Compositions of phytoecdysones for intranasal administration

The intranasal administration of phytoecdysones in the form of inclusion complexes with specific cyclodextrins addresses the challenge of limited bioavailability and metabolic control, achieving enhanced bioavailability without CNS penetration.

WO2025132808A1PCT designated stage expired Publication Date: 2025-06-26BIOPHYTIS
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Patent Information

Application Number
PCT/EP2024/087433
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-22
Filing Date
2024-12-19
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

Current administration strategies for phytoecdysones, such as 20-hydroxyecdysone (20E), fail to achieve satisfactory bioavailability and metabolic control, particularly due to limited oral bioavailability and extensive metabolism by intestinal microbiota.

Method used

The development of a composition comprising an inclusion complex of at least one phytoecdysone or its semi-synthetic derivative with specific cyclodextrins, such as substituted β-cyclodextrins and γ-cyclodextrins, for intranasal administration, which significantly improves water solubility and bioavailability while avoiding CNS passage.

Benefits of technology

This approach results in enhanced bioavailability of 20E upon intranasal administration, with improved metabolic control and no detectable passage to the central nervous system, as evidenced by undetectable levels in brain tissue and cerebrospinal fluid.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a composition comprising at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone and at least one cyclodextrin in the form of at least one inclusion complex, for use in the treatment or prevention of a disease in mammals by intranasal administration.
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Description

