Glucosamine derivatives for prevention or treatment of joint disorders

By developing GlcNBu derivatives and prodrugs with improved bioavailability and stability, the challenges of poor pharmacokinetics in current glucosamine treatments are addressed, enhancing the therapeutic efficacy for osteoporosis and arthritis.

JP2025085647APending Publication Date: 2025-06-05RISEN (SUZHOU) PHARMA TECH CO LTD
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
JP2025023419
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-01-25
Filing Date
2025-02-17
Publication Date
2025-06-05

AI Technical Summary

Technical Problem

Current glucosamine derivatives, such as N-acetylglucosamine (GlcNAc) and N-butyrylglucosamine (GlcNBu), suffer from poor pharmacokinetic properties, including low oral bioavailability and rapid clearance, limiting their therapeutic efficacy in treating bone and joint disorders like osteoporosis and arthritis.

Method used

Development of GlcNBu derivatives and their prodrugs, which are designed to improve bioavailability, stability, and therapeutic efficacy by modifying the chemical structure to enhance absorption and reduce metabolism.

Benefits of technology

The proposed solution aims to improve the therapeutic efficacy of GlcNBu by enhancing its bioavailability, increasing its stability, and reducing its metabolism, thereby providing more effective treatment options for osteoporosis and arthritis.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2025085647000001_ABST
    Figure 2025085647000001_ABST
Patent Text Reader

Abstract

To provide compounds used for the prevention or treatment, in a mammal, of joint and bone disorders such as arthritis and osteoporosis.SOLUTION: The invention provides compounds of the formula (A) in the figure, and pharmaceutically acceptable salts and esters thereof, and pharmaceutical compositions thereof.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present disclosure relates to glucosamine derivatives, compositions thereof, and methods of their use in therapeutic applications, such as in the prevention and treatment of arthritis and osteoporosis. [Background technology]

[0002] Osteoporosis is a condition in which bones become less dense and more susceptible to fracture. In the United States, 53 million people already have osteoporosis or are at high risk due to low bone mass. Osteoporosis results in a loss of bone tissue, making bones less dense and more susceptible to fracture. This can lead to loss of height, severe back pain and changes in posture. Osteoporosis can impair walking ability and cause long-term or permanent disability.

[0003] Osteoporosis is known as a silent disease because it can progress undetected for years without symptoms until a fracture occurs. Osteoporosis is diagnosed by bone mineral density testing, which is a safe and painless means of detecting low bone density. The World Health Organization defines the presence of osteoporosis in humans in terms of low bone mineral density (BMD). Individuals whose BMD is 2.5 standard deviations below the mean of young healthy individuals of their respective sex for peak bone mass are considered to have osteoporosis. Individuals whose BMD is 1.0 standard deviations below the peak bone mass of their respective sex are considered to have osteopenia. Osteoporosis makes bones more likely to break. It is well known that women have a higher prevalence of osteoporosis and fractures compared to men, and that the prevalence of osteoporosis and the associated increased incidence of fractures occur after menopause. Low-impact injuries can result in osteoporotic fractures, or so-called "fragility fractures." Fractures can occur in individuals with normal bone, or with osteoporotic or osteopenic bone, following high impact as a result of significant trauma. Healing of high impact fractures depends on the stimulation of new bone formation. Localized osteoporosis can occur as a result of immobilization during fracture treatment.

[0004] Although BMD is a fairly good predictor of fracture risk, for example in the hip or spine, it is increasingly recognized that there are some limitations to the usefulness of BMD measurement. One reason is that DXA technology does not assess bone quality and is highly dependent on bone microarchitecture. Most used drugs for osteoporosis, such as bisphosphonates, increase BMD but do not improve bone microarchitecture or connectivity. Administration of parathyroid hormone improves trabecular structure. Glucosamine-based synthetic compounds are not known to improve BMD or bone microarchitecture.

[0005] Although there is currently no cure for the disease, the Food and Drug Administration has approved several medications to prevent and treat osteoporosis. Additionally, a diet rich in calcium and vitamin D, regular weight-bearing exercise, and a healthy lifestyle can prevent or attenuate the effects of the disease.

[0006] Arthritis is a general term for conditions that affect joints and surrounding tissues. Joints are the places in the body where bones meet, such as the knee, wrist, fingers, toes and hips. Two common types of arthritis are osteoarthritis and inflammatory arthritis, such as rheumatoid arthritis.

[0007] Osteoarthritis (OA) is a painful degenerative joint disease that often involves the small joints of the hips, knees, neck, lower back, or hands. OA usually develops in joints that have been injured by repetitive overuse from performing certain tasks, playing familiar sports, or carrying roughly excess weight. Eventually, this injury or repetitive impact thins or wears away the cartilage that cushions the ends of the bones in the joint. As a result, the bones wear together, causing a creaking sensation. The flexibility of the joint decreases, bone spurs develop, and the joints become swollen. Usually, the first symptom of OA is pain that worsens after exercise or immobility. Treatment usually involves painkillers, topical creams, or nonsteroidal anti-inflammatory drugs, appropriate exercise or physical therapy, joint splinting, or joint replacement surgery for severely damaged large joints, such as the knee or hip. Glucosamine is a popular, non-prescription, dietary supplement treatment for pain in OA.

[0008] Rheumatoid arthritis (RA) is an autoimmune inflammatory disease that usually involves various joints in the fingers, thumbs, wrists, elbows, shoulders, knees, feet and ankles. Autoimmune diseases are diseases in which the body releases enzymes that attack its own healthy tissues. In RA, these enzymes destroy the lining of the joints. This causes pain, swelling, stiffness, deformity, and reduced movement and function. People with RA may also have systemic symptoms such as fatigue, fever, weight loss, eye inflammation, anemia, subcutaneous nodules (bumps under the skin), or pleurisy (lung inflammation).

[0009] Subjects suffering from osteoporosis and arthritis share many common coping strategies. Many people with one or both of these conditions benefit from exercise programs, which may include physical therapy and rehabilitation. However, there is no real cure for either or both of these conditions, and more precise treatment is needed.

[0010] Glycoconjugates play important roles in many biological processes. The carbohydrate groups confer important physical properties, such as conformational stability, protease resistance, charge and water-binding capacity, as well as biological recognition, and sequence diversity provides signals for targeting proteins and cell-cell interactions (Paulson, JC, Trends in Biochemical Sciences, 1989, 14(7):272-6). Glycoconjugates of the connective tissue matrix consist of hexosamines that are N-acetylated. However, the function of the N-acetyl moiety is unknown.

[0011] The benefits of glucosamine (GlcN) in bone and joint disorders remain controversial. N-acetylation and other N-acylation of GlcN radically alters its biological properties. N-butyrylglucosamine (GlcNBu) successfully preserved the subchondral bone structure in a rat model of destructive arthritis. Studies have shown that feeding GlcNBu to OVX rats preserves bone mineral and some biological properties (Anastassiades, T. et al., Translational Research, 2013, 162(2):93-101). Regulatory applications for GlcNBu have also been described (see, e.g., U.S. Pat. No. 6,479,469 (entitled "Treatment of and Compositions Therefor") and U.S. Patent Application Publication No. 2006 / 0046976 (entitled "Methods for Improving Bone Mineral Density and Bone Microarchitecture or Binding in Mammals Using N-Acylated Glucosamine"), the contents of which are hereby incorporated by reference in their entireties.

[0012] However, glucosamine and GlcNBu have poor pharmacokinetic properties, limiting their therapeutic efficacy. Glucosamine has a low oral bioavailability (F) evaluated in rats (F: 0.19-0.21, Aghazadeh-Habashi, A. et al., J. Pharm. Pharm. Sci., 2002, 5:181-4), and is therefore typically administered in large amounts (e.g., 3 g / day, see Barclay, TS et al., The Annals of Pharmacotherapy, 1998, 32(5):574-579). Glucosamine is rapidly cleared from the circulation after oral or IV administration to the point where serum levels are undetectable, even when administered in very large amounts to humans. N-acetylglucosamine (GluNAc) has a longer half-life than glucosamine in either polyvalent or monovalent form when administered to humans (Talent JM & Gracy RW, Clinical therapeutics 1996, 18:1184-90), but no efficacy data have been documented. Low bioavailability has also been demonstrated with GlcNBu, with oral bioavailability ranging from 15% to 17% in Sprague Dawley (SD) rats. In addition to low bioavailability, GlcNBu is rapidly cleared in rats with a half-life of only about 20 min (data from iv, ip and po studies, Aghazadeh-Habashi A. et al., Journal of Pharmacy & Pharmaceutical Sciences, 2006, 9(3):359-364). [Prior art documents] [Patent documents]

[0013] [Patent Document 1] U.S. Patent No. 6,479,469 [Patent Document 2] US Patent Application Publication No. 2006 / 0046976 [Non-patent literature]

[0014] [Non-Patent Document 1] Paulson, J.C., Trends in Biochemical Sciences, 1989, 14(7): 272-276 [Non-Patent Document 2] Anastassiades, T. et al., Translational Research, 2013, 162(2): 93-101 [Non-Patent Document 3] Aghazadeh-Habashi, A. et al., J. Pharm. Pharm. Sci., 2002, 5: 181-184 [Non-Patent Document 4] Barclay, T.S. et al., The Annals of Pharmacotherapy, 1998, 32(5): 574-579 [Non-Patent Document 5] Talent J.M. & Gracy R.W., Clinical therapeutics 1996, 18: 1184-1190 [Non-Patent Document 6] Aghazadeh-Habashi A. et al., Journal of Pharmacy & Pharmaceutical Sciences, 2006, 9(3): 359-364 [Non-Patent Document 7] J. Pharm. Pharmaceut. Sci., 9(3): 359-364, 2006 [Non-Patent Document 8] R. B. Silverman, 1992, "The Organic Chemistry of Drug Design and Drug Action", Academic Press, Chapter 8 [Non-Patent Document 9] Bundgaard, Hans (ed.), Neth. (1985), "Design of Prodrugs". 360 pages, Elsevier, Amsterdam [Non-Patent Document 10] Stella, V., Borchardt, R., Hageman, M., Oliyai, R., Maag, H., Tilley, J. (eds.) (2007), "Prodrugs: Challenges and Rewards", XVIII, p. 1470, Springer [Non-Patent Document 11] Remington: The Science and Practice of Pharmacy, 20th ed., 2000 [Non-Patent Document 12] In Wells et al. (Eds.), Pharmacotherapy Handbook, 2nd ed., Appleton and Lange, Stamford, Conn. (2000) [Non-Patent Document 13] PDR Pharmacopoeia, Tarascon Pocket Pharmacopoeia 2000, Hardcover, Tarascon Publishing, Loma Linda, Calif. (2000) [Non-Patent Document 14] Kraus, VB et al., Osteoarthritis Cartilage, 2010, Suppl 3:35-52 Summary of the Invention [Problem to be solved by the invention]

[0015] It is an object of the present invention to ameliorate at least some of the shortcomings present in the prior art.Embodiments of the present technology are developed at least in part based on the inventors' realization that there is a need to treat bone and joint disorders, such as osteoporosis and arthritis.These and other needs can be met by the disclosure herein of GlcNBu derivatives and / or their prodrugs, pharmaceutical compositions, and uses for treating osteoporosis, arthritis, and other bone and joint disorders. [Means for solving the problem]

[0016] In a first broad aspect, a compound of formula A

[0017] [ka]

[0018] wherein X is O, N, or S; n is an integer from 1 to 6; and R is a substituted or unsubstituted C alkyl group selected from linear or branched alkyl, alkenyl, alkynyl, aryl, heteroaryl, arylalkyl, alkylaryl, cycloalkyl, and alkyl including cyclic or heterocyclic moieties. 2 ~C 18 is a substituent, R 2 is hydrogen, acyl or alkyl; R 1 , R 3 , R 4 and R 5 are independently hydrogen, a substituted or unsubstituted alkyl, aryl, arylalkyl, alkylaryl, cyclic or heterocyclic moiety, or an acyl group derived from a carboxylic acid, amino acid, or peptide, optionally bearing a protecting group, a phosphonyl group, or a sulfonyl group, with the proviso that R 1 , R 3 , R 4 and R 5 are not all hydrogen at the same time), or a pharma- ceutically acceptable salt or ester thereof.

[0019] In one embodiment, R 3 and R 4 together with the atoms to which they are attached form a substituted or unsubstituted heterocyclic ring.

[0020] In another embodiment, R 4 and R 5 together with the atoms to which they are attached form a substituted or unsubstituted heterocyclic ring.

[0021] In one embodiment, R 1 , R 3 , R 4 and R 5 One or more of 1 C(=O)-, and Q1 is selected from unsubstituted or substituted alkyl, alkenyl, alkynyl, aryl, heteroaryl, substituted or unsubstituted carbocyclic groups, substituted or unsubstituted heterocyclic groups, alkoxy, aryloxy, arylalkyloxy, and alkylaryloxy; Q 1 The amino or hydroxyl groups in, if present, may or may not be further substituted.

[0022] In another embodiment, R 1 , R 3 , R 4 and R 5 One or more of are independently selected from alkoxycarbonyl, aryloxycarbonyl, and arylalkoxycarbonyl.

[0023] In certain embodiments, R is a substituted or unsubstituted C alkyl group selected from linear or branched alkyl, alkenyl, alkynyl, aryl, heteroaryl, arylalkyl, alkylaryl, cycloalkyl, and alkyl including cyclic or heterocyclic moieties. 2 ~C 12 It is a substituent.

[0024] In one embodiment, the compound according to formula (A) is in the alpha-configuration at the anomeric center, in another embodiment, the compound according to formula (A) is in the beta-configuration at the anomeric center, and in a further embodiment, the compound according to formula (A) is a mixture of alpha- and beta-configuration at the anomeric center.

[0025] In some embodiments, n is 1 to 4; in other embodiments, n is 2; and in further embodiments, n is 1.

[0026] In another embodiment, a compound of formula (I)

[0027] [ka]

[0028] (In the formula, R, R 1 From R 5 and n is as previously defined), or a pharma- ceutically acceptable salt or ester thereof.

[0029] In one embodiment, the compound according to formula (I) is in the alpha-configuration at the anomeric center, in another embodiment, the compound according to formula (I) is in the beta-configuration at the anomeric center, and in a further embodiment, the compound according to formula (I) is a mixture of alpha- and beta-configuration at the anomeric center.

[0030] In some embodiments of formula (I), n is 1 to 4; in certain embodiments, n is 2; and in other embodiments, n is 1.

[0031] In certain embodiments of Formula (I), R 2 is hydrogen.

[0032] In another embodiment, a compound of formula (II)

[0033] [ka]

[0034] (In the formula, R 1 From R 5 and n is as previously defined), or a pharma- ceutically acceptable salt or ester thereof.

[0035] In one embodiment, the compound according to formula (II) is in the alpha-configuration at the anomeric center, in another embodiment, the compound according to formula (II) is in the beta-configuration at the anomeric center, and in a further embodiment, the compound according to formula (II) is a mixture of alpha- and beta-configuration at the anomeric center.

[0036] In some embodiments of formula (II), n is 1 to 4; in certain embodiments, n is 2; and in other embodiments, n is 1.

[0037] In certain embodiments of Formula (II), R 2 is hydrogen.

[0038] In another embodiment, a compound of formula (III)

[0039] [ka]

[0040] (In the formula, R 1 , R 3 From R 5 and n is as previously defined), or a pharma- ceutically acceptable salt or ester thereof.

[0041] In another embodiment, a compound of formula (IV)

[0042] [ka]

[0043] (In the formula, R 1 and R 3 From R 5 is as previously defined), or a pharma- ceutically acceptable salt or ester thereof.

[0044] In one embodiment of formula (IV), R 1 , R 3 , R 4 and R 5 are independently H, C 1 ~C 12 alkyl, acyl, or amino acid residue, with the proviso that R 1 , R 3 , R 4 and R 5 The condition is that all of the are not H at the same time.

[0045] In another embodiment of formula (IV), R 1 is H and R 3 , R 4 and R 5are independently H, C 1 ~C 6 alkyl, acyl, or a natural amino acid residue, with the proviso that R 3 , R 4 and R 5 The condition is that all of the are not H at the same time.

[0046] In another embodiment of formula (IV), R 1 and R 3 is H and R 4 and R 5 are independently H, C 1 ~C 6 acyl, or an unsubstituted or substituted naturally occurring aminoacyl group.

[0047] In one embodiment, the compound according to formula (IV) is in the alpha-configuration at the anomeric center, in another embodiment, the compound according to formula (IV) is in the beta-configuration at the anomeric center, and in a further embodiment, the compound according to formula (IV) is a mixture of alpha- and beta-configuration at the anomeric center.

[0048] In another embodiment of the compounds provided herein, R 2 is hydrogen (H).

[0049] In some embodiments, a compound of Formula (A), (I), (II), (III), or (IV) is not a derivative of N-acetylglucosamine.

[0050] In one embodiment, the C, H, O and / or N atoms in the compounds of formula (A), (I), (II), (III) or (IV) are at natural abundance or are isotopically enriched.

[0051] In another embodiment, the C atoms in the compounds of formula (A), (I), (II), (III) or (IV) are independently 12 C. 13 C or 14 C, and the H atoms are independently 1 H, D( 2 H), or T( 3H), and the O-atoms are independently 16 O. 17 O, or 18 O, and the N atoms are independently 14 N or 15 It's N.

[0052] In some embodiments, at least one of the C, H, O and N atoms in a compound of Formula (A), (I), (II), (III) or (IV) is isotopically enriched.

[0053] In some embodiments, the compounds of formula (A), (I), (II), (III) or (IV) are prodrugs of GlcNBu. Without wishing to be limited by theory, in some cases, the compounds of formula (A), (I), (II), (III) or (IV) may be converted to GlcNBu in vivo after administration to a subject, thus acting as prodrugs of GlcNBu. In such embodiments, the compounds of formula (A), (I), (II), (III) or (IV) may be used to improve the therapeutic efficacy of GlcNBu in the treatment of bone and joint disorders, such as osteoporosis and / or arthritis, by, for example, improving the bioavailability, increasing the stability and / or decreasing the metabolism of GlcNB compared to administration of GlcNBu itself.

[0054] In some embodiments, the compound of Formula (A), (I), (II), (III) or (IV) is a compound set forth in Table 1, or a pharma- ceutically acceptable salt, ester, chelator, hydrate, solvate, stereoisomer, or polymorphic form thereof.

[0055] [Table 1A]

[0056] [Table 1B]

[0057] [Table 1C]

[0058] [Table 1D]

[0059] [Table 1E]

[0060] In some embodiments, the compound of Formula (A), (I), (II), (III) or (IV) is a compound set forth in Table 2, or a pharma- ceutically acceptable salt, ester, chelator, hydrate, solvate, stereoisomer, or polymorphic form thereof.

[0061] [Table 2A]

[0062] [Table 2B]

[0063] [Table 2C]

[0064] [Table 2D]

[0065] [Table 2E]

[0066] [Table 2F]

[0067] [Table 2G]

[0068] In some embodiments, the compound of Formula (A), (I), (II), (III) or (IV) is a compound set forth in Table 3, or a pharma- ceutically acceptable salt, ester, chelator, hydrate, solvate, stereoisomer, or polymorphic form thereof.

[0069] [Table 3A]

[0070] [Table 3B]

[0071] [Table 3C]

[0072] [Table 3D]

[0073] [Table 3E]

[0074] [Table 3F]

[0075] [Table 3G]

[0076] [Table 3H]

[0077]

Table 3I

[0078]

Table 3J

[0079]

Table 3K

[0080]

Table 3L

[0081]

Table 3M

[0082]

Table 3N

[0083]

Table 3O

[0084]

Table 3P

[0085] In a second broad aspect, a pharmaceutical composition is provided that includes a compound described herein, or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier. In some embodiments, a pharmaceutical composition is provided that includes a compound of any one of formulas (A), and (I) to (IV), or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier. In some embodiments, a pharmaceutical composition is provided that includes a compound of any one of formulas (A), and (I) to (IV), or a pharma- ceutically acceptable salt thereof, wherein the compound is not a derivative of N-acetylglucosamine.

[0086] In a third broad aspect, there is provided a method for preventing or treating a bone or joint disease or disorder in a subject in need thereof, comprising administering to the subject an effective amount of a compound and / or pharmaceutical composition as described herein. In one embodiment, the bone or joint disease is osteoporosis. In one embodiment, the bone or joint disease is arthritis. Non-limiting examples of bone or joint diseases and disorders that may be treated according to the methods provided herein include osteoporosis, osteopenia, and arthritis, including osteoarthritis, inflammatory arthritis (e.g., rheumatoid arthritis, psoriatic arthritis), traumatic arthritis, osteoarthritis, dysplastic arthritis, and related conditions.

