control group I (non-diabetic). An increase in the inflammatory cytokine TNF-α level was observed in the retinas of diabetic group II. Treatment with 10 mg / ml CDO significantly reduced TNF-α levels (P<0.01 group II vs group III, one-way ANOVA with Bonferroni correction), and furthermore, expression in the treated group was significantly lower than in the control group, demonstrating the anti-inflammatory effect of CDO in this rat model of diabetic retinopathy.
[0171] Example 6. Eye irritation assay (HET-CAM) method HET-CAM is an alternative to the Draize Rabbit Eye Test, which mimics vascular changes in the choroallantoic membrane, an analog of the conjunctiva, and can be used to determine the potential irritation of a test substance. This method is based on the method described in the Hen's Egg Test-Chorioallantoic Membrane (ICCVAM) Recommended Test Method Protocol, NIH Publication No. 10-7553, Published 2010.
[0172] Fertilized white SPF (Specific Pathogen-Free) White Leghorn chicken eggs were incubated at 37°C and 60% humidity for 10 days. After measuring embryo viability, the rectangular window was removed from the shell directly above the air sac, and the egg membrane was carefully moistened with 2-3 ml of 0.9% physiological saline. After returning to the incubator for 30 minutes, the endometrium was removed, and the test substance was applied to the CAM membrane with a pipette. The eggs were continuously observed for 5 minutes for the appearance of lysis, bleeding, and / or coagulation, and the stimulation score (IS) was determined according to the ICCVAM-Recommended Test Method Protocol (NIH Publication No. 10-7553 - Published 2010) guidelines.
[0173] result A HET-CAM eye irritation assay was performed, and representative images for NaCl 0.9% (negative control), NaOH 0.1% (positive control), etamsylate (100 mg / ml), potassium dobesylate (100 mg / ml), and CDO (100 mg / ml) are shown in Figure 3. The active ingredients assayed did not induce any processes of dissolution, bleeding, or coagulation, and were therefore characterized as non-irritating. IS is the irritation score.
[0174] Example 7. Tolerance of CDO in the eyes of rats. method Diabetic SD male rats were treated with CDO compositions 2 and 5 of Example 1 three times a day for 28 days (10 μl / eye topical instillation). Clinical evaluation of eye appearance was performed throughout the study.
[0175] result Clinical evaluation of the eyes of treated rats showed no signs of irritation, indicating good tolerability of the assayed composition.
[0176] List of References Patent Documents -EP2875811 -EP2777699 Non-patent literature -Awwad et al., “Principles of Pharmacology in the Eye”, British Journal of Pharmacology-2017, vol no.174 Issue 23, pp.:4205-4223. -Cuevas et al., “Single Intravitreal Injection of Etamsylate for the Treatment of Geographic Atrophy Associated with Submacular Hemorrhage”, MOJ Clin Med Case-2017, vol.no.7(1):00186. -Cuevas et al.,“Intravitreal Dobesilate Injection for Macular Oedema Secondary to Branch Retinal Vein Occlusion”,MOJ Clin Med Case-2016,vol.no.4(1):00078. -ICCVAM-Recommended Test Method Protocol,NIH Publication No.10-7553-Published 2010 -Gaudana et al,“Ocular drug delivery”,American Association of Pharmaceutical Sci.2010 Sep;12(3):348-360.doi:10.1208 / s12248-010-9183-3.Epub 2010 May 1. -Vadlapudi et al,“Ocular Drug Delivery”,Chapter 10,pp.:2019-263. -Simo et al.,“Mechanisms of retinal neuroprotection of calcium dobesilate:therapeutic implications”Neural Regen Res-2017,vol.no.12(10),pp.:1620-1622. -del Amo et al.,“Current and future ophthalmic drug delivery systems.A shift to the posterior segment”,Drug Discovery Today-2008,vol.no.13(3 / 4),pp.:135-143 -Guidance for Industry Estimating the Maximum Safe Starting Dose in Initial Clinical Trials for Therapeutics in Adult Healthy Volunteers U.S.Department of Health and Human Services Food and Drug Administration Center for Drug Evaluation and Research(CDER)July 2005 Pharmacology and Toxicology. -Ranta et al.,“Barrier analysis of periocular drug delivery to theposterior segment”,Journal of Controlled Release-2010,vol.no.148,pp.:42-48.