[0001]Phytoecdysone compositions for intranasal administration Technical field of the invention The invention relates to drug compositions. It falls within the field of drugs and their intranasal administration. The invention relates more particularly to phytoecdysone compositions intended for the prevention and / or treatment of pathologies. Prior art Cyclodextrins (CD) are cyclic oligosaccharides generally composed of 6 to 8 glucopyranose links linked by (α-1,4) bonds. Cyclodextrins comprising 6, 7 or 8 links are called α-CD, β-CD or γ-CD respectively. CDs have a truncated cone structure, delimiting a cavity in their center. This cavity is all the larger as the number of glucopyranose links composing the CD is high. The central cavity has an apolar and rather hydrophobic carbon environment capable of accommodating molecules that are not very water-soluble,while the exterior has numerous hydroxyl groups, leading to good solubility in water. Due to their apolar cavity, cyclodextrins are able to form inclusion complexes in aqueous media with a wide variety of hydrophobic guest molecules. This complexation allows the solubilization of hydrophobic molecules, which are very insoluble in an aqueous phase (Merkus et al.,1999). 20 The hydroxyl groups of the glucopyranose links can be substituted by different groups, which has the effect of influencing the water solubility of the resulting CDs and the hydrophobicity of their cavity. This property of CDs is used to solubilize drugs for their administration in aqueous phase by different routes. CDs are particularly indicated for molecules of biopharmaceutical class II (Biopharmaceutics Classification System (BCS) class II) which correspond to poorly soluble / permeable molecules. CDs are of little or no interest for BCS class III and IV molecules, respectively soluble / poorly permeable and poorly soluble / poorly permeable (Rassu et al. 2021). Indeed, class III and IV molecules retain low permeability although their solubility is good from the outset, or improved thanks to complexation with a CD. By permeable,we mean the ability of a molecule to cross the intestinal mucosa and thus reach the general circulation. Generally speaking, the bioavailability of a compound, whatever the route of administration used (except injections), depends on its ability to be put into solution (solubility) and its ability to cross the epithelium concerned (permeability). The combination of these two properties (solubility and permeability) allows a compound to reach the general circulation. The different levels of solubility and permeability define the BCS class of a compound. Molecules solubilized in the presence of CD are in dynamic equilibrium between their free and complexed states. Only free molecules are able to penetrate biological membranes,which implies that the guest molecules must be released from the molecule / CD complex before they can be absorbed through the intestinal mucosa into the general circulation. The intranasal (IN) route is a route of administration of drugs directly 15 into the nasal cavity of a patient. It is used for local effects on the nasal mucosa (such as decongestants), but also for systemic action (anti-migraine drugs, vaccines, calcitonin, etc.). The IN route uses the very large surface area of ​​the capillaries located on the surface of the nasal mucosa, thus allowing easy access to the vascular system (via 20 irrigation of the respiratory epithelium) but also to the central nervous system (CNS) (presence of the trigeminal nerves and olfactory nerves in contact with the nasal cavity). Given the very close proximity between the nasal mucosa and the CNS,a drug administered by the IN route has the opportunity to easily reach the brain. 25 Indeed, when a substance reaches the olfactory mucosa, it is absorbed immediately and diffuses at the level of the brain and quickly reaches the cerebrospinal fluid, thus avoiding the blood-brain barrier. Thanks to direct absorption into the systemic circulation, the IN route, unlike the oral route, makes it possible to avoid the first hepatic and enteric passage and thus avoid a first metabolization,which can increase the amount of the directly effective drug. Optimal IN administration requires the dissolution of an effective dose of the drug in a very small volume of aqueous solution. CDs are therefore particularly indicated for improving the solubility of lipophilic (hydrophobic) class II (poorly soluble / permeable) molecules in small volumes for IN administration. Phytoecdysones represent a large family of poly-5 hydroxylated phytosterols structurally related to insect molting hormones. These molecules are produced by many plant species and participate in their defense against insect pests. The major phytoecdysone is 20-hydroxyecdysone (20E). 20E is pharmacologically active in mammals. It activates the Mas receptor, a receptor for the protective arm of the Renin Angiotensin System (Lafont et al.,2021) which induces a number of beneficial effects that have been described in preclinical studies in physiological and pathological contexts. BIO101 is an oral preparation of 20E with a purity greater than or equal to 97%. Its preparation process is disclosed in international patent application WO2018197731 (Lafont et al., 2018). BIO101 is a new drug candidate clinically developed for the treatment of sarcopenia, Duchenne muscular dystrophy and COVID-19. These last two therapeutic applications are the subject of international patent applications WO2018197708 (Dilda et al., 2018) and WO2021198588 (Dilda et al., 2021). Semi-synthetic derivatives of 20E have also been developed, as disclosed in international patent application WO2015177469 (Lafont et al., 2015),and are used for such therapeutic applications. 20E has very limited oral bioavailability in mammals (Dinan et al. 2021a, Dinan et al. 2021b). This property implies that administration of 20E as part of an oral pharmacological treatment would be unsuitable. Indeed, regardless of the mammal considered, more than 90% of the ingested product remains in the digestive tract and is eliminated in the feces (Dinan et al., 2021; Dioh et al., 2023). Following oral administration, the prolonged presence of significant quantities (at least 90% of the administered dose) of 20E in the digestive tract in contact with the intestinal microbiota is responsible for the production of metabolites (Kumpun et al., 2011; Dinan et al., 2021; Dioh et al., 2023). These metabolites are absorbed by the intestinal mucosa and are found in the plasma. As part of a pharmaceutical development of 20E,Circulating metabolites of 20E, produced only by the intestinal microbiota, must be identified and characterized when they reach certain plasma levels. These are referred to as major metabolites. The identification and regulated characterization of these major metabolites have a significant impact on the duration and cost of drug development. CN 104225605 and Wang et al., 2022, describe inclusion complexes of ecdysterone and cyclodextrin, and their therapeutic use by oral or cutaneous administration. Temirgaziyev et al., 2019, Berkenov et al., 2017, Tuleuov et al., 2020 and Meteleva et al., 2023, also describe inclusion complexes of ecdysterone and cyclodextrin. To date,However, none of the solutions proposed by the prior art makes it possible to increase the bioavailability of phytoecdysones in a satisfactory manner. It therefore appears essential to develop new strategies for administering phytoecdysones, in particular 20E and its semi-synthetic derivatives, which ensure improved bioavailability and control of metabolism. Presentation of the invention The present invention aims to overcome the aforementioned drawbacks by proposing a solution allowing good bioavailability and better control of metabolism for phytoecdysones and 20-20 hydroxyecdysone (20E) derivatives. Thus, according to a first aspect, the present invention relates to a composition comprising, in the form of an inclusion complex: - at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-25 hydroxyecdysone,- and at least one cyclodextrin chosen from: • cyclodextrins comprising 7 glucopyranose links linked by (α-1,4) bonds and in which at least one of the hydroxyls, preferably one of the hydroxyls in positions 2, 3 and 6, of the glucopyranose links of the cyclodextrin is substituted, hereinafter referred to as substituted β-cyclodextrins or substituted β-CDs; • and cyclodextrins comprising 8 glucopyranose links linked by (α-1,4) bonds, hereinafter referred to as γ-cyclodextrins or γ-CD, optionally in which at least one of the hydroxyls, preferably one of the hydroxyls in positions 2, 3 and 6, of the glucopyranose links of the cyclodextrin is substituted (these cyclodextrins then being referred to hereinafter as substituted γ-cyclodextrins or substituted γ-CD), for its use in the treatment or prevention of a pathology in mammals,by administering said composition intranasally. The inventors demonstrated that 20E belongs to biopharmaceutical class III (BCS Class III, soluble and poorly permeable, Rincón-López et al., 2021). The inventors showed that 20E formed inclusion complexes with different cyclodextrins (CDs). However, and unexpectedly, only 10 certain CDs, more specifically substituted β-CDs and substituted or unsubstituted γ-CDs, significantly improved the water solubility of 20E. In accordance with the biopharmaceutical class III of 20E, the inventors have shown in an experimental model, in rats, that 20E-CD inclusion complexes do not provide, contrary to what is put forward by the prior art, any advantage in terms of oral bioavailability of 20E compared to an administration of free 20E (solubilized in pure water). However, and unexpectedly,the inventors have shown that certain 20E-CD inclusion complexes allow particularly efficient passage of 20E through the nasal mucosa. The bioavailability of 20E administered in the form of inclusion complexes with certain particular types of CD, more specifically substituted β-CDs and substituted or unsubstituted γ-CDs, is then very largely improved compared to oral administration. It has also been discovered that intranasal (IN) administration of 20E in the form of an inclusion complex with these particular cyclodextrins makes it possible to avoid the production of 20E metabolites, these being undetectable in the plasma of the treated animals. Finally, and surprisingly,whereas passage through the nasal mucosa is facilitated by the administration of an inclusion complex of 20E with these particular cyclodextrins and the intranasal (IN) administration route is known for a privileged passage to the central nervous system, the inventors discovered, quite unexpectedly, that this new composition of 20E administered by the IN route did not allow any passage to the central nervous system. Indeed, neither 20E nor its major metabolites are detected in the brain tissue and in the cerebrospinal fluid after a single or repeated (7 days) administration of 20E in the form of an inclusion complex with these particular cyclodextrins by the IN route. In the present description, the term "treatment" is understood to mean the obtaining of a desired pharmacological and physiological effect. The term "treatment", as used in the present description,comprises the prevention or partial prevention of one or more of the symptoms of the disease and / or the partial or total cure of the disease and / or the total or partial disappearance of one or more of its symptoms. In the present description, the term "at least one" means a single compound (a phytoecdysone or a semi-synthetic derivative of 20-hydroxyecdysone / a cyclodextrin) or a mixture of several such compounds. In particular embodiments, the invention further meets the following characteristics, implemented separately or in each of their technically effective combinations. 15 A phytoecdysone that can be used according to the invention is, for example, 20-hydroxyecdysone (20E). The expression semi-synthetic derivatives of 20-hydroxyecdysone includes in particular:the known compounds which are the subject of patent application WO 2015 / 177469 in which their production by semisynthesis is described. 20 The phytoecdysones and the semi-synthetic derivatives of 20-hydroxyecdysone are preferably advantageously purified to pharmaceutical grade. According to particular embodiments, the composition which is the subject of the present invention comprises 20-hydroxyecdysone as phytoecdysone, and / or at least one semi-synthetic derivative of 20-hydroxyecdysone. 25 The 20-hydroxyecdysone used is preferably in the form of an extract of plants rich in 20-hydroxyecdysone or of a composition comprising 20-hydroxyecdysone as active agent. Plant extracts rich in 20-hydroxyecdysone are, for example, extracts of Stemmacantha carthamoides (also called Leuzea carthamoides or Rhaponticum carthamoides), Cyanotis 30 arachnoidea, Cyanotis vaga,Pfaffia glomerata and Pfaffia paniculata. The extracts obtained are preferably purified to pharmaceutical grade. In particular embodiments of the invention, 20-hydroxyecdysone is included in an extract of a plant or a part of a plant, said plant being chosen from plants containing at least 0.5% of 20-hydroxyecdysone by dry weight of said plant. Said extract preferably comprises at least 95%, and preferably at least 97%, of 20-hydroxyecdysone. Said extract thus represents 20-hydroxyecdysone purified to pharmaceutical grade. It is preferably free of impurities whose individual content is greater than 0.5% by dry weight of the extract. Thus, preferably, the extract only contains, as impurities, i.e. compounds other than 20-hydroxyecdysone, impurities whose individual proportions are between 0 and 0.5% by dry weight of the extract. Preferably,the extract is an extract of the roots of the plant, in particular an extract of the root of Stemmacantha carthamoides (also called Leuzea carthamoides or Rhaponticum carthamoides), Cyanotis arachnoidea, Cyanotis vaga, Pfaffia glomerata or Pfaffia paniculata. Any conventional extraction process in itself can be implemented to obtain, from the plant or part of the plant concerned, the extract rich in 20-15 hydroxyecdysone targeted. It is within the skills of the person skilled in the art to determine the exact operating parameters depending on the particular plant used. By way of example, the extraction process may comprise, after optional steps of drying and / or grinding the plant and / or the plant part, steps of: 20 - extraction of 20-hydroxyecdysone from the plant tissues, using a suitable solvent, such as ethanol or a mixture of ethanol and water, this extraction being able to be carried out by maceration,percolation or extraction by ultrasound, - filtration, so as to remove the solid matter from the liquid solution containing 20-hydroxyecdysone, 25 - optionally, concentration and purification, - and optionally, recrystallization of the 20-hydroxyecdysone obtained, the implementation of these steps falling within the skills of a person skilled in the art. Said extract comprising at least 95%, and preferably at least 97%, of 20-30 hydroxyecdysone, and 20-hydroxyecdysone purified to pharmaceutical grade, are hereinafter referred to as BIO101. BIO101 remarkably comprises, as impurities, only impurities, such as minor compounds, in individual proportions of between 0 and 0.5% by dry weight of BIO101. The plant from which BIO101 is produced is preferably chosen from Stemmacantha carthamoides (also called Leuzea carthamoides or Rhaponticum carthamoides), Cyanotis arachnoidea, Cyanotis vaga,Pfaffia paniculata and Pfaffia glomerata. 