[0087] In some embodiments, a compound of Formulae (A) and (I) through (IV), and / or a pharmaceutical composition thereof, is administered to improve the therapeutic efficacy of GlcNBu in a subject as compared to administration of GlcNBu.

[0088] In some embodiments, the compounds of Formulae (A) and (I) through (IV) and / or pharmaceutical compositions thereof are administered to a subject to improve the bioavailability of GlcNBu, the AUC of GlcNBu in blood or plasma, the C max , GlcNBu T max , GlcNBu t 1 / 2 , to enhance the therapeutic biodistribution of GlcNBu, and / or the bioabsorbability of GlcNBu.

[0089] In some embodiments, the effective therapeutic level of GlcNBu in a selected tissue of a subject is increased following administration of a compound of any of Formulas (A), and (I)-(IV), and / or pharmaceutical compositions thereof, compared to administration of GlcNBu itself.

[0090] In some embodiments, the compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to reduce the metabolism of GlcNBu in a subject, as compared to administration of GlcNBu itself.

[0091] In some embodiments, compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to reduce the side effects of GlcNBu in a subject compared to administration of GlcNBu itself.

[0092] In some embodiments, a compound of Formula (A) and (I) through (IV), and / or a pharmaceutical composition thereof, is administered to enhance chondrogenesis in a subject.

[0093] In some embodiments, a compound of Formula (A) and (I) through (IV), and / or a pharmaceutical composition thereof, is administered to enhance cell proliferation or growth of chondrocytes in a subject.

[0094] In some embodiments, the compounds of Formulae (A) and (I) through (IV) and / or pharmaceutical compositions thereof are administered to relieve symptoms, such as joint stiffness and / or limited mobility, in a subject.

[0095] In some embodiments, the compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to enhance the production of glycosaminoglycans in a subject.

[0096] In some embodiments, the compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to increase bone mineral density (BMD) in a subject.

[0097] In some embodiments, the compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to improve bone microarchitecture and / or bone integrity in a subject.

[0098] In some embodiments, the compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to treat low BMD in a subject.

[0099] In some embodiments, the compounds of Formulae (A) and (I) through (IV), and / or pharmaceutical compositions thereof, are administered to prevent or reduce the risk of bone fracture in a subject.

[0100] In some embodiments, a compound of Formula (A) and (I)-(IV), and / or a pharmaceutical composition thereof, is administered to treat or prevent a fracture in a subject, such as a low impact fracture and / or a high impact fracture.

[0101] In another broad aspect, a kit is provided that includes one or more compounds or pharmaceutical compositions described herein. The kit may further include one or more additional therapeutic agents and / or instructions, e.g., instructions for using the kit, for treating a subject with a bone or joint disorder, e.g., osteoporosis or arthritis.

[0102] For a better understanding of the present invention and to show more clearly how it may be carried into effect, reference will now be made, by way of example, to the accompanying drawings, which illustrate aspects and features in accordance with embodiments of the invention, and in which: [Brief description of the drawings]

[0103] [Figure 1]FIG. 1 shows mean plasma GLcNBu concentration versus time curves following oral administration of GlcNBu and compound 16 at a dose of 0.93 mmol / kg. [Figure 2A] FIG. 1 shows a comparison of mean plasma GLcNBu concentration versus time curves following oral administration of compounds 5, 6, 12, 14 and 18 at a dose of 0.93 mmol / kg. [Figure 2B] FIG. 1 shows a comparison of mean plasma GLcNBu concentration versus time curves following oral administration of compounds 41, 80 and 88 at a dose of 0.93 mmol / kg. [Diagram 3] Figure 1 shows the mean plasma concentration versus time curves of GLcNBu after administration by the different routes indicated (iv, ip and po, ​​respectively). Inset is the expanded curve after oral administration (J. Pharm. Pharmaceut. Sci., 9(3):359-364, 2006). [Figure 4A] Figure 4 shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and in animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4A: Nature of major tissues. [Figure 4B] Figure 4A shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and in animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4B: Surface regularity. [Figure 4C] Figure 4 shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4C: Chondrocyte population. [Figure 4D] Figure 4 shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and in animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4D: Structural integrity. [Figure 4E] Figure 4 shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and in animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4E: Degenerative changes in cartilage. [Figure 4F] Figure 4 shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and in animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4F: Inflammatory response in the subchondral bone region. [Figure 4G] 4A-4D show various histological parameters obtained in the MIA rat model for osteoarthritis in control animals (G1) and animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4G: angiogenesis; [Figure 4H] Figure 3 shows various histological parameters obtained in the MIA rat model for osteoarthritis (G1) in control animals (G1) and in animals treated with 234 mg / kg (G2) or 468 mg / kg (G3) of compound 16, including: 4H: osteophytes. [Diagram 5] Figure 1 shows the results of weight bearing in rats in the MMT model treated with compound 16 (G2) or vehicle (G1). *: Vs G1, P<0.05, **: Vs G1, P<0.01. [Figure 6A] Figure 6 shows various histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2), including: 6A: Nature of major tissues. [Figure 6B] Figure 6 shows different histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2): 6B: Surface regularity. [Figure 6C]Figure 6 shows various histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2), including: 6C: Structural integrity. [Figure 6D] Figure 6 shows various histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2): 6D: Chondrocyte population (*: Vs G1, P<0.05). [Figure 6E] Figure 6 shows different histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2): 6E: Degenerative changes in cartilage. [Figure 6F] Figure 6 shows different histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2): 6F: Inflammatory response in the subchondral bone region. [Figure 6G] Figure 6 shows different histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2): 6G: Angiogenesis. [Figure 6H] 6A-6D show various histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2), including: 6H: osteophytes; [Figure 6I] Figure 6 shows different histological parameters obtained in the MMT rat model for osteoarthritis in control animals (G1) and in animals treated with compound 16 (G2): 6I: Global scoring. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0104] definition In order to provide a clear and consistent understanding of the terms used herein, certain definitions are provided below. Furthermore, unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains.

[0105] The use of the words "a" or "an," when used in conjunction with "comprising" in the claims and / or this specification, can mean "one," but is also consistent with the meanings of "one or more," "at least one," and "one or more." Similarly, the word "another" can mean at least a second, or more.

[0106] As used in the specification and claims, the words "comprising" (and any form including, e.g., "comprise" and "comprises"), "having" (and any form including, e.g., "have" and "has"), "including" (and any form including, e.g., "include" and "includes"), or "containing" (and any form including, e.g., "contain" and "contains") are inclusive or open-ended and do not exclude further, unrecited elements or process steps.

[0107] The term "about" is used to indicate a value that includes the inherent variation of error for the device or method being employed to determine the value.

[0108] The term "derivative" as used herein is understood to be a substance that is structurally similar to another compound, but differs in some structural details.

[0109] This description refers to several chemical terms and abbreviations used by those of ordinary skill in the art. Nonetheless, definitions of selected terms are provided for clarity and consistency.

[0110] As used herein, the term "alkyl" refers to a saturated hydrocarbon having from 1 to 12 carbon atoms, including straight chain, branched and cyclic alkyl groups. Examples of alkyl groups include, but are not limited to, methyl, ethyl, propyl, butyl, pentyl, hexyl, heptyl, octyl, nonyl, decyl, isopropyl, tert-butyl, sec-butyl, isobutyl, cyclopropyl, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, and the like. The term alkyl includes both unsubstituted and substituted alkyl groups. "C 1 ~C n The term "alkyl" (where n is an integer from 2 to 12) refers to an alkyl group having 1 to the indicated "n" carbon atoms. An alkyl residue can be substituted or unsubstituted. In some embodiments, for example, an alkyl can be substituted with hydroxyl, amino, carboxyl, carboxylic acid ester, amide, carbamate, or aminoalkyl.

[0111] As used herein, the term "acyclic" refers to an organic moiety without a ring system. The term "aliphatic group" includes organic moieties characterized by straight or branched chains, typically having from 1 to 15 carbon atoms. Aliphatic groups include non-cyclic alkyl, alkenyl, and alkynyl groups.

[0112] As used herein, the term "alkenyl" refers to an unsaturated hydrocarbon having 2 to 12 carbon atoms and containing 1 to 6 carbon-carbon double bonds, including straight-chain, branched, and cyclic non-aromatic alkenyl groups. Examples of alkenyl groups include, but are not limited to, vinyl, allyl, 1-propen-2-yl, 1-buten-3-yl, 1-buten-4-yl, 2-buten-4-yl, 1-penten-5-yl, 1,3-pentadiene-5-yl, cyclopentenyl, cyclohexenyl, ethylcyclopentenyl, ethylcyclohexenyl, and the like. The term alkenyl includes both unsubstituted and substituted alkenyl groups. "C 2 ~C n The term "alkenyl" (where n is an integer from 3 to 12) refers to an alkenyl group having "n" carbon atoms, designated from 2 through 12.

[0113] As used herein, the term "alkynyl" refers to an unsaturated hydrocarbon having from 2 to 12 carbon atoms and containing from 1 to 6 carbon-carbon triple bonds, including straight-chain, branched, and cyclic non-aromatic alkynyl groups. Examples of alkynyl groups include, but are not limited to, ethynyl, 1-propyn-3-yl, 1-butyn-4-yl, 2-butyn-4-yl, 1-pentyn-5-yl, 1,3-pentadiyn-5-yl, and the like. The term alkynyl includes both unsubstituted and substituted alkynyl groups. "C 2 ~C n The term "alkynyl," where n is an integer from 3 to 12, refers to an alkynyl group having "n" carbon atoms, designated from 2 through 12.

[0114] As used herein, unless the number of carbons is specifically specified, "lower" as in "lower aliphatic," "lower alkyl," "lower alkenyl," and "lower alkynyl" refers to a moiety having at least 1 (2 for alkenyl and alkynyl) and no more than 6 carbon atoms.

[0115] The terms "cycloalkyl", "alicyclic", "carbocyclic" and equivalent expressions refer to groups containing saturated or partially unsaturated carbocyclic rings in a single, spiro (sharing one atom) or fused (sharing at least one bond) carbocyclic ring system having from 3 to 15 ring members. Examples of cycloalkyl groups include, but are not limited to, cyclopropyl, cyclobutyl, cyclopentyl, cyclopenten-1-yl, cyclopenten-2-yl, cyclopenten-3-yl, cyclohexyl, cyclohexen-1-yl, cyclohexen-2-yl, cyclohexen-3-yl, cycloheptyl, bicyclo[4,3,0]nonanyl, norbornyl, and the like. The term cycloalkyl includes both unsubstituted and substituted cycloalkyl groups. "C 3 ~C n The term "cycloalkyl" where n is an integer from 4 to 15, refers to a cycloalkyl group having "n" carbon atoms, designated from 3 through 15, in its ring structure. Unless the number of carbons is specifically specified, "lower cycloalkyl" groups used herein have at least 3, and no more than 8, carbon atoms in the ring structure.

[0116] Cycloalkyl residues may be saturated or contain one or more double bonds in the ring system. In particular, they may be saturated or contain one double bond in the ring system. In unsaturated cycloalkyl residues, the double bond may be in any suitable position. Monocycloalkyl residues are, for example, cyclopropyl, cyclobutyl, cyclopentyl, cyclopentenyl, cyclohexyl, cyclohexenyl, cycloheptyl, cycloheptenyl, cyclooctyl, cyclononyl, cyclodecyl, cycloundecyl, cyclododecyl or cyclotetradecyl, which are, for example, C 1 ~ 4 It may be substituted by alkyl. Examples of substituted cycloalkyl residues are 4-methylcyclohexyl and 2,3-dimethylcyclopentyl. Examples of parent structures of bicyclic ring systems are norbornane, bicyclo[2.2.1]heptane, bicyclo[2.2.2]octane and bicyclo[3.2.1]octane.

[0117] The term "heterocycloalkyl" and equivalent expressions refer to a heterocycloalkyl group having 3 to 15 ring members and containing 1 to 6 heteroatoms (e.g., N, O, S, P) or groups containing such heteroatoms (e.g., NH, NR x (R X teeth 、 alkyl, acyl, aryl, heteroaryl or cycloalkyl), PO 2 , SO, SO 2 Heterocycloalkyl groups refer to groups containing saturated or partially unsaturated carbocyclic rings in single, spiro (sharing one atom), or fused (sharing at least one bond) carbocyclic ring systems, including aryl, aryl, aryls ... Examples of heterocycloalkyl include, but are not limited to, pyrrolinyl, indolinyl, 2H-pyranyl, 4H-pyranyl, dioxanyl, 1,3-dioxolanyl, pyrazolinyl, dithianyl, dithiolanyl, dihydropyranyl, dihydrothienyl, dihydrofuranyl, pyrazolidinyl, imidazolinyl, imidazolidinyl, 3-azabicyclo[3,1,0]hexanyl, 3-azabicyclo[4,1,0]heptanyl, 3H-indolyl, quinolizinyl, and sugar. The term heterocycloalkyl includes both unsubstituted and substituted heterocycloalkyl groups. 3 ~C nThe term "heterocycloalkyl" where n is an integer from 4 to 15 refers to a heterocycloalkyl group having "n" atoms, designated from 3, in its ring structure which contains at least one hetero group or atom, as defined above. Unless the number of carbons is specifically specified, "lower heterocycloalkyl" groups as used herein have at least 3, and no more than 8, carbon atoms in the ring structure.

[0118] The terms "aryl" and "aryl ring" refer to aromatic groups having 4n+2 π (pi) electrons (where n is an integer from 1 to 3) and 6 to 14 ring atoms in a conjugated monocyclic or polycyclic ring system (fused or unfused). Polycyclic ring systems contain at least one aromatic ring. Aryl can be directly bonded or can be a C 1 ~C 3 The attachment may be via an alkyl group (also called arylalkyl or aralkyl). Examples of aryl groups include, but are not limited to, phenyl, benzyl, phenethyl, 1-phenylethyl, tolyl, naphthyl, biphenyl, terphenyl, indenyl, benzocyclooctenyl, benzocycloheptenyl, azulenyl, acenaphthylenyl, fluorenyl, phenanthrenyl, anthracenyl, and the like. The term aryl includes both unsubstituted and substituted aryl groups. "C 6 ~C n The term "aryl" (where n is an integer from 6 to 15) refers to an aryl group having "n" atoms, designated from 6, in the ring structure, including at least one hetero group or atom as defined above.

[0119] The terms "heteroaryl" and "heteroaryl ring" refer to a heteroaryl ring having "4n+2" π (pi) electrons (where n is an integer from 1 to 3) in a conjugated monocyclic or polycyclic system (fused or unfused) and containing from 1 to 6 heteroatoms (e.g., N, O, S) or groups containing such heteroatoms (e.g., NH, NR x (R X teeth 、A heteroaryl group refers to an aromatic group having 5 to 14 ring members, including alkyl, acyl, aryl, heteroaryl, or cycloalkyl, such as SO. A polycyclic ring system includes at least one heteroaromatic ring. Heteroaryl can be directly bonded or can be a C 1 ~C 3 The linkage may be via an alkyl group (also referred to as heteroarylalkyl or heteroaralkyl). Heteroaryl groups may be C-linked or heteroatom-linked (e.g., via a nitrogen atom) where possible. Examples of heteroaryl groups are pyridyl, imidazolyl, pyrimidinyl, pyrazolyl, triazolyl, tetrazolyl, furyl, thienyl, isoxazolyl, thiazolyl, oxazolyl, isothiazolyl, pyrrolyl, quinolinyl, isoquinolinyl, indolyl, isoindolyl, chromenyl, isochromenyl, benzimidazolyl, benzofuranyl, cinnolinyl, indazolyl, indolizinyl, phthalazinyl, pyridazinyl, pyrazinyl, triazinyl, isoindolyl, pteridinyl. Heteroaryl groups include, but are not limited to, purinyl, oxadiazolyl, thiadiazolyl, furazanyl, benzofurazanyl, benzothiophenyl, benzothienyl, benzothiazolyl, benzoxazolyl, quinazolinyl, quinolizinyl, quinolonyl, isoquinolonyl, quinoxalinyl, naphthyridinyl, furopyridinyl, carbazolyl, phenanthridinyl, acridinyl, perimidinyl, phenanthrolinyl, phenazinyl, phenothiazinyl, phenoxazinyl, dibenzofuranyl, and the like. The term heteroaryl includes both unsubstituted and substituted heteroaryl groups. "C 5 ~C n The term "heteroaryl" (where n is an integer from 6 to 15) refers to a heteroaryl group having "n" atoms, designated from 5, in the ring structure, including at least one hetero group or atom as defined above.

[0120] The term "heterocycle" or "heterocyclic" includes heterocycloalkyl and heteroaryl groups. Examples of heterocycles are acridinyl, azocinyl, benzimidazolyl, benzofuranyl, benzothiofuranyl, benzothiophenyl, benzoxazolyl, benzthiazolyl, benztriazolyl, benztetrazolyl, benzisoxazolyl, benzisothiazolyl, benzimidazolinyl, carbazolyl, 4αH-carbazolyl, carbolinyl, chromanyl, chromenyl, cinnolinyl, decahydroquinolinyl, 2H,6H-1,5,2-dithiazinyl, dihydrofuro[2,3-b]tetrahydrofuran ... furanyl, furazanyl, imidazolidinyl, imidazolinyl, imidazolyl, 1H-indazolyl, indolenyl, indolinyl, indolizinyl, indolyl, 3H-indolyl, isobenzofuranyl, isochromanyl, isoindazolyl, isoindolinyl, isoindolyl, isoquinolinyl, isothiazolyl, isoxazolyl, methylenedioxyphenyl, morpholinyl, naphthyridinyl, octahydroisoquinolinyl, oxadiazolyl, 1,2,3-oxadiazolyl, 1,2,4-Oxadiazolyl, 1,2,5-Oxadiazolyl, 1,3,4-Oxadiazolyl, oxazolidinyl, oxazolyl, oxazolidinyl, pyrimidinyl, phenanthridinyl, phenanthrolinyl, phenazinyl, phenothiazinyl, phenoxathiinyl, phenoxazinyl, phthalazinyl, piperazinyl, piperidinyl, piperidonyl, 4-piperidonyl, piperonyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolidinyl, pyrazolinyl, pyrazolyl, pyrida diphenyl, pyridooxazole, pyridoimidazole, pyridothiazole, pyridinyl, pyridyl, pyrimidinyl, pyrrolidinyl, pyrrolinyl, 2H-pyrrolyl, pyrrolyl, quinazolinyl, quinolinyl, 4H-quinolizinyl, quinoxalinyl, quinuclidinyl, tetrahydrofuranyl, tetrahydroisoquinolinyl, tetrahydroquinolinyl, tetrazolyl, 6H-1,2,5-thiadiazinyl, 1,2,3-thiadiazolyl, 1,2,4-thiadiazolyl, 1,2,5-thiadiazolyl, 1,3,Examples include, but are not limited to, 4-thiadiazolyl, thianthrenyl, thiazolyl, thienyl, thienothiazolyl, thienoxazolyl, thienoimidazolyl, thiophenyl, triazinyl, 1,2,3-triazolyl, 1,2,4-triazolyl, 1,2,5-triazolyl, 1,3,4-triazolyl, xanthenyl, and the like. The term heterocycle includes both unsubstituted and substituted heterocyclic groups.

[0121] As used herein, the term "amine" or "amino" refers to a group of the formula -NR a R b (In the formula, R a and R b are each independently hydrogen, alkyl, aryl, or heterocyclyl, or R a and R b refers to an unsubstituted or substituted portion of (which, together with the nitrogen atom bound thereto, form a heterocyclic ring). The term amino includes compounds or moieties in which a nitrogen atom is covalently bound to at least one carbon or heteroatom. Thus, as used herein, the terms "alkylamino" and "dialkylamino" refer to compounds having one and at least two carbon or heteroatoms, respectively, bound thereto. 1 ~C 6 It refers to an amine group bearing an alkyl group. The terms "arylamino" and "diarylamino" include groups in which the nitrogen is bound to at least one or two aryl groups, respectively. The terms "amide" or "aminocarbonyl" include compounds or moieties which contain a nitrogen atom which is bound to the carbon of a carbonyl or thiocarbonyl group. The term acylamino refers to an amino group directly bonded to an acyl group, as defined herein.

[0122] The term "nitro" means -NO 2The terms "halo" and "halogen" refer to bromine, chlorine, fluorine or iodine substituents, the terms "thiol", "thio" or "mercapto" refer to SH and the terms "hydroxyl" or "hydroxy" refer to -OH. The term "alkylthio" refers to an alkyl group having a sulfhydryl group attached thereto. Suitable alkylthio groups include groups having 1 to about 12 carbon atoms, preferably 1 to about 6 carbon atoms. As used herein, the term "alkylcarboxyl" refers to an alkyl group having a carboxyl group attached thereto.

