Incretin mimetic loaded lipid nanocapsules

Lipid nanocapsules loaded with incretin mimetics enhance oral bioavailability and stimulate GLP-1 release, addressing the challenges of low oral bioavailability in current peptide delivery systems and achieving effective glycemic control in diabetic models.

JP7680746B2Active Publication Date: 2025-05-21UNIVERSITE CATHOLIQUE DE LOUVAIN
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Patent Information

Application Number
JP2021575315
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-07-23
Filing Date
2020-05-27
Publication Date
2025-05-21
Estimated Expiration
2040-05-27

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Abstract

The present invention relates to lipid nanocapsules for oral administration, comprising a solid lipid outer shell and a lipid-soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics. The present invention also relates to the use of lipid nanocapsules for treating and / or preventing disorders associated with GLP-1 dysfunction.
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Description

[Technical field]

[0001] The present invention relates to the field of lipid nanocapsule-based drug delivery systems and their use for treating GLP-1 associated disorders. [Background technology]

[0002] The development of oral dosage forms that allow for the absorption of therapeutic peptides into the systemic circulation remains one of the greatest challenges for the pharmaceutical industry. Selected diabetes peptides have moved into later stages of development despite their low oral bioavailability (estimated to be 0.5-1.0%). Nonetheless, the advantages of oral peptide delivery over intravenous or subcutaneous administration are evident, especially in the case of antidiabetic drugs such as glucagon-like peptide-1 (GLP-1). Oral administration of incretin mimetic peptides has the added therapeutic advantage of mimicking the normal physiological pathway of native peptides. GLP-1 agonists can be targeted to the hepatic portal region and accessed in higher concentrations via the hepatic portal vein than via subcutaneous delivery, reducing systemic exposure and its associated side effects. Despite many ongoing attempts to utilise the oral route of administration of incretin mimetic peptides, the only orally administered GLP-1 analogue currently on the market is semaglutide, Rybelsus®, developed by NovoNordisk, which requires co-administration of a functional excipient, namely sodium N-[8-(2-hydroxybenzoyl)amino]caprylate (SNAC).

[0003] Gastrointestinal physiology provides a stimulating environment that has yet to be fully exploited to its full potential in the field of drug delivery. A wide variety of cells are interspersed throughout the gastrointestinal epithelium. Of these, enteroendocrine L-cells have attracted particular interest due to the pleiotropic actions of the peptides they secrete (e.g., GLP-1 and GLP-2). These cells have a relatively rapid turnover of 5-7 days and their density increases in pathologies such as type 2 diabetes mellitus (T2DM) and inflammatory bowel disease (IBD), making them an attractive target for the treatment of these diseases. In the setting of T2DM, GLP-1 secreted from gastrointestinal L-cells stimulates postprandial insulin secretion and is rapidly hydrolyzed by dipeptidyl peptidase-IV (DPP-IV). Accordingly, several GLP-1 analogs with improved plasma half-lives (e.g., exenatide, liraglutide, semaglutide) have been developed and have proven successful in the treatment of T2DM. In recent years, researchers have turned their interest from secreted peptides to L cells themselves as a target for the treatment of obesity, T2DM, and IBD. Indeed, enhancing the secretion of endogenous GLP-1 would present a more physiological and novel alternative in incretin-based diabetes therapy (Burant, Diabetes Care. 2013; 36 Suppl 2, S175-179). Although certain endogenous ligands found in the intestinal lumen, such as short-chain fatty acids including butyrate and propionate, can activate L cells, the use of nanocarriers may present another therapeutic strategy to stimulate the production of intestinal peptides. Indeed, nanocarriers can be engineered to mimic certain ligands and can be designed to increase retention in the intestine, thereby inducing long-term L cell activation.

[0004] Current strategies for oral peptide delivery use the delivery system simply as a vehicle. None of these take advantage of the physiological properties of the carrier itself to achieve the maximum therapeutic potential of the formulation.

[0005] The present inventors have developed an unprecedented approach to use incretin mimetics via oral route to treat and / or prevent metabolic disorders associated with dysfunctional glycemia. Indeed, the present inventors provide evidence that combining GLP-1 analogs with nanocarriers is sufficient to normalize glycemia in obese / diabetic mice after acute or chronic treatment. The lipid nanocapsule-based drug delivery system of the present invention synergistically cooperates its own bioactivity (stimulation of GLP-1 release) and the bioactivity of the encapsulated bioactive molecule (incretin mimetic). Interestingly, in addition to the strong advantage of using the oral route, this approach is at least as efficient as currently marketed drugs and may even be more effective in improving oral glucose tolerance, insulin resistance, lipid distribution, and fatty liver. Thus, this strategy offers an additional advantage over current approaches in oral incretin mimetic peptide delivery, providing increased endogenous GLP-1 levels. Summary of the Invention

[0006] The present invention relates to a lipid nanocapsule for oral administration, comprising: a solid lipid shell; a lipid-soluble liquid core comprising reverse micelles loaded with one or more incretin mimetics; The present invention relates to a lipid nanocapsule comprising:

[0007] In one embodiment, the solid lipid shell comprises one or more surfactants selected from the group including ionic surfactants, non-ionic surfactants, amphoteric surfactants, lipophilic surfactants, and mixtures thereof.

[0008] In one embodiment, the fat soluble liquid inner core comprises one or more oils, hi one embodiment, the one or more oils are triglycerides, fatty acids, fatty acid esters, or mixtures thereof.

[0009] In one embodiment, the reverse micelles comprise one or more components selected from the group comprising surfactants, oils, and mixtures thereof.

[0010] In one embodiment, the lipid nanocapsules have an average diameter in the range of about 100 nm to about 300 nm.

[0011] In one embodiment, the lipid nanocapsules induce the secretion of endogenous GLP-1 in vivo.

[0012] In one embodiment, the one or more incretin mimetics are selected from the group including albiglutide, dulaglutide, exenatide, liraglutide, lixisenatide, and semaglutide. In one embodiment, the one or more incretin mimetics is exenatide.

[0013] In one embodiment, the nanocapsules comprise: a solid lipid shell comprising a poly-oxyethylene ester of a fatty acid, a non-ionic lipophilic surfactant, and optionally a PEGylated lipid, particularly a PEGylated phospholipid; A lipid-soluble liquid core containing triglycerides and fatty acid esters and reverse micelles loaded with exenatide. Includes.

[0014] In one embodiment, the lipid nanocapsule comprises: The surfactants Solutol® HS15, Lipoid® S100, and optionally DSPE-PEG 2000 -OCH 3 a solid lipid shell comprising: a lipid-soluble liquid core containing reverse micelles loaded with exenatide, the inner core containing the oils Labrafac Lipophile WL1349 and / or Plurol CC 497 or Peceol; Includes.

[0015] In one embodiment, exenatide has a pharmacokinetic profile characterized by a relative bioavailability of at least 4% in high fat diet induced obesity / diabetes mice.

[0016] Another object of the present invention is to provide a therapeutically effective amount of lipid nanocapsules for oral administration comprising a solid lipid outer shell and a lipid-soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics; A pharma- ceutically acceptable vehicle; A pharmaceutical composition comprising:

[0017] The present invention also relates to a medicament comprising a therapeutically effective amount of lipid nanocapsules for oral administration comprising a solid lipid outer shell and a lipid-soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics.

[0018] The present invention further relates to lipid nanocapsules comprising a solid lipid outer shell and a lipid-soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics for use in the treatment and / or prevention of disorders associated with GLP-1 dysfunction in a subject in need thereof.

[0019] In one embodiment, the disorder is selected from the group comprising type 2 diabetes mellitus (T2DM), obesity, inflammatory bowel disease (IBD), pancreatitis, dyslipidemia, non-alcoholic fatty liver disease, hyperglycemia, fatty liver, overweight, non-alcoholic fatty liver disease (NAFLD), non-alcoholic steatohepatitis (NASH), insulin resistance, hyperinsulinemia, impaired glucose tolerance, hyperglycemia, metabolic syndrome, pre-diabetes, poor fasting glucose, hyperphagia, altered food intake behavior, hepatic insulin resistance, whole body insulin resistance, accelerated transition, adipose tissue inflammation, cardiac dysfunction, acute myocardial infarction, hypertension, cardiovascular disease, atherosclerosis, peripheral arterial disease, stroke, heart failure, coronary heart disease, renal disease, diabetic complications, neuropathy, and gastroparesis. In one embodiment, the disorder is selected from the group comprising type 2 diabetes mellitus (T2DM), obesity, and inflammatory bowel disease (IBD).

[0020] Another subject of the present invention is A kit for treating and / or preventing a disorder associated with GLP-1 dysfunction, comprising: one or more lipid nanocapsules comprising a solid lipid outer shell and a lipid-soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics; One or more oral hypoglycemic drugs A kit comprising: DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0021] definition For the purposes of the present invention, the following terms have the following meanings.

[0022] The term "about" preceding a value means ±10% of said value. It is to be understood that the value referred to by the term "about" is itself also specific and preferably disclosed.

[0023] "Comprise" is intended to mean "contain," "encompass," and "include." In some embodiments, the term "comprise" also encompasses the term "consist of."

[0024] A "pharmaceutically acceptable excipient" refers to an excipient that does not produce adverse, allergic, or other undesirable reactions when administered to an animal, preferably a human. This includes any solvent, dispersion medium, coating agent, antibacterial and antifungal agents, isotonic and absorption delaying agents, and the like. A pharmaceutically acceptable carrier or excipient refers to any type of non-toxic solid, semi-solid, or liquid filler, diluent, encapsulating material, or formulation aid. For human administration, the formulation must meet the standards of sterility, general safety, and purity required by the FDA Agency's Biologics Standards.

[0025] "Subject" refers to a mammal, preferably a human. In one embodiment, the subject is male. In another embodiment, the subject is female. In one embodiment, the subject may be a "patient", i.e. a warm-blooded animal, more preferably a human, who is waiting for or receiving medical care, or who has / is / could be a past / present / future subject of medical care, or who is being monitored for the development of a GLP-1-related disorder. In one embodiment, the subject is an adult (e.g. a subject over 18 years of age). In another embodiment, the subject is a child (e.g. a subject under 18 years of age).

[0026] "Therapeutically effective amount" refers to a level or amount of an agent intended to (1) delay or prevent the onset of a GLP-1 related disorder; (2) delay or halt the progression, exacerbation, or worsening of one or more symptoms of a GLP-1 related disorder; (3) bring about amelioration of a symptom of a GLP-1 related disorder; (4) reduce the severity or frequency of occurrence of a GLP-1 related disorder; or (5) prevent a GLP-1 related disorder, without causing significant negative or deleterious side effects to the target. In one embodiment, a therapeutically effective amount is administered prior to the onset of a GLP-1 related disorder for a preventative or prophylactic effect. In another embodiment, a therapeutically effective amount is administered after the onset of a GLP-1 related disorder for a therapeutic effect.

[0027] "Treatment" refers to both therapeutic treatment and preventative or prophylactic measures, the purpose of which is to prevent or delay (reduce) GLP-1-related disorders. Those in need of treatment include those already with the disorder, as well as those prone to have the disorder or those in which the disorder is to be prevented. "Treatment" is successful if the subject or mammal, after being administered a therapeutic amount of the lipid nanocapsules of the present invention, shows one or more of the following observable and / or measurable changes: remission associated with one or more of the symptoms associated with GLP-1-related disorders; reduced morbidity and mortality, and improved quality of life issues. The above parameters for assessing the success of treatment and improvement of the disease are easily measurable by routine techniques familiar to physicians.

[0028] Detailed Description The present inventors have formulated lipid nanocapsules loaded with incretin mimetics for oral administration to treat and / or prevent disorders related to GLP-1 dysfunction, such as, for example, type 2 diabetes mellitus (T2DM), obesity, etc. The nanocapsules according to the present invention are structurally significantly different from lipid-based formulations disclosed, for example, by US2017087096 and WO2018157202, and from nanoparticles disclosed by Shrestha et al. (Nanoscale. 2018; 10:603-613) and Beloqui et al. (Mol Pharm. 2016; 13:4222-4230). Moreover, as evidenced by the comparative studies disclosed herein (see Comparative Example 3), these nanoparticles from the state of the art are unable to induce GLP-1 secretion or reduce hyperglycemia and hyperinsulinemia in further tests in vivo, whereas the nanocapsules according to the present invention are able to do so. Furthermore, the PEGylated nanocapsules of the present invention improve the half-life or mimetic incretin and its systemic absorption.

[0029] The present invention relates to a lipid nanocapsule for oral administration, comprising: a solid lipid shell; a lipid-soluble liquid core comprising reverse micelles loaded with one or more incretin mimetics; The present invention relates to a lipid nanocapsule comprising:

[0030] In some embodiments, the ingredients used to prepare the lipid nanocapsules of the present invention belong to the "generally recognized as safe" (GRAS) list.

[0031] As used herein, the terms "nanocapsule" and "nanoparticle" are interchangeable.

[0032] In a first embodiment, the solid lipid shell of the lipid nanocapsules according to the invention comprises one or more (or at least one) surfactants.

[0033] In one embodiment, one or more of the surfactants is PEGylated.

[0034] In one embodiment, the HLB (Hydrophilic-Lipophilic Balance) of at least one surfactant is in the range of about 4 to about 40, preferably about 6 to about 16, and more preferably about 10 to about 14.

[0035] The HLB value is defined by C. Larpent in Traite K.342 of the Editions Techniques de l'Ingenieur.

[0036] In one embodiment, at least one surfactant is ionic, nonionic or amphoteric surfactant.In one embodiment, at least one surfactant is selected from the group comprising ethoxylated fatty alcohol, ethoxylated fatty acid, partial glyceride of ethoxylated fatty acid, and polyethoxylated fatty acid triglyceride, and mixtures thereof.In a particular embodiment, at least one surfactant, particularly nonionic surfactant, is poly-oxyethylene ester of fatty acid, preferably Solutol® HS15 (also called Kolliphor® HS 15).

[0037] Examples of ethoxylated fatty alcohols include, but are not limited to, adducts of ethylene oxide with lauryl alcohol, especially those containing 9 to 50 oxyethylene groups (CTFA names Laureth-9 to Laureth-50); adducts of ethylene oxide with behenyl alcohol, especially those containing 9 to 50 oxyethylene groups (CTFA names Beheneth-9 to Beheneth-50); adducts of ethylene oxide with cetostearyl alcohol (a mixture of cetyl alcohol and stearyl alcohol), especially those containing 9 to 30 oxyethylene groups (CTFA names Cetostearyl-1, Cetostearyl-2, Cetostearyl-3, Cetostearyl-4, Cetostearyl-5, Cetostearyl-6, Cetostearyl-7, Cetostearyl-8, Cetostearyl-9, Cetostearyl-10, Cetostearyl-11, Cetostearyl-12, Cetostearyl-13, Cetostearyl-14, Cetostearyl-15, Cetostearyl-16, Cetostearyl-17, Cetostearyl-18, Cetostearyl-19 ...9, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl-19, Cetostearyl adducts of ethylene oxide with cetyl alcohol, especially those containing 9 to 30 oxyethylene groups (CTFA names: ceteth-9 to ceteth-30); adducts of ethylene oxide with stearyl alcohol, especially those containing 9 to 30 oxyethylene groups (CTFA names: steareth-9 to ceteareth-30); adducts of ethylene oxide with isostearyl alcohol, especially those containing 9 to 50 oxyethylene groups (CTFA names: isosteareth-9 to isosteareth-50); and mixtures thereof.

[0038] Examples of ethoxylated fatty acids include, but are not limited to, the adducts of ethylene oxide with lauric acid, palmitic acid, stearic acid, or behenic acid, and mixtures thereof, particularly those containing 9 to 50 oxyethylene groups, such as PEG-9 to PEG-50 laurate (CTFA name: PEG-9 laurate to PEG-50 laurate); PEG-9 to PEG-50 palmitate (CTFA name: PEG-9 palmitate to PEG-50 palmitate); PEG-9 to PEG-50 stearate (CTFA name: PEG-9 stearate to PEG-50 stearate); PEG-9 to PEG-50 palmitostearate; PEG-9 to PEG-50 behenate (CTFA name: PEG-9 behenate to PEG-50 behenate); and mixtures thereof.

[0039] In one embodiment, the at least one surfactant is a thermosensitive, hydrophilic non-ionic surfactant.

[0040] In one embodiment, the solid lipid shell of the lipid nanocapsules of the present invention further comprises at least one lipophilic surfactant.

[0041] In one embodiment, at least one lipophilic surfactant is a phospholipid.In one embodiment, at least one surfactant is selected from the group including phosphatidylcholine (also called lecithin), phosphatidylglycerol, phosphatidylinositol, phosphatidylserine, phosphatidic acid, and phosphatidylethanolamine.Examples of lipophilic surfactants include, but are not limited to, Lipoid S 45, Lipoid S 75-3, Lipoid S 100, Lipoid GPC, Lipoid E 80, sorbitan oleate (Span 80), Epikuron™ 135, and Plurol®.In a particular embodiment, the lipophilic surfactant is Lipoid S 100 and / or sorbitan oleate (Span 80).

[0042] In one embodiment, the at least one surfactant, particularly a lipophilic surfactant, more particularly a lipid, more particularly a phospholipid, is a PEGylated lipid, more particularly a PEGylated phospholipid. Examples of PEGylated phospholipids include, but are not limited to, DPPE-PEGx (wherein DPPE means dipalmitoyl phosphatidylethanolamine), DSPE-PEGx (wherein DSPE means distearoyl phosphatidylethanolamine), DOPE-PEGx (wherein DOPE means dioleyl phosphatidylethanolamine), and POPE-PEGx (wherein POPE means palmitoyl oleyl phosphatidylethanolamine), where x represents the size of the PEG molecule in g / mol. In some embodiments, x comprises about 400 to about 20,000, preferably about 800 to about 5,000, more preferably about 1,000 to about 3,000. As used herein, about 400 to about 20,000 includes about 400, 500, 600, 700, 800, 900, 1,000, 2,000, 3,000, 4,000, 5,000, 6,000, 7,000, 8,000, 9,000, 10,000, 11,000, 12,000, 13,000, 14,000, 15,000, 16,000, 17,000, 18,000, 19,000, and 20,000. In one embodiment, x is 1,000, 2,000, 3,000, 4,000, or 5,000. In one embodiment, x is 6,000, 7,000, 8,000, or 9,000. In one embodiment, x is 10,000.

