Compositions and methods for protecting epithelial and barrier integrity

Hemichannel blockers, particularly targeting connexin43, address the compromised integrity of the RPE and BRB by reducing permeability, offering a therapeutic approach to retinal diseases.

JP7795359B2Active Publication Date: 2026-01-07OCUNEXUS THERAPEUTICS INC +1
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Patent Information

Application Number
JP2021563013
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-04-23
Filing Date
2020-04-23
Publication Date
2026-01-07
Estimated Expiration
2040-04-23

AI Technical Summary

Technical Problem

The integrity of the retinal pigment epithelium (RPE) and the blood-retinal barrier (BRB) is compromised in various retinal diseases, leading to increased permeability and associated vision loss, with connexin43 hemichannels contributing to pathological conditions such as diabetic retinopathy and diabetic macular edema.

Method used

The use of hemichannel blockers, including connexin43 blockers, to attenuate the internalization of connexin43 and modulate the permeability of the RPE and BRB, thereby maintaining or enhancing their integrity.

Benefits of technology

Hemichannel blockers effectively prevent the internalization of connexin43, reduce permeability, and maintain or restore the integrity of the RPE and BRB, potentially treating conditions like diabetic retinopathy by blocking connexin43 hemichannels.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the use of hemichannel blockers to regulate BRB integrity and function, RPE integrity and function, tight junction integrity and function, ZO-1 internalization, gap junction internalization, and / or type IV collagen levels in a subject. The retinal pigment epithelium layer, or retinal pigment epithelium (RPE), is the pigment cell layer immediately outside the neurosensory retina that nourishes retinal photoreceptors and is firmly attached to the underlying choroid and underlying retinal photoreceptors. Increased permeability of the RPE and the blood-retinal barrier is involved in numerous diseases, disorders, and conditions.
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Description

[Technical Field]

[0001] (Related patent applications) This application claims the benefit of U.S. Provisional Patent Application No. 62 / 837,697, filed April 23, 2019, which is incorporated herein by reference in its entirety.

[0002] The present invention relates generally to the retina, and more particularly to the retinal pigment epithelium and the blood-retinal barrier. Incorporation by Reference

[0003] All U.S. patents, U.S. patent application publications, foreign patents, foreign and PCT published applications, articles and other documents, references and publications mentioned herein, and all listed as cited references in any one or more patents issued herefrom, are incorporated herein by reference in their entirety. The incorporated information is part of this application and is treated as part of the text and content of this application as filed, as if all text and other content were repeated in the application. [Background technology]

[0004] The following contains information that may be useful in understanding the present invention. None of the information, publications, or documents specifically or implicitly referenced herein is admitted to be prior art or essential to any invention described or claimed herein.

[0005] Connexins are proteins that form gap junctions, intercellular channels that connect the cytoplasm of two adjacent cells and allow the movement of ions, metabolites, and signaling molecules between cells after docking of two gap junction half-channels called hemichannels. Various connexin isotypes are expressed in humans, with Connexin43 being the most common. Studies have shown that Connexin43 channels contribute to processes such as inflammation, cell migration, and physiological roles such as coordination of cardiomyocyte contraction.

[0006] Connexin channels are expressed in virtually all tissues of the body, with the exception of mature skeletal muscle cells and motile cell types such as sperm and red blood cells. A gap junction consists of two connexons (or hemichannels) that connect adjacent cells across the intercellular space, allowing intracellular molecules to flow between them. Each connexon of a gap junction resides in the membrane of an adjacent cell and is formed by the covalent oligomerization of six individual connexin (Cx) proteins. An essential requirement for the formation of a functional gap junction is the assembly of connexin proteins into a hemichannel and its insertion into the membrane. For intercellular communication, the hemichannel of one cell must dock with its counterpart on the opposing membrane of the adjacent cell to allow the transmission of molecules from one cell to the other through the gap junction.

[0007] Connexin43, a ubiquitously expressed 43-kDa protein, has also been linked to several pathological conditions, and multiple studies have provided evidence that undocked connexin43 hemichannels, rather than gap junction channels themselves, promote various connexin43-mediated deleterious processes. These include the onset of ion imbalance and calcium waves, the influx of cytotoxic molecules from the extracellular space into cells, and ATP release through open hemichannels, which trigger the inflammasome pathway. Inflammasomes are multimeric protein complexes that assemble upon sensing various stressors. Their formation leads to caspase-1-mediated activation and secretion of the pro-inflammatory cytokines pro-interleukin (IL)-1B and IL-18, which induce an inflammatory response.

[0008] Some reports indicate that connexin hemichannels are primarily patinated only during pathological conditions such as ischemic or hypoxic stress. Recent studies support the idea that connexin43 hemichannel patency may contribute to lesion spread after injuries such as retinal ischemia and spinal cord injury.See Chen YS, et al. (2015) Neuroprotection in the treatment of glaucoma - A focus on connexin43 gap junction channel blockers. Eur J Pharm Biopharm 95 (Pt B):182-193; Danesh-Meyer HV, et al. (2012) Connexin43 mimetic peptide reduces vascular leak and retinal ganglion cell death following retinal ischaemia. Brain 135 (Pt 2):506-520; Guo CX, et al . (2016) Connexin43 Mimetic Peptide Improves Retinal Function and Reduces Inflammation in a Light-Damaged Albino Rat Model. Invest Ophthalmol Vis Sci 57 (10):3961-3973; Kerr NM, et al. (2012) High pressure-induced retinal ischaemia reperfusion causes upregulation of gap junction protein connexin43 prior to retinal ganglion cell loss. Exp Neurol 234 (1):144-152; Zhang J, et al. (2013) Connexin based therapeutic approaches to inflammation in the central nervous system. In: Connexin Cell Communication Channels: Roles in the Immune System and Immunopathology. Taylor and Francis Group, CRC Press, Boca Raton, Florida, pp 273-305.

[0009] In the retina, connexin43 is expressed by vascular endothelial cells, glial cells, and retinal pigment epithelial (RPE) cells. These are cell types that make up the inner and outer blood-retinal barriers (BRBs). The outer BRB plays a critical role in the retina, particularly in separating the highly vascularized choroid, which provides 80% of the retinal blood supply, from the rest of the retina. RPE cells are also physiologically important, regulating retinal glucose homeostasis, angiogenic balance, and photoreceptor function. RPE cell pathology has been linked to numerous retinal diseases, including diabetic retinopathy, a chronic retinal disease caused by hyperglycemia-related vascular pathology, the later stages of which are characterized by BRB leakage and neovascularization with the formation of new leaky blood vessels. Durham JT, Herman IM (2011) Microvascular modifications in diabetic retinopathy. Curr Diab Rep 11 (4):253-264.

[0010] Studies have shown that the pathological events characteristic of diabetic retinopathy occur primarily in the presence of both hyperglycemia and inflammation, and that blocking connexin43 hemichannels can protect RPE cells from pro-inflammatory cytokine release and NLRP3 inflammasome activation. See Mugisho OO, et al. (2018) The inflammasome pathway is amplified and perpetuated in an autocrine manner through connexin43 hemichannel-mediated ATP release. Biochim Biophys Acta 1862 (3):385-393. However, despite these findings, it remains unclear whether and how connexin43 affects the barrier properties of RPE cells. This is particularly important because loss of RPE-mediated BRB integrity is a key feature of diabetic macular edema, a vision-loss-inducing consequence of diabetic retinopathy. [Prior art documents] [Non-patent literature]

[0011] [Non-Patent Document 1] Chen YS, et al. (2015) Neuroprotection in the treatment of glaucoma - A focus on connexin43 gap junction channel blockers. Eur J Pharm Biopharm 95 (Pt B):182-193 [Non-patent document 2] Danesh-Meyer HV, et al. (2012) Connexin43 mimetic peptide reduces vascular leak and retinal ganglion cell death following retinal ischaemia. Brain 135 (Pt 2):506-520 [Non-patent document 3] Guo CX, et al. (2016) Connexin43 Mimetic Peptide Improves Retinal Function and Reduces Inflammation in a Light-Damaged Albino Rat Model. Invest Ophthalmol Vis Sci 57 (10):3961-3973 [Non-patent document 4] Kerr NM, et al. (2012) High pressure-induced retinal ischaemia reperfusion causes upregulation of gap junction protein connexin43 prior to retinal ganglion cell loss. Exp Neurol 234 (1):144-152 [Non-Patent Document 5] Zhang J, et al. (2013) Connexin based therapeutic approaches to inflammation in the central nervous system. In: Connexin Cell Communication Channels: Roles in the Immune System and Immunopathology. Taylor and Francis Group, CRC Press, Boca Raton, Florida, pp 273-305. Summary of the Invention [Means for solving the problem]

[0012] The invention described and claimed herein has many features and embodiments, including but not limited to those set forth or described or referenced in this brief summary. Not intended to be comprehensive, the invention described and claimed herein is included for purposes of illustration only, not limitation, and is not limited to or by the features or embodiments identified in this summary.

[0013] The pigment epithelium layer of the retina, or retinal pigment epithelium (RPE), is the pigment cell layer immediately outside the neurosensory retina that nourishes the retinal photoreceptors and is firmly attached to the underlying choroid and underlying retinal photoreceptors. Increased permeability of the RPE and the blood-retinal barrier is involved in numerous diseases, disorders, and conditions.

[0014] This patent describes the use of hemichannel blockers to attenuate the disruption of the integrity of the retinal pigment epithelium and the blood-retinal barrier.

[0015] The patent also describes the use of hemichannel blockers to attenuate ZO-1 internalization.

[0016] The patent also describes the use of hemichannel blockers to attenuate the internalization of connexins, particularly connexin 43.

[0017] The patent also describes the use of hemichannel blockers to attenuate collagen IV upregulation.

[0018] In one aspect, the present invention relates to the use of hemichannel blockers to regulate RPE permeability in a subject, including, for example, a condition characterized in whole or in part by loss of RPE integrity.

[0019] In another aspect, a method for modulating BRB integrity in a subject is provided.

[0020] In another aspect, a method for modulating tight junction integrity in a subject is provided.

[0021] In another aspect, a method of modulating type IV collagen in a subject is provided.

[0022] In another aspect, methods are provided for confirming, measuring, or evaluating the activity of compounds useful for modulating RPE permeability, BRB permeability, ZO-1 internalization, collagen IV regulation, and / or connexin hemichannel internalization using the assays described herein. Assays include tests using ARPE-19 cells. See Dunn KC, et al., ARPE-19, a human retinal pigment epithelial cell line with differentiated properties. Exp Eye Res. 1996 Feb;62(2):155-69. In one embodiment, the test assay is an ARPE-19 cell RPE disruption assay, using, for example, transepithelial resistance (TEER) and FITC-dextran dye leakage across an ARPE-19 monolayer to measure RPE layer permeability in the presence of known or potential hemichannel blockers.

[0023] This patent describes, in part, the use of compounds and methods to modulate connexin hemichannels, including connexin 43 hemichannels, to block or modulate RPE permeability and improve or maintain RPE integrity.

[0024] This patent also describes, in part, the use of compounds and methods to modulate connexin hemichannels, including connexin 43 hemichannels, to block or modulate BRB permeability and improve or maintain BRB integrity.

[0025] The methods of the invention are useful for attenuating abnormal, elevated, dysregulated, and / or otherwise undesirable levels of RPE permeability in a subject who would benefit therefrom by administering a connexin hemichannel blocker to the subject who would benefit therefrom. The methods of the invention are also useful for attenuating abnormal, elevated, dysregulated, and / or otherwise undesirable levels of BRB permeability in a subject who would benefit therefrom by administering a connexin hemichannel blocker to the subject who would benefit therefrom.

[0026] The methods of the present invention are useful for attenuating abnormal, elevated, dysregulated, and / or otherwise undesirable levels of collagen IV in a subject by administering a connexin hemichannel blocker to a subject who would benefit therefrom. For example, type VI collagen formation is associated with increased arterial stiffness in people with type 1 diabetes and can be treated with the compounds and compositions of the present invention. Type 1 diabetes increases the risk of cardiovascular disease. Aortic stiffness is an important determinant of cardiovascular risk and arterial stiffness and has been shown to be a strong predictor of mortality and cardiovascular outcomes. Arterial stiffness reflects the fragmentation and loss of elastin fibers and the accumulation of collagen fibers in the aortic media. However, the mechanisms that cause arterial stiffness are not yet fully understood. These are based, at least in part, on the patency of hemichannels in the face of high glucose and baseline inflammation, and arterial stiffness may be treated, for example, with modulators of hemichannel patency that reduce collagen IV, as described herein.

[0027] The methods of the invention are useful for attenuating abnormal, elevated, dysregulated, and / or otherwise undesirable levels of ZO-1 and / or tight junction disruption in a subject who would benefit therefrom by administering a connexin hemichannel blocker to the subject. The methods of the invention are also useful for attenuating abnormal, elevated, dysregulated, and / or otherwise undesirable levels of connexin hemichannels in a subject who would benefit therefrom by administering a connexin hemichannel blocker to the subject. These include, for example, subjects with inflammatory bowel disease and inflammatory bowel disease associated with colorectal cancer, which are characterized by inflammation that compromises the integrity of the epithelial barrier and in which apical tight junction proteins are important in maintaining epithelial barrier function and regulating paracellular permeability.

[0028] It is an object of the present invention to provide a method for attenuating abnormal, elevated, dysregulated, and / or otherwise undesirable levels of RPE permeability, BRB permeability, tight junction disruption, ZO-1 internalization, connexin internalization, or type IV collagen production in a subject by administering a connexin hemichannel blocker to the subject who would benefit therefrom.

[0029] Another object of the present invention is to provide compounds, compositions, formulations, kits and methods for the treatment of diseases, disorders and conditions that benefit from modulation of RPE permeability to maintain or enhance RPE integrity.

[0030] Another object of the present invention is to provide compounds, compositions, formulations, kits, and methods for the treatment of diseases, disorders, and conditions that would benefit from modulation of BRB permeability to maintain or enhance BRB integrity. Objects of the present invention also include providing compounds, compositions, formulations, kits, and methods for the treatment of diseases, disorders, and conditions that would benefit from modulation of tight junction disruption, ZO-1 internalization, connexin internalization, and / or type IV collagen production.

[0031] In some aspects, the methods of treatment are administered to mammals, for example, humans.

[0032] In another aspect, the present invention provides hemichannel blockers for the treatment of one or more diseases, disorders, and conditions as described herein.

[0033] Hemichannel blockers useful in the present invention include compounds of Formula I, e.g., Xiflam, and / or analogs or prodrugs of any of the foregoing compounds, or peptidomimetics such as peptagon (also known as Peptide 5) or analogs or prodrugs thereof, or another hemichannel blocker, as well as other hemichannel blocker compounds described or incorporated by reference herein.

[0034] Some preferred hemichannel blockers include small molecule hemichannel blockers (e.g., Xiflam (tnaversat)). In some embodiments, the hemichannel blocker is a small molecule other than Xiflam, such as a hemichannel blocker described in Formula I or Formula II of U.S. Patent Application Publication No. 20160177298 (Colin Green, et al.), the disclosure of which is incorporated herein by reference in its entirety. Various preferred embodiments include the use of small molecules that block or improve or otherwise antagonize or inhibit hemichannel patency to treat diseases, disorders, and conditions characterized, at least in part, by abnormal, high, dysregulated, and / or otherwise undesirable, unnecessary, or harmful levels of RPE or BRB or tight junction integrity, including those described or referenced herein, as well as treatments of diseases, disorders, and conditions that would benefit from modulation of RPE or BRB or tight junction integrity, tight junction disruption, ZO-1 internalization, connexin internalization, and / or type IV collagen production. In various embodiments, the small molecule that blocks or improves or inhibits hemichannel patency is a prodrug of Xiflam or an analog thereof.

[0035] In other embodiments, hemichannel blockers include peptide and peptidomimetic hemichannel blockers (e.g., peptagon, VDCFLSRPTEKT (peptidomimetic)), as well as other peptidomimetic hemichannel blockers comprising, consisting essentially of, or consisting of the amino acid sequence SRPTEKT, and other peptide hemichannel modulators, such as, for example, Gap 19. In another embodiment, the hemichannel blocker is Peptide 5, GAP 9, GAP 19, GAP 26, GAP 27, or an α-connexin carboxy-terminal (ACT) peptide, such as ACT-1 or other active anti-hemichannel peptidomimetic. In any of the aspects of the invention, the hemichannel blocker is a connexin peptide or peptidomimetic, including a peptide or peptidomimetic comprising, consisting essentially of, or consisting of a connexin extracellular domain, a transmembrane region, and a connexin carboxy-terminal peptide. The connexin hemichannel blocking peptide or peptidomimetic may or may not be modified. Connexin hemichannel-blocking peptides or peptidomimetics are produced chemically, synthetically, or by other methods. In some embodiments, the connexin hemichannel-blocking peptides or peptidomimetics are Cx43 peptides or peptidomimetics. In some aspects, the therapeutically effective modified or unmodified peptides or peptidomimetics comprise a portion of the extracellular or transmembrane domain of a connexin (such as Cx43 or Cx45), such as a portion of a connexin extracellular loop 2, including a portion of Cx43 extracellular loop 2 and a portion of Cx45 extracellular loop 2.

[0036] In another aspect, the present invention provides use of a hemichannel blocker in the manufacture of a medicament for use in treating one or more diseases, disorders, and conditions described or referenced herein. The medicament comprises, consists essentially of, or consists of a hemichannel blocker. In one embodiment, the medicament comprises, consists essentially of, or consists of a peptide hemichannel blocker. In one embodiment, the medicament comprises, consists essentially of, or consists of a peptidomimetic hemichannel blocker. In one embodiment, the medicament comprises, consists essentially of, or consists of a small molecule hemichannel blocker. In one embodiment, the medicament comprises, consists essentially of, or consists of a compound according to Formula I or Formula II of U.S. Patent Application Publication No. 20160177298. In one embodiment, the medicament comprises, consists essentially of, or consists of Xiflam (tonabersat).