[0123] The term "alkoxy" or "lower alkoxy" as used herein means an alkyl group having an oxygen atom attached thereto. Representative alkoxy groups include groups having 1 to about 6 carbon atoms, such as methoxy, ethoxy, propoxy, tert-butoxy, and the like. Examples of alkoxy groups include methoxy, ethoxy, isopropyloxy, propoxy, butoxy, pentoxy, fluoromethoxy, difluoromethoxy, trifluoromethoxy, chloromethoxy, dichloromethoxy, trichloromethoxy groups, and the like. The term alkoxy includes both unsubstituted or substituted alkoxy groups, as well as perhalogenated alkyloxy groups.

[0124] The term "carbonyl" or "carboxy" includes compounds and moieties which contain a carbon connected to an oxygen atom with a double bond. Examples of carbonyl-containing moieties include aldehydes, ketones, carboxylic acids, amides, esters, anhydrides, and the like.

[0125] The term "acyl" refers to a carbonyl group (i.e., formyl), an aliphatic group (C 1 ~C 6 Alkyl, C 1 ~C 6 Alkenyl, C 1 ~C 6 Alkynyl, e.g., acetyl), cycloalkyl groups (C 3 ~C 8 Cycloalkyl), heterocyclic groups (C 3~C 8 Heterocycloalkyl and C 5 ~C 6 Heteroaryl), aromatic groups (C 6 Aryl, for example benzoyl. The acyl group may be an unsubstituted or substituted acyl group, for example salicyloyl.

[0126] It should be understood that "substituted" or "substituted with" includes the implicit proviso that such substitution results in a stable compound, i.e., a compound that does not undergo spontaneous transformation, e.g., by rearrangement, cyclization, elimination, etc., subject to the permissible valence of the substituted atom and substituent. As used herein, the term "substituted" is intended to include all permissible substituents of organic compounds. In a broad aspect, the permissible substituents include acyclic and cyclic, branched and unbranched, carbocyclic and heterocyclic, aromatic and nonaromatic substituents of organic compounds. The permissible substituents may be one or more. The term "substituted" when referring to any of the aforementioned groups refers to a substituent, at one or more positions, such as acyl, amino (including simple amino, mono- and dialkylamino, mono- and diarylamino, and alkylarylamino), acylamino (including carbamoyl and ureido), alkylcarbonyloxy, arylcarbonyloxy, alkoxycarbonyloxy, alkoxycarbonyl, carboxy, carboxylate, aminocarbonyl, mono- and dialkylaminocarbonyl, cyano, azido, halogen, hydroxyl, nitro , trifluoromethyl, thio, alkylthio, arylthio, alkylthiocarbonyl, thiocarboxylate, lower alkyl, lower alkenyl, lower alkynyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl, lower alkoxy, aryloxy, aryloxycarbonyloxy, benzyloxy, benzyl, sulfinyl, alkylsulfinyl, sulfonyl, sulfate, sulfonate, sulfonamide, phosphate, phosphonate, phosphinate, oxo, guanidine, imino, formyl, etc. Any of the above substituents can be further substituted where permitted, for example, when the group contains an alkyl group, an aryl group, or other.

[0127] The term "solvate" refers to a physical association of a compound with one or more solvent molecules, whether organic or inorganic. This physical association includes hydrogen bonding. In some instances, a solvate is capable of isolation, for example, when one or more solvent molecules are incorporated into the crystal lattice of a crystalline solid. "Solvate" encompasses both solution-phase and isolatable solvates. Exemplary solvates include, but are not limited to, hydrates, ethanolates, methanolates, hemiethanolates, and the like.

[0128] Isotopic enrichment is a process by which the relative abundance of isotopes of a given element is altered, thus producing one form of an element enriched (i.e., enriched) in one particular isotope and depleted or depleted in another isotopic form. As used herein, an "isotopically enriched" compound or derivative refers to a compound enriched in one or more particular isotopic forms, i.e., enriched (i.e., enriched) in one or more elements in one or more particular isotopes. Generally, an isotopically enriched compound or derivative is enriched in a particular isotopic form of an element at a particular position of the compound. However, it should be understood that a compound may be enriched in more than one isotopic form of an element. Furthermore, an isotopically enriched compound may be a mixture of isotopically enriched forms enriched in more than one particular isotope, more than one element, or both.

[0129] Under normal conditions, deuterium (D or 2 H) (a stable isotope of hydrogen whose mass is approximately twice that of the normal isotope), nitrogen-15 ( 15 N), Carbon-13( 13 C), oxygen-18( 18 O) and oxygen-17( 17The natural abundances of 1,2,3,4,5,6,7,8,8,9,10,11,12,13,14,15,16,17,18,19,18,19,20,14,15,16,17,18,19,21,22,17,23,18,19,24,19,25,26,27,28,30,31,32,33,34,35,36,37,38,40,41,42,43,44,45,50,51,60,61,72,73,74,55,62,75,76,77,82,98,87,99,99,100,100,110,120,130,140,150,160,170,180,190,192,194,195,196,197,198,199,100,100,110,120,130,140,150,160,170 ... In one embodiment, the level of isotopic enrichment in the isotopically enriched compounds of the invention (such as a compound of any one of formulas (A), (I), (II), (III) or (IV)) is about 5% or more, or about 10% or more. In another embodiment, the level of isotopic enrichment in the isotopically enriched compounds of the invention is about 20% or more, or about 50% or more. In yet another embodiment, the level of isotopic enrichment in the isotopically enriched compounds of the invention is about 75% or more, or about 90% or more. In yet another aspect, the level of isotopic enrichment in the isotopically enriched compounds of the invention is about 95% or more, or 100%. It should be understood that the level of isotopic enrichment for a particular compound, or for a particular element of a compound, is selected based on several properties of the compound, such as chemical, pharmacokinetic and therapeutic profile, in order to improve the therapeutic efficacy, therapeutic biodistribution, bioavailability, metabolism, stability and / or pharmacokinetic profile of the compound.

[0130] As used herein, "natural abundance element" and "natural abundance atom" refer to the element or atom, respectively, having the atomic mass that is most commonly found in nature. For example, natural abundance hydrogen is 1 H (protium), and the natural abundance of nitrogen is 14 N, and the natural abundance of oxygen is 16 O, and the natural abundance of carbon is 12C, etc. A "non-isotopically enriched" compound is one in which all atoms or elements in the compound are isotopes of their natural abundance, i.e., all atoms or elements have the atomic mass that is most abundant in nature. This is in contrast to an isotopically enriched compound, in which one or more elements are enriched in one or more particular isotopic forms that are not in their natural abundance.

[0131] As used herein, "D" stands for deuterium ( 2 H), and "T" stands for tritium ( 3 H).

[0132] "Pharmaceutically acceptable salt" of a compound means a salt of the compound that is pharma- ceutically acceptable. Salts of compounds that retain or improve the biological effectiveness and properties of the unaltered free acids and bases as defined herein, or that utilize essentially basic, acidic or charged functional groups on the molecule and are not biologically or otherwise undesirable, are desirable. Examples of pharma-ceutically acceptable salts are also described, for example, in Berge et al., "Pharmaceutical Salts," J. Pharm. Sci. 66, pp. 1-19 (1977). Non-limiting examples of such salts include: (1) inorganic acids, such as hydrochloric acid, hydrobromic acid, hydroiodic acid, sulfuric acid, sulfamic acid, nitric acid, phosphoric acid, acid addition salts formed on basic or positively charged functional groups by adding carbonate forming agents, or organic acids, such as acetic acid, propionic acid, lactic acid, oxalic acid, glycolic acid, pivalic acid, t-butylacetic acid, β-hydroxybutyric acid, valeric acid, hexanoic acid, cyclopentanepropionic acid, pyruvic acid, malonic acid, succinic acid, malic acid, maleic acid, fumaric acid, tartaric acid, citric acid, benzoic acid, 3-(4-hydroxybenzoyl)benzoic acid, cinnamic acid, mandelic acid, methanesulfonic acid, ethanesulfonic acid, 1,2-ethanedisulfonic acid, 2-methyl-3-phenylpropionic acid, 2-methyl-3-phenylpropionic acid, 1, ... -Acid addition salts formed with hydroxyethanesulfonic acid, cyclohexylaminosulfonic acid, benzenesulfonic acid, sulfanilic acid, 4-chlorobenzenesulfonic acid, 2-napthalenesulfonic acid, 4-toluenesulfonic acid, camphorsulfonic acid, 3-phenylpropionic acid, laurylsulfonic acid, lauryl sulfate, oleic acid, palmitic acid, stearic acid, lauric acid, embonic (pamoic) acid, palmoic acid, pantothenic acid, lactobionic acid, alginic acid, galactaric acid, galacturonic acid, gluconic acid, glucoheptonic acid, glutamic acid, naphthoic acid, hydroxynaphthoic acid, salicylic acid, ascorbic acid, stearic acid, muconic acid, etc. (2) Base addition salts formed when an acidic proton is present in the unchanged compound are replaced by a metal ion including an alkali metal ion (e.g., lithium, sodium, potassium), alkaline earth ion (e.g., magnesium, calcium, barium) or other metal ion such as aluminum, zinc, iron, etc., or are coordinated to an organic base such as ammonia, ethylamine, diethylamine, ethylenediamine, N,N'-dibenzylethylenediamine, ethanolamine, diethanolamine, triethanolamine, tromethamine, N-methylglucamine, piperazine, chloroprocaine, procaine, choline, lysine, etc.

[0133] Pharmaceutically acceptable salts can be synthesized from the unchanged form containing a basic or acidic moiety by conventional chemical methods. Generally, such salts are prepared by reacting the free acid or base form of the compound with a stoichiometric amount of the appropriate base or acid in water or an organic solvent, or in a mixture of the two. The salts can be prepared in situ during the final isolation or purification of the compound, or by separately reacting the free acid or base form of the compound with the corresponding desired base or acid and isolating the salt thus formed. The term "pharmaceutical acceptable salts" also includes zwitterionic compounds containing a cationic group covalently bonded to an anionic group, since these are "internal salts". It should be understood that all of the acid, salt, base, and other ionic and non-ionic forms of the compounds described herein are intended to be encompassed. For example, if a compound is shown herein as an acid, the salt form of the compound is also encompassed. Similarly, if a compound is shown herein as a salt, the acid and / or base form is also encompassed.

[0134] As used herein, "AUC" refers to the area under the curve that represents the concentration of a compound in a biological sample from a subject as a function of time after administration of the compound to the subject. Non-limiting examples of such biological samples include biological fluids, such as plasma, blood, cerebrospinal fluid (CSF) and saliva, organ homogenates, such as brain and liver homogenates, and the like. AUC can be determined by measuring the concentration of the compound in a biological sample, such as plasma, blood, CSF or brain homogenate, at various time intervals using a method, such as liquid chromatography-tandem mass spectrometry (LC / MS / MS), and calculating the area under the concentration versus time curve. Suitable methods for calculating AUC from drug concentration versus time curves are well known in the art. As relevant to the present disclosure, the AUC of GlcNBu can be determined by measuring the concentration of GlcNBu in the subject's plasma, blood or tissue homogenate after oral administration of a compound described herein to the subject.

[0135] "Bioavailability" refers to the rate and amount of a compound that reaches the systemic circulation of a subject following administration of the compound or a prodrug thereof to the subject, which can be determined, for example, by evaluating the plasma or blood concentration versus time profile for the compound. Parameters useful for characterizing the plasma or blood concentration versus time curve include the area under the curve (AUC), the time to maximum blood concentration (T max ), and maximum compound concentration (C max ) is included. max "T" is the maximum concentration of a compound in a subject's biological sample after a dose of the compound is administered to the subject. max " is the maximum concentration (C ) of a compound in a subject's biological sample after a dose of the compound is administered to the subject. max ) is the time until 1 / 2 " is the terminal elimination half-life of a compound in a subject's biological sample after a dose of the compound is administered to the subject. Bioavailability is often expressed as F(%), which refers to the ratio of the AUC of a compound for a particular mode of administration (e.g., oral) to the AUC of the compound after intravenous (IV) administration.

[0136] "Bioequivalence" refers to the equivalence of the rate and magnitude of absorption of a therapeutic agent, e.g., a compound, after administration of equivalent doses of the agent to a patient. As used herein, two plasma or blood concentration profiles are bioequivalent if the 90% confidence interval for the ratio of the mean responses of the two profiles is within the limits of 0.8 and 1.25. The mean response is determined by the characteristic parameters of the profiles, e.g., C max , T max or AUC.

[0137] The term "effective amount" as used herein refers to the amount or dose of a therapeutic agent, e.g., a compound, that, when administered to a subject in a single or multiple doses, exhibits a desired therapeutic, diagnostic or prognostic effect in the subject. Effective amounts can be readily determined by the attending physician or diagnostician using known techniques and by observations obtained under analogous circumstances. When determining the effective amount or dose of a compound to be administered, several factors can be considered, including, but not limited to, the size, age, and general health of the subject, the specific disease involved, the degree of involvement, or the severity of the disease or condition to be treated, the response of the individual subject, the specific compound administered, the mode of administration, the bioavailability characteristics of the administered preparation, the selected dosing regimen, the use of concomitant drugs, and other relevant issues.

[0138] "Pharmaceutically acceptable" refers to the drugs, medicines, inactive ingredients, etc. that this term describes being suitable for use in contact with human and animal cells or tissues without undue toxicity, incompatibility, instability, irritation, allergic response, etc., commensurate with a reasonable benefit / risk ratio. It generally refers to compounds or compositions that have been approved or are approvable by a federal or state regulatory agency, or a regulatory agency listed in the United States Pharmacopeia or a generally recognized pharmacopoeia, for use in animals, and more particularly in humans.

[0139] "Pharmaceutically acceptable vehicle" refers to a diluent, adjuvant, excipient, vehicle or carrier with which a compound is administered. The terms "pharmaceutically acceptable vehicle" and "pharmaceutically acceptable carrier" are used interchangeably herein.

[0140] A "pharmaceutical composition" refers to a composition comprising at least one component including a compound described herein and a pharma- ceutically acceptable carrier, diluent, adjuvant, excipient or vehicle, such as preservatives, fillers, disintegrants, wetting agents, emulsifiers, suspending agents, sweeteners, flavorings, perfuming agents, antibacterial agents, antifungal agents, lubricants, dispensing agents, etc., depending on the nature of the mode of administration and the dosage form. "Preventing" or "prevention" is intended to refer to at least a reduction in the likelihood of the risk (or susceptibility) of acquiring a disease or disorder (i.e., preventing at least one clinical symptom of the disease from developing in a patient who may be exposed to or susceptible to the disease but who has not yet developed or exhibited symptoms of the disease).

[0141] "Treating" or "treatment" of any disease or disorder, in some embodiments, refers to improving at least one disease or disorder (i.e., arresting or inhibiting the development of the disease or at least one of its clinical symptoms). In some embodiments, "treating" or "treatment" refers to improving at least one physical parameter, which may or may not be discernible by the patient. In some embodiments, "treating" or "treatment" refers to inhibiting the disease or disorder physically (e.g., stabilization of a discernible symptom), physiologically (e.g., stabilization of a physical parameter), or both. In some embodiments, "treating" or "treatment" refers to improving the quality of life or reducing the symptoms or side effects of bone or joint disorders, such as osteoporosis or arthritis, in a subject in need thereof. A "therapeutically effective amount" refers to an amount of a compound that, when administered to a subject to treat or prevent a disease, is sufficient to accomplish such treatment or prevention of the disease. A "therapeutically effective amount" varies depending on the compound, the disease and its severity, and the age, weight, etc., of the subject having the disease to be treated or prevented. As used herein, the term "therapeutically effective amount" refers to an amount of a compound or composition sufficient to prevent, treat, inhibit, reduce, ameliorate or eliminate one or more causes, symptoms or complications of bone or joint disease, such as osteoporosis, osteopenia or arthritis. In certain embodiments, the desired therapeutic effect is to obtain one or more of the following in a subject: enhanced cartilage formation, enhanced chondrocyte cell proliferation or growth, reduced joint stiffness, increased mobility or reduced mobility restriction, enhanced glycosaminoglycan production, increased bone mineral density (BMD), improved bone microarchitecture and / or bone integrity, and reduced risk of fracture.

[0142] "Therapeutic efficacy" refers to the ability of a compound or composition to achieve a desired therapeutic effect. As used herein, the term "improved therapeutic efficacy" refers to an improved therapeutic effect achieved by a particular active therapeutic agent. In certain embodiments, "improved therapeutic efficacy" refers to an improvement in the pharmacokinetics of the therapeutic agent, e.g., the attainment of one or more target pharmacokinetic parameters such that the ability to achieve a desired therapeutic effect with the therapeutic agent is improved or enhanced. In some embodiments, "improved therapeutic efficacy" refers to an improvement in one or more of the following: bioavailability of GlcNBu, AUC of GlcNBu in blood or plasma, C of GlcNBu, or the like, in a subject, compared to administration of GlcNBu per se. max , GlcNBu T max , GlcNBu t 1 / 2 , the biodistribution of GlcNBu, the levels of GlcNBu in selected tissues, and / or the bioabsorbability of GlcNBu. In some embodiments, "improved therapeutic efficacy" refers to a reduction in one or more of the following in a subject: the metabolism of GlcNBu and the side effects of GlcNBu compared to administration of GlcNBu itself. In some embodiments, "improved therapeutic efficacy" refers to a reduction in the dosage and / or frequency of administration of a compound or composition sufficient to achieve a desired therapeutic effect in a subject.

[0143] The term "subject" includes animals, including mammals and humans, especially humans.

[0144] The term "prodrug" and equivalent expressions refer to an agent that can be converted directly or indirectly to an active form in vitro or in vivo (see, for example, RB Silverman, 1992, "The Organic Chemistry of Drug Design and Drug Action", Academic Press, Chapter 8; Bundgaard, Hans, ed., Neth. (1985), "Design of Prodrugs". p. 360, Elsevier, Amsterdam; Stella, V., Borchardt, R., Hageman, M., Oliyai, R., Maag, H., Tilley, J. (eds.) (2007), "Prodrugs: Challenges and Rewards", XVIII, p. 1470, Springer). Prodrugs can be used to alter the biodistribution or pharmacokinetics for a particular agent (e.g., to allow an agent that typically does not enter the reactive site of a protease). A wide variety of groups, such as esters, ethers, phosphates, etc., have been used to modify compounds to form prodrugs. When a prodrug is administered to a subject, the group is enzymatically or non-enzymatically, reductively, oxidatively, hydrolytically, or otherwise cleaved to reveal the active form. As used herein, "prodrug" includes pharmaceutically acceptable salts thereof, or pharmaceutically acceptable solvates, as well as any of the crystalline forms described above. Prodrugs are often, but not necessarily, pharmacologically inactive until converted to their active form.

[0145] The term "ester" refers to an ester of the formula RCOOR (carboxylic acid ester) or the formula RSO (sulfonic acid ester), respectively, formed by the reaction between a carboxylic acid or sulfonic acid and an alcohol, usually with the elimination of water. 3 R'(sulfonic acid ester).

[0146] The term "amino acid" generally refers to an organic compound that contains both a carboxylic acid group and an amine group. The term "amino acid" includes both "natural" and "unnatural" or "non-natural" amino acids. Additionally, the term amino acid includes O-alkylated and N-alkylated amino acids, as well as amino acids having nitrogen- or oxygen-containing side chains (e.g., Lys, Cys, or Ser) where the nitrogen or oxygen atom is acylated or alkylated. Amino acids may be pure L or D isomers or mixtures of L and D isomers, including (but not limited to) racemic mixtures.

[0147] The term "natural amino acid" and equivalent expressions refer to L-amino acids commonly found in naturally occurring proteins. Examples of natural amino acids include, but are not limited to, alanine (Ala), cysteine ​​(Cys), aspartic acid (Asp), glutamic acid (Glu), phenylalanine (Phe), glycine (Gly), histidine (His), isoleucine (Ile), lysine (Lys), leucine (Leu), methionine (Met), asparagine (Asn), proline (Pro), glutamine (Gln), arginine (Arg), serine (Ser), threonine (Thr), valine (Val), tryptophan (Trp), tyrosine (Tyr), β-alanine (β-Ala), and γ-aminobutyric acid (GABA).