[0043] As used herein, the term "PEG" refers to a compound of the general formula (I) polyethylene glycol, which is generally accepted in the state of the art: [ka] (wherein x is from about 400 to about 20,000 (representing the size of the PEG molecule in g / mol), and R is -OH, -O(C 1 -C 12 ) alkoxy group, -(C 1 -C 12) Carboxy group, -NH 2 (represents).

[0044] In one embodiment, R is -OCH 3 (Methoxyl), -OC 2 H 5 , -OC 3 H 7 , -OC 4 H 9 , -OC 5 H 11 , -OC 6 H 13 , and their isomers -O(C 1 -C 6 ) alkoxyl group. In one embodiment, R represents -COOH (methanoic acid), -CH 2 -COOH (ethanoic acid), -C 2 H 4 -COOH (propionic acid), -C 3 H 6 -COOH (butyric acid), -C 4 H 8 -COOH (pentoic acid), -C 5 H 10 -COOH (hexanoic acid) and its isomers -(C 1 -C 6 ) represents a carboxy group.

[0045] In one embodiment, the PEGylated phospholipid is DSPE-PEG. 2000 -OCH 3 (1,2-distearoyl-sn-glycero-3-phosphoethanolamine-methoxyl poly(ethylene glycol) 2000), which is a DSPE-PEG comprising a PEG of formula (I), where x is 2,000 and R is -OCH 3 (That is.)

[0046] In one embodiment, the PEGylated phospholipid is DSPE-PEG. 2000 -CH 2 -CH 2-COOH(1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[poly(ethylene glycol)-2000]-propionate), which is a DSPE-PEG comprising a PEG of formula (I) where x is 2,000 and R is propionic acid.

[0047] In fact, PEGylated phospholipids provide mucus spreading, increased stability, and prolonged blood circulation. Increased mucopenetration may aid in increased contact of nanocapsules with the surface of L-cells. In fact, PEGylated phospholipids may be commercially available, for example, from Nanocs® or Nanosoft Polymers®.

[0048] In one embodiment, the lipid shell of the lipid nanocapsules of the present invention comprises one or more components selected from the group comprising non-ionic surfactants, lipophilic surfactants, and mixtures thereof.

[0049] In one embodiment, the lipid shell of the lipid nanocapsules of the present invention comprises one or more components selected from the group comprising: a thermosensitive, hydrophilic non-ionic surfactant, a phospholipid, and mixtures thereof. In one embodiment, the solid lipid shell of the lipid nanocapsules of the present invention comprises a thermosensitive, hydrophilic non-ionic surfactant, and a phospholipid.

[0050] In one embodiment, the lipid shell of the lipid nanocapsule of the present invention comprises one or more surfactants, preferably Lipoid® S100 and / or Solutol® HS 15, in a total amount of about 1 to 40% by weight, preferably about 3 to about 25% by weight, more preferably about 5 to about 15% by weight, based on the total weight of the lipid nanocapsule. In one embodiment, the lipid shell of the lipid nanocapsule of the present invention comprises one or more surfactants, preferably Lipoid® S100 and / or Solutol® HS 15, in a total amount of about 6.45% by weight, based on the total weight of the lipid nanocapsule.

[0051] In one embodiment, the lipid shell of the lipid nanocapsule according to the present invention comprises a total amount of about 0.1 to 40% by weight, preferably about 0.5 to about 25% by weight, more preferably about 1 to about 10% by weight of one or more surfactants, preferably Lipoid® S100 and / or Solutol® HS15, and / or DSPE-PEG, based on the total weight of the lipid nanocapsule. 2000 -OCH 3 or DSPE-PEG 2000 -CH 2 -CH 2 Contains -COOH.

[0052] Within the scope of the present invention, the expression "about 0.1 to about 40% by weight" means 0.1% by weight, 0.2% by weight, 0.3% by weight, 0.4% by weight, 0.5% by weight, 0.6% by weight, 0.7% by weight, 0.8% by weight, 0.9% by weight, 1% by weight, 1.5% by weight, 2% by weight, 2.5% by weight, 3% by weight, 3.5% by weight, 4% by weight, 4.5% by weight, 5% by weight, 5.5% by weight, 6% by weight, 6.5% by weight, 7% by weight, 7.5% by weight, 8% by weight, 8.5% by weight, 9% by weight, 9.5% by weight, and 10% by weight. Weight%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25% , 26% by weight, 27% by weight, 28% by weight, 29% by weight, 30% by weight, 31% by weight, 32% by weight, 33% by weight, 34% by weight, 35% by weight, 36% by weight, 37% by weight, 38% by weight, 39% by weight, and 40% by weight.

[0053] In one embodiment, the lipid shell of the lipid nanocapsules according to the invention comprises one or more non-ionic surfactants, preferably Solutol® HS15, and one or more lipophilic surfactants, preferably Lipoid® S100 and / or PEGylated phospholipids. In one embodiment, the lipid shell of the lipid nanocapsules according to the invention comprises one non-ionic surfactant, preferably Solutol® HS15, and two lipophilic surfactants, preferably Lipoid® S100 and PEGylated phospholipids.

[0054] In one embodiment, the lipophilic liquid inner core of the lipid nanocapsules of the present invention comprises one or more oils.

[0055] In one embodiment, the oil is at least one triglyceride, fatty acid, fatty acid ester, or mixtures thereof.

[0056] In one embodiment, the fatty acid is a saturated or unsaturated C 8 ~C 26 The fatty acid is selected from the group consisting of fatty acids, omega-3 fatty acids, and mixtures thereof. In one embodiment, the unsaturated fatty acid can be monounsaturated or polyunsaturated fatty acid. In one embodiment, the fatty acid is of polyunsaturated type and is selected from the group of omega-3 fatty acids, in particular including alpha-linolenic acid (18:3, ALA), eicosapentaenoic acid (20:5, EPA) and docosahexaenoic acid (22:6, DHA). In particular, the source of omega-3 fatty acid can be fish oil.

[0057] In one embodiment, the fatty acid ester is 8 ~C 18 , preferably C 8 ~C 12 In certain embodiments, the fatty acid ester is selected from the group comprising or consisting of ethyl palmitate, ethyl oleate, ethyl myristate, isopropyl myristate, octyldodecyl myristate, and mixtures thereof.

[0058] In one embodiment, the triglyceride is a synthetic triglyceride or a triglyceride of natural origin, including but not limited to animal fats or vegetable oils, such as soybean oil or sources of long chain triglycerides (LCT).

[0059] In another embodiment, the triglyceride is composed of medium chain fatty acids, also known as medium chain triglycerides (MCTs). Medium chain triglyceride (MCT) oils are triglycerides in which the hydrocarbon chain contains between 8 and 12 carbon atoms.

[0060] Examples of MCT oils include, but are not limited to, TCR products (trade names from the French Societe Industrielle des Oleagineux, a mixture of triglycerides in which approximately 95% of the fatty acid chains contain 8-10 carbon atoms) and Myglyol® 812 (a mixture of triglycerides, caprylic and capric glyceride triesters sold by the Swedish company Dynamit Nobel).

[0061] In one embodiment, the fatty acid units of the triglycerides are unsaturated, monounsaturated, or polyunsaturated. In one embodiment, the fat soluble liquid inner core comprises a mixture of triglycerides containing varying fatty acid units.

[0062] In one embodiment, the oil is selected from the group comprising glycerol, glyceryl fatty acid monoglycerides, fatty acid triglycerides, mono-, di- and triglycerides of linoleic and / or oleic acid, caprylic triglyceride, capric triglyceride, propylene glycol esters of caprylic and / or capric acid, triglycerides of vegetable fatty acids, and mixtures thereof.

[0063] Examples of oils that may be included in the fat-soluble core include, but are not limited to, Labrafac™ Lipophile WL1349 (medium-chain triglycerides of caprylic and capric acids), Labrafac™ PG (propylene glycol esters of caprylic and capric acids), Plurol® CC 497 (polyglyceryl-6 dioleate), Peceol™ (glyceryl monooleate), Maisine® CC (mono-, di-, and triglycerides primarily of linoleic and oleic acids), and Miglyol® 810 / 812 (triglycerides of caprylic and capric acids). In certain embodiments, the fat-soluble core includes Labrafac™ Lipophile WL1349. In certain embodiments, the lipophilic core comprises Plurol® CC 497 or Peceol™. As used herein, the terms "Labrafac™ Lipophile WL1349" and "Labrafac® WL 1349" may be used interchangeably and refer to the same ingredient.

[0064] In one embodiment, the fat-soluble inner core of the lipid nanocapsule of the present invention comprises one or more oils, preferably Labrafac™ Lipophile WL1349 and / or Peceol™ (or Plurol™ CC 497), in a total amount of about 25 to about 65% by weight, preferably about 30 to about 55% by weight, more preferably about 35 to about 45% by weight, based on the total weight of the lipid nanocapsule. In one embodiment, the fat-soluble inner core of the lipid nanocapsule of the present invention comprises one or more oils, preferably Labrafac™ Lipophile WL1349 and / or Peceol™ (or Plurol™ CC 497), in a total amount of about 41.4% by weight, based on the total weight of the lipid nanocapsule.

[0065] Within the scope of the present invention, the expression "about 25 to about 65% by weight" includes 25% by weight, 26% by weight, 27% by weight, 28% by weight, 29% by weight, 30% by weight, 31% by weight, 32% by weight, 33% by weight, 34% by weight, 35% by weight, 36% by weight, 37% by weight, 38% by weight, 39% by weight, 40% by weight, 41% by weight, 42% by weight, 43% by weight, 44% by weight, 45% by weight, 46% by weight, 47% by weight, 48% by weight, 49% by weight, 50% by weight, 51% by weight, 52% by weight, 53% by weight, 54% by weight, 55% by weight, 56% by weight, 57% by weight, 58% by weight, 59% by weight, 60% by weight, 61% by weight, 62% by weight, 63% by weight, 64% by weight, and 65% by weight.

[0066] In one embodiment, the lipid nanocapsules of the present invention further comprise at least one salt and water. In one embodiment, the lipid nanocapsules of the present invention further comprise sodium chloride and water.

[0067] In one embodiment, the aqueous phase in which the lipid nanocapsules of the present invention are prepared first contains a specific concentration of salt, preferably sodium chloride (NaCl), in one embodiment, the concentration of this salt is in the range of about 2 to about 8% by weight, preferably about 4 to about 6% by weight, more preferably about 4.2 to about 5.2% by weight, based on the total weight of the lipid nanocapsule.

[0068] Within the scope of the present invention, the expression "about 2 to about 8%" includes 2.0% by weight, 2.5% by weight, 3.0% by weight, 3.5% by weight, 4.0% by weight, 4.5% by weight, 5.0% by weight, 5.5% by weight, 6.0% by weight, 6.5% by weight, 7.0% by weight, 7.5% by weight, and 8.0% by weight.

[0069] In one embodiment, the aqueous phase in which the lipid nanocapsules of the present invention are prepared further comprises an osmotic agent, a cryoprotectant, a lyoprotective agent, a preservative, or a mixture thereof. In one embodiment, the cryoprotectant or lyoprotectant is mannitol or trehalose. In one embodiment, the cryoprotectant or lyoprotectant is added to the suspension of nanocapsules to be lyophilized.

[0070] In one embodiment, the reverse micelles of the lipid nanocapsules of the present invention comprise one or more components selected from the group comprising surfactants, oils, and mixtures thereof.

[0071] In one embodiment, the surfactant in the reverse micelle has an HLB value of 10 or less, preferably 8 or less, and more preferably 6 or less.

[0072] In one embodiment, the surfactant of the reverse micelle is a fatty ester. In one embodiment, the surfactant of the reverse micelle is sorbitan oleate, sorbitan monolaurate, sorbitan trioleate, sorbitan monooleate, polyoxyethylene sorbitan monooleate, polyoxyethylene sorbitan trioleate, or mixtures thereof. In certain embodiments, the surfactant of the reverse micelle is Span® 80, Span® 20, Span® 85, Tween® 20, Tween® 80, or Tween® 85.

[0073] In one embodiment, the oil of the reverse micelle comprises a phospholipid, hi one embodiment, the phospholipid comprises phosphatidylcholine, phosphatidylglycerol, phosphatidylinositol, phosphatidylserine, phosphatidic acid, and phosphatidylethanolamine, and mixtures thereof.

[0074] In one embodiment, the oil of the reverse micelle comprises a fatty acid triglyceride, preferably caprylic triglyceride and / or capric triglyceride, or a mixture thereof. In a particular embodiment, the oil of the reverse micelle comprises Labrafac™ Lipophile WL1349.

[0075] In one embodiment, the reverse micelles of the lipid nanocapsules according to the present invention comprise a surfactant and an oil as described herein above.

[0076] In a particular embodiment, the reverse micelles of the lipid nanocapsules of the present invention comprise or consist of at least one incretin mimetic, Span® 80 and Labrafac™ Lipophile WL 1349. In a particular embodiment, the reverse micelles of the lipid nanocapsules of the present invention comprise or consist of exenatide, Span® 80 and Labrafac™ Lipophile WL 1349.

[0077] In one embodiment, the reverse micelles of the present invention comprise about 5-50% by weight, preferably about 10-35% by weight, more preferably about 15-20% by weight, of a surfactant, preferably Span® 80, based on the total weight of the reverse micelle. In a particular embodiment, the reverse micelles of the present invention comprise about 16.67% by weight, of a surfactant, preferably Span® 80, based on the total weight of the reverse micelle.

[0078] Within the scope of the present invention, the expression "about 5 to about 50% by weight" means 5% by weight, 6% by weight, 7% by weight, 8% by weight, 9% by weight, 10% by weight, 11% by weight, 12% by weight, 13% by weight, 14% by weight, 15% by weight, 16% by weight, 17% by weight, 18% by weight, 19% by weight, 20% by weight, 21% by weight, 22% by weight, 23% by weight, 24% by weight, 25% by weight, 26% by weight, 27% by weight, 28% by weight, 29% by weight, 30% by weight, 31% by weight, 32% by weight, 33% by weight, 34% by weight, 35% by weight, 36% by weight, 37% by weight, 38% by weight, 39% by weight, 40% by weight, 41% by weight, 42% by weight, 43% by weight, 44% by weight, 45% by weight, 46% by weight, 47% by weight, 48% by weight, 49% by weight, 50% by weight, 51% by weight, 52% by weight, 53% by weight, 54% by weight, 55% by weight, 56% by weight, 57% by weight, 58% by weight, 59% by weight, 60% by weight, 61% by weight, 62% by weight, 63% by weight, 64% by weight, 65% by weight, 66% by weight, 67% by weight, 68% by weight, 69% by weight, 70% by weight, 71% by weight, 72% by weight, 73% by weight, 74% by weight, 7 %, 27% by weight, 28% by weight, 29% by weight, 30% by weight, 31% by weight, 32% by weight, 33% by weight, 34% by weight, 35% by weight, 36% by weight, 37% by weight, 38% by weight, 39% by weight, 40% by weight, 41% by weight, 42% by weight, 43% by weight, 44% by weight, 45% by weight, 46% by weight, 47% by weight, 48% by weight, 49% by weight, and 50% by weight.

[0079] In one embodiment, the reverse micelles of the present invention comprise about 50 to about 95% by weight, preferably about 75 to about 90% by weight, more preferably about 80 to about 85% by weight of an oil, preferably Labrafac™ Lipophile WL 1349, based on the total weight of the reverse micelle. In a particular embodiment, the reverse micelles of the present invention comprise about 83.33% by weight of an oil, preferably Labrafac™ Lipophile WL 1349, based on the total weight of the reverse micelle.

[0080] Within the scope of the present invention, the expression "about 50 to about 95% by weight" means 50% by weight, 51% by weight, 52% by weight, 53% by weight, 54% by weight, 55% by weight, 56% by weight, 57% by weight, 58% by weight, 59% by weight, 60% by weight, 61% by weight, 62% by weight, 63% by weight, 64% by weight, 65% by weight, 66% by weight, 67% by weight, 68% by weight, 69% by weight, 70% by weight, 71% by weight, 72% by weight, 73% by weight, 74% by weight, 75% by weight, 76% by weight, 77% by weight, 78% by weight, 79% by weight, 80% by weight, 81% by weight, 82% by weight 1% by weight, 72% by weight, 73% by weight, 74% by weight, 75% by weight, 76% by weight, 77% by weight, 78% by weight, 79% by weight, 80% by weight, 81% by weight, 82% by weight, 83% by weight, 8 Contains 4% by weight, 85% by weight, 86% by weight, 87% by weight, 88% by weight, 89% by weight, 90% by weight, 91% by weight, 92% by weight, 93% by weight, 94% by weight, and 95% by weight.

[0081] In one embodiment, the reverse micelles represent about 0.01 to about 40% by weight, preferably about 1 to about 35% by weight, more preferably about 10 to about 25% by weight, based on the total weight of the lipid nanocapsule.

[0082] Within the scope of the present invention, the expression "about 0.01 to about 40% by weight" includes 0.01% by weight, 0.05% by weight, 0.1% by weight, 0.5% by weight, 1% by weight, 2% by weight, 3% by weight, 4% by weight, 5% by weight, 6% by weight, 7% by weight, 8% by weight, 9% by weight, 10% by weight, 11% by weight, 12% by weight, 13% by weight, 14% by weight, 15% by weight, 16% by weight, 17% by weight, 18% by weight, 19% by weight, 20% by weight, 21% by weight, 22% by weight, 23% by weight, 24% by weight, 25% by weight, 26% by weight, 27% by weight, 28% by weight, 29% by weight, 30% by weight, 31% by weight, 32% by weight, 33% by weight, 34% by weight, 35% by weight, 36% by weight, 37% by weight, 38% by weight, 39% by weight, and 40% by weight.