[0037] The term "comprising" is synonymous with "including," "containing," or "characterized by," and is inclusive or open-ended and does not exclude additional, unrecited components or ingredients from the agent (or, in the case of a method, step). The phrase "consisting of" excludes any element, step, or ingredient not specified in the agent (or, in the case of a method, step). The phrase "consisting essentially of" refers to the specified materials and materials that do not materially affect the basic and novel properties of the agent (or, in the case of a method, step). Basic and novel features of the invention are described throughout this specification and, in some cases, include the ability of the agents and methods of the invention to block or modulate connexin gap junction hemichannels, and modulate one or more of BRB integrity, RPE integrity, tight junction integrity, BRB disruption, RPE disruption, tight junction disruption, ZO-1 internalization, connexin internalization, and / or type IV collagen production. Important changes in the basic and novel properties of the invention, including the agents and methods described herein, include unnecessary or clinically undesirable, harmful, detrimental, or deleterious reduction of hemichannel modulators and / or modulation of one or more of BRB integrity, RPE integrity, tight junction integrity, BRB disruption, RPE disruption, tight junction disruption, ZO-1 internalization, connexin internalization, and / or type IV collagen production, and in some cases modulation of one or more of BRB disruption, RPE disruption, tight junction disruption, ZO-1 internalization, and connexin internalization. In one embodiment, the agent comprises, consists essentially of, or consists of a connexin 43 hemichannel blocker, e.g., a peptidomimetic or small molecule connexin 43 hemichannel blocker. In a preferred embodiment, the agent comprises or consists essentially of Xiflam (tnaversat) or another compound of Formula I.

[0038] In another aspect, the invention provides the use of a hemichannel blocker in the manufacture of a medicament (or a package or kit containing one or more medicaments and / or containers, with or without instructions for use) for modulating hemichannels and / or treating any of the diseases, disorders, and / or conditions described or referenced herein. In one aspect, for example, the invention provides the use of a connexin hemichannel blocker, e.g., xiflam and / or an analog thereof or peptagon or an analog thereof, in the manufacture of a medicament or package or kit for treating a disorder in which modulation of hemichannels for the purposes described herein may be beneficial. In one embodiment, the medicament comprises, consists essentially of, or consists of a connexin 43 hemichannel blocker, e.g., a peptidomimetic or small molecule connexin 43 hemichannel blocker. In one embodiment, hemichannel blocker compositions useful in the invention may include a pharmaceutically acceptable carrier and may be formulated, for example, as a pill, solution, microsphere, nanoparticle, implant, matrix, or hydrogel formulation, or provided in lyophilized form.

[0039] The hemichannel that is modulated for the purposes described herein can be any connexin of interest for that purpose.

[0040] In the intestine, for example, the range of connexins includes connexin 26 (Cx26), connexin 32 (Cx32), connexin 36 (Cx36), connexin 37 (Cx37), connexin 43 (Cx43), and connexin 45 (Cx45).

[0041] In various embodiments, by way of example, the modulated hemichannels include one or more of Cx26, connexin 30 (Cx30), Cx32, Cx37, connexin 40 (Cx40), Cx43, and Cx45. In one embodiment, the modulated hemichannels include one or more of Cx37, Cx40, or Cx43 proteins. In one particular embodiment, the hemichannel and / or modulated hemichannel includes Cx43. In some embodiments, the modulated hemichannel may include or exclude any of the aforementioned connexins. In some aspects, the hemichannel blocker is a blocker of Cx37 hemichannels, Cx43 hemichannels, Cx40 hemichannels, and / or Cx45 hemichannels. In certain desirable embodiments, the hemichannel blocker is a connexin 43 hemichannel blocker. The pharmaceutical compositions of the invention for any of the uses featured herein may also include a hemichannel blocker that can inhibit or block Cx26, Cx30, Cx32, Cx36, Cx37, Cx40, Cx43, Cx45, or any other connexin or connexin hemichannel. In one embodiment, the hemichannel blocker blocks connexin hemichannels in blood vessels. In another embodiment, the hemichannel blocker blocks connexin hemichannels in microvessels. In another embodiment, the hemichannel blocker blocks connexin hemichannels in capillaries. In another embodiment, the hemichannel blocker blocks connexin hemichannels in endothelium.

[0042] Another embodiment of this aspect of the invention provides a pharmaceutical pack comprising a small molecule or other hemichannel blocker. In one embodiment, the hemichannel blocker is Xiflam. In another embodiment, the hemichannel blocker is peptagon.

[0043] In another aspect of the invention, the effect of hemichannel blocker treatment in a subject is assessed or monitored using methods to monitor RPE integrity or BRB integrity, tight junction integrity, or collagen IV production.

[0044] The activity of hemichannel blockers may be evaluated using specific biological assays. The effects of known or candidate hemichannel blockers on molecular movement can be identified, evaluated, or screened using the methods described in the Examples below, or other methods known in the art or equivalent for determining the passage of compounds through connexin hemichannels. Various methods are known in the art, including dye transfer experiments, such as the transfer of molecules labeled with detectable markers, as well as the transmembrane passage of small fluorescent-permeant tracers, which are widely used to study the functional state of hemichannels. Various embodiments of this aspect of the invention are described herein, including methods for use in identifying or evaluating the ability of a compound to block a hemichannel, comprising: (a) combining a test sample with a test system, the test sample including one or more test compounds, and the test system including a system for assessing hemichannel blockade, the system being characterized by exhibiting increased movement of, e.g., a dye or labeled metabolite in response to, e.g., the introduction of hypoxia or ischemia into the system, a mediator of inflammation, or other compounds or events that induce hemichannel opening (e.g., a decrease in extracellular Ca2+); and (b) determining the presence or amount of the increase, e.g., in the dye or other labeled metabolite in the system. Positive and / or negative controls may also be used. Optionally, a predetermined amount of a hemichannel blocker (e.g., peptagon or xiflam) may be added to the test system. As described herein, in one embodiment, hemichannel blockers, such as peptagon and xiflam, exhibit activity in in vitro assays on the order of less than about 1-5 nM, preferably less than about 10 nM, and more preferably less than about 50 pM. In in vivo assays, these compounds preferably exhibit hemichannel blockade at concentrations of less than about 10-100 micromolar (μM), more preferably less than about 50 μM. Other hemichannel blockers may be within these ranges, or may be in the range of less than about 200 pM. Assays are provided for confirming, measuring, or evaluating the activity of useful hemichannel modulating compounds as described herein.Assays include those using ARPE-19 cells. See Dunn KC, et al., ARPE-19, a human retinal pigment epithelial cell line with differentiated properties. Exp Eye Res. 1996 Feb;62(2):155-69. In one embodiment, the test assay is an ARPE-19 cell RPE disruption assay, using, for example, transepithelial resistance (TEER) and FITC-dextran dye leakage across an ARPE-19 monolayer to measure RPE layer permeability in the presence of known or potential hemichannel blockers. In an embodiment of the present invention, for example, the following items are provided: (Item 1) A method for modulating the integrity of the blood-retinal barrier (BRB) in a subject, comprising administering to the subject an effective amount of a hemichannel blocker. (Item 2) A method for modulating the integrity of the retinal pigment epithelium (RPE) in a subject, comprising administering to the subject an effective amount of a hemichannel blocker. (Item 3) A method of modulating tight junction integrity in a subject, comprising administering to the subject an effective amount of a hemichannel blocker. (Item 4) A method for modulating the integrity of type IV collagen production in a subject, comprising administering to the subject an effective amount of a hemichannel blocker. (Item 5) 1. A method for modulating gap junction plaque internalization in a cell in a subject, the method comprising administering to the subject an effective amount of a hemichannel blocker. (Item 6) 6. The method according to any one of items 1 to 4 or 5, wherein the hemichannel blocker is a connexin 43 hemichannel blocker. (Item 7) 6. The method of any of items 1 to 4 or 5, wherein the hemichannel blocker is a small molecule hemichannel blocker according to formula I. (Item 8) 8. The method of claim 7, wherein the small molecule hemichannel blocker is N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam). (Item 9) 8. The method of claim 7, wherein the small molecule hemichannel blocker is a Xiflam prodrug. (Item 10) 6. The method of any of items 1 to 4 or 5, wherein the hemichannel blocker is a peptidomimetic connexin 43 hemichannel blocker. (Item 11) 11. The method of claim 10, wherein the peptidomimetic connexin 43 hemichannel blocker is Peptide 5. (Item 12) 2. The method of claim 1, wherein the hemichannel blocker is administered to achieve a final circulating concentration of the hemichannel blocker in the range of about 10 to about 250 micromolar. (Item 13) 2. The method of claim 1, wherein the hemichannel blocker is administered by injection. (Item 14) 2. The method of claim 1, wherein the hemichannel blocker is administered orally. (Item 15) 10. The method of claim 1, wherein the hemichannel blocker is administered as needed (PRN) or on a predetermined schedule, or both. (Item 16) Item 10. The method of item 1, wherein the subject is a human. [Brief explanation of the drawings]

[0045] [Figure 1] Figures 1a-b show that treatment with hemichannel blocker Peptide 5 prevented the decrease in TEER and the increase in FITC-dextran permeability after HG and cytokines in ARPE-19 cells. (Figure 1a) Cultivating cells with a combination of HG and cytokines resulted in a statistically significant decrease in TEER at 48 h (p = 0.0007) and 72 h (p = 0.0030). Peptide 5 treatment prevented the decrease in TEER at both time points, with no statistically significant differences between Peptide 5-treated and basal cells. Statistical analysis was performed using two-way ANOVA with Dunnett's multiple comparison test. (Figure 1b) Cultivating cells with a combination of HG and cytokines also increased the permeability of FITC-dextran across the cell monolayer at 72 h (p = 0.0016), which was prevented by Peptide 5 treatment compared to basal conditions. Statistical analysis was performed using one-way ANOVA with Dunnett's multiple comparison test. n=3, **p≦0.01, ***p≦0.001 [Figure 2] Figures 2a-b show that treatment with the hemichannel blocker Peptide 5 prevented cell membrane destabilization after HG and cytokine application. HG and cytokines did not induce cell death but resulted in a small but significant release of LDH (p<0.0001). However, Peptide 5 treatment prevented LDH release compared to basal conditions. Statistical analysis was performed using one-way ANOVA with Dunnett's multiple comparison test. ****p<0.0001, n=3, Scale bar=100 μm. [Figure 3] Figure 3 shows that treatment with the hemichannel blocker Peptide 5 protected against the loss of ZO-1 (green) localization at the plasma membrane. Basally, ZO-1 was localized at the plasma membrane (white arrow). HG and cytokines resulted in a loss of membrane localization and increased internalization of ZO-1 into the cytoplasm. However, Peptide 5 treatment maintained ZO-1 localization at the plasma membrane similar to the basal state. Scale bar = 50 μm. [Figure 4] Figure 4 shows that treatment with hemichannel blockade using Peptide 5 prevented the upregulation of collagen IV (red) after HG and cytokine application. HG and cytokines resulted in upregulation of collagen IV compared to the basal state (p=0.0180). Peptide 5 treatment maintained collagen IV expression at basal levels with no difference in expression between Peptide 5-treated and basal cells. Scale bar = 100 μm. Statistical analysis was performed using one-way ANOVA with Dunnett's multiple comparison test. *p<0.05, n=3. [Figure 5]Figures 5a–c show that exogenously added ATP reversed the protection conferred by Peptide 5 after HG and cytokine application. (Figure 5a) HG and cytokines increased ATP release compared to the basal state (p = 0.0014), whereas Peptide 5 treatment was able to reduce ATP release (p = 0.0003), resulting in no difference between the basal and Peptide 5-treated states. Statistical analysis was performed using one-way ANOVA with Dunnett's multiple comparison test. ** p ≤ 0.01, *** p ≤ 0.001, ns = not significant, n = 3. (Figure 5b) LDH release induced by HG and cytokines was reduced by Peptide 5 treatment (p < 0.0001). However, in the presence of ATP, LDH levels increased to injury levels, and there was no significant difference between HG and cytokine-injured cells and HG, cytokines, Peptide 5, and ATP-injured cells. Statistical analysis was performed using one-way ANOVA with Dunnett's multiple comparison test. ****p<0.0001, ns=not significant, n=3. (Figure 5c) Peptide 5 treatment prevented the redistribution of connexin43 protein (green) from plasma membrane plaques. Under basal conditions, connexin43 protein was localized to the plasma membrane (white arrow). HG and cytokine treatments resulted in a loss of membrane plaque localization and increased internalization of connexin43 into cells. However, peptide 5 treatment maintained connexin43 primarily in gap junction plaques, similar to the basal condition. In the presence of exogenously added ATP, there was also a loss of connexin43 at the plasma membrane, similar to the HG and cytokine groups. Scale bar = 50 μm. DETAILED DESCRIPTION OF THE INVENTION

[0046] The retinal pigment epithelium (RPE) is a specialized epithelium located between the neural retina and the choriocapillaris, where it forms the outer blood-retinal barrier (BRB). The main functions of the RPE are (1) transport of nutrients, ions, and water, (2) light absorption and protection against photooxidation, (3) remerization of all-trans-retinal membranes to 11-cis-retinal membranes, which are important for the visual cycle, (4) phagocytosis of decidual photoreceptor membranes, and (5) secretion of factors essential for the structural integrity of the retina.

[0047] In healthy eyes, the RPE secretes pigment epithelium-derived factor (PEDF), which helps maintain the retinal and choriocapillaris structures in two ways: as a neuroprotective factor and as an antiangiogenic factor that can inhibit endothelial cell proliferation and stabilize the choriocapillaris endothelium. A review is provided in Simo R, et al., "The Retinal Pigment Epithelium: Something More than a Constituent of the Blood-Retinal Barrier—Implications for the Pathogenesis of Diabetic Retinopathy," Journal of Biomedicine and Biotechnology, Volume 2010, Article ID 190724 (page 15). Another vasoactive factor synthesized by the RPE is vascular endothelial growth factor (VEGF), which is secreted in low concentrations by the RPE in healthy eyes to prevent endothelial cell apoptosis, is essential for the intact endothelium of the choriocapillaris, and acts as a permeability factor that stabilizes endothelial fenestrations. Ibid. In healthy eyes, PEDF and VEGF are secreted on opposite sides of the RPE. PEDF is secreted apically, acting on neurons and photoreceptors, whereas most VEGF is secreted basally, acting on the choroidal endothelium. (Id.) Overproduction of VEGF has been described in the development of proliferative diabetic retinopathy and diabetic macular edema, and downregulation of PEDF expression by elevated glucose concentrations has been observed in cultured human RPE cells, leading to the proposal of strategies to block VEGF or stimulate PEDF as novel therapeutic approaches for diabetic retinopathy.

[0048] The present application relates to the surprising discovery of modulation of hemichannel patency, which has direct and immediate impact on maintaining and improving RPE and BRB integrity. See Examples 1-6 below. Surprisingly, it has been discovered that connexin hemichannels play a critical role in BRB and RPE integrity, and have important implications in the treatment of various diseases, disorders, and conditions characterized in whole or in part by loss of BRB and / or RPE integrity, and importantly, increased permeability thereof.

[0049] It has also been discovered that hemichannel blockers, including, for example, connexin 43 hemichannel blockers, can be used to attenuate ZO-1 internalization, and therefore, such hemichannel blockers can be used in methods of modulating barrier permeability to prevent barrier dysfunction in pathological conditions.

[0050] It has also been discovered that hemichannel blockers, including, for example, connexin 43 hemichannel blockers, can be used to attenuate upregulation of type IV collagen. Thus, hemichannel blockers can be used in methods for modulating upregulation of collagen IV in pathological conditions.

[0051] We demonstrated that application of high glucose (HG) and cytokines resulted in a reduction in transepithelial resistance (TEER) and an increase in FITC-dextran dye leakage across a monolayer of RPE cells. Furthermore, the results indicate that this loss of RPE barrier integrity was not due to cell death but was caused by internalization of the tight junction protein ZO-1, leading to upregulation of collagen IV.

[0052] Importantly, as shown in Examples 1-6, connexin 43 hemichannel blockade was found to protect against reduced TEER, increased FITC-dextran dye leakage, ZO-1 internalization, and upregulation of collagen IV deposition. Studies have reported increased collagen IV secretion in human DME patients compared with controls. Mugisho OO, et al. (2018) Intravitreal pro-inflammatory cytokines in non-obese diabetic mice: Modeling signs of diabetic retinopathy. PLoS One 13 (8):e0202156.

[0053] To better understand the mechanism by which hemichannels mediate these processes, ATP was restored to the culture medium in the presence of the Peptide 5 hemichannel blocker. Results showed that ATP reversed the protection conferred by hemichannel blockade, thereby eliminating the differences between HG and cytokine-only cells and HG, cytokine, Peptide 5, and ATP cells in terms of LDH release and the localization of connexin43 gap junction plaques.

[0054] definition A "small molecule" is defined herein as having a molecular weight of less than about 600-900 daltons and is generally an organic compound. A small molecule can be the active agent of a hemichannel blocker prodrug. In one embodiment, the small molecule is less than 600 daltons. In another embodiment, the small molecule is less than 900 daltons.

[0055] As used herein, "treatment" (and grammatical variations thereof, such as "treat" or "treating") refers to a clinical intervention to alter the natural course of the individual, tissue, or cell being treated, and can be performed for prophylaxis or during clinical pathology. Desirable effects of treatment include, but are not limited to, preventing the onset or recurrence of a disease, disorder, or condition, alleviating signs or symptoms, reducing the direct or indirect pathological consequences of a disease, reducing the rate of disease progression, ameliorating or alleviating pathology, and achieving remission or improving prognosis. In some embodiments, the compounds, methods, and compositions of the invention can be used to delay the onset of a disease, disorder, or condition or to slow the progression of a disease, disorder, or condition. The term does not necessarily imply that a subject is treated until complete recovery. Thus, "treatment" includes reducing, alleviating, or ameliorating the symptoms or severity of a particular disease, disorder, or condition, or preventing or otherwise reducing the risk of developing a particular disease, disorder, or condition. It may also include maintaining or promoting complete or partial remission of a condition. As used herein, "treatment" also includes improving RPE integrity, BRB integrity, and tight junction integrity in a subject, and / or reducing collagen IV production in a subject, following administration of a hemichannel blocker.

[0056] The term "treating" a disease, condition, or disorder, etc., can refer to preventing, slowing, reducing, diminishing, arresting, and / or reversing the disorder, disease, or condition, and / or maintaining or improving RPE or BRB integrity, tight junction integrity, attenuation of RPE or BRB or tight junction disruption, ZO-1 internalization, connexin internalization, and / or collagen IV production.

[0057] The term "prevent" means to prevent in whole or in part, or to ameliorate or control

[0058] As used herein, " effective amount " refers to the amount that is effective at the required dosage and for the required period of time to achieve desired therapeutic or preventive results.For example, but not limited to, " effective amount " disclosed herein can refer to the amount of compound or composition that can treat the signs and / or symptoms of the disease, disorder or condition that involves the disorders of BRB integrity, disorders of RPE integrity, disorders of tight junction integrity or increased collagen IV production, and as described herein, or can refer to the amount of hemichannel compound or composition that can beneficially regulate the disorders of BRB integrity, disorders of RPE integrity, disorders of tight junction integrity or increased collagen IV production.