[0148] The term "unnatural amino acid" refers to any derivative of a natural amino acid, including the D-form, as well as α- and β-amino acid derivatives. The terms "unnatural amino acid" and "unnatural amino acid" are used interchangeably herein. It is noted that certain amino acids, such as hydroxyproline, classified herein as an unnatural amino acid, may be found naturally in certain organisms or in certain proteins. Amino acids with many different protecting groups suitable for immediate use in solid phase synthesis of peptides are commercially available. In addition to the 20 most common naturally occurring amino acids, the following examples of unnatural amino acids and amino acid derivatives may be used in accordance with the present invention (the commonly used abbreviations are in parentheses): 2-Aminoadipic acid (Aad), 3-aminoadipic acid (β-Aad), 2-aminobutyric acid (2-Abu), α,β-dehydro-2-aminobutyric acid (8-AU), 1-aminocyclopropane-1-carboxylic acid (ACPC), aminoisobutyric acid (Aib), 3-aminoisobutyric acid (β-Aib), 2-amino-thiazoline-4-carboxylic acid, 5-aminovaleric acid (5-Ava), 6-aminohexanoic acid (6-Ahx), 2-aminoheptanoic acid (Ahe), 8-aminooctanoic acid (8-Aoc), 1 1-Aminoundecanoic acid (11-Aun), 12-Aminododecanoic acid (12-Ado), 2-Aminobenzoic acid (2-Abz), 3-Aminobenzoic acid (3-Abz), 4-Aminobenzoic acid (4-Abz), 4-Amino-3-hydroxy-6-methylheptanoic acid (Statin, Sta), aminooxyacetic acid (Aoa), 2-Aminotetralin-2-carboxylic acid (ATC), 4-Amino-5-cyclohexyl-3-hydroxypentanoic acid (ACHPA), para-aminophenylalanine (4-NH 2 -Phe), 2-aminopimelic acid (Apm), biphenylalanine (Bip), para-bromophenylalanine (4-Br-Phe), ortho-chlorophenylalanine (2-C 1 -Phe), meta-chlorophenylalanine (3-Cl-Phe), para-chlorophenylalanine (4-C 1 -Phe), meta-chlorotyrosine (3-C 1-Tyr), para-benzoylphenylalanine (Bpa), tert-butylglycine (TLG), cyclohexylalanine (Cha), cyclohexylglycine (Chg), desmosine (Des), 2,2-diaminopimelic acid (Dpm), 2,3-diaminopropionic acid (Dpr), 2,4-diaminobutyric acid (Dbu), 3,4-dichlorophenylalanine (3,4-C 1-2 -Phe), 3,4-difluorophenylalanine (3,4-F 2 -Phe), 3,5-diiodotyrosine (3,5-I 2 -Tyr), N-ethylglycine (EtGly), N-ethylasparagine (EtAsn), ortho-fluorophenylalanine (2-F-Phe), meta-fluorophenylalanine (3-F-Phe), para-fluorophenylalanine (4-F-Phe), meta-fluorotyrosine (3-F-Tyr), homoserine (Hse), homophenylalanine (Hfe), homotyrosine (Htyr), hydroxylysine (Hyl), allo-hydroxylysine (aHyl), 5-hydroxytryptophan (5-OH-Trp), 3- or 4-hydroxyproline (3-OH-Prop), 5-hydroxytryptophan (5 ... Iodophenylalanine (3- or 4-Hyp), para-iodophenylalanine (4-I-Phe), 3-iodotyrosine (3-I-Tyr), indoline-2-carboxylic acid (Idc), isodesmosine (Ide), allo-isoleucine (a-Ile), isonipecotic acid (Inp), N-methylisoleucine (Melle), N-methyllysine (MeLys), meta-methyltyrosine (3-Me-Tyr), N-methylvaline (MeVal), 1-naphthylalanine (1-Nal), 2-naphthylalanine (2-Nal), para-nitrophenylalanine (4-NO 2 -Phe), 3-nitrotyrosine (3-NO 2 -Tyr), norleucine (Nle), norvaline (Nva), ornithine (Orn), ortho-phosphotyrosine (H 2 PO 3 -Tyr), octahydroindole-2-carboxylic acid (Oic), penicillamine (Pen), pentafluorophenylalanine (F 5-Phe), phenylglycine (Phg), pipecolic acid (Pip), propargylglycine (Pra), pyroglutamic acid (PGLU), sarcosine (Sar), tetrahydroisoquinoline-3-carboxylic acid (Tic), thienylalanine and thiazolidine-4-carboxylic acid (thioproline, Th).

[0149] With respect to the compounds provided herein, in some embodiments, it is intended to include their salts, including pharma- ceutically acceptable salts. Those skilled in the art will recognize that many salt forms (e.g., TFA salts, tetrazolium salts, sodium salts, potassium salts) are possible, and appropriate salts are selected based on considerations known in the art. The term "pharma-ceutically acceptable salts" refers to salts prepared from pharma-ceutically acceptable non-toxic acids or bases, including inorganic acids and bases, and organic acids and bases. For example, for compounds containing basic nitrogen, salts can be prepared from pharma-ceutically acceptable non-toxic acids, including inorganic and organic acids. Suitable pharma- ceutically acceptable acid addition salts for the compounds of the invention include, but are not limited to, acetate, benzenesulfonate (besylate), benzoate, camphorsulfonate, citrate, ethenesulfonate, fumarate, gluconate, glutamate, hydrobromide, hydrochloride, isethionate, lactate, maleate, malate, mandelate, methanesulfonate, mucate, nitrate, pamoate, pantothenate, phosphate, succinate, sulfate, tartrate, p-toluenesulfonate, etc. If the compound contains an acidic side chain, suitable pharma- ceutically acceptable base addition salts for the compounds of the invention include, but are not limited to, metallic salts made from aluminum, calcium, lithium, magnesium, potassium, sodium, and zinc, or organic salts made from lysine, N,N'-dibenzylethylenediamine, chloroprocaine, choline, diethanolamine, ethylenediamine, meglumine (N-methylglucamine), and procaine.

[0150] composition In one embodiment, a pharmaceutical composition is provided that includes a compound of the present invention, e.g., a compound of any one of formulas (A), and (I)-(IV), or a pharma- ceutically acceptable salt, ester, or solvate thereof, and a pharma- ceutically acceptable carrier. In one embodiment, a pharmaceutical composition is provided that includes a compound of Tables 1, 2, and 3, or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier. In another embodiment, a pharmaceutical composition is provided that includes a compound of any one of formulas (A), and (I)-(IV), or a compound of Tables 1, 2, and 3, or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier, with the proviso that the compound is not derived from N-acetylglucosamine.

[0151] The preparation of pharmaceutical compositions can be carried out as known in the art (see, for example, Remington: The Science and Practice of Pharmacy, 20th Edition, 2000). For example, the therapeutic compound and / or composition is combined with one or more solid or liquid pharmaceutical carrier substances and / or additives (or auxiliary substances), and optionally with other pharma- ceutical active compounds having a therapeutic or prophylactic action, into a suitable dosage form or formulation for use in human or veterinary medicine. Pharmaceutical products can also contain additives, many of which are known in the art, such as fillers, disintegrants, binders, lubricants, wetting agents, stabilizers, emulsifiers, dispersants, preservatives, sweeteners, colorants, flavorings, aromas, thickeners, diluents, buffer substances, solvents, solubilizers, agents for achieving a depot effect, salts for altering osmotic pressure, coating agents, and / or antioxidants.

[0152] The term "pharmaceutical acceptable carrier" is intended to include any carrier, diluent, adjuvant, excipient, or vehicle described herein. Examples of suspending agents include, but are not limited to, ethoxylated isostearyl alcohol, polyoxyethylene sorbitol and sorbitan esters, microcrystalline cellulose, aluminum metahydroxide, bentonite, agar and tragacanth, or mixtures of these substances. Prevention of the action of microorganisms can be ensured by various antibacterial and antifungal agents, for example, parabens, chlorobutanol, phenol, sorbic acid, and the like. It may also be desirable to include isotonic agents, for example, sugars, sodium chloride, and the like. Prolonged absorption of injectable pharmaceutical forms can be brought about by the use of absorption delaying agents, for example, aluminum monostearate and gelatin. Examples of suitable carriers, diluents, solvents, or vehicles include, but are not limited to, water, ethanol, polyols, suitable mixtures thereof, vegetable oils (e.g., olive oil), and injectable organic esters, for example, ethyl oleate. Examples of excipients include, but are not limited to, lactose, milk sugar, sodium citrate, calcium carbonate, and dicalcium phosphate. Examples of disintegrants include, but are not limited to, starch, alginic acid, and certain complex silicates. Examples of lubricants include, but are not limited to, magnesium stearate, sodium lauryl sulfate, talc, and high molecular weight polyethylene glycols.

[0153] Pharmaceutically acceptable carriers may include any and all physiologically compatible solvents, dispersion media, coatings, antibacterial and antifungal agents, isotonic agents, absorption delaying agents, and the like. In one embodiment, the carrier is suitable for oral administration. Alternatively, the carrier may be suitable for intravenous, intraperitoneal, intramuscular, sublingual or parenteral administration. In other embodiments, the carrier is suitable for topical, transdermal or inhalation administration. Pharmaceutically acceptable carriers may include sterile aqueous solutions or dispersions and sterile powders for the extemporaneous preparation of injectable sterile solutions or dispersions. The use of such media and agents for pharmaceutical active substances is well known in the art. Except insofar as any conventional media or agent is incompatible with the active compound, its use in the pharmaceutical compositions provided herein is contemplated.

[0154] The pharmaceutical compositions provided herein can be administered orally, for example in the form of pills, tablets, lacquered tablets, sugar-coated tablets, granules, hard and soft gelatin capsules, aqueous, alcoholic or oily solutions, syrups, emulsions or suspensions, or rectally, for example in the form of suppositories. Administration can also be carried out parenterally, for example subcutaneously, intramuscularly or intravenously, in the form of infusion or injection solutions. Other suitable administration forms are transdermal or topical administration, for example in the form of ointments, creams, tinctures, sprays or transdermal therapeutic systems, or inhalation administration in the form of nasal sprays or aerosol mixtures, or for example in the form of microcapsules, implants or wafers.

[0155] In some embodiments, the pharmaceutical compositions provided herein are suitable for oral administration.For example, the pharmaceutical compositions may be in the form of hard-shell gelatin capsules, soft-shell gelatin capsules, cachets, pills, tablets, lozenges, powders, granules, pellets, troches, or sugar-coated tablets.Alternatively, the pharmaceutical compositions may be in the form of solutions, aqueous liquid suspensions, non-aqueous liquid suspensions, oil-in-water liquid emulsions, water-in-oil liquid emulsions, elixirs, syrups, ointments, or medicinal patches.The pharmaceutical compositions may or may not be enteric coated.In some embodiments, the pharmaceutical compositions are formulated for controlled release, e.g., delayed or extended release.

[0156] In further embodiments, the compounds and compositions thereof may be formulated in a multi-dose form, i.e., in the form of a multiparticulate dosage form (e.g., hard gelatin capsules or conventional tablets prepared using a rotary tablet press), including one or more beads or minitablets for oral administration. Conventional tablets disperse rapidly upon entering the stomach. One or more coated beads or minitablets may be compressed into tablets with suitable excipients for conventional tablets (e.g., binders, diluents / fillers and disintegrants).

[0157] Tablets, pills, beads or minitablets of the compounds and compositions of the compounds may be coated or otherwise compounded to obtain a dosage form that has the advantage of controlled release, including delayed or extended release, or to protect against the acidic conditions of the stomach.For example, the tablet or pill may comprise an inner dosage component and an outer dosage component, the latter being in the form of a coating over the former.The two components may be separated by a polymer layer that controls the release of the inner dosage.

[0158] In some embodiments, the layer may comprise at least one enteric polymer. In further embodiments, the layer may comprise at least one enteric polymer in combination with at least one water-insoluble polymer. In yet further embodiments, the layer may comprise at least one enteric polymer in combination with at least one water-soluble polymer. In yet further embodiments, the layer may comprise at least one enteric polymer in combination with a pore-forming agent.

[0159] In some embodiments, the layer may comprise at least one water-insoluble polymer. In yet further embodiments, the layer may comprise at least one water-insoluble polymer in combination with at least one water-soluble polymer. In yet further embodiments, the layer may comprise at least one water-insoluble polymer in combination with a pore-forming agent.

[0160] Representative examples of water-soluble polymers include polyvinylpyrrolidone (PVP), hydroxypropylmethylcellulose (HPMC), hydroxypropylcellulose (HPC), polyethylene glycol, and the like.

[0161] Representative examples of enteric polymers include esters of cellulose and its derivatives (cellulose acetate phthalate, hydroxypropyl methylcellulose phthalate, hydroxypropyl methylcellulose acetate succinate), polyvinyl acetate phthalate, pH-sensitive methacrylic acid-methyl methacrylate copolymers, and shellac. These polymers can be used as dry powders or aqueous dispersions. Some commercially available materials that can be used are methacrylic acid copolymers sold under the trade names Eudragit (LI 00, SI 00, L30D) manufactured by Rohm Pharma, Cellacefate (cellulose acetate phthalate) by Eastman Chemical Co., Aquateric (cellulose acetate phthalate aqueous dispersion) by FMC Corp., and Aqoat (hydroxypropyl methylcellulose acetate succinate aqueous dispersion) by Shin Etsu KK.

[0162] Representative examples of useful water-insoluble polymers include ethyl cellulose, polyvinyl acetate (e.g., Kollicoat SR#30D from BASF), cellulose acetate, cellulose acetate butyrate, neutral copolymers based on ethyl acrylate and methyl methacrylate systems, copolymers of acrylic and methacrylic acid esters with quaternary ammonium groups, such as Eudragit NE, RS and RS30D, RL or RL30D, and the like.

[0163] Any of the above polymers may be further plasticized with one or more pharma- ceutically acceptable plasticizers. Representative examples of plasticizers include triacetin, tributyl citrate, triethyl citrate, acetyl tri-n-butyl citrate, diethyl phthalate, castor oil, dibutyl sebacate, acetylated monoglycerides, and the like, or mixtures thereof. When used, the plasticizer may comprise about 3 to 30% by weight of the polymer, more typically about 10 to 25% by weight. The type of plasticizer and its content will depend on the nature of the polymer and coating system (e.g., aqueous or solvent-based, solution or dispersion system, and total solids).

[0164] Pharmaceutical compositions must typically be sterile and stable under the conditions of manufacture and storage. The composition may be formulated as a solution, microemulsion, liposome, or other ordered structure suitable for high drug concentration. The carrier may be, for example, a solvent or dispersion medium containing water, ethanol, polyol (for example, glycerol, propylene glycol, liquid polyethylene glycol, etc.), and suitable mixtures thereof. Proper fluidity can be maintained, for example, by using a coating, such as lecithin, by maintaining the required particle size in the case of dispersions, and by using surfactants. In many cases, it is preferable to include an isotonic agent, such as sugars, polyalcohols, for example mannitol, sorbitol, or sodium chloride, in the composition. Prolonged absorption of injectable compositions can be brought about by including in the composition an agent that delays absorption, such as monostearate salts and gelatin. Furthermore, the compound may be administered as a time-release formulation, for example, a composition containing a slow-release polymer. The compound can be prepared with a carrier that protects against rapid release, such as a controlled release formulation, including implants and microencapsulated delivery systems. Biodegradable, biocompatible polymers can be used, such as ethylene vinyl acetate, polyanhydrides, polyglycolic acid, collagen, polyorthoesters, polylactic acid, and copolymers of polylactic acid and polyglycol (PLG).

[0165] Many methods for preparing such formulations are generally known to those skilled in the art. Injectable sterile solutions can be prepared by incorporating the compound, for example, the compounds of formulas (A) and (I)-(IV) provided herein, in the required amount in a suitable solvent, optionally with one or a combination of the ingredients listed above, followed by sterilization by filtration. In general, dispersions are prepared by incorporating the active compound, which contains a basic dispersion medium and other ingredients required from those listed above, into a sterile vehicle. In the case of sterile powders for preparing injectable sterile solutions, the usual preparation methods are vacuum drying and freeze-drying, which results in a powder of the active ingredient and any additional desired ingredients before the solution is sterilized and filtered. The compound can also be formulated with one or more additional compounds that enhance solubility.

[0166] For ease of administration and uniformity of dosage, it is often advantageous to formulate compositions (e.g., parenteral compositions) in dosage unit forms. The term "unit dosage form" refers to physically discrete units suitable as single dosages for human subjects and other animals, each unit containing a predetermined amount of active material calculated to produce a desired therapeutic effect, in combination with a suitable pharmaceutical carrier. The details of the dosage unit forms of the present invention may vary and are determined by and directly depend on (a) the unique characteristics of the therapeutic compound and the precise therapeutic effect to be achieved, and (b) the limitations inherent in the technology of compounding such therapeutic compound. Dosage amounts are discussed further below.

[0167] In some embodiments, a pharmaceutical composition is provided comprising an effective amount of a compound and / or composition described herein and a pharma- ceutically acceptable carrier. In some embodiments, a pharmaceutical composition is provided for treating or preventing a bone or joint disorder comprising a compound described herein, or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier. In some embodiments, a pharmaceutical composition is provided for treating or preventing osteoporosis comprising a compound described herein, or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier. In some embodiments, a pharmaceutical composition is provided for treating or preventing arthritis comprising a compound described herein, or a pharma- ceutically acceptable salt thereof, and a pharma- ceutically acceptable carrier.

[0168] In some embodiments, a pharmaceutical composition is provided that includes an effective amount of a GlcNBu prodrug and a pharma- ceutically acceptable carrier. Such compositions can be used to treat or prevent bone or joint disorders, such as osteoporosis and arthritis, as well as other methods described herein. In some such embodiments, the GlcNBu prodrug can be a compound of formula (A), and (I) to (IV), or a pharma- ceutically acceptable salt thereof. In some embodiments, treatment or prevention is within the context of the present invention if there is a measurable difference between the performance of subjects treated using the compounds and methods provided herein compared to placebo group members, historical controls, or between subsequent tests obtained on the same subjects.

[0169] It should be understood that the dosage or amount of the compound and / or composition used alone or in combination with one or more active compounds administered depends on each individual case and is routinely adapted to individual circumstances to achieve optimal effect.Dosage intervals and dosing regimes are within the control of a person skilled in the art, and the appropriate dose depends on several factors within the knowledge of a physician, veterinarian or researcher in the art (see, for example, Wells et al., eds., Pharmacotherapy Handbook, 2nd ed., Appleton and Lange, Stamford, Conn. (2000); PDR Pharmacopoeia, Tarascon Pocket Pharmacopoeia 2000, hardback, Tarascon Publishing, Loma Linda, Calif. (2000)). For example, the administration interval and dosing regimen will depend on the nature and severity of the disorder to be treated, as well as the sex, age, weight and individual responsiveness of the human or animal to be treated, the potency and duration of action of the compound used, whether the treatment is short-term, long-term or prophylactic, and / or whether other active compounds are administered in addition to the therapeutic molecule.

[0170] Thus, the dosage of the compound or composition will vary depending on a variety of factors, including, but not limited to, the activity, biological and pharmacokinetic properties and / or side effects of the compound used, the age, weight, general health, sex and diet of the subject, the administration time, administration route, excretion rate, and any drug combinations, if applicable, the effect that the clinician desires for the compound to have on the subject, and the properties of the compound administered (e.g., bioavailability, stability, efficacy, toxicity, etc.). Such appropriate dosages can be determined as known in the art. When one or more of the compounds or compositions described in the present invention are to be administered to humans, the physician may, for example, prescribe a relatively low dosage at first, and then increase the dosage until an appropriate response is obtained.

[0171] There is no specific limit to the dose of each compound for use in the compositions provided herein.Exemplary doses include milligram or microgram amounts of compound per kilogram of subject or sample mass (e.g., about 50 micrograms per kilogram to about 3000 milligrams per kilogram, about 1 milligram per kilogram to about 100 milligrams per kilogram, about 1 milligram per kilogram to about 50 milligrams per kilogram, about 1 milligram per kilogram to about 10 milligrams per kilogram, or about 3 milligrams per kilogram to about 5 milligrams per kilogram). Additional exemplary doses include doses of about 5 to about 500 mg, about 25 to about 300 mg, about 25 to about 200 mg, about 50 to about 150 mg, or about 50, about 100, about 150 mg, about 200 mg, about 250 mg, about 500 mg, about 1000 mg, about 2000 mg, and about 3000 mg, also, for example, once daily or twice daily, or lower or higher amounts.

[0172] In some embodiments, the dosage range for adults is generally 0.005 mg to 10 g / day orally. Tablets or other presentations provided in individual units can conveniently contain the amount of active compound (e.g., Formula I, Formula II or Formula III) in such dosage amounts, or as multiple identical units containing, for example, 5 mg to 500 mg, usually about 10 mg to 200 mg. Dosage units (e.g., oral dosage units) can be, for example, 1 to 30 mg, 1 to 40 mg, 1 to 100 mg, 1 to 300 mg, 1 to 500 mg, 2 to 500 mg, 3 to 100 mg, 5 to 20 mg, 5 to 100 mg (e.g., 1 mg, 2 mg, 3 mg, 4 mg, 5 mg, 6 mg, 7 mg, 8 mg, 9 mg, 10 mg, 11 mg, 12 mg, 13 mg, 14 mg, 15 mg, 16 mg, 17 mg, 18 mg, The compound may contain 19 mg, 20 mg, 25 mg, 30 mg, 35 mg, 40 mg, 45 mg, 50 mg, 55 mg, 60 mg, 65 mg, 70 mg, 75 mg, 80 mg, 85 mg, 90 mg, 95 mg, 100 mg, 150 mg, 200 mg, 250 mg, 300 mg, 350 mg, 400 mg, 450 mg, 500 mg, 1000 mg, 2000 mg, or 3000 mg of a compound described herein.