[0083] In one embodiment, the weight ratio of surfactant / oil is in the range of 1:10 to 1:1. In one embodiment, the weight ratio of surfactant / oil is in the range of 1:8 to 1:3. In one embodiment, the weight ratio of surfactant / oil is 1:5. Within the scope of the present invention, the expression "1:10 to 1:1" encompasses 1:10, 1:9, 1:8, 1:7, 1:6, 1:5, 1:4, 1:3, 1:2, and 1:1.

[0084] In one embodiment, the weight ratio of incretin mimetic / surfactant is in the range of 0.001 to 0.2, preferably 0.005 to 0.05, more preferably 0.01 to 0.03. In one embodiment, the weight ratio of incretin mimetic / surfactant is about 0.03. Within the scope of the present invention, the expression "0.001 to 0.2" includes 0.001, 0.0025, 0.005, 0.0075, 0.01, 0.025, 0.05, 0.075, 0.1, 0.125, 0.15, 0.175, and 0.2.

[0085] In one embodiment, the lipid nanocapsules of the present invention have an average diameter of at least about 100, 110, 120, 125, 130, 140, 150, 160, 170, 175, 180, 190, or 200 nm. In one embodiment, the lipid nanocapsules of the present invention have an average diameter of at most about 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, or 300 nm.

[0086] In one embodiment, the lipid nanocapsules according to the invention have an average diameter in the range of about 100 nm to about 300 nm, preferably about 150 nm to about 250 nm, more preferably about 180 nm to about 230 nm. In one embodiment, the lipid nanocapsules according to the invention have an average diameter in the range of about 200 nm to about 300 nm. In a particular embodiment, the lipid nanocapsules according to the invention have an average diameter of about 200 nm. Indeed, lipid nanocapsules with an average diameter of more than about 200 nm have the property of inducing the secretion of endogenous GLP-1 and thus promoting an increase in the blood level of GLP-1. In some embodiments, the lipid nanocapsules according to the invention induce the secretion of endogenous GLP-1 in vivo. Indeed, the secretion of endogenous GLP-1 in vivo can be measured by any suitable method derived from the state of the art or a method derived therefrom. By way of example, the level of GLP-1 can be measured in blood samples, particularly plasma samples, by ELISA kits, such as the commercially available Total GLP-1 ELISA kit, (Meso Scale Delivery®). The secretion of endogenous GLP-1 can be expressed as a fold change compared to a reference value obtained before treatment.

[0087] In one embodiment, the incretin mimetic of the lipid nanocapsules of the present invention is selected from the group comprising exenatide, albiglutide, dulaglutide, liraglutide, lixisenatide, and semaglutide.

[0088] In one embodiment, the lipid nanocapsules of the present invention comprise at least exenatide.

[0089] In one embodiment, exenatide has a pharmacokinetic profile characterized by a relative bioavailability of at least 4% in high fat diet induced obesity / diabetes mice.

[0090] Within the scope of the present invention, the expression "at least 4%" includes 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 15% or more.

[0091] In a particular embodiment, the lipid nanocapsules of the present invention comprise: a solid lipid shell; A lipid-soluble liquid core containing reverse micelles loaded with exenatide Includes.

[0092] In a particular embodiment, the lipid nanocapsules of the present invention comprise: a solid lipid shell comprising a poly-oxyethylene ester of a fatty acid and a lipophilic surfactant; A lipid-soluble liquid core containing triglycerides and fatty acid esters and reverse micelles loaded with exenatide. Includes.

[0093] In a particular embodiment, the lipid nanocapsules of the present invention comprise: a solid lipid shell comprising the surfactants Solutol® HS15 and Lipoid® S100; a lipid-soluble liquid core containing reverse micelles loaded with exenatide, the inner core containing the oils Labrafac Lipophile WL1349 and / or Plurol CC 497 or Peceol; Includes.

[0094] In a particular embodiment, the lipid nanocapsules of the present invention comprise: a solid lipid shell consisting of the surfactants Solutol® HS15 and Lipoid® S100; A lipid-soluble liquid core consisting of Labrafac™ Lipophile WL1349 and / or Plurol® CC 497 or Peceol™ oils, sodium chloride, water, and reverse micelles loaded with exenatide. It consists of:

[0095] In a particular embodiment, the lipid nanocapsules of the present invention comprise: a solid lipid shell comprising a poly-oxyethylene ester of a fatty acid, a non-ionic lipophilic surfactant, and optionally a PEGylated lipid, particularly a PEGylated phospholipid; A lipid-soluble liquid core containing triglycerides and fatty acid esters and reverse micelles loaded with exenatide. Includes.

[0096] In a particular embodiment, the lipid nanocapsules of the present invention comprise: The surfactants Solutol® HS15, Lipoid® S100, and optionally DSPE-PEG 2000 -OCH 3 a solid lipid shell comprising: a lipid-soluble liquid core containing reverse micelles loaded with exenatide, the inner core containing the oils Labrafac Lipophile WL1349 and / or Plurol CC 497 or Peceol; Includes.

[0097] In a particular embodiment, the lipid nanocapsules of the present invention comprise: Surfactants Solutol® HS15, Lipoid® S100 and optionally DSPE-PEG 2000 -OCH 3 A solid lipid shell consisting of A lipid-soluble liquid core consisting of Labrafac™ Lipophile WL1349 and / or Plurol® CC 497 or Peceol™ oils, sodium chloride, water, and reverse micelles loaded with exenatide. It consists of:

[0098] In a particular embodiment, the lipid nanocapsules of the present invention comprise: a solid lipid shell comprising a poly-oxyethylene ester of a fatty acid, a non-ionic lipophilic surfactant, and a PEGylated lipid, particularly a PEGylated phospholipid; A lipid-soluble liquid core containing triglycerides and fatty acid esters and reverse micelles loaded with exenatide. Includes.

[0099] In a particular embodiment, the lipid nanocapsules of the present invention comprise: The surfactants Solutol® HS15, Lipoid® S100, and DSPE-PEG 2000 -OCH 3 A solid lipid shell consisting of A lipid-soluble liquid core consisting of Labrafac™ Lipophile WL1349 and / or Plurol® CC 497 or Peceol® oils, sodium chloride, water, and reverse micelles loaded with exenatide. It consists of:

[0100] In a particular embodiment, the lipid nanocapsules of the present invention comprise: The surfactants Solutol® HS15, Lipoid® S100, and DSPE-PEG 2000 -CH 2 CH 2 a solid lipid shell consisting of COOH; A lipid-soluble liquid core consisting of Labrafac™ Lipophile WL1349 and / or Plurol® CC 497 or Peceol® oils, sodium chloride, water, and reverse micelles loaded with exenatide. It consists of:

[0101] In one embodiment, the lipid nanocapsules according to the invention are formulated in two steps. In one embodiment, the method for preparing lipid nanocapsules according to the invention comprises: 1. Encapsulating one or more incretin mimetics in reverse micelles; 2. Encapsulating the reverse micelles in lipid nanocapsules; Includes.

[0102] Incretin mimetic loaded reverse micelles are obtained at the end of the first step. Incretin mimetic loaded reverse micellar lipid nanocapsules are obtained at the end of the second step.

[0103] In one embodiment, the first step comprises high speed mixing of one or more ingredients selected from the group comprising surfactants, oils, and mixtures thereof, preferably surfactants and oils (step 1a).

[0104] In one embodiment, the first step further comprises soaking one or more incretin mimetics, preferably exenatide, in a mixture of one or more of the above-mentioned components, preferably a mixture of a surfactant and an oil (Step 1b).

[0105] In one embodiment, the second step comprises a phase inversion process, in which the components of the lipid nanocapsule are mixed together under magnetic stirring (step 2a). In one embodiment, the components of the lipid nanocapsule comprise the components of the solid lipid shell and the lipophilic liquid core described herein above. In one embodiment, the components of the lipid nanocapsule comprise oil, surfactant, salt, and water. In one embodiment, this step is carried out at a temperature ranging from 30° C. to 50° C., preferably from 35° C. to 45° C., more preferably at a temperature of about 40° C. In one embodiment, this step is carried out at a speed ranging from 100 rpm to 1,000 rpm, preferably at 200 rpm. In one embodiment, this step is carried out for at least 1 minute, 2 minutes, or 5 minutes.

[0106] In one embodiment, the second step further comprises a temperature cycle of progressive heating / cooling (step 2b). In one embodiment, the temperature cycle is performed at a temperature in the range of 40°C to 85°C, preferably 45°C to 75°C, more preferably 50°C to 68°C. In one embodiment, the reverse micelles containing the incretin mimetic obtained in step 1 are added to the mixture obtained in step 2b during the last temperature cycle (step 2c). In one embodiment, step 2c is performed at a temperature about 3°C ​​above the phase inversion zone (PIZ). In one embodiment, step 2c is performed at a temperature in the range of about 58°C to about 70°C, preferably about 60°C to about 68°C, more preferably about 62°C to about 64.5°C. In one embodiment, after the temperature is cooled and reaches the PIZ in the last temperature cycle, cold water (0°C to 5°C, preferably about 4°C) is added to the mixture obtained at the end of step 2c (step 2d). In one embodiment, at the end of step 2d, the temperature of the mixture is from about 57°C to about 63°C, preferably from about 58°C to about 62°C, and more preferably from about 59.5°C to about 61.5°C.

[0107] In one embodiment, the method for preparing lipid nanocapsules according to the present invention does not involve the use of any organic solvent, in other words, the method is an organic solvent-free method for preparing lipid nanocapsules according to the present invention.

[0108] In one embodiment, the lipid nanocapsules of the present invention can be freeze-dried and then reconstituted in the form of a colloidal suspension. In one embodiment, a penetrating agent, a cryoprotectant, a lyoprotectant, a preservative, or a mixture thereof can be added to the suspension of lipid nanocapsules to be freeze-dried. In one embodiment, after these compounds are completely dissolved, the suspension can undergo a first step of rapid freezing at about -50°C. In one embodiment, these suspensions can then be freeze-dried by directly passing water in the form of low-temperature steam under reduced pressure. In one embodiment, the lipid nanocapsules in dry form can then be stored in a sterile form for a long period of time before use.

[0109] The present invention further relates to a pharmaceutical composition comprising a therapeutically effective amount of the lipid nanocapsules described herein above and a pharma- ceutically acceptable vehicle.

[0110] The present invention further relates to a lipid nanocapsule or a pharmaceutical composition as described herein above for use as a medicament.

[0111] In one embodiment, the lipid nanocapsules according to the invention are used for the preparation of a medicament. One object of the invention is the use of the lipid nanocapsules according to the invention for the preparation of a medicament.

[0112] In one embodiment, the lipid nanocapsules, pharmaceutical composition or medicament according to the invention are for use in the treatment and / or prevention of disorders associated with GLP-1 dysfunction.

[0113] In one embodiment, the lipid nanocapsules, pharmaceutical compositions or medicaments of the present invention are for use in the treatment and / or prevention of a disorder selected from the group comprising type 2 diabetes mellitus (T2DM), obesity, inflammatory bowel disease (IBD), pancreatitis, dyslipidemia, non-alcoholic fatty liver disease, hyperglycemia, fatty liver, overweight, non-alcoholic fatty liver disease (NAFLD), non-alcoholic steatohepatitis (NASH), insulin resistance, hyperinsulinemia, impaired glucose tolerance, hyperglycemia, metabolic syndrome, pre-diabetes, poor fasting glucose, hyperphagia, altered food intake behavior, hepatic insulin resistance, whole body insulin resistance, accelerated transition, adipose tissue inflammation, cardiac dysfunction, acute myocardial infarction, hypertension, cardiovascular disease, atherosclerosis, peripheral arterial disease, stroke, heart failure, coronary heart disease, renal disease, diabetic complications, neuropathy and gastroparesis.

[0114] In a particular embodiment, the lipid nanocapsules, pharmaceutical compositions or medicaments of the present invention are for use in the treatment and / or prevention of type 2 diabetes mellitus (T2DM), obesity, or inflammatory bowel disease (IBD).

[0115] In one embodiment, the lipid nanocapsules of the present invention have the advantage of significantly reducing liver weight, liver lipid accumulation, and the number and size of lipid droplets.

[0116] The present invention also relates to a method for treating and / or preventing disorders associated with GLP-1 dysfunction in a subject in need thereof, comprising oral administration to said subject of the lipid nanocapsules, the pharmaceutical composition or the medicament according to the present invention.

[0117] In one embodiment, the method is for treating and / or preventing a disorder selected from the group comprising type 2 diabetes mellitus (T2DM), obesity, inflammatory bowel disease (IBD), pancreatitis, dyslipidemia, non-alcoholic fatty liver disease, hyperglycemia, fatty liver, overweight, non-alcoholic fatty liver disease (NAFLD), non-alcoholic steatohepatitis (NASH), insulin resistance, hyperinsulinemia, impaired glucose tolerance, hyperglycemia, metabolic syndrome, pre-diabetes, poor fasting glucose, hyperphagia, altered food intake behavior, hepatic insulin resistance, whole body insulin resistance, accelerated transition, adipose tissue inflammation, cardiac dysfunction, acute myocardial infarction, hypertension, cardiovascular disease, atherosclerosis, peripheral arterial disease, stroke, heart failure, coronary heart disease, renal disease, diabetic complications, neuropathy, and gastroparesis.

[0118] Another object of the present invention is an in vivo method for increasing blood levels of GLP-1 in an individual in need thereof, comprising oral administration to said individual of a therapeutically effective amount of the lipid nanocapsules, pharmaceutical compositions and medicaments according to the present invention.

[0119] Another object of the present invention is an in vivo method for reducing blood glucose levels in an individual in need thereof, comprising oral administration to said individual of a therapeutically effective amount of the lipid nanocapsules, pharmaceutical compositions and medicaments according to the present invention.

[0120] It will be understood that the total daily use of the lipid nanocapsules, pharmaceutical compositions and medicaments of the present invention will be determined by the attending physician within the scope of sound medical judgment.The therapeutically effective amount specific to any particular patient will depend on a variety of factors, including the disorder being treated and the severity of the disorder; the activity of the specific agent used; the specific composition used, the age, weight, general health, sex and diet of the patient; the time of administration, route of administration and excretion rate of the specific agent used; duration of treatment; drugs used in combination or simultaneously with the specific agent used; and similar factors well known in the medical field.For example, it is well within the scope of those skilled in the art to start the dose of the agent at a level lower than that required to achieve the desired therapeutic effect and gradually increase this dose until the desired effect is achieved.

[0121] However, the daily dose of the product may vary over a wide range, from about 0.01 to about 1,000 mg / adult / day, preferably from 0.1 to about 500, more preferably from about 1 to about 200 mg / adult / day. In one embodiment, the lipid nanocapsule, pharmaceutical composition, or medicament according to the present invention is administered at a dose of about 0.1 mg to about 20 mg / adult / day.

[0122] An effective amount of the lipid nanocapsules is typically supplied at a dosage level of from 0.1 mg / kg to about 1,000 mg / kg of body weight per day.

[0123] In one embodiment, an effective amount of lipid nanocapsules may be administered once, twice, or three times per day.

[0124] In one embodiment, the lipid nanocapsules, pharmaceutical compositions or medicaments of the present invention are administered or are suitable for oral administration.

[0125] The present invention also provides a kit for treating and / or preventing a disorder associated with impaired GLP-1 function, comprising: One or more lipid nanocapsules according to the invention; One or more oral hypoglycemic agents; The present invention relates to a kit comprising:

[0126] In one embodiment the oral hypoglycemic agent is selected from the group comprising: α-glucosidase inhibitors, preferably acarbose, miglitol, or voglibose; biguanides, preferably metformin; cycloset, preferably bromocriptine; DPP-4 inhibitors, preferably sitagliptin, saxagliptin, vildagliptin, linagliptin, or alogliptin; meglitinides, preferably repaglinide, or nateglinide; SGLT2 inhibitors, preferably dapagliflozin or canagliflozin; sulfonylureas, preferably glipizide, glyburide, gliclazide, or glimepiride; thiazolidinediones, preferably rosiglitazone or pioglitazone.