[0059] As used herein, the "therapeutically effective amount" of a substance / molecule, agonist, or antagonist of the present invention can vary depending on factors such as the individual's condition, age, sex, and weight, as well as the ability of the substance / molecule, agonist, or antagonist to induce a desired response in the individual. A therapeutically effective amount is also preferably an amount in which any toxic or harmful effects of the substance / molecule, agonist, or antagonist are outweighed by the therapeutically beneficial effects. A therapeutically effective amount of a hemichannel blocker beneficially regulates impaired BRB integrity, impaired RPE integrity, impaired tight junction integrity, and / or increased collagen IV production in a subject.

[0060] As used herein, a "prophylactically effective amount" refers to an amount effective, at dosages and for periods of time necessary, to achieve the desired prophylactic result. Typically, but not necessarily, the prophylactically effective amount will be less than the therapeutically effective amount, since a prophylactic dose is used in subjects prior to or at an earlier stage of a disease, disorder, or condition.

[0061] The term "pharmaceutical formulation" refers to a preparation in a form that is capable of effecting the biological activity of the active ingredient (e.g., a hemichannel blocker) contained therein and that does not contain additional ingredients that are unacceptably toxic to the subject to which the formulation is administered.

[0062] As used herein, "pharmaceutically acceptable carrier" refers to components of a pharmaceutical formulation, other than the active ingredient, that may be safely administered to a subject. Pharmaceutically acceptable carriers include, but are not limited to, buffers, excipients, stabilizers, and preservatives.

[0063] As used herein, the term "subject" or similar terms, including "individual" and "patient," all of which may be used interchangeably herein, refer to any mammal, including humans, domestic and farm animals, and zoo, zoo, sport, or pet animals (e.g., dogs, horses, cats, sheep, pigs, cows, etc.). Preferred mammals are humans, including adults, children, and the elderly. Preferred sport animals are horses and dogs. Preferred pet animals are dogs and cats. A subject may also be an aquatic park animal, such as a dolphin, whale, seal, or walrus. In certain embodiments, the subject, individual, or patient is a human.

[0064] As used herein, the term "hemichannel" refers to a part of a gap junction (two hemichannels or connexons connect across the intercellular space between adjacent cells to form a gap junction), typically composed of several homologous or heterologous connexin proteins, i.e., a hexamer of homomeric / heteromeric connexin proteins, which form the gap junction pore between the cytoplasm of two adjacent cells. A hemichannel is provided by a cell on one side of the junction, and two hemichannels from opposing cells usually join together to form a complete intercellular hemichannel. However, in some cells, and under some circumstances, the hemichannel itself is active as a conduit between the cytoplasm and the extracellular space, allowing the transmission of ions and small molecules.

[0065] Compounds of Formula I, e.g., Xiflam, and / or analogs or prodrugs of any of the foregoing compounds, can modulate the function and / or activity of hemichannels, preferably compounds comprising any type of connexin protein. Therefore, unless the context requires otherwise, reference to a "hemichannel" should be interpreted to include hemichannels comprising, consisting essentially of, or consisting of any one or more of a number of different connexin proteins. However, by way of example, a hemichannel can comprise one or more of any connexin, including those specifically mentioned above. In one embodiment, a hemichannel comprises one of the aforementioned connexins. In one embodiment, a hemichannel comprises one or more of connexins 26, 30, 32, 36, 37, 40, 45, and 47. In one embodiment, a hemichannel comprises one of connexins 37, 40, or 43. In one embodiment, a hemichannel is a connexin 43 hemichannel. In one embodiment, a hemichannel is a vascular hemichannel. In one embodiment, the hemichannel is a connexin hemichannel found in vascular endothelial cells. In one embodiment, the hemichannel is a connexin hemichannel found in vascular smooth muscle cells. In one embodiment, the hemichannel is a connexin hemichannel found in endothelial or epithelial cells outside the vasculature (e.g., intestinal endothelium or epithelium). In one specific embodiment, the hemichannel comprises one or more of connexin 30, 37, and connexin 43. In one specific embodiment, the hemichannel comprises connexin 30. In one specific embodiment, the hemichannel comprises connexin 37. In one specific embodiment, the hemichannel comprises connexin 43. In one embodiment, the hemichannel comprises one or more connexins excluding connexin 26. In one embodiment, the composition can include or exclude hemichannel blockers of any connexin, including those listed above.

[0066] Hemichannels and hemichannels can be present in any type of cell. Thus, unless the context requires otherwise, reference to "hemichannel" or "hemichannel" should be construed to include reference to hemichannels or hemichannels present in any cell type. In one embodiment of the invention, the hemichannels or hemichannels are present in cells within an organ, or in a cancer or tumor. In one embodiment, the hemichannels are vascular hemichannels. In one embodiment, the hemichannels are connexin hemichannels found in vascular endothelial cells and / or vascular smooth muscle cells.

[0067] As used herein, "modulation of a hemichannel" refers to modulation of one or more functions and / or activities of a hemichannel, typically the flow of molecules between cells through the hemichannel. Such functions and activities include, for example, the flow of molecules from the extracellular space or environment into the cell through the hemichannel and / or the flow of molecules from the intracellular space or environment of the cell to the extracellular space or environment through the hemichannel. Compounds useful for modulating hemichannels may also be referred to as "hemichannel modulators."

[0068] Modulation of hemichannel function may be achieved by any means. However, by way of example only, modulation may occur by one or more of inducing or promoting hemichannel closure; preventing, blocking, inhibiting, or reducing hemichannel opening; and initiating, inducing, or promoting cellular internalization of hemichannels and / or gap junctions. The use of terms such as "block," "inhibit," "prevent," "reduce," and "antagonize" does not imply complete blockage, inhibition, prevention, or antagonism, although this may be preferred, and should be interpreted to include partial blockage, inhibition, prevention, or antagonism to at least reduce hemichannel and / or hemichannel function or activity. Similarly, "inducing" or "promoting" should not be interpreted to imply complete internalization of a hemichannel (or hemichannels), but should be interpreted to include partial internalization to at least reduce hemichannel function or activity.

[0069] As used herein, the term "hemichannel blocker" refers to a compound that interferes with the passage of molecules through connexin hemichannels. Hemichannel blockers can block or reduce the opening of hemichannels, block or reduce the release of molecules through the hemichannel into the extracellular space, and / or block or reduce the entry of molecules through the hemichannel into the intracellular space. Hemichannel blockers include compounds that completely or partially block hemichannel leakage or the passage of molecules into or out of the extracellular space. Hemichannel blockers also include compounds that reduce the probability of hemichannel opening. The probability of opening is the ratio of the time the channel is closed to the time it is open (reviewed in Goldberg GS, et al., "Selective permeability of gap junction channels," Biochimica et Biophysica Acta 1662 (2004) 96-101). Examples of hemichannel blockers include peptides, small molecules, antibodies, and antibody fragments. Hemichannel blockers include hemichannel modulators. Hemichannel blockers can directly or indirectly interfere with the passage of molecules through connexin hemichannels.

[0070] As used herein, the terms "modulating RPE integrity" and "modulating BRB integrity" refer to maintaining or improving the integrity and / or function, or slowing the decline of RPE or BRB integrity and / or function. This also refers, for example, to improving permeability, i.e., reducing undesirable increases. Modulating RPE or BRB integrity is achieved using hemichannel blockers and is useful in treating diseases, disorders, and conditions characterized in whole or in part by pathological, abnormal, or otherwise undesirable or undesirable decline in RPE or BRB integrity and / or function. Compounds useful for modulating RPE or BRB integrity may be referred to as "RPE modulators or BRB modulators." The compounds of the present invention may be used in methods of treatment to modulate the integrity of the RPE or BRB, for example, modulating the integrity of the RPE or BRB to improve, equalize, and / or smooth the integrity of the RPE or BRB, including use in methods of treatment, in whole or in part, of a disease, disorder, or condition characterized by a pathological, abnormal, or otherwise unfavorable or undesirable decline in the integrity of the RPE or BRB. The integrity of the RPE and BRB is essential to prevent uncontrolled leakage of material across the barrier created by cell-cell adhesions and tight junctions between cells.

[0071] As used herein, the terms "modulating tight junction integrity" and "modulating tight junction integrity" refer to maintaining or improving the integrity and / or function, or slowing the decline of tight junction integrity and / or function. This also refers, for example, to improving permeability, i.e., reducing undesirable increases. Tight junction integrity modulation is achieved using hemichannel blockers and is useful in treating diseases, disorders, and conditions characterized in whole or in part by pathological, abnormal, or otherwise undesirable or undesirable decline in tight junction integrity and / or function. Compounds useful for modulating tight junction integrity may also be referred to as "tight junction modulators." The compounds of the present invention may be used in therapeutic methods for modulating tight junction integrity, e.g., modulating tight junction integrity to improve, equalize, and / or smooth tight junction integrity, including use in methods for treating all or part of a disease, disorder, or condition characterized by a pathological, abnormal, or otherwise undesirable or undesirable decline in tight junction integrity.

[0072] As used herein, the terms "modulation of type IV collagen" and "modulation of type IV collagen" refer to reducing or slowing the increase in type IV collagen production. They also refer to improving type IV collagen production, i.e., reducing undesirable increases. Modulation of type IV collagen production is achieved using hemichannel blockers and is useful for treating diseases, disorders, and conditions characterized in whole or in part by pathological, abnormal, or otherwise undesirable or undesirable increases in type IV collagen production. Compounds useful for modulating type IV collagen production may also be referred to as "type IV collagen modulators." The compounds of the present invention may also be used in therapeutic methods for modulating type IV collagen production, where type IV collagen production is modulated (e.g., type IV collagen production is reduced, delayed, equalized, and / or smoothed), including methods for treating diseases, disorders, or conditions characterized in whole or in part by pathological, abnormal, or otherwise undesirable or undesirable increases in type IV collagen production.

[0073] Inflammasomes are multiprotein complexes containing caspase-1, PYCARD, NALP, and optionally caspase-5 (also known as caspase-11 or ICH-3). The exact composition of inflammasomes depends on the activator that initiates inflammasome assembly. Inflammasomes promote the maturation of the inflammatory cytokines interleukin-1β (IL-1β) and interleukin-18 (IL-18). Hemichannel blockers according to the present invention can regulate or control inflammasome activity and inflammasome pathway activation. Target inflammasomes of hemichannel blockers include the NLRP3 inflammasome.

[0074] The terms "peptide," "peptidomimetic," and "mimetic" include synthetic or genetically engineered compounds that may have substantially the same structural and functional characteristics of the protein regions they mimic. In the case of connexin hemichannels, these may, for example, mimic the extracellular loops of hemichannel connexins.

[0075] As used herein, the term "analog" or "peptide analog" refers to a compound with properties similar to those of a template peptide and may be a non-peptide drug. A "peptidomimetic" (also known as a "peptide mimetic") includes peptide-based compounds, but also includes non-peptide-based compounds, such as peptide analogs. Peptide mimetics that are structurally similar to therapeutically useful peptides may be used to produce equivalent or enhanced therapeutic or prophylactic effects. Peptides and peptidomimetics may, in some embodiments, be modified or unmodified. Generally, a peptidomimetic is structurally identical to or similar to a model polypeptide (i.e., a polypeptide having a biological or pharmacological function or activity), but may also have one or more peptide linkages, optionally replaced by linkages selected from the group consisting of, for example, -CHNH-, -CHS-, -CH-CH-, -CH=CH- (cis and trans), -COCH-, -CH(OH)CH-, and -CHSO-. The mimetic may be They may be composed entirely of natural amino acids, synthetic compounds, or non-natural analogs of amino acids, or they may be chimeric molecules composed of partly natural peptide amino acids and partly non-natural analogs of amino acids. The mimics may also contain any amount of conservative substitutions of natural amino acids, as long as such substitutions do not substantially alter the mimetic's activity. In the case of connexin hemichannels, they may, for example, mimic the hemichannel extracellular loops involved in connexon-connexon docking and cell-cell channel formation. Peptide mimetics include those described herein as well as those known in the art, whether currently known or later developed. Peptide and peptidomimetic hemichannel blockers may be modified to increase stability, improve bioavailability, and / or increase cell membrane permeability.

[0076] The patent describes novel methods for modulating BRB integrity and function, RPE integrity and function, tight junction integrity and function, and type IV collagen production. BRB integrity, RPE integrity, tight junction integrity, and type IV collagen production are abnormal, dysregulated, or impaired and may be improved by the methods of the invention in several diseases, disorders, or conditions, some of which are characterized by undesirable or pathological levels of BRB permeability, RPE permeability, tight junction disruption, and / or type IV collagen production.

[0077] Blockers of hemichannel patency, including hemichannel blockers, include small peptides and small molecule blockers.

[0078] The present invention is a method for modulating BRB integrity, RPE integrity, tight junction integrity, type IV collagen production by administration of hemichannel blockers (such as peptagons), and / or analogs thereof, compounds of Formula I (e.g., Xiflam), and / or analogs or prodrugs of any of the foregoing compounds, for the treatment of, inter alia, diseases, disorders, or conditions in which modulation of the RPE, modulation of BRB, modulation of tight junctions, and / or modulation of type IV collagen may be beneficial.

[0079] In some embodiments, the invention features the use of a compound of Formula I (e.g., Xiflam), and / or an analog or prodrug of any of the foregoing compounds, to directly and immediately block Cx43 hemichannels and cause concentration- and time-dependent modulation of RPE integrity, BRB integrity, tight junction integrity, and / or modulation of type IV collagen production.

[0080] Connexins In various embodiments, the modulated hemichannel is any connexin hemichannel. In certain embodiments, the modulated hemichannel is a hemichannel, a connexin 26 (Cx26) hemichannel, a connexin 30 (Cx30) hemichannel, a connexin 32 (Cx32) hemichannel, a connexin 36 (Cx36) hemichannel, a connexin 37 (Cx37) hemichannel, a connexin 40 (Cx40) hemichannel, a connexin 40.1 (Cx40.1), a connexin 43 (Cx43) hemichannel, a connexin 45 (Cx45) hemichannel, a connexin 46 (Cx46) hemichannel, or a connexin 47 (Cx47) hemichannel (Cx40). In one embodiment, the modulated hemichannel comprises one or more of Cx26, Cx30, Cx32, Cx36, Cx37, Cx40, Cx43, Cx45, and / or Cx47 proteins. In one specific embodiment, the modulated hemichannel is a Cx37 and / or Cx40 and / or Cx43 hemichannel. In one specific embodiment, the modulated hemichannel is a Cx30 and / or Cx43 and / or Cx45 hemichannel. In some embodiments, the modulated hemichannel may include or exclude any of the aforementioned connexin proteins. In some aspects, the hemichannel blocker is a blocker of a Cx43 hemichannel, a Cx40 hemichannel, and / or a Cx45 hemichannel. In certain desirable embodiments, the hemichannel blocker is a connexin 43 blocker. The pharmaceutical compositions of the invention for any of the uses featured herein may also include a hemichannel blocker that can inhibit or block Cx26, Cx30, Cx31.1, Cx36, Cx37, Cx40, Cx45, Cx50, or Cx57 hemichannels, or any other connexin hemichannel (including homologous and heterologous hemichannels). In some embodiments, the hemichannel that is modulated may include or exclude any of the foregoing connexin hemichannels, or may be a heteromeric hemichannel.

[0081] In one embodiment, the hemichannel blocker used in any administration, co-administration, composition, kit, or treatment method of the present invention is a Cx43 hemichannel blocker. Other embodiments include Cx45 hemichannel blockers, Cx30 hemichannel blockers, Cx37 hemichannel blockers, Cx40 hemichannel blockers, and blockers of Cx26, Cx31.1, Cx36, Cx50, and / or Cx57 hemichannels, or hemichannel blockers comprising, consisting essentially of, or consisting of any other connexin described above or herein. Some embodiments may include or exclude any of the aforementioned connexins or hemichannels, or others described in this patent.

[0082] Hemichannel blockers Small molecule hemichannel blockers Examples of hemichannel blockers include small molecule hemichannel blockers (e.g., Xiflam (tnaversat)). In some embodiments, the hemichannel blocker is a small molecule other than Xiflam, such as, for example, a hemichannel blocker described in Formula I. Various preferred embodiments include the use of small molecules that block, improve, or otherwise antagonize or inhibit hemichannel patency to treat the diseases, disorders, and conditions described or referenced herein. In various embodiments, the small molecule that blocks, improves, or inhibits hemichannel patency is a prodrug of Xiflam or an analog thereof.

[0083] In some embodiments, the invention features the use of small molecule hemichannel blockers, including, for example, compounds of Formula I, such as Xiflam, and / or analogs or prodrugs of any of the foregoing compounds, to block Cx43 hemichannels, causing convergent and time-dependent regulation of RPE integrity and function, BRB integrity and function, tight junction integrity and function, and function and / or regulation of type IV collagen production.

[0084] As an example, the hemichannel blocker Xiflam is known by the IUPAC names N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide or (3S-cis)-N-(6-acetyl-3,4-dihydro-3-hydroxy-2,2-(dimethyl-d6)-2H-1-benzopyran-4-yl)-3-chloro-4-fluorobenzamide.