[0173] In some embodiments, the dosage range for oral administration is generally about 0.001 mg to about 3000 mg of compound per kg body weight. In some embodiments, the oral dose is 0.01 mg to 100 mg per kg body weight, 0.1 mg to 50 mg per kg body weight, 0.5 mg to 20 mg per kg body weight, or 1 mg to 10 mg per kg body weight. In some embodiments, the oral dose is 5 mg of compound per kg body weight.

[0174] Administration of the compounds and compositions provided herein can be carried out using known procedures at dosages and for periods of time effective to achieve the desired purpose. Dosage regimens can be adjusted to obtain optimal therapeutic responses. For example, several divided doses can be administered once a day, or the dose can be proportionally reduced as indicated by the exigencies of the therapeutic situation. In some embodiments, the compounds or compositions are administered at effective dosages sufficient to prevent or treat bone or joint disorders, such as osteoporosis or arthritis, in a subject. Furthermore, the compounds or compositions can be administered using any suitable route or means, including, but not limited to, via oral, parenteral, intravenous, intraperitoneal, intramuscular, sublingual, topical, transdermal or nasal administration, via inhalation, or via other routes known in the art.

[0175] The compounds and compositions provided herein may be administered once, twice, three or four times a day using any of the suitable modes described above. Also, in some embodiments, administration or treatment with a compound according to any of the formulas described herein may continue for several weeks, for example, treatment is usually continued for at least 2, 4, 8, 12, 16, 20, 24, 28, 32, 36, 40, 44, 48, 52, 56, 60, 64, 68, 72, 76, 80, 84, 88, 92, 96, 100 or 104 weeks. In still further embodiments, administration or treatment with a compound according to any of the formulas described herein may continue for several months, for example, treatment is usually continued for at least 2, 4, 6, 8, 10, 12, 15, 18, 20 or 24 months. In still further embodiments, administration or treatment with a compound according to any of the formulas described herein may continue indefinitely.

[0176] Treatment method In some embodiments, there is provided a method of treating or preventing a bone or joint disorder in a subject in need thereof, comprising administering to the subject an effective amount of a compound, GlcNBu prodrug, or pharmaceutical composition thereof as described herein, such that the bone or joint disorder is prevented or treated in the subject.

[0177] A wide range of bone or joint disorders, including but not limited to osteoporosis, osteopenia, and / or arthritis, may be treated or prevented by the methods provided herein. Many types of arthritis are known and may be treated or prevented using the methods provided herein, including but not limited to osteoarthritis, inflammatory arthritis (e.g., rheumatoid arthritis, psoriatic arthritis), traumatic arthritis, osteoarthritis, and dysplastic arthritis.

[0178] In certain embodiments, a method of enhancing cartilage formation in a subject is provided.

[0179] In one embodiment, a method of enhancing cell proliferation or growth of chondrocytes in a subject is provided.

[0180] In one embodiment, a method is provided for reducing symptoms such as joint stiffness and / or limited mobility in a subject.

[0181] In one embodiment, a method of increasing the production of glycosaminoglycans in a subject is provided.

[0182] In one embodiment, a method of increasing bone mineral density (BMD) in a subject is provided.

[0183] In one embodiment, a method of improving bone microarchitecture and / or osteointegrity in a subject is provided.

[0184] In one embodiment, a method of treating or preventing low BMD in a subject is provided.

[0185] In one embodiment, a method of preventing or reducing the risk of bone fracture in a subject is provided.

[0186] In certain embodiments, a method is provided for treating or preventing bone fractures, eg, low impact bone fractures and / or high impact bone fractures, in a subject.

[0187] In some embodiments, there is provided a method of improving the therapeutic efficacy of GlcNBu in a subject in need thereof, comprising administering to the subject an effective amount of a compound, GlcNBu prodrug, or pharmaceutical composition thereof described herein, such that the therapeutic efficacy of GlcNBu is improved as compared to administration of GlcNBu itself.

[0188] In some embodiments, one or more of the following is improved by administration of a compound, GlcNBu prodrug, or pharmaceutical composition provided herein compared to administration of GlcNBu itself: bioavailability of GlcNBu, AUC of GlcNBu in blood or plasma, C of GlcNBu, max , GlcNBu T max , GlcNBu t 1 / 2 , therapeutic biodistribution of GlcNBu, therapeutic levels of GlcNBu in selected tissues, and / or bioabsorption of GlcNBu in a subject. In some embodiments, one or more of the following is decreased by administration of a compound, GlcNBu prodrug, or pharmaceutical composition provided herein compared to administration of GlcNBu itself: metabolism of GlcNBu, and side effects of GlcNBu in a subject.

[0189] In some embodiments, a method of achieving target pharmacokinetic parameters for GlcNBu in a subject is provided, comprising administering to the subject an effective amount of a compound, GlcNBu prodrug, or pharmaceutical composition thereof described herein, such that the target pharmacokinetic parameters for GlcNBu are achieved in the subject. Non-limiting examples of target pharmacokinetic parameters include target bioavailability, AUC in blood or plasma, C max , T max , biodistribution, levels in selected tissues, half-life (t 1 / 2 ), bioabsorption, and amount or rate of metabolism. Pharmacokinetic parameters can be calculated using methods known in the art.

[0190] In some embodiments of the methods provided herein, the subject is a mammal, such as a human.

[0191] In some embodiments of the methods provided herein, a method of treating or preventing a bone or joint disorder in a subject in need thereof is provided, comprising administering to the subject an effective amount of a compound, GlcNBu prodrug, or pharmaceutical composition thereof as described herein in combination with one or more other therapeutic agents, such that a bone or joint disorder is prevented or treated in the subject. It should be understood that the compounds and / or compositions provided herein may be used alone or in combination with other suitable treatments for bone or joint disorders, including treatments for osteoporosis, arthritis, and the like. Non-limiting examples of such other treatments for bone or joint disorders include bisphosphonates, denosumab, calcitonin, selective estrogen receptor modulators (SERMs), such as raloxifene, teriparatide, duloxetine, and nonsteroidal anti-inflammatory drugs (NSAIDs). The compounds and / or compositions described herein may be administered alone or in combination with one or more additional treatments for bone or joint disorders. The latter may be administered before, after or simultaneously with the administration of the compounds and / or compositions described herein. EXAMPLES

[0192] The present invention will be more readily understood by reference to the following examples, which are presented to illustrate the invention and are not to be construed as limiting its scope in any way.

[0193] Unless otherwise defined, or otherwise clear from the context, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. It should be understood that any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention.

[0194] Example 1 Preparation of 2-N-butyryl-6-O-(N,O-bis(t-butoxycarbonyl)-L-tyrosyl)-D-glucosamine (Compound 1). To a mixture of L-tyrosine (3.62 g, 20 mmol, 1 eq.) in water (50 mL) was added, under stirring, a solution of Boc in isopropanol (IPA, 25 mL). 2A solution of N,O (13.08 g, 60 mmol, 3 eq.) was added, followed by dropwise addition of 8 M aqueous KOH until the pH of the reaction mixture reached 12. The mixture was stirred at rt for 3 h, acidified to pH 3 with 1 M aqueous HCl, and then extracted with ethyl acetate (100 mL). The organic layer was subsequently washed with water (50 mL) and brine (50 mL), then rotary evaporated to dryness to give N,O-bis(t-butoxycarbonyl)-L-tyrosine (7.68 g, 100%). This compound (7.68 g, 20 mmol, 1 eq.) was added to DMF (50 mL) followed by N-butyryl-D-glucosamine (GlcNBu, 4.98 g, 20 mmol, 1 eq.), N-hydroxybenzotrizole (HOBt, 4.05 g, 30 mmol, 1.5 eq.), N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide (EDCI, 7.64 g, 40 mmol, 2 eq.) and N,N-diisopropylethylamine (DIPEA, 7.74 g, 60 mmol, 3 eq.). The mixture was stirred at rt for 16 h followed by the addition of water (50 mL) and ethyl acetate (50 mL). The organic layer was separated, washed with water (50 mL), then with brine (50 mL) and evaporated to dryness. The residue was purified by silica gel column (MeOH / DCM=1 / 50 to 1 / 40) to obtain the title compound (2.21 g, 17.9%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.95 (t, 3 H), 1.39 (s, 9 H), 1.52 (s, 9 H), 1.64 (dt, 2 H), 2.22 (t, 2 H), 2.92-2.96 (m, 0.8 H), 3.16-3.20 (m, 1 H), 3.34-3.52 (m, 1.2 H), 3.71 (t, 0.8 H), 3.87 (dd, 0.8 H), 4.01-4.04 (m, 0.8 H), 4.27-4.30 (m, 1 H), 4.40-4.49 (m, 1.8 H), 4.60 (d, 0.2 H), 5.10 (d, 0.8 H), 7.04 (d, 2 H), 7.26 (d, 2 H); 13 C NMR (CD 3OD, 125 MHz) δ ppm 12.55, 18.96, 26.47, 27.27, 36.54, 37.49, 54.29, 55.00, 64.38, 69.23, 71.06, 79.30, 82.84, 91.22, 120.82, 129.99, 134.70, 150.03, 152.12, 156.40, 171.98, 175.14.

[0195] Example 2 Preparation of 2-N-butyryl-6-O-(N-(t-butoxycarbonyl)-L-valyl)-D-glucosamine (Compound 2). To a mixture of N-Boc-L-valine (2.17 g, 10 mmol, 1 eq.) in DMF (50 mL) was added GlcNBu (2.49 g, 10 mmol, 1 eq.), HOBt (1.62 g, 12 mmol, 1.2 eq.), EDCI (2.88 g, 15 mmol, 1.5 eq.) and DIPEA (3.88 g, 30 mmol, 3 eq.). The mixture was stirred at rt for 16 h, followed by addition of water (50 mL) and ethyl acetate (50 mL) and mixing thoroughly. The organic layer was separated, followed by washing with water (50 mL) and brine (50 mL) and evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 35 to 1 / 30, v / v) to give the title compound (1.43 g, 32.0%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.92-0.96 (m, 9 H), 1.44 (s, 9 H), 1.65 (dt, 2 H), 2.12 (tt, 1 H), 2.20-2.22 (m, 2 H), 3.42-3.50 (m, 1.3 H), 3.60 (t, 0.7 H), 3.70 (t, 0.3 H), 3.84 (dd, 0.3 H), 3.93-4.06 (m, 1.3 H), 4.22-4.27 (m, 1 H), 4.42-4.49 (m, 1 H), 4.58 (d, 0.7 H), 5.00 (d, 0.3H); 13 C NMR (CD 3OD, 125 MHz) δ ppm 13.94, 18.31, 19.59, 28.72, 31.96, 38.90, 39.29, 55.69, 58.64, 60.62, 65.39, 70.68, 72.68, 80.61, 92.59, 97.11, 158.25, 173.65, 176.52, 177.11.

[0196] Example 3 Preparation of 2-N-butyryl-6-O-(N-(N-Boc-L-glycyl)-L-valyl)-D-glucosamine (compound 3). To a mixture of 2-N-butyryl-6-O-(L-valyl)-D-glucosamine hydrochloride (see Example 5 for its preparation, 3.84 g, 10 mmol, 1 eq.) in dichloromethane (DCM, 50 mL) was added triethylamine (2.0 g, 20 mmol, 2 eq.). The mixture was stirred at rt for 10 min, followed by the addition of N-Boc-glycine N-hydroxysuccinimide ester (2.72 g, 10 mmol, 1 eq.). The mixture was stirred for 1 h and quenched with brine. The organic layer was separated, washed with brine (50 mL) and evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 100 to 1 / 30) to give the title compound (3.81 g, 75.6%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.90-0.97 (m, 9 H), 1.45 (s, 9 H), 1.66 (dt, 2 H), 2.14-2.24 (m, 3 H), 3.38-3.46 (m, 0.7 H), 3.68-4.03 (m, 4.5 H), 4.24-4.58 (m, 3 H), 5.07 (s, 0.7 H), 5.48 (s, 0.3 H); 13 C NMR (CD 3OD, 125 MHz) δ ppm 13.96, 18.29, 20.36, 28.69, 38.91, 44.42, 55.73, 59.02, 59.17, 65.12, 70.66, 72.43, 80.75, 92.62, 158.48, 172.63, 172.89, 176.54.

[0197] Example 4 Preparation of 2-N-butyryl-6-O-(N-(L-glycyl)-L-valyl)-D-glucosamine hydrochloride (compound 4). To compound 3 (5.05 g, 10 mmol, 1 eq.) in DCM (50 mL) was added 4M HCl in dioxane (5 mL). The mixture was stirred at room temperature (rt) for 1 hour (h). The solvent was removed on a rotary evaporator to give the title compound (4.41 g, 100.0%). 1 H NMR (D 2 O, 500 MHz) δ ppm 0.86-0.91 (m, 9 H), 1.57 (dt, 2 H), 2.12-2.17 (m, 3 H), 3.22-3.42 (m, 3 H), 3.50-3.57 (m, 2 H), 3.64 (t, 0.6 H), 3.74-3.77 (m, 0.6 H), 3.82-3.93 (m, 0.6 H), 3.14-3.53 (m, 3.3 H), 4.98 (t, 0.6 H).

[0198] Example 5 Preparation of 2-N-butyryl-6-O-(L-valyl)-D-glucosamine hydrochloride (compound 5). To a stirred mixture of compound 2 (0.9 g, 2 mmol, 1 eq.) in DCM (9 mL) was added 4M HCl in dioxane (92.7 mL). The mixture was stirred at rt for 1 h and evaporated to dryness to give the title compound (0.77 g, 100%). 1 H NMR (CD 3OD, 500 MHz) δ ppm 0.78-0.82 (m, 3 H), 0.96 (d, 6 H), 1.5 (dt, 2 H), 2.14-2.19 (m, 2 H), 2.25-2.32 (m, 1 H), 3.38-3.47 (m, 1.35 H), 3.56-3.69 (m, 1.35 H), 3.77-3.80 (m, 0.65 H), 3.99-4.00 (m, 1.75 H), 4.39-4.49 (m, 2 H), 4.63 (d, 0.4 H), 5.07 (d, 0.6 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 12.51, 17.01, 17.15, 18.92, 29.28, 37.44, 37.87, 53.78, 56.30, 58.28, 64.66, 69.08, 69.76, 70.08, 70.32, 90.85, 94.93, 169.48, 177.54, 177.76; m / z(ESI + ) 349.0.

[0199] Example 6 Preparation of 1,3,4,6-tetra-O-2-N-pentabtyryl-D-glucosamine (compound 6). To a mixture of GlcNBu (2.17 g, 5 mmol, 1 eq.) in pyridine (15 mL) was added 4-dimethylaminopyridine (DMAP, 0.06 g, 0.5 mmol, 0.1 eq.) and butyric anhydride (3.96 g, 25 mmol, 5 eq.). The mixture was stirred at rt for 16 h. The solvent was removed on a rotary evaporator and the residue was purified on a silica gel column (EA / PE, 1 / 10 to 1 / 3) to give the title compound (2.5 g, 94.3%). 1 H NMR (CDCl 3, 500 MHz) δ ppm 0.86-0.99 (m, 15 H), 1.52-1.73 (m, 10 H), 2.03-2.081 (m, 2 H), 2.20-2.40 (m, 8 H), 3.76-3.79 (m, 0.4 H), 3.96-3.97 (m, 0.6 H), 4.06-4.23 (m, 2 H), 4.30-4.36 (m, 0.4 H), 4.44-4.48 (m, 0.6 H), 5.10-5.27 (m, 2 H), 5.49 (d, 1 H), 5.66 (d, 0.4 H), 6.20 (d, 0.6 H); 13 C NMR (CDCl 3 , 125 MHz) δ ppm 13. 64, 18.09, 18.39, 18.95, 35.89, 35.93, 35.99, 36.06, 36.09, 38.43, 51.24, 52.81, 61.47, 67.19, m / z (ESI - ) 528.2.

[0200] Example 7 Preparation of 2-N-butyryl-6-O-linolyl-D-glucosamine (Compound 7). To linoleic acid (2.8 g, 10 mmol, 1 eq.) in DMF (60 mL) was added GlcNBu (2.49 g, 10 mmol, 1 eq.), HOBt (1.62 g, 12 mmol, 1.2 eq.), EDCI (2.88 g, 15 mmol, 1.5 eq.), DIPEA (3.88 g, 30 mmol, 3 eq.). The mixture was stirred at rt for 16 h, followed by addition of water (50 mL) and ethyl acetate (50 mL) and mixing thoroughly. The organic layer was separated, washed with water (50 mL) and brine (50 mL), followed by evaporation to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 70 to 1 / 50) to afford the title compound (0.60 g, 11.7%). 1 H NMR (CD3 OD, 500 MHz) δ ppm 0.89-0.97 (m, 6 H), 1.29-1.38 (m, 16 H), 1.61-1.68 (m, 4 H), 2.04-2.07 (m, 4 H), 2.22 (t, 2 H), 2.34 (t, 2 H), 2.77 (t, 2 H), 3.35 (t, 0.8 H), 3.42-3.62 (m, 0.5 H), 3.70 (t, 0.8 H), 3.84-3.86 (m, 0.9 H), 3.93-3.99 (m, 1 H), 4.19-4.22 (m, 0.9 H), 4.36-4.38 (m, 0.9 H),4.58 (d, 0.1 H), 5.07 (d, 0.9 H), 5.29-5.39 (m, 4 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 12.56, 13.03, 18.96, 24.60, 26.75, 28.81, 29.07, 37.49, 47.07, 47.59, 54.29, 63.37, 69.33, 71.06, 71.18, 91.22, 127.64, 127.67, 129.47, 129.52, 174.07, 175.11; + ) 512.2.

[0201] Example 8 Preparation of 2-N-butyryl-1,3,4,6-tetra-O-tetraacetyl-D-glucosamine (compound 8). To a mixture of GlcNBu (2.17 g, 5 mmol, 1 eq.) in pyridine (15 mL) was added DMAP (0.06 g, 0.5 mmol, 0.1 eq.), acetic anhydride (2.55 g, 25 mmol, 5 eq.). The mixture was stirred at rt for 16 h. The solvent was removed on a rotary evaporator and the residue was purified on a silica gel column (EA / PE, 1 / 10 to 1 / 3) to give the title compound (2.0 g, 95.9%). 1 H NMR (CDCl 3, 500 MHz) δ ppm 0.87-0.90 (t, 3 H), 1.52-1.63 (m, 2 H), 2.02-2.04 (m, 6 H), 2.07-2.12 (m, 6 H), 2.15-2.21 (m, 2 H), 3.79 (s, 0.35 H), 3.98-4.13 (m, 1.65 H), 4.23-4.35 (m, 1.35 H), 4.46-4.51 (m, 0.65 H), 5.09-5.26 (m, 2 H), 5.50-5.54 (m, 1 H), 5.67 (d, 0.35H), 6.18 (d, 0.65H); 13 C NMR (CDCl 3 , 125 MHz) δ ppm 13.66, 19.08, 19.14, 20.72, 20.87, 38.54, 38.73, 51.06, 52.92, 61.68, 61.76, 67.60, 67.76, 69.86, m / z (ESI - ) 416.2.

[0202] Example 9 Preparation of 2-N-butyryl-6-O-lipoyl-D-glucosamine (Compound 9). To a mixture of lipoic acid (2.06 g, 10 mmol, 1 eq.) in DMF (60 mL) was added GlcNBu (2.49 g, 10 mmol, 1 eq.), HOBt (1.62 g, 12 mmol, 1.2 eq.), EDCI (2.88 g, 15 mmol, 1.5 eq.), and DIPEA (3.88 g, 30 mmol, 3 eq.). The mixture was stirred at rt for 16 h, followed by addition of water (50 mL) and ethyl acetate (50 mL). The organic layer was separated, washed with water (50 mL) and brine (50 mL), and evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 70 to 1 / 40) to give the title compound (0.20 g, 4.6%). 1H NMR (DMSO, 500 MHz) δ ppm 0.84 (t, 3 H), 1.23-1.69 (m, 8.8 H), 1.82-2.09 (m, 3.2 H), 2.31-2.44 (m, 2.5 H), 2.80 (s, 1 H), 3.08-3.21 (m, 2 H), 3.45-3.54 (m, 0.8 H), 3.58-3.66 (m, 1.6 H), 3.79 (d, 0.8 H), 4.02 (d, 0.8 H), 4.30 (d, 0.8 H), 4.69 (d, 0.7 H), 4.90 (s, 0.9 H), 5.17 (d, 0.8 H),6.53 (d, 0.8 H), 7.54 (d, 0.8 H); 13 C NMR (DMSO, 125 MHz) δ ppm 14.12, 19.14, 24.70, 28.55, 33.74, 34.51, 37.56, 38.54, 54.48, 55.38, 56.49, 69.68, 70.65, 71.57, 91.16, 172.65, 173.28; m / z (ESI + ) 438.0.