[0127] Another object of the present invention is to provide a drug delivery system for treating and / or preventing disorders associated with GLP-1 dysfunction, comprising: One or more lipid nanocapsules according to the invention; One or more oral hypoglycemic drugs A drug delivery system comprising: [Brief description of the drawings]

[0128] [Figure 1]1A-F are a combination of histograms and plots showing lipid nanocapsule stability and exenatide release in biomimetic intestinal fluid. FIG. 1A shows the particle size and PDI of a variation of exenatide-loaded reverse micelle (RM) lipid nanocapsules (EXE RM LNC) after incubation with FaSSGF in the presence of pepsin for a given time interval (mean ± SEM; n=9). FIG. 1B shows the particle size and PDI of a variation of EXE RM LNC after incubation with FaSSGF in the absence of pepsin for a given time interval (mean ± SEM; n=9). FIG. 1C shows the particle size and PDI of a variation of EXE RM LNC after incubation with FaSSIF for a given time interval (mean ± SEM; n=9). FIG. 1D shows the particle size and PDI of a variation of EXE RM LNC after incubation with FeSSIF for a given time interval (mean ± SEM; n=9). FIG. 1E shows the particle size and PDI of the EXE RM LNC variations after incubation with FeSSIF-V2 at given time intervals (mean ± SEM; n=9). The particle size of EXE RM LNC did not change significantly in any case (P>0.05) and exhibited monodispersity in the assayed media (PDI<0.2). FIG. 1F shows the cumulative exenatide release profile in FaSSIF (pH 6.5) over 6 hours at 37° C. as measured by HPLC (mean ± SEM; n=9). [Diagram 2]Figure 2A-B is a combination of graphs showing RM LNC-mediated secretion of GLP-1 in vitro and in vivo in euglycemic mice. Figure 2A shows RM LNC-mediated secretion of GLP-1 (2 mg / mL) in GLUTag cells (left) and NCI-H716 cells (right) (mouse and human L-cells, respectively) after a 2-h co-incubation period (mean ± SEM; n = 6-10). Figure 2B shows secretion of total GLP-1 in vivo in euglycemic mice 60 and 180 min after oral administration of RM LN (mean ± SEM; n = 7-8). P values ​​in Figure 2A and Figure 2B were determined by Student's t-test or Mann-Whitney test. [Diagram 3] Figure 3 depicts a plot showing the plasma levels of exenatide in euglycemic mice. The hemogram of exenatide was measured after oral administration to euglycemic mice in aqueous solution (EXE) or encapsulated in RM LNC (EXE RM LNC) (500 μg / kg exenatide dose, corresponding to approximately 1.62 mg / g lipid nanocapsule dose) as measured by ELISA (mean ± SEM; n = 4). Data with different superscripts are significantly different (P < 0.05) using a two-way ANOVA followed by Tukey's post hoc test. [Figure 4]Figures 4A-4D are a combination of histograms showing in vitro cytotoxicity studies on L-cells and enterocyte-like cells. Figure 4A shows the cell viability of EXE RM LNC on Caco-2 cells after 2 hours of incubation at 37°C, expressed as cell viability with respect to drug concentration. Figure 4B shows the cell viability of EXE RM LNC on Caco-2 cells after 2 hours of incubation at 37°C, expressed as cell viability with respect to nanoparticle concentration. Figure 4C shows the cell viability of RM LNC on GLUTag cells after co-incubation with increasing concentrations of lipid nanocapsules (1 mg / mL-10 mg / ml) for 2 hours. Figure 4D shows the cell viability of RM LNC on human NCI-H716 cells after co-incubation with increasing concentrations of lipid nanocapsules (1 mg / mL-10 mg / ml) for 2 hours. Data are shown as mean ± SEM (n=9). The dashed line corresponds to 80% viability. Data correspond to three independent experiments. [Diagram 5] Figure 5 presents plots showing plasma glucose levels (mg / dl) measured 30 min before and 120 min after the glucose test (n=8-9). Data with different superscripts are significantly different (P<0.05) using a two-way ANOVA followed by Tukey's post-hoc test. [Figure 6] Figure 6 represents a histogram showing the mean area under the curve (AUC, mg / dl / min) measured 30 min before and 120 min after the glucose test (n = 8-9). [Figure 7] FIG. 7 represents a histogram showing the insulin resistance index determined by multiplying the AUC of blood glucose by the AUC of insulin (n=8-9). [Figure 8]FIG. 8 depicts plots showing the concentration-time profiles and AUC of exenatide following subcutaneous administration (EXE sc) (50 μg / kg exenatide dose) and oral administration in solution and in RM LNC (EXE and EXE RM LNC, respectively) (500 μg / kg exenatide dose corresponding to a lipid nanocapsule dose of approximately 1.62 mg / g). Data are presented as mean ± SEM (n=8-10). Data with different superscripts are significantly different (P<0.05) using one-way ANOVA followed by Tukey's post-hoc test. [Figure 9] Figures 9A-9B are a combination of plots showing the evaluation of OGTT of EXE RM LNC in diabetic mice induced by HFD for 8 and 10 weeks. Figure 9A shows plasma glucose levels and AUC from oral challenge of 2 g / kg glucose measured in mice (C57BL6 / J mice) fed a control diet and HFD (8 weeks). Figure 9B shows plasma glucose levels and AUC from oral challenge of 2 g / kg glucose measured in mice (C57BL6 / J mice) fed a control diet and HFD (10 weeks), which were determined by 2-way ANOVA. Data are presented as mean ± SEM (n = 7-8). Values ​​with different superscripts are significantly different (P < 0.05). P values ​​were determined by 2-way ANOVA for OGTT and 1-way ANOVA followed by Tukey's post hoc test for comparison of AUC between groups. [Figure 10] Figures 10A-10B are a combination of plots showing the effect of EXE RM LNC on glucose homeostasis in obese / diabetic mice. Figure 10A shows plasma glucose levels over 5 weeks of treatment (13 weeks of HFD feeding) expressed in mg / dl. Figure 10B shows plasma glucose concentrations after 5 weeks of treatment (13 weeks of HFD feeding) expressed in mg / dl. Data are presented as mean ± SEM (n=10). Data with different superscripts are significantly different (P<0.05). P values ​​were determined by 2-way ANOVA followed by Tukey's post-hoc test. [Figure 11]FIG. 11 depicts histograms showing the effect of EXE RM LNC on hyperinsulinemia in obese / diabetic mice. Insulin plasma levels were measured from the portal vein (n=8-10). Data are presented as mean±SEM. Data with different superscripts are significantly different (P<0.05). P values ​​were determined by Kruskal-Wallis test followed by Dunn's post-hoc test. [Figure 12] Figure 12 depicts a histogram showing the effect of EXE RM LNC treatment on liver weight (g). Data with different superscripts are significantly different (P<0.05). P values ​​were determined by one-way ANOVA with Tukey's post-hoc test. [Figure 13-1] Figures 13A-C are a combination of histograms showing the effect of EXE RM LNC treatment on lipid homeostasis. Figure 13A shows total hepatic lipid content (mg-1 / 100 mg tissue). Figure 13B shows hepatic triglycerides (nmol.mg-1). Figure 13C shows hepatic cholesterol (nmol.mg-1). Data with different superscripts are significantly different (P<0.05). P values ​​were determined by Kruskal-Wallis test followed by Dunn's post-hoc test. [Figure 13-2] Same as above. [Figure 14-1] Figures 14A-14E are combined histograms. Figure 14A shows the effect of EXE RM LNC treatment on spleen weight. Figure 14B shows the effect of EXE RM LNC treatment on visceral adipose tissue (VAT) weight. Figure 14C shows the effect of EXE RM LNC treatment on subcutaneous adipose tissue (SAT) weight. Figure 14D shows the effect of EXE RM LNC treatment on epicardial adipose tissue (EAT) weight. Figure 14E shows the effect of EXE RM LNC treatment on brown adipose tissue (BAT) weight. Data are presented as mean ± SEM (n = 9-10). Data with different superscripts are significantly different (P < 0.05). P values ​​were determined by one-way ANOVA followed by Tukey's post-hoc test. [Figure 14-2] Same as above. [Figure 15] Figures 15A-15B are a combination of histograms showing the effect of PEGylated nanocapsules (with or without propionate grafted as ligand) on the stimulation of GLP-1 in GLUTag cells (mouse L cells) and normoglycemic mice. The effect of PEGylated RM LNC (with or without propionate grafted as ligand) on the stimulation of GLP-1 in mouse GLUTag cells after 2 hours of co-incubation with increasing nanocapsule concentrations from 0.5 to 2 mg / mL (mean ± SEM; n = 4; N = 3). In each panel and at each concentration assayed, from left to right: medium, RM LNC, RM LNC PEG and RM LNC PEG-PRO are represented. Figure 15A(a) represents the total GLP-1 levels; Figure 15B(b) represents the extracellular total GLP-1 levels (expressed in pg / mL). [Figure 16] Figure 16 is a histogram showing total GLP-1 levels in healthy control mice 60 and 180 minutes after oral gavage with medium (black bars) as a control, RM LNC (dark grey bars), RM LNC PEG (light grey bars), and RM LNC PEG-PRO (white bars) using the same nanocapsule dose (1.62 mg / g) (mean ± SEM; n = 8). Different superscripts represent significant differences between groups based on one-way ANOVA followed by Tukey's post-hoc test (*p<0.05). [Figure 17-1]Figures 17A-17F are a combination of graphs and histograms showing pharmacological and pharmacokinetic studies in obese / diabetic mice after a single oral dose. Figure 17A: Blood glucose levels (mg / dL) and mean AUC (mg / dL min) were examined 30 min before and 120 min after glucose administration (n=7-8). HFD (black diamonds); EXE (squares); EXE RM LNC (inverted triangles); RM LNC PEG (triangles); EXE RM LNC PEG (gray diamonds). Figure 17B: Plasma total GLP-1 concentrations were measured 30 min before and 15 min after glucose administration (n=6-8). For the order of conditions, see insert in Figure 17A. Figure 17C: Active GLP-1 levels measured in the portal vein of obese / diabetic mice after OGTT (3 h after administration of the formulation) (n=6-8). Figure 17D: Insulin concentrations were measured in plasma collected from blood from the tail vein 30 min before and 15 min after oral glucose administration (n=6–8). For the order of conditions, see inserts in Figure 17A or Figure 17C. Figure 17E: Insulin resistance index (n=7–8). Figure 17F: Plasma exenatide concentration-time profiles and exenatide AUC (n=9–10) in diabetic mice (fed HFD for 10 weeks) after oral administration (dose: 500 μg / kg) of drug solution or drug-loaded PEGylated nanocapsules (EXE and EXE RM LNC PEG, respectively). Data are shown as mean ± SEM. Different superscripts represent significant differences between groups (*p<0.05) obtained by two-way analysis of variance (ANOVA) and Tukey's post-hoc test (Fig. 17A,F), Kruskal-Wallis test followed by Dunn's post-hoc test (Fig. 17B), or one-way ANOVA followed by Tukey's post-hoc test (Fig. 17C-E). [Figure 17-2] Same as above. [Figure 17-3] Same as above. [Figure 18]Figure 18A-C is a combination of graphs showing the effect of PEGylated EXE and non-PEGylated EXE loaded lipid nanocapsules at different oral dosing frequencies on suppressing hyperglycemia and hyperinsulinemia in diabetic mice induced by HFD diet through long-term treatment. Figure 18A: Plasma glucose levels (mg / dL) after 4 weeks of dosing (total of 14 weeks of HFD feeding) (mean ± SEM; n = 7-10). Figure 18B: Insulin concentrations were tested in plasma from blood collected from the tail vein (mean ± SEM; n = 6-9). Figure 18C: HOMA-IR was calculated using the formula [fasting glucose in mg / dL × fasting insulin in ng / mL] / 405 as previously defined by Amrutkar et al. (Diabetes. 2015; 64:2791-2804) (mean ± SEM; n = 8-9). Different superscripts indicate statistically significant differences between groups (*p<0.05) based on two-way ANOVA followed by Tukey's post-hoc test (FIG. 18A), or Kruskal-Wallis test followed by Dunn's post-hoc test (FIGS. 18B-C). [Figure 19-1] 19A-19G are a combination of graphs showing plasma glucose levels (mg / dL) (n=9-10) measured 30 min before and 120 min after the glucose test via nanostructured lipid carriers (NLC) (FIG. 19A) and mean area under the curve (AUC, mg / dL / min) (n=9-10) measured 30 min before and 120 min after the glucose test (FIG. 19B), plasma total GLP-1 levels (FIG. 19C-D), plasma insulin levels (FIG. 19E-F), and insulin resistance index (n=8-9) (FIG. 19G) measured 30 min before and 15 min after the glucose test. Data are presented as mean ± SEM (n=8-10). [Figure 19-2] Same as above. EXAMPLES

[0129] The invention is further illustrated by the following examples. Example 1: Working Example 1 1. Materials and Methods 1.1- Study Design The aim of this study was to develop a nanocarrier-based drug delivery system for oral delivery of an incretin mimetic peptide. Enhancement of endogenous GLP-1 secretion represents a more physiological and novel alternative in endocrine-based diabetes therapy. It was hypothesized that increasing endogenous GLP-1 secretion alone is not sufficient to induce a therapeutic effect in pathological situations. Thus, the focus was on designing a dual-action drug delivery nanosystem that offers a synergistic effect of its own bioaction (inducing endogenous GLP-1 secretion) and the action of an encapsulated incretin mimetic peptide (increasing the bioavailability of the peptide) as an alternative oral treatment for T2DM. The physicochemical properties of this novel nanosystem were characterized (size, zeta potential) and the encapsulation efficiency, stability, and release of the encapsulated peptide (exenatide) in a biomimetic medium in vitro were confirmed. The properties of the nanosystem itself in inducing the secretion of GLP-1 were evaluated in vitro in mouse and human cell lines, and in vivo in normoglycemic mice. Furthermore, pharmacokinetic studies were performed in normoglycemic mice, confirming the high bioavailability when encapsulated in the nanosystem compared to the peptide alone. After obtaining a proof of concept for the efficacy of the nanocarrier in inducing GLP-1, the utility of the dual-action nanosystem in reducing hyperglycemia was evaluated in diabetic and obese mice by acute treatment (one single dose) after 3, 8, or 10 weeks of HFD feeding, and the increased bioavailability of the peptide encapsulated in the nanosystem was confirmed in obese / diabetic mice. Finally, the impact of the nanosystem on glucose homeostasis and lipid metabolism was tested in an obese / diabetic mouse model by chronic long-term treatment (once a day for 5 weeks), confirming that the nanosystem represents a valid alternative to current strategies in the oral delivery of incretin peptides in the treatment of T2DM. For treatment and pharmacokinetic studies in obese / diabetic mice, 10 mice per group were used based on previous studies.All animal experiments were approved by and performed in accordance with the local animal committee (2014 / UCL / MD / 033 and 2017 / UCL / MD / 005) as specified by the Belgian law of 29 May 2013 on the protection of laboratory animals.

[0130] 1.2-Materials Exenatide was purchased from Bachem (Bubendorf, Switzerland). Labrafac® WL 1349 (caprylic / capric triglyceride) and Peceol® (oleic acid mono-, di-, and triglyceride) were purchased from Gattefosse (Saint-Priest, France). Lipoid® S 100 (soy lecithin at 94% phosphatidylcholine) was purchased from Lipoid GmbH (Ludwigshafen, Germany). Solutol® HS15 (mixture of free PEG 660 and PEG 660 12-hydroxystearate, Mw 870Da) and Span® 80 (sorbitan oleate) were purchased from Sigma-Aldrich (St. Louis, USA). Sodium chloride (NaCl), lecithin, sodium taurocholate, pepsin, 3-(4,5-dimethyl-thiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT), dimethyl sulfoxide (DMSO) and Triton-X 100 were purchased from Sigma-Aldrich (St. Louis, USA). Total GLP-1 (ver.2) assay kit and active GLP-1 assay kit were purchased from Meso Scale Discovery (Maryland, USA). Exendin-4 enzyme immunoassay kit was purchased from Phoenix Europe GmbH (Karlsruhe, Germany). Ultrasensitive Mouse Insulin ELISA Kit was purchased from Mercodia AB (Uppsala, Sweden). Matrigel® was obtained from BD Bioscience (Belgium). Dipeptidyl peptidase IV (DPP-IV) inhibitor was purchased from Millipore (St. Charles, USA).Dulbecco's Modified Eagle Medium (DMEM)-GlutaMAX (5.5 mM glucose), Roswell Park Memorial Institute (RPMI)-1640 medium, penicillin-streptomycin (P / S), fetal bovine serum (FBS), phosphate-buffered saline (PBS), and trypsin (0.25%) with ethylenediaminetetraacetic acid (EDTA, 0.02%) were also used and were purchased from Thermo Fisher Scientific (Invitrogen, Belgium). All chemical reagents utilized in this study were of analytical grade.

[0131] 1.3-Preparation and characterization of reverse micelle-loaded lipid nanocapsules Reverse micelle loaded lipid nanocapsules (RM LNC) were formulated in two steps, first encapsulating the drug in reverse micelles and then further encapsulating it in LNC. First, exenatide loaded reverse micelles (EXE RM) were prepared by high speed stirring of a mixture of surfactant (Span® 80) and oil (Labrafac® WL 1349) (1:5 weight ratio). Then, 50 μL of EXE (30 mg / ml in MilliQ water) was added dropwise to the mixture and kept stirring. Exenatide loaded reverse micelle lipid nanocapsules (EXE RM LNC) were prepared by a modified phase inversion process described in Heurtault et al. (Pharm Res. 2002; 19:875-880). Briefly, all ingredients (shown in Table 1), including lipophilic Labrafac® WL 1349, Peceol®, Lipoid® S100, Solutol® HS15, sodium chloride (NaCl) and MilliQ water, were mixed together by magnetic stirring at 40° C. and 200 rpm for 5 minutes.

[0132] [Table 1]

[0133] A progressive heating / cooling temperature cycle was performed from 50°C to 67°C. During the last cycle, 500 μL of pre-warmed drug-loaded RM was added to the mixture at approximately 3°C above the phase inversion zone (PIZ; 59°C to 61.5°C). The solution was cooled to reach the temperature of the phase inversion zone (PIZ) and 2.5 ml of chilled MilliQ water (4°C) was added and mixed at high speed for 2 min. Blank RM LNC was prepared by the same protocol in the absence of exenatide.

[0134] 1.4-Quantification of Exenatide Exenatide encapsulated in RM LNC was quantified by high performance liquid chromatography (HPLC, Shimadzu, Japan) using the gradient method previously described by Shrestha et al. (Nanoscale. 2018; 10:603-613). Briefly, a Kinetex® EVO C18 column (100 Å, 2.6 μm, 150×4.6 mm) (Phenomenex, USA) with a security guard column (Phenomenex, USA) was used at room temperature. The aqueous mobile phase contained 0.05 (v / v)% trifluoroacetic acid (TFA) in water, and the organic mobile phase consisted of 0.05 (v / v)% acetonitrile. A gradient system was developed with a flow rate of 1 mL / min, with the ratio initially 10:90 (v / v, aqueous phase:organic phase), linearly changed to 90:10 (v / v) for 10 min, and kept constant for the next 1 min. The ratio was then linearly changed to the initial composition over the next 1.5 minutes and stabilized for the final minute. The injection volume used was 20 μL and the detection wavelength used was 220 nm. The retention time was 5.9 minutes and the detection and quantification limits were 1.1±0.4 μg / mL and 3.3±1.1 μg / mL, respectively.