5 The cyclodextrin is chosen from cyclodextrins: - composed of 7 glucopyranose links linked by (α-1,4) bonds and in which at least one hydroxyl group of said glucopyranose links is substituted, - or composed of 8 glucopyranose links linked by (α-1,4) bonds, and in which none of the hydroxyl groups of said glucopyranose links is substituted, or at least one of the hydroxyl groups of said glucopyranose links is substituted. In the unsubstituted state, these cyclodextrins are called β-CD or γ-CD respectively and are respectively of formulae (I) and (II) below: 15, In particular embodiments, the cyclodextrin is a β-cyclodextrin or a γ-cyclodextrin that is composed of 7 or 8 glucopyranose members, wherein at least one of the hydroxyls in positions 2, 3 and 6 of the glucopyranose members is substituted. Preferably, the cyclodextrin is chosen from: - cyclodextrins comprising 7 glucopyranose links linked by (α-1,4) bonds (β-cyclodextrins) and in which at least one of the hydroxyls in positions 2, 3 and 6 of the glucopyranose links is substituted by a methyl group or by a 2-hydroxypropyl group, - and cyclodextrins comprising 8 glucopyranose links linked by (α-1,4) bonds (γ-cyclodextrins) and in which at least one of the hydroxyls in positions 2,3 and 6 of the glucopyranose links is substituted by a methyl group or by a 2-hydroxypropyl group. The composition which is the subject of the present invention is intended to be used in the treatment of a pathology in mammals, by intranasal administration. In the present description, the term "pathology in mammals"10 preferably refers to any disorder or disease for which 20-hydroxyecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone have demonstrated pharmacological activity, i.e. a pathology for which 20-hydroxyecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone is deemed to be an effective treatment. Preferably, the invention relates to the composition which is the subject of the present invention, for its use in the treatment or prevention of a pathology chosen from myopathies and / or neuromuscular diseases, muscular dystrophies,indications requiring an improvement in performance and / or muscular endurance, diseases involving a defect in muscle anabolism and / or muscle catabolism, metabolic diseases, diseases related to blood sugar control, fibrotic diseases, inflammatory diseases, dermatological diseases, cardiovascular diseases, liver diseases, respiratory diseases, kidney diseases, bone diseases, stomach diseases, diseases of the digestive system, diseases of the reproductive function, hematological diseases, diseases related to menopause, parasitic diseases, cancers and healing. In particular embodiments, the invention relates to the composition which is the subject of the present invention, for its use in the treatment or prevention of a pathology chosen from sarcopenia, sarcopenic obesity, muscle necrosis,loss of muscle strength following immobilization, Duchenne muscular dystrophy, Becker muscular dystrophy, infantile spinal muscular atrophy, diabetes, prediabetes, hyperglycemia, hyperlipidemia, metabolic syndrome, obesity, atherosclerosis, cardiac arrhythmia, myocardial contractility defect, diabetic cardiomyopathy, diabetic liver disease, diabetic nephropathy, viral hepatitis, gastric ulcer, celiac disease, allergic bronchial hyperreactivity, asthma, viral pneumonitis, coronavirus infections, especially COVID-19, pulmonary inflammation, renal fibrosis, osteoporosis, cartilage degeneration, decreased libido, giardiasis, giardiasis and hymenolepiasis. In particular embodiments, the invention relates to the composition which is the subject of the present invention, for its use in the treatment or prevention of a pathology chosen from sarcopenia,loss of muscle strength following immobilization, Duchenne muscular dystrophy, spinal muscular atrophy, impaired respiratory function in mammals infected with SARS-CoV-2, asthma and exacerbated bronchial reactivity. In particular embodiments, the dose of phytoecdysone(s) administered in the form of an inclusion complex with at least one cyclodextrin is between 0.1 and 2 milligrams per kilogram per day in humans. Phytoecdysone is understood here to mean both phytoecdysones in general, in particular 20-hydroxyecdysone and preferably in extract form, and semi-synthetic derivatives of 20-hydroxyecdysone. Preferably, the phytoecdysones in the form of an inclusion complex with at least one cyclodextrin are administered at a dose of phytoecdysones of 5 to 20,200 mg / day, in one or more doses, in an adult human, and a dose of 0.2 to 100 mg / day, in one or more doses,in human children or infants. Phytoecdysone is understood here to mean both phytoecdysones in general, in particular 20-hydroxyecdysone and preferably in extract form, and semi-synthetic derivatives of 20-hydroxyecdysone. In particular embodiments of the present invention, said at least one semi-synthetic derivative of 20-hydroxyecdysone is a compound of general formula (III): in which: o R, 1 is chosen from: a group (C1-C6)W(C1-C6); a group (C1-C6)W(C1-C6)W(C1-C6); a group (C1-C6)W(C1-C6)CO2(C1-C6); a group (C 1 -C 6)A, A representing a heterocycle optionally substituted by a group of the OH, OMe, CH2-CH2-OH, (C1-C6), NH(C1-C6), N(C1-C6)2, CO2(C1-C6) type; a CH2Br group; W being chosen from O, S, NH and NR where R represents a linear or branched alkyl group comprising from 1 to 6 carbon atoms, W preferably being O and even more preferably S. In the context of the present invention, the term “(C1-C6)” means any alkyl group of 1 to 6 carbon atoms, linear or branched, in particular, the methyl, ethyl, n-propyl, iso-propyl, n-butyl, iso-butyl, sec-butyl, t-butyl, n-pentyl, n-hexyl groups. Advantageously, it is a methyl, ethyl, isopropyl or t-butyl group, in particular a methyl or ethyl group, more particularly a methyl group.In the context of the present invention, the term heterocycle preferably means a cycle comprising 5 or 6 atoms including one or two heteroatoms (O, S or N), the remaining atoms being carbon atoms. In a preferred embodiment of the present invention, in the general formula (I): - R. 1 is chosen from: a (C1-C6)W(C1-C6) group; a (C1-C6)W(C1-C6)W(C1-C6) group; a (C1-C6)W(C1-C6)CO2(C1-C6) group; a (C1-C6)A group, A representing a heterocycle optionally substituted by a group of the OH, OMe, CH type 2 -CH 2 -OH, (C 1 -C 6 ), NH(C 1 -C 6 ), N(C 1 -C 6 ) 2, CO2(C1-C6); W being chosen from O, S, NH and NR where R represents a linear or branched alkyl group comprising from 1 to 6 carbon atoms, W preferably being O and more preferably S. In particular embodiments of the invention, the semi-synthetic derivative of 20-hydroxyecdysone is a compound of formula (IV): In particular embodiments of the present invention, said at least one semi-synthetic derivative of 20-hydroxyecdysone is a compound selected from the following compounds: 10 - No. 1: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-10,13-dimethyl-17-(2-morpholinoacetyl)-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthrene-6-one, - No. 2: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-(3- hydroxypyrrolidin-1-yl)acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro- 15 1H-cyclopenta[a]phenanthren-6-one, - n° 3 : (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-(4-hydroxy-1-piperidyl)acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro-1H- cyclopenta[a]phenanthren-6-one, - n° 4 : (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-[4-(2-hydroxyethyl)-20 1-piperidyl]acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-6-one, - n° 5 : (2S,3R,5R,10R,13R,14S,17S)-17-[2-(3-dimethylaminopropyl (methyl)amino)acetyl]-2,3,14-trihydroxy-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-6-one, 25 - No. 6: 2-[2-oxo-2-[(2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-10,13-dimethyl-6-oxo-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren- 17-yl]ethyl]sulfanylacetate, - No. 7: (2S,3R,5R,10R,13R,14S,17S)-17-(2-ethylsulfanylacetyl)-2,3,14-trihydroxy- 10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren- 6-one, - n°8 : (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-(2- 5 hydroxyethylsulfanyl)acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro- 1H cyclopenta[a]phenanthren-6-one. The inclusion complex of at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone and at least one cyclodextrin chosen in accordance with the invention, can be prepared according to any conventional method in itself. It can for example be prepared by mixing a solution of the cyclodextrin in water, then adding,preferably in molar excess, of phytoecdysone and / or semi-synthetic derivative of 20-hydroxyecdysone, and finally stirring the solution obtained, for example for 1 hour and for example at room temperature. 15 In particular embodiments of the invention, the composition which is the subject of the present invention is a pharmaceutical composition containing, as active ingredient, said at least one phytoecdysone and / or said at least one semi-synthetic derivative of 20-hydroxyecdysone, within an inclusion complex with said cyclodextrin, said inclusion complex being contained in a pharmaceutically acceptable vehicle. In the present description, the term "pharmaceutically acceptable vehicle" means any vehicle useful for the preparation of a pharmaceutical composition and which is generally safe, non-toxic and neither biologically nor otherwise undesirable for the subject to be treated,in particular for mammals and in particular humans. The vehicle of the pharmaceutical composition according to the invention may be solid, semi-solid or liquid. It may be a diluent, an adjuvant or any other vehicle conventional in itself for the constitution of pharmaceutical compositions. In the particular context of the present invention, in which the pharmaceutical composition according to the invention is in a form suitable for administration by the intranasal route, the vehicle is a liquid vehicle. It is preferably an aqueous vehicle. The total concentration of phytoecdysone(s) and semi-synthetic derivative(s) of 20-hydroxyecdysone in the composition is preferably between 10 and 45 mg / ml. The composition may otherwise be in any other galenic form, in particular in a form suitable for administration by the parenteral, rectal, pulmonary, intrathecal route,systemic or topical. Any conventional pharmaceutically acceptable salt of the compound of general formula (III) may be used according to the invention. Examples include chlorides, bromides, formates, acetates, etc. 10 In the present description, the term "pharmaceutically acceptable salt" is understood to mean, in a conventional manner per se, any salt of the compound of general formula (III) comprising, as counterion, a substance which does not produce any adverse, allergic or otherwise undesirable reaction when administered to a subject, in particular to a mammal. 