[0203] Example 10 Preparation of 2-N-butyryl-1,6-di-O-di(L-phenylalanyl)-D-glucosamine hydrochloride (Compound 10). To a mixture of L-phenylalanine (3.30 g, 20 mmol, 1 eq.) in MeOH (50 mL), 2O (6.54 g, 30 mmol, 1.5 eq.) and triethylamine (3.5 g, 35 mmol, 1.75 eq.) were added. The mixture was stirred at 50° C. for 1 h. The solvent was removed on a rotary evaporator and the residue was taken up in DMF (100 mL) followed by the addition of GlcNBu (4.98 g, 20 mmol, 1 eq.), HOBt (4.05 g, 30 mmol, 1.5 eq.), EDCI (7.64 g, 40 mmol, 2 eq.) and DIPEA (7.74 g, 60 mmol, 3 eq.). The mixture was stirred at rt for 16 h followed by the addition of water (50 mL) and ethyl acetate (50 mL). The organic layer was separated followed by washing with water (50 mL) and brine (50 mL). The solvent was removed (rotary evaporation) and the residue was purified (silica gel column, eluent MeOH / DCM, 1 / 80 to 1 / 65) to give the corresponding intermediate (1.1 g, 7.40%). This intermediate (1.1 g, 1.48 mmol, 1 eq.) was dissolved in DCM (11 mL) followed by the addition (with stirring) of 4M HCl in dioxane (1.1 mL). The mixture was stirred at rt for 1 h, then the solvent was removed by rotary evaporation to give the title compound (0.74 g, 83.0%). 1 H NMR (D 2 O, 500 MHz) δ ppm 0.70-0.83 (m, 3 H), 1.20-1.26 (m, 0.5 H), 1.55 (d, 1.8 H), 2.19-2.52 (m, 2 H), 3.12-3.38 (m, 5 H), 3.44 (d, 0.8 H), 3.58-3.70 (m, 1 H), 3.78-3.99 (m, 1.5 H), 4.21 (t, 0.8 H), 4.41-4.47 (m, 3.2 H), 5.00-5.35 (m, 0.4 H), 6.23-6.42 (m, 0.4 H), 7.20-7.37 (m, 10H); 13 C NMR (D 2O, 125 MHz) δ ppm 12.58, 12.69, 17.65, 18.94, 35.27, 35.51, 35.67, 37.49, 52.45, 53.73, 53.91, 54.41, 64.85, 69.02, 69.62, 69.85, 70.31, 88.93, 89.16, 90.90, 92.90, 94.98, 127.92, 128.10, 129.16, 129.25, 129.34, 133.63, 134.10, 169.23, 171.84, 174.35, 177.56; m / z (ESI + ) 544.1.

[0204] Example 11 Preparation of 2-N-butyryl-6-O-(L-phenylalanyl)-D-glucosamine hydrochloride (Compound 11). To a mixture of L-phenylalanine (3.30 g, 20 mmol, 1 eq.) in MeOH (50 mL), 2O (6.54 g, 30 mmol, 1.5 eq.) and triethylamine (3.5 g, 35 mmol, 1.75 eq.) were added (with stirring applied). The mixture was stirred at rt for 1 h. The solvent was removed by rotary evaporation and the residue was taken up in DMF (100 mL) followed by the addition of GlcNBu (4.98 g, 20 mmol, 1 eq.), HOBt (4.05 g, 30 mmol, 1.5 eq.), EDCI (7.64 g, 40 mmol, 2 eq.) and DIPEA (7.74 g, 60 mmol, 3 eq.). The mixture was stirred at rt for 16 h followed by addition to a mixture of water (50 mL) and ethyl acetate (50 mL). The organic layer was separated followed by washing with water (50 mL) and brine (50 mL). After evaporation of the solvent, the residue was purified on a silica gel column (MeOH / DCM, 1 / 65 to 1 / 40) to give 6-O-(N-Boc-L-phenylalanyl)-2-N-butyryl-D-glucosamine (1.7 g, 17.1%) as intermediate. This intermediate (1.7 g, 3.42 mmol, 1 eq.) was dissolved in DCM (17 mL). To the stirred solution was added 4 M HCl solution in dioxane (1.7 mL). The mixture was stirred at rt for 1 h and evaporated to dryness to give the title compound (1.30 g, 88.1%). 1 H NMR (D 2 O, 500 MHz) δ ppm 0.71-0.83 (m, 3 H), 1.17-1.29 (m, 0.7 H), 1.53-1.58 (m, 2 H), 2.20-2.23 (m, 2 H), 2.69 (d, 0.2 H), 3.20-3.34 (m, 3 H), 3.47 (t, 0.4 H), 3.59-3.70 (m, 1.2 H), 3.78 (d, 0.6 H), 4.00 (d, 0.6 H), 4.38-4.50 (m, 2.8 H), 4.67 (d, 0.4 H), 5.09 (d, 0.6 H), 7.26-7.38 (m, 5 H); 13 C NMR (D 2O, 125 MHz) δ ppm 12.58, 18.94, 35.55, 37.49, 37.91, 53.73, 53.91, 56.29, 64.84, 68.99, 69.61, 69.84, 70.31, 90.90, m / z (ESI + ) 397.0.

[0205] Example 12 Preparation of 1,3,4-tri-O-2-N-tetrabutyryl-6-O-(L-valyl)-D-glucosamine hydrochloride (compound 12). To a mixture of compound 2 (1.50 g, 3.3 mmol, 1 eq.) in pyridine (15 mL) was added butyric anhydride (1.85 g, 11.7 mmol, 3.5 eq.) and DMAP (0.04 g, 0.3 mmol, 0.1 eq.) with stirring. The mixture was stirred at 40° C. for 1 h and at rt overnight. The solvent was evaporated and the residue was purified on a silica gel column (A / PE, 1 / 5 to 1 / 2) to give the N-Boc intermediate (0.7 g, 34.9%). This intermediate (0.7 g, 1.2 mmol, 1 eq.) was taken up in DCM (7 mL) followed by the addition of 4M HCl in dioxane (0.7 mL) with stirring. The mixture was stirred at rt for 1 h and then evaporated to dryness to give the completed title compound (0.7 g, quantitative). 1 H NMR (MeOH, 500 MHz) δ ppm 0.87-1.09 (m, 18 H), 1.58-1.71 (m, 8 H), 2.13-2.51 (m, 9 H), 3.99-4.43 (m, 4.8 H), 5.07-5.37 (m, 2.3 H), 6.10-6.25 (m, 0.9 H), 7.88-8.10 (m, 0.7 H); 13C NMR (MeOH, 125 MHz) δ ppm 12.50, 12.56, 16.84, 17.69, 17.89, 29.51, 35.02, 35.28, 35.45, 50.40, 58.05, 63.21, 68.19, 69.26, 69.91, 89.75, 168.45, 171.84, 172.30, 172.78, 175.15; + ) 558.9.

[0206] Example 13 Preparation of 2-N-butyryl-6-O-(L-histidyl)-D-glucosamine hydrochloride (Compound 13). To a mixture of L-histidine (3.10 g, 20 mmol, 1 eq.) in MeOH (50 mL), 2 O (13.1 g, 60 mmol, 3.0 eq.) and triethylamine (7.0 g, 70 mmol, 3.5 eq.) were added. The mixture was stirred at 50° C. until a clear solution was obtained (approximately 2 h). The solvent was removed on a rotary evaporator and the residue was taken up in DMF (100 mL), followed by the addition of GlcNBu (4.98 g, 20 mmol, 1 eq.), HOBt (4.05 g, 30 mmol, 1.5 eq.), EDCI (7.64 g, 40 mmol, 2 eq.), DIPEA (7.74 g, 60 mmol, 3 eq.). The mixture was stirred at rt for 16 h. To the reaction mixture were added water (50 mL) and ethyl acetate (50 mL). After the mixture was stirred very thoroughly, the organic layer was separated and subsequently washed with water (50 mL) and brine (50 mL). The solvent was removed and the residue was purified on a silica gel column (MeOH / DCM, 1 / 60 to 1 / 30) to give the di-Boc protected intermediate (1.3 g, 11.1%). This intermediate (1.3 g, 2.21 mmol, 1 eq.) was dissolved in DCM (13 mL). To the stirred solution was added a solution of 4 M HCl in dioxane (1.3 mL) and the mixture was stirred at rt for 1 h, then evaporated to dryness to give the title compound (0.75 g, 73.5%). 1 H NMR (D 2O, 500 MHz) δ ppm 0.92 (t, 3 H), 1.64 (q, 2 H), 2.29 (q, 2 H), 3.36-3.87 (m, 6 H), 4.07 (d, 0.45 H), 3.20-3.34 (m, 3 H), 3.47 (t, 0.4 H), 4.47-4.61 (m, 3 H), 5.19 (d, 0.55 H), 7.50 (s, 1 H), 8.75 (s, 1 H); 13 C NMR (D 2 O, 125 MHz) δ ppm 12.61, 18.97, 25.00, 37.52, 37.93, 51.71, 53.85, 5636, 65.41, 68.97, 69.71, 70.04, 70.25, 73.41, 90.84, 95.01, 118.31, 126.22, 134.36, 168.17, 177.63, 177.87; + ) 386.7.

[0207] Example 14 Preparation of 2-N-butyryl-3,4,6-tri-O-acetyl-D-glucosamine (compound 14). To a mixture of compound 8 (4.17 g, 10 mmol, 1 eq.) in THF (60 mL) was added benzylamine (1.2 g, 11 mmol, 1.1 eq.). The mixture was stirred at rt for 16 h, followed by the addition of water (50 mL) and ethyl acetate (50 mL) while stirring was continued. The organic layer was separated and washed with water (50 mL) and brine (50 mL). The solvent was removed by rotary evaporation and the residue was purified on a silica gel column (EA / PE, 1 / 3 to 3 / 1) to give the title compound (3.0 g, 80.0%). 1 H NMR (CDCl 3, 500 MHz) δ ppm 0.89 (t, 3 H), 1.54-1.61 (m, 2 H), 1.98 (s, 3 H), 2.01 (s, 3 H), 2.07 (s, 3 H), 2.09-2.19 (m, 2 H), 3.64-3.68 (m, 0.2 H), 3.94-3.99 (m, 0.2 H), 4.08-4.12 (m, 1 H), 4.17-4.29 (m, 2.4 H), 4.60-4.63 (m, 0.2 H), 4.73 (d, 0.8 H), 5.01-5.12 (m, 1.2 H), 5.21-5.30 (m, 1.6 H), 5.59 (d, 0.2 H), 5.96 (d, 0.8 H),6.34 (m, 0.2 H); 13 C NMR (CDCl 3 , 125 MHz) δ ppm 13.55, 13.68, 18.96, 20.73, 29.77, 38.36, 38.62, 52.27, 56.95, 62.22, 67.56, 68.13, 68.42, 71.02, m / z (ESI + ) 375.8.

[0208] Example 15 Preparation of 2-N-1,3-di-O-tributyryl-D-glucosamine (compound 15). To a mixture of GlcNBu (10.0 g, 40 mmol, 1 eq.) in DMF (200 mL) was added (dimethoxymethyl)benzene (60.8 g, 400 mmol, 10 eq.) and p-toluenesulfonic acid monohydrate (0.76 g, 4 mmol, 0.1 eq.). The mixture was stirred at 50° C. for 16 h. After cooling to rt, the mixture was poured into water (800 mL) and stirred for 1 h. The solid material was filtered, washed with water (100 mL) and pet-ether (100 mL), and dried to give 4,6-O-benzalidene-2-N-butyryl-D-glucosamine (8.0 g, 59.0%). This compound (3.37 g, 10 mmol, 1 eq.) was taken up in pyridine (33 mL) followed by the addition of DMAP (0.12 g, 1 mmol, 0.1 eq.) and butyric anhydride (3.95 g, 25 mmol, 2.5 eq.). The mixture was stirred at rt for 16 h and then poured into water (330 mL). The resulting mixture was stirred at rt for 1 h and the solid material was filtered off, subsequently washed with water (50 mL) and pet-ether (50 mL) and dried to give 4,6-O-benzylidene-1,2-di-O-2-N-butyryl-D-glucosamine (2.9 g, 60.8%). The glucosamine derivative thus obtained (2.9 g, 6 mmol, 1 eq.) was added to DCM (58 mL) followed by the addition of water (1 mL) and trifluoroacetic acid (1 mL). The mixture was stirred at rt for 10 min, then diluted with water (50 mL) and stirred briefly. The organic layer was separated and washed with water (50 mL) and saturated aqueous sodium bicarbonate (50 mL). The organic layer was evaporated to dryness and the residue was purified on a silica gel column (MeOH / DCM, 1 / 40 to 1 / 20) to give the title compound (1.3 g, 55.0%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.84-0.94 (m, 9 H), 1.52-1.66 (m, 6 H), 2.04-2.42 (m, 6 H), 3.44-3.82 (m, 4 H), 3.92-4.24 (m, 1 H), 5.04-5.17 (m, 1 H), 5.69-6.06 (m, 1 H), 7.82-8.05 (m, 1 H); 13 C NMR (CD3 OD, 125 MHz) δ ppm 13.88, 13.94, 19.11, 19.20, 19.40, 36.67, 36.76, 36.95, 37.02, 38.61, 48.48, 48.65, 48.83, 49.00, m / z (ESI - ) 387.9.

[0209] Example 16 Preparation of 2-N-4,6-O-tributyryl-D-glucosamine (compound 16). 4,6-O-benzalidene-2-N-butyryl-D-glucosamine (3.37 g, 10 mmol, 1 eq.) was added to DMF (50 mL). The mixture was cooled to -10°C under nitrogen atmosphere, followed by the batch addition of NaH (oil dispersion, 1.08 g, 27 mmol, 2.7 eq.). The temperature of the mixture was kept below 0°C during the addition of NaH and then slowly raised to rt. After stirring at rt for 2 h, the mixture was poured into water (300 mL). The resulting mixture was stirred at rt for 1 h. The solid material was collected by filtration, followed by washing with water (50 mL) and pet-ether (50 mL) and drying to give 4,6-O-benzylidene-1,3-O-dibenzyl-2-N-butyryl-D-glucosamine (4.5 g, 87.1%) as intermediate. To this intermediate (4.5 g, 8.7 mmol, 1 eq.) was added DCM (90 mL), followed by water (1.5 mL) and trifluoroacetic acid (18 mL). The mixture was stirred at rt for 10 min, then diluted with water (50 mL) and stirred briefly. The organic layer was separated and washed with water (50 mL) and saturated aqueous sodium bicarbonate (50 mL). The organic layer was evaporated to dryness and the residue was triturated with hot pet-ether, then filtered and dried to give 1,3-O-dibenzyl-2-N-butyryl-D-glucosamine (3.2 g, 85.7%). This compound (2.5 g, 5.8 mmol, 1 eq.) was taken up in pyridine (25 mL) followed by the addition of DMAP (0.04 g, 0.29 mmol, 0.05 eq.) and butyryl anhydride (2.3 g, 14.5 mmol, 2.5 eq.). After stirring at rt for 16 h, the reaction mixture was poured into water (250 mL) and then stirred at rt for 1 h. The insoluble material was collected, washed with water (50 mL) and pet-ether (50 mL) and dried to give 1,3-O-dibenzyl-2-N-4,6-di-O-tributyryl-D-glucosamine (2.9 g, 87.8%). The compound thus obtained (2.9 g) was taken up in MeOH (15 mL) and subsequently hydrogenolysized under hydrogen atmosphere (hydrogen balloon) for 48 h with the addition of palladium-carbon (10%, 1.45 g) and acetic acid (15 mL). The mixture was filtered and the filtrate was concentrated to dryness.The residue was purified on a silica gel column (MeOH / DCM, 1 / 100 to 1 / 30) to give the title compound (1.3 g, 65.6%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.78-1.03 (m, 9 H), 1.52-1.66 (m, 6 H), 2.18-2.31 (m, 6 H), 3.30 (s, 0.3 H), 3.62 (s, 0.7 H), 3.78-4.11 (m, 4.3 H), 4.63 (s, 0.3 H), 4.86 (t, 1 H), 5.07 (s, 0.8 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 12.67, 17.97, 18.98, 35.46, 35.58, 37.51, 37.53, 37.92, 54.38, 54.46, 57.51, 62.31, 69.00, 71.13, m / z (ESI + ) 389.8.

[0210] (Example 17) Preparation of 2-N-butyryl-1,3-di-O-(L-valyl)-D-glucosamine hydrochloride (compound 17). To 4,6-O-benzylidene-2-N-butyryl-D-glucosamine (3.37 g, 10 mmol, 1 eq) in DMF (100 mL) was added N-Boc-L-valine (4.77 g, 22 mmol, 2.2 eq.), HOBt (4.05 g, 30 mmol, 3 eq.), EDCI (7.64 g, 40 mmol, 4 eq.), DIPEA (7.74 g, 60 mmol, 6 eq.). The mixture was stirred at rt for 16 h, followed by the addition of water (50 mL) and ethyl acetate (50 mL). The mixture was thoroughly stirred, the organic layer was separated, washed with water (50 mL) and brine (50 mL) and evaporated to dryness. The residue was purified on a silica gel column (EA / PE, 1 / 6) to give 1,3-O-bis(N-Boc-L-valyl)-2-N-butyryl-glucosamine (2.0 g, 27.2%). The compound obtained above (2.0 g, 2.7 mmol, 1 eq.) was dissolved in DCM (20 mL) followed by the addition of 4M HCl in dioxane (2 mL). The mixture was stirred at rt for 1 h and evaporated to dryness to give the title compound (1.1 g, 77.5%). 1 H NMR (D 2 O, 500 MHz) δ ppm 0.87-1.16 (m, 15 H), 1.55-1.60 (m, 2 H), 2.22-2.58 (m, 4 H), 3.63-4.01 (m, 4.5 H), 4.17-4.27 (m, 1.9 H), 4.53 (d, 0.6 H), 5.21-5.41 (m, 1 H), 6.27 (s, 0.6 H); 13 C NMR (D 2 O, 125 MHz) δ ppm 12.79, 12.93, 16.30, 16.80, 17.11, 17.17, 17.42, 17.80, 18.64, 18.89, 29.02, 29.23, 37.36, 37.63, m / z (ESI + ) 448.2.

[0211] (Example 18) Preparation of 2-N-3,4-O-tributyryl-D-glucosamine (compound 18). To a mixture of GlcNBu (10 g, 40 mmol, 1 eq.) in toluene (100 mL) was added p-toluenesulfonic acid monohydrate (0.76 g, 4 mmol, 0.1 eq.) and benzyl alcohol (60 mL). The mixture was refluxed in a Dean-Stark apparatus for 16 h to remove water. The mixture was cooled to rt and stirred, followed by the addition of pet-ether (30 mL). After thorough stirring, the solid material was collected and redissolved in hot ethyl acetate (100 mL). The hot ethyl acetate solution was cooled to rt, the solid material was collected and dried to give 1-O-benzyl-2-N-butyryl-D-glucosamine (4.0 g, 29.4%). This material (3.4 g, 10 mmol, 1 eq.) was added in pyridine (50 mL). The mixture was cooled to 0° C. under nitrogen atmosphere, followed by the addition of DMAP (0.12 g, 1 mmol, 0.1 eq.), followed by the addition of TBDMSCl (3.0 g, 20 mmol, 2 eq.) The mixture was gradually warmed to 50° C., stirred at 50° C. for 12 h, then cooled to rt. The mixture was concentrated to dryness on a rotary evaporator and the residue was purified on a silica gel column (MeOH / DCM, 1 / 30) to give the corresponding intermediate 1-O-benzyl-2-N-butyryl-6-O-(tert-butyldimethylsilyl)-D-glucosamine (2.0 g, 44.5%). The intermediate (4.5 g, 10 mmol, 1 eq.) was added to pyridine (50 mL), followed by DMAP (0.12 g, 1 mmol, 0.1 eq.) and butyric anhydride (3.9 g, 25 mmol, 2.5 eq.). After stirring at rt overnight, the mixture was rotary evaporator. The mixture was concentrated with an evaporator. The residue was purified with a silica gel column (MeOH / DCM, 1 / 100) to obtain 1-O-benzyl-2-N-3,4-O-tributyryl-6-O-(tert-butyldimethylsilyl)-D-glucosamine (5.9 g, 99.8%). The compound obtained above (5.9 g, 10 mmol, 1 eq.) was dissolved in methanol (50 mL) and acetic acid (50 mL), followed by addition of Pd / C (10% palladium on carbon, 0.6 g) and hydrogenolysis under a hydrogen atmosphere (hydrogen balloon) for 48 h. The reaction mixture was filtered and the filtrate was evaporated to dryness.The residue was purified on a silica gel column (MeOH / DCM, 1 / 60) to give the debenzylated intermediate (4.0 g, 79.8%). This intermediate (1.5 g, 3.0 mmol, 1 eq.) was taken up in DCM (15 mL) followed by the addition of a solution of 4 M HCl in dioxane (1.5 mL). The mixture was stirred at rt for 30 min and evaporated to dryness to give the title compound (1.1 g, 94.8%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.89-0.97 (m, 9 H), 1.54-1.67 (m, 6 H), 2.12-2.36 (m, 6 H), 3.52-3.64 (m, 1.5 H), 4.03-4.25 (m, 2.2 H), 4.39 (d, 0.5 H), 4.97-5.09 (m, 1.4 H), 5.19-5.36 (m, 1 H),7.62-7.76 (m, 0.5 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 13.98, 19.30, 19.39, 20.34, 36.86, 37.02, 37.09, 38.78, 53.50, 53.66, 62.08, 64.38, 70.15, 70.61, 70.67, 72.41, 92.65, 92.82, 173.91, 174.66, 175.23, 176.14; + ) 389.9.

