Lipid vesicle compositions containing penetration enhancers

Biphasic lipid vesicles with penetration enhancers address the skin barrier issue, enabling effective delivery of large molecules by forming a stable delivery system that penetrates deeper into the skin.

JP7767274B2Active Publication Date: 2025-11-11DDS RES INC
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Patent Information

Application Number
JP2022517858
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-09-23
Filing Date
2020-09-23
Publication Date
2025-11-11
Estimated Expiration
2040-09-23

AI Technical Summary

Technical Problem

Existing lipid-based delivery systems, such as liposomes and solid lipid nanoparticles, struggle to effectively deliver large molecules like proteins through the skin due to the barrier properties of the stratum corneum, limiting their therapeutic utility.

Method used

Biphasic lipid vesicles with a lipid bilayer and an oil-in-water emulsion stabilized by surfactants, incorporating penetration enhancers with an HLB of 10 or less, enhance the delivery of compounds by forming a stable delivery system that can penetrate deeper into the skin.

Benefits of technology

The biphasic lipid vesicles significantly improve the delivery of compounds like peptides and proteins by increasing their penetration into the epidermis and dermis, overcoming the skin barrier and enhancing therapeutic efficacy.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to a biphasic lipid vesicle pharmaceutical composition comprising a lipid bilayer comprising vesicle-forming lipids, an oil-in-water emulsion stabilized by one or more surfactants, one or more compounds, and one or more penetration enhancers. The one or more penetration enhancers include one or more non-ionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less, alone or in combination with one or more penetration enhancers selected from one or more of terpenes, alkaloids, salicylate derivatives, and polycationic surfactants, and combinations thereof. This application also relates to a pharmaceutical composition comprising a biphasic lipid vesicle comprising a lipid bilayer, the biphasic lipid vesicle comprising a vesicle-forming lipid, an oil-in-water emulsion stabilized by one or more polycationic surfactants, and one or more compounds.
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Description

[Technical Field]

[0001] Related Applications This application claims the benefit of priority to co-pending U.S. Provisional Patent Application No. 62 / 904,606, filed September 23, 2019, and U.S. Provisional Patent Application No. 62 / 904,584, filed September 23, 2019, the contents of both of which are incorporated herein by reference in their entireties.

[0002] The present technology generally relates to lipid vesicle formulations for topical delivery of therapeutic compounds, where the lipid vesicle formulations include one or more penetration enhancers, such as one or more surfactants with an HLB of 10 or less. [Background technology]

[0003] The barrier properties of the skin prevent most external substances from penetrating into the body. Most drugs have properties outside the preferred range of permeability and therefore require some type of enhancer to be therapeutically useful. The primary barrier controlling protein delivery through the skin is the outermost layer of the skin, the stratum corneum (SC). In mammalian skin, the SC (10–20 μm thick) consists of dead keratinocytes containing cross-linked keratin and intercellular lipids organized into a bilayer. Beneath the SC is the viable epidermis (50–100 μm), and deeper is the dermis (1–2 mm), which contains a rich capillary bed for drug absorption just below the dermal-epidermal junction. The size limit for molecules acceptable for passive delivery through the skin is generally less than 500 Da. Molecules above this molecular weight rarely penetrate intact skin alone.

[0004] Various delivery approaches have been developed to facilitate drug diffusion into or through the skin. Enhanced penetration through the skin may be achieved by physical methods (e.g., microneedles, thermal ablation), electrical methods (e.g., electroporation, iontophoresis), or chemical methods (e.g., chemical enhancers). The use of physical and electrical methods to enhance drug penetration through the skin has shown some success in facilitating the delivery of large and small molecules, but significant hurdles remain before they are accepted. Several non-invasive delivery vehicles, primarily lipid-based, have been developed for protein delivery, including liposomes, transfersomes, niosomes, and solid lipid nanoparticles. However, compared with other invasive techniques, these delivery systems can only deliver limited amounts of protein into various skin layers.

[0005] U.S. Patent Nos. 5,853,755 and 5,993,851 describe biphasic lipid vesicle compositions and methods for their preparation. U.S. Patent No. 5,993,852 describes biphasic lipid vesicle compositions for transdermal administration of immunizing antigens. Summary of the Invention

[0006] The present disclosure provides: a) lipid vesicles, each comprising a lipid bilayer comprising a vesicle-forming lipid; b) oil-in-water emulsions entrapped in biphasic lipid vesicles and stabilized by one or more surfactants; c) one or more compounds entrapped within the lipid bilayer and / or oil-in-water emulsion, and d) biphasic lipid vesicle compositions comprising one or more penetration enhancers entrapped within the lipid bilayer and / or oil-in-water emulsion, wherein the one or more penetration enhancers are one or more non-ionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less.

[0007] This application also relates to a) a lipid vesicle comprising a lipid bilayer comprising a vesicle-forming lipid; b) an oil-in-water emulsion entrapped in biphasic lipid vesicles and comprising one or more polycationic surfactants; and c) Biphasic lipid vesicle compositions comprising one or more compounds entrapped within a lipid bilayer and / or an oil-in-water emulsion.

[0008] The present application also includes a method for preparing the biphasic lipid vesicles of the present disclosure, the method comprising: a) preparing an oil-in-water emulsion comprising one or more surfactants by mixing the oil component of the oil-in-water emulsion with the aqueous component of the oil-in-water emulsion, wherein the oil component and / or the aqueous component of the oil-in-water emulsion comprises one or more surfactants; b) solubilizing the vesicle-forming lipids in an acceptable solvent other than water; c) adding one or more compounds and one or more penetration enhancers to the oily and / or aqueous components of step a) and / or the solubilized vesicle-forming lipids of step b); d) adding an oil-in-water emulsion to the solubilized vesicle-forming lipids; and e) mixing the oil-in-water emulsion with the solubilized vesicle-forming lipids under mixing conditions effective to form biphasic lipid vesicles comprising a lipid bilayer comprising the lipid-forming vesicles and the oil-in-water emulsion entrapped in the biphasic lipid vesicles.

[0009] The present application also further includes methods of delivering one or more compounds to a subject by topically administering to the skin or mucosa the biphasic lipid vesicle compositions of the present disclosure.

[0010] The present application also includes a method for improving the topical delivery of one or more compounds, comprising administering an effective amount of the biphasic lipid vesicle composition of the present disclosure to the skin or mucosa of a subject in need thereof.

[0011] The present application further includes a method for treating or preventing a skin disease associated with excessive or defective collagen production in a subject, comprising administering to the subject an effective amount of the lipid vesicle cosmetic composition of the present disclosure.

[0012] The present application further includes methods for treating diseases, disorders, or conditions treatable by delivering one or more therapeutic compounds to a subject by topically administering to the skin or mucosa a therapeutically effective amount of a biphasic lipid vesicle pharmaceutical composition of the present disclosure.

[0013] Other features and advantages of the present application will become apparent from the following detailed description. However, the detailed description and specific examples, while indicating embodiments of the present disclosure, are given for illustrative purposes only, and it should be understood that the claims should not be limited by these embodiments, but should be accorded the broadest interpretation consistent with the description as a whole. [Brief explanation of the drawings]

[0014] [Figure 1A] Figures 1A and 1B show confocal microscopy images of treated human skin, with Figure 1A showing exemplary peptide-lipid vesicle formulations 1 to 4 containing a rhodamine red-labeled 12-mer peptide (peptide with a molecular weight of approximately 1200), FITC-insulin (insulin with a molecular weight of approximately 6,000), and FITC-IgG (IgG with a molecular weight of approximately 150,000). [Figure 1B]Figures 1A and 1B show confocal microscopy images of treated human skin, and Figure 1B shows a separate control study with Alexa 647-labeled IgG (red fluorescence) incorporated into biphasic vesicles (comparison formulation). Skin cross-sections show minimal fluorescence throughout the epidermis and dermis in the red channel, i.e., the first panel (three panels: first panel is the red channel for Alexa IgG, second panel is a general tissue stain (blue nuclear stain Syto 60), and third panel is a merged image). The last panel is skin treated with a placebo formulation (merged image of the red channel and general tissue stain), showing no fluorescent background in the settings used to analyze protein delivery. [Figure 2] Confocal microscopy images of mouse skin treated with the nucleic acid-lipid vesicle formulation F-TOM-1-5 are shown. For each formulation, three panels are shown: the first panel shows the red channel for RFP expression (seen as brightly colored areas in the epidermis and dermis), the second panel shows general tissue staining (blue nuclear stain Syto 60), and the third panel shows the merged image. DETAILED DESCRIPTION OF THE INVENTION

[0015] I. Definition Unless otherwise indicated, the definitions and embodiments set forth in this and other sections are intended to apply to all embodiments and aspects of the application described herein where they are appropriate, as understood by one of ordinary skill in the art.

[0016] The embodiments illustratively described herein may suitably be practiced in the absence of any element(s) or limitation(ies) not specifically disclosed herein. Thus, for example, the terms "comprising," "including," "containing," etc., shall be read expansively and without limitation. Furthermore, the terms and phrases employed are used as descriptive terms, not limiting, and it is not intended to use such terms or phrases to exclude all equivalents of the features shown and described, or portions thereof, although it is understood that various modifications are possible within the scope of the claimed technology. Furthermore, the phrase "consisting essentially of" shall be understood to include the elements specifically described and additional elements that do not materially affect the basic and novel characteristics of the claimed technology. The phrase "consisting of" excludes any elements not expressly specified.

[0017] For example, as used in this application and the claims, the words "comprising" (and forms of "comprising" such as "comprise" and "comprises"), "having" (and forms of "having" such as "have" and "has"), "including" (and forms of "including" such as "includes" and "include"), or "containing" (and forms of "containing" such as "contain" and "contains") are inclusive or open-ended and do not exclude additional, unrecited elements or process steps.

[0018] As used herein, the term "comprising" and its derivatives are intended to be closed terms that specify the presence of stated features, elements, components, groups, integers, and / or steps and exclude the presence of other, unstated features, elements, components, groups, integers, and / or steps.

[0019] The phrase "consisting essentially of" will be understood to include the elements specifically recited and additional elements that do not materially affect the basic and novel characteristics of the claimed technology. The phrase "consisting of" excludes any element not expressly specified.

[0020] As used herein, the term "and / or" means that the listed items are present or used individually or in combination. In effect, the term means that "at least one" or "one or more" of the listed items are used or present. The term "and / or" with respect to enantiomers, prodrugs, salts and / or solvates means that individual enantiomers, prodrugs, salts and hydrates, as well as combinations such as salts of solvates of the compounds of the present disclosure, are present.

[0021] In embodiments involving an "additional" or "second" component or effect, such as an additional or second compound, a second compound, as used herein, is different from the other compound or first compound. A "third" compound is different from the other, first, and second compounds, and further listed or "additional" compounds are similarly different.

[0022] As used herein, "about" will be understood by one of ordinary skill in the art and will vary to some extent depending on the context in which it is used. If there is a usage that is not clear to a person of ordinary skill in the art from the context in which the term is used, "about" will mean up to plus or minus 10% of the term in question.

[0023] The terms "a," "an," "the," and similar referents in the context of descriptions of elements (particularly in the context of the claims that follow) should be construed to include both the singular and the plural unless otherwise indicated herein or clearly contradicted by content. The recitation of ranges of values ​​herein is merely intended to serve as a shorthand method for individually referring to each individual value falling within the range, unless otherwise indicated herein, and each individual value is incorporated herein as if set forth individually herein. Unless otherwise indicated herein or clearly contradicted by context, all methods described herein can be performed in any suitable order. The use of all examples or exemplary language (e.g., "such as") provided herein is intended merely to better illuminate embodiments and does not pose a limitation on the scope of the exemplary embodiments claimed, unless otherwise expressly stated. No language in the specification should be construed as requiring any non-claimed element.

[0024] As used herein, the term "hydrophilic" refers to a compound or additive that is substantially water-soluble, water-dispersible, or generally capable of permeating and / or absorbing water.

[0025] The term "hydrophobic" as used herein refers to a compound or additive that does not substantially dissolve or disperse in water.

[0026] The terms "nucleic acid" and "oligonucleotide," as used herein, refer to two or more covalently linked nucleotides. Unless the context clearly indicates otherwise, these terms generally include, but are not limited to, deoxyribonucleic acid (DNA) and ribonucleic acid (RNA), which may be single-stranded (ss) or double-stranded (ds). For example, nucleic acid molecules or polynucleotides of the present disclosure may be composed of single- and double-stranded DNA, DNA that is a mixture of single- and double-stranded regions, single- and double-stranded RNA, and RNA that is a mixture of single- and double-stranded regions, or hybrid molecules containing DNA and RNA that may be single-stranded, or more commonly, double-stranded, or a mixture of single- and double-stranded regions. Furthermore, nucleic acid molecules may be composed of triple-stranded regions containing RNA or DNA, or both RNA and DNA. The term "oligonucleotide," as used herein, generally refers to a nucleic acid up to 200 base pairs in length, which may be single-stranded or double-stranded. The sequences provided herein may be DNA or RNA sequences, or hybrid sequences; however, the sequences provided will be understood to encompass both DNA and RNA, as well as complementary RNA and DNA sequences, unless the context clearly indicates otherwise. For example, the sequence 5'-GAATCC-3' is understood to include 5'-GAAUCC-3', 5'-GGATTC-3', and 5'GGAUUC-3'. Nucleic acids or oligonucleotides may contain naturally occurring bases, including adenine, guanine, cytosine, thymidine, and uracil. The sequences may also contain modified bases. Examples of such modified bases include aza- and deaza-adenine, guanine, cytosine, thymidine, and uracil; and xanthine and hypoxanthine. As used herein, the term "isolated nucleic acid sequence" refers to a nucleic acid that is substantially free of cellular material or culture medium when produced by recombinant DNA techniques, or chemical precursors when chemically synthesized. An isolated nucleic acid is also substantially free of sequences which naturally flank the nucleic acid from which it is derived (ie, sequences located at the 5' and 3' ends of the nucleic acid).The nucleic acid may be, for example, a plasmid DNA, a viral vector, naked DNA, RNA, a DNA / RNA hybrid, or a synthetic nucleic acid.