[0135] 1.5-EXE RM LNC Characterization EXE RM LNCs were characterized by measuring their particle size and polydispersity index (PDI) by dynamic light scattering (DLS) using a Zetasizer Nano ZS (Malvern Instruments Ltd., Worcestershire, UK). Zeta potential was determined by laser Doppler velocimetry (LDV) using a Zetasizer Nano ZS. For the measurements, 5 μL of lipid nanocapsule suspension was dispersed in 995 μL of ultrapure water. All measurements were performed in triplicate.

[0136] EXE RM LNCs were also characterized based on their drug encapsulation efficiency (EE, %). To calculate the total drug content, 50 μL of EXE RM LNCs were dissolved in 950 μL of methanol, followed by vigorous vortexing. Free and encapsulated exenatide were separated by ultrafiltration using Amicon® centrifugal filters (MWCO 30 kDa, 4000 g, 4° C., 20 min) (Millipore). The filtrate was further diluted using a dilution factor of 1:2. Exenatide in the filtrate and exenatide dissolved in methanol were quantified using the HPLC method described above. EE was calculated using the following formula: EE (%)=(total amount of exenatide-free exenatide) / (total amount of exenatide)×100.

[0137] 1.6- Stability and drug release of lipid nanocapsules in simulated gastrointestinal fluid The in vitro stability of EXE LNC was tested in five different biomimetic media: FaSSGF (Fasted State-Simulated Gastric Fluid) with and without pepsin, FaSSIF (Fasted State-Simulated Intestinal Fluid), FeSSIF (Fed State-Simulated Intestinal Fluid), and FeSSIF-V2 (FeSSIF version 2) (biorelevant.com, UK). A detailed description of the composition of the simulated body fluids used is presented in Table 2.

[0138] [Table 2]

[0139] The effect of gastric and intestinal conditions on the stability of lipid nanocapsules was evaluated based on the size and PDI of lipid nanocapsules. EXE RM LNCs were incubated in FaSSGF with and without pepsin, FaSSIF, FeSSIF, and FeSSIF-V2 at 37°C with gentle agitation (100 μL lipid nanocapsules in 10 mL medium). At predetermined time intervals (0, 0.5, 1, and 2 h for stimulated gastric medium, and 0, 0.5, 1, 3, and 6 h for stimulated intestinal medium and FeSSIF), samples were removed and then analyzed by DLS.

[0140] 1.7-In vitro drug release test Drug release from EXE RM LNC was evaluated in FaSSGF and FaSSIF media in the absence of pepsin for 2 and 6 hours, respectively. The test was performed using dialysis method. Briefly, 1 mL of EXE RM LNC was placed on a disposable dialysis membrane (MWCO 100 kDa) (Float-A-Lyzer® G2, Microfloat, Spectrum labs, USA) and introduced into a 50 ml Falcon tube containing 35 ml of medium at 37°C under magnetic stirring. At the designated times, 50 μL of sample was removed and dissolved in 950 μL of methanol. The concentration of exenatide was determined by HPLC as described above.

[0141] 1.8-In vitro cell testing 1.8.1-Cell culture The human NCI-H716 L cell line was obtained from the American Type Culture Collection (ATCC) (Manassas, VA) and used at passages 15–20. Complete medium consisted of Roswell Park Memorial Institute (RPMI) 1640 medium containing 1 (v / v)% penicillin-streptomycin (P / S) and 10 (v / v)% fetal bovine serum (FBS). Cells were cultured at 37°C and 5 (v / v)% CO 2 / 75 cm in 95 (v / v)% air atmosphere 2 The cells were suspended and grown in 100 mL flasks (Corning, Lowell, MA, USA). Every other day, some fresh medium was added. After changing the medium, the cultures were centrifuged and then resuspended at the appropriate density.

[0142] GLUTag cells, a murine L cell line of the digestive system, were used at passages 16–29. Cells were cultured in DMEM GlutaMAX (5.5 mM glucose) (complete DMEM medium) supplemented with 10 (v / v)% inactivated FBS and 1 (v / v)% P / S at 37 °C for 24 h at 5% CO. 2 Cells were grown at 37°C while being fed with 0.02% EDTA. Cells were subcultured every 4-5 days using trypsin (0.25%) containing EDTA (0.02%).

[0143] Caco-2 cells (clone 1) were used at passages 25–30. The Caco-2 cell line was cultured in a medium consisting of DMEM supplemented with 10 (v / v)% HyClone™ FBS, 1 (v / v)% L-glutamine, 1 (v / v)% non-essential amino acids, and 1 (v / v)% P / S at 10 (v / v)% CO. 2 The cells were maintained in an atmosphere of 5% CO2 / 95% (v / v) air at 37° C. The medium was changed every other day.

[0144] 1.8.2-Cytotoxicity Testing In vitro cytotoxicity testing of EXE RM LNCs was performed in Caco-2 cells based on the drug and lipid nanocapsule concentrations calculated as described above using a 3-(4,5-dimethylthiazol-2-yl)-(2,5-diphenyltetrazolium bromide) (MTT) colorimetric assay (Beloqui et al., Journal of Controlled Release. 2013; 166, 115-123). The effect of unloaded RM LNCs on cell viability was also tested in GLUTag and NCI-H716 cells. Caco-2 cells (5 × 10 4 5 × 10 cells / well) were seeded in 96-well tissue culture plates (Costar Corning CellBIND Surface, USA) and allowed to adhere overnight. For cytotoxicity studies in GLUTag and NCI-H716, 5 × 10 4 Cells / well were seeded in Matrigel®-coated (10 μL / mL medium) 96-well plates. After washing the plates (×3) with pre-warmed PBS buffer, 100 μL of EXE RM LNCs with increasing drug concentrations (0.5-10 mg / mL) corresponding to increasing lipid nanocapsule concentrations (2-18 mg / mL) were dispersed in DMEM (without FBS) and co-incubated with Caco-2 cells for 2 h at 37°C. Increasing concentrations of unloaded RM LNCs (1 mg / ml to 10 mg / ml) were dispersed in DMEM GlutaMAX or RPMI-1640 medium (without FBS) and co-incubated with GLUTag or NCI-H716 cells, respectively, for 2 h at 37°C. After incubation, the supernatant was replaced with 100 μL of 0.5 mg / ml MTT for 3 h. Purple formazan crystals were dissolved in 200 μL of DMSO for determination of absorbance at 560 nm using a MultiSksan EX plate reader (Thermo Fisher Scientific, USA). Cells with Triton-X 100 (100% dead) and cells with culture medium (100% alive) were considered as positive and negative controls, respectively. The test was performed in triplicate.

[0145] 1.9-In vitro secretion of GLP-1 GLUTag cells and NCI-H716 cells (1.8 × 10 5 Cells / well) were seeded on Matrigel®-coated 24-well cell culture plates and allowed to adhere for 24 hours. The next day, the plates were gently washed using pre-warmed PBS. GLUTag cells were then co-incubated with DMEM GlutaMAX without FBS or unloaded RM LNCs. On the other hand, NCI-H716 cells were incubated with RPMI-1640 medium without FBS and unloaded RM LNCs. Both media contained DPP-IV inhibitors at a final concentration of 50 μM (Millipore, St. Charles, MO, USA). To confirm the efficiency of lipid nanocapsules compared to previously tested lipid nanocapsules (Xu et al., Mol Pharm. 2018; 15, 108-115), we used a lipid nanocapsule concentration of 2 mg / ml. After 2 h incubation at 37°C, the supernatant was collected, centrifuged at 250g for 5 min at 4°C (Centrifuge 5804 R, Eppendorf AG, Hamburg, Germany) and stored at -80°C until further analysis. Cells were harvested in PBS in the presence of DPP-IV inhibitors. Cell extracts containing GLP-1 were obtained after three freeze-thaw cycles and then centrifuged at 250g for 5 min at 4°C. The concentration of total GLP-1 was determined using a Total GLP-1 ELISA kit (Meso Scale Delivery, Gaithersburg, USA). GLP-1 secretion is expressed as the amount of GLP-1 detected in the supernatant + cells. GLP-1 secretion was calculated by the following formula: GLP-1 secretion = C extracellular / (C intracellular +C extracellular )(wherein, C extracellular is the concentration of GLP-1 tested in the supernatant, and C intracellular is the concentration of GLP-1 tested in the cells).

[0146] 1.10- Total GLP-1 secretion in normoglycemic mice Normoglycemic mice (male C57BL / 6J mice, 20–25 g, 10 weeks old; Janvier Laboratories, France) were randomly divided into two groups containing eight mice each. The animals were fasted overnight and then the experiment was performed with free access to water. Mice were treated with blank RM LNCs, corresponding to a nanoparticle dose of approximately 1.62 mg / g. Control mice were treated by oral gavage with an equal volume of MilliQ water. Blood samples were taken from the tip of the tail vein 60 and 180 min after oral administration. Samples were collected in the presence of DPP-IV inhibitor (20 μL per ml of blood) and kept on ice. Immediately after the test, blood samples were centrifuged (3,000 rpm, 10 min at 4°C) and plasma was frozen at −80°C until analysis. Total GLP-1 levels were quantified using a Total GLP-1 ELISA kit (Meso Scale Delivery, USA). Total GLP-1 plasma levels are expressed as fold change compared to the untreated control group.

[0147] 1.11-Oral glucose tolerance test in high-fat diet-induced obese / diabetic mice Eight-week-old male mice were housed five per cage and divided into five groups (10 mice per group). After 2 weeks of acclimation, mice were fed a high-fat diet (60% fat, 20% carbohydrate (kcal / 100g), D12492i, Research Diets, USA) (HFD-treated and exenatide-treated groups) or a normal chow diet (control, AIN93Mi, Research Diets, USA) for 3, 8, or 10 weeks before the experiment and fasted overnight before being treated with oral exenatide solution (EXE, 500 μg exenatide / kg body weight), lipid nanocapsules loaded with exenatide reverse micelles (EXE RM LNC, 500 μg exenatide / kg body weight), or lipid nanocapsules loaded with unloaded micelles (RM LNC, concentration equivalent to EXE RM LNC) for 1 h and then tested using oral glucose gavage. Control groups (control diet and HFD groups) were treated by oral gavage with an equal volume of sterile MilliQ water. After 1 h, mice were challenged with oral glucose gavage (2 g / kg glucose dose). Blood glucose was measured 30 min before (-30 min) and at 0, 15, 30, 90, and 120 min after the oral glucose load. Blood glucose was determined from blood samples collected from the tip of the tail vein using a glucose meter (Accu Check, Roche, Switzerland). Blood samples were collected at -30 and 15 min and tested for plasma concentrations of total GLP-1 and insulin by ELISA kits (Meso Scale Delivery, USA and Mercodia, Uppsala, Sweden, respectively). Insulin resistance index was determined by multiplying the areas under the curve of blood glucose and insulin in the plasma obtained by the oral glucose tolerance test (OGTT).

[0148] 1.12-Pharmacokinetic studies in normoglycemic and obese / diabetic mice Eight-week-old male mice were randomly divided into three groups (10 mice per time point) and housed in a controlled environment (room temperature 23±2°C, 12-h light / dark cycle) with free access to food and sterile water. After 2 weeks of acclimation, mice were fed a HFD (60% fat) for 3 weeks. Before the experiment, mice were fasted overnight with free access to sterile Milli-Q water. Exenatide solution and EXE RM LNC were administered orally at a dose of 500 μg / kg. Exenatide was also administered subcutaneously at a dose of 50 μg / kg. Blood samples were collected from the tip of the tail vein at different time points (0, 0.5, 1, 1.5, 2, 4, 6, and 8 hours). The blood samples were then centrifuged (1500 g, 10 min at 4° C.) and the plasma concentration of exenatide was quantified using an ELISA kit (EK-070-94, Phoenix Europe GmbH, Karlsruhe, Germany). The relative bioavailability (FR%) of exenatide was calculated according to the following formula:

number

[0149] Pharmacokinetic parameters were analyzed using PKSolver (Zhang et al., Comput Methods Programs Biomed. 2010; 99, 306-314). In the case of normoglycemic mice, four mice per time point were used instead. Exenatide was measured under the same conditions.

[0150] 1.13-Long-term treatment study of chronic exenatide in obese / diabetic mice Eight-week-old male mice were randomly divided into seven groups (10 mice per group) and housed five per cage in a controlled environment (room temperature 23°C ± 2°C, 12-h light-dark cycle) with free access to a sterile diet (AIN93Mi; Research diet) and sterile water. After a 2-week acclimation period, mice were fed a HFD (60% fat and 20% carbohydrate (kcal / 100g), D12492i, Research Diets, USA) (exenatide-treated groups) or a normal chow diet (control) for 8 weeks. After this period, mice body weights were recorded daily and glycemia was monitored once a week during the subsequent 5-week treatment period. Mice were treated daily at 4 pm with (i) exenatide solution or exenatide encapsulated in RM LNC (500 μg / kg dose) (EXE RM LNC) or corresponding concentration of unloaded RM LNC or (ii) exenatide solution (10 μg / kg) or subcutaneously as Byetta® (10 μg / kg) (commercially available exenatide subcutaneous injection). Control groups (healthy and HFD) were treated daily orally with an equal volume of sterile MilliQ water. Before glucose testing, mice were fasted for 6 hours once a week. At the end of the treatment period, animals were anesthetized with isoflurane (Forene, Abbott, England) and blood was sampled from the portal vein and vena cava. After exsanguination, mice were euthanized by cervical dislocation. Subcutaneous adipose tissue, liver, and spleen were precisely dissected, weighed, immediately immersed in liquid nitrogen, and then stored at -80°C for further analysis or in 4% paraformaldehyde (PFA) for histological analysis (liver).The effects on body composition and adipose tissue were assessed by weight (mg) of subcutaneous adipose tissue (SAT), epididymal adipose tissue (EAT), visceral adipose tissue (VAT), and brown adipose tissue (BAT).Levels of glucose and gut hormones involved in food intake and body weight, including total GLP-1 (ELISA kit, Meso Scale Delivery, Gaithersburg, USA) and insulin (Ultrasensitive insulin ELISA, Mercodia, Uppsala, Sweden), were measured in peripheral and portal blood. Fatty liver was visualized by Oil Red O staining. Liver tissue was embedded in Tissue-Tek Optimal Cutting Temperature compound (Sakura Europe, Leiden, Netherlands) and flash-frozen in chilled isopentane. Five-μm-thick tissue sections were stained with Oil Red O stain for analysis of fat content. Five high-power fields (20×) per mouse were analyzed. Quantification of the mean droplet area was performed using ImageJ software (Version 2.0.0-rc-69 / 1.52i, National Institutes of Health, Bethesda, Maryland, USA). The overall morphology of the liver was assessed by hematoxylin and eosin (H&E) stained sections. For real-time quantitative PCR (qRT-PCR) analysis, total RNA was isolated from tissues using TriPure reagent (Roche). Complementary DNA was prepared by reverse transcription of 1 μg of total RNA using the Reverse Transcription System kit (Promega, Madison, Wisconsin, USA). Real-time PCR was performed with a CFX96 real-time PCR system and CFX Manager 3.1 software (Bio-Rad, Hercules, California, USA) using GoTaq® qPCR Master Mix (Promega, Madison, USA) for detection according to the manufacturer's instructions. Ribosomal protein L19 (Rpl19) was selected as a housekeeping gene. All samples were run in duplicate in two 96-well reaction plates and data were analyzed by the 2-ΔΔCT method. The identity and purity of the amplified products were assessed by melting curve analysis at the end of the amplification.Primer sequences for the mouse genes of interest are presented in Table 3.

[0151] [Table 3]

[0152] Total lipids were measured after extraction with chloroform-methanol by the Folch method (Biol Chem. 1957; 226, 497-509) modified as described above by (Everard et al., Nat Commun. 2019; 10, 457). Triglyceride and cholesterol concentrations were measured using kits coupling enzymatic reactions with spectrophotometric detection of the end products (Diasys Diagnostic and System, Holzheim, Germany). All samples were performed in duplicate.

[0153] 1.14-Statistical analysis Statistical analysis was performed using the GraphPad Prism 7 program (CA, USA). For all analyses and in each group, all exclusions were supported by the use of the Grubbs test for the detection of outliers. Values ​​were normalized by logarithmic transformation if variances were significantly different between groups before performing the analysis. Two-way or one-way ANOVA followed by Tukey's post hoc test was applied for comparisons between multiple groups. Nonparametric tests were performed if variances were significantly different between groups even after normalization. The results are expressed as mean ± standard error of the mean (SEM). Differences of P < 0.05 were considered statistically significant.

[0154] 2. Results and Discussion 2.1-Exenatide has been successfully encapsulated and preserved in lipid-based lipid nanocapsules. Recently, it was discovered that lipid-based lipid nanocapsules (LNCs), presenting a size of approximately 200 nm, led to the secretion of endogenous GLP-1 in mice in vivo (Xu et al., Mol Pharm. 2018; 15, 108-115). It was not known whether it might be feasible to provide a synergistic biological effect of LNCs with the pharmacological action of the encapsulated GLP-1 analogue. Thus, as a proof of concept, the GLP-1 analogue exenatide (EXE), a hydrophilic molecule, was chosen as an incretin mimetic to be encapsulated in LNCs. To evaluate this possibility, it was important to encapsulate exenatide within the liquid lipid core of the lipid nanocapsules while preserving the physicochemical characteristics of the nanocarrier that contribute to the in vivo biological effect (e.g., leading to the secretion of endogenous GLP-1) observed with the lipid nanocapsules themselves (Xu et al., Mol Pharm. 2018; 15, 108-115). LNCs were prepared by a phase inversion process (Heurtault et al., Pharm Res. 2002; 19, 875-880). Compared to a previously described approach used to prepare LNCs (Xu et al., Mol Pharm. 2018; 15, 108-115), the inner oily core was replaced with a mixture of caprylic / capric triglycerides (Labrafac® WL 1349) and oleic acid mono-, di-, and triglycerides (Peceol®). This variation allowed for a reduction in the temperature cycle, from 60°C-90°C to 50°C-67°C in a gradual heating / cooling cycle, allowing the incorporation of EXE into the LNCs. Prior to encapsulation into LNCs, EXE was driven into reverse micelles (RMs) using a surfactant-oil combination composed of a mixture of sorbitan oleate (Span® 80) and caprylic / capric triglyceride (Labrafac® WL 1349) (Anton et al., Int J Pharm. 2010; 398, 204-209). These EXE RMs were then incorporated into the formulation during the final cycle of the LNC preparation process.The final composition of the formulation is set out in Table 1 above, and the physicochemical characterization is detailed in Table 4.