15 The composition according to the invention, in its desired form, may be prepared by any conventional method per se for the preparation of pharmaceutical compositions. The composition according to the invention may contain one or more excipients / additives which are conventional per se for the constitution of pharmaceutical compositions, 20 for example chosen from preservatives,sweetening, flavoring, bulking, disintegrating, wetting, emulsifying, surfactant, dispersing, lubricating, stabilizing, buffering, antibacterial, antifungal agents, etc., or any mixture thereof; and / or any compound allowing rapid, prolonged or delayed, and / or targeted release of the active ingredient after its administration to the subject. In particular embodiments of the invention, the composition may contain ingredients particularly suitable for intranasal administration, for example one or more penetrating agents, one or more pH and / or isotonicity agents chosen to ensure compatibility with the pH and isotonicity of the nasal mucosa, one or more viscosity agents, etc. It is further preferably free of particles irritating the nasal mucosa. In particular embodiments,the composition which is the subject of the present invention may further contain one or more compounds other than phytoecdysones or semi-synthetic derivatives of 20-hydroxyecdysone and cyclodextrins, these compounds having the capacity to improve the membrane permeability of 20-hydroxyecdysone and its residence time on the nasal mucosa. Such compounds may be chosen, for example, from polymers, surfactants, lectins, gelatin, alginates, starches, lecithins, penetratins, hyaluronic acid and chelating agents. According to a preferred embodiment, these compounds are chosen from chitosan, pluronic, poloxamer 407, poloxamer 188, poly-L-arginine, polyurethane, polyacrylic acids, carbopol 934, sodium deoxycholate, sodium glycodeoxycholate, sodium glycocholate, sodium taurocholate, dioctylsulfosuccinate, tweens, ethylenediaminetetraacetic acid,zonula occludens toxins (ZOT). The composition which is the subject of the present invention is preferably formulated in the form of unit doses. Administration to the mammal can thus be carried out 15 by unit doses. The composition can for example be administered to the subject concerned at the rate of one spray in one nostril or in each nostril, once, twice or three times a day. It can be used daily over a short targeted period, for example in the event of an attack, or over a long period, or in intermittent periods, 20 in the case of a chronic disease in particular. The invention is also expressed in terms of a method of treating or preventing a pathology in the mammal, comprising administering to a subject in need thereof, by intranasal route, a therapeutically effective amount of a composition comprising,in the form of an inclusion complex: - at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone, - and at least one cyclodextrin chosen from: • cyclodextrins comprising 7 glucopyranose links linked by (α-1,4) bonds and in which at least one of the hydroxyls, preferably at least one of the hydroxyls in positions 2, 3 and 6, of the glucopyranose links of the cyclodextrin is substituted; • and cyclodextrins comprising 8 glucopyranose links linked by (α-1,4) bonds, optionally in which at least one of the hydroxyls, preferably at least one of the hydroxyls in positions 2, 3 and 6, of the glucopyranose links of the cyclodextrin is substituted. This method may meet one or more of the characteristics described above with reference to the therapeutic use of the composition according to the invention,5 comprising at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone and at least one cyclodextrin, in the form of at least one inclusion complex, as a medicament, for the treatment or prevention of a pathology in a mammal. In the present description, the term “a subject in need thereof” means a subject10 suffering from or likely to be affected by a pathology as described above with respect to the composition which is the subject of the present invention, in particular sarcopenia, loss of muscle strength following immobilization, Duchenne muscular dystrophy, spinal muscular atrophy, impaired respiratory function in patients infected with SARS-CoV-2, exacerbated bronchial reactivity and asthma, 15 or a subject requiring the induction of bronchodilation. This subject may in particular be a mammal,and in particular a human. In the present description, the term "therapeutically effective amount" means the amount of the composition administered which, when administered to a subject to treat the disease, is sufficient to ensure such treatment of the disease. The therapeutically effective amount of the composition used according to the invention depends on several factors, such as the disease and its severity, the age, weight, etc., of the subject to be treated, the particular compound(s) of the composition used, the route and form of administration, etc. The therapeutically effective amount of the composition used according to the invention will be determined by the physician for each individual case. The composition may, for example, be administered to the subject in need thereof once, twice or three times a day, over a long period of time, at regular intervals,or in a targeted manner. The invention is also expressed in terms of a use of a composition comprising, in the form of at least one inclusion complex: 30 - at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone, - and at least one cyclodextrin chosen from: • cyclodextrins comprising 7 glucopyranose links linked by (α-1,4) bonds and in which at least one of the hydroxyls, preferably at least one of the hydroxyls in positions 2, 3 and 6, of the glucopyranose links of the cyclodextrin is substituted; • and cyclodextrins comprising 8 glucopyranose links linked by (α-1,4) bonds, optionally in which at least one of the hydroxyls, preferably at least one of the hydroxyls in positions 2, 3 and 6, of the glucopyranose links of the cyclodextrin is substituted, for the manufacture of a medicament for the treatment or prevention of a pathology in mammals,by administering said composition intranasally. This use may meet one or more of the characteristics 10 presented above with reference to the therapeutic use of the composition according to the invention, comprising at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone and at least one cyclodextrin, in the form of at least one inclusion complex, as a medicament, for the treatment or prevention of a pathology in mammals. 15 Brief description of the tables and figures The invention will be better understood on reading the following description, given by way of non-limiting example,and made with reference to the figures which represent: Figure 1 illustrates a table showing the limiting solubility values ​​of BIO101 20 (expressed in mg / mL and in molar concentration) when it is in the form of inclusion complexes consisting of BIO101 and a cyclodextrin. The BIO101 / CD molar ratio of the saturated solutions is also presented. The cyclodextrins (CD) used have 6, 7 or 8 links and are called respectively α-CD, β-CD or γ-CD. The CDs have glucopyranose links in positions 2, 3 25 and 6, either free or substituted hydroxyls. BIO101 is added in excess to aqueous solutions of cyclodextrins at different concentrations (2%, 5% or 10% w / v). Stirring for 1 hour at room temperature,then centrifugation and determination of the concentration of BIO101 solubilized in the supernatant by LC / MS. 30 Figure 2 illustrates in the form of graphs the maximum solubility values ​​of BIO101 from the table in Figure 1. These represent respectively the maximum solubility values ​​of BIO101 expressed in mg / mL (graph A) and in molar concentration (graph B) when it is in the form of an inclusion complex with different cyclodextrins at concentrations of 2%, 5% and 10% w / v. Figure 3 represents: in graph A, the values ​​of the complexation constants between BIO101 and different cyclodextrins at concentrations of 2%, 5% and 10% w / v; in graph B, the values ​​of the molar ratios,which correspond to the number of BIO101 molecules complexed per cyclodextrin molecule (BIO101 / CD). Figure 4 is a graph grouping the pharmacokinetic profiles of BIO101 in plasma in rats following a single oral administration of 10 BIO101 solubilized in pure water at a dose of 50 mg / kg, or intranasal administration of BIO101 solubilized in pure water at a dose of 1.5 mg / kg or in the form of an inclusion complex with HPBCD or RAMEB at a dose of 10 mg / kg. Plasma extraction was carried out by precipitation of proteins with methanol, then determination of the concentration of BIO101 by LC / MSMS with Cyasterone as internal standard. Description of the embodiments In the present description, "n" corresponds to the sample size. 1. Description of the solubility study of BIO101 in aqueous solution at different pHs. 20 As a reminder,BIO101 is a known preparation of 20-hydroxyecdysone (20E) with a purity greater than or equal to 97%. BIO101 is currently known for oral administration in mammals. For this experiment, BIO101 is prepared from 20-hydroxyecdysone pure to the order of 90%, according to the following steps: 25 i) hot dissolution of 20-hydroxyecdysone pure to the order of 90% in methanol, filtration using a 0.2 µm particle filter and partial concentration, preferably by vacuum distillation, for example at a temperature of the order of 50°C and preferably in the presence of methanol MeOH, ii) addition of 3 volumes of acetone, 30 iii) cooling to a temperature between 0 and 5°C, with stirring, iv) filtration of the precipitate obtained, v) successive rinsing with acetone and water, and vi) drying,preferably under vacuum at a temperature of around 50°C. Solubility tests were carried out in water as follows: 100mg of BIO101 were added to 2ml of water, in n=2. Several stirring conditions were tested: ^ Magnetic stirring with a magnetic bar, 1 hour at room temperature 5 (25°C), ^ Magnetic stirring with a magnetic bar, 24 hours at room temperature (25°C), ^ Magnetic stirring with a magnetic bar, 1 hour on a hot plate at 50°C, 10 ^ Magnetic stirring with a magnetic bar, 24 hours on a hot plate at 50°C, ^ Ultrasonic bath, 1 hour at room temperature (25°C). After stirring, the solutions were centrifuged for 10 minutes at 15,800g and all showed a pellet, demonstrating saturation with BIO101. The supernatants, 15 were diluted 1 / 10,000 ein purified water. Two samples of each solution were assayed by LC / MSMS, with a calibration of BIO101 from 500 to 10,000 ng / mL and Cyasterone as internal standard. The results of maximum solubility of BIO101 according to the different dissolution conditions are presented in Table 1 below: 20 Table 1: The tests with magnetic stirring for 1 hour at room temperature were repeated with adjustment of the pH of the solutions to pH 1.2 using a hydrochloric acid solution, and pH 4.5, 6.8 and 7.5, using a Britton-Robinson buffer and 25 sodium hydroxide. The maximum solubility values ​​of BIO101 at different pHs are presented in Table 2 below: Table 2: In each of the conditions tested, the concentration of BIO101 (and therefore of 20E) is greater than 11 mg / mL. The concentrations of BIO101 (20E) measured in each of the conditions are compared to the maximum quantity of BIO101 5 administered daily to humans (700 mg, Dioh et al.2023) in a volume of 250 mL or 2.8 mg / mL. This concentration is significantly higher than the maximum amount of BIO101 administered daily to humans (700 mg) in a volume of 250 mL, or 2.8 mg / mL. BIO101 (20E) is therefore considered to be very soluble in aqueous solutions with a pH between 1.2 and 7.5. 2. Description of the study to experimentally determine the Log P value of BIO101 (BIO101). A preliminary study has determined that the limiting solubility values ​​of BIO101 (20E) after stirring for 24 hours at 20°C in octanol presaturated in water and in water presaturated with octanol are 8.5 and 9.5 mg / mL, respectively. The Log P value is determined experimentally (OECD 107 guidance) after overnight magnetic stirring at 20°C in a binary octanol / water system. For this, 3 different volume ratios of a BIO101 octanol solution (pre-saturated with water) and water (pre-saturated with octanol) are chosen.For each of the 6 samples (3 different volume ratios run in duplicate, 1 / 1, 1 / 2, and 2 / 1), the separation of the two phases (octanol and aqueous medium) is carried out by centrifugation. Each isolated phase is then diluted in a solvent mixture allowing its injection into a chromatographic system. The solution concentration of each separated and analyzed phase is determined by HPLC with external standardization. Six Log P values ​​are calculated: 2 per octanol / water ratio (1 / 1, 1 / 2, and 2 / 1). The six values ​​obtained (-0.05; -0.03; -0.03; -0.05; -0.05, and -0.04) are consistent in terms of variability with the OECD 107 guidance. The measured Log P value of BIO101 (20E) is -0.04 ± 0.01. 3. Description of the in vitro permeability study of BIO101 on monolayer of intestinal epithelial cells (CaCo-2 TC7).Caco-2 TC7 cells are commonly used as an in vitro model to predict the intestinal permeability of compounds, due to their ability to form tight junctions mimicking the intestinal barrier in vivo. In this study, the apparent permeability (Papp) of BIO101 (20E) across a Caco-2 TC7 cell monolayer in the apical to basolateral direction (absorption direction) and in the basolateral to apical direction (secretion direction) was assessed using a 2-hour kinetic study. Before and after the transport experiment, transepithelial electrical resistance (TEER) values ​​were checked, and cell layers with initial TEER values ​​lower than 600 Ω were discarded. The concentrations of BIO101 (20E) in the different compartments (apical and basolateral) were determined by LC-MS / MS with external standardization.BIO101 (20E) demonstrates very low transepithelial flow values ​​15 (Table 3 below). Papp values ​​x10. -6 are 0.22 and 0.40 from the apical pole to the basolateral pole and from the basolateral pole to the apical pole, respectively. The values ​​of these fluxes are not significantly different from each other, which excludes an efflux phenomenon towards the intestinal lumen. Metoprolol, which is a biopharmaceutical class I compound (BCS class I, 20 good solubility / good permeability) was used as a control compound. Metoprolol demonstrates flux values ​​approximately 50 times higher than those measured for BIO101 (20E). Table 3: Apical to Basolateral Ratio Basolateral to Apical Compound Papp x 10 -6 Papp x 10 -6BA / AB BIO101 0.22 0.40 1.62 Metoprolol 11.3 21.6 1.90 In view of its good solubility and favorable dissolution profile in aqueous solution (Tables 1 and 2), its Log P value, its very low oral bioavailability and its low permeability of the intestinal epithelium (Table 3), BIO101 (20E) belongs to the biopharmaceutical class III (BCS class III). 4. Description of the limit solubility study of BIO101 complexes with different cyclodextrins (Figure 1) Cyclodextrin solutions in water are prepared at 2%, 5% and 10% w / v in 5 mL vials. Due to the low solubility of β-CD in water (<20 g / L), solutions for this cyclodextrin are prepared at 0.5%, 1% and 1.5% w / v. BIO101 is then added in excess to the different cyclodextrin solutions. 