[0027] As used herein, the terms "peptide," "polypeptide," and "protein" refer to any chain of two or more natural or unnatural amino acid residues, regardless of post-translational modification (e.g., glycosylation or phosphorylation). Polypeptides incorporated into the disclosed biphasic vesicles can contain, for example, 3 to 3,500 natural or unnatural amino acid residues. Proteins that are single polypeptide chains and multi-subunit proteins (e.g., consisting of two or more polypeptides) are included.

[0028] The term "amino acid" includes all naturally occurring amino acids as well as modified L-amino acids. The atoms of an amino acid may contain, for example, different isotopes. For example, an amino acid may contain deuterium substituted for hydrogen, nitrogen-15 substituted for nitrogen-14, and carbon-13 substituted for carbon-12, as well as other similar changes.

[0029] As used herein, "immunogen" means a substance that, when administered to a subject, stimulates an immune response, elicits the production of antibodies, and activates lymphocytes or other reactive immune cells directed against the antigenic portion of the immunogen.

[0030] As used herein, the term "antibody" is intended to include monoclonal, polyclonal, single-chain, humanized, and other chimeric antibodies, as well as binding fragments thereof. Antibodies may be derived from recombinant sources and / or produced in transgenic animals. Also included are biochemically produced antibodies and human antibodies isolated from libraries. Humanized or chimeric antibodies may contain sequences from more than one isotype or class.

[0031] As used herein, the term "binding fragment" refers to a portion or portion of an antibody or antibody chain that contains fewer amino acid residues than an intact or complete antibody or antibody chain and that binds to an antigen or competes with the intact antibody. Exemplary binding fragments include, but are not limited to, Fab, Fab', F(ab')2, scFv, dsFv, ds-scFv, dimers, nanobodies, minibodies, diabodies, and multimers thereof. Fragments can be obtained by chemical or enzymatic treatment of an intact or complete antibody or antibody chain. Fragments can also be obtained recombinantly. For example, F(ab')2 fragments can be generated by treating an antibody with pepsin. The resulting F(ab')2 fragment can be treated to reduce disulfide bridges to generate Fab' fragments. Papain digestion can result in the formation of Fab fragments. Fab, Fab' and F(ab')2, scFv, dsFv, ds-scFv, dimers, minibodies, diabodies, bispecific antibody fragments and other fragments can also be constructed by recombinant expression techniques.

[0032] Furthermore, the definitions and embodiments described in a particular section are intended to be applicable to other embodiments described herein where they are suitable, as understood by those skilled in the art. For example, in the following passages, various aspects are defined in more detail. Each aspect thus defined may be combined with other aspects unless expressly indicated to the contrary. In particular, any feature indicated as preferred or advantageous may be combined with other feature(s) indicated as preferred or advantageous.

[0033] As used herein, the term "composition of the present disclosure" refers to a composition comprising the biphasic lipid vesicles described herein.

[0034] As used herein, the term "penetration enhancer" refers to one or more nonionic surfactants or polycationic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less. In one embodiment, the one or more penetration enhancers are one or more nonionic surfactants having a hydrophilic-lipophilic balance of about 10 or less combined with one or more penetration enhancers selected from one or more terpenes, alkaloids, salicylic acid derivatives, and polycationic surfactants, and combinations thereof.

[0035] As used herein, the term "entrapped" refers to the non-covalent association of the referenced agent with the lipid bilayer(s) of the biphasic lipid vesicle, the central core of the biphasic lipid vesicle, and / or the space(s) between adjacent bilayers of the biphasic lipid vesicle.

[0036] As used herein, the term "biphasic lipid vesicle" refers to a vesicle in which the central core compartment is occupied by an oil-in-water emulsion composed of a continuous aqueous phase and a dispersed hydrophobic, hydrophilic, or oil phase. In one embodiment, the space between adjacent bilayers of a biphasic lipid vesicle may also be occupied by an emulsion.

[0037] As used herein, the term "emulsion" means a mixture of two immiscible substances.

[0038] As used herein, the term "bilayer" refers to a structure composed of amphiphilic lipid molecules arranged in a two-molecular layer, with internal hydrophobic tails and external water-soluble heads.

[0039] As used herein, the term "topical administration" or "topical delivery" means delivery of a compound intradermally, transdermally, and / or to the oral mucosa by administering a composition containing the compound(s) to the skin and / or mucosa.

[0040] As used herein, the term "gemini surfactant" refers to a surfactant molecule comprising one or more hydrophobic tails, each of which has a hydrophilic head, wherein the hydrophobic tails or hydrophilic heads are linked together by a spacer moiety. The hydrophobic tails may be the same or different. Similarly, the hydrophilic heads may be the same or different. The hydrophilic heads may be anionic, cationic, or neutral.

[0041] The term "HLB" or "hydrophilic-lipophilic balance" value refers to the standard HLB according to Griffin, J. Soc. Cosm. Chem., vol. 5, 249 (1954), which indicates the degree of hydrophilicity and lipophilicity of a surfactant.

[0042] As used herein, the term "subject" includes all members of the animal kingdom, including mammals, and preferably refers to humans. Thus, the methods and uses of the present application are applicable to both human therapeutic and cosmetic uses and veterinary uses.

[0043] As used herein and as well understood in the art, the terms "treating" or "treatment" refer to an approach for obtaining beneficial or desired results, including clinical results. Beneficial or desired clinical results include, but are not limited to, alleviation or amelioration of one or more symptoms or diseases, reduction in the extent of disease, stabilized (i.e., not worsening) disease state, preventing the spread of disease, delaying or slowing disease progression, improvement or palliation of the disease state, reduction in recurrence of disease, and remission (whether partial or total), whether detectable or undetectable. "Treating" and "treatment" can also mean prolonging survival compared to expected survival in the absence of treatment. As used herein, "treating" and "treatment" can also include prophylactic treatment. For example, a subject with a skin disease, disorder, or condition can be treated to prevent progression. A treatment method includes administering to a subject a therapeutically effective amount of one or more compounds of the present disclosure, and optionally consists of a single dose or, alternatively, includes a series of doses.

[0044] As used herein, the term "effective amount" or "therapeutically effective amount" refers to an amount effective, at dosages and for periods of time necessary, to achieve a desired result. As used herein and as well understood in the art, the terms "to treat," "treating," and "treatment" refer to an approach for obtaining beneficial or desired results, including clinical results. "To treat," "treating," and "treatment" can also mean prolonging survival as compared to expected survival if not receiving treatment. As used herein, "to treat," "treating," and "treatment" also include prophylactic treatment.

[0045] Where features or aspects of the disclosure are described in terms of a Markush group, one of skill in the art will recognize that the description also describes the disclosure in terms of any individual member or subgroup of members of the Markush group.

[0046] Furthermore, the definitions and embodiments described in a particular section are intended to be applicable to other embodiments described herein where they are suitable, as will be understood by those skilled in the art. For example, in the following text, various aspects are defined in more detail. Each aspect defined in this manner may be combined with other aspects unless expressly indicated to the contrary. For example, any combination of members of any taxonomic group may be combined or optionally combined with other subgroups of any member. In particular, features indicated as preferred or advantageous may be combined with other features or functions indicated as preferred or advantageous.

[0047] As will be understood by those skilled in the art, for all purposes, particularly in terms of providing a written description, all ranges disclosed herein encompass all possible subranges and combinations of those subranges. It can be readily recognized that any recited range fully describes and allows for the same range to be broken down into at least two equal parts, one-third, one-quarter, one-fifth, one-tenth, etc. As a non-limiting example, each range discussed herein can be easily divided into a lower third, a middle third, an upper third, etc. As will also be understood by those skilled in the art, all terms such as "up to," "at least," "greater than," "less than," etc. refer to a range that includes the recited numbers and can be subsequently divided into subranges as discussed above. Finally, as will be understood by those skilled in the art, a range includes each individual element.

[0048] II. Compositions of the Present Disclosure Applicants have shown that biphasic phospholipid vesicles having a phospholipid bilayer that segregates a stabilized oil-in-water emulsion and a compound, wherein the compound comprises one or more penetration enhancers added to the phospholipid bilayer or the stabilized oil-in-water emulsion, or both, of a delivery system (e.g., a composition and / or other product comprising the biphasic vesicles described herein), provide enhanced skin penetration of the compound.

[0049] Applicants have shown that certain penetration enhancers and combinations of penetration enhancers and compounds can be used to more effectively deliver higher amounts of compound (e.g., milligrams) into a given amount of skin (e.g., grams) than other combinations.

[0050] The penetration enhancer compound can be selected from a variety of compounds that are themselves commonly known as penetration enhancers. In one embodiment, Applicant has shown that the penetration enhancer is a nonionic surfactant having a hydrophilic-lipophilic balance ("HLB") of 10 or less, alone or in combination with one or more penetration enhancers, such as terpenes, alkaloids, salicylate derivatives, gemini cationic surfactants, or polycationic (e.g., dicationic, tricationic, etc.) surfactants such as polycationic amino acids, or combinations thereof, to provide enhanced skin penetration of a compound compared to an otherwise identical or similar composition lacking the one or more penetration enhancers.

[0051] In another embodiment, Applicant has shown that polycationic surfactants, such as gemini dicationic surfactants or polycationic amino acids, enhance skin penetration of compounds in comparison to identical or similar compositions but having a monocationic surfactant instead of a polycationic surfactant.

[0052] Therefore, the present application a) lipid vesicles, each comprising a lipid bilayer comprising a vesicle-forming lipid; b) oil-in-water emulsions entrapped in biphasic lipid vesicles and stabilized by one or more surfactants; c) one or more compounds entrapped in an oil-in-water emulsion of lipid bilayers or biphasic vesicles; and d) biphasic lipid vesicle compositions comprising one or more penetration enhancers entrapped in an oil-in-water emulsion of lipid bilayers or biphasic vesicles, wherein the one or more penetration enhancers are one or more non-ionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less.

[0053] In one embodiment, the biphasic lipid vesicle composition is a cosmetic composition. In one embodiment, the biphasic lipid vesicle composition is a pharmaceutical composition.

[0054] In one embodiment, a pharmaceutical composition (referred to herein as a lipid vesicle composition) is provided for topical administration of a therapeutic compound to achieve local delivery, the composition comprising a lipid vesicle, an oil-in-water emulsion, a therapeutic compound, and one or more penetration enhancers, wherein the lipid vesicle comprises an outer lipid bilayer, the oil-in-water emulsion is coated by the outer lipid bilayer, the therapeutic compound is, for example, a small molecule peptide or protein, and the one or more penetration enhancers increase the amount of the therapeutic compound absorbed into a volume of skin compared to the composition in the absence of the one or more penetration enhancers.

[0055] Applicant has shown that lipid vesicles can be formulated with compounds and / or penetration enhancers, and the compounds and / or penetration enhancers can be selectively incorporated into the lipid bilayer and / or oil-in-water emulsion at various stages of the production of biphasic lipid vesicles. For example, during the production of biphasic lipid vesicles, compounds can be added only to the oil-in-water emulsion, only to the lipid bilayer components, or to both the oil-in-water emulsion and the lipid bilayer. Similarly, during the production of biphasic lipid vesicles, one or more penetration enhancers can be added only to the oil-in-water emulsion, only to the lipid bilayer, or to both the oil-in-water emulsion and the lipid bilayer.

[0056] In one embodiment, the biphasic lipid vesicle composition is for topical delivery of one or more compounds. In one embodiment, the topical delivery is for intradermal, transdermal, mucosal, or transmucosal delivery.

[0057] In one embodiment, the biphasic lipid vesicle composition comprises a suspension of biphasic lipid vesicles.

[0058] In one embodiment, one or more penetration enhancers are entrapped in an oil-in-water emulsion of biphasic lipid vesicles. In one embodiment, the oil-in-water emulsion of biphasic lipid vesicles comprises from about 0.01 wt% to about 20 wt% of one or more penetration enhancers. In one embodiment, the oil-in-water emulsion of biphasic lipid vesicles comprises from about 0.1 wt% to about 10 wt% of one or more penetration enhancers. In one embodiment, the oil-in-water emulsion of biphasic lipid vesicles comprises from about 0.5 wt% to about 9 wt%, about 0.5 wt% to about 8 wt%, about 0.5 wt% to about 7 wt%, about 1 wt% to about 6 wt%, about 1 wt% to about 5 wt%, about 1 wt% to about 4 wt%, about 1 wt% to about 3 wt%, or about 1 wt% to about 2 wt% of one or more penetration enhancers.

[0059] In one embodiment, one or more penetration enhancers are entrapped in the lipid bilayer of a lipid vesicle. In one embodiment, the lipid bilayer of the lipid vesicle composition comprises 0.1 wt% to 20 wt% of one or more penetration enhancers. In one embodiment, the lipid bilayer comprises 0.1 wt% to 10 wt% of one or more skin penetration enhancers. In one embodiment, the lipid bilayer of a biphasic lipid vesicle comprises about 7 wt% of one or more skin penetration enhancers. In one embodiment, the lipid bilayer of a lipid vesicle comprises about 10 wt%, about 9 wt%, about 8 wt%, about 7 wt%, about 6 wt%, about 5 wt%, about 4 wt%, about 3 wt%, about 2 wt%, about 1 wt%, about 0.5 wt%, or about 0.1 wt% of one or more skin penetration enhancers.

[0060] In one embodiment, one or more penetration enhancers are entrapped within both the lipid bilayer and the oil-in-water emulsion of the biphasic lipid vesicle.

[0061] In one embodiment, the penetration enhancer is one or more nonionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less and selected from one or more of polyethylene glycol ethers of fatty alcohols, sorbitan esters, polysorbates, sorbitan esters, and polyethylene glycol fatty acid esters, and combinations thereof.

[0062] In one embodiment, the polyethylene glycol ether of a fatty alcohol is selected from Ceteth-2®, Steareth-2®, Oleth 2®, Oleth-3®, and Oleth-5®, and combinations thereof. In one embodiment, the polyethylene glycol ether of a fatty alcohol is selected from Oleth-2®, Oleth-3®, and Oleth-5®. In one embodiment, the polyethylene glycol ether of a fatty alcohol is Oleth 2®.