Claims
1. The use of dobesilic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, for the manufacture of a medicament for use in the treatment and / or prevention of diseases of the posterior part of the eye selected from retinal conditions, choroidal conditions, posterior scleral conditions, and combinations thereof, wherein the treatment comprises the administration of the dobesilic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, to the ocular surface in a topical dose of 0.01 mg / day to 400 mg / day of eye drops.
2. The use of dobesylic acid and / or a pharmaceutically acceptable salt according to claim 1, or an ester of either the acid or the salt, wherein the pharmaceutically acceptable salt is selected from alkali metal salts of dobesylic acid, alkaline earth metal salts, salts of dobesylic acid with an amine of formula (II), and combinations thereof. 【Chemistry 1】 In the formula, R 1 , R 2 and R 3 (C) 1 ~C 8 ) - Selected from alkyl radicals or H.
3. The use of dobesylic acid and / or a pharmaceutically acceptable salt according to any one of claims 1 to 2, which is an alkali metal salt of dobesylic acid, an alkaline earth metal salt of dobesylic acid, and a pharmaceutically acceptable salt selected from combinations thereof, or an ester of any of the acid or the salt.
4. The use of dobesilicic acid and / or a pharmaceutically acceptable salt according to any one of claims 1 to 3, which is an alkaline earth metal salt of calcium dobesilate, or an ester of either the acid or the salt.
5. A salt of dobesylic acid and an amine of formula (II), where R 1 and R 2 Use of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or salt, according to any one of claims 1 to 2, wherein is equal to an ethyl radical.
6. The use of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of any of the acid or salt, according to any one of claims 1 to 5, wherein the disease of the posterior part of the eye is a retinal and / or choroidal pathology selected from retinal vascular disorders, maculopathy, hereditary fundus dystrophy, idiopathic chorioretinopathy, central serous retinopathy, systemic choroidal dystrophy, and combinations thereof.
7. The use of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, according to claim 6, wherein the retinal vascular disorder is selected from diabetic retinopathy, diabetic papilloma, non-diabetic retinopathy, ocular ischemic syndrome, hypertensive retinopathy, thalassemia retinopathy, Coats syndrome, Eales syndrome, radiation retinopathy, solar retinopathy, percher retinopathy, polypoid choroidal vasculopathy (PCV), retinal microaneurysms, retinal capillary microaneurysms, leukemic retinopathy, retinal ischemia, chronic retinal disorders, and combinations thereof.
8. The aforementioned macular disorders include age-related macular degeneration (ARMD), hemorrhagic ARMD, retinal hemangiomatous proliferation, polypoid choroidal vasculopathy, honeycomb choroidal degeneration (malattia leventines), full-thickness macular hole, retinal epiretinal membrane, macular telangiectasia, cellophane maculopathy or macular packer, myopia maculopathy, exudative maculopathy after venous thrombosis of the retina, acute macular optic neuroretinopathy, macular cysts, macular edema, retinal angioid streaks, and choroidal folds. Use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or any of the salts, according to claim 6, wherein the hereditary fundus dystrophy is selected from the group consisting of retinitis pigmentosa; but not limited to Usher syndrome, punctate leukodysplasia, Leber congenital amaurosis, cone dystrophy, rod dystrophy, Vietti crystalline corneal retinal dystrophy, juvenile macular dystrophy, all types of macular dystrophy, Stargardt disease or atypical retinitis pigmentosa including macular fundus, Usher syndrome and combinations thereof.
9. The use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, according to any one of claims 1 to 8, wherein the topical dose of the dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, is 0.01 mg / day to 300 mg / day.
10. The use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, according to claim 9, wherein the topical dose of the dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, is 0.01 mg / day to 100 mg / day.
11. The use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, according to claim 10, wherein the topical dose of the dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, is 0.01 mg / day to 50 mg / day.
12. The use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, according to claim 11, wherein the topical dose of the dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, is 0.01 mg / day to 25 mg / day.
13. The use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, according to claim 12, wherein the topical dose of the dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, is 0.01 mg / day to 18 mg / day.
14. The use of dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt, according to claim 13, wherein the topical dose of the dobesilicic acid and / or a pharmaceutically acceptable salt, or an ester of the acid or salt, is 0.01 mg / day to 13 mg / day.