5 The solutions are stirred using a magnetic bar for 1 hour at room temperature (25°C). After stirring, the solutions are centrifuged for 10 min at 15,800 g.The supernatants are collected and the concentration of BIO101 in solution is determined by LC / MSMS. 10 Figure 1 is a table showing the limiting solubility values ​​of BIO101 (expressed in mg / mL and molar concentration) when it is in the form of inclusion complexes consisting of BIO101 and a cyclodextrin. The BIO101 / CD molar ratio of the saturated solutions is also presented. The cyclodextrins (CDs) used have 6, 7 or 8 members and are called α-CD, β-CD or γ-CD respectively. The CDs have glucopyranose members in positions 2, 3 and 6 with either free or substituted hydroxyls. BIO101 is added in excess to aqueous solutions of cyclodextrins at different concentrations (2, 5 or 10% w / v).In the table in Figure 1, α-CD is an unsubstituted alpha cyclodextrin; RAMEA stands for random-methylated-α-cyclodextrin; HPACD is a hydroxypropyl-α-cyclodextrin; β-CD is an unsubstituted beta cyclodextrin; RAMEB stands for random-methylated-β-cyclodextrin; HPBCD is a hydroxypropyl-β-cyclodextrin; SBECD is a sodium salt of sulfobutylated-β-cyclodextrin; DIMEB is a Heptakis(2,6-di-O-methyl)-β-cyclodextrin; γ-CD is an unsubstituted gamma cyclodextrin; 25 RAMEG stands for random-methylated-γ-cyclodextrin; HPGCD is a hydroxypropyl-γ-cyclodextrin. The limiting solubility values ​​of BIO101 in the presence of 2%, 5% and 10% w / v α-CDs (composed of 6 glucopyranose members) are very modestly improved compared to the maximum solubility of BIO101 alone in water. The best limiting solubility of BIO101 obtained with an alpha-cyclodextrin is 14.2 mg / mL in the presence of 5% HPACD.The same is true for unsubstituted β-CD, whose intrinsic solubility does not allow reaching β-CD concentrations higher than 1.5% w / v. In this case, the limiting solubility of BIO101 is 13.9 mg / mL in the presence of 1.5% w / v β-CD. On the other hand, the limiting solubility of BIO101 in the presence of substituted β-CDs increases very significantly compared to that obtained in pure water or in the presence of unsubstituted β-CD. For 10% w / v solutions of SBECD, HPBCD, RAMEB and DIMEB, the limiting solubility values ​​of BIO101 are 21.4, 32.0, 39.6 and 42.8 mg / mL, respectively. When cyclodextrins with 8 glucopyranose links (γ-CD) are used, the solubilization of BIO101 is very significantly improved, whether the cyclodextrin is substituted (methyl or hydroxypropyl groups) or not (unsubstituted γ-CD).Indeed, at 2%, 5% and 10% w / v of γ-CD, RAMEG and 10 HPGCD the limiting solubility values ​​of BIO101 are respectively 16.6, 15.8, 17.6 mg / mL; 25.0, 22.8, 25.2 mg / mL; 37.5, 35.8, 38.5 mg / mL. The maximum solubility values ​​of BIO101 at different CD concentrations are presented in Figure 2. Graph A of Figure 2 represents the maximum concentration of BIO101 (mg / mL) solubilized in the absence of CD (0%) 15 as well as in CD solutions at 2, 5 and 10% w / v. While α-CDs (α-CD, RAMEA and HPACD) and unsubstituted β-CD (β-CD) do not present any convincing advantage in terms of solubilization of BIO101, the use of substituted β-CDs (SBECD, RAMEB, HPBCD and DIMEB) as well as substituted γ-CDs (RAMEG, HPGCD) or not (γ-CD) have an obvious interest. 20 If we exclude SBECD which is the least effective of the substituted β-CDs, concentrations of 10% w / v of the latter CDs make it possible to improve the limiting solubility of BIO101 by 2.9 to 3.9 times.Graph B represents the maximum molar concentration (mol / L) of BIO101 solubilized in the absence of CD (0 mol / L) as well as in CD solutions whose concentrations are expressed in molar concentrations (mol / L) corresponding to 2%, 5% and 10% w / v CD solutions. 5. Description of the characteristics of the inclusion complexes formed between BIO101 and different cyclodextrins (Figure 3). When a compound forms a complex with a cyclodextrin molecule, an AL-type diagram (Higuchi & Connors 1965) is obtained with a linear relationship, and the solubility of the molecule can be expressed according to the following formula (Jambhekar & Breen 2016; Gazpio et al. 2005): in which St represents the solubility of the compound, S0 its solubility in the absence of cyclodextrin, K1:1 the complexation constant, and [CD] the cyclodextrin concentration. 5 The slope and the y-intercept (o.o) of the obtained curve correspond to the following formula (Jambhekar & Breen 2016; Gazpio et al.2005):. The complexation constant can thus be deduced according to the following formula (Jambhekar & Breen 2016; Gazpio et al.2005): 10 The complexation constants of BIO101 with the different CDs used are represented in graph A of figure 3. The values ​​of the complexation constants confirm on the one hand the lack of interest of the α-CDs (α-CD, RAMEA and HPACD) and on the other hand the advantage that15 constitute the substituted β-CDs (in particular RAMEB, DIMEB) and all the γ-CDs tested, whether substituted or not (γ-CD, RAMEG, HPGCD) for the formation of inclusion complexes with BIO101. The molar ratios, which correspond to the number of BIO101 molecules complexed per cyclodextrin molecule, are calculated according to the following equation: 20 and are represented in graph B of figure 3.The values ​​of the molar ratios (BIO101 / CD) confirm on the one hand the absence of interest of the α-CDs (α-CD, RAMEA and HPACD) and on the other hand the advantage of the substituted β-CDs (in particular RAMEB, DIMEB) and all the γ-CDs tested, whether substituted or not (γ-CD, RAMEG, HPGCD) for the formation of inclusion complexes with BIO101. 6. Description of the manufacture of inclusion complexes of BIO101 with HPBCD and RAMEB for their use in experiments. BIO101 was complexed with HPBCD. An equimolar mixture of BIO101 and HPBCD was solubilized in 540 mL of methanol (MeOH). The mixture was stirred at room temperature for 15 minutes and then concentrated to dryness by evaporation. This solubilization and evaporation step was repeated 3 times and the glaze on the wall of the flask was taken up in water for lyophilization to obtain 11.3 g of white solid. The cyclodextrin / BIO101 ratio was determined by 10 LCMS (here: 250.5 mg of BIO101 in 1 g of complex). BIO101 was complexed with RAMEB. An equimolar mixture of BIO101 and RAMEB was solubilized in 400 mL of methanol (MeOH). The mixture was stirred at room temperature for 15 minutes and then concentrated to dryness by evaporation. This solubilization then evaporation step is repeated 3 times then the glaze on the wall of the flask is taken up in water for freeze-drying in order to obtain 12.5 g of white solid.The cyclodextrin / BIO101 ratio is determined by LCMS (here: 267.5 mg of BIO101 in 1 g of complex). 7. Description of the plasma exposure study of BIO101 following a single oral administration of BIO101 solubilized in water or in the form of 20 inclusions with different. (Figure 4 and Table 4). The pharmacokinetic study of BIO101 following oral administration was performed using male Wistar rats (Janvier Labs, 53940 Le Genest Saint Isle, France). BIO101 was administered at a dose of 50 mg / kg body weight alone (BIO101 alone) or complexed with HPBCD (BIO101-HPBCD) or complexed with 25 RAMEB (BIO101-RAMEB). After administration, blood was collected from the tail at t = 0.25 h; 0.5 h; 1 h; 2 h; 4 h; 6 h and 8 h; 10 h; 12 h; 24 h. Blood samples were centrifuged and plasmas collected. The assay of plasma samples allowed the determination of the AUC: the area under the curve which corresponds to plasma exposure. 30 For the quantification of BIO101, a calibration curve is performed in plasma with 10 standards (10 to 10000 ng / mL) and Cyasterone as internal standard.LC-MSMS analysis was performed with a 1260 Infinity HPLC system (Agilent Technologies, Santa-Clara, USA), and a QQQ6420 mass spectrometer (Agilent Technologies Santa-Clara, USA). The injection volume was 5 µL. BIO101 was eluted on a C18 reversed-phase column (2.1*50 mm, 3 µm particles; Ace-C18-Excel, AIT) with a gradient of acetonitrile and water (containing 0.1% formic acid) and a flow rate of 0.3 mL / min. The mass spectrometer analyzed in MRM Mode – Positive. 5 Table 4: Complexation of BIO101 with HPBCD or RAMEB does not increase its bioavailability during oral administration. 8. Description of the plasma exposure study of BIO101 following a single intranasal administration of BIO101 solubilized in water or in the form of inclusion complexes with different cyclodextrins (Figure 4 and Table 5).The pharmacokinetic study of BIO101 following its intranasal administration was performed using male Wistar rats (Janvier Labs, 53940 15 Le Genest Saint Isle, France). BIO101 was administered intranasally after isoflurane anesthesia (2% for 3 minutes), in 50µL at a dose of 1.5 mg / kg body weight when solubilized in pure water and at 10 mg / kg body weight when in the form of an inclusion complex, either complexed with HPBCD (BIO101-HPBCD) or complexed with RAMEB (BIO101- 20 RAMEB). After administration, blood was collected from the tail at t = 0.25 h; 0.5 h; 1 h; 2 h; 4 h; 6 h; 8 h; 10 h; 12 h; and 24 h post administration. Blood samples were centrifuged and plasmas collected (n=10 for each collection time).The dosage of plasma samples allowed the determination of pharmacokinetic parameters, namely Cmax, which corresponds to the maximum concentration observed after administration of the molecule, Tmax which is the time required to reach the maximum concentration after administration of the molecule and AUC: the area under the curve which corresponds to plasma exposure (Figure 4 and Table 5). 30 For the quantification of BIO101, a calibration curve is performed in plasma with 10 standards (10 to 10000 ng / mL) and Cyasterone as internal standard. LC-MSMS analysis is performed with a 1260 Infinity HPLC chain (Agilent Technologies, Santa-Clara, USA), and a QQQ6420 mass spectrometer (Agilent Technologies Santa-Clara, USA). The injection volume is 5 µL.BIO101 is eluted on a C18 reversed-phase column (2.1*50 mm, 3 µm particles; Ace-C18-Excel, AIT) with a gradient of acetonitrile and water (containing 0.1% formic acid) and a flow rate of 0.3 mL / min. The mass spectrometer analyzes in MRM Mode – Positive. When BIO101 is administered alone (1.5 mg / kg solubilized in pure water) intranasally, a Cmax = 53 ng / mL, a Tmax = 0.5 h and an AUC0-8h = 119 ng.h / mL are observed. Intranasal administration of BIO101 complexed with HPBCD (BIO101-HPBCD) allows to reach a Cmax = 152 ng / mL, a Tmax = 0.5 h and an AUC. 0-8h= 370 ng.h / mL. Finally, during intranasal administration of BIO101 complexed with RAMEB (BIO101-RAMEB) we observe a Cmax = 349 ng / mL, a Tmax = 0.5 h and an AUC0-8h = 902 ng.h / mL (Figure 4 and Table 5). Thus, for the same dose of BIO101 (10 mg / kg), the complexation of BIO101 with RAMEB allows, at the plasma level, to expose 2.4 times more the animals treated than those which were treated with BIO101 complexed with HPBCD. Furthermore, and remarkably, when comparing the plasma exposures of animals receiving BIO101 orally at 50 mg / kg with those of animals receiving BIO101 at 10 mg / kg complexed with RAMEB, it is observed that by reducing the dose of BIO101 administered by a factor of 5 (from 50 mg / kg orally to 10 mg / kg IN), the plasma exposure is multiplied by 3.1 times. 9.Description of the study of exposure of the central nervous system (brain tissue and cerebrospinal fluid) to BIO101 following a single intranasal administration of BIO101 solubilized in water or in the form of. of inclusions with different (Figure 4 and Table 5). When BIO101 was administered intranasally as a BIO101-RAMEB inclusion complex (10 mg BIO101 / kg), brain and cerebrospinal fluid (CSF) were also collected to assess potential passage of BIO101 to the central nervous system. CSF was collected 0.5 h, 1 h, 2 h, 6 h, and 24 h after administration of BIO101-RAMEB from pentobarbital-anesthetized animals. Following CSF collection, the brain of each animal (n=10) was dissected after decapitation. CSF was prepared for analysis by half-fold dilution with methanol. Brains were lyophilized and then extracted by grinding in a 50 / 50 methanol / water mixture. For the quantification of BIO101, a calibration curve is performed in water 5 with 10 standards (10 to 10000 ng / mL) and Cyasterone as internal standard.LC-MSMS analysis was performed with a 1260 Infinity HPLC system (Agilent Technologies, Santa-Clara, USA), and a QQQ6420 mass spectrometer (Agilent Technologies Santa-Clara, USA). The injection volume was 5 µL. BIO101 was eluted on a C18 reversed-phase column (2.1*50 mm, particles 10 3 µm; Ace-C18-Excel, AIT) with a gradient of acetonitrile and water (containing 0.1% formic acid) and a flow rate of 0.3 mL / min. The mass spectrometer analyzed in MRM Mode – Positive. Table 5:. 15 * Mean plasma exposure value obtained during two separate experiments carried out under the same conditions. ND: not determined. < LLOQ: value below the lowest concentration of the calibration range: < 10 ng / mL for CSF and < 150 pg / mg for brain tissue. Interestingly, the quantification of BIO101 in brain tissue and in CSF is below the limit of quantification (Table 5), indicating that complexation with RAMEB does not induce passage of BIO101 to the CNS. 10. Description of the plasma and central nervous system (brain tissue and CSF) exposure study to BIO101 and two major metabolites of BIO101 following a single or repeated intranasal administration of BIO101 solubilized in water or as an inclusion complex with a cyclodextrin (Table 6).Plasma exposure, as well as brain tissue and CSF exposure, to BIO101 and two major BIO101 metabolites (14-deoxy-20-30 hydroxyecdysone (14d20E) and 14-deoxy-poststerone (14dPost)) following single or repeated (once daily for 7 days) intranasal administration of BIO101 as the BIO101-RAMEB inclusion complex at 10 mg BIO101 / kg was determined by integration of pharmacokinetic profiles using Graphpad Prism software. A slight increase in plasma exposure to BIO101 was observed when 5 BIO101-RAMEB was administered intranasally repeatedly (once daily for 7 days) compared to a single administration (1300 ng*h / mL versus 902 ng*h / mL; Table 6). Under both conditions, neither of the two metabolites investigated was quantifiable ( <LLOQ).In brain tissue and CSF, neither BIO101 nor the two metabolites investigated (14d20E and 14dPost) were found after chronic administration for 7 days (Table 6). These results demonstrate that repeated administration of BIO101 complexed with RAMEB does not expose the CNS of animals that have been chronically treated and that the major metabolites of BIO101 are not formed. 15 Table 6: < LLOQ: no AUC calculated, the measured concentrations are below the lowest concentration in the calibration range. Plasma: < 10 ng / mL for 14d20E and < 25 ng / mL for 14dPost. CSF: < 10 ng / mL for all analytes. Brain tissue: < 150 pg / mg for all analytes. 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Claims