[0063] In one embodiment, the sorbitan ester is selected from sorbitan monolaurate, sorbitan monopalmitate, sorbitan monostearate, sorbitan monooleate, sorbitan trioleate, sorbitan sesquioleate, and sorbitan isostearate, and combinations thereof. In one embodiment, the sorbitan ester is selected from sorbitan monolaurate, sorbitan monopalmitate, and sorbitan monostearate, and combinations thereof. In one embodiment, the sorbitan ester is sorbitan monopalmitate.

[0064] In one embodiment, the polyethylene glycol fatty acid ester is selected from one or more of PEG-8 dilaurate, PEG-4 dilaurate, PEG-4 laurate, PEG-8 dioleate, PEG-8 distearate, PEG-8 distearate, PEG-7 glyceryl cocoate, and PEG-20 almond glyceride, and combinations thereof. In one embodiment, the polyethylene glycol fatty acid ester is selected from PEG-4 dilaurate and PEG-4 laurate, and combinations thereof. In one embodiment, the polyethylene glycol fatty acid ester is PEG-4 dilaurate.

[0065] In one embodiment, the one or more nonionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less are further selected from propylene glycol isostearate, glycol stearate, glyceryl stearate, glyceryl stearate SE, glyceryl laurate, glyceryl caprylate, PEG-30 dipolyhydroxy-stearate, glycol distearate, and combinations thereof.

[0066] In one embodiment, the one or more nonionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less are selected from the surfactants in Table 1, and combinations thereof.

[0067] [Table 1]

[0068] In one embodiment, the one or more penetration enhancers are one or more nonionic surfactants having an HLB of about 10 or less, in combination with one or more penetration enhancers selected from one or more terpenes, alkaloids, salicylic acid derivatives, and di- or polycationic surfactants, and combinations thereof.

[0069] In one embodiment, the one or more nonionic surfactants having an HLB of about 10 or less are as described above.

[0070] In one embodiment, the one or more terpenes are selected from one or more of eugenol, d-limonene, menthol, menthone, farnesol, neridol, camphor, nerol, and thymol, and combinations thereof. In one embodiment, the one or more terpenes are selected from one or more of menthol, camphor, nerol, and thymol, and combinations thereof.

[0071] In one embodiment, the one or more salicylic acid derivatives are selected from ethyl salicylate, salicylic acid, acetylsalicylic acid, and trolamine salicylate. In one embodiment, the salicylic acid derivative is methyl salicylate.

[0072] In one embodiment, the one or more alkaloids are selected from piperidine derivatives (e.g., piperine and lobeline), purine derivatives (e.g., caffeine, theobromine, and theophylline), pyridine derivatives (e.g., nicotine), colchicine, pyrrolidine derivatives (e.g., N-methylpyrrolidone and hygrine), benzylamines (e.g., capsaicin), isoquinoline derivatives (e.g., berberine and sanguinarine), or imidazole derivatives (e.g., histamine and pilocarpine). In one embodiment, the one or more alkaloids are piperidine derivatives. In one embodiment, the one or more alkaloids are piperine or lobeline, or a combination thereof. In one embodiment, the one or more alkaloids are piperine.

[0073] In one embodiment, the polycationic surfactant is one or more gemini surfactants.

[0074] Gemini surfactants are surfactant molecules containing more than one hydrophobic tail. Each hydrophobic tail has a hydrophilic head (Menger and Keiper, 2000; Kirby et al., 2003). The hydrophobic tails or hydrophilic heads are linked together by a spacer. The hydrophobic tails can be the same or different. Similarly, the hydrophilic heads can be the same or different. Furthermore, the hydrophilic heads can be anionic (e.g., phosphate, sulfate, or carboxylate type), cationic (e.g., quaternary ammonium type), or neutral (e.g., polyether, peptide, or sugar type) (Menger and Keiper, 2000). In aqueous solution, gemini surfactants spontaneously assemble into micelles, whose shape and size are particularly sensitive to the length and hydrophobic or hydrophilic nature of the spacer. The spacer can be variable, i.e., short (e.g., 2 methylene groups) or long (e.g., more than 12 methylene groups), rigid (e.g., stilbene) or flexible (e.g., methylene chain), and polar (e.g., polyether, ethoxyl, or polyethoxyl) or non-polar (e.g., aliphatic, aromatic) (Menger and Keiper, 2000). Because the hydrophobic tail, hydrophilic head, and spacer can be varied with respect to the above aspects, a myriad of different molecules can be designed.

[0075] In one embodiment, the type of hydrophobic tail is linear or branched, saturated or unsaturated, C3-C 30 In one embodiment, the hydrophilic head may be anionic, cationic, or neutral. In an embodiment, the hydrophilic head is cationic.

[0076] In one embodiment, the gemini surfactant is anionic, cationic, or neutral. In one embodiment, the polycationic surfactant is one or more gemini dicationic surfactants.

[0077] In one embodiment, the gemini surfactant comprises a linear hydrocarbon tail and a quaternary ammonium head group. The general structure of one type of gemini cationic surfactant comprises a head group composed of two positively charged nitrogen atoms, separated by a spacer where (n) is 3, 4, 6, 8, 10, 12, or 16 carbon atoms and each containing two methyl groups, and a tail (m=10 or 14) consisting of two saturated 12- or 16-carbon atom chains, respectively.

[0078] In one embodiment, one or more gemini dicationic surfactants are of the quaternary ammonium type. In one embodiment, one or more gemini dicationic surfactants are selected from the group consisting of 12-7NH-12, 12-7NCH3-12, 16-3-16, 12-4(OH)2-12, and 12-EO1-12. In one embodiment, one or more gemini cationic surfactants are selected from the group consisting of 12-7NH-12, 12-7NCH3-12, and 16-3-16.

[0079] In one embodiment, the one or more polycationic surfactants are polycationic amino acids, hi one embodiment, the polycationic amino acids are selected from polylysine, polyarginine, and combinations thereof.

[0080] In one embodiment, the one or more penetration enhancers are one or more nonionic surfactants having an HLB of about 10 or less, in combination with one or more penetration enhancers selected from one or more terpenes, alkaloids, and salicylic acid derivatives.

[0081] In one embodiment, the biphasic lipid vesicle composition comprises 1 to 6 penetration enhancers. In one embodiment, the biphasic lipid vesicle composition comprises 1 to 4 penetration enhancers. In one embodiment, the biphasic lipid vesicle composition comprises 1 to 3 penetration enhancers.

[0082] In one embodiment, the penetration enhancer is one or more nonionic surfactants having an HLB of about 9 or less, about 8 or less, about 7 or less, or about 6 or less, and optionally having an HLB of 1 or more, 2 or more, 3 or more, or 4 or more, or any combination thereof, e.g., about 7 or less and about 3 or more. In one embodiment, the penetration enhancer is one or more nonionic surfactants having an HLB of about 1 to about 10, about 1 to about 9, about 2 to about 8, about 3 to about 7, or about 4 to about 7. In one embodiment, the penetration enhancer is one or more nonionic surfactants having a hydrophile-lipophile balance (HLB) of about 3 to about 7, or about 4 to about 7. In one embodiment, the penetration enhancer is one or more nonionic surfactants having an HLB of about 4 to about 7.

[0083] In one embodiment, the penetration enhancer is Oleth-2® (diethylene glycol monooleyl ether). In one embodiment, the penetration enhancer is Oleth-2® combined with one or more terpenes. In one embodiment, the penetration enhancer is Oleth-2® combined with one or more of menthol, camphor, nerol, or thymol, or a combination thereof. In one embodiment, the penetration enhancer is Oleth-2® combined with menthol or camphor, or a combination thereof. In one embodiment, the penetration enhancer is Oleth-2® combined with menthol and camphor. In one embodiment, the penetration enhancer is Oleth-2® combined with nerol. In one embodiment, the penetration enhancer is Oleth-2® combined with thymol. In one embodiment, the penetration enhancer is Oleth-2® combined with nerol. In one embodiment, the penetration enhancer is Oleth-2® combined with methyl salicylate. In one embodiment, the penetration enhancer is Oleth-2® combined with one or more alkaloids. In one embodiment, the penetration enhancer is Oleth-2® combined with piperidine.

[0084] In one embodiment, one or more non-ionic surfactants having an HLB of about 10 or less are entrapped in the lipid bilayer, and one or more terpenes or one or more alkaloids are entrapped in the lipid bilayer, the oil-in-water emulsion, or both.

[0085] In one embodiment, the one or more penetration enhancers are PEG-4 dilaurate. In one embodiment, the one or more penetration enhancers are PEG-4 dilaurate combined with one or more alkaloids. In one embodiment, the one or more penetration enhancers are PEG-4 dilaurate combined with piperidine. In one embodiment, the one or more penetration enhancers are PEG-4 dilaurate combined with methyl salicylate.

[0086] In one embodiment, PEG-4 dilaurate is entrapped in the lipid bilayer and one or more alkaloids or methyl salicylate are entrapped in the lipid bilayer, the oil-in-water emulsion, or both.

[0087] In one embodiment, the one or more penetration enhancers are oleth-2, PEG-4 dilaurate, or sorbitan monopalmitate, or a combination thereof. In one embodiment, the one or more penetration enhancers are oleth-2 and sorbitan monopalmitate combined. In one embodiment, the one or more penetration enhancers are PEG-4 dilaurate and sorbitan monopalmitate combined.

[0088] In one embodiment, Oleth-2®, PEG-4 dilaurate, or sorbitan monopalmitate, or a combination thereof, is entrapped in a lipid bilayer, an oil-in-water emulsion, or both.

[0089] In one embodiment, the one or more penetration enhancers increase the amount of a compound absorbed into a volume of skin by at least 10%, 20%, 30%, 40%, or 50% relative to the same or similar composition but lacking the one or more penetration enhancers. In one embodiment, the one or more penetration enhancers increase the amount of a compound absorbed into a volume of skin by at least about 10%, about 15%, about 20%, about 25%, about 30%, about 40%, about 45%, or 50% relative to the same or similar composition but lacking the one or more penetration enhancers.

[0090] In one embodiment, the biphasic lipid vesicle comprises about 0.1 wt% to about 5 wt% alkaloid. In one embodiment, the biphasic lipid vesicle comprises about 0.1 wt% to about 4 wt% alkaloid. In one embodiment, the biphasic lipid vesicle comprises about 0.1 wt% to about 3 wt% alkaloid. In one embodiment, the biphasic lipid vesicle comprises about 1 wt% to about 3 wt% alkaloid. In one embodiment, the lipid bilayer of the lipid vesicle comprises 1 wt% to 5 wt% alkaloid. In some embodiments, the alkaloid is entrapped in the lipid bilayer of the biphasic lipid vesicle.

[0091] Generally, biphasic lipid vesicles are multilamellar lipid vesicles that further comprise one or more internal lipid bilayers. Multilamellar biphasic lipid vesicles have multiple concentric lipid bilayer shells that entrap an oil-in-water emulsion.

[0092] In one embodiment, the oil-in-water emulsion comprises droplets having an average diameter of less than 1 μm. In one embodiment, the average diameter of the oil-in-water emulsion droplets can be less than 0.5 μm, 0.25 μm, 0.1 μm, or 0.01 μm. In one embodiment, the average diameter of the oil-in-water emulsion droplets can be less than about 0.5 μm, less than about 0.25 μm, less than about 0.1 μm, or less than about 0.01 μm. Because oil-in-water emulsions contain aqueous and non-aqueous domains, these submicron oil-in-water emulsion droplets can be tailored to incorporate hydrophilic and hydrophobic compounds and excipients.

[0093] In one embodiment, the oil-in-water emulsion contains 40 wt% to 99.9 wt% water. In one embodiment, the oil-in-water emulsion contains 10 wt% to 95 wt% water, including 10 wt% to 25 wt% water, 25 wt% to 50 wt% water, 50 wt% to 75 wt% water, and 95 wt% to 75 wt% water. In one embodiment, the oil-in-water emulsion contains about 10 wt% to about 99.9 wt% water, about 15 wt% to about 99.9 wt% water, about 25 wt% to about 99.9 wt% water, about 25 wt% to about 50 wt% water, about 40 wt% to about 99 wt% water, about 50 wt% to about 95 wt% water, about 50 wt% to about 75 wt% water, or about 75 wt% to about 95 wt% water.

[0094] In one embodiment, the oil-in-water emulsion comprises 0.1 wt% to 60 wt% oil, hi one embodiment, the oil-in-water emulsion comprises about 0.1 wt% to about 60 wt% oil, about 0.5 wt% to about 50 wt% oil, about 1 wt% to about 40 wt% oil, or about 1 wt% to about 20 wt% oil.

[0095] In one embodiment, the oil-in-water emulsion may comprise up to about 95 wt% of the biphasic lipid vesicle. In other words, in one embodiment, the biphasic lipid vesicle comprises from about 1 wt% to about 95 wt% of the oil-in-water emulsion. In one embodiment, the lipid vesicle composition may comprise from 1 wt% to 10 wt%, 20 wt% to 30 wt%, 30 wt% to 40 wt%, or 40 wt% to 95 wt% of the oil-in-water emulsion. In one embodiment, the lipid vesicles may comprise about 1 wt% to about 10 wt%, about 20 wt% to about 30 wt%, about 30 wt% to about 40 wt%, about 40 wt% to about 95 wt%, about 50 wt% to about 95 wt%, about 60 wt% to about 95 wt%, or about 70 wt% to about 95 wt% oil-in-water emulsion.

[0096] In one embodiment, the oil in the oil-in-water emulsion is selected from the group consisting of vegetable oils, mono-, di-, and triglycerides, silicone fluids, mineral oils, and combinations thereof. It will be understood that oil-in-water emulsions can be adjusted to have varying amounts of water and oil to optimize the solubility of any given compound, compound, penetration enhancer, surfactant, and / or emulsifier, etc.