[0212] (Example 19) Preparation of 2-N-4-O-dibutyryl-6-O-(L-valyl)-D-glucosamine hydrochloride (compound 19). To a mixture of 1,3-O-dibenzyl-2-N-butyryl-D-glucosamine (4.29 g, 10 mmol, 1 eq.) in DMF (50 mL) was added N-Boc-L-valine (2.6 g, 12 mmol, 1.2 eq.), HOBt (4.05 g, 30 mmol, 3 eq.), EDCI (7.64 g, 40 mmol, 4 eq.), and DIPEA (7.74 g, 60 mmol, 6 eq.). The mixture was stirred at rt for 16 h, followed by the addition of water (50 mL) and ethyl acetate (50 mL) and stirring. The organic layer was separated and subsequently washed with water (50 mL) and brine (50 mL). The solvent was removed and the residue was purified on a silica gel column (EA / PE, 1 / 6) to give 1,3-O-dibenzyl-2-N-butyryl-6-O-(N-Boc-L-valyl)-D-glucosamine (2.4 g, 35.5%). This compound (1.4 g, 2.2 mmol, 1 eq.) was taken up in pyridine (14 mL), followed by the addition of DMAP (0.02 g, 0.2 mmol, 0.1 eq.) and butyric anhydride (0.53 g, 3.3 mmol, 1.5 eq.) and the mixture was stirred at rt overnight. The solvent was removed by rotary evaporation and the residue was purified by silica gel column (MeOH / DCM, 1 / 100) to give 1,3-O-dibenzyl-2-N-4-O-dibutyryl-6-O-(N-Boc-L-valyl)-D-glucosamine (1.5 g, 99.8%). The compound obtained above (1.7 g, 2.4 mmol, 1 eq.) was added to a mixture of methanol (50 mL) and acetic acid (50 mL), followed by 10% palladium on carbon (0.2 g). The mixture was stirred under hydrogen atmosphere for 48 h and then filtered. The solvent was removed by rotary evaporation and the residue was purified (silica gel column, eluent MeOH / DCM, 1 / 30) to give the debenzylated intermediate (1.15 g, 91.2%). The intermediate (1.15 g, 2.2 mmol, 1 eq.) in DCM (15 mL) was treated with a solution of 4 M HCl in dioxane (1.5 mL) at rt for 30 min. The mixture was evaporated to dryness to give the title compound (0.99 g, 98.1%). 1 H NMR (CD 3OD, 500 MHz) δ ppm 0.94-0.98 (m, 6 H), 1.10 (t, 6 H), 1.62-1.67 (m, 4 H), 2.22-2.38 (m, 5 H), 3.67-6.97 (m, 3.2 H), 4.08-4.36 (m, 2.7 H), 4.73 (d, 0.3 H), 5.11 (d, 0.7 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 13.94, 13.97, 18.18, 18.44, 19.33, 30.82, 36.88, 38.78, 39.20, 55.75, 58.66, 59.51, 65.49, 68.28, 70.04,72.33,72.71,92.51,96.96,169.87,174.47,176.67,177.17; m / z (ESI + ) 420.0.

[0213] (Example 20) Preparation of 2-N-butyryl-3-O-(2-(4-isobutylphenyl)propanoyl)-D-glucosamine (Compound 20). 1-O-benzyl-4,6-O-benzylidene-2-N-butyryl-D-glucosamine (4.27 g, 10 mmol, 1 eq.) was added to DMF (50 mL) followed by isobutyric acid (2.06 g, 10 mmol, 1 eq.), HOBt (4.05 g, 30 mmol, 1.5 eq.), EDCI (7.64 g, 40 mmol, 2 eq.), and DIPEA (7.74 g, 60 mmol, 3 eq.). The mixture was stirred at rt for 16 h. Water (50 mL) and ethyl acetate (50 mL) were added to the mixture and stirred briefly. The organic layer was separated and subsequently washed with water (50 mL) and brine (50 mL). The solvent was removed on a rotary evaporator and the residue was purified on a silica gel column (MeOH / DCM, 1 / 50 to 1 / 40) to give 1-O-benzyl-4,6-O-benzylidene-2-N-butyryl-3-O-(2-(4-isobutylphenyl)propanoyl)-D-glucosamine (5.0 g, 81.3%). This compound (6.1 g, 10 mmol, 1 eq.) was added to DCM (60 mL), followed by water (2 mL) and trifluoroacetic acid (22 mL). The mixture was stirred at rt for 10 min, then water (50 mL) was added. The organic layer was separated, washed with water (50 mL), then with saturated aqueous sodium bicarbonate solution, and evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 100 to 1 / 30) to give 1-O-benzyl-2-N-butyryl-3-O-(2-(4-isobutylphenyl)propanoyl)-D-glucosamine (5.1 g, 96.7%). The compound thus obtained (5.3 g, 10 mmol, 1 eq.) was dissolved in methanol (25 mL), followed by the addition of palladium on carbon (10%, 2.0 g) and acetic acid (25 mL). The mixture was hydrogenolyzed under a hydrogen atmosphere (balloon) for 48 h. The mixture was filtered and the filtrate was evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 30 to 1 / 10) to give the title compound (3.9 g, 89.2%). 1 H NMR (CDCl 3, 500 MHz) δ ppm 0.83-0.87 (m, 9 H), 1.41-1.52 (m, 5 H), 1.76-1.84 (m, 1 H), 1.96-2.0 (m, 2 H), 2.40-2.41 (m, 2 H), 3.24-4.17 (m, 8 H), 4.62-5.24 (m, 2 H), 5.64-6.07 (m, 1 H), 6.31-6.59 (m, 1 H), 7.05 (d, 2 H), 7.15 (d, 2 H); 13 C NMR (CDCl 3 , 125 MHz) δ ppm 13.59, 18.86, 30.10, 38.17, 44.97, 52.23, 61.99, 69.43, 71.57, 73.78, 91.44, 127.14, 129.37, 137.39, 140.69, 174.04, 175.95; m / z (ESI + ) 438.0.

[0214] Example 21 Preparation of 2-N-butyryl-3-O-(L-valyl)-D-glucosamine hydrochloride (compound 21). N-Boc-L-valine (100 mg, 0.46 mmol, 1.1 eq.) in DMF (5 mL) was added followed by 1-O-benzyl-2-N-butyryl-4,6-O-isopropylidene-D-glucosamine (150 mg, 0.40 mmol, 1 eq.), HOBt (65 mg, 0.48 mmol, 1.2 eq.), EDCI (115 mg, 0.60 mmol, 1.5 eq.), and DIPEA (1 mL). The mixture was stirred at rt overnight and diluted with ethyl acetate (50 mL). The mixture was washed with water (3×50 mL) and concentrated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 30 to 1 / 10) to give an off-white solid (210 mg). This material (210 mg) was dissolved in a mixture of methanol (20 mL), DCM (2 mL), and water (1 mL). 2After addition of 0.5 g of HCl, the mixture was stirred at rt overnight under hydrogen atmosphere. The mixture was filtered and the filtrate was evaporated to dryness. The residue was taken up in 5 mL of DCM containing 1.50 mL of a solution of 4 M HCl in dioxane and stirred at rt for 1 h. The solid material was filtered off and dried at 60° C. under vacuum to give the title compound (90 mg, 58.6%). 1 H NMR (CD 3 OD, 500 MHz)δ ppm 0.93-0.97 (t, 3H), 1.03-1.32 (d, 6H), 1.59-1.65 (m, 2H), 1.97-2.35 (m, 3H), 3.33-4.19 (m, 7.3H), 5.02-5.36 (m, 2.2H); 13 C NMR (CD 3 OD,125 MHz)δppm 12.66, 16.68, 17.08, 18.77, 29.33, 37.51, 47.14, 48.16, 58.25, 68.57, 71.31, 76.13, 91.41, 167.80, 168.71;m / z (ES + ) 349.6, (ES - ) 383.8.

[0215] Example 22 Preparation of 2-N-butyryl-6-O-(2-(4-isobutylphenyl)propanoyl)-D-glucosamine (Compound 22). To a mixture of GlcNBu (1.25 g, 5 mmol, 1 eq.) in DMF (15 mL), HOBt (810 mg, 6 mmol, 1.2 eq.), EDCI (1.15 mg, 6 mmol, 1.2 eq.), DIPEA (1 mL), and ibuprofen (1.24 g, 6 mmol, 1.2 eq.) were added in sequence. The mixture was stirred at rt overnight and evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 30 to 1 / 10) to give the title compound (523 mg, 23.9%). 1 H NMR(D 2O, 500 MHz)δppm 0.80-0.95 (m, 9H), 1.38-1.44 (m, 3H), 1.54-1.66 (m, 2H), 1.74-1.84 (m, 1H), 2.14-2.22 (t, 2H), 2.36-2.42 (d, 2H), 3.22-5.04 (m, 8H), 7.01-7.20 (m, 4H); 13 C NMR (D 2 O, 125 MHz) δ ppm 12.59, 17.70, 18.97, 30.00, 37.54, 44.63, 54.26, 63.58, 69.48, 70.85, 71.04, 71.09, 91.19, 95.75, 126.90, 128.95, 137.89, 140.30, 175.03, 175.08, 175.11, 175.77;m / z (ESI + ) 438.0.

[0216] (Example 23) Preparation of 2-N-3-O-ジブチリル-D-グルコサミン (compound 23). 1-O-Benzyl-2-N-butyryl-D-glucosamine (3.4 g, 10 mmol, 1 eq.) was added in DMF (5 mL) and stirred, followed by the addition of (dimethoxymethyl)benzene (6.1 g, 40 mmol, 4 eq.) and p-toluenesulfonic acid monohydrate (0.19 g, 1 mmol, 0.1 eq.). The mixture was stirred at 50° C. for 16 h, cooled to rt, and poured into water (80 mL). The mixture was stirred for 1 h, and the solid material was collected, washed with water and pet-ether (10 mL each in turn), and dried to give 1-O-benzyl-4,6-O-benzylidene-2-N-butyryl-D-glucosamine (4.1 g, 96%). This compound (4.27 g, 10 mmol, 1 eq.) was dissolved in pyridine (50 mL) followed by the addition of DMAP (0.12 g, 1 mmol, 0.1 eq.) and butyric anhydride (2.37 g, 15 mmol, 1.5 eq.) while applying efficient stirring. After the addition was complete, the mixture was stirred at rt for 16 h. The reaction mixture was poured into water (300 mL) and the mixture was stirred at rt for 1 h. The solid material was collected, washed with water (50 mL) and then with pet-ether (50 mL) and dried to give 1-O-benzyl-4,6-O-benzylidene-2-N-3-O-dibutyryl-D-glucosamine (4.5 g, 90.3%). This compound (3 g, 6 mmol, 1 eq.) was suspended in DCM (58 mL) followed by the addition of water (1 mL) and trifluoroacetic acid (11 mL) while applying stirring. The mixture was stirred at rt for 10 min. and diluted with water (50 mL). The organic layer was separated, washed with water (50 mL) and saturated aqueous sodium bicarbonate solution (50 mL) and evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 100 to 1 / 30) to give 1-O-benzyl-2-N-3-O-dibutyryl-D-glucosamine (2.1 g, 86.7%). The compound thus obtained (2.1 g, 5.1 mmol, 1 eq.) was taken up in methanol (10 mL) followed by the addition of palladium on carbon (10%, 1.05 g) and then acetic acid (10 mL). The mixture was stirred under hydrogen atmosphere for 48 h. The mixture was filtered and the filtrate was evaporated to dryness.The residue was purified on a silica gel column (MeOH / DCM, 1 / 30 to 1 / 10) to give the title compound (0.45 g, 27.3%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.90-0.95 (m, 6 H), 1.54-1.65 (m, 4 H), 2.10-2.17 (m, 2 H), 2.25-2.36 (m, 2 H), 3.36-3.38 (m, 0.2 H), 3.48-3.58 (m, 1 H), 3.67-3.81 (m, 2 H), 3.85-3.90 (m, 1 H), 4.05-4.10 (m, 0.8 H), 4.59 (s, 0.2 H), 4.70 (d, 0.2 H), 4.99 (t, 0.2 H), 5.06 (d, 0.8 H), 5.19-5.23 (m, 0.8 H), 7.60 (d, 0.8 H), 8.0 (d, 0.1 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 12.62, 17.99, 18.94, 35.63, 35.72, 37.47, 37.52, 47.12, 47.63, 52.32, 61.01, 61.16, 68.50, 71.58, m / z (ESI - ) 320.0.

[0217] (Example 24) Preparation of 2-N-butyryl-4,6-O-diisobutyryl-D-glucosamine (compound 24). 2-N-Butyryl-1,3-O-dibenzyl-D-glucosamine (2.5 g, 5.8 mmol, 1 eq.) was taken up in pyridine (25 mL) followed by the addition of DMAP (0.04 g, 0.29 mmol, 0.05 eq.) and isobutyric anhydride (2.3 g, 14.5 mmol, 2.5 eq.). The mixture was stirred at rt for 16 h and then poured into water (250 mL). After stirring the mixture at rt for 1 h, the solid material was collected, washed with water (50 mL) and then with pet-ether (50 mL) and dried to give 2-N-Butyryl-1,3-O-dibenzyl-4,6-O-diisobutyryl-D-glucosamine (2.9 g, 87.8%). This compound (2.9 g, 5.1 mmol, 1 eq.) was added in methanol (15 mL), followed by Pd / C (10%, 1.45 g) and then acetic acid (15 mL). The mixture was stirred under hydrogen atmosphere (hydrogen balloon) for 48 h. The mixture was filtered and the filtrate was evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 100 to 1 / 30) to give the title compound (1.3 g, 65.6%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.94-0.98 (m, 3 H), 1.15-1.18 (m, 12 H), 1.60-1.68 (m, 2 H), 2.20-2.26 (m, 2 H), 2.54-2.63 (m, 2 H), 3.63-4.18 (m, 5 H), 4.55-4.69 (m, 0.2 H), 4.91 (t, 1 H), 5.11 (d, 0.8 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 13.95, 19.25, 19.41, 20.28, 35.07, 35.12, 38.86, 39.24, 55.85, 58.94, 63.62, 68.76, 70.39, 72.12, 72.48, 73.27, 92.52, 96.99, 176.53, 177.52, 178.33; m / z (ESI + ) 390.0.

[0218] (Example 25) Preparation of 2-N-butyryl-4,6-O-dihexanoyl-D-glucosamine (compound 25). 2-N-Butyryl-1,3-O-dibenzyl-D-glucosamine (2.5 g, 5.8 mmol, 1 eq.) was taken up in pyridine (25 mL) followed by the addition of DMAP (0.04 g, 0.29 mmol, 0.05 eq.) and hexanoic anhydride (3.1 g, 14.5 mmol, 2.5 eq.). The mixture was stirred at rt for 16 h and then poured into water (250 mL). After stirring the mixture at rt for 1 h, the solid material was collected, washed with water (50 mL), then with pet-ether (50 mL) and dried to give 2-N-Butyryl-1,3-O-dibenzyl-4,6-O-dihexanoyl-D-glucosamine (3.2 g, 87.2%). This compound (3.2 g, 5.1 mmol, 1 eq.) was added in methanol (15 mL), followed by Pd / C (10%, 1.6 g) and then acetic acid (15 mL). The mixture was stirred under hydrogen atmosphere (hydrogen balloon) for 48 h. The mixture was filtered and the filtrate was evaporated to dryness. The residue was purified on a silica gel column (MeOH / DCM, 1 / 100 to 1 / 30) to give the title compound (1.9 g, 84.0%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.86-0.94 (m, 6 H), 1.11-1.29 (m, 8 H), 1.57-1.64 (m, 4 H), 2.16-2.34 (m, 4 H), 2.50-2.59 (m, 0.5 H), 3.34 (s, 1 H), 3.60-4.18 (m, 4.2 H), 4.67 (t, 0.2 H), 4.88-5.12 (m, 1.6 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 13.94, 14.24, 19.18, 20.35, 32.39, 38.86, 38.91, 39.29, 55.79, 55.86, 63.68, 68.68, 68.83, 70.37, m / z (ESI+ ) 446.2.

[0219] (Example 26) Preparation of 2-N-6-O-dibutyryl-D-glucosamine (compound 26). Et 3 N (1.0 g, 10 mmol, 1 eq) was added to a solution of butyric acid (0.88 g, 10 mmol, 1 eq) in THF (20 mL). The solution was diluted with N 2 Cooling to 0° C. under atmospheric conditions was followed by the addition of 4-nitrobenzene-1-sulfonyl chloride (2.2 g, 10 mmol, 1 eq). The reaction mixture was stirred at rt for 2 h. 3 N (1.0 g, 10 mmol, 1 eq) was added to the reaction mixture, followed by 2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (4.3 g, 10 mmol, 1 eq) and DMAP (0.12 g, 1 mmol, 1 eq). The mixture was stirred at rt for 16 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 30) to give 2-N-3-O-dibutyryl-1,3-di-O-benzyl-D-glucosamine (3.5 g, 70.1%). Pd / C (10%, 1.7 g) was added to a solution of 2-N-3-O-dibutyryl-1,3-di-O-benzyl-D-glucosamine (3.5 g, 7.0 mmol, 1 eq) in MeOH (17 mL), followed by acetic acid (17 mL). The mixture was heated at rt for 30 min under reduced pressure. 2 The mixture was stirred under atmosphere for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (2.1 g, 94.2%). 1 H NMR (500 MHz, CD 3OD) δ ppm 0.98 (tdd, J = 7.4, 5.4, 1.7 Hz, 6H), 1.59-1.75 (m, 4H), 2.20-2.28 (m, 2H), 2.35 (t, J = 7.6 Hz, 2H), 3.42 - 3.35 (m, 1H), 3.67-3.77 (m, 1H), 3.87 (dd, J = 10.8, 3.6 Hz, 1H), 3.94-4.06 (m, 1H), 4.16-4.30 (m, 1H), 4.35-4.46 (m, 1H), 4.58-4.66 (d, J = 8.4Hz, 0.2H), 5.07-5.11 (d, J =3.6 Hz, 0.8H); m / z (ESI - ): 318.0.