[0155] [Table 4]

[0156] The mean particle size of both EXE RM LNC and lipid nanocapsules encapsulating peptide-free RM (RM LNC) was about 220 nm. The small PDI index (PDI<0.2) indicated the uniformity of the obtained lipid nanocapsules in terms of particle size distribution. In addition to the size and PDI, the surface charge of the lipid nanocapsules after encapsulation of exenatide was not significantly affected (P>0.05). Notably, EXE RM LNC exhibited an encapsulation efficiency of about 85%.

[0157] The lipid nanocapsules remained stable in vitro in biomimetic gastrointestinal fluids, preventing exenatide degradation (Figure 1). The stability of the lipid nanocapsules was confirmed in five biomimetic media (FaSSGF, FaSSIF, FeSSIF, and FeSSIF-v2 with or without pepsin, respectively) containing simulated gastric or intestinal fluids in fasted and fed states (Figure 1A-E). These results confirmed that the newly developed lipid nanocapsules retained the same gastroresistant properties as the conventional lipid nanocapsules previously described (Xu et al., Mol Pharm. 2018; 15, 108-115; Roger et al., Int J Pharm. 2009; 379, 260-265). The in vitro release profile of exenatide was further evaluated in gastric medium (FaSSGF without pepsin, pH 1.6) and intestinal medium (FaSSIF, pH 6.5) (Figure 1A-F). Exenatide was released progressively from RM LNCs over a 6-h period, achieving 60% cumulative exenatide release after this time in FaSSIF but was undetectable in FaSSGF (Figure 1F).

[0158] 2.2-RM LNC induces GLP-1 secretion and increases circulating levels of EXE both in vitro and in vivo in normoglycemic mice. First, the properties of RM LNCs on their ability to induce GLP-1 secretion were investigated in vitro in both mouse L cells (GLUTag cells) and human L cells (NCl-H716) (Figure 2A). RM LNCs with a particle size of approximately 220 nm were able to induce endogenous GLP-1 secretion in both in vitro models (Figure 2A). Importantly, although additional liquid lipids were incorporated into the inner core of RM LNCs, the stimulation of GLP-1 secretion was comparable to that previously described for lipid nanocapsules containing a core of caprylic / capric triglyceride (Xu et al., Mol Pharm. 2018; 15, 108-115). Thus, these data confirmed that it was possible to maintain the properties of nanocarriers to induce GLP-1 secretion by preserving the external physicochemical properties of the nanosystem (e.g., surface charge).

[0159] We further investigated whether RM LNCs could induce GLP-1 secretion in normoglycemic mice in vivo (Figure 2B). Notably, oral administration of RM LNCs was observed to increase GLP-1 levels up to approximately three-fold, thus preserving the pharmacological effect in vivo (Figure 2B). Thus, the pharmacological effect of the nanocarriers was reproduced in vitro in both cell lines regardless of the nature of the cells (mouse or human) and in vivo in normoglycemic mice.

[0160] To test the hypothesis that RM LNCs not only induce endogenous secretion of GLP-1 but also act in a dual role as nanocarriers for oral delivery of incretin mimetic peptides, the properties of nanocarriers that increase the absorption of these peptides were evaluated. For this purpose, the plasma concentration of exenatide was measured after oral administration as an aqueous solution or as a solution encapsulated in RM LNCs (500 μg / kg exenatide dose). Plasma levels of exenatide were higher when encapsulated in RM LNCs than when delivered as free exenatide in solution (Figure 3). Taken together, these data confirmed the hypothesis regarding the efficacy of RM LNCs to increase endogenous GLP-1 levels and increase plasma levels of EXE, thus enabling the absorption of peptides.

[0161] Furthermore, no evidence of EXE RM LNC cytotoxicity could be observed in human intestinal epithelial Caco-2 cells after increasing drug concentrations of 0.5-10 mg / mL (Figure 4A) or nanoparticle concentrations of 2-18 mg / mL (Figure 4B). Cytotoxicity of RM LNC in GLUTag and NCI-H716 cells is described in Figure 4C and Figure 4D, respectively.

[0162] 2.3-The combination of increased plasma levels of exenatide and release of endogenous GLP-1 improves glycemia in diabetic mice. The therapeutic relevance of nanocarrier-mediated combination of endogenous GLP-1 levels with increased EXE plasma concentrations was evaluated in a diet-induced obese / diabetic mouse model. EXE RM LNCs were administered as an acute treatment (one single dose) in a high fat diet (HFD)-induced T2DM model (C57BL / 6J) in mice. Initially, it was observed that HFD mice were significantly hyperglycemic and hyperinsulinemic in the fasted state and exhibited a strong degree of insulin resistance (e.g., indices of insulin resistance).

[0163] A single oral dose of 500 μg / kg exenatide (free and encapsulated in RM LNC) and equivalent concentrations of RM LNC or water were administered 60 min prior to oral glucose challenge (2 g / kg). Surprisingly, we found that treatment with EXE RM LNC completely normalized glycemia, as the glycemia of these mice followed the same profile throughout the overall oral glucose test as observed in lean euglycemic control mice (Figure 5). Conversely, glucose levels measured in mice treated with EXE remained similar to those in mice fed a HFD at 30 min and remained higher than those in mice treated with EXE RM LNC up to 90 min (Figure 5). EXE RM LNC was able to significantly reduce plasma glucose levels and the area under the curve (AUC) of glucose (Figure 6). Importantly, total GLP-1 levels were observed to be significantly increased in both RM LNC and EXE RM LNC treated groups compared to the control groups (control and HFD), confirming the property of the nanosystem itself to stimulate the release of GLP-1 under pathological conditions. However, only EXE RM LNC significantly reduced the insulin resistance index compared to the HFD group (Figure 7).

[0164] Interestingly, RM LNC alone had the effect of lowering blood glucose levels compared to untreated HFD mice. However, this effect was not sufficient to reduce hyperglycemia. Pharmacokinetic studies measuring exenatide levels in HFD mice confirmed that exenatide blood levels were significantly increased when orally administered in RM LNC (EXE RM LNC) compared to exenatide solution (4.32% relative bioavailability to LNC, P<0.001). This relative bioavailability is valuable and considered a significant improvement, given that known peptides in late-stage development have an estimated bioavailability of 0.5-1%. Calculated pharmacokinetic parameters are summarized in Table 5.

[0165] [Table 5]

[0166] We investigated the different pharmacokinetic profiles of exenatide (e.g., different C max ,A.U.C.,T. max ) were observed. Taken together, the increased blood levels of exenatide and the increased endogenous GLP-1 levels, these data serve as a strong proof of concept for the efficacy of the developed nanosystem for the amelioration of T2DM symptoms.

[0167] The effects of EXE vs. EXE RM LNC were further investigated in mice treated with HFD for 8 and 10 weeks, as this model is a more robust model of diet-induced diabetes and metabolic disorders in mice. Comparable results were obtained regarding the efficacy of EXE RM LNC in reducing blood glucose levels during OGTT, regardless of the chronicity of the disease (Figure 9A-B).

[0168] 2.4- Chronic EXE RM LNC treatment improves glucose metabolism in obese and diabetic mice. To evaluate the effect of chronic and long-term treatment with EXE RM LNC on glucose metabolism, obese / diabetic prone mice were subjected to a HFD for 8 weeks, followed by a HFD for 5 weeks with daily administration of 500 μg / kg exenatide (oral) (EXE RM LNC) or an equivalent amount of unloaded lipid nanocapsules (RM LNC) or free exenatide in solution (EXE) or water. To compare the effects of this experimental treatment with existing treatment strategies, a group treated with a commercially available subcutaneous dosage form of exenatide (Byetta®) was also included. Oral administration of exenatide was compared to subcutaneous administration (sc) of 10 μg / kg exenatide solution or Byetta®.

[0169] After 5 weeks of daily treatment, mice were sacrificed and blood was withdrawn from the portal vein and vena cava. Interestingly, after 5 weeks of treatment, only EXE RM LNC was able to reduce plasma glucose levels to reach levels comparable to those of the control group (Figure 10A-B). It is noteworthy to mention that mice treated with EXE RM LNC had significantly lower plasma glucose levels than mice treated with RM LNC. Plasma glucose levels were also significantly lower in the RM LNC group than in the EXE-treated group. Thus, these data represent a synergistic effect provided by EXE RM LNC on glucose homeostasis. This effect is probably due to a combination of the secretion of endogenous GLP-1 induced by RM LNC and the increase in plasma levels of exenatide. Moreover, mice treated with EXE RM LNC and mice treated by subcutaneous administration exhibited insulin levels comparable to the control group (Figure 11). This reduction compared to the HFD group did not reach statistical significance when the data were analyzed by Kruskal-Wallis test followed by Dunn's post hoc test, but a significant difference was found when analyzed by Mann-Whitney test (P=0.04 for EXE RM LNC vs. HFD).

[0170] Chronic treatment with 2.5-EXE RM LNC reduces diet-induced hepatic steatosis in obese / diabetic mice. We found that liver weight was significantly lower only in the EXE RM LNC-treated group after 5 weeks of treatment (13 weeks of HFD feeding) compared to the HFD-fed group (Figure 12). Histological analysis after Oil Red O staining revealed a marked reduction in hepatic steatosis, as evidenced by lower hepatic lipid accumulation and fewer and smaller lipid droplets in mice treated with EXE RM LNC than in HFD mice (data not shown).

[0171] Despite the slight effect on triglyceride levels, total lipid content and cholesterol levels in the liver were comparable between mice treated with EXE RM LNC and those treated subcutaneously and were significantly lower than the levels in the HFD group (Figure 13A-C).

[0172] It is very important to note that the present approach using EXE RM LNC was more efficient in reducing liver weight than all other treatments and as efficient as the marketed drug by the usual route of administration (sc), thus clearly showing a favorable effect on glucose parameters and non-inferiority in liver markers compared to the current subcutaneous administration approach.

[0173] In addition to biochemical and histological analyses, key markers related to infiltration / recruitment of immune cell populations (F4 / 80, Cd11c, McP1), inflammation (Tnfa) and lipid metabolism (Fasn, Pparg, Cpt1a) were analyzed by quantitative PCR in liver and visceral adipose tissue (VAT). In liver, Cd11c and McP1 mRNA expression in mice treated with EXE RM LNC was significantly lower than in the HFD group (P=0.05 and P=0.0355, respectively), and the same effect was observed in the Byetta®-treated group (P=0.0015 and P=0.0007, respectively).

[0174] Visceral fat mass is considered a risk factor for the development of liver disease and insulin resistance (Perseghin, Diabetes Care. 2011; 34 Suppl 2, S367-370; Lebovitz & Banerji, Diabetes Care. 2005; 28, 2322-2325). It was found that both EXE RM LNC-treated and Byetta®-treated groups exhibited less fat than HFD-fed mice, and that the fat mass of these groups was not significantly different from that of the untreated control group (Figure 14A-E). These weights were highly significantly different when analyzed by Mann-Whitney test (P=0.0057 for EXE RM LNC vs. HFD and P=0.0004 for Byetta® vs. HFD). Interestingly, the high expression of F4 / 80 observed in the HFD group was significantly downregulated only in mice treated with EXE RM LNC by ANOVA. No significant effect was observed for other markers (Cd11c, Mcp1, Fasn, Pparg, Tnfa) when compared to the HFD group.

[0175] 2.6 - Discussion Despite many ongoing attempts, the translation of injectable therapeutics for T2DM into oral drug delivery strategies remains a challenge. As a result, current treatments with marketed GLP-1 analogs are still exclusively administered subcutaneously. Trials aimed at providing alternative drug delivery systems for peptides are paramount to fully exploit the promise of the oral administration route. However, current state-of-the-art strategies for oral peptide delivery use the delivery system simply as a vehicle, and they do not explore the possibility that the carrier may have additional therapeutic effects in the final formulation. In the context of incretin-based diabetes disease treatment, enhanced secretion of endogenous GLP-1 represents a novel alternative treatment that more closely resembles the physiological function of peptides. Here, a lipid-based drug delivery system, namely lipid nanocapsules, is provided that has a dual therapeutic effect on (i) the delivery of encapsulated synthetic GLP-1 analogs and (ii) the stimulation of secretion of endogenous GLP-1.

[0176] One of the main challenges in the development of this delivery system was to encapsulate a hydrophilic peptide in the lipid core while preserving the physicochemical properties of the lipid nanocapsules. For this purpose, exenatide was first entrapped in reverse micelles, which were then themselves incorporated into the inner lipid core of the lipid nanocapsules. This strategy allowed encapsulation of GLP-1 mimetics in lipid-based nanocarriers while leaving their structure unchanged and retaining their effect on L-cell activation, thus inducing the secretion of endogenous GLP-1.

[0177] The properties of exenatide-loaded lipid nanocapsules inducing secretion of GLP-1 were confirmed in both mouse and human L cells in vitro and in normoglycemic mice in vivo (Figure 2A-B). Furthermore, we performed pharmacokinetic studies to confirm the absorption of exenatide into the systemic circulation (Figure 3). Evidence of the stability of the formulation, the properties of the nanosystem to preserve the integrity of the peptide, its properties to increase GLP-1 levels in vivo while allowing the absorption of the peptide into the systemic circulation, and finally the efficacy of the formulation in the pathological context of a HFD-induced obese / diabetic mouse model are provided herein.

[0178] The utility of our dual-action nanosystem to improve glycemia in obese / diabetic mice in vivo by acute treatment was first evaluated. After a single acute administration followed by OGTT test, mice treated with EXE RM LNC normalized blood glucose levels, which were comparable to those of the control group. It was observed that empty lipid nanocapsules and lipid nanocapsules loaded with EXE presented increased GLP-1 levels compared to untreated groups or groups treated with EXE solution, whereas only mice treated with EXE RM LNC exhibited a significant decrease in insulin resistance index. Pharmacokinetic analysis of obese / diabetic mice confirmed that EXE RM LNC increased the bioavailability of exenatide by more than 4%. These data provide evidence of the efficacy of the dual-action drug delivery nanosystem in ameliorating glycemia by combining both increased endogenous GLP-1 levels and increased peptide bioavailability.

[0179] To show that this nanosystem represents an alternative to current subcutaneous dosing strategies for the delivery of incretin peptides in the treatment of T2DM, chronic / chronic treatment consisting of a daily dosing protocol for 5 weeks was performed. The effect of the nanosystem on glucose homeostasis and lipid metabolism was evaluated. After 5 weeks of treatment, mice treated with EXE RM LNC exhibited normalized plasma glucose levels comparable to those of untreated control mice, along with reduced insulin levels. Thus, the observed beneficial effects are not limited to the acute effects of the nanocarriers, but also translate to a therapeutic effect on oral glucose tolerance.

[0180] In summary, exenatide-loaded lipid nanocapsules were effective in reducing both hyperglycemia and hyperinsulinemia.

[0181] It is noteworthy that this approach produced results on glucose homeostasis comparable to those observed with currently marketed drugs administered subcutaneously, thus demonstrating the non-inferiority of this approach with the advantage of being administered orally over chronic treatment.

[0182] These data also point to a strong trend towards less significant markers related to infiltration-recruitment of immune cell populations (macrophages, dendritic cells) and inflammatory markers in both liver and visceral adipose tissue, again highlighting the useful effect of this approach on such markers. F4 / 80 is a marker of infiltration of inflammatory cells (mature macrophages), while Cd11c, Mcp1, and Tnfa are known to reflect the M1 macrophage phenotype during obesity-associated inflammation. It is important to note that EXE RM LNC was the only treatment that significantly reduced gene expression of F4 / 80 in visceral adipose tissue. In obesity, macrophage infiltration in adipose tissue leads to chronic inflammation and is considered to be a triggering factor for insulin resistance and diabetes (Weisberg et al., Clin Invest. 2003; 112, 1796-1808). However, ablation of macrophages in mice was associated with normalization of glucose homeostasis (Hernandez et al., Cell Metab. 2014; 20, 499-511). From a mechanistic perspective, we have previously shown that RM LNCs increase secretion of GLP-1, and possibly the co-peptide GLP-2, which has been shown to reduce bacterial compound translocation, inflammation, and hepatic steatosis in obese rodents by enhancing intestinal barrier function (Cani et al., Gut. 2009; 58, 1091-1103).

[0183] Without wishing to be bound by theory, daily oral gavage with either EXE RM LNC or RM LNC may stimulate the production of gut peptides throughout the day, thus contributing to maintaining a good metabolic profile in HFD-fed mice. In all cases, daily chronic administration is sufficient to improve metabolism and even normalize other markers. Finally, lipid nanocapsules may regulate the activity of DPP-IV, thus maintaining increased levels of total circulating GLP-1 in the body.