[0097] The biphasic lipid vesicle oil-in-water emulsion is stabilized by one or more surfactants. In one embodiment, the biphasic lipid vesicle oil-in-water emulsion comprises about 0.01 wt% to 40 wt% of one or more surfactants. Without being bound by theory, it is contemplated that surfactants may be added to the oil-in-water emulsion to alter the stability of the oil-in-water emulsion. In one embodiment, the water-in-oil emulsion comprises 0.01 wt% to 10 wt%, 10 wt% to 20 wt%, or 20 wt% to 40 wt% of one or more surfactants. In one embodiment, the water-in-oil emulsion comprises from about 0.01 wt% to about 40 wt%, from about 0.01 wt% to about 10 wt%, from about 10 wt% to about 20 wt%, from about 20 wt% to about 30 wt%, from about 20 wt% to about 40 wt%, or from about 30 wt% to about 40 wt% of one or more surfactants.

[0098] In one embodiment, the oil-in-water emulsion of biphasic lipid vesicles is stabilized by one or more surfactants selected from the group consisting of polyethylene glycol ethers, polyethylene glycol fatty acid esters, polysorbates, and sorbitan esters of fatty alcohols. In one embodiment, the one or more surfactants have an average hydrophile-lipophile balance (HLB) number of greater than 10. In one embodiment, one or more surfactants in the oil-in-water emulsion have an HLB of greater than 10 or greater, about 11 or greater, about 12 or greater, about 13 or greater, about 14 or greater, about 15 or greater, about 16 or greater, about 17 or greater, about 18 or greater, about 19 or greater, or about 20 or greater, or a combination thereof. In one embodiment, one or more surfactants in the oil-in-water emulsion have an HLB of greater than 10 to about 20, about 10 to about 18, about 10 to about 16, or about 10 to about 15. In one embodiment, one or more surfactants in the oil-in-water emulsion have an HLB of about 10 to about 16. In one embodiment, one or more surfactants in the oil-in-water emulsion have an HLB of 10-20 or 10-16.

[0099] In one embodiment, the one or more nonionic surfactants having a hydrophilic-lipophilic balance (HLB) of 10 or greater are selected from the surfactants in Table 2, and combinations thereof.

[0100] [Table 2-1]

[0101] [Table 2-2]

[0102] In one embodiment, the oil-in-water emulsion of biphasic lipid vesicles is stabilized by one or more surfactants, the surfactants being selected from Ceteth-10® and Tween 80® (Polysorbate 80 (glycol) / Polyoxyethylene 20 sorbitan monooleate).

[0103] The one or more nonionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less of the penetration enhancer are not used to stabilize and emulsify the oil-in-water emulsion, but rather, the one or more nonionic surfactants having a hydrophilic-lipophilic balance (HLB) of about 10 or less of the penetration enhancer are used as additional surfactants to the stabilizing surfactant to provide a penetration enhancing effect.

[0104] It will also be appreciated that, in comparison to known biphasic vesicle compositions in which lipid vesicles contain surfactants as stabilizing structural components to form oil-in-water emulsions, the present disclosure employs one or more penetration enhancers that, when incorporated into the vesicle structure (either a lipid bilayer or an oil-in-water emulsion), provide enhanced delivery capabilities for a range of compounds.

[0105] In one embodiment, the oil-in-water emulsion comprises 10 wt% to 99 wt% water, 0.5 wt% to 60 wt% oil, and further comprises 0.01 wt% to 20 wt% of one or more surfactants to stabilize the oil-in-water emulsion.

[0106] In one embodiment, the vesicle-forming lipid is an amphiphilic lipid with a hydrophobic tail and a head group that can spontaneously form bilayer vesicles in water.In one embodiment, the vesicle-forming lipid comprises two hydrocarbon chains, such as acyl chains, where the head group is either polar or non-polar.In one embodiment, the vesicle-forming lipid is selected from one or more of phospholipids, glycolipids, lecithin, and ceramides, such as phosphatidylethanolamine, lysolecithin, lysophosphatidylethanolamine, phosphatidylserine, phosphatidylinositol, sphingomyelin, cardiolipin, phosphatidic acid, and cerebroside.These lipids can be commercially available or can be prepared by published methods.

[0107] In one embodiment, the vesicle-forming lipid is a phospholipid. In one embodiment, a phospholipid is one or more esters of glycerol with one or two (equivalent or different) fatty acid residues and phosphoric acid, where the phosphate residue is in turn linked to a hydrophilic group, such as choline (phosphatidylcholine—PC), serine (phosphatidylserine—PS), glycerol (phosphatidylglycerol—PG), ethanolamine (phosphatidylethanolamine—PE), or inositol (phosphatidylinositol). Esters of phospholipids with only one fatty acid residue are commonly referred to in the art as "lyso" forms of phospholipids or "lysophospholipids." The fatty acid residues present in phospholipids are generally long-chain fatty acids, typically containing 12 to 24 carbon atoms, or 14 to 22 carbon atoms, and the fatty chains contain one or more unsaturations or are fully saturated. Examples of suitable fatty acids for inclusion in phospholipids include lauric acid, myristic acid, palmitic acid, stearic acid, arachidic acid, behenic acid, oleic acid, linoleic acid, and linolenic acid. Saturated fatty acids such as myristic acid, palmitic acid, stearic acid, and arachidic acid may also be used.

[0108] In one embodiment, the phospholipid is a phosphatidic acid, i.e., a diester of glycerol-phosphate with a fatty acid; a sphingolipid such as sphingomyelin, i.e., a phosphatidylcholine analog in which the residue of the glycerol diester with a fatty acid is replaced with a ceramide chain; cardiolipin, i.e., an ester of 1,3-diphosphatidylglycerol with a fatty acid; a glycolipid such as ganglioside GM1 (or GM2) or cerebroside; a glycolipid; a sulfatide; and a glycosphingolipid.

[0109] In one embodiment, the phospholipids are naturally occurring, semi-synthetic, or synthetically prepared products that can be used alone or in mixtures. In one embodiment, naturally occurring phospholipids (phosphatidylcholine (PC) derivatives) are typically natural lecithins, such as soybean or egg yolk lecithin.

[0110] In one embodiment, the semi-synthetic phospholipid is a partially or fully hydrogenated derivative of naturally occurring lecithin. In one embodiment, the phospholipid comprises a fatty acid diester of phosphatidylcholine, a fatty acid diester of ethylphosphatidylcholine, a fatty acid diester of phosphatidylglycerol, a fatty acid diester of phosphatidic acid, a fatty acid diester of phosphatidylethanolamine, a phosphatidylserine, or a fatty acid diester of sphingomyelin. In one embodiment, the phospholipid may be, for example, dilauroyl-phosphatidylcholine (DLPC), dimyristoyl-phosphatidylcholine (DMPC), dipalmitoyl-phosphatidylcholine (DPPC), diarachidoyl-phosphatidylcholine (DAPC), distearoyl-phosphatidylcholine (DSPC), dioleoyl-phosphatidylcholine (DOPC), 1,2 distearoyl-sn-glycero-3-ethylphosphocholine (ethyl-DSPC), dipentadecanoyl-phosphatidylcholine (DPDPC), 1-myristoyl-2-palmitoyl-phosphatidylcholine (MPPC), 1-palmitoyl-2-methyl-3 ... 1-myristoyl-2-stearoyl-phosphatidylcholine (PMPC), 1-palmitoyl-2-stearoyl-phosphatidylcholine (PSPC), 1-stearoyl-2-palmitoyl-phosphatidylcholine (SPPC), 1-palmitoyl-2-oleylphosphatidylcholine (POPC), 1-oleyl-2-palmitoyl-phosphatidylcholine (OPPC), dilauroylphosphatidylglycerol (DLPG) and its alkali metal salts, diarachidoylphosphatidylglycerol (DAPG) and its alkali metal salts, dimyristoylphosphatidylglycerol (DMPG) and its alkali metal salts,Dipalmitoylphosphatidylglycerol (DPPG) and its alkali metal salts, distearoylphosphatidylglycerol (DSPG) and its alkali metal salts, dioleoyl-phosphatidylglycerol (DOPG) and its alkali metal salts, dimyristoylphosphatidic acid (DMPA) and its alkali metal salts, dipalmitoylphosphatidic acid (DPPA) and its alkali metal salts , distearoylphosphatidic acid (DSPA), diarachidoylphosphatidic acid (DAPA) and its alkali metal salts, dimyristoylphosphatidylethanolamine (DMPE), dipalmitoylphosphatidylethanolamine (DPPE), distearoylphosphatidylethanolamine (DSPE), dioleylphosphatidylethanolamine (d diarachidoylphosphatidylethanolamine (DOPE), diarachidoylphosphatidylethanolamine (DAPE), dilinoleylphosphatidylethanolamine (DLPE), dimyristoylphosphatidylserine (DMPS), diarachidoylphosphatidylserine (DAPS), dipalmitoylphosphatidylserine (DPPS) ), distearoylphosphatidylserine (DSPS), dioleoylphosphatidylserine (DOPS), dipalmitoylsphingomyelin (DPSP), and distearoylsphingomyelin (DSSP), dilauroyl-phosphatidylinositol (DLPI), diarachidoylphosphatidylinositol (DAPI),Dimyristoylphosphatidylinositol (DMPI), dipalmitoylphosphatidylinositol (DPPI), distearoylphosphatidylinositol (DSPI), and dioleoyl-phosphatidylinositol (DOPI).

[0111] In one embodiment, the phospholipid is dioleoylphosphatidylethanolamine (DOPE), phosphatidylethanolamine (cephalin) (PE), phosphatidic acid (PA), phosphatidylcholine (PC), 1,2-distearoyl-sn-glycero-3-phosphoethanolamine (DSPE), or phosphatidylserine (PS).

[0112] In one embodiment, the biphasic lipid vesicles of the biphasic lipid vesicle composition generally comprise 0.1 wt% to 30 wt% phospholipids. In some embodiments, the lipid vesicles comprise 1 wt% to 10 wt%, 10 wt% to 20 wt%, or 20 wt% to 30 wt% phospholipids. In some embodiments, the biphasic lipid vesicles comprise 9 wt% to 13 wt% phospholipids. In some embodiments, the biphasic lipid vesicles comprise 10 wt% phospholipids. In some embodiments, the biphasic lipid vesicles comprise 12 wt% phospholipids. In some embodiments, the biphasic lipid vesicles comprise about 1 wt% to about 10 wt%, about 10 wt% to about 20 wt%, about 20 wt% to about 30 wt%, about 9 wt% to about 13 wt%, about 13 wt%, about 12 wt%, about 11 wt%, or about 10 wt% phospholipids.

[0113] In one embodiment, one or more compounds are entrapped in an oil-in-water emulsion of biphasic lipid vesicles. In one embodiment, the oil-in-water emulsion comprises 1 ng / g to 1,000 ng / g of compound / oil-in-water emulsion. In one embodiment, the oil-in-water emulsion comprises 1 ng / g to 10 ng / g, 10 ng / g to 100 ng / g, or 100 ng / g to 1,000 ng / g of compound / oil-in-water emulsion.

[0114] In one embodiment, the oil-in-water emulsion comprises 0.0000001 wt% to 0.0001 wt%, 0.0001 wt% to 0.1 wt%, 0.1 wt% to 1 wt%, or 1 wt% to 10 wt% of the compound. In one embodiment, the oil-in-water emulsion comprises about 0.0000001 wt% to about 0.0001 wt%, about 0.0001 wt% to about 01 wt%, about 0.1 wt% to about 1 wt%, or about 1 wt% to about 10 wt% of the compound. In one embodiment, the oil-in-water emulsion comprises 0.0000001 wt% to 10 wt% of the compound.

[0115] In one embodiment, one or more compounds are entrapped in the lipid bilayer of a biphasic lipid vesicle. In one embodiment, the lipid bilayer of the lipid vesicle composition can be formulated to contain one or more compounds. In one embodiment, the lipid bilayer of the lipid vesicle composition comprises 0.0000001 wt% to 10 wt% of the compound. In one embodiment, the lipid bilayer comprises about 0.0000001 wt% to about 0.0001 wt%, about 0.0001 wt% to about 01 wt%, about 0.1 wt% to about 1 wt%, or about 1 wt% to about 10 wt% of the compound. In one embodiment, the lipid bilayer of the lipid vesicle comprises 1 wt% to 3 wt% of the compound.

[0116] In one embodiment, one or more compounds are entrapped in both the lipid bilayer and the biphasic oil-in-water emulsion of the lipid vesicle. In one embodiment, the one or more compounds entrapped in the lipid bilayer are the same as the one or more compounds entrapped in the biphasic oil-in-water emulsion of the lipid vesicle. In one embodiment, the one or more compounds entrapped in the lipid bilayer are different from the one or more compounds entrapped in the biphasic oil-in-water emulsion of the lipid vesicle.

[0117] For example, it will be appreciated that one or more compounds entrapped in an oil-in-water emulsion will have a faster release rate than the same compound or compounds entrapped in a lipid bilayer.

[0118] In one embodiment, the one or more compounds are selected from, but not limited to, small molecules, proteins, peptides, carbohydrates, nucleic acids, vaccine antigens, and / or plant extracts.

[0119] In one embodiment, one or more of the compounds is a therapeutic compound. Thus, the composition of the present disclosure is a pharmaceutical composition.

[0120] In one embodiment, the small molecule is an analgesic or sedative, including prostaglandins, anesthetics such as ibuprofen and diclofenac, opioids such as buprenorphine, fentanyl, sufentanil, alfentanil, and remifentanil, cardioactive drugs, androgenic steroids, estrogens, progestogens, antihistamines, antivirals, vitamins, anti-inflammatory agents, antifungals, corticosteroids, vitamins, anti-infectives, dermatological agents, agents for the treatment of nausea and vomiting, amino acids, short peptides (up to 1000 Da), carbohydrates, or naturally occurring compounds, and combinations thereof.

[0121] In one embodiment, the cardioactive agent is an organic nitrate such as nitroglycerin, isosorbide dinitrate, and / or isosorbide mononitrate, a thiazide such as quinidine sulfate, procainamide, bendroflumethiazide, chlorothiazide, and / or hydrochlorothiazide, an adrenergic blocker such as nifedipine, nicardipine, timolol, and / or propranolol, verapamil, diltiazem, captopril, clonidine, or prazosin.