Claims 1. Composition comprising, in the form of at least one inclusion complex: - at least one phytoecdysone and / or at least one semi-synthetic derivative of 20-hydroxyecdysone, - and at least one cyclodextrin chosen from: cyclodextrins comprising 7 5 glucopyranose links linked by (α-1,4) bonds and in which at least one of the hydroxyls of said glucopyranose links is substituted, and cyclodextrins comprising 8 glucopyranose links linked by (α-1,4) bonds, optionally in which at least one of the hydroxyls of said glucopyranose links is substituted, 0 for its use in the treatment or prevention of a pathology in mammals, by administration of said composition by intranasal route.

2. Composition for use according to claim 1, in which at least one of the hydroxyls in positions 2, 3 and 6 of the glucopyranose links of the cyclodextrin is substituted. 5 3.Composition for use according to claim 2, in which said at least one cyclodextrin is chosen from: - cyclodextrins comprising 7 glucopyranose links linked by (α-1,4) bonds and in which at least one of the hydroxyls in positions 2, 3 and 6 of the glucopyranose links is substituted by a methyl group or by a 2-hydroxypropyl group, - and cyclodextrins comprising 8 glucopyranose links linked by (α-1,4) bonds in which at least one of the hydroxyls in positions 2, 3 and 6 of the glucopyranose links is substituted by a methyl group or by a 2-hydroxypropyl group. 5 4.Composition for use according to any one of claims 1 to 3, wherein the pathology is chosen from sarcopenia, loss of muscle strength following immobilization, Duchenne muscular dystrophy, spinal muscular atrophy, impaired respiratory function due to SARS-CoV-2 infection, exacerbated bronchial reactivity and asthma. 0 5. Composition for use according to any one of claims 1 to 4, comprising 20-hydroxyecdysone.