[0184] Example 2: Working Example 2 1. Materials and Methods 1.1-Materials Exenatide (exenatide acetate) (EXE) was purchased from Bachem® (Bubendorf, Switzerland). Labrafac® WL 1349 (caprylic / capric triglyceride) and Peceol® (oleic acid mono-, di-, and triglyceride) were kindly provided by Gattefosse (Saint-Priest, France). Lipoid® S 100 (soy lecithin at 94% phosphatidylcholine) was a gift from Lipoid GmbH (Ludwigshafen, Germany). Solutol® HS15 (mixture of free PEG 660 and PEG 660 12-hydroxystearate, Mw 870 Da) and Span® 80 (sorbitan oleate) were purchased from Sigma-Aldrich (St. Louis, USA). 1,2-Distearoyl-sn-glycero-3-phosphoethanolamine-methoxyl poly(ethylene glycol) 2000 (DSPE-PEG 2000 -CH 3 ), 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-[poly(ethylene glycol)-2000]-propionate (DSPE-PEG 2000 -CH 2 -CH 2-COOH) was obtained from Nanosoft Polymers (Winston-Salem, USA). Lecithin, sodium chloride (NaCl), saponin, pepsin, Triton-X 100, sodium taurocholate and dimethyl sulfoxide (DMSO), 3-(4,5-dimethyl-thiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) were purchased from Sigma-Aldrich (St. Louis, USA). Total GLP-1 (ver.2) assay kit and active GLP-1 assay kit were purchased from Meso Scale Discovery (Maryland, USA). Exendin-4 enzyme immunoassay kit was purchased from Phoenix Europe GmbH (Karlsruhe, Germany). Ultrasensitive Mouse Insulin ELISA Kit was purchased from Mercodia AB (Uppsala, Sweden). Matrigel™ was obtained from BD Bioscience (Belgium). Dipeptidyl peptidase IV (DPP-IV) inhibitor was purchased from Millipore (St. Charles, USA). Dulbecco's modified Eagle's medium (DMEM)-GlutaMAX (5.5 mM glucose), fetal bovine serum (FBS), penicillin-streptomycin (P / S), trypsin (0.25%)-EDTA (0.02%), and phosphate-buffered saline (PBS) were also used and were purchased from Thermo Fisher Scientific (Invitrogen, Belgium). DiD (DiIC18(5)solid (1,1'-ioctadecyl-3,3,3',3'-tetramethylindodicarbocyanine, 4-chlorobenzenesulfonate salt)) was obtained from Thermo Fisher Scientific (Invitrogen, UK). All chemical reagents utilized in this study were of analytical grade.

[0185] 1.2- Preparation and characterization of non-targeted and targeted nanoparticles 1.2.1-Preparation of non-targeted and targeted lipid-based nanosystems The non-targeted lipid nanosystem (EXE RM LNC) including exenatide encapsulated reverse micelles (EXE RM) and modified lipid nanocapsules (LNC) was prepared as described in Example 1. First, exenatide encapsulated reverse micelles (EXE RM) were prepared by stirring a mixture of Span® 80 (surfactant) and Labrafac® WL 1349 (oil) at a ratio of 1:5 w / w under high speed. During stirring, 50 μL of drug solution (30 mg / mL exenatide in MilliQ water) was added dropwise to the mixture. Second, LNC was produced by a slightly modified phase inversion process. A mixture of 769.5 mg Labrafac® WL 1349, 85.5 mg Peceol®, 13.4 mg Lipoid® S100, 120 mg Solutol® HS15, 50 mg sodium chloride (NaCl), and 1.025 mL MilliQ water was stirred at 200 rpm for 5 min. Three progressive heating / cooling cycles (50 °C-67 °C) were performed. In the last cycle, 500 μL of pre-warmed EXE RM was added to the mixture when the temperature was about 3 °C above the phase inversion region (PIZ; 59-61.5 °C). Finally, 2.5 mL of chilled water was added to reach the temperature of the PIZ under high-speed stirring for 2 min. Blank untargeted nanosystems (RM LNCs) were generated without the addition of drug solution using the same protocol.

[0186] 1.2.2 Preparation of DiD-labeled non-target lipid-based nanosystems and target lipid-based nanosystems DiD-labeled RM LNCs were prepared by adding 225 μg of DiD to the mixture: 45 μL of DiD (5 mg / mL in ethanol) was added to a vial, which was then heated in a water bath until the organic solvent was completely evaporated. Labrafac® WL 1349 was then added to the same vial and mixed with DiD in a water bath until DiD was completely dissolved in the oil phase. The mixture was then cooled to room temperature (approximately 20° C.), the other components were added, and the preparation process was continued as described above.

[0187] 1.2.3 Preparation of PEGylated reverse micelles loaded with or without propionate Lipid nanocapsules loaded with PEGylated reverse micelles with or without propionate (RM LNC-PEG or RM LNC-PEG-PRO, respectively) were prepared by the addition of DSPE-PEG 2000 -CH 3 or DSPE-PEG 2000 -CH 2 -CH 2 -COOH was generated by incubating with RM LNC at a concentration of 5 mg / mL with gentle agitation for 4 h at 37° C. During incubation, the suspension was vortexed every 15 min and then quenched in an ice bath for 1 min.

[0188] 1.3- Quantification of Exenatide Exenatide encapsulated in PEGylated RM LNCs was quantified by high performance liquid chromatography (HPLC, Shimadzu, Japan) using the gradient method described in Example 1 (see 1.4).

[0189] Characterization of 1.4-NP The mean diameter, polydispersity index (PDI), zeta potential, and drug encapsulation efficiency (EE, %) of PEGylated RM LNC NPs were determined as disclosed in Example 1 (see 1.5).

[0190] 1.5-Stability of nanocapsules and drug release in simulated gastrointestinal fluid 1.5.1-Stability of PEGylated nanocapsules in simulated gastrointestinal fluids The in vitro stability of PEGylated EXE RM LNC with or without propionate as a ligand was evaluated as disclosed in Example 1 (see 1.6).

[0191] 1.5.2-In vitro drug release testing Drug release from PEGylated EXE RM LNC was assessed for 2 and 6 hours, respectively, in FaSSGF and FaSSIF medium in the absence of pepsin, as disclosed in Example 1 (see 1.7).

[0192] 1.6-In vitro cell testing 1.6.1-Cell culture GLUTag, a murine L cell line of the digestive system, was kindly provided by Dr. Daniel Drucker (University of Toronto, Canada). GLUTag cells were used at passages 17–25. Cells were cultured in DMEM GlutaMAX (5.5 mM glucose) (complete DMEM medium) supplemented with 10 (v / v)% inactivated FBS and 1 (v / v)% P / S at 37 °C in 5% CO. 2 Cells were grown at 37°C while being fed with . The cells were subcultured every 4-5 days.

[0193] 1.6.2-Cytotoxicity tests In vitro cytotoxicity testing of unloaded PEGylated RM LNC nanocapsules was performed in GLUTag cells using a 3-(4,5-dimethylthiazol-2-yl)-(2,5-diphenyltetrazolium bromide) (MTT) colorimetric assay (Xu et al. Mol Pharm. 2018; 15:108-115) with the previously calculated concentration of nanoparticles. GLUTag cells (5 × 10 4Cells / well) were seeded in Matrigel™-coated (10 μL / mL medium) 96-well plates. After washing the plates with pre-warmed PBS buffer (×3), 100 μL of nanoparticle suspensions with increasing nanocapsule concentrations (0.5-10 mg / mL) were dispersed in DMEM GlutaMAX medium (without FBS) and co-incubated with GLUTag cells for 2 h at 37°C. After incubation, the supernatant was replaced with 100 μL of MTT at 0.5 mg / mL for 3 h. Purple formazan crystals were dissolved in 200 μL of DMSO for determination of absorbance at 560 nm using a MultiSksan EX plate reader (Thermo Fisher Scientific, USA). Cells with Triton-X 100 (100% dead) and cells with culture medium (100% alive) were considered as positive and negative controls, respectively. The tests were performed in triplicate.

[0194] 1.6.3-In vitro secretion of GLP-1 GLUTag(1.8×10 5 Cells / well) were seeded on Matrigel™-coated 24-well cell culture plates and allowed to attach for 24 h. The next day, the plates were gently washed using pre-warmed PBS. GLUTag cells were then co-incubated with DMEM GlutaMAX without FBS or unloaded PEGylated NPs (RM LNC nanocapsules with or without ligand). This medium contained a DPP-IV inhibitor at a final concentration of 50 μM (Millipore®, St. Charles, MO, USA). To test the effect of different nanoparticle concentrations on the secretion of GLP-1, we used concentrations of 0.5-2 mg / mL nanocapsules and 0.1-3 mg / mL nanoparticles, respectively. The protocol is described in Example 1 (see 1.9).

[0195] 1.7-In vivo testing 1.7.1-Animals All protocols involving animal studies were approved by the Universite catholique de Louvain ethical committee on animal experiments (2018 / UCL / MD / 45; laboratory agreement LA1230418) and were performed in accordance with the Belgian law on the protection of laboratory animals (Royal Decree of 29 May 2013).

[0196] 1.7.2- Total GLP-1 secretion of ligand-conjugated and non-ligand-conjugated PEGylated NPs in normoglycemic mice To test PEGylated RM LNC (with or without propionate), male C57BL / 6J mice (20-25 g, 10 weeks old, Janvier Laboratories, France) were randomly divided into four groups (8 mice each) and treated with a nanocapsule dose of approximately 1.62 mg / g as disclosed in Example 1 (see 1.10).

[0197] 1.7.3-Distribution of nanocapsules in the small intestine and colon of obese / diabetic mice Male C57BL / 6J mice (8 weeks old) were randomly divided into four groups (n=4 / group). After acclimation (2 weeks), mice were fed a HFD (rodent diet containing 60% fat and 20% carbohydrate (kcal%) (D12492i, Research Diets, USA) for 10 weeks. Before the experiment, mice were fasted overnight with free access to water. For evaluation of nanocapsule distribution in the small intestine and colon, DiD-labeled nanocapsules (~1.62 mg / g nanoparticle dose) containing RM LNC, PEGylated RM LNC and PEGylated RM LNC-PRO were administered via oral gavage. Control mice were orally administered an equal volume of MilliQ water. Sections of duodenum, jejunum, ileum and colon were excised 1 h after administration and then rapidly frozen in OCT (Optimal Cutting Temperature compound). For all tissues, 6 μm thick sections were prepared using a Leica Sectioning was performed using a CM-3050-S cryostat. Tissue sections were briefly fixed in 4% paraformaldehyde for 5 min. After washing with PBS containing 0.02% polysorbate 20, slides were mounted in VECTASHIELD Hard Set Mounting Medium with DAPI. Samples were examined by CLSM using a Zeiss confocal microscope (LSM 150) and images were captured sequentially. Data were analyzed using Axio Vision software (version 4.8).

[0198] 1.7.4- Extraction of mucus from the intestines of obese / diabetic mice Naive 10-week HFD-induced diabetic mice were fasted overnight with free access to water. Before mucus extraction, mice were sacrificed by cervical dislocation. The following protocol was adapted from Wang et al. (Bio-protocol. 2017; 7:e2394). Briefly, the duodenum and apical jejunum were dissected and flushed very gently with PBS to remove intestinal decal matter, then mounted in a Petri dish. A syringe with a 19.5-gauge needle was used to gently deliver PBS through the open end of one of the intestinal segments. The intestinal segments were cut longitudinally using surgical scissors. Mucus was then scraped off from the intestinal segments using a cell scraper (1.8 cm blade, Falcon®) and transferred to a clean tube. The isolated mucus was stored at -20°C for further mucus distribution and mucus stability studies.

[0199] 1.7.5-Single particle tracking and confocal microcopy DID RM LNC, DID RM LNC PEG, and DID RM LNC PEG-PRO were diluted in water or mouse small intestinal mucus and mixed by gentle vortexing. A 5 μL volume was placed on a microscope slide sealed with an adhesive spacer (S24737, Secure-Seal™ Spacer, Thermo Fisher) and a cover slip (#1.5).

[0200] For single particle tracking, the fluorescent signal was recorded using a spinning disk confocal microscope (Nikon Eclipse Ti, Tokyo, Japan) equipped with an MLC 400 B laser box (Agilent Technologies, Santa Clara, CA, USA), a Yokogawa CSU-X1 confocal spinning disk device (Andor, Belfast, UK), an iXon ultra EMCCD camera (Andor Technology®, Belfast, UK), and NIS Elements software (Nikon, Japan). A 100x oil immersion objective (Plan Apo VC 100x oil, 1.4 NA, Nikon, Japan) was used. A stage-top incubator (37 °C, Tokai Hit) combined with an objective lens heater (Biotechs) was used during imaging. A 100-frame movie with a time resolution of 43.9 ms was recorded 5–10 μm above the coverslip. Further analysis was precluded due to accumulation of nanocapsules in different parts of the mucus or leakage of the fluorescent label, and therefore individual nanocapsules could not be observed or analyzed.

[0201] Samples prepared for single particle tracking were also examined by laser scanning confocal microscopy. Images were recorded on a Nikon A1R HD confocal laser scanning microscope with a 60x / 1.27 Plan Apo IR water immersion objective (SR Plan Apo IR AC, Nikon) using a galvanometer scanner. A wavelength of 637 nm (LU-N4 Laser Unit) was used for excitation of DiD. Fluorescence signals were detected with a Multi-Alkali PMT (A1-DUG-2 GaAsP Multi Detector Unit). Stacks of 19.5 μm on the glass surface with Nyquist resolution and 0.5 μm step size were recorded and maximum intensity projections (MIPs) were made for visualization. All imaging was performed at RT.

[0202] 1.7.6-Pharmacological studies in HFD-induced obese / diabetic mice Male C57BL / 6J mice (8 weeks old) were randomly housed (5 mice per cage). After an acclimation period (2 weeks) with a normal chow diet (AIN93Mi, Research Diets®, USA), the mice were fed a HFD for 10 weeks. Before the experiment, the cages were randomly divided into 5 groups (10 mice / group). The mice were fasted overnight and then orally gavaged with free drug solution (EXE) (dose: 500 μg / kg), non-PEGylated or PEGylated drug-loaded nanosystems (EXE RM LNC or EXE RM LNC PEG) (dose: 500 μg / kg), or empty PEGylated nanosystems (RM LNC PEG) (dose: nanocapsule concentration equivalent to the other groups). The control HFD group was orally administered an equal volume of sterile water. Oral glucose tolerance test (OGTT) was performed 1 h after oral administration of the above formulations as in Example 1. Briefly, glucose was administered orally (2 g / kg), and then blood glucose was determined by measuring blood from the tip of the tail vein 30 min before glucose loading (-30 min) and at 0, 15, 30, 90, and 120 min after glucose administration with a glucose meter (Accu Check, Roche, Switzerland). Plasma insulin and total GLP-1 levels were also tested in plasma from blood samples collected from the tail vein at -30 min and 15 min using ELISA kits (Mercodia, Uppsala, Sweden and Meso Scale Delivery, USA, respectively). Insulin resistance index was calculated by multiplying the AUC of blood glucose and insulin during the OGTT. At the end of the OGTT test, mice were euthanized with isoflurane (Forene, Abbott, England) and blood samples were collected from the portal vein. Active GLP-1 levels were tested by ELISA (Meso Scale Delivery, Gaithersburg, USA).

[0203] 1.7.7-Pharmacokinetic studies in obese / diabetic mice Male C57BL / 6J mice (8 weeks old) were housed for 2 weeks of acclimation and randomly divided into two groups (10 mice per time point). Mice were then fed a HFD for 10 weeks as described in the above section. All mice were fasted overnight with free access to sterile MilliQ water, followed by oral gavage. Exenatide solution and EXE RM LNC PEG were orally administered at a dose of 500 μg / kg. At the designated time points (0, 0.5, 1, 1.5, 2, 4, 6, and 8 hours), blood samples were collected from the tip of the tail vein, centrifuged (1,500 g, 10 min, 4° C.), subjected to plasma extraction, and then stored at −80° C. until further analysis. Exenatide plasma concentrations were determined using ELISA kits (EK-070-94, Phoenix Europe GmbH, Karlsruhe, Germany).

[0204] 1.7.8-Long-term treatment of obese / diabetic mice with different oral dosing frequencies Male C57BL / 6J mice (8 weeks old) were randomly divided into seven groups (10 mice / group) and housed 5 per cage with free access to a sterile diet (AIN93Mi; Research Diet) (control diet) and sterile water. After 2 weeks of acclimation, mice were fed a HFD or a normal control diet for 10 weeks. After this period, mice were treated with our formulations for an additional month while continuing to feed the HFD (14 weeks HFD in total). During this month, mice were orally administered daily (D) or every 2 days (T) at 4 pm with (i) equivalent nanocapsule concentrations of empty or drug-loaded PEGylated formulations (500 μg / kg dose) in daily treatments (RM LNC PEG-D or EXE RM LNC PEG-D) and (ii) non-PEGylated or PEGylated drug-loaded formulations (500 μg / kg dose) in every other day treatments (EXE RM LNC-T or EXE RM LNC PEG-T). Control groups (healthy and HFD) were orally administered equal amounts of sterile Milli-Q water daily. During this 4-week treatment period, mice body weights were recorded daily and glycemia was monitored once a week. Mice were fasted once a week for 6 hours before glucose testing.

[0205] 1.8-Statistical analysis Data analysis was performed using the GraphPad Prism 8 program (CA, USA). Before all analyses, a Grubbs test was performed to detect outliers in each group. Before performing the analyses, values ​​were normalized using logarithmic transformation if there were significant differences in variance between groups. Statistical analysis was performed using two-way or one-way ANOVA followed by Tukey's post hoc test for studies involving more than two groups, and t-test or Mann-Whitney test for two groups. Nonparametric tests were performed if significant differences in variance existed between groups even after normalization. Statistical significance was considered as p<0.05. All data were expressed as mean ± standard error of mean (SEM).