[0122] In one embodiment, the androgenic steroid is testosterone, methyltestosterone, or fluoxymesterone.

[0123] In one embodiment, the estrogen is estradiol valerate, equilin, mestranol, estrone, estriol, 17.beta.-ethinylestradiol, or diethylstilbestrol.

[0124] In one embodiment, the antihistamine is diphenhydramine, dimenhydrinate, perphenazine, triprolidine, pyrilamine, chlorcyclidine, promethazine, carbinoxamine, tripelennamine, brompheniramine, chlorprenaline, terfenadine, and / or chlorpheniramine.

[0125] In one embodiment, the anti-infective agent is an antibiotic, including penicillin, tetracycline, chloramphenicol, sulfacetamide, sulfamethazine, sulfadiazine, sulfamerazine, sulfamethizole, and / or sulfisoxazole, an antiviral agent, an antibacterial agent such as erythromycin and / or clarithromycin, and / or other anti-infective agents including nitrofurazone, and the like.

[0126] In one embodiment, the dermatological agent is vitamin A and / or vitamin E.

[0127] In one embodiment, the agent for the treatment of nausea and / or vomiting is chlorpromazine, granisetron, perphenazine, prochlorperazine, promethazine, thiethylperazine, triflupromazine, and / or trimeprazine.

[0128] In one embodiment, the progestogen is progesterone, 19-norprogesterone, norethindrone, norethindrone acetate, chlormadinone, ethisterone, etonogestrel, medroxyprogesterone acetate, hydroxyprogesterone caproate, norethynodrel, norelgestromin, 17.alpha.-hydroxyprogesterone, dydrogesterone, dimethisterone, ethinylestrenol, norgestrel, demegestone, promegestone, and / or megestrol acetate.

[0129] In one embodiment, the small molecule is an anti-inflammatory agent, and the anti-inflammatory agent is acemetacin, acetamidocaproic acid, bendazac, benoxaprofen, bermoprofen, bucloxic acid, butibufen, cinmetacin, clidanac, clopirac, felbinac, fenbufen, fenclozic acid, fenoprofen, fentiazac, flunoxaprofen, flurbiprofen, ibuprofen, indomethacin, isofezolac, isoxepac, ketoprofen, lonazolac, loxoprofen, metiazinic acid, mofezolac, naproxen, oxaprozin, pyrazolac, pirprofen, pranoprofen, protizinic acid, sulindac, suprofen, suxibuzone, tiaprofenic acid, tolmetin, and / or tropesin, bermoprofen, bucloxic acid, isoxepac, ketoprofen, loxoprofen, xaltopren Lofen, ampiroxicam, bucolome, celecoxib, difenpramide, mofebutazone, nimesulide, paranline, parecoxib, pasalmid, picketprofen, talniflumate, tenitape, terofenamate, valdecoxib, 21-acetoxypregnenolone, alclometasone, betamethasone, alphabisabolol, budesonide, clobetasone, cyclosporine, deflazacort, dexamethasone, diflorazo The antihistamines are selected from the group consisting of flucloxone, desonide, desoximetasone, diflorasone, diflucortolone, difluprednate, ditazol, everolimus, furazacort, fludrocortisone, flumethasone, fluocinolone, fluocinonide, fluocortin butyl, fluocortolone, fluprednidene acetate, glucametacin, halcinonide, halobetasol propionate, halometasone, halopredone acetate, hydrocortisone, ibuproxam, loteprednol etabonate, mazipredone, memethasone, methylprednisolone, mometasone furoate, oxyphenbutazone, perisoxal, pimecrolimus, prednisolone, rimexolone, sirolimus, triamcinolone and / or tacrolimus.

[0130] In one embodiment, the small molecule is ibuprofen and / or diclofenac.

[0131] [ka]

[0132] In one embodiment, the small molecule is a wound healing compound. In one embodiment, the wound healing compound is bosentan. In one embodiment, the small molecule is an antibiotic. In one embodiment, the antibiotic is vancomycin.

[0133] In one embodiment, the protein is a cytokine or a peptide. In one embodiment, the peptide of the pharmaceutical composition has 2 to 900 amino acids.

[0134] In one embodiment, the amino acid, peptide, or protein has a molecular weight of 50 to 300,000 daltons. In some embodiments, the therapeutic compound is a carbohydrate or nucleic acid molecule having a molecular weight between 50 and 5 M daltons.

[0135] In one embodiment, the peptide is a polypeptide, such as insulin, a cytokine, a vaccine antigen, a growth hormone releasing factor, or an antibody. In one embodiment, the polypeptide has a molecular weight of 1000 to 300,000 daltons.

[0136] As described above, the pharmaceutical compositions described herein, sometimes referred to as lipid vesicles or lipid compositions or formulations, can be used to deliver therapeutic compounds, including, but not limited to, small molecules, peptides, proteins, carbohydrates, nucleic acids, vaccine antigens, and / or plant extracts. Lipid vesicle formulations contain one or more lipid (e.g., phospholipid) bilayers with an oil-in-water emulsion therein. Oil-in-water emulsions contain droplets typically less than 1 μm in size within the aqueous interior of the lipid vesicle, where the lipid vesicle is typically multilamellar and has multiple lipid bilayers. Biphasic lipid vesicle formulations may also contain one or more other lipid vesicle components, such as, but not limited to, fatty substances such as cholesterol, penetration enhancers, surfactants, and solvents, allowing the lipid vesicle formulation to be tailored to the physicochemical properties of the target skin. Therapeutic compounds, penetration enhancers, surfactants, and / or other lipid vesicle components may be incorporated into the lipid bilayer and / or within the oil-in-water emulsion.

[0137] In one embodiment, lipid vesicles can be formulated with compounds, penetration enhancers, surfactants, and / or other lipid vesicle components that are selectively incorporated into the lipid bilayer and / or oil-in-water emulsion at various stages of production. This allows for a significant degree of control to be maintained over the location within the lipid vesicle where the compounds, penetration enhancers, and / or other lipid vesicle components are incorporated. Compounds can be added, for example, only to the oil-in-water emulsion component, only to the lipid bilayer component, or to both the oil-in-water emulsion and the lipid bilayer during lipid vesicle production.

[0138] The structure and composition of these lipid vesicle formulations can be tailored to allow one or more compounds to penetrate deep into the skin. The lipid bilayer and oil-in-water emulsion of the lipid vesicle formulation encapsulate one or more compounds and other pharmaceutical excipients to provide enhanced compound stability and sustained release. In one embodiment, the biphasic lipid vesicle formulation optionally further comprises one or more other lipid vesicle components, such as, but not limited to, a fatty substance such as cholesterol, a penetration enhancer, a surfactant, and a solvent, and combinations thereof.

[0139] In one embodiment, the lipid bilayer of the lipid vesicle further comprises a fatty substance, for example, to further increase the strength of the lipid bilayer. In one embodiment, the fatty substance is cholesterol, a cholesterol derivative, coprostanol, cholestanol, cholestane, or a long-chain fatty acid, or a combination thereof. In one embodiment, the lipid bilayer of the lipid vesicle composition further comprises 0.1 wt% to 10 wt% cholesterol and / or a cholesterol derivative. In some embodiments, the lipid bilayer comprises 1 wt% to 5 wt% cholesterol and / or a cholesterol derivative.

[0140] The lipid bilayer of the lipid vesicle composition may contain 0.1 wt% to 5 wt% cholesterol or a derivative thereof. In some embodiments, the lipid bilayer of the lipid vesicle composition contains 0.1 wt% to 3 wt% cholesterol or a derivative thereof. In some embodiments, the lipid bilayer contains 2 wt% cholesterol or a derivative thereof.

[0141] In one embodiment, the lipid bilayer of the lipid vesicle composition optionally further comprises one or more penetration enhancers in addition to one or more penetration enhancers. The skin penetration enhancers without the one or more penetration enhancers include any known skin penetration enhancers, such as those described in Adrian C. Williams and Brian W. Barry Advanced Drug Delivery Reviews 64 (2012) 128-137, or Majella E. Lane Int. J. Pharm. 447 (2013) 12-2.

[0142] It will be appreciated that in addition to the penetration enhancers described herein, one or more additional penetration enhancers may be added to the formulation.

[0143] In some embodiments, the skin penetration enhancer is one or more alcohols, such as ethanol or isopropyl alcohol; amides, such as azone; esters, such as ethyl acetate, padimate O, ethyl oleate, glyceryl monooleate, glyceryl monocaprate, glyceryl tricaprylate, isopropyl myristate, isopropyl palmitate, propylene glycol monolaurate, or propylene glycol monocaprylate; Transcutol® (e.g., Transcutol ether alcohols, such as lauric acid, linoleic acid, linolenic acid, myristic acid, oleic acid, palmitic acid, stearic acid, or isostearic acid; glycols, such as dipropylene glycol, propylene glycol, 1,2-butylene glycol, or 1,3-butylene glycol; pyrrolidones, such as N-methyl-2-pyrrolidone or 2-pyrrolidone; sulfoxides, such as decyl methyl sulfoxide or dimethyl sulfoxide.

[0144] In one embodiment, one or more penetration enhancers are fatty acylated amino acids, such as monolauroyllysine and / or dipalmitoyllysine.

[0145] In one embodiment, the lipid bilayer optionally further comprises a hydrophilic solvent, e.g., to solubilize the vesicle-forming lipids. In one embodiment, hydrophilic solvents include, but are not limited to, propylene glycol, glycerol, polyethylene glycols ranging in molecular weight between 300 and 8000, ethanol, and combinations thereof.

[0146] In one embodiment, the oil-in-water emulsion comprises an aqueous medium having water and optionally one or more lipophilic additives, such as preservatives (such as parabens, phenoxyethanols, benzalkonium salts), antioxidants (ascorbic acid, ascorbyl palmitate, BHA, BHT, alpha-tocopherol), waxes and viscosity enhancers (long chain fatty alcohols and their esters, fatty acids, beeswax, olive oil, glyceryl stearate), cetyl alcohol, stearyl alcohol, myristyl myristate, and cetyl palmitate, stearyl heptanoate, and / or stearyl palmitate.

[0147] In one embodiment, the oil-in-water emulsion comprises 0.1 wt% to 25 wt% of one or more lipophilic additives.

[0148] Applicants have also shown that penetration enhancers, such as polycationic surfactants, enhance skin penetration of compounds in comparison to identical or similar compositions but having monocationic surfactants instead of polycationic surfactants.

[0149] Therefore, the present application a) a lipid vesicle comprising a lipid bilayer comprising a vesicle-forming lipid; b) an oil-in-water emulsion entrapped in biphasic lipid vesicles and comprising one or more polycationic surfactants; and c) Further includes biphasic lipid vesicle compositions comprising one or more compounds entrapped within the lipid bilayer and / or oil-in-water emulsion.

[0150] In one embodiment, the biphasic lipid vesicle composition is a cosmetic composition. In one embodiment, the biphasic lipid vesicle composition is a pharmaceutical composition.

[0151] In one embodiment, the biphasic lipid vesicle composition is for topical delivery of one or more compounds. In one embodiment, the topical delivery is for intradermal, transdermal, and / or transmucosal delivery.

[0152] In one embodiment, the biphasic lipid vesicle composition comprises a suspension of biphasic lipid vesicles.

[0153] In one embodiment, the polycationic surfactant is one or more gemini surfactants.

[0154] Gemini surfactants are surfactant molecules containing more than one hydrophobic tail. Each hydrophobic tail has a hydrophilic head (Menger and Keiper, 2000; Kirby et al., 2003). The hydrophobic tails or hydrophilic heads are linked together by a spacer. The hydrophobic tails can be the same or different. Similarly, the hydrophilic heads can be the same or different. Furthermore, the hydrophilic heads can be anionic (e.g., phosphate, sulfate, or carboxylate type), cationic (e.g., quaternary ammonium type), or neutral (e.g., polyether, peptide, or sugar type) (Menger and Keiper, 2000). In aqueous solution, gemini surfactants spontaneously assemble into micelles, the shape and size of which are particularly sensitive to the length and hydrophobic or hydrophilic nature of the spacer. The spacer can be variable, i.e., short (e.g., 2 methylene groups) or long (e.g., more than 12 methylene groups), rigid (e.g., stilbene) or flexible (e.g., methylene chain), and polar (e.g., polyether, ethoxyl, or polyethoxyl) or non-polar (e.g., aliphatic, aromatic) (Menger and Keiper, 2000). Because the hydrophobic tail, hydrophilic head, and spacer can be varied with respect to the above aspects, a myriad of different molecules can be designed.

[0155] In one embodiment, the type of hydrophobic tail is linear or branched, saturated or unsaturated, C3-C 30 It is an alkyl group. In one embodiment, the hydrophilic head group may be anionic, cationic, or neutral. In one embodiment, the hydrophilic head group is cationic.

[0156] In one embodiment, the polycationic surfactant is one or more gemini dicationic surfactants.

[0157] In one embodiment, the gemini surfactant comprises a linear hydrocarbon tail and a quaternary ammonium head group. The general structure of one type of gemini cationic surfactant comprises a head group composed of two positively charged nitrogen atoms, separated by a spacer where (n) is 3, 4, 6, 8, 10, 12, or 16 carbon atoms and each containing two methyl groups, and a tail (m=10 or 14) consisting of two saturated 12- or 16-carbon atom chains, respectively.

[0158] In one embodiment, one or more gemini dicationic surfactants are of the quaternary ammonium type. In one embodiment, one or more gemini dicationic surfactants are selected from the group consisting of 12-7NH-12, 12-7NCH3-12, 16-3-16, 12-4(OH)2-12, and 12-EO1-12. In one embodiment, one or more gemini cationic surfactants are selected from the group consisting of 12-7NH-12, 12-7NCH3-12, and 16-3-16.

[0159] In one embodiment, the one or more polycationic surfactants are polycationic amino acids, hi one embodiment, the polycationic amino acids are selected from polylysine, polyarginine, and combinations thereof.