15. A topical ophthalmic pharmaceutical composition for use in the treatment and / or prevention of diseases of the posterior part of the eye selected from retinal, choroidal, and posterior scleral conditions and combinations thereof, comprising a therapeutically effective amount of dobesilicic acid and / or a pharmaceutically acceptable salt thereof, or an ester of either the acid or the salt thereof, together with one or more pharmaceutically acceptable topical excipients and / or carriers, wherein the treatment comprises the administration of dobesilicic acid and / or a pharmaceutically acceptable salt thereof, or an ester thereof, to the ocular surface in a topical dose of 0.01 mg / day to 400 mg / day of eye drops.
16. The topical ophthalmic pharmaceutical composition according to claim 15, wherein the disease of the posterior part of the eye is a retinal and / or choroidal pathology selected from retinal vascular disorders, maculopathy, hereditary fundus dystrophy, idiopathic chorioretinopathy, central serous retinopathy, systemic choroidal dystrophy, and combinations thereof.
17. The topical ophthalmic pharmaceutical composition according to claim 16, wherein the retinal vascular disorder is selected from diabetic retinopathy, diabetic papillomavirus, non-diabetic retinopathy, ocular ischemic syndrome, hypertensive retinopathy, thalassemia retinopathy, Coats syndrome, Eales syndrome, radiation retinopathy, solar retinopathy, percher retinopathy, polypoid choroidal vasculopathy (PCV), retinal microaneurysms, retinal capillary microaneurysms, leukemic retinopathy, retinal ischemia, chronic retinal disorders, and combinations thereof.
18. The aforementioned macular disorders include age-related macular degeneration (ARMD), hemorrhagic ARMD, retinal hemangiomatous proliferation, polypoid choroidal vasculopathy, honeycomb choroidal degeneration (malattia leventines), full-thickness macular hole, retinal epiretinal membrane, macular telangiectasia, cellophane maculopathy or macular packer, myopia maculopathy, exudative maculopathy after venous thrombosis of the retina, acute macular optic neuroretinopathy, macular cysts, macular edema, retinal angioid streaks, and choroidal folds. The topical ophthalmic pharmaceutical composition according to claim 16, wherein the hereditary fundus dystrophy is selected from the group consisting of retinitis pigmentosa; but not limited to Usher syndrome, punctate leukodysplasia, Leber congenital amaurosis, cone dystrophy, rod dystrophy, Vietti crystalline corneal retinal dystrophy, juvenile macular dystrophy, all types of macular dystrophy, Stargardt disease or atypical retinitis pigmentosa including macular fundus, Usher syndrome and combinations thereof.
19. A topical ophthalmic pharmaceutical composition for use according to any one of claims 15 to 18, comprising 0.02% to 20% by weight / volume, of dobesylic acid and / or a pharmaceutically acceptable salt, or an ester of either the acid or the salt.
20. A topical ophthalmic pharmaceutical composition for use according to any one of claims 15 to 19, wherein the pharmaceutically acceptable salt is selected from alkali metal salts of dobesilicic acid, alkaline earth metal salts of dobesilicic acid, salts of dobesilicic acid with an amine of formula (II), and combinations thereof. 【Chemistry 2】 wherein, R 1 , R 2 and R 3 are independently selected from -(C 1 ~C 8 )-alkyl radical or H.
21. A topical ophthalmic pharmaceutical composition for use according to any one of claims 15 to 20, wherein the pharmaceutically acceptable salt is selected from alkali metal salts of dobesilicic acid, alkaline earth metal salts of dobesilicic acid, and combinations thereof.
22. The topical ophthalmic pharmaceutical composition for use according to any one of claims 15 to 21, wherein the pharmaceutically acceptable salt is an alkaline earth metal salt of calcium dobesylate.
23. A pharmaceutically acceptable salt of the aforementioned dobesilicic acid is a salt of dobesilicic acid with the amine of formula (II), R 1 and R 2 A topical ophthalmic pharmaceutical composition for use according to any one of claims 15 to 22, wherein is equal to an ethyl radical.
24. A topical ophthalmic pharmaceutical composition for use according to any one of claims 15 to 23, in the form of eye drops.
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