[0085] In one embodiment, Xiflam and / or its analogs or prodrugs are selected from the group of compounds having Formula I: [ka] During the ceremony, Y is C-R1; R1 is acetyl; R2 is hydrogen, C 3-8 Cycloalkyl, C 1-6 The alkyl is optionally interrupted by oxygen or substituted by hydroxy, and 1-6 Alkoxy or substituted aminocarbonyl, C 1-6 Alkyl carbonyl, C 1-6 Alkoxycarbonyl, C 1-6 Alkylcarbonyloxy, C 1-6 alkoxy, nitro, cyano, halo, trifluoromethyl, or CF3S; or the group CF3-A-, where A is -CF2-, -CO-, -CH2-, CH(OH), SO2, SO, CH2-O-, or CONH; or the group CF2H-A'-, where A' is oxygen and sulfur, SO, SO2, CF2, or CFH; trifluoromethoxy, C 1-6 Alkyl sulfinyl, perfluoro, C 2-6 Alkyl sulfonyl, C 1-6 Alkyl sulfonyl, C 1-6 Alkoxysulfinyl, C 1-6alkoxysulfonyl, aryl, heteroaryl, arylcarbonyl, heteroarylcarbonyl, phosphono, arylcarbonyloxy, heteroarylcarbonyloxy, arylsulfinyl, heteroarylsulfinyl, arylsulfonyl, or heteroarylsulfonyl, any aromatic moiety optionally substituted; 1-6 Alkylcarbonylamino, C 1-6 Alkoxycarbonylamino, C 1-6 Alkyl-thiocarbonyl, C 1-6 Alkoxy-thiocarbonyl, C 1-6 Alkyl-thiocarbonyloxy, 1-mercaptoC 2-7 alkyl, formyl, or aminosulfinyl, aminosulfonyl, or aminocarbonyl, any amino moiety containing one or two C 1-6 optionally substituted with alkyl groups or C 1-6 Alkylsulfinylamino, C 1-6 Alkyl sulfonyl amino, C 1-6 Alkoxysulfinylamino or C 1-6 Alkoxysulfonylamino, or C 1-6 an ethylenyl group terminally substituted with an alkylcarbonyl, and 1-6 alkyl)NOH or -C(C 1-6 alkyl)NNH2 or one or two C 1-6 Alkyl or C 2-7 Amino optionally substituted with alkanoyl and one of R3 and R4 is hydrogen or C 1-4 alkyl and the other is C 1-4 alkyl, CF3 or CH2× a is fluoro, and chloro, bromo, iodo, C 1-4 Alkoxy, hydroxy, C 1-4 Alkylcarbonyloxy, -SC 1-4 Alkyl, nitro, and amino are substituted with one or two C 1-4 Optionally substituted with alkyl groups, cyano or C 1~4 alkoxycarbonyl; or R and R 4はBoth, C 1-4 C optionally substituted with alkyl 2-5 is polymethylene, R5 is C 1-6 Alkylcarbonyloxy, benzoyloxy, ONO2, benzyloxy, phenyloxy, or C 1-6 R6 is alkoxy and R6 and R9 are hydrogen, or R5 is hydroxy and R6 is hydrogen or C 1-2 alkyl and R9 is hydrogen; R7 is heteroaryl or phenyl, both of which are C 1-4 Alkyl, cyano, azido, C 1-4 independently optionally substituted one or more times with groups or atoms selected from chloro, fluoro, bromo, iodo, nitro, amino, optionally substituted once or twice with alkoxy, trifluoromethoxy, and trifluoromethyl; R8 is hydrogen, C 1-6 Alkyl, OR 11 or NHCOR 10 where R 11 is hydrogen, C 1-6 Alkyl, formyl, C 1-6 Alkanoyl, aroyl or aryl-C 1-6 Alkyl, R 10 is hydrogen, C 1-6 Alkyl, C 1-6 Alkoxy, mono or di C 1-6 Alkylamino, Amino, Amino-C 1-6 Alkyl, Hydroxy-C 1-6 Alkyl, Halo-C 1-6 Alkyl, C 1-6 Acyloxy-C 1-6 Alkyl, C 1-6 Alkoxycarbonyl-C 1-6 - alkyl, aryl, or heteroaryl; the R8-N-CO-R7 group is cis to the R5 group; X is oxygen or NR 12 In the formula, R 12 is hydrogen or C 1-6 It is alkyl.

[0086] For any of the Markush groups described above, the group can include or exclude any of the species listed for that group, and hemichannel blockers for use in the methods of the invention may include or exclude any of these compounds.

[0087] In another embodiment, the analog of Formula I is the compound carabersat, (N-[(3R,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-4-fluorobenzamide) or trans-(+)-6-acetyl-4-(S)-(4-fluorobenzoylamino)-3,4-dihydro-2,2-dimethyl-2H-1-benzo[b]pyran-3R-ol, hemihydrate.

[0088] In certain embodiments, Xiflam and / or its analogs are in the form of a free base or a pharmaceutically acceptable salt. In other embodiments, one or more polymorphs, one or more isomers, and / or one or more solvates of Xiflam and / or its analogs may be used.

[0089] In another embodiment, the hemichannel modulating compound is selected from the group of compounds having Formula II. [ka] During the ceremony, Q is O or the formula =NHOR 43 where R 43 teeth, (i) H, C 1-4 fluoroalkyl, or optionally substituted C 1-4 alkyl; or (ii)-A 300 -R 300 where: A 300 is a direct bond, -C(O)O*-, -C(R3)(R4)O*-, -C(O)OC(R3)(R4)O*-, or -C(R3)(R4)OC(O)O*-, where the atom marked with an * is R 300is connected directly to R3 and R4 are H, fluoro, C 1-4 Alkyl, or C 1-4 independently selected from fluoroalkyl, or R3 and R4 together with the atoms to which they are attached form a cyclopropyl group; R 300 is selected from group [1], [2], [2A], [3], [4], [5] or [6]; R2 is H or BR 21 and A is a direct bond, -C(O)O*-, -C(R3)(R4)O*-, -C(O)OC(R3)(R4)O*-, or -C(R3)(R4)OC(O)O*-, where the atom marked with an * is directly bonded to R1, and R3 and R4 are H, fluoro, or C 1-4 fluoroalkyl, or R3 and R4 together with the atom to which they are attached form a cyclopropyl group. R1 is selected from the group [1], [2], [2A], [3], [4], [5] and [6], where the atom marked with ** is directly bonded to A; [ka] R5 and R6 are each independently H, C 1-4 Alkyl, C 1-4 fluoroalkyl, and benzyl, R7 is independently H, C 1-4 Alkyl, and C 1-4 fluoroalkyl; R8 is selected from the following: (i) H, C 1-4 Alkyl, or C 1-4 fluoroalkyl, (ii) the side chain of a natural or unnatural alpha amino acid or peptide described herein, and (iii) biotin or chemically conjugated to biotin; R9 is H, -N(R 11 )(R12 ), -N + (R 11)(R 12 )( R 13 )X ‐ , and -N(R 11 )C(O)R 14 is selected from During the ceremony 、 R 11 , R 12 , and R 13 are independently H, C 1-4 Alkyl, and C 1-4 fluoroalkyl; R 14 is H, C 1-4 Alkyl, or C 1-4 is a fluoroalkyl; R 15 is C 1-4 Alkyl and C 1-4 fluoroalkyl; X - is a pharmaceutically acceptable anion, During the ceremony, B is a direct bond, -C(O)O*-, -C(R 23 )(R 24 )O*, C(O)OC(R 23 )(R 24 )*,or C(R 23 )(R 24 )OC(O)O*, where the atoms marked with * are R 21 is connected directly to R 23 and R 24 are independently H, fluoro, C 1-4 Alkyl, and C 1-4 fluoroalkyl; R 21 is selected from the group

[21] ,

[22] , [22A],

[23] ,

[24] ,

[25] and

[26] , where the atom marked with ** is directly connected to B. [ka] Hemichannel blockers for use in the methods of the invention may include or exclude any "gap" compounds of Formula I, Formula II, for example.

[0090] Peptide and peptidomimetic hemichannel blockers In other embodiments, the present invention features the use of peptide hemichannel blockers, e.g., peptidomimetic compounds such as peptagons, that block connexin hemichannels, resulting in a convergent and time-dependent decrease in RPE integrity, BRB integrity, tight junction integrity, and / or regulation of type IV collagen production. Hemichannel blockers may include peptides corresponding to specific sequences within the extracellular loops E1 and E2, involving the conserved QPG and SHVR motifs of E1 (Gap26 peptide) and the SRPTEK motif of E2 (Gap27 peptide), or within the cytoplasmic loop (Gap19 peptide). Hemichannel blockers used in the methods of the present invention may include or exclude any "Gap" compounds. The most potent peptidomimetic is peptagon (VDCFLSRPTEKT) (SEQ ID NO: 1). A preferred peptidomimetic compound contains the SRPTEKT heptameric motif.

[0091] In some embodiments, the peptide and / or peptidomimetic hemichannel blocker (e.g., peptagon) comprises a connexin extracellular domain, a transmembrane region, and a connexin carboxy-terminal peptide. The connexin hemichannel blocking peptide or peptidomimetic may be modified or unmodified. The connexin hemichannel blocking peptide or peptidomimetic is produced chemically, synthetically, or by other methods. In some embodiments, the connexin hemichannel blocking peptide or peptidomimetic is a Cx43 peptide or peptidomimetic. In some aspects, the therapeutically effective modified or unmodified peptide or peptidomimetic comprises a portion of a connexin extracellular domain or transmembrane domain of a connexin (e.g., Cx43 or Cx45), which is a portion of connexin extracellular loop 2, including a portion of Cx43 extracellular loop 2 and a portion of Cx45 extracellular loop 2. In some embodiments, the peptide or peptidomimetic comprises a portion of the extracellular or transmembrane domain of connexin Cx26, Cx30, Cx31.1, Cx36, Cx37, Cx40, Cx50, Cx57, or another connexin described herein. Peptidomimetics corresponding to a portion of Cx43 extracellular loop 2 are currently preferred.

[0092] Peptagon is a hemichannel blocker that can act in a dose-dependent manner, blocking gap junction hemichannel patency at lower doses and dissociating intercellular gap junctions at higher doses. See, e.g., O'Carroll et al., 2008. Sustained application of low doses also results in a gradual loss of gap junction coupling, which is thought to be due to peptide interference with hemichannel docking (paralleled by the gradual removal of existing gap junctions during normal turnover). Peptagon has proven effective in numerous in vitro, ex vivo, and in vivo (animal) studies (see, e.g., Davidson et al., 2012; Danesh-Meyer et al., 2012; O'Carroll et al., 2013).

[0093] In some embodiments, hemichannel blockers, e.g., Cx43 hemichannel blockers, can comprise peptides. The hemichannel blocker peptide sequence can comprise, consist essentially of, or consist of, for example, one or more of the following sequences: SRPTEKT "Mod3" (SEQ ID NO: 2), "peptide 1" ADCFLSRPTEKT (SEQ ID NO: 3), "peptide 2" VACFLSRPTEKT (SEQ ID NO: 4), "peptide 11" VDCFLSRPTAKT (SEQ ID NO: 5), "peptide 12" VDCFLSRPTEAT (SEQ ID NO: 6), "peptide 5" VDCFLSRPTEKT (SEQ ID NO: 1), "Mod1" CFLSRPTEKT (SEQ ID NO: 7), or "Mod2" LSRPTEKT (SEQ ID NO: 8). In some embodiments, the carboxy terminus can be modified. In some aspects, the carboxy terminus modification can include an n-alkyl chain, which can optionally be further linked to hydrogen or other moieties. In some embodiments, the hemichannel blocker peptide can include or exclude any of the peptides listed above or disclosed herein.

[0094] In one aspect, the present invention relates to the use of a pharmaceutical composition, alone or in a kit, package, or other article of manufacture, in a method for treating a disease, disorder, or condition described herein, including, for example, those characterized by reduced or impaired RPE integrity, BRB integrity, tight junction integrity, and / or increased or impaired type IV collagen production. The methods herein provide for treating a subject with a hemichannel blocker, particularly as described herein, in an amount sufficient to modulate RPE integrity, BRB integrity, tight junction integrity, and / or type IV collagen production. In some preferred embodiments, the hemichannel blocker is a connexin 43 hemichannel blocker. In other embodiments, the hemichannel blocker is a connexin 36 hemichannel blocker. In yet other embodiments, the hemichannel blocker is a connexin 37 hemichannel blocker. In other embodiments, the hemichannel blocker is a connexin 45 hemichannel blocker. As noted above, blockers of other connexin hemichannels are within the scope of the present invention.

[0095] In some embodiments, a "promoiety" refers to a species that acts as a protecting group to mask a functional group in an active drug, thereby converting the active drug into a prodrug. Typically, the facilitating agent is attached to the drug via a bond that is cleaved in vivo by enzymatic or non-enzymatic means, thereby converting the prodrug into its active form. In some embodiments, the promoiety may also be the active drug. In some embodiments, the promoiety may be attached to a hemichannel blocker. In some embodiments, the promoiety may be attached to, for example, a peptide, peptidomimetic, or small molecule hemichannel blocker. In some embodiments, the facilitating agent may be attached to a compound of Formula I. In some embodiments, the prodrug is a compound of another hemichannel compound, such as those described in Green et al., U.S. Patent Application Publication No. 20160177298, Savory, et al., U.S. Patent Application Publication No. 20160318891, or Savory, et al., U.S. Patent Application Publication No. 20160318892.

[0096] In some aspects, hemichannel blockers include, for example, antibodies or antibody fragments, nanobodies, peptides or peptidomimetics, recombinant fusion proteins, aptamers, small molecules, or single-chain variable fragments (scFv) that bind to connexin hemichannels, and others noted herein. In one currently preferred embodiment, the connexin hemichannel is a Cx43 hemichannel.

[0097] In other embodiments, the hemichannel blocker is a connexin 43 peptide or peptidomimetic, sometimes referred to as a hemichannel-blocking peptide or peptidomimetic, including modified or unmodified Cx peptides or peptidomimetics comprising, consisting essentially of, or consisting of the connexin extracellular domain, transmembrane region, and connexin carboxy-terminal peptide. In some aspects, the therapeutically effective modified or unmodified peptide or peptidomimetic comprises a portion of the extracellular or transmembrane domain of connexin 43 or connexin 45. The protein sequence of connexin 43 is shown below. [ka] [ka]

[0098] Table 1 shows the extracellular loops of connexin 43 and connexin 45. In some embodiments, the therapeutically effective modified or unmodified peptide or peptidomimetic comprises a portion of the E2 extracellular domain of a connexin (extracellular loop 2), such as connexin 43 or connexin 45, preferably connexin 43. In some embodiments, the therapeutically effective modified or unmodified peptide or peptidomimetic comprises a portion of the C-terminal domain of a connexin, such as connexin 43 or connexin 45, preferably connexin 43. When the peptide or peptidomimetic blocking agent comprises a portion of the intracellular domain of a connexin, the peptide may, in some embodiments, be conjugated to a cellular internalization transporter, and in some instances, may block the zonula occludens (ZO-1) that binds to connexin 43. [Table 1]

[0099] The sequences of the E2 domains of various connexin isotypes are shown in Table 2, with amino acids homologous to peptide SEQ ID NO: 14 and peptide SEQ ID NO: 15 shown in bold. It is noted that the last four amino acids of peptide SEQ ID NO: 15 are part of the fourth membrane domain.

[0100] Table 2 provides extracellular domains for connexin family members that can be used to prepare peptide hemichannel blockers described herein. The peptides and fragments thereof provided in Table 2 are used, in certain non-limiting embodiments, as peptide hemichannel blockers. In other non-limiting embodiments, hemichannel-blocking peptides comprising, consisting essentially of, consisting of, or consisting of about 8 to about 15, or about 11 to about 13 contiguous amino acids of a peptide in this table are peptide hemichannel blockers of the invention. In other embodiments, conservative amino acid changes are made to the peptide or fragment thereof. [Table 2]

[0101] Other peptide hemichannel blockers are derived from the cytoplasmic loop (amino acids 119-144) L2 peptide of connexin 43 and subparts of the L2 peptide of connexin 43. In some embodiments, these peptides are derived from, for example, the nine amino acid sequence of Gap19, KQIEIKKFK (SEQ ID NO: 19), the native Gap19 sequence, DGVNVEMHLKQIEIKKFKYGIEEHGK (SEQ ID NO: 20), the His144→Glu L2 derivative of Gap19 (as reported by Shibayama (Shibayama, J. et al., Biophys. J. 91, 405404063, 2006)), DGVNVEMHLKQIEIKKFKYGIEEQGK (SEQ ID NO: 21), the TAT-Gap19 sequence, YGRKKRRQRRRKQIEIKKFK (SEQ ID NO: 22), the SH3 binding domain, CSSPTAPLSPMSPPGYK (SEQ ID NO: 23) or its subpart PTAPLSPMSPP (SEQ ID NO: 24), the C-terminal sequence of the CT9 or CT10 peptide (with or without the TAT leader sequence to increase cell penetration), RPRDDEI (SEQ ID NO: 25), SRPRDDLEI (SEQ ID NO: 26), YGRKKRRQRRRSRPRDDEI (SEQ ID NO: 27), or YGRKKRRQRRRRPRDDEI (SEQ ID NO: 28). Other peptidomimetic sequences that may be included or excluded from compositions for use in the methods, kits, or articles of manufacture disclosed herein include those described by Dhein (Dhein, S., Naunyn-Schmiedeberg's Arch. Pharm., 350: 174-184, 1994), the AAP10 peptide, H2N-Gly-Ala-Gly-4Hyp-Pro Tyr-CONH2 (SEQ ID NO: 29), and the ZP123 peptide (rotigapeptide), Ac-D-Tyr-Pro-D-4Hyp-Gly-D-Ala-Gly-NH2 (SEQ ID NO: 310), (Dhein, S., et al. Cell Commun. Adhes. 10, 371-378, 2013). The rotigapeptide contains a D-form of the peptide to enhance efficacy over the natural L-form of the peptide.

[0102] Examples of connexin 43 (Cx43) or Cx26, Cx30, Cx30.3, Cx31, Cx31.1, Cx32, Cx36, Cx37, Cx40.1, Cx43, Cx46, Cx46.6, or Cx40 peptide blocking agents that may be included or excluded in certain embodiments of the present disclosure are shown in Table 3 below (E2 and T2 indicate the position of the peptide, for example, within the second extracellular domain or second transmembrane domain). [Table 3-1] [Table 3-2] [Table 3-3]

[0103] In some embodiments, connexin 43 blocking agents may include peptides or peptidomimetics comprising, consisting essentially of, or consisting of, for example, SEQ ID NO:2 (SRPTEKT). Peptides or peptidomimetics may also include, for example, SEQ ID NO:1 (VDCFLSRPTEKT). Peptides may contain one or more modified amino acids, amino acid analogs, or may otherwise be modified to improve bioavailability or enhance permeability across cell membranes. For example, SEQ ID NO:1 may be modified to obtain SEQ ID NOs:20-25 and 27. In some aspects, peptides or peptidomimetics comprising, consisting essentially of, or consisting of, for example, SEQ ID NO:2 (SRPTEKT) or SEQ ID NO:2 (VDCFLSRPTEKT), include 7-40 amino acids or amino acid analogs and do not include a C-terminal peptide. In some embodiments, peptides may also be used as promoieties.