[0160] In one embodiment, the biphasic lipid vesicle oil-in-water emulsion comprises from about 0.01% to about 5%, 0.05% to about 5%, 0.1% to about 5%, about 1% to about 5%, or about 2% to about 5% of one or more polycationic surfactants. In one embodiment, the biphasic lipid vesicle oil-in-water emulsion comprises from about 0.01% to about 5% of one or more polycationic surfactants.

[0161] In one embodiment, the biphasic lipid vesicle oil-in-water emulsion optionally includes one or more additional surfactants (other than the polycationic surfactant). In one embodiment, the one or more additional surfactants are one or more additional stabilizing surfactants, as described above. In one embodiment, the biphasic lipid vesicle oil-in-water emulsion includes from about 0.1% to about 10% of one or more surfactants. In one embodiment, the biphasic lipid vesicle oil-in-water emulsion includes from about 0.01% to about 10%, 0.05% to about 10%, 0.1% to about 10%, about 1% to about 10%, about 2% to about 10%, 0.01% to about 7%, 0.05% to about 7%, 0.1% to about 7%, about 1% to about 7%, or about 2% to about 7% of one or more surfactants.

[0162] When used with one or more additional surfactants, the biphasic lipid vesicle oil-in-water emulsion comprises from about 0.1% to about 10% of one or more polycationic surfactants. In one embodiment, the biphasic lipid vesicle oil-in-water emulsion comprises from about 0.01% to about 10%, 0.05% to about 10%, 0.1% to about 10%, about 1% to about 10%, about 2% to about 10%, 0.01% to about 7%, 0.05% to about 7%, 0.1% to about 7%, about 1% to about 7%, or about 2% to about 7% of one or more polycationic surfactants.

[0163] In one embodiment, the biphasic lipid vesicle composition further comprises one or more penetration enhancers, wherein the one or more penetration enhancers are one or more nonionic surfactants having an HLB of about 10 or less, alone or in combination with one or more penetration enhancers selected from terpenes, alkaloids, salicylic acid derivatives, and polycationic surfactants, and combinations thereof, as described above.

[0164] In one embodiment, the wt% water and oil in the oil-in-water emulsion are as described above.

[0165] In one embodiment, the vesicle-forming lipids are as described above.

[0166] In one embodiment, one or more compounds are entrapped within an oil-in-water emulsion, lipid bilayer, of a biphasic lipid vesicle.

[0167] In one embodiment, one or more compounds are entrapped within a lipid bilayer, an oil-in-water emulsion of biphasic lipid vesicles, or both, as described above.

[0168] In one embodiment, the amount of one or more compounds in the lipid bilayer and in the oil-in-water emulsion is as described above.

[0169] In one embodiment, the one or more compounds are selected from small molecules including, but not limited to, negatively charged small molecules, carbohydrates, RNA or DNA or hybrids thereof, plasmid DNA, oligonucleotides including synthetic oligonucleotides, viral DNA, nucleic acids such as DNA vaccines, proteins, peptides including peptide antigens such as vaccine antigens, immunoglobulins, immune modifiers, hormones, toxins, and / or enzymes, and plant extracts and / or vitamins.

[0170] In one embodiment, the one or more compounds are selected from, but not limited to, peptides, carbohydrates, nucleic acids, vaccine antigens, plasmid DNA, DNA vaccines, peptide vaccines, immunoglobulins, immunomodulators, oligonucleotides, hormones, toxins, and enzymes. In one embodiment, the one or more compounds are selected from nucleic acids, plasmid DNA, DNA vaccines, and / or oligonucleotides. In one embodiment, the one or more compounds are selected from nucleic acids, plasmid DNA, DNA vaccines, and / or oligonucleotides.

[0171] In one embodiment, the biphasic lipid vesicle composition optionally further comprises one or more other lipid vesicle components, including, but not limited to, a fatty substance such as cholesterol, a penetration enhancer, a surfactant, and / or a solvent, and combinations thereof, as described above.

[0172] In one embodiment, the biphasic lipid vesicle composition is for topical delivery of one or more compounds. In one embodiment, the topical delivery is for intradermal, transdermal, or transmucosal delivery.

[0173] As noted above, in one embodiment, the biphasic lipid vesicle composition of the present disclosure described herein may be a cosmetic composition.

[0174] In one embodiment, the biphasic lipid vesicle cosmetic composition of the present disclosure optionally contains ingredients commonly used in cosmetic products, such as moisturizers, antioxidants, oily ingredients, UV absorbers, emulsifiers, thickeners, alcohol, powder ingredients, colorants, aqueous ingredients, water, and / or various skin nutrients, as needed, within the range that does not impair the effects and system of the composition of the present invention. The cosmetic composition may contain conventional adjuvants and carriers, such as antioxidants, stabilizers, solubilizers, vitamins, pigments, and / or fragrances.

[0175] In one embodiment, the biphasic lipid vesicle compositions of the present disclosure described herein may be formulated as a cream, tonic, ointment, paste, lotion, gel, oil, liquid spray, foundation, or powder.

[0176] In one embodiment, ointments or creams can be formulated with an aqueous or oily base by adding appropriate thickening and / or gelling agents. Such bases may contain water and / or oils, such as liquid paraffin or vegetable oils such as peanut oil or castor oil. A typical base is water. Depending on the nature of the base, thickening agents that can be used include aluminum stearate, hydrogenated lanolin, and the like. Additionally, lotions can be formulated with an aqueous base and will generally contain one or more of the following: stabilizers, emulsifiers, dispersants, suspending agents, thickeners, colorants, fragrances, and the like. Ointments and creams can also contain additives such as starch, tragacanth, cellulose derivatives, Carbopol, polyethylene glycol, silicones, bentonite, Veegum (magnesium aluminum silicate), silicic acid, and talc, or mixtures thereof. Lotions may be formulated with an aqueous or oily base and will generally contain one or more stabilizers, emulsifiers, dispersants, suspending agents, thickeners, colorants, fragrances, etc. Foams may also be formed with known foaming agents or surfactants.

[0177] In one embodiment, a gel may be formed by mixing the delivery system (e.g., the biphasic vesicles described herein), and gelling agents used include collagen, pectin, gelatin, agarose, chitin, chitosan, and alginate. The delivery system may be incorporated into a liquid and formulated as a topical solution, aerosol, mist, spray, drops, and a drop solution for body cavities. For example, administration of the delivery system to the mucosa may be by aerosol, which may be generated by a topical aerosol spray pump or actuator, or by dropwise application.

[0178] Also provided is a container containing the compositions described herein. The container is optionally a spray container, and optionally an aerosol spray pump container.

[0179] In one embodiment, the two-phase lipid vesicle composition of the present disclosure described herein is contained in a coated substrate, such as a bandage, packing, film, or mesh, which is coated with the two-phase lipid vesicle composition and used directly on the skin or mucosa.

[0180] In one embodiment, the two-phase lipid vesicle compositions of the present disclosure described herein may be included in a transdermal delivery system, which may take one of a variety of forms, such as a patch or a mask sheet.

[0181] In one embodiment, the transdermal delivery system comprises a backing layer and a matrix layer comprising the two-phase lipid vesicle composition described herein, disposed on the backing layer, wherein the matrix layer is configured to contact the skin.

[0182] In one embodiment, the backing layer is a polymer or comprises a polymer selected from the group consisting of polyesters such as polyethylene terephthalate (PET), polycarbonates, polyolefins such as polyethylene, polypropylene, and polybutylene, polyethylene oxide, polyurethanes, polystyrene, polyamides, polyimides, polyvinyl acetate, polyvinyl chloride, polyvinylidene chloride, and copolymers such as acrylonitrile-butadiene-styrene terpolymers or ethylene-vinyl acetate copolymers. Preferred materials for the backing layer are polyesters, particularly polyethylene terephthalate. Backing layers of this type are available, for example, from 3M (USA) under the trade name Scotchpak 1109.

[0183] In one embodiment, the backing layer is an occlusive backing layer.

[0184] The backing layer may be made, for example, from polyester.

[0185] In another embodiment, the backing layer includes an overtape that protrudes laterally beyond the edge of the matrix layer, allowing the transdermal delivery system to adhere or better adhere to the skin. The overtape may include an adhesive layer that does not contain an active ingredient and an overtape film. The overtape film may be a polymer selected from the group formed by polyolefins, olefin copolymers, polyesters, copolyesters, polyamides, copolyamides, polyurethanes, etc. Examples of suitable materials that may be listed include polyesters and their salts, particularly polyethylene terephthalate, as well as polyolefins such as polycarbonate, polyethylene, polypropylene, polybutylene, polyethylene oxide, polyurethane, polystyrene, polyamide, polyimide, polyvinyl acetate, polyvinyl chloride, polyvinyl chloride, copolymers such as, for example, acrylonitrile-butadiene-styrene terpolymers or ethylene-vinyl acetate copolymers.

[0186] In one embodiment, the adhesive may be, for example, a polyisobutylene (PIB) adhesive.

[0187] In one embodiment, the backing layer has a thickness of at least about 5 μm, at least about 10 μm, at least about 15 μm, at least about 20 μm, at least about 25 μm, at least about 50 μm, at least about 75 μm, at least about 100 μm, at least about 125 μm, or up to about 250 μm, up to about 200 μm, up to about 150 μm, up to about 100 μm, or up to about 50 μm, or any combination of the foregoing. The backing layer can have a thickness of, for example, inclusive of, or between 5 μm and 200 μm, or any 0.1 μm increment between 5 μm and 200 μm.

[0188] When the transdermal delivery system is a patch, the thickness of the backing layer can be at least about 75 μm or at least about 100 μm, and can be less than, for example, 200 μm, or, for example, 150 μm.

[0189] When the transdermal delivery system is a mask, the thickness of the backing layer may be at least 10 μm or at least 20 μm, and may be, for example, less than 100 μm, or, for example, less than 75 μm.

[0190] The matrix layer has a surface intended to be placed on the skin, which may be referred to as the application surface, which may be configured to include a pressure-sensitive adhesive, such as a self-adhesive adhesive, over its entire surface, or may be configured to be sticky over only a portion of its surface.

[0191] In one embodiment, the transdermal delivery system further comprises a protective layer, known as a release liner, which is applied to the composition comprising the matrix layer and is removed prior to attachment of the transdermal delivery system. To facilitate removal of the protective layer, in some embodiments, the protective layer protrudes beyond the edge of the backing layer, e.g., the remaining patch.

[0192] In one embodiment, the transdermal delivery system is a patch.

[0193] In one embodiment, one or more compounds are therapeutic compounds.Therefore, the biphasic lipid vesicle composition of the present disclosure described herein can be a pharmaceutical composition.Therefore, the biphasic lipid vesicle of the present disclosure is suitably formulated into pharmaceutical compositions for administration to subject, and comprises a pharmaceutically acceptable carrier, and is in a biologically compatible form suitable for topical administration.In one embodiment, one or more compounds are therapeutic compounds selected from one or more therapeutic compounds described herein.

[0194] III. Methods of Preparing the Compositions of the Present Disclosure The disclosed compositions as described above are prepared by mixing the oil component of an oil-in-water emulsion with the aqueous component of an oil-in-water emulsion, wherein either the oil component or the aqueous component of the oil-in-water emulsion contains one or more surfactants for emulsifying the oil component with the aqueous component of the oil-in-water emulsion. In one embodiment, a surfactant is added to the oil to mix with the aqueous component and form an emulsion. The oil-in-water emulsion is then mixed with solubilized vesicle-forming lipids and, optionally, additional other lipid components under mixing conditions effective to form biphasic lipid vesicles.

[0195] The one or more penetration enhancers and the one or more compounds are added to the oil component of the oil-in-water emulsion, the aqueous component of the oil-in-water emulsion, or both. Alternatively, or additionally, the one or more penetration enhancers and the one or more compounds can be added to the lipid component.

[0196] Accordingly, the present application includes a method for preparing a biphasic lipid vesicle composition, the method comprising: a) preparing an oil-in-water emulsion comprising one or more surfactants by mixing an oil component of the oil-in-water emulsion with an aqueous component of the oil-in-water emulsion, wherein the oil component and / or the aqueous component of the oil-in-water emulsion comprises one or more surfactants; b) solubilizing the vesicle-forming lipids in an acceptable solvent other than water; c) adding one or more compounds and one or more penetration enhancers to the oily and / or aqueous components of step a) and / or the solubilized vesicle-forming lipids of step b); d) adding an oil-in-water emulsion to the solubilized vesicle-forming lipids; and e) mixing the oil-in-water emulsion with the solubilized vesicle-forming lipids under mixing conditions effective to form biphasic lipid vesicles comprising a lipid bilayer comprising lipid-forming vesicles and the oil-in-water emulsion entrapped in the biphasic lipid vesicles.

[0197] In one embodiment, a pharmaceutical composition, i.e., a lipid vesicle composition, is provided for topical administration of a compound, wherein the composition comprises a lipid vesicle comprising an outer lipid bilayer, an oil-in-water emulsion, and a therapeutic compound, the composition comprising: (a) mixing oil with water to form an oil-in-water emulsion; (b) mixing the oil-in-water emulsion of (a) with at least one vesicle-forming lipid such that the oil-in-water emulsion is coated with the outer lipid bilayer; and (c) adding the therapeutic compound and a penetration enhancer during steps (a) and / or (b), wherein the compound is a molecule having a molecular weight between 5 and 50 M Daltons, and wherein the one or more penetration enhancers increase the amount of therapeutic compound absorbed into a volume of skin compared to the same composition without the one or more penetration enhancers.

[0198] In one embodiment, the mixing conditions in step a) of mixing the oil component of the oil-in-water emulsion with the water component of the oil-in-water emulsion vesicle and / or step e) include a method using agitation, such as homogenization or emulsification, or a microemulsion technique without agitation. In one embodiment, the mixing step includes high-pressure homogenization. High-pressure homogenization provides relatively precise control over the composition of the lipid vesicle. High-pressure homogenization is suitable for small molecules and peptides or proteins that are resistant to shear. In one embodiment, the composition formed is any one of the lipid vesicle compositions described herein.

[0199] In one embodiment, another lipid component is added in any one of steps a) to e).