6. Composition for use according to claim 5, wherein the 20-hydroxyecdysone is included in an extract of a plant or a part of a plant, said plant being chosen from plants containing at least 0.5% of 20-hydroxyecdysone by dry weight of said plant, said extract comprising at least 95%, and preferably at least 97%, of 20-hydroxyecdysone.

7. Composition for use according to claim 6, wherein said extract is free from impurities whose individual content is greater than 0.5% by dry weight of the extract.

8. Composition for use according to any one of claims 6 to 7, wherein the plant is chosen from Stemmacantha carthamoides, Cyanotis arachnoidea, Cyanotis vaga, Pfaffia glomerata and Pfaffia paniculata. 9.Composition for use according to any one of claims 1 to 8, wherein said at least one semi-synthetic derivative of 20-hydroxyecdysone is a compound of general formula (III):. in which: o R 1 is chosen from: a group (C1-C6)W(C1-C6); a group (C1-C6)W(C1-C6)W(C1-C6); a group (C1-C 6 )W(C 1 -C 6 )CO 2 (C 1 -C 6 ); a grouping (C 1 -C 6 )A, A representing a heterocycle optionally substituted by a group of type OH, OMe, CH2-CH2-OH, (C1-C6), NH(C1-C6), N(C1-C6)2, CO2(C1-C6); a CH2Br group; W being chosen from O, S, NH and NR where R represents a linear or branched alkyl group comprising from 1 to 6 carbon atoms.