[0104] In some embodiments, connexin 45 blocking agents may be peptides or peptidomimetics comprising, consisting essentially of, or consisting of portions of the connexin 45 protein that antagonize, inhibit, or block connexin-connexin interactions. Exemplary peptide sequences for connexin 45 peptide and peptidomimetic blocking agents are shown in Table 4. [Table 4]

[0105] In some embodiments, a connexin 45 blocking agent may comprise, for example, a peptide or peptidomimetic comprising, consisting essentially of, or consisting of a portion of the E2 or C-terminal domain of connexin 45, e.g., comprising, consisting essentially of, or consisting of SEQ ID NO: 150 (SRPTEKT). The peptide or peptidomimetic may also comprise, for example, SEQ ID NO: 149 (DCFISRPTEKT). In some embodiments, the peptide may be only three amino acids in length, or more, including SRL, PCH, LCP, CHP, IYY, SKF, QPC, VCY, APL, HVR.

[0106] In some aspects, a connexin 40 hemichannel blocker may be a peptide or peptidomimetic comprising, consisting essentially of, or consisting of a portion of a connexin 40 protein. In some embodiments, a connexin 43 blocker may comprise, consist essentially of, or consist of, for example, SEQ ID NO:2 (SRPTEKT), SEQ ID NO:1 (VDCFLSRPTEKT), or SEQ ID NO:1 conjugated via a linker to two dodecyl groups at the N-terminus. The peptide may contain one or more modified amino acids, amino acid analogs, or may be otherwise modified, for example, by conjugation or attachment to a cellular internalization transporter.

[0107] In another non-limiting but preferred embodiment, the hemichannel blocker comprises a peptide comprising, consisting essentially of, or consisting of an amino acid sequence corresponding to a portion of the transmembrane domain of a connexin, such as Cx43, Cx45, or Cx26, Cx37, or Cx40. In particular non-limiting embodiments, the anti-connexin compound is a peptide having an amino acid sequence comprising about 3 to about 30 contiguous amino acids of the connexin (e.g., connexin 43 or 45) protein sequence, a peptide having an amino acid sequence comprising about 5 to about 20 contiguous amino acids of the connexin protein sequence, a peptide having an amino acid sequence comprising about 8 to about 15 contiguous amino acids of the connexin protein sequence, or a peptide having an amino acid sequence comprising about 11, 12, or 13 contiguous amino acids of the connexin protein sequence. Other non-limiting embodiments include anti-connexin compounds that are peptides having an amino acid sequence comprising at least about 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 20, 25, or 30 contiguous amino acids of a connexin protein sequence. In some aspects, hemichannel blockers may include or exclude any of the foregoing.

[0108] In other anti-connexin compounds, mimetic peptides are based on the extracellular domain of connexin 43 corresponding to amino acids 37-76 and 178-208 of the connexin 43 protein sequence. Accordingly, certain peptides described herein have amino acid sequences corresponding to the regions of connexin 43 protein sequence positions 37-76 and 178-208. Peptides need not have identical amino acid sequences to those portions of the connexin 43 protein sequence; conservative amino acid changes may be made so that the peptide retains binding or functional activity in the assays described herein and known in the art. In other embodiments, mimetic peptides are based on peptide target regions within the connexin protein other than the extracellular domain (e.g., portions of the connexin 43 protein sequence that do not correspond to positions 37-76 and 178-208).

[0109] In a non-limiting but preferred embodiment, the hemichannel blocker comprises, consists essentially of, or consists of a peptide comprising, consisting essentially of, or consisting of an amino acid sequence corresponding to a portion of the transmembrane region of connexin 45 or the C-terminal region of connexin 45. In particular non-limiting embodiments, for example, the anti-connexin compound is a peptide having an amino acid sequence comprising about 3 to about 30 contiguous amino acids of a known connexin 45 sequence, including peptides having an amino acid sequence comprising about 5 to about 20 contiguous amino acids of a known connexin 45 sequence, peptides having an amino acid sequence comprising about 8 to about 15 contiguous amino acids of a known connexin 45 sequence, or peptides having about 11, 12, or 13 contiguous amino acids of a known connexin 45 sequence. Other non-limiting embodiments include anti-connexin compounds that are peptides having an amino acid sequence comprising at least about 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 20, 25, or 30 contiguous amino acids of a known connexin 45 sequence. In certain anti-connexin compounds provided herein, the mimetic peptide is based on the extracellular domain of connexin 45 corresponding to amino acids 46-75 and 199-228 of the known connexin 45 sequence. Thus, certain peptides described herein have amino acid sequences corresponding to the regions of positions 46-75 and 199-228 of the known connexin 45 sequence. Peptides need not have an amino acid sequence identical to those portions of the known connexin 45 sequence. Conservative amino acid changes may be made so that the peptide retains binding or functional activity in the assays described herein or otherwise known in the art. In other embodiments, the mimetic peptide is based on a peptide target region within the connexin protein other than the extracellular domain (e.g., a portion of the known connexin 45 sequence that does not correspond to positions 46-75 and 199-228). WO2006 / 134494, which discloses various connexin sequences, is incorporated by reference in its entirety. In some aspects, the hemichannel blocker may include or exclude any of the foregoing.

[0110] Other connexin hemichannel blockers Hemichannel blockers, such as blockers of connexin 36, 37, 43, or 45, including peptides, peptidomimetics, antibodies, antibody fragments, and the like, are also suitable hemichannel blockers. Exemplary hemichannel blockers include, but are not limited to, polypeptides (e.g., antibodies, binding fragments thereof, and synthetic constructs), other gap junction blockers, and gap junction protein phosphorylation agents. In some embodiments, the hemichannel blocker is a blocker of Cx26, Cx30, Cx31.1, Cx36, Cx37, Cx40, Cx43, Cx50, or Cx57. Hemichannel blockers, e.g., connexin 36, 37, 43, or 45 blockers, include, for example, monoclonal antibodies, polyclonal antibodies, antibody fragments (including, for example, Fab, F(ab')2, and Fv fragments); single-chain antibodies; single-chain Fvs; and single-chain binding molecules, such as those comprising, consisting essentially of, or consisting of, a binding domain, hinge, CH2 domain, and CH3 domain, recombinant antibodies, and antibody fragments capable of binding an antigenic determinant (i.e., a portion of a molecule generally referred to as an epitope) that contacts a particular antibody or other binding molecule. These binding proteins, including antibodies, antibody fragments, and the like, may be chimeric or humanized or otherwise engineered to be less immunogenic in subjects to whom they are administered, and may be synthetic, recombinantly produced, or produced in an expression library. Any binding molecule known in the art or later discovered is contemplated, including those referenced herein and / or described in more detail in the art. For example, binding proteins include not only antibodies and the like, but also ligands, receptors, peptidomimetics, or other binding fragments or molecules (e.g., produced by phage display) that bind to a target (e.g., a connexin, hemichannel, or related molecule).

[0111] Binding molecules generally have a desired specificity, including, but not limited to, binding specificity and a desired affinity. The affinity can be, for example, about 10 4 M-1 or higher, about 106 M-1 or higher, about 10 7 M-1 or higher, about 10 8 Ka may be M-1 or more. 8 Affinity even greater than M-1 is preferred, e.g., about 10 9 M-1, about 10 10 M-1, about 10 11 M-1, and about 10 12 Affinities equal to or greater than M are preferred. The affinity of a binding protein according to the invention can be readily determined using conventional techniques, such as those described in Scatchard et al., (1949) Ann. NY Acad. Sci. 51:660.

[0112] Exemplary compounds used to close gap junctions (e.g., phosphorylation of connexin 43 tyrosine and / or serine residues) are reported in U.S. Patent Nos. 7,153,822 and 7,250,397. Exemplary peptides and peptidomimetics are reported in Green et al., WO2006134494. See also WO2006069181 and WO2003032964. Other examples of agents used to close gap junctions include anti-connexin agents, such as anti-connexin polynucleotides (e.g., connexin inhibitors, such as alpha-1 connexin oligodeoxynucleotides), anti-connexin peptides (e.g., antibodies and antibody-binding fragments) and peptidomimetics (e.g., alpha-1 anti-connexin peptides or peptidomimetics, compounds for closing or blocking gap junctions, compounds for closing or blocking hemichannel compounds, and connexin carboxy-terminal polypeptides (e.g., polypeptides reported to bind to ZO-1 or the ZO-1 binding site).

[0113] Other hemichannel blockers useful in the present invention may also include or be combined with compounds that block connexin hemichannels but maintain connexin gap junction function. For example, the linear peptide RRNYRRNY, the cyclic peptide CyRP-71, and the peptidomimetic molecule ZP2519 target the Cx43 carboxy-terminal domain and have been shown to prevent Cx43-based gap junction closure under low pH conditions (Verma V, et al. Design and characterization of the first peptidomimetic molecule that prevents acidification-induced closure of cardiac gap junctions. Heart Rhythm 7:1491-1498 (2010); Verma V, et al. Novel pharmacophores of connexin43 based on the "RXP" series of Cx43-binding peptides. Circ. Res. 105:176-184 (2009)). These substances are potentially useful for preventing gap junction closure. Furthermore, these molecules are potential hemichannel blockers and may therefore have a dual action directed towards preventing gap junction closure and inhibiting hemichannel opening.

[0114] Anti-connexin agents include peptides having an amino acid sequence comprising about 5-20 contiguous amino acids of a connexin protein, such as connexin 43 (SEQ ID NO: 19), about 8-15 contiguous amino acids of connexin 43, or about 11-13 contiguous amino acids of connexin 43. Other anti-connexin agents include peptides having an amino acid sequence comprising at least about 5, at least about 6, at least about 7, at least about 8, at least about 9, at least about 10, at least about 11, at least about 12, at least about 13, at least about 14, at least about 15, at least about 20, at least about 25, or at least about 30 contiguous amino acids of connexin 43. Other anti-connexin 43 blocking agents include the extracellular domain of connexin 43, such as peptides or peptidomimetics comprising, consisting essentially of, or consisting of SRPTEKT or VDCFLSRPTEKT. Other anti-connexin 43 blocking agents include the C-terminal region of connexin 43, see WO2006 / 069181, or amendments thereof.

[0115] Peptide chemical modification In certain embodiments, the connexin 43 blocking peptides of the present invention can be linked to a cell-internalizing transporter at the amino or carboxy terminus. The cell-internalizing transporter linked to the connexin 43 blocking peptides of the present invention can be any internalization sequence known in the art or newly discovered, or a conserved variant thereof. Non-limiting examples of cell-internalizing transporters and sequences include the antennapedia sequence, TAT, HIV-Tat, penetratin, Antp-3A (Antp variant), buforin II, transportan, MAP (model amphipathic peptide), K-FGF, Ku70, prion, pVEC, Pep-1, SynB1, Pep-7, HN-1, BGSC (bis-guanidinium-spermidine-cholesterol), and BGTC (bisguanidinium-tren-cholesterol).

[0116] Exemplary cell-internalizing peptide sequences are shown in Table 5 below. [Table 5-1] [Table 5-2]

[0117] In one embodiment of the present invention, the amino acid sequence of the connexin 43 blocker peptide can be selected from the group consisting of any peptide SEQ ID NO: 30-90, or conserved variants thereof. In a further embodiment of the present invention, the connexin 43 blocker peptide can comprise, consist essentially of, or consist of the amino acid sequence of SEQ ID NO: 30-90. In another embodiment of the present invention, the connexin 43 blocker peptide further comprises a cell-internalizing transporter. In a further embodiment, the connexin 43 hemichannel blocker peptide can be linked to a cell-internalizing transporter at the amino terminus.

[0118] When a specific protein is referred to herein, derivatives, variants, and fragments are contemplated. Protein derivatives and variants are well understood by those of skill in the art and may involve amino acid sequence modifications. For example, amino acid sequence modifications may fall into one or more of three classes: insertional, substitutional, or deletional variants. Insertions include amino- and / or carboxyl-terminal fusions and intrasequence insertions of single or multiple amino acid residues. Insertions may be smaller than amino- or carboxyl-terminal fusions, for example, as few as one to four residues. Deletions are characterized by the removal of one or more amino acid residues from the protein sequence. Substitutions, deletions, insertions, or any combination thereof may be combined to arrive at the final construct. Substitutional variants are those in which at least one residue has been removed and a different residue inserted in its place. Such substitutions are referred to as conservative substitutions. The replacement of one amino acid residue with another that is biologically and / or chemically similar is known to those skilled in the art as a conservative substitution. Conservative substitutions can replace one hydrophobic residue with another, or one polar residue with another. Conservatively substituted variations of each explicitly disclosed sequence are included within the peptides provided herein. Conservative substitutions typically have little or no effect on the biological activity of the resulting polypeptide. Conservative substitutions can be amino acid substitutions in a peptide that do not substantially affect the biological function of the peptide. A peptide can contain one or more amino acid substitutions, 2-10 conservative substitutions, 2-5 conservative substitutions, or 4-9 conservative substitutions.

[0119] Chemical structure modification In certain embodiments, the chemical structure of a hemichannel-blocking peptide or peptidomimetic can be synthetically modified to increase activity or half-life. For example, a peptide or peptidomimetic can be modified by conjugating the peptide to a hydrophobic compound via a linker moiety in some embodiments. The hydrophobic compound can be one or more n-alkyl groups, which can be, for example, a C6-C14 alkyl group. In some embodiments, the peptide can be conjugated at the N-terminus to one or two dodecyl (C12) groups, as described in Chen, YS et al., J.Pharm. Sci., 102: 2322-2331 (2013), incorporated herein by reference. In one embodiment, the peptide sequence CFLSRPTEKT or VDCFLSRPTEKT can be conjugated to two dodecyl groups to create a modified peptide capable of modulating connexin 43, "C12-C12-Cxn43 MP." (SEQ ID NO: 171). The resulting structure is shown below. [ka] Structure: Structure of C12-C12-Cxn43 MP (SEQ ID NO: 171). R1 ​​and R2 can be hydrogen or alkyl groups. In some embodiments, R1 = R2 = n-dodecyl chain.

[0120] chemical delivery modification Hemichannel blockers useful in the present invention may also be formulated as microparticles (microspheres, MPs) or nanoparticles (nanospheres, NPs), or both. Particulate drug delivery systems include nanoparticles (1-1,000 nm) and microparticles (1-1,000 μm), which are further classified as nanospheres, microspheres, nanocapsules, and nanocapsules. In nanocapsules and microcapsules, drug particles or droplets are entrapped in a polymer membrane. Particulate systems have the advantage of being delivered by injection, and their size and polymer composition significantly affect their biological behavior in vivo. Microspheres can remain in the vitreous for much longer periods than nanospheres, so microparticles act like a reservoir after injection. Nanoparticles rapidly diffuse and are internalized into tissues and cells.

[0121] Assessment of Hemichannel Blocker Activity Various methods can be used to assess the activity or effectiveness of a hemichannel blocker. In one embodiment of the present invention, the effect of hemichannel blocker treatment in a subject is assessed or monitored, for example, using assays of RPE integrity, BRB integrity, tight junction integrity, and / or modulation of type IV collagen production, as described herein.

[0122] The activity of hemichannel blockers may be evaluated using specific biological assays. The effects of known or candidate hemichannel blockers on molecular movement can be identified, evaluated, or screened using the methods described in the Examples below, or other methods known in the art or equivalent for determining the passage of compounds through connexin hemichannels. Various methods are known in the art, including dye transfer experiments, such as the transfer of molecules labeled with detectable markers, and the transmembrane passage of small fluorescent-permeant tracers, which are widely used to study the functional state of hemichannels. See, for example, Schlaper, KA, et al. Currently Used Methods for Identification and Characterization of Hemichannels. Cell Communication and Adhesion 15:207-218 (2008). In vivo methods may also be used. See, e.g., Danesh-Meyer, HV, et al. Connexin43 mimetic peptide reduces vascular leak and retinal ganglion cell death following retinal ischemia. Brain, 135:506-520 (2012); Davidson, JO, et al. (2012) Methods. Connexin hemichannel blockade improves outcome in a model of fetal ischemia. Annals of Neurology 71:121-132 (2012).

[0123] One method for use in identifying or assessing the ability of a compound to block hemichannels involves (a) combining a test sample with a test system, wherein the test sample comprises one or more test compounds, and the test system comprises a system for assessing hemichannel blockade, the system comprising, for example, a dye or labeled metabolite, for example, introduction of high glucose, hypoxia or ischemia into the system, a mediator of inflammation, or other compound or event that induces hemichannel opening (e.g., extracellular Ca). 2+and (b) determining the presence or amount of the increase, e.g., in the presence of the dye or other labeled metabolite in the system. Positive and / or negative controls may also be used. Optionally, a predetermined amount of a hemichannel blocker (e.g., peptagon or xiflam) may be added to the assay system.

[0124] Preferably, hemichannel blockers, such as peptagon and xiflam, exhibit activity in in vitro assays at concentrations below about 1-5 nM, preferably below about 10 nM, and more preferably below about 50 pM. In in vivo assays, these compounds preferably exhibit hemichannel blockade at concentrations below about 10-100 micromolar (μM), more preferably below about 50 μM. Other hemichannel blockers may be within these ranges or may be in the range of less than about 200 pM.

[0125] In one embodiment, a composition comprising, consisting essentially of, or consisting of one or more hemichannel blockers is administered. Hemichannel blockers may be administered QD, BID, TID, QID, or weekly, for example, QIW, BIW, QW. They may also be administered PRN (i.e., as needed) and HS (hola-somni, i.e., before sleep).

[0126] Dosage Forms and Formulations and Administration Unless expressly stated otherwise, all statements regarding dosage apply to the hemichannel blockers of the present invention.

[0127] Hemichannel blockers can be dosed, administered, or formulated as described herein.

[0128] The hemichannel blocker can be administered to a subject in need of treatment. Thus, the present invention provides formulations that can modulate connexin hemichannels, such as connexin 43 or connexin 45 hemichannels, to reduce their patency in a transient and site-specific manner.

[0129] The hemichannel blocker may be present in the formulation in a substantially isolated form. It is understood that the product may be mixed with a carrier or diluent that does not interfere with the intended purpose of the product and still be considered substantially isolated. The product of the present invention may also be in a substantially purified form, which generally comprises about 80%, 85%, or 90%, for example, at least about 88%, at least about 90%, 95%, or 98%, or at least about 99% of the peptidomimetic or small molecule hemichannel blocker, for example, or dry amount of the preparation.