[0200] In one embodiment, the one or more surfactants are selected from one or more stabilizing surfactants and / or one or more polycationic surfactants described herein.

[0201] In one embodiment, the one or more penetration enhancers, one or more compounds, oil-in-water emulsion, vesicle-forming lipids, acceptable solvent, and / or other lipid components are as described above.

[0202] The lipid vesicle compositions of the present disclosure can also be prepared by methods known in the art, including, for example, the methods disclosed in U.S. Pat. No. 5,993,852, U.S. Pat. No. 5,853,755, and U.S. Pat. No. 5,993,851, which are incorporated herein by reference.

[0203] In one embodiment, the biphasic lipid vesicle composition of the present disclosure described herein may be included in a transdermal delivery system, which may take one of a variety of forms, such as a patch or a mask sheet. In one embodiment, the biphasic lipid vesicle composition is a transdermal patch.

[0204] In one embodiment, the transdermal patch can be prepared using techniques known in the art of transdermal patches. The preparation process typically involves preparing a biphasic matrix layer (i.e., mixing an adhesive, biphasic lipid vesicles, and additives, if any), casting the matrix layer onto a backing layer or release liner layer, and removing the solvent from the matrix.

[0205] IV. Methods and Uses of the Disclosure Biphasic lipid vesicles are microscopic vesicles consisting of multiple concentric phospholipid bilayers surrounding a liposome, i.e., a single phospholipid bilayer or an oil-in-water emulsion. These lipid vesicles serve as compound carriers for the local delivery of compounds that can be hydrophobic or hydrophilic. Lipid vesicles are generally biocompatible, biodegradable, and non-toxic vehicles for drug delivery.

[0206] The compositions of the present disclosure can be used for the topical delivery of one or more compounds. Accordingly, the present application includes methods for delivering one or more compounds to a subject by topically administering to the skin or mucosa a biphasic lipid vesicle composition of the present disclosure.

[0207] The present application also includes the use of the lipid vesicle compositions of the present disclosure for topically delivering one or more compounds to the skin or mucosa, as well as the use of the lipid vesicle compositions of the present disclosure for the preparation of a medicament for topically delivering one or more compounds to the skin or mucosa. The present application further includes the lipid vesicle compositions of the present disclosure for topically delivering one or more compounds to the skin or mucosa.

[0208] The biphasic lipid vesicle compositions of the present disclosure, which contain one or more penetration enhancers described herein, have been shown to improve skin penetration of one or more compounds relative to otherwise identical or similar compositions lacking one or more penetration enhancers. The biphasic lipid vesicle compositions of the present disclosure, which contain one or more polycationic surfactants described herein, and the biphasic lipid vesicle cosmetic compositions of the present disclosure, which contain one or more polycationic surfactants, have been shown to improve skin penetration of one or more compounds relative to otherwise identical or similar compositions having a monocationic surfactant instead of a dicationic or polycationic surfactant.

[0209] Accordingly, the present application also includes a method for improving the topical delivery of one or more compounds, comprising administering to the skin or mucosa of a subject in need thereof an effective amount of the disclosed biphasic lipid vesicle composition.

[0210] The present application also includes the use of a lipid vesicle composition of the present disclosure or a lipid vesicle cosmetic composition of the present disclosure for improving the topical delivery of one or more compounds to the skin or mucosa, as well as the use of a lipid vesicle composition of the present disclosure or a lipid vesicle cosmetic composition of the present disclosure for the preparation of a medicament for improving the topical delivery of one or more compounds to the skin or mucosa. The present application further includes the lipid vesicle composition of the present disclosure or a lipid vesicle cosmetic composition of the present disclosure for improving the topical delivery of one or more compounds to the skin or mucosa.

[0211] In one embodiment, the present application includes a method for treating or preventing a skin disease associated with excessive or defective collagen production in a subject, the method comprising administering to a subject in need thereof an effective amount of the lipid vesicle cosmetic composition of the present disclosure.

[0212] The present application also includes the use of the lipid vesicle cosmetic composition of the present disclosure for treating or preventing skin diseases associated with excessive or incomplete collagen, as well as the use of the lipid vesicle cosmetic composition of the present disclosure for preparing a medicament for treating or preventing skin diseases associated with excessive or incomplete collagen. The present application also further includes the lipid vesicle cosmetic composition of the present disclosure for treating or preventing skin diseases associated with excessive or incomplete collagen.

[0213] In one embodiment, the skin disease associated with excess or insufficient collagen is skin aging, skin elasticity, striae, stretch marks, wrinkles, collagen vascular diseases such as cutaneous scleroderma, morphea, lupus, rheumatoid arthritis, temporal arteritis, hereditary collagen diseases such as Ehlers-Danlos syndrome and Marfan syndrome.

[0214] In one embodiment, the one or more compounds are one or more therapeutic compounds. Thus, the biphasic lipid vesicle composition is a biphasic lipid vesicle pharmaceutical composition.

[0215] Accordingly, the present application also includes methods for treating a disease, disorder, or condition treatable by delivering one or more therapeutic compounds to a subject in need thereof by topically administering to the skin or mucosa a therapeutically effective amount of a biphasic lipid vesicle pharmaceutical composition of the present disclosure. In one embodiment, the biphasic lipid vesicle composition of the present disclosure is administered topically to the skin.

[0216] The present application also includes the use of the lipid vesicle compositions of the present disclosure for treating a disease, disorder, or condition treatable by topical delivery of one or more therapeutic compounds of the present disclosure to the skin or mucosa, as well as the use of the lipid vesicle compositions of the present disclosure for the preparation of a medicament for treating a disease, disorder, or condition treatable by topical delivery of one or more therapeutic compounds to the skin or mucosa in a subject in need thereof. The present application further includes the lipid vesicle compositions of the present application for treating a disease, disorder, or condition treatable by topical delivery of one or more therapeutic compounds to the skin or mucosa.

[0217] In one embodiment, the disease, disorder, or condition treatable by topically administering a therapeutically effective amount of the biphasic lipid vesicle pharmaceutical composition of the present disclosure to the skin or mucosa to deliver one or more therapeutic compounds is a skin condition associated with excessive or incomplete collagen production, inflammation, pain, fungal infection, viral infection, skin / dermatological condition, rheumatic condition, joint condition, skin aging, or cancer. In one embodiment, the disease, disorder, or condition is skin aging. In one embodiment, the disease, disorder, or condition is a skin condition associated with excessive or incomplete collagen production.

[0218] In one embodiment, the disease, disorder, or condition is a skin disease. In one embodiment, the skin disease is a genetic skin disease (a skin disease of genetic origin), including scleroderma, atopic dermatitis, psoriasis, diseases characterized by any cytokine deficiency, diseases characterized by IFNγ deficiency, epidermal fragility disorders, keratinization disorders, hair disorders, pigmentation disorders, porphyrias, multisystem disorders, and cancer disorders. In one embodiment, the disease, disorder, or condition is some forms of inherited epidermolysis bullosa (such as junctional EB and dystrophic EB), lamellar and / or X-linked ichthyosis, and xeroderma pigmentosum.

[0219] In one embodiment, the disease, disorder, or condition is an infectious disease, hi one embodiment, the infectious disease is a viral infection, a bacterial infection, or a fungal infection.

[0220] In one embodiment, the disease, disorder, or condition is sexual dysfunction, hi one embodiment, the sexual dysfunction is erectile dysfunction or impotence.

[0221] In one embodiment, the disease, disorder, or condition is condyloma acuminata.

[0222] In one embodiment, the disease, disorder, or condition is pain or inflammation, hi one embodiment, the pain is acute pain or chronic pain.

[0223] In one embodiment, the subject is a mammal, hi one embodiment, the subject is a human.

[0224] The dosage of the compositions of the present disclosure can vary greatly depending on many factors, including the pharmacodynamic properties of the compound, the method of administration, the recipient's age, health, and weight, the nature and extent of symptoms, the frequency of treatment and type of concomitant treatment, if any, and the clearance rate of the compound in the treated subject. Those skilled in the art can determine the appropriate dosage based on the above factors. The compositions of the present disclosure are initially administered at an appropriate dosage, which can be adjusted as needed depending on the clinical response. The dosage of the present disclosure will typically be selected from about 0.01 μg / mL to about 1000 μg / mL, or about 0.1 mg / mL to about 100 mg / mL, to maintain blood concentrations of the compound. Typical amounts are about 0.001 mg / kg to about 10 mg / kg, about 0.1 mg / kg to about 10 mg / kg, about 0.01 mg / kg to about 1 mg / kg, or about 0.1 mg / kg to about 1 mg / kg. The compounds of the present disclosure may be administered in a single daily, weekly, or monthly dose, or the total daily dose may be divided into two, three, or four daily doses.

[0225] In one embodiment, the composition of the present disclosure is administered at least once a week. However, in another embodiment, the compound is administered to a subject about once every two weeks to about once every three weeks or once a month. In another embodiment, the compound is administered about once a week to about once daily. In another embodiment, the compound is administered two, three, four, five, or six times daily. The length of the treatment period depends on various factors, such as the severity of the disease, disorder, or condition, the age of the subject, the concentration and / or activity of the compound of the present disclosure, and / or a combination thereof. It will also be recognized that the effective dosage of the compound used for treatment may increase or decrease over a particular treatment regimen. Changes in dosage may occur and be evident by standard diagnostic assays known in the art. In some instances, long-term administration may be required. For example, the compound is administered to a subject in an amount for a period sufficient to treat the subject. [Example]

[0226] The following non-limiting examples are illustrative of the present application.

[0227] Example 1: Typical lipid vesicle composition A. Method Method 1: In vitro diffusion cell studies: Full-thickness human breast skin was obtained from female donors undergoing elective mammoplasty at the Royal University Hospital, University of Saskatchewan (Saskatoon, Saskatchewan, Canada). Approval for skin collection was granted by the Human Ethics Committee of the University of Saskatchewan. Skin was harvested within 2 hours after surgery, trimmed of subcutaneous fat, and stored at -20°C until use. The orifice diameter was 9 mm (0.63 cm). 2 ) in-line Bronaugh flow diffusion cells were mounted on a water-isolated cell heater (PermeGear, Inc., Hellertown, PA) and set at a constant temperature of 32°C. 2The skin sections were placed in a diffusion cell with the stratum corneum side facing up. 37°C perfusion buffer (100 mM phosphate buffer with 0.05% sodium azide) was circulated through the lower half of the diffusion cell at a rate of 1 mL / h using a peristaltic pump. 0.1 mL of the formulation was administered to the skin surface. After 24 hours of incubation, the skin samples were removed from the cell, and their surfaces were washed three times, each time with 10 mL of water. Each skin sample was blotted dry and tape-stripped twice with clear stationery tape to remove excess formulation from the surface. Skin samples were analyzed by UPLC of skin homogenates or confocal microscopy of frozen sections.

[0228] Method 2: Preparation of skin homogenate for UPLC analysis Skin samples were individually homogenized using a gentleMACS™ Dissociator (Miltenyi Biotec Inc., Auburn, CA). Each skin section was reconstituted in 1 mL of methanol (for diclofenac samples) or 1 mL of acetonitrile (for ibuprofen samples), added to a gentleMACS™ M-tube (Miltenyi Biotec, Inc.), and homogenized using the protein extraction program (10 × 55 s). Samples were then filtered using a 0.2 μm Acrodisc® GH Polypro membrane syringe filter (Pall Corp., Ville St. Laurent, QC, Canada) into a 2 mL LC / GC-certified clear glass maximum recovery vial (Waters Corp., Milford, MA).

[0229] An ACQUITY H-Class UPLC Chromatography System consisting of a bioQuaternary Solvent Manager, an autosampler (bioSample Manager-Flow Through Needle), a variable wavelength UV detector (photodiode array eλ), and a Column Manager, controlled by Empower3 software (Waters Corp.), was used for analysis and method validation for the purposes of this study.

[0230] Analyses were performed with a 5 μL injection volume on a 1.7 μm BEH300 C18 50 mm x 2.1 mm id column (Waters Corp.) heated to 30 °C (for diclofenac runs) and 35 °C (for ibuprofen runs). The mobile phase (solvent A—0.65 methanol:0.35 Milli-Q water adjusted to pH 2.5 with phosphoric acid for diclofenac analysis, and 0.67 Milli-Q water:0.34 acetonitrile for ibuprofen analysis) was pumped in isocratic mode at 0.45 mL / min (diclofenac analysis) and 0.55 mL / min (ibuprofen analysis). Total run times were 5 and 10 minutes for diclofenac and ibuprofen analyses, respectively. Mobile phase, standard, and sample solutions were filtered through 0.2 μm Acrodisc® GH Polypro membrane syringe filters (Pall Corp.) and used at room temperature. For diclofenac, the UV detection range was set at 200-260 nm, and collected data was graphed at 254 nm. For ibuprofen, the UV detection range was 200-250 nm, and collected data was graphed at 220 nm. All calibrations and quantifications (total peak areas) were calculated using Empower 3 software.

[0231] Method 3: In vivo studies Animal experiments were approved by the University of Waterloo Committee on Animal Care and Use. For in vivo delivery, CD1 mice (Charles River) were used. All animals (including controls) were anesthetized with isoflurane and thoroughly shaved 1 day before treatment. The shaved area was cleaned with distilled water using sterile gauze and allowed to dry. Naked plasmid DNA solution or plasmid DNA formulation (50 μL per animal containing 25 μg of tD-tomato red fluorescent protein (RFP)-encoding plasmid) was applied to the shaved area, covered with Parafilm / Opsite occlusive dressing, and secured with plastic tape for 24 hours. The treated skin area was excised 24 hours after treatment.

[0232] Method 4: Confocal microscopy Mouse or human skin samples were characterized using confocal microscopy with a Zeiss LSM 710 confocal microscope. All samples were embedded in an OCT compound matrix and frozen for cryosectioning. Skin samples were cryosectioned into 10 μm sections using a Leica CM1850 cryostat. Confocal images of skin sections were acquired using a Zeiss LSM 710 CLSM using HeNe laser (543 and 633 nm) lines for tdTomato (546 / 579) and Rhodamine (570 / 590), a 488 nm laser for FITC-insulin and FITC-IgG, and either a Plan-Apochromat 20x / 0.80 dry objective or a 63x / 1.40 oil immersion objective. Optical zoom selection was applied in selected cases. Laser power, pinhole, and gain settings were kept constant across sample sets, allowing for the matching of relative fluorescence intensity measurements between different treatments. Images were captured and processed using Zen 2009 software.