10. Composition for use according to any one of claims 1 to 9, wherein said at least one semi-synthetic derivative of 20-hydroxyecdysone is a compound of formula (IV):

5.

11. Composition for use according to any one of claims 1 to 9, in which the semi-synthetic derivative of 20-hydroxyecdysone is chosen from the following compounds: - No. 1: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-10,13-dimethyl-0 17-(2-morpholinoacetyl)-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-6-one, - No. 2: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-(3- hydroxypyrrolidin-1-yl)acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17- decahydro-1H-cyclopenta[a]phenanthren-6-one; 5 - No. 3: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-(4-hydroxy-1-piperidyl)acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17- decahydro-1H-cyclopenta[a]phenanthren-6-one; - No. 4: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-[4-(2-hydroxyethyl)-1-piperidyl]acetyl]-10,13-dimethyl-0 2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-6- one;- No. 5: (2S,3R,5R,10R,13R,14S,17S)-17-[2-(3-dimethylaminopropyl (methyl)amino)acetyl]-2,3,14-trihydroxy-10,13-dimethyl- 2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-6-5 one; - No. 6: 2-[2-oxo-2-[(2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-10,13-dimethyl-6-oxo-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-17-yl]ethyl]sulfanylacetate; - No. 7: (2S,3R,5R,10R,13R,14S,17S)-17-(2-ethylsulfanylacetyl)-2,3,14-5 trihydroxy-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro-1H-cyclopenta[a]phenanthren-6-one; - No. 8: (2S,3R,5R,10R,13R,14S,17S)-2,3,14-trihydroxy-17-[2-(2-hydroxyethylsulfanyl)acetyl]-10,13-dimethyl-2,3,4,5,9,11,12,15,16,17-decahydro-1H cyclopenta[a]phenanthren-6-one.

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