[0130] The hemichannel blocker may be administered to a subject by any means capable of delivering the drug to a target site in the subject's body. For example, the hemichannel blocker may be administered orally, topically, systemically (e.g., intravenously, intraarterially, intraperitoneally, transdermally, intranasally, or via suppository), parenterally (e.g., intramuscularly, subcutaneously, or intravenously or intraarterially), via implantation, or via infusion through a device such as an osmotic pump or transdermal patch. Examples of administration routes are also described in Binghe, W. and B. Wang (2005). Drug delivery: principles and applications, Binghe Wang, Teruna Siahaan, Richard Soltero, Hoboken, NJ Wiley-Interscience, c2005. In one embodiment, the hemichannel blocker is administered systemically. In another embodiment, the hemichannel blocker is administered orally. In another embodiment, the hemichannel blocker is administered locally or directly to, for example, the organ, cancer, or tumor of interest.

[0131] In some aspects, hemichannel blockers may be provided as or in conjunction with implants. In some aspects, they may be provided for sustained delivery. In some embodiments, microneedles, needles, iontophoresis devices, or implants may be used to administer the hemichannel blockers. The implant may be, for example, a dissolvable disk material as described in S. Pflugfelder et al., ACS Nano, 9 (2), pp. 1749-1758 (2015). In some aspects, hemichannel blockers of the present invention, such as connexin 43 hemichannel blockers, may be administered intracerebroventricularly, intrathecally, epidurally, subdurally, and / or via epidural routes.

[0132] The hemichannel blocker may be administered once, multiple times, or periodically. It may also be administered PRN (as needed), or on a predetermined schedule, or both. In some embodiments, the hemichannel blocker is administered daily, weekly, monthly, bimonthly, or quarterly, or any combination of these. For example, treatment may be administered daily for a period of time, followed by weekly and / or monthly administration, etc. Other methods of administering the blocker are described herein. In one embodiment, the hemichannel blocker is administered to a patient on days 1 through 5, 10, 30, 45, 60, 75, 90, or 100-180 in an amount sufficient to treat the patient.

[0133] For example, hemichannel blockers such as peptagons, and / or analogs or prodrugs thereof, compounds of Formula I (e.g., Xiflam), and analogs or prodrugs of any of the foregoing compounds, or compounds of Formula II may be administered alone or in combination with one or more additional ingredients, and may be formulated into pharmaceutical compositions comprising one or more pharmaceutically acceptable excipients, diluents, and / or carriers.

[0134] "Pharmaceutically acceptable diluents, carriers, and / or excipients" are intended to include substances useful in preparing pharmaceutical compositions, such as those that may be co-administered with a compound of Formula I (e.g., Xiflam), and analogs of any of the foregoing compounds, or a compound of Formula II, are capable of performing their intended function, and are generally safe, non-toxic, and not biologically or otherwise undesirable. Pharmaceutically acceptable diluents, carriers, and / or excipients include those suitable for veterinary and human pharmaceutical use. Suitable carriers and / or excipients will be readily recognized by those skilled in the art, given the nature of the compound of Formula I (e.g., Xiflam), such as Xiflam, and analogs of any of the foregoing compounds. However, by way of example, diluents, carriers, and / or excipients include solutions, solvents, dispersion media, retardants, polymers and lipids, emulsions, and the like. By way of further example, suitable liquid carriers include water, saline, aqueous dextrose, and the like, particularly for injectable solutions; isotonic solutions are suitable for intravenous, intrathecal, and intracisternal administration; and vehicles such as liposomes are particularly suitable for administering drugs.

[0135] The compositions may take the form of any standard, known dosage form, including tablets, pills, capsules, semisolids, powders, sustained-release formulations, solutions, suspensions, elixirs, aerosols, injectable liquids, gels, creams, transdermal delivery devices (e.g., transdermal patches), organ inserts (e.g., ocular inserts), or any other suitable compositions. Those skilled in the art to which this invention pertains will readily recognize the most appropriate dosage form, given the nature of the condition being treated and the active agent being used without undue experimentation. It should be understood that one or more of the hemichannel blockers, such as peptagons, and / or analogs thereof, compounds of Formula I (e.g., Xiflam), and analogs of any of the aforementioned compounds, and / or compounds of Formula II, may be formulated into a single composition. In certain embodiments, preferred dosage forms include injectable solutions and oral formulations.

[0136] Compositions useful in the present invention may contain any suitable level of hemichannel blocker, such as, for example, peptagon and / or analogs thereof, compounds of Formula I (e.g., Xiflam), and analogs of any of the foregoing compounds, and / or compounds of Formula II, depending on the dosage form and mode of administration. However, by way of example, compositions for use in the present invention may contain from about 0.1% to about 99%, preferably from about 1% to about 60%, by weight of hemichannel blocker, depending on the mode of administration.

[0137] In addition to standard diluents, carriers, and / or excipients, compositions according to the present invention may be formulated with one or more additional ingredients to enhance the activity or bioavailability of the hemichannel blocker (e.g., peptagon), and / or its analogs, the compound of Formula I (e.g., Xiflam), and analogs of any of the foregoing compounds, and / or the compound of Formula II, to help protect the integrity or extend its half-life or shelf life, to enable sustained release upon administration to a subject, or to provide other desirable benefits, for example. For example, sustained-release vehicles include macromers, poly(ethylene glycol), hyaluronic acid, poly(vinylpyrrolidone), or hydrogels. As further examples, compositions may also include preservatives, solubilizers, stabilizers, wetting agents, emulsifiers, sweeteners, colorants, flavoring agents, coating agents, buffers, etc. Those skilled in the art to which this invention pertains will be able to identify additional additives that may be desirable for a particular purpose.

[0138] The hemichannel blocker may be administered by a sustained-release system.Suitable examples of sustained-release compositions include semi-permeable polymer matrices in the form of shaped articles, such as films, or microcapsules.Sustained-release matrices include polylactic acid (U.S. Pat. No. 3,773,919, EP 58,481), copolymers of L-glutamic acid and gamma-ethyl-L-glutamate, poly(2-hydroxyethyl methacrylate), ethylene vinyl acetate, or poly-D-(-)-3-hydroxybutyric acid (EP 133,988).Sustained-release compositions also include compounds entrapped in liposomes. Liposomes containing hemichannel blockers may be prepared by known methods, including those described in DE 3,218,121, EP 52,322, EP 36,676, EP 88,046, EP 143,949, EP 142,641, Japanese Patent Application No. 83-118008, U.S. Patent Nos. 4,485,045 and 4,544,545, and EP 102,324. Typically, liposomes are small (approximately 200-800 angstroms) unilamellar liposomes with a lipid content greater than about 30 mole percent cholesterol, with the selected ratio adjusted for the most effective therapy. Sustained-release delivery, for example, using PGLA nanoparticles or microparticles or in situ ion-activated gelation systems, may also be used.

[0139] It is further contemplated that hemichannel blocker pharmaceutical compositions for use in accordance with the present invention may be formulated with additional active ingredients or agents that may be of therapeutic or other benefit to a subject in certain instances. Those skilled in the art to which this invention pertains will recognize appropriate additional active ingredients given the description of the invention herein and the nature of the disorder being treated.

[0140] The compositions are described, for example, in Gennaro AR: Remington: The Science and Practice of Pharmacy, 20 thed., Lippincott, Williams & Wilkins, 2000. However, by way of further example, the information provided in US2013 / 0281524 or US5948811 may be used.

[0141] In certain embodiments, the present invention provides combination products comprising, consisting essentially of, or consisting of (a) a hemichannel blocker and (b) one or more additional active agents, wherein components (a) and (b) are adapted for simultaneous or sequential administration.

[0142] In a particular embodiment of the invention, the combination product according to the invention is used in such a way that at least one component is administered while the other component is still having an effect on the subject being treated.

[0143] Any container suitable for storing and / or administering pharmaceutical compositions may be used for the hemichannel blocker product used in the methods of the invention.

[0144] In some embodiments, hemichannel blockers, such as connexin 43 hemichannel blockers, may be formulated to provide controlled and / or compartmentalized release to the site of administration. In some embodiments of the present invention, the formulation may be in an immediate-release, sustained-release, or extended-release form. In some embodiments, the dosage form may include both an immediate-release dosage form and a combination of an extended-release and / or extended-release dosage form. In some embodiments, both immediate-release and sustained-release and / or extended-release hemichannel blockers can be achieved by combining, for example, a modified or unmodified peptide or peptidomimetic, or other hemichannel blocker, in an immediate-release form. In some embodiments of the present invention, the hemichannel blocker is, for example, a connexin 43 blocker or other hemichannel blocker of the present disclosure. In some embodiments of the present invention, the dosage form may be an implant, for example, a biodegradable or non-biodegradable implant.

[0145] In some embodiments of the present invention, hemichannel blockers, e.g., connexin 43 hemichannel blockers, may be formulated for compartmentalized release of the blockers, for example, by adjusting the particle size or coating. For example, in some embodiments, particle formulations of hemichannel blockers, e.g., connexin 43 blockers, can be administered for use in the methods of the present invention. In some embodiments, particle-containing drug delivery systems may include nanoparticles with an average diameter of less than 1,000 nm (e.g., 1-1,000 nm) and / or microparticles with an average diameter of between 1 and 1,000 μm. The nanoparticles or microparticles may be, for example, nanospheres or microspheres, or encapsulated nanocapsules and microcapsules, in which the hemichannel blockers are encapsulated in a polymer coating. The particle formulation may also include liposomes. In some embodiments, the hemichannel blocker may include or exclude blockers of connexin 45, Cx26, Cx30, Cx31.1, Cx36, Cx37, Cx40, Cx50, or Cx57 hemichannels, or any other connexin hemichannels in blood vessels.Preferred connexin targets are Cx36, Cx37, Cx43, and Cx45 hemichannels.A particularly preferred target is Cx43 hemichannel.

[0146] The present invention includes methods for modulating hemichannel function for the treatment of various disorders. The methods of the present invention involve administering a hemichannel blocker alone, or, if desired, in combination with one or more other drugs or therapies.

[0147] In another embodiment, a hemichannel blocker, e.g., a compound of Formula I (e.g., Xiflam), a compound of Formula II, a peptide or peptidomimetic hemichannel blocker, may be administered systemically, such as by intravenous, intraarterial, or intraperitoneal administration, to achieve a final circulating concentration of about 0.001 to about 150 micromolar, or higher, up to 200, 300, 400, 500, 600, 700, 800, 900, or 1000 micromolar.The final circulating concentrations were 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 3.10, 3.11, 3.12, 3.13, 3.14, 3.15, 3.16, 3.17, 3.18, 3.19, 3.20, 3.21, 3.22, 3.23, 3.24, 3.25, 3.26, 3.27, 3.28, 3.29, 3.30, 3.31, 3.32, 3.33, 3.34, 3.35, 3.36, 3.37, 3.38, 3.39, 3.40, 3.41, 8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, 7.9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59 The concentration may be 9, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 100, 110, 120, 130, 140, or 150 micromolar, or any concentration between the two recited numbers, or higher as described above, and any concentration within the recited range. As noted herein, the present invention also includes combination therapies in which one or more additional active agents are also administered to the subject. One of skill in the art will understand the desired dosage for one or more active agents given the nature of the agent and the principles previously discussed herein.Preferred final circulating concentrations of active hemichannel modulators, or concentrations of hemichannel modulators at or around a connexin hemichannel target (e.g., tonaberat, a hemichannel modulating compound of Formula I, a hemichannel modulating compound of Formula II, a peptidomimetic (e.g., Peptide 5), etc.) are 10-250 micromolar, 10-100 micromolar, 10-75 micromolar, 10-50 micromolar, 10-35 micromolar, 10-30 micromolar, 10-25 micromolar, and including 25 micromolar.

[0148] Administration of the hemichannel blocker, and optionally one or more other active agents, can occur at any time during the progression of the disorder, or before or after the onset of the disorder or one or more symptoms of the disorder. In one embodiment, the hemichannel blocker is administered periodically over an extended period of time to aid in the ongoing management of symptoms. In another embodiment, the hemichannel blocker is administered periodically over an extended period of time or lifelong to prevent or delay the onset of the disorder.

[0149] In some embodiments, the hemichannel blocker, e.g., a connexin 43 hemichannel blocker, can be administered as a pharmaceutical composition comprising one or more particles. In some aspects, the pharmaceutical composition may be, for example, an immediate-release formulation or a controlled-release formulation, e.g., a delayed-release particle. In other aspects, the hemichannel blocker may be formulated in a particle formulation, one or more particles, for selective delivery to the area to be treated. In some embodiments, the particle may be, for example, a nanoparticle, nanosphere, nanocapsule, liposome, polymer micelle, or dendrimer. In some embodiments, the particle may be a microparticle. The nanoparticle or microparticle may comprise a biodegradable polymer. In other embodiments, the hemichannel blocker is prepared or administered as an implant or matrix, or formulated to provide compartmentalized release to the administration site.

[0150] In some embodiments, the formulated hemichannel blocker is a connexin 37, connexin 40, connexin 43, or connexin 45 hemichannel blocker. Connexin 37, connexin 40, or connexin 43 blockers are preferred. Most preferred are connexin 43 hemichannel blockers. As used herein, "substrate" includes, for example, substrates such as polymeric substrates, biodegradable or non-biodegradable substrates, and other carriers useful for creating implants or applied structures for delivering hemichannel blockers. Implants include reservoir implants and biodegradable substrate implants.

[0151] In some embodiments, for example, a hemichannel blocker, e.g., connexin 43 and a hemichannel blocker, is administered to a subject, and a therapeutically effective amount of a connexin 43 hemichannel blocker is administered using a microneedle, microneedle array, needle, or implant. In some embodiments, a microneedle may be used to administer the hemichannel blocker. In some embodiments, the penetration of the microneedle may be controlled to a desired depth within a tissue or organ or organ compartment. In some embodiments, the microneedle may also be coated with a hemichannel blocker, alone or with other agents. In some embodiments, the volume of hemichannel blocker and / or agent administered by the microneedle is about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, The volume may be 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 145, 150, 155, 160, 165, 170, 175, 180, 185, 190, 195, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 295, or 300 μl, or any range between, or any volume between, any two of the recited numbers. Any suitable formulation of the present invention may be administered by microneedle injection, including, for example, nanoparticle or microparticle formulations, or other formulations injectable by microneedles.

[0152] Connexin hemichannel blocker combination manufactures / kits Another embodiment of the present invention provides an article of manufacture, or "kit," containing materials useful for treating the aforementioned diseases and disorders. The kit includes a container containing, consisting essentially of, or consisting of a connexin hemichannel blocker. The kit may further include a label or package insert on or associated with the container. The term "package insert" is used to refer to instructions typically included in commercial packaging of therapeutic products, including information regarding the indications, use, dosage, administration, contraindications, and / or warnings regarding the use of such therapeutic products. Suitable containers include, for example, bottles, vials, syringes, blister packs, and the like. The container may be formed from a variety of materials, such as glass or plastic. The container holds a hemichannel blocker or a formulation thereof that is effective in treating the condition and may have a sterile access port (e.g., the container may be an intravenous solution bag or a vial with a stopper pierceable by a hypodermic injection needle). The label or package insert indicates that the composition is used for treating the selected condition, which may be any disease, disorder, and / or condition described or referred to herein. The label or package insert may also indicate that the composition can be used to treat other disorders. Alternatively, or additionally, the article of manufacture may further comprise a second container containing a pharmaceutically acceptable buffer, such as bacteriostatic water for injection (BWFI), phosphate-buffered saline, Ringer's solution, and dextrose solution. It may further include other materials desirable from a commercial and user standpoint, including other buffers, diluents, filters, needles, and syringes.

[0153] The kit may further comprise directions for administering the hemichannel blocker to a patient in need thereof.

[0154] Articles of manufacture are also provided that comprise, consist essentially of, or consist of a container containing a hemichannel blocker compound, composition, or formulation and instructions for use in treating a subject. For example, in another aspect, the invention includes an article of manufacture that comprises, consists essentially of, or consists of a container containing a therapeutically effective amount of one or more connexin hemichannel blocking peptides or peptidomimetics and / or other hemichannel blockers, including small molecules, together with instructions for use in treating a subject.

[0155] In some embodiments, an article of manufacture may include a substrate comprising one or more connexin hemichannel blocking peptides or peptidomimetics, or another hemichannel blocker, such as a small molecule hemichannel blocker, alone or in combination.

[0156] Dosage, volume, and concentration Of course, the dose of administered hemichannel blocker, the duration of administration, and the general administration regimen may vary from subject to subject, depending on variables such as the target site to which it is delivered, the severity of any symptoms in the subject being treated, the type of disorder being treated, the size of the unit dose, the method of administration selected, the age, sex, and / or general health of the subject, and other factors known to those of skill in the art.

[0157] Examples of effective doses that may be used to treat the diseases, disorders, or conditions referenced herein are described. In some embodiments, a therapeutically effective amount of a hemichannel blocker, e.g., a connexin 43 hemichannel blocker, is a concentration of about 0.001 to about 1.0 micrograms / mL, or about 0.001 to about 0.01 mg / mL, or about 0.1 mg / mL to about 100 mg / mL, or more, or any range between any two of the recited doses, or any dose between any two of the recited values.The doses were 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, .7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, 7. 9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51 , 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100 mg / ml, or any range between any two of the recited doses, or any dose between any two of the recited values. In some embodiments, the therapeutically effective amount of the hemichannel blocker is present at a concentration ranging from about 0.5 to about 50 mg / mL. In some embodiments, the hemichannel blocker is present at a concentration ranging from about 0.3 to about 30 mg / mL. In some embodiments, the hemichannel blocker is present at a concentration ranging from about 0.1 or 1.0 to about 10 mg / mL.In some embodiments, the hemichannel blocker is present at a concentration ranging from about 0.1 or 1.0 to about 0.3 or 3.0 mg / mL, hi some embodiments, the hemichannel blocker is present at a concentration of about 3.0 mg / mL.

[0158] In some embodiments, the hemichannel blocker may be administered at a therapeutically effective dose of about 0.001 to about 100 mg / kg, about 0.001 to about 0.01 mg / kg, about 0.01 to about 0.1 mg / kg, 0.1 to about 1 mg / kg, about 1 to about 10 mg / kg, or about 10 to about 100 mg / kg, or any range between any two of the recited doses, or any dose between any two of the recited doses.In some embodiments, the dose is 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5 , 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7. 8, 7.9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100 mg / ml, or any range between any two of the recited doses, or any dose between any two of the recited numbers.