[0206] 2. Results and Discussion 2.1- Preparation and characterization of PEGylated nanoparticles with propionate as targeting moiety To develop lipid-based nanocapsules targeting L cells, DSPE-PEG 2000 was selected as the PEGylation linker to provide nanocapsules with high mucus diffusion ability. A post-insertion method was chosen to ensure that the PEG chains were localized only on the surface rather than being retained in the core of the particle. DSPE-PEG 2000 -OCH 3 and DSPE-PEG 2000 -CH 2 -CH 2 Both -COOH and -DSPE provided specific targeting to L cell GPCRs present on the surface of L cells. The physicochemical properties of the empty lipid nanocapsules were characterized by the use of DSPE-PEG 2000 -OCH 3 and DSPE-PEG 2000 -CH 2 -CH 2 The results were evaluated before (RM LNC) and after (RM LNC PEG and RM LNC PEG-PRO, respectively) postinsertion of -COOH (Table 6).

[0207] [Table 6]

[0208] Blank LNCs presented a particle size of about 200 nm and a narrow particle size distribution (PDI=0.18). After incubation of LNCs with biofunctional polymers, a size increase of about 18 nm and about 27 nm was observed for RM LNC PEG and RM LNC PEG-PRO, respectively. The zeta potential values ​​significantly decreased from -0.94 mV (RM LNC) to -9.93 mV (RM LNC PEG). The surface charge of RM LNC PEG-PRO further decreased, reaching -18.20 mV in the presence of fatty acids. Similar particle size and zeta potential were obtained after labeling the nanocarriers with DiD when compared to the respective empty nanocapsules (Table 6). Furthermore, encapsulation of exenatide in PEGylated nanocapsules (EXE RM LNC PEG) did not significantly affect the size and surface charge of the nanocapsules (Table 6).

[0209] 2.2-PEGylated NPs induce secretion of GLP-1 both in vitro and in vivo. The properties of unloaded, PEGylated, and propionate-grafted RM LNCs in inducing GLP-1 stimulation in vitro were first investigated in GLUTag cells (mouse L cells). The nanoparticle concentrations ranged from 0.5 mg / mL to 2 mg / mL, considering that no evidence of cytotoxicity was observed at concentrations below 4 mg / mL. As shown in Figure 15A-B, all lipid-based formulations were able to significantly increase endogenous GLP-1 secretion in vitro in L cells, regardless of nanoparticle concentration (**p<0.05).

[0210] Furthermore, we tested whether these nanocapsules could further enhance and / or induce GLP-1 stimulation in vivo in normoglycemic mice. When orally administered to normoglycemic mice, both PEGylated lipid nanocapsules (RM LNC PEG and RM LNC PEG-PRO, respectively) and non-PEGylated lipid nanocapsules (RM LNC) significantly increased GLP-1 levels 60 min after administration (*p<0.05) (Figure 16). In particular, RM LNC PEG increased GLP-1 levels up to about 8-fold at 60 min, whereas RM LNC PEG-PRO had the same effect as the original unmodified RM LNC, increasing GLP-1 secretion up to about 4-fold compared to the untreated control group. Moreover, only RM LNC PEG prolonged this effect at 180 min when compared to the control group (*p<0.05). Although PEGylated NPs did not exert any significant effect in vitro when compared with non-PEGylated NPs (Figure 15A-B), PEGylation could significantly improve and prolong the properties of the nanocarriers to induce GLP-1 secretion in vivo.

[0211] 2.3-Distribution of nanoparticles in the small intestine and colon of obese / diabetic mice The distribution of nanocapsules was tracked in different segments of the intestine after oral gavage in vivo in mice fed a HFD for 10 weeks. The accumulation of DiD-labeled nanocapsules in the small intestine and colon after oral administration to HFD mice was followed by fluorescent nanoparticles. All fluorescent particles (DiD RM LNC, DiD RM LNC PEG, and DiD RM LNC PEG-PRO) could be found in the duodenum, where the DiD RM LNC PEG group showed the strongest red fluorescence (DiD) compared to the other groups.

[0212] To investigate potential differences in mucus diffusion, single particle tracking was performed. For this purpose, particles were mixed with small intestinal mucus, placed in a custom-made glass chamber, and visualized with a spinning disk microscope. However, it was not possible to determine in vitro particle diffusion in mouse small intestinal mucus, as the amount of particles observed was very low compared to the aqueous solution of the particles. When using confocal microscopy, large structures with higher fluorescence intensity compared to mucus alone were observed in all formulations, representing aggregation and / or binding to mucus components. As the mobility of individual nanocapsules could not be investigated, it was not possible to conclude whether there were any differences in net mobility between the different formulations.

[0213] One hour after administration, DiD-labeled RM LNCs were observed primarily in the duodenum and rarely in the jejunum. Interestingly, one hour after treatment, only RM LNC PEG was able to cross the intestinal epithelium of the jejunum, where a higher level of red fluorescence was observed in the basal layer of the epithelium compared to the other groups. Furthermore, only RM LNC PEG was able to cross the entire small intestine (duodenum, jejunum, and ileum) and reach the colon.

[0214] 2.4-Pharmacological and pharmacokinetic studies in obese / diabetic mice Prior to evaluation of the efficacy of the formulation in vivo, the stability of the formulation in simulated gastric and intestinal fluids was demonstrated in vitro and the release profile of exenatide was evaluated.

[0215] To determine the therapeutic efficacy of exenatide-loaded RM LNC PEG (EXE RM LNC PEG) on controlling postprandial hyperglycemia in type 2 diabetic mice, pharmacodynamic profiles were performed in mice fed a HFD for 10 weeks. A single dose of nanocapsules was administered, followed by an oral glucose tolerance test (OGTT). A dose of 500 μg / kg of exenatide in free drug solution and drug-loaded formulations (including EXE solution, EXE RM LNC, and EXE RM LNC PEG, respectively), empty RM LNC PEG (equivalent amount of drug-loaded nanocapsules), or an equivalent amount of water was orally administered 60 min prior to the oral glucose test (glucose concentration: 2 g / kg). The time point of glucose administration corresponds to 0 h (Figure 17A). Plasma glucose profiles of mice treated with drug solution showed similar trends to HFD-fed mice with water. Conversely, all groups treated with nanocapsules containing EXE RM LNC, EXE RM LNC PEG, and empty RM LNC PEG were able to significantly lower blood glucose levels and glucose area under the curve (AUC) (Figure 17A). It is noteworthy that empty RM LNC PEG had similar efficacy and AUC in lowering plasma glucose levels compared to exenatide-loaded RM LNC, indicating that the hypoglycemic effect achieved by the nanocarrier alone after PEGylation was comparable to that of non-PEGylated nanocarriers encapsulating the drug. Thus, the GLP-1 levels secreted by PEGylated nanocapsules (Figure 16) were found to be therapeutically relevant in terms of glucose-lowering activity. It is noteworthy that among all the formulations tested, only mice orally treated with EXE RM LNC PEG showed a significant reduction in plasma glucose levels over the entire OGTT test compared to untreated HFD mice.

[0216] Furthermore, total GLP-1 levels (Figure 17B) were significantly improved in all nanocapsule-treated groups compared to the control group (*p<0.05). The increase in total GLP-1 levels in the EXE RM LNC group did not reach significance compared to the HFD group when analyzed by Kruskal-Wallis test and Dunn's post-hoc test, but a significant difference was observed when applying the Mann-Whitney test (p=0.008) (Figure 17B). The concentration of active GLP-1 measured in the portal vein (3 hours after administration of the formulation) compared to untreated HFD mice was also significantly increased in mice treated with EXE RM LNC PEG after the OGTT test (*p<0.05) (Figure 17C). When analyzing the data by one-way ANOVA, there were no significant differences between RM LNC PEG and HFD, but a significant difference between these groups appeared by Student's t-test (p=0.028). These data confirm that PEGylation is able to improve the properties of the nanosystem to stimulate the release of GLP-1 under pathological conditions and to prolong this action. No differences were observed between the groups in terms of insulin levels (Figure 17D). However, EXE RM LNC PEG was able to significantly reduce the insulin resistance index compared to untreated diabetic mice (Figure 17E). One-way ANOVA showed no significant differences between EXE RM LNC and RM LNC PEG, whereas the Student's t-test revealed significant differences between these groups (p=0.035 and p=0.023, respectively). Surprisingly, comparable results were obtained for unloaded PEGylated RM LNC compared to EXE-loaded nanocapsules, further confirming the therapeutic relevance of the increased GLP-1 levels obtained via PEGylation.

[0217] To investigate oral delivery of exenatide via PEGylated RM LNCs, a pharmacokinetic study was performed to evaluate oral absorption of exenatide in chronically diabetic mice (10 weeks HFD; n=10 per point) after oral administration of a single dose of 500 μg / kg exenatide via drug solution or in RM LNC PEG (EXE RM LNC PEG) (FIG. 17F). Different patterns of exenatide absorption were observed in obese / diabetic mice after oral gavage of drug solution alone or EXE RM LNC PEG. When administered orally as a solution, exenatide plasma concentrations remained unchanged throughout the study period. In comparison, EXE RM LNC PEG induced greater systemic absorption of the peptide after 8 hours of oral administration, where Tmax and Cmax were 1 hour and 27.91±1.22 ng / mL, respectively. It should be noted that different exenatide pharmacokinetic profiles (e.g., different Cmax, AUC, Tmax) were observed following oral administration of EXE RM LNC PEG vs. EXE RM LNC, indicating that PEGylation prolonged the circulation time of the formulation (t1 / 2 of the drug-loaded formulation was prolonged from 1.68±0.35 hours to 5.69±1.02 hours) and in turn increased the systemic absorption of the encapsulated peptide (AUC increased from 11.79±2.73 ng·h / mL to 27.91±1.22 ng·h / mL).

[0218] 2.5-Long-term treatment with PEGylated lipid nanocapsules in obese / diabetic mice To investigate the effect of the increased secretion of GLP-1 observed after PEGylation on glucose metabolism, long-term treatment (1 month) was performed in diabetic mice (10 weeks, HFD) administered with different dosing frequencies (daily or once every other day) with or without exenatide-loaded RM LNC PEG (500 μg / kg) (total of 14 weeks of HFD, daily or every other day for 4 weeks starting from week 10). Mice treated with oral dosing (once every other day) (EXE RM LNC PEG; 500 μg / kg) or with the same amount of unloaded PEGylated nanocapsules (RM LNC PEG) were also compared with mice administered non-PEGylated EXE-loaded nanocapsules (EXE RM LNC; 500 μg / kg) by dosing regimen.

[0219] Plasma glucose and insulin levels and calculated HOMA-IR after 4 weeks of treatment are presented in Figures 18A-C. The daily administered PEGylated groups (loaded or not loaded) and the PEGylated group loaded with EXE administered every other day exhibited comparable plasma glucose levels. Thus, these levels were comparable to non-obese / diabetic untreated control mice (p>0.05, Figure 18A). It is noteworthy that only PEGylated nanocapsules encapsulating EXE were effective in lowering plasma glucose levels with long-term treatment. More importantly, they were efficient even with less frequent administration, which is the main goal of this study (Figure 18A). Moreover, the groups exhibited comparable insulin resistance as analyzed by the homeostasis model assessment of insulin resistance (HOMA-IR), which was comparable (p>0.05) to the control values ​​obtained in the healthy control group (Figure 18C). Compared to the HFD group, the decline between these groups was not statistically significant using the Kruskal-Wallis test followed by Dunn's post-hoc test (Figure 18C). However, significant differences were observed using the Mann-Whitney test (p=0.0012 for EXE RM LNC PEG-D vs. HFD, p=0.0003 for RM LNC PEG-D treated vs. HFD, and p=0.05 for EXE RM LNC PEG-T treated vs. HFD, respectively).

[0220] 2.6-Conclusion In conclusion, increasing the secretion of GLP-1 and prolonging the antidiabetic effect of the formulation can be achieved through PEGylation of nanocapsules.

[0221] Example 3: Comparative Example Shrestha et al. (Nanoscale 2018, see above) presented in vitro data on different lipid-based nanoparticles compared to the nanoparticles according to the invention disclosed herein: nanostructured lipid carriers (NLCs). Among the differences with lipid nanocapsules, NLCs presented a solid core and not a liquid core as in the lipid nanocapsules according to the invention. Shrestha et al. showed that exenatide and liraglutide were encapsulated and these NLCs induced GLP-1 secretion in vitro when presenting a nanoparticle size of 150 nm. Also, the study by Beloqui et al. (Mol Pharm, see above) exploited the effect of NLCs (150 nm) to secrete GLP-1. Of the different nanoparticles tested, only NLCs presenting a nanoparticle size of 150 nm were able to induce GLP-1 secretion in vitro. However, these nanoparticles were not able to induce GLP-1 secretion in further tests in vivo, nor to reduce hyperglycemia and hyperinsulinemia.

[0222] In vivo studies were performed (as in Example 1) in mice fed a HFD for 4 weeks. After a single oral administration of NLCs encapsulating exenatide (500 μg / kg exenatide dose), an oral glucose tolerance test (OGTT) was performed. As shown in Figure 19, no effect on the glucose area under the curve (Figure 19A-B), increase in GLP-1 levels (Figure 19C-D), changes in hyperinsulinemia (Figure 19E-F), and effects on insulin resistance index (Figure 19G) can be observed.

[0223] These results indicate that two lipid-based nanoparticles exhibiting a priori similar compositions do not necessarily induce the same effects.

Claims

1. A lipid nanocapsule for oral administration, comprising: a solid lipid shell; a lipid soluble liquid core comprising reverse micelles loaded with one or more incretin mimetics; Including, the one or more incretin mimetics are selected from the group consisting of albiglutide, dulaglutide, exenatide, liraglutide, lixisenatide, and semaglutide; Lipid nanocapsules.

2. The lipid nanocapsule of claim 1, wherein the solid lipid shell comprises one or more surfactants selected from the group including ionic surfactants, non-ionic surfactants, amphoteric surfactants, lipophilic surfactants, and mixtures thereof.

3. The lipid nanocapsule of claim 1 or 2, wherein the fat-soluble liquid inner core comprises one or more oils.

4. The lipid nanocapsule of claim 3 , wherein the one or more oils are triglycerides, fatty acids, fatty acid esters, or mixtures thereof.

5. The lipid nanocapsule according to any one of claims 1 to 4, wherein the reverse micelles comprise one or more components selected from the group comprising surfactants, oils, and mixtures thereof.

6. The lipid nanocapsule according to any one of claims 1 to 5, wherein the lipid nanocapsule has an average diameter in the range of about 100 nm to about 300 nm.

7. The lipid nanocapsule according to any one of claims 1 to 6, wherein the lipid nanocapsule induces secretion of endogenous GLP-1 in vivo.

8. The lipid nanocapsule according to any one of claims 1 to 7, wherein the one or more incretin mimetics is exenatide.

9. a solid lipid shell comprising a poly-oxyethylene ester of a fatty acid and a non-ionic lipophilic surfactant; a lipid-soluble liquid inner core comprising triglycerides and fatty acid esters and containing reverse micelles loaded with exenatide; The lipid nanocapsule according to any one of claims 1 to 8, comprising:

10. A solid lipid shell comprising the surfactants Solutol HS15 and Lipoid S100; a lipophilic liquid inner core comprising the oils Labrafac Lipophile WL1349 and / or Plurol CC 497 or Peceol and containing reverse micelles loaded with exenatide; The lipid nanocapsule according to any one of claims 1 to 9, comprising:

11. The lipid nanocapsule according to any one of claims 8 to 10, wherein exenatide has a pharmacokinetic profile characterized by a relative bioavailability of at least 4% in obese / diabetic high-fat diet-induced mice.

12. a therapeutically effective amount of a lipid nanocapsule comprising a solid lipid outer shell and a lipid soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics; and Pharmaceutically acceptable vehicle A pharmaceutical composition for oral administration comprising: the one or more incretin mimetics are selected from the group consisting of albiglutide, dulaglutide, exenatide, liraglutide, lixisenatide, and semaglutide; Pharmaceutical compositions.

13. 1. A pharmaceutical for oral administration comprising a therapeutically effective amount of lipid nanocapsules comprising a solid lipid outer shell and a lipid soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics, the one or more incretin mimetics are selected from the group consisting of albiglutide, dulaglutide, exenatide, liraglutide, lixisenatide, and semaglutide; Medicine.

14. A lipid nanocapsule comprising a solid lipid outer shell and a lipid soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics for use in the treatment and / or prevention of disorders associated with GLP-1 dysfunction in a subject in need thereof, the one or more incretin mimetics are selected from the group consisting of albiglutide, dulaglutide, exenatide, liraglutide, lixisenatide, and semaglutide; Lipid nanocapsules.

15. 15. The lipid nanocapsule of claim 14, wherein the disorder is selected from the group comprising type 2 diabetes mellitus (T2DM), obesity, inflammatory bowel disease (IBD), pancreatitis, dyslipidemia, non-alcoholic fatty liver disease, hyperglycemia, fatty liver, overweight, non-alcoholic fatty liver disease (NAFLD), non-alcoholic steatohepatitis (NASH), insulin resistance, hyperinsulinemia, impaired glucose tolerance, hyperglycemia, metabolic syndrome, pre-diabetes, poor fasting glucose, hyperphagia, altered food intake behavior, hepatic insulin resistance, whole body insulin resistance, adipose tissue inflammation, cardiac dysfunction, acute myocardial infarction, hypertension, cardiovascular disease, atherosclerosis, peripheral arterial disease, stroke, heart failure, coronary heart disease, kidney disease, diabetic complications, neuropathy, and gastroparesis.

16. The lipid nanocapsule for use according to claim 15, wherein said disorder is selected in the group comprising type 2 diabetes mellitus (T2DM), obesity, and inflammatory bowel disease (IBD).

17. A kit for treating and / or preventing a disorder associated with GLP-1 dysfunction, comprising: one or more lipid nanocapsules comprising a solid lipid outer shell and a lipid-soluble liquid inner core comprising reverse micelles loaded with one or more incretin mimetics; and One or more oral hypoglycemic drugs Including, the one or more incretin mimetics are selected from the group consisting of albiglutide, dulaglutide, exenatide, liraglutide, lixisenatide, and semaglutide; kit.

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