[0233] The "untreated" sample was used to verify the gain and pinhole settings for subsequent treated samples to eliminate noise and autofluorescence background. B: Exemplary lipid vesicle formulation compositions 1. Exemplary Ibuprofen Lipid Vesicle Formulations Step 1: Preparation of System A (oil-in-water emulsion): System A for exemplary ibuprofen lipid vesicle formulations IB1-IB-6 (submicron emulsions in oil-in-water) is as follows:

[0234] [Table 3] Step 2: Preparation procedure for System A (oil-in-water submicron emulsion) preparation (applicable to all formulations): 1. Oil and water phase ingredients were weighed out into separate beakers. 2. Both beakers were heated to 70°C to completely melt and combine all ingredients. 3. While stirring vigorously with a spatula, the aqueous phase was added to the oil phase in one rapid addition to form a crude o / w emulsion, which was then placed in a 70°C water bath to obtain an effectively homogenous milky solution (~2 min). 4. The formulation was batch processed using an LV1 Microfluidizer or a Nano DeBee homogenizer with a Z5 module at 20,000 psi for three passes.

[0235] Step 3: Preparation of vesicles:

[0236] [Table 4]

[0237] Procedure for vesicle formation (applicable to all formulations): 1. The lipid phase ingredients were weighed into a 20 mL glass vial. 2. The vial was heated to 70°C in a water bath to completely melt and combine all ingredients. 3. The aqueous phase (System A) was added to the liquid phase in one rapid addition. 4. The mixture was stirred and heated intermittently for 8-10 cycles of 5 seconds / 5 seconds to form a uniform creamy lotion.

[0238] The following exemplary lipid vesicle formulations were prepared using the process described above for ibuprofen formulation IB1.

[0239] [Table 5]

[0240] NOTE: Menthol and camphor were premixed in a glass vial using a spatula without heating to form a eutectic mixture. The mixture was thoroughly mixed to a liquid state, and System A was added and stirred well. This mixture was then added to the lipid phase, as described above.

[0241] [Table 6]

[0242] [Table 7]

[0243] [Table 8]

[0244] [Table 9]

[0245] [Table 10]

[0246] [Table 11]

[0247] [Table 12]

[0248] [Table 13]

[0249] 2. Exemplary Diclofenac Lipid Vesicle Formulations Step 1: Preparation of System A (oil-in-water submicron emulsion) System A for exemplary diclofenac lipid vesicle formulations DF1 and DF2 is as follows:

[0250] [Table 14]

[0251] System A was prepared using the process described above for ibuprofen formulation IB1.

[0252] Step 2: Preparation of vesicles The following exemplary diclofenac lipid vesicle formulations were prepared using the process described above for ibuprofen formulation IB1.

[0253] [Table 15]

[0254] [Table 16]

[0255] 3. Exemplary Peptide and Protein Lipid Vesicle Formulations The following exemplary peptide and protein lipid vesicle formulations were prepared using the process described above for the exemplary ibuprofen formulation IB1. a) Exemplary lipid vesicle formulation 1 (peptide-lipid vesicle formulation 1) of a 12-mer peptide (mwt1200), insulin (mwt6000), and IgG (150,000).

[0256] [Table 17] b) Exemplary lipid vesicle formulation 2 of a 12-mer peptide (mwt1200), insulin (mwt6000), and IgG (150,000) (peptide-lipid vesicle formulation 2)

[0257] [Table 18]

[0258] [Table 19]

[0259] [Table 20] c) Exemplary lipid vesicle formulation 3 of a 12-mer peptide (mwt1200), insulin (mwt6000), and IgG (150,000) (peptide-lipid vesicle formulation 3)

[0260] [Table 21]

[0261] [Table 22] d) Exemplary lipid vesicle formulation 4 of a 12-mer peptide (mwt1200), insulin (mwt6000), and IgG (150,000) (peptide-lipid vesicle formulation 4)

[0262] [Table 23]

[0263] [Table 24]

[0264] 4) Nucleic acid lipid vesicle formulation The following exemplary nucleic acid lipid vesicle formulations were prepared using the process described above for the exemplary ibuprofen formulation IB1. a) Comparative plasmid lipid vesicle formulation F-TOM-1

[0265] [Table 25]

[0266] [Table 26]

[0267] b) Exemplary Plasmid Formulation Lipid Vesicle F-TOM-2

[0268] [Table 27]

[0269] [Table 28]

[0270] c) Exemplary Plasmid Lipid Vesicle Formulation F-TOM-3

[0271] [Table 29]

[0272] [Table 30]

[0273] d) Exemplary Plasmid Lipid Vesicle Formulation F-TOM-4

[0274] [Table 31]

[0275] [Table 32]

[0276] e) Exemplary Plasmid Lipid Vesicle Formulation F-TOM-5

[0277] [Table 33]

[0278] [Table 34]

[0279] C. Results and Discussion Cutaneous delivery of ibuprofen and diclofenac The results of in vitro cell diffusion and skin homogenate analysis (see Tables 3 and 4 below) demonstrate that improved delivery of IB and DF was achieved by incorporating penetration enhancer components into exemplary biphasic lipid vesicle formulations. The addition of hydrophobic nonionic surfactants with an HLB of <10, such as Oleth-2, with an HLB of 4-7, enhanced delivery into viable epithelia. Further enhancement could be achieved when additional penetration enhancers, such as terpenes (e.g., menthol, camphor), methyl salicylate, or alkaloids (e.g., piperine), were added. The enhanced permeation due to the effect of hydrophobic nonionic surfactants, such as Oleth-2, could be further enhanced by increasing their concentration in the formulation (e.g., 1%-2%) (Table 3).

[0280] [Table 35-1]

[0281] [Table 35-2]

[0282] [Table 36]

[0283] Cutaneous delivery of peptide and protein therapeutics Frozen sections of human skin samples treated in vitro with topical formulations containing fluorescently labeled peptides and proteins were evaluated for the presence of fluorescent proteins. Enhanced delivery of protein and peptide compounds is shown for three compounds ordered by molecular weight (Figure 1). Incorporation of penetration enhancers, hydrophobic nonionic surfactants with an HLB of <10 (e.g., Oleth-2, sorbitan monopalmitate [Span 40], or PEG-4 dilaurate), was shown to increase delivery of these proteins and peptides (Figure 1). Table 5 shows the relative fluorescence intensities measured in living epidermal layers. All of these hydrophobic nonionic surfactants with HLB<10 were effective in enhancing biphasic vesicle delivery, with the level of enhancement being (highest to lowest): PEFA / Oleth-2 > Tween 80 / Span 40 / Oleth-2 > Tween 80 / Span 40 / PEG-4-dilaurate > PEFA / PEG-4-dilaurate. (The surfactants in italics (PEFA, Tween 80) are present in the oil and water emulsion components of the comparative biphasic vesicles for emulsification; the surfactants in bold (Oleth-2, Span 40, PEG-4-dilaurate) indicate additional penetration enhancers for penetration enhancement.)

[0284] [Table 37]

[0285] Skin delivery of nucleic acids Mouse skin samples treated with topical formulations containing plasmid DNA encoding the red tdTomato reporter gene were evaluated for expression of the tdTomato red fluorescent protein. In comparison with a control biphasic vesicle (F-TOM-1, containing the monocationic surfactant PEFA), substitution of PEFA for other formulations containing dicationic gemini surfactants as complexing agents for the negatively charged plasmid DNA increased plasmid DNA delivery and skin gene expression in vivo in mice. All dicationic gemini surfactants used were effective for plasmid DNA delivery when incorporated into biphasic vesicle structures. The enhancement was as follows (highest to lowest): F-TOM-5 dicationic gemini surfactant 12-7NH-12 / phospholipid emulsifier > F-TOM-4 dicationic gemini surfactant 12-7CH3-12 / phospholipid emulsifier > F-TOM-3 dicationic gemini surfactant 12-3-12 / phospholipid emulsifier > F-TOM-2 * Tween 80 / dicationic gemini surfactant 16-3-16 (surfactants in italics (dicationic gemini surfactant 12-7NH-12, Tween 80) are improved active surfactants for improving the encapsulation of highly negatively charged nucleic acids by biphasic vesicles; surfactants in bold (phospholipid emulsifier, Tween 80) show synergistic penetration-enhancing effects with added HLB < 10 (Table 6). * FTOM-2 is a variant for the control formulation, in which the original biphasic vesicles prepared with Tween80 / PEFA were changed to Tween80 / gemini surfactant.

[0286] All blinded samples showed little to no background fluorescence (Figure 2). Samples treated with intradermal naked pDNA showed significant amounts of tdTomato expression (not shown). For each formulation, three panels are shown: the first panel is the red channel for RFP expression (seen as brightly colored areas in the epidermis and dermis), the second panel is a general tissue stain (blue nuclear stain Syto60), and the third panel is a merged image.

[0287] [Table 38]

[0288] The present disclosure is not limited with respect to the specific embodiments described in this application. Many modifications and variations can be made without departing from its spirit and scope, as will be apparent to those skilled in the art. Functionally equivalent methods and compositions within the scope of the present disclosure, in addition to those recited herein, will be apparent to those skilled in the art from the foregoing description. Such modifications and variations are intended to fall within the scope of the appended claims. The present disclosure is to be limited only by the terms of the appended claims, along with the full scope of equivalents to which such claims are entitled. It is to be understood that the disclosure is not limited to particular methods, reagents, compounds, compositions, or biological systems, which can, of course, vary. Further, it is to be understood that the terminology used herein is used for the purpose of describing particular embodiments only, and is not intended to be limiting.

[0289] All publications, patent applications, issued patents, and other documents cited herein are herein incorporated by reference to the same extent as if each individual publication, patent application, issued patent, or other document was specifically and individually indicated to be incorporated by reference in its entirety. Definitions contained in text incorporated by reference are excluded to the extent they conflict with definitions in this disclosure.

[0290] While certain embodiments have been illustrated and described, it is to be understood that changes and modifications may be made therein by those of ordinary skill in the art without departing from the technology in its broader aspects, as defined in the claims that follow.

Claims

1. (a) a lipid vesicle comprising a lipid bilayer, the lipid bilayer comprising a vesicle-forming lipid; (b) an oil-in-water emulsion entrapped in said lipid vesicles; and (c) a penetration enhancer entrapped within the lipid bilayer or the oil-in-water emulsion; and (d) comprising a compound entrapped within the oil-in-water emulsion of a biphasic lipid vesicle, the lipid bilayer of the biphasic lipid vesicle, or both the oil-in-water emulsion and the lipid bilayer; 1. A biphasic lipid vesicle composition for topical application to the skin, comprising: A biphasic lipid vesicle composition, wherein the penetration enhancer comprises a nonionic surfactant having a hydrophilic-lipophilic balance (HLB) of 10 or less, and is selected from the group consisting of diethylene glycol monooleyl ether, sorbitan monopalmitate, and polyoxyethylene(4) dilaurate.

2. 10. The biphasic lipid vesicle composition of claim 1, wherein the oil-in-water emulsion comprises one or more components that form non-covalent associations with the lipid bilayer.

3. 2. The biphasic lipid vesicle composition of claim 1, wherein the oil-in-water emulsion comprises an aqueous continuous phase and a dispersed oil phase, the dispersed oil phase comprising droplets having an average diameter of less than 1 micrometer (μm).

4. 10. The biphasic lipid vesicle composition of claim 1, wherein said penetration enhancer is entrapped within said lipid bilayer and said oil-in-water emulsion.

5. 2. The biphasic lipid vesicle composition of claim 1, wherein the lipid bilayer comprises about 10 wt%, about 9 wt%, about 8 wt%, about 7 wt%, about 6 wt%, about 5 wt%, about 4 wt%, about 3 wt%, about 2 wt%, about 1 wt%, about 0.5 wt%, or about 0.1 wt% of a penetration enhancer.

6. 10. The biphasic lipid vesicle composition of claim 1, wherein the biphasic lipid vesicle composition further comprises an additional penetration enhancer comprising a terpene, an alkaloid, a salicylic acid derivative, a polycationic surfactant, or any combination thereof.

7. 7. The biphasic lipid vesicle composition of claim 6, wherein the terpene comprises eugenol, d-limonene, menthol, menthone, farnesol, neridol, camphor, nerol, thymol, or any combination thereof.

8. 7. The biphasic lipid vesicle composition of claim 6, wherein the salicylic acid derivative comprises ethyl salicylate, salicylic acid, acetylsalicylic acid, trolamine salicylate, or any combination thereof.

9. 7. The biphasic lipid vesicle composition of claim 6, wherein the alkaloid comprises piperine, lobeline, caffeine, theobromine, theophylline, nicotine, colchicine, N-methylpyrrolidone, hygrine, capsaicin, berberine, sanguinarine, histamine, pilocarpine, or any combination thereof.

10. 7. The biphasic lipid vesicle composition of claim 6, wherein the polycationic surfactant comprises a gemini cationic surfactant containing a quaternary ammonium group.

11. The biphasic lipid vesicle composition of claim 6 , wherein the polycationic surfactant comprises a polycationic amino acid.

12. 10. The biphasic lipid vesicle composition of claim 1, wherein the oil-in-water emulsion of the lipid vesicles is stabilized by additional surfactants including polyoxyethylene (10) cetyl ether and polysorbate 80.

13. 2. The biphasic lipid vesicle composition of claim 1, wherein the vesicle-forming lipid comprises a phospholipid, a glycolipid, or a ceramide.

14. The biphasic lipid vesicle composition of claim 1, wherein the compound comprises a small molecule, a protein, a peptide, a carbohydrate, a nucleic acid, a vaccine antigen, or a plant extract having an amount of up to 1000 daltons.

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