[0159] Of course, administration may involve administration of a single dose per day, administration of a number of divided doses, or continuous administration, as appropriate. By way of example, a unit dose may be administered one or more times per day, for example, once, twice, three times, four times, five times, or six times per day, to achieve the desired total daily dose. By way of example, the unit dose of hemichannel blocker may be administered in a single daily dose or in several individual doses, or may be administered continuously to achieve a daily dose of 0.1 to 10 mg, 10 to 100 mg, 100 to 1000 mg, 1000 to 2000 mg, or 2000 mg to 5000 mg, 0.1 to about 2000 mg, about 0.1 to about 1000 mg, about 1 to about 500 mg, about 1 to about 200 mg, about 1 to about 100 mg, about 1 to about 50 mg, or about 1 to about 25 mg, or any range between any two of the recited doses, or any dose between any two of the recited doses.

[0160] By way of further example, a unit dose of hemichannel blocker may be administered once or more than once (e.g., 1, 2, 3, 4, 5, or 6 times, typically 1 to 4 times daily) so that the total daily dose is in the range of about 1 to about 1000 mg, e.g., about 1 to about 1 to about 500 mg, or 500 mg to 1000 mg, 1000 mg to 2000 mg, or 2000 mg to 5000 mg (for a 70 kg adult), or any range between any two of the recited doses, or any dose between any two of the recited doses. For example, hemichannel blockers (e.g., peptagons) and / or analogs thereof, compounds of Formula I (e.g., Xiflam), and analogs of any of the foregoing compounds may be administered to a subject at a dose range of about 0.01 to about 15 mg / kg / day, e.g., about 0.1 to about 6 mg / kg / day, e.g., about 1 to about 6 mg / kg / day, e.g., 6 mg / kg / day to 100 mg / kg / day, or any range between any two of the recited doses, or any dose between any two of the recited doses. In one embodiment, Xiflam may be administered orally once daily at a dose of about 2 mg to about 40 mg.

[0161] In one embodiment, the dose of the hemichannel blocker is about 0.001 micromolar to 0.1 micromolar, 0.1 micromolar, and up to about 200 micromolar at the site of action, or greater in the circulation to achieve these concentrations at the site of action. By way of example and not limitation, doses can be administered to achieve final circulating concentrations of (but not limited to) 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7 , 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, 7.9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51 , 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, The concentration may be 93, 94, 95, 96, 97, 98, 99, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, 300, 310, 320, 330, 340, 350, 360, 370, 380, 390, 400, 410, 420, 430, 440, 450, 460, 470, 480, 490, or 500 micromolar, or any range between any two of the recited concentrations, or any concentration between any two of the recited numbers. Further examples of doses that are expected to block hemichannels but not uncouple gap junctions are described in O'Carroll et al., 2008, incorporated herein by reference. In some embodiments, Xiflam may be used at low doses, e.g., 0.001-20 micromolar. The low doses were: 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0 ,2.1,2.2,2.3,2.4,2.5,2.6,2.7,2.8,2.9,3.0,3.1,3.2,3.3,3.4,3.5,3.6,3.7,3.8,3.9,4.0,4.1,4.2,4.3,4.4,4.5,4.6,4.7,4.8,4.9,5.0,5.1,5.2,5.3,5.4,5.5,5.6,5.7,5.8,5.9,6.0,6.1,6.2,6.3,6.4,6.5,6.It may be 6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, 7.9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 micromolar.

[0162] In one embodiment, the dose of the hemichannel blocker, e.g., peptagon and / or its analog, is about 0.001 micromolar at the site of action, up to about 200 micromolar, or 200-2000 or 5000 micromolar, or higher in the circulation to achieve these concentrations at the site of action. By way of example, the dose can be, but is not limited to, a final circulating concentration of about 1, 5, 10, 20, 50, 100, 200, 250, 500, 1000, 2000, 3000, 4000, or 5000 micromolar, or any range between any two of the listed doses, or any dose between any two of the listed doses. Effective peptagon doses that block hemichannels but do not disrupt gap junctions are discussed in O'Carroll et al., 2008.

[0163] In some embodiments, Xiflam may be used at low doses, such as, for example, 1-20 micromolar, 1-50 micromolar, 20-30 micromolar, 30-40 micromolar, or 40-50 micromolar. Low doses include, but are not limited to, 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, .9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4. 3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7 , 7.8, 7.9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 micromolar.

[0164] In some embodiments, a suitable therapeutically effective dose of the hemichannel blocker may be at least about 1.0 mg / mL of the hemichannel blocker, or about 0.001 mg / mL to 0.01 mg / mL, about 0.01 mg / mL to about 0.1 mg / mL, or about 0.1 mg / mL to about 100 mg / mL. In some embodiments, a suitable therapeutically effective dose of a hemichannel blocker is about 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 2.0, 3.0, 4.0, 5.0, 6.0, 7.0, 8.0, 9.0, 10.0, 11.0, 12.0, 13.0, 14.0, 15.0, 16.0, 17.0, 18.0, 19.0, 20.0, 21.0, 22.0, 23.0, 24.0, 25.0, 26.0, 27.0, 28.0, 29.0, 30.0, 31.0, 32.0, 33.0, 34.0, 35.0, 36.0, 37.0, 38.0, 39.0, 40.0, 41.0, 42.0, 43.0, 44.0, 45.0, 46.0, 47.0, 48.0, 49.0, 50.0, 51.0, 52.0, 53.0, 54.0, 55.0, 56.0, 57.0, 58.0, 59.0, 60.0, 61.0, 62.0, 63.0, 64.0, 65.0, 66.0, 67.0, 68.0, 69.0, 70.0, 71.0, 72.0, 73.0, 74.0, 75.0, 76.0, 0.0, 38.0, 39.0, 40.0, 41.0, 42.0, 43.0, 44.0, 45.0, 46.0, 47.0, 48.0, 49.0, 50.0, 52.5, 55.0, 57.5, 60.0, 62.5, 65.0, 67.5, 70.0, 72.5, 75.0, 77.5, 80.0, 82.5, 85.0, 87.5, 90.0, 92.5, 95.0, 97.5, or about 100.0 ug / mL, or any range or subrange between any two of the recited doses, or any dose within the range of about 0.1 to about 100 ug / mL.In some embodiments, a suitable therapeutically effective dose of a hemichannel blocker is about 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 2.0, 3.0, 4.0, 5.0, 6.0, 7.0, 8.0, 9.0, 10.0, 11.0, 12.0, 13.0, 14.0, 15.0, 16.0, 17.0, 18.0, 19.0, 20.0, 21.0, 22.0, 23.0, 24.0, 25.0, 26.0, 27.0, 28.0, 29.0, 30.0, 31.0, 32.0, 33.0, 34.0, 35.0, 36.0, 37.0, 38.0, 39.0, 40.0, 41.0, 42.0, 43.0, 44.0, 45.0, 46.0, 47.0, 48.0, 49.0, 50.0, 51.0, 52.0, 53.0, 54.0, 55.0, 56.0, 57.0, 58.0, 59.0, 60.0, 61.0, 62.0, 63.0, 64.0, 65.0, 66.0, 67.0, 68.0, 69.0, 70.0, 71.0, 72.0, 73.0, 74.0, 75.0, 76.0, In some embodiments, the hemichannel blocker is present at a concentration ranging from about 0.5 to about 50 mg / mL. In other embodiments, the hemichannel blocker is present at a concentration ranging from about 0.3 to about 30 mg / mL. In other embodiments, the hemichannel blocker is present at a concentration ranging from about 0.1 or 1.0 to about 10 mg / mL. In other embodiments, the hemichannel blocker is present at a concentration ranging from about 0.1 or 1.0 to about 0.3 or 3.0 mg / mL. In other embodiments, the hemichannel blocker, such as a connexin 43 hemichannel blocker and / or a connexin 45 hemichannel blocker, is present at a concentration of about 3.0 mg / mL. In any of these embodiments, the hemichannel blocker may be a connexin 43 or connexin 45 hemichannel blocker. When the hemichannel blocker is a modified or unmodified peptide or peptidomimetic, the dose may be reduced by 1 to 10-fold, 25 to 50-fold, 100 to 200-fold, or 1000-fold.

[0165] In certain embodiments, a hemichannel blocker, e.g., a connexin 43 hemichannel blocker, may be administered at and / or adjacent to the treatment site at a final concentration of up to about 0.001 micromolar (μM), or 0.05 μM to about 200 μM, or up to 300 μM, or up to 1000 μM, or up to 2000 μM, or up to 3200 μM, or up to 3200 μM or more, e.g., up to about 10 mM, 20 mM, or 30 mM, and any dose and dose range within these dose values. In one embodiment, the hemichannel blocker composition is applied at greater than about 1000 μM. Preferably, the hemichannel blocker composition is applied at a final concentration of about 1000 μM to about 10 mM, more preferably, the anti-connexin agent composition is applied at a final concentration of about 3 mM to about 10 mM, and more preferably, the hemichannel blocker composition is applied at a final concentration of about 1-3 mM to about 5-10 mM. The hemichannel blocker concentrations are 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4 ,0.5,0.6,0.7,0.8,0.9,1.0,1.1,1.2,1.3,1.4,1.5,1.6,1.7,1.8,1.9,2.0,2.1,2.2,2.3,2.4,2.5,2.6,2.7,2.8,2.9,3.0,3.1,3.2,3.3,3.4,3.5,3.6 , 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8 ,6.9,7.0,7.1,7.2,7.3,7.4,7.5,7.6,7.7,7.8,7.9,8.0,8.1,8.2,8.3,8.4,8.5,8.6,8.7,8.8,8.9,9.0,9.1,9.2,9.3,9.4,9.5,9.6,9.7,9.8,9.9,10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75 , 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100 micromolar, or 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2 ,0.3,0.4,0.5,0.6,0.7,0.8,0.9,1.0,1.1,1.2,1.3,1.4,1.5,1.6,1.7,1.8,1.9,2.0,2.1,2.2,2.3,2.4,2.5,2.6,2.7,2.8,2.9,3.0,3.1,3.2,3.3,3.4,3.5,3.6,3.7,3.8,3.9,4.0,4.1,4.2,4.3,4.4,4.5,4.6,4.7,4.8,4.9,5.0,5.1 , 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, 7.9, 8.0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65 , 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100 millimoles, or any range between any two of the recited doses, or any dose between any two of the recited numbers.

[0166] Additionally, the hemichannel blocker, e.g., a connexin 43 hemichannel blocker, may be present in the formulation at a final concentration of about 1 μM to about 50 μM; alternatively, the connexin 43 hemichannel blocker is present at a final concentration of, for example, about 5 μM to about 20 μM, or about 10 to about 15 μM. In certain other embodiments, the hemichannel blocker is present at a final concentration of about 10 μM. In yet other embodiments, the hemichannel blocker is present at a final concentration of about 1 to 15 μM. In other embodiments, the hemichannel blocker is present at a final concentration of about 20 μM, 30 μM, 40 μM, 50 μM, 60 μM, 70 μM, 80 μM, 90 μM, 100 μM, 10-200 μM, 200-300 μM, 300-400 μM, 400-500 μM, 500-600 μM, 600-700 μM, 700 μM, 800 μM, 90 ... ~800μM, 800~900μM, 900~1000 or 1000~1500μM, or 1500μM~2000μM, 2000μM~3000μM, 3000μM~4000μM, 4000μM~5000μM, 5000μM~6000μM, 6000μM~7000μM, 7000μM The dose may be present at or above 8000 μM, 8000 μM to 9000 μM, 9000 μM to 10,000 μM, 10,000 μM to 11,000 μM, 11,000 μM to 12,000 μM, 12,000 μM to 13,000 μM, 13,000 μM to 14,000 μM, 14,000 μM to 15,000 μM, 15,000 μM to 20,000 μM, 20,000 μM to 30,000 μM, 30,000 μM to 50,000 μM, or higher, or any range or subrange between any two of the recited doses, or at any dose within the range of about 20 μM to about 50,000 μM.

[0167] and still other dosage levels between about 1 nanogram (ng) / kg and about 1 mg / kg body weight per day for each hemichannel blocker described herein. In certain embodiments, the dosage of each subject compound will generally be in the range of about 1 ng to about 1 microgram per kg body weight, about 1 ng to about 0.1 microgram per kg body weight, about 1 ng to about 10 ng per kg body weight, about 10 ng to about 0.1 microgram per kg body weight, about 0.1 microgram per kg body weight to about 1 microgram per kg body weight, about 20 ng to about 100 ng per kg body weight, about 0.001 mg to about 0.01 mg per kg body weight, about 0.01 mg to about 0.1 mg per kg body weight, or about 0.1 mg to about 1 mg per kg body weight. In certain embodiments, the dosage of each subject compound will generally be about 0.001 mg to about 0.01 mg per kg of body weight, about 0.01 mg to about 0.1 mg per kg of body weight, or about 0.1 mg to about 1 mg per kg of body weight. When two or more hemichannel blockers are used, the dosage of each hemichannel blocker need not be in the same range as the other. For example, the dosage of one connexin hemichannel blocker may be between about 0.01 mg to about 10 mg per kg of body weight, and the dosage of another connexin hemichannel blocker may be between about 0.1 mg to about 1 mg per kg of body weight, 0.1 to about 10 mg per kg of body weight, 0.1 to about 20 mg per kg of body weight, 0.1 to about 30 mg per kg of body weight, 0.1 to about 40 mg per kg of body weight, or between about 0.1 and about 50 mg per kg of body weight.Doses may also be administered in the following amounts per kg of body weight: approximately 0.001, 0.002, 0.003, 0.004, 0.005, 0.006, 0.007, 0.008, 0.009, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.10, 4.11, 4.12, 4.13, 4.14, 4.15, 4.16, 4.17, 4.18, 4.19, 4.20, 4.21, 4.22, 4.23, 4.24, 4.25, 4.26, 4.27, 4.28, 4.29, 4.30, 4.31, 4.32, 4.33, 4.34, 4.35, 4.36, 4.37, 4.38, 4.39, 4 6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, 7.0, 7.1, 7.2, 7.3, 7.4, 7.5, 7.6, 7.7, 7.8, 7.9, 8. 0, 8.1, 8.2, 8.3, 8.4, 8.5, 8.6, 8.7, 8.8, 8.9, 9.0, 9.1, 9.2, 9.3, 9.4, 9.5, 9.6, 9.7, 9.8, 9.9, 10.0, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55 5, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100 mg, or any range or subrange between any two of the recited doses, or any dose in the range of about 0.001 to about 100 mg / kg of body weight.

[0168] As described above, the dose of the hemichannel blocker, e.g., a connexin 37, 40, or 43 hemichannel blocker, may be administered in a single or divided dose. The dose may be administered once, or the application may be repeated. Typically, the application is repeated weekly, every other week, every three weeks, every month, or every two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, fifteen, sixteen, seventeen, eighteen, nineteen, twenty, twenty-one, twenty-two, twenty-three, or twenty-four months or more, as needed to prevent, slow, or treat any disease, disorder, or condition described herein. The dose may also be applied every 12 hours to seven days or more. For example, doses may be administered every 12 hours, or 1, 2, 3, 4, 5, 6, or 7 days, or between any two of these intervals, or at any time interval between 12 hours and 7 days. Connexin 43 hemichannel blockers may be administered for up to 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, or 26 weeks, for example. For some indications, more frequent administration may be used.

[0169] Manufacturing and Purity Small molecule hemichannel blockers, including those of formula I and formula II, can be prepared as described above.The method of synthesizing antibodies and binding fragments, as well as peptides and polypeptides, including peptide mimetics and peptide analogs, can be carried out using suitable methods.For example, see Lihu Yang et al., Proc. Natl. Acad. Sci. USA, 1; 95(18): 10836-10841 (September 1, 1998); Harlow and Lane (1988) "Antibodies: A Laboratory Manual", Cold Spring Harbor Publications, New York; Harlow and Lane (1999) "Using Antibodies", A Laboratory Manual, Cold Spring Harbor Publications, New York.

[0170] In some embodiments, the formulations of the invention are substantially pure. By substantially pure, it is meant that the formulation contains less than about 10%, less than 5%, or less than 1%, and preferably less than about 0.1% impurities. In some embodiments, the total impurities, including metabolites of the connexin 43 modulating agent, are 1-15% or less. In some embodiments, the total impurities, including metabolites of the connexin 43 modulating agent, are 2-12% or less. In some embodiments, the total impurities, including metabolites of the connexin 43 modulating agent, are 3-11% or less. In some embodiments, the total impurities, including metabolites of the connexin 43 modulating agent, are 4-10% or less. [Example]

[0171] The work described in these Examples evaluated and demonstrated the positive effects of hemichannel blockers on BRB integrity, RPE integrity, tight junction integrity, and ZO-1 internalization, and demonstrated a reduction in type IV collagen production. Example 1 Method

[0172] Cell culture - Human adult retinal pigment epithelial cells (ARPE-19, American Type Culture Collection, USA) were cultured in Dulbecco's Modified Eagle Medium Nutrient Mixture F-12 (DMEM-F12, Thermofisher Scientific Inc., USA) supplemented with 10% fetal bovine serum (FBS, Invitrogen, USA) and 1x antibiotic and antimycotic mixture (AA, 100x stock) at 37°C in a humidified 5% CO2 incubator. Cells were grown in T75 flasks, and the medium was changed twice weekly until confluent.

[0173] HG and / or cytokine challenge - At passages 6–12, cells were plated at 2.5 × 10 in 8-well chamber slides for immunohistochemistry studies, 6-well plates for TEER and FITC-dextran studies, or 96-well plates for lactose dehydrogenase (LDH) and ATP release assays. 5 Cells were seeded at 2000 cells / mL until confluent, after which the culture medium was changed to serum-free DMEM-F12 containing 1x AA for 24 hours. A DR-like state was induced as previously described [23,20,21]. Briefly, cells were challenged with a combination of 32.5 mM HG and the proinflammatory cytokines tumor necrosis factor alpha (TNF-α, 10 ng / mL, Peprotech, USA) and interleukin-1 beta (IL-1β, 10 ng / mL, Peprotech, USA).

[0174] Treatment application - Peptide 5 (H-Val-Asp-Cys-Phe-Leu-Ser-Arg-Pro-Thr-Glu-Lys-Thr-OH, China Peptides, China) was administered to cells at a concentration of 25 μM simultaneously with HG and a combination of proinflammatory cytokines

[20] . For experiments evaluating the effects of extracellular ATP, exogenous ATP (100 nM) was added to cells simultaneously with injury and Peptide 5 treatment.

[0175] Measurement of transepithelial electrical resistance (TEER) - Cells were plated at 2.5 × 10 cells onto a polyester membrane in a Transwell® 6-well plate (Corning Incorporated, USA) in growth medium. 5 Cells / mL were seeded and incubated for 72 hours. The medium was then changed to serum-free plating medium containing the treatment. TEER measurements were obtained at 0, 24, 48, and 72 hours after treatment using an EVOM2 (World Precision Instruments, USA) with an STX3 electrode. Net TEER values ​​were calculated by subtracting the resistance of the Transwell insert without cells from the experimental value obtained from the chamber containing cells. Net TEER was multiplied by the area of ​​the insert to obtain TEER in Ω.cm. 2 The TEER data were reported relative to the basal state. The sample size was three measurements per well, repeated three times in separate experiments.

[0176] Measurement of FITC-dextran paracellular permeability - The integrity of tight junctions between ARPE-19 cells was examined by measuring the transfer of 70,000 Da fluorescein isothiocyanate (FITC)-dextran (D1820, Thermofisher Scientific Inc., USA) across a cell monolayer. After TEER measurements at 72 h, 1000 μL of spent medium in the inserts was replaced with 1000 μL of FITC-dextran (10 μg / ml) and incubated for 1 h. The inserts were removed, and samples were transferred to a 96-well plate for spectrophotometric quantification (excitation 490 nm and emission 520 nm). FITC-dextran permeability was expressed as a percentage of blank wells containing no cells or treatment. Sample size was triplicate per well, and measurements were repeated three times in separate experiments.

[0177] ATP release assay - ATP released into the cell medium was measured using the ATPLite Luminescence ATP Detection Kit (PerkinElmer, USA) as previously described

[20] . ATP release was presented as a percentage of basal levels. Sample size was 6 wells per group, repeated three times in separate experiments.

[0178] Lactate dehydrogenase (LDH) assay - Cells were cultured at 2.5 x 10 in a 96-well plate. 5 Cells were seeded at 1000 cells / mL until confluent, after which the culture medium was changed to serum-free DMEM-F12 containing 1x AA for 72 hours. After 72 hours of incubation in the treatment-containing medium, 50 μL of medium was collected from each well to measure LDH release. Sample size was 6 wells per group, and each well was repeated three times in separate experiments. The amount of released LDH was assessed using an LDH assay kit according to the manufacturer's instructions (Sigma-Aldrich, USA). Briefly, LDH reduces NAD to NAD+, which then converts the tetrazolium dye to soluble and colored formazan. The absorbance of the formazan dye in the medium was measured at 490 nm (OD490) using a Synergy 2 multimode plate reader (BioTek Instruments Inc., USA). LDH release (%) was calculated relative to basal conditions.

[0179] Immunohistochemistry - For immunohistochemistry experiments, 2.5 x 10 cells in an 8-well chamber slide 5Cells were seeded at 1000 cells / mL. After 72 hours of incubation in treatment medium, cells were fixed with 4% paraformaldehyde for 10 minutes and permeabilized with 0.1% Triton X-100 in phosphate-buffered saline (PBS) for 10 minutes. Cells were then incubated overnight at 4°C with either rabbit anti-ZO-1 (1:400, Invitrogen, USA), rabbit anti-connexin 43 (1:2000, Sigma-Aldrich, USA), or mouse anti-collagen IV (1:1000, Sigma-Aldrich, USA), followed by three 15-minute washes in PBS. Goat anti-rabbit Alexa-488 (1:500, Invitrogen, USA) or goat anti-mouse Cy3 (1:500, Jackson Immuno Research, USA) secondary antibodies were applied and incubated for 3 hours at room temperature. Secondary-only controls showed no nonspecific labeling. Cell nuclei were stained with DAPI (1:1000, Sigma-Aldrich, USA) and slides were mounted using Citifluor™ antifade reagent. Labeling was repeated three times in separate experiments.

[0180] Image analysis and quantification of collagen IV immunolabeling. Images were captured on an Olympus FV1000 confocal laser scanning microscope (Olympus, Japan). Images were processed using the Olympus FV-10 ASW viewer and ImageJ software version 1.46r (National Institutes of Health, USA). Expression of both ZO-1 and connexin43 was qualitatively assessed for changes in localization. Collagen IV labeling was quantified from four images per well, and experiments were repeated three times. Using ImageJ software, each image was split into RGB channels, with collagen IV in the red channel. Images were converted to 8-bit binary images, and an equal threshold was applied to all images to reduce background and avoid bias. The total area covered by collagen IV was then quantified using the "Measure" feature in Figure J. Collagen IV results were expressed as a percentage of untreated (basal) cells.

[0181] Statistical Analysis - Data are presented as arithmetic mean ± SD. Statistical comparisons between groups were performed using one-way or two-way ANOVA with Dunnett's test with multiple correction using GraphPad Prism 6. The specific statistical method used for each data set is provided in the respective figure legend. An adjusted p<0.05 was considered to indicate statistical significance. Example 2 Treatment with Hemichannel Blockers Prevented the Decrease in TEER and Protected Against the Corresponding Increase in Paracellular Permeability

[0182] The combination of HG and cytokines resulted in a decrease in TEER at 48 hours (p = 0.0007) and 72 hours (p = 0.0030) compared to basal conditions (Figure 1a). This was accompanied by a significant increase in FITC-dextran permeability (p = 0.0016) at 72 hours after the addition of HG and inflammatory cytokines (38.42 ± 1.84%) compared to basal conditions (32.77 ± 2.23%) (Figure 1b). Hemichannel blockade with Peptide 5 treatment reduced the decrease in TEER at both time points, with no statistically significant difference between Peptide 5-treated and basal cells at both 48 hours (p = 0.2238) and 72 hours (p = 0.3778). Similarly, hemichannel blockade using the model blocker, Peptide 5 (33.2 ± 2.87%), protects against the increase in FITC-dextran permeability at 72 hours. Example 3: Hemichannel blocker treatment prevented collagen IV upregulation

[0183] ARPE-19 cells deposited low levels of collagen IV under basal conditions (Figure 4). With the addition of HG and inflammatory cytokines, there was an increase in collagen IV deposition (618.5 ± 332.3%, p = 0.0180) compared to basal cells (31.25 ± 36.06%). Hemichannel blocker treatment with Peptide 5 prevented the upregulation of collagen IV, with no statistically significant difference between Peptide 5 treatment (40.32 ± 43.16%) and basal cells (p = 0.9976). Example 4: Connexin hemichannel blockade protects against loss of Connexin43 localization at the plasma membrane

[0184] Basally, connexin 43 protein localized to the plasma membrane within plaques, where it could be immunohistochemically labeled (Fig. 5c). Addition of HG and inflammatory cytokines resulted in a loss of connexin 43 plaque labeling at the plasma membrane and increased intracellular localization of the protein. Treatment with the hemichannel blocker Peptide 5 prevented the redistribution of connexin 43 away from the plasma membrane and into the cytoplasm. Example 5: Peptide 5 protects against HG and cytokine-induced ATP release

[0185] HG and cytokines (196.5 ± 12.15%) induced an increase in ATP release compared to basal conditions (98.25 ± 21.91%, p = 0.0014) (Figure 5a). Hemichannel blocker treatment with Peptide 5 (66.67 ± 21.91%) inhibited HG and cytokine-mediated ATP release (p = 0.0003), resulting in no statistically significant difference between basal and Peptide 5-treated cells. Example 6: Peptide 5 protects against HG- and cytokine-induced cell damage in an ATP-dependent manner

[0186] To confirm that the protective effect was due to hemichannel blocker treatment, exogenous ATP was added to the cell culture medium in the presence of HG, inflammatory cytokines, and Peptide 5. As previously described, LDH release increased and connexin43 internalization into the cytoplasm increased with the addition of HG and cytokines, but connexin43 was maintained in a normal pattern, and LDH release remained low in the presence of Peptide 5. However, exogenously added ATP again reversed the protection conferred by the Peptide 5 hemichannel blocker, as measured by increased LDH release (Figure 5b) and changes in connexin43 gap junction localization (Figure 5c).

[0187] Consideration Using TEER and FITC-dextran permeability as markers, we assessed the barrier properties of ARPE-19 cells after injury using a combination of HG and proinflammatory cytokines, with and without treatment with a hemichannel blocker (in this case, Peptide 5 hemichannel blocker). Results showed that blockade of connexin43 hemichannels prevented the HG- and cytokine-mediated decrease in TEER and increase in FITC-dextran permeability, supporting the idea that connexin43 hemichannels can effectively mediate RPE breakdown and BRB breakdown, e.g., in DME, through regulating RPE and BRB integrity / function. Importantly, we also demonstrated that blockade of connexin43 hemichannels protected tight junction integrity and maintained ZO-1 localization at the plasma membrane.

[0188] Increased secretion of extracellular matrix components has also been reported as a characteristic of stressed RPE cells. Trudeau and colleagues found that the combination of HG and IL-1β increased collagen IV gene and protein expression by RPE cells in vitro. Trudeau K, et al. (2011) Fenofibric acid reduces fibronectin and collagen type IV overexpression in human retinal pigment epithelial cells grown in conditions mimicking the diabetic milieu: functional implications in retinal permeability. Invest Ophthalmol Vis Sci 52 (9):6348-6354. This is consistent with the results herein, which show that collagen IV expression by ARPE-19 cells increased in response to HG and cytokines. Furthermore, elevated collagen IV expression has been found in the basement membrane of donors with a confirmed DR diagnosis compared with normal donors (Roy S, et al. (1994) Increased expression of basement membrane collagen in human diabetic retinopathy. J Clin Invest 93 (1):438-442), further demonstrating the significance of the findings herein that hemichannel blocker treatment prevents collagen IV upregulation. Previous studies have shown that reducing collagen IV upregulation prevents basement membrane thickening and, consequently, RPE barrier breakdown. Id. Therefore, blocking hemichannels, for example, with connexin 43 hemichannel blockers, can protect RPE integrity not only through the protection of tight junctions but also by helping to maintain cellular homeostasis. This is also supported by the findings herein regarding LDH release from ARPE-19 cells.Although the LDH release levels shown indicate a loss of plasma membrane integrity as opposed to cell death, hemichannel blockade was able to protect against the increased LDH release, again supporting the notion that connexin43 hemichannel blockade helps maintain plasma membrane integrity. Collectively, the ZO-1, collagen IV, and LDH results support the idea that blocking ATP-dependent inflammasome activation induced by pathological and unregulated connexin43 hemichannel patency results in the maintenance of tight junction, basement membrane, and plasma membrane structure.

[0189] In line with these results, we report herein the discovery that gap junction connexin43 localization was disrupted after combined HG and cytokine injury. Previously, connexin43 protein expression was reported to be increased in the retina in mouse models of diabetic retinopathy and in donors with a confirmed diagnosis of diabetic retinopathy. Mugisho OO, et al. (2017) Immunohistochemical Characterization of Connexin43 Expression in a Mouse Model of Diabetic Retinopathy and in Human Donor Retinas. Int J Mol Sci 18 (12):2567. This study supports the idea that connexin43 gap junction plaques can also redistribute to the cell membrane or be internalized in disease. Because gap junction-mediated cell-cell communication is necessary for normal cellular function, loss of gap junctions at the cell membrane suggests a pathological condition that results in a loss of cellular homeostasis. Connexin43 hemichannel blockade maintained normal gap junction connexin43 distribution in the plasma membrane and therefore cellular homeostasis. See Eugenin EA, et al. (2012) The role of gap junction channels during physiologic and pathologic conditions of the human central nervous system. J Neuroimmune Pharmacol 7 (3):499-518.

[0190] Previous studies have also reported that extracellular ATP is a key signaling molecule that initiates the NLRP3 inflammasome pathway. In the above experiments, we evaluated the role of ATP in connexin43 hemichannel-mediated RPE barrier disruption. Results showed that LDH release increased and connexin43 gap junctions were disrupted in the presence of exogenously added ATP, even though the connexin43 hemichannel blocker Peptide 5 was also present in the culture medium. These findings suggest that the role of connexin43 hemichannels in RPE barrier permeability may also be mediated by ATP release.

[0191] In conclusion, previous studies have suggested that loss of RPE barrier integrity is primarily due to ZO-1 (tight junction)-related defects, independent of connexin43 activity. Obert E, et al. (2017) Targeting the tight junction protein, zonula occludens-1, with the connexin43 mimetic peptide, alphaCT1, reduces VEGF-dependent RPE pathophysiology. J Mol Med (Berl) 95 (5):535-552. This study demonstrates that the resulting loss of RPE and BRB integrity and function, as well as tight junction integrity and function, is primarily initiated by pathological patency of connexin hemichannels, particularly connexin43 hemichannels. Patency of connexin43 hemichannels leads to ATP release, which activates the NLRP3 inflammasome pathway. Here, we found that this results in a loss of ZO-1 and gap junction connexin43 localization at the plasma membrane, contributing to a loss of barrier integrity and function and cellular homeostasis, as reflected by collagen IV expression and LDH release. These results further support the concept that targeting hemichannels may protect against loss of RPE and BRB integrity, as well as loss of tight junction integrity and increased collagen IV production, which occurs in various diseases, disorders, and conditions. As mentioned above, preferred connexin hemichannel targets include not only Cx43 hemichannels, but also Cx36, Cx37, and Cx45 hemichannels, which are also found in the retina.***

[0192] The invention described and claimed herein has numerous features and embodiments, including, but not limited to, those set forth or described or referenced in this detailed disclosure. It is not intended to be comprehensive, and the invention described and claimed herein is not limited to or by the features or embodiments specified in this detailed disclosure, which are included for purposes of illustration and not limitation. Those skilled in the art will readily recognize that many of the components and parameters can be varied or modified to a certain extent or substituted with known equivalents without departing from the scope of the invention. It is to be understood that such modifications and equivalents are incorporated herein as if individually set forth. The invention also includes all steps, features, compositions, and compounds referenced or labeled in this specification, individually or collectively, as well as any or all of any two or more of said steps or features.

[0193] All patents, publications, scientific articles, websites, and other documents and materials referenced and described in this specification are indicative of the level of skill of those skilled in the art to which this invention pertains, and each such referenced document and material is hereby incorporated by reference to the same extent as if it were individually incorporated by reference in its entirety or as if set forth in its entirety herein. Applicant reserves the right to physically incorporate into this specification any and all materials and information from any such patents, publications, scientific articles, websites, electronically available information, and other referenced materials or documents. Reference to any applications, patents, and publications in this specification is not intended to be, and should not be, construed as, an admission or any form of suggestion that they constitute pertinent prior art or form part of the common general knowledge in any country in the world.

[0194] The specific methods and compositions described herein are representative of preferred embodiments, are illustrative, and are not intended as limitations on the scope of the invention. Other objects, aspects, and embodiments will occur to those skilled in the art upon consideration of this specification, and are encompassed within the spirit of the invention, as defined by the scope of the claims. It will be readily apparent to those skilled in the art that various substitutions and modifications can be made to the invention disclosed herein without departing from the scope and spirit of the invention. The invention, as illustratively described herein, as applicable, may be practiced in the absence of any one or more elements, or under one or more limitations, not specifically disclosed herein as essential. Thus, for example, in each example herein, any of the terms "comprising," "consisting essentially of," and "consisting of" in an embodiment or example of the invention may be replaced with either of the other two terms herein. The methods and processes, as illustratively described herein, as applicable, may be practiced in a variety of step sequences, and are not necessarily limited to the step sequences set forth in the specification or claims. Also, as used herein and in the appended claims, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. In no event may this patent be construed as limited to the specific examples or embodiments or methods specifically disclosed herein. In no circumstances may this patent be construed as limited by any statements made by any examiner or any other officer or employee of the Patent and Trademark Office, unless specifically and without limitation or reservation, expressly incorporated by reference in applicant's reply brief. Furthermore, titles, headings, or the like are provided to enhance the reader's comprehension of this document and should not be read as limiting the scope of the claimed invention. Any examples of aspects, embodiments, or components of the invention referenced herein shall be considered non-limiting.

[0195] The terms and expressions which have been employed are used as terms of description and not of limitation, and there is no intention in the use of such terms and expressions to exclude any equivalents of the features shown and described, or portions thereof, but it is recognized that various modifications may be made within the scope of the invention as claimed. Thus, although the present invention has been specifically disclosed by preferred embodiments and optional features, it is to be understood that modifications and variations of the concepts disclosed herein may be recovered by those skilled in the art; and that such modifications and variations are deemed to be within the scope of this invention as defined by the appended claims.

[0196] The invention is described broadly and generically herein. Each of the narrower species and subgeneric groupings falling within this generic disclosure also form part of the invention. This includes generic descriptions of the invention with conditions or negative limitations that exclude any subject matter from that genus, whether or not the omitted material is specifically described herein.

[0197] Other embodiments are within the scope of the following claims. Furthermore, those skilled in the art will recognize that when features or aspects of the invention are described in terms of a Markush group, the invention is also thereby described in terms of any individual member or subgroup of members of the Markush group.

Claims

1. 1. A composition for maintaining or improving the integrity of the blood-retinal barrier (BRB) in a subject, the composition comprising a connexin 43 hemichannel blocker selected from the group consisting of N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam) and Peptide 5.

2. 1. A composition for maintaining or improving the integrity of the retinal pigment epithelium (RPE) in a subject, the composition comprising a connexin 43 hemichannel blocker selected from the group consisting of N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam) and Peptide 5.

3. 1. A composition for maintaining or improving tight junction integrity in a subject, the composition comprising a connexin 43 hemichannel blocker selected from the group consisting of N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam) and Peptide 5.

4. 1. A composition for reducing or slowing the increase in type IV collagen production in a subject, the composition comprising a connexin 43 hemichannel blocker selected from the group consisting of N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam) and Peptide 5.

5. 1. A composition for reducing gap junction plaque internalization in a cell in a subject, the composition comprising a connexin 43 hemichannel blocker selected from the group consisting of N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam) and Peptide 5.

6. The composition according to any one of claims 1 to 4 or 5, characterized in that the composition is formulated for oral administration or for administration by injection.

7. 10. The composition of claim 1, wherein the composition is administered to achieve a final circulating concentration of the hemichannel blocker in the range of about 10 to about 250 micromolar.

8. 10. The composition of claim 1, wherein the composition comprises Peptide 5 and is administered by injection.

9. 10. The composition of claim 1, wherein the composition comprises N-[(3S,4S)-6-acetyl-3-hydroxy-2,2-dimethyl-3,4-dihydrochromin-4-yl]-3-chloro-4-fluorobenzamide (Xiflam) and is administered orally.

10. 10. The composition of claim 1, wherein the composition is administered as needed (PRN), or on a predetermined schedule, or both.

11. The composition of claim 1 , wherein the subject is a human.

Citation Information

Patent Citations

  • Cytokine modulation

    US20190030122A1

  • Compositions and methods for modulating connexin hemichannels

    US7153822B2