[0220] Example 27 Preparation of 2-N-4-O-dibutyryl-D-glucosamine (compound 27). Et 3 SiH (11.2 g, 96.6 mmol, 10.0 eq) was added to a solution of 1,3-di-O-benzyl-4,6-O-benzylidene-2-N-butyryl-D-glucosamine (5 g, 9.66 mmol, 1 eq) in DCM (100 mL). The mixture was cooled to 5° C. 2 Cool to 0°C under atmospheric conditions, then add BF 3 -Et 2 2.74 g, 19.320 mmol, 2.0 eq) was added. The mixture was stirred at rt for 16 h. DCM (100 mL) and H 2 O (100 mL) was added to the reaction mixture. The organic layer was 2The mixture was washed with 2H2O (100 mL) and brine (100 mL) and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM = 1 / 100 to 1 / 50) to give 1,3,6-tri-O-benzyl-2-N-butyryl-D-glucosamine (3.0 g, 60%). Butyric anhydride (1 g, 6.351 mmol, 1.1 eq) and DMAP (35 mg, 0.289 mmol, 0.05 eq) were added to a solution of 1,3,6-tri-O-benzyl-2-N-butyryl-D-glucosamine (3 g, 5.773 mmol, 1 eq) in pyridine (30 mL). The mixture was stirred at 35 °C for 16 h. The mixture was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 50-1 / 10) to give 1,3,6-tri-O-benzyl-2-N-4-O-dibutyryl-D-glucosamine (1.85 g, 54.4%). AcOH (9.25 mL) was added to a solution of 1,3,6-tri-O-benzyl-2-N-4-O-dibutyryl-D-glucosamine (1.85 g, 3.137 mmol, 1 eq) in MeOH (9.25 mL), followed by 10% Pd / C (1.4 g). The mixture was diluted with H 2 The mixture was stirred under atmosphere at 35° C. for 72 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (920 mg, 92%). 1 H NMR (500 MHz, CD 3 OD) δ ppm 0.92-1.09 (m, 6H), 1.59-1.80 (m, 4H), 2.16-2.56 (m, 4H), 3.51-3.66 (m, 2H), 3.84-3.94 (m, 1H), 3.95-4.07 (m, 2H), 4.70 (d, J = 8.0 Hz, 0.07H), 4.81-4.89 (m, 1H), 5.18 (d, J = 3.5 Hz, 1H); 13 C NMR (125 MHz, CD 3m / z (ESI + ) 320.0.

[0221] (Example 28) Preparation of 2-N-butyryl-1-O-(2-(4-hydroxyphenyl)ethyl)-D-glucosamine (compound 30). Acetic anhydride (20.4 g, 200 mmol, 5 eq) was added to a solution of 2-N-butyryl-D-glucosamine (10 g, 40 mmol, 1 eq) in pyridine (50 mL) and the mixture was stirred at rt overnight. The mixture was evaporated in vacuum and purified by flash column chromatography (eluent, DCM) to give 1,3,4,6-tetra-O-acetyl-2-N-butyryl-D-glucosamine (14.5 g, 87.0%). Phenylmethanamine (70 mL) was added dropwise to a solution of 1,3,4,6-tetra-O-acetyl-2-N-butyryl-D-glucosamine (14.5 g, 35 mmol, 1 eq) in THF (70 mL) at 0° C. The mixture was stirred at 0° C. for 2 h and concentrated in vacuum. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 30 to 1 / 2) to give 3,4,6-tri-O-acetyl-2-N-butyryl-D-glucosamine (5.6 g, 43.1%). A solution of 3,4,6-tri-O-acetyl-2-N-butyryl-D-glucosamine (5.2 g, 13.8 mmol, 1 eq) in DCM (26 mL) was diluted with N 2The mixture was cooled to 0° C. under atmosphere. DBU (0.42 g, 2.7 mmol, 0.2 eq) was added to the reaction mixture, followed by 2,2,2-trichloroacetonitrile (7.0 g, 48.3 mmol, 3.5 eq). The reaction mixture was stirred at rt for 3 h and concentrated in vacuo. The residue was purified by flash column chromatography (eluent, MeOH / DCM=0 / 100 to 1 / 100) to give 3,4,6-tri-O-acetyl-2-N-butyrylamino-2-deoxy-D-glucopyranosyl trichloroacetimidate (5.2 g, 72.2%). 4-(2-Hydroxyethyl)phenylacetate (0.87 g, 4.8 mmol, 1 eq) was added to a solution of 3,4,6-tri-O-acetyl-2-N-butyrylamino-2-deoxy-D-glucopyranosyl trichloroacetimidate (2.5 g, 4.8 mmol, 1 eq) in DCM (100 mL). The reaction mixture was stirred for 2 h at 37° C. for 1 h at 37° C. for 1 h at 37° C. 2 It was cooled under atmosphere to −20° C. The mixture was stirred at −20° C. for 2 h and concentrated in vacuo. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 10 to 1 / 1) to give 2-N-butyryl-3,4,6-tri-O-acetyl-1-O-(2-(4-acetoxyphenyl)ethyl)-D-glucosamine (500 mg, 19.4%). MeONa (50.4 mg, 0.9 mmol, 1 eq) was added to a solution of 2-N-butyryl-3,4,6-tri-O-acetyl-1-O-(2-(4-acetoxyphenyl)ethyl)-D-glucosamine (500 mg, 0.9 mmol, 1 eq) in MeOH (5 mL). The reaction mixture was stirred at rt for 2 h and concentrated in vacuo. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 10 to 1 / 5) to give the title compound (300 mg, 87.0%). 1 H NMR (400 MHz, CD 3OD) δ ppm 1.0 (t, J= 7.0 Hz, 3H), 1.64-1.69 (m, 2H), 2.18 (t, J= 7.5 Hz, 2H), 2.78 (t, J= 5.0 Hz, 2H), 3.28-3.32 (m, 1H), 3.47 (t, J= 8.8 Hz, 1H), 3.61-3.73 (m, 3H), 3.90 (d, J= 12.0 Hz, 1H), 4.06-4.10 (m, 1H), 4.45 (d, J= 8.2 Hz, 1H), 6.70 (d, J= 7.3 Hz, 2H), 7.05 (d, J= 7.3 Hz, 2H); 13 C NMR (125 MHz, CD 3 OD) δ ppm 12.78, 18.80, 34.02, 37.89, 55.22, 60.73, 69.98, 70.57, 73.77, 75.79, 100.93, 115.18, 130.07, 130.83, 153.66, 177.26; m / z (ESI + ): 369.9.

[0222] (Example 29) Preparation of 2-N-butyryl-6-O-(2-hydroxybenzoyl)-D-glucosamine (compound 41). Potassium carbonate (50.78 g, 651 mmol, 3 eq) was added to a solution of 2-hydroxybenzoic acid (30 g, 217 mmol, 1 eq) in acetone (300 mL), followed by (bromomethyl)benzene (37.15 g, 217 mmol, 1 eq). The mixture was stirred at 50° C. for 16 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 10 to 1 / 1) to give benzyl 2-(benzyloxy)benzoate (24 g, 34.7% yield). 2 HO (10 mL) was added to a solution of benzyl 2-(benzyloxy)benzoate (20 g, 62.8 mmol, 1 eq) and NaOH (7.54 g, 188.5 mmol, 1 eq) in ethanol (100 mL). The reaction mixture was stirred at 80° C. for 16 h. The mixture was concentrated under reduced pressure.2 HO (50 mL) was added to the mixture. The aqueous phase was washed with DCM (50 mL x 3), 1N HCl was added to the aqueous phase to adjust the pH to 4, and the aqueous phase was washed with DCM (50 mL x 3). The organic layer was washed with brine (50 mL) and dried (Na 2 SO 4 The organic layer was concentrated under reduced pressure to give 2-(benzyloxy)benzoic acid (13 g, 92.8% yield) as a yellow solid. Di(1H-imidazol-1-yl)methanone (12.87 g, 79.4 mmol, 1.1 eq) was added to a solution of 2-(benzyloxy)benzoic acid (16.5 g, 72.3 mmol, 1 eq) in THF (200 mL) with N 2 The mixture was stirred at 25° C. for 1 h. The organic layer was concentrated under reduced pressure and purified by flash column chromatography (eluent, EA / PE=1 / 10 to 1 / 1) to give (2-(benzyloxy)phenyl)(1H-imidazol-1-yl)methanone (12.5 g, 60% yield) as an oil. A mixture of 1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (17.52 g, 40.8 mmol, 1 eq) and DBU (1.24 g, 8.14 mmol, 0.2 eq) in MeCN (200 mL) was added to N 2 The mixture was stirred at 50° C. under reduced pressure for 20 min, followed by the addition of (2-(benzyloxy)phenyl)(1H-imidazol-1-yl)methanone (12.5 g, 45 mmol, 1.1 eq). The mixture was stirred at 50° C. for 16 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 3 / 100) to obtain 1,3-di-O-benzyl-6-(2-benzyloxybenzoyl)-2-N-butyryl-D-glucosamine (17.3 g, 66.28% yield) as a white solid. A solution of the compound obtained above (3.5 g, 5.4 mmol, 1 eq) in MeOH (25 mL) and AcOH (25 mL) was added with H 2Pd / C (2 g, 10%, wet) was added under reduced pressure. The mixture was stirred at 25° C. for 32 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (1.05 g, 50% yield) as a white solid. 1 H NMR (500 MHz, CD 3 OD) δ ppm 1.00 (t, J = 7.0 Hz, 3H), 1.70 (dt, J = 14.5, 7.5 Hz, 2H), 2.28 (t, J =6.5 Hz, 2H), 3.53 (t, J = 9.0 Hz, 1H), 3.58 - 4.25 (m, 3H), 4.51- 4.64 (m, 1H), 4.69 (d, J = 11.5 Hz, 1H), 4.72 - 5.55 (m, 1H), 6.97 (dd, J = 20.5 Hz, 8 Hz, 2H), 7.53 (t, J = 7 Hz, 1H), 7.96 (d, J = 7.5 Hz, 1H). 13 C NMR (125 MHz, CD 3 OD) δ ppm 175.69, 175.17, 169.74, 161.35, 135.46, 129.79, 118.88, 116.97, 112.26, 95.77, 91.31, 74.45, 73.84, 71.25, 71.08, 70.86, 69.32, 64.18, 64.06, 57.24, 54.34, 37.91, 37.50, 18.95, 12.54. m / z (ESI+):369.9.

[0223] (Example 30) Preparation of 6-O-(1-adamantaneacetyl)-2-N-butyryl-D-glucosamine (compound 56). Et 3 N (1.0 g, 10 mmol, 1 eq) was added to a solution of 1-adamantylacetic acid (1.94 g, 10 mmol, 1 eq) in THF (20 mL). The solution was diluted with N 2Cooling to 0° C. under atmospheric conditions was followed by the addition of 4-nitrobenzene-1-sulfonyl chloride (2.2 g, 10 mmol, 1 eq). The reaction mixture was stirred at rt for 2 h. 3 N (1.0 g, 10 mmol, 1 eq) was added to the reaction mixture, followed by 2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (4.3 g, 10 mmol, 1 eq) and DMAP (0.12 g, 1 mmol, 1 eq). The mixture was stirred at rt for 16 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 30) to give 6-O-(1-adamantaneacetyl)-2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (4.6 g, 76.3%). 10% Pd / C (2.3 g) was added to a solution of 6-O-(1-adamantaneacetyl)-2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (4.6 g, 7.6 mmol, 1 eq) in MeOH (23 mL) followed by acetic acid (23 mL). The mixture was diluted with H 2 The mixture was stirred under atmosphere at rt for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (2.4 g, 75.0%). 1 H NMR (400 MHz, CD 3 OD) δ ppm 0.99 (t, J= 7.5Hz, 3H), 1.65-1.80 (m, 14H), 1.98-2.28 (m, 7H), 3.34-4.48 (m, 6.2H), 5.11 (d, J= 3.1Hz 0.8H); 13 C NMR (125 MHz, CD 3 OD) δ ppm 12.57, 18.98, 28.69, 32.38, 36.35, 36.43, 37.50, 41.91, 42.07, 48.51, 54.29, 62.90, 69.37, 71.04, 71.13, 91.22, 172.05, 175.12; m / z (ESI + ): 426.0.

[0224] (Example 31) 4,6-Di-O-butyryl-2-N-(butyryl- d7 Preparation of .DELTA.-D-glucosamine (compound 68). Following the same procedure in Example 16, the title compound was prepared. 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.78-1.03 (m, 6 H), 1.52-1.66 (m, 4 H), 2.18-2.31 (m, 4 H), 3.30 (s, 0.3 H), 3.62 (s, 0.7 H), 3.78-4.11 (m, 4.3 H), 4.63 (s, 0.3 H), 4.86 (t, 1 H), 5.07 (s, 0.8 H); 13 C NMR (CD 3 OD, 125 MHz) δ ppm 13.96, 19.33, 36.83, 36.94, 55.75, 58.90, 62.25, 63.80, 70.34, 72.50, 72.88, 73.46, 92.56, 97.06, 174.35, 175.07, 176.66; m / z (ESI + ) 397.1.

[0225] Example 32 Preparation of 4,6-O-benzylidene-2-N-butyryl-D-glucosamine (compound 72). (Dimethoxymethyl)benzene (30.5 g, 200.594 mmol, 10 eq) was added to a solution of GlcNBu (5.0 g, 20.059 mmol, 1 eq) in DMF (50 mL), followed by p-toluenesulfonic acid monohydrate (0.191 g, 1.003 mmol, 0.05 eq). The reaction mixture was stirred at 50 °C for 16 h. The mixture was cooled to rt and diluted with H 2 The mixture was stirred at rt for 1 h. The solid was filtered and then poured into H 2 Washing with O (50 mL) and PE (100 mL) and drying afforded the title compound (5.22 g, 77.0%). 1 H NMR (500 MHz, CD3 OD) δ ppm 0.93-1.09 (m, 3H), 1.62-1.80 (m, 2H), 2.20-2.38 (m, 2H), 3.34 (s, 1H), 3.53-3.62 (m, 1H), 3.74-3.87 (m, 1H), 3.97 (t, J = 9.5 Hz, 1H), 4.01-4.10 (m, 1H), 4.18-4.39 (m, 1H), 4.76 (d, J = 7.5 Hz, 0.19H), 5.17 (d, J = 3.0 Hz, 1H), 5.65 (s, 1H), 7.35-7.47 (m, 4H), 7.55-7.57 (m, 2H).

[0226] (Example 33) Preparation of 6-O-isopropyloxycarbonyl-2-N-butyryl-D-glucosamine (compound 73). GlcNBu (2.49 g, 10 mmol, 1.0 eq) was dissolved in pyridine (25 mL) and N 2 Cooled to 0° C. under atmosphere. To the cold solution was added isopropyl carbonochloridate (1.2 g, 10 mmol, 1.0 eq). The reaction mixture was stirred at rt overnight and concentrated in vacuo. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 20) to give the title compound (2.01 g, 60.0%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.99 (t, J=7.5Hz, 3H), 1.30 (d, J=6.5Hz, 6H), 1.65-1.72 (m, 2H), 2.26 (t, J=7.2Hz, 2H), 3.38 (t, J=9.4Hz, 1H), 3.74 (t, J=9.4Hz, 1H), 3.88-3.91 (m, 1H), 4.00-4.03 (m, 1H), 4.27-4.30 (m, 1H), 4.41-4.4 (m, 1H), 4.83-4.90 (m, 1H), 5.11 (d, J=3.4Hz, 1H); 13 C NMR (CD 3m / z (ESI + ): 335.9.

[0227] (Example 34) Preparation of 2-N-1,4,6-tri-O-tetrabutyryl-D-glucosamine (compound 74). Imidazole (3.18 g, 46.785 mmol, 2.0 eq) was added to a solution of 1-O-benzyl-4,6-O-benzylidene-2-N-butyryl-D-glucosamine (10.0 g, 23.392 mmol, 1.5 eq) in DMF (100 mL). The mixture was cooled to 100° C. 2 Cooling to 0° C. under atmospheric pressure was followed by the addition of TBSCl (5.29 g, 35.089 mmol, 1.5 eq). The reaction mixture was stirred at rt for 16 h. Ethyl acetate (100 mL) and H 2 O (100 mL) was added to the reaction mixture. The organic layer was 2 O (100 mL) and brine (100 * The residue was purified by flash column chromatography (eluent, EA / PE=1 / 20 to 1 / 5) to obtain 1-O-benzyl-4,6-O-benzylidene-3-O-(tert-butyldimethylsilyl)-2-N-butyryl-D-glucosamine (10.0 g, 78.9%). 2 (3 g) was added to a solution of 1-O-benzyl-4,6-O-benzylidene-3-O-(tert-butyldimethylsilyl)-2-N-butyryl-D-glucosamine (10 g, 18.459 mmol, 1 eq) in MeOH (100 mL). The mixture was diluted with H 2The mixture was stirred at 30° C. under atmosphere for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 50 to 1 / 10) to give 3-O-(tert-butyldimethylsilyl)-2-N-butyryl-D-glucosamine (4.8 g, 71.6%). Butyric anhydride (6.89 g, 43.574 mmol, 3.3 eq) and DMAP (81 mg, 0.660 mmol, 0.05 eq) were added to a solution of 3-O-(tert-butyldimethylsilyl)-2-N-butyryl-D-glucosamine (4.8 g, 13.204 mmol, 1.0 eq) in pyridine (48 mL). The mixture was stirred at 35° C. for 16 h. The mixture was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 20-1 / 5) to give 3-O-(tert-butyldimethylsilyl)-1,4,6-tri-O-2-N-tetrabutyryl-D-glucosamine (6.5 g, 85.8%). The obtained compound (6.5 g, 11.328 mmol, 1 eq) was dissolved in DCM (65 mL) followed by the addition of 4M HCl in 1,4-dioxane (6.5 mL). The mixture was stirred at rt for 16 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 50) to give the title compound (4.5 g, 86.5%). 1 H NMR (500 MHz, CD 3 OD) δ ppm 0.87-1.08 (m, 12H), 1.57-1.78 (m, 8H), 2.15-2.52 (m, 8H), 3.86-3.94 (m, 1H), 3.98-4.05 (m, 1H), 4.05-4.13 (m, 1H), 4.13-4.19 (m, 1H), 4.19-4.29 (m, 1H), 5.02 (t, J = 10.0 Hz, 1H), 6.21 (d, J = 3.5 Hz, 1H), 8.21 (d, J = 8.0 Hz, 0.25H); 13 C NMR (125 MHz, CD 3OD) δ ppm 12.52, 12.59, 17.86, 17.92, 18.91, 19.41, 35.21, 35.36, 35.43, 37.24, 37.86, 53.00, 53.46, 61.82, 68.57, 70.07, 70.65, 89.90, 171.90, 172.69, 173.42, 175.27; + ) 481.9 (M+Na).

[0228] Example 35 Preparation of 1-O-benzyl-2-N-butyryl-D-glucosamine (compound 75). AcCl (21.4 g, 272.808 mmol, 3.4 eq) was added to a solution of GlcNBu (20.0 g, 80.238 mmol, 1.0 eq) in BnOH (200 mL). The reaction mixture was stirred at rt for 0.5 h and then at 70° C. for 2 h. The mixture was concentrated under vacuum pressure. EtOH (200 mL) was added and the mixture was stirred for 0.5 h. The mixture was filtered and dried to give the title compound (4.7 g). The filtrate was concentrated under reduced pressure to 100 mL followed by iPr 2 O (200 mL) was added. The mixture was stirred for 0.5 h to give a second crop of the title compound (15.21 g) (by filtration and drying). The overall yield was 73.1%. 1 H NMR (500 MHz, CD 3 OD) δ ppm 0.97 (t, J = 7.5 Hz, 3H), 1.51-1.78 (m, 2H), 2.23 (t, J = 7.5 Hz, 2H), 3.09 (dd, J = 10.5, 3.5 Hz, 0.19H), 3.38-3.47 (m, 1H), 3.67-3.81 (m, 3H), 3.81-3.91 (m, 2H), 3.95 (dd, J = 11.0, 3.5 Hz, 1H), 4.53 (d, J = 12.0 Hz, 1H), 4.78 (d, J = 12.0 Hz, 1H), 5.36 (d, J = 3.5 Hz, 0.14H), 7.18-7.54 (m, 5H); 13 C NMR (125 MHz, CD3 OD) δ ppm 12.63, 18.97, 37.43, 53.88, 54.82, 60.82, 61.32, 68.68, 70.03, 70.37, 71.03, 71.19, 71.95, 72.68, 89.40, 96.10, 127.44, 127.94, 127.98, 137.52, 175.08; - ) 337.9.

[0229] (Example 36) Preparation of 2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (compound 76). BnBr (11.15 g, 65.210 mmol, 2.2 eq) was added to a solution of 4,6-O-benzylidene-2-N-butyryl-D-glucosamine (10.0 g, 29.641 mmol, 1.0 eq) in DMF (150 mL). The mixture was cooled to 100° C. 2 Cooling to -10°C under atmosphere was followed by the addition of NaH (3.2 g, 80.031 mmol, 2.7 eq, 60% in mineral oil). The reaction mixture was stirred at rt for 2 h. EA (200 mL) and H 2 O (200 mL) was added to the reaction mixture. The organic layer was 2 The mixture was washed with HO (100 mL) and brine (100×3 mL) and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 100-1 / 50) to give 4,6-O-benzylidene-2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (11.5 g, 75.0%). 2 HO (3.45 mL) was added to a solution of 4,6-O-benzylidene-2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (11.5 g, 22.217 mmol, 1.0 eq) in TFA (46 mL). The mixture was stirred at rt for 1 h and then diluted with H 20 (115 mL). The mixture was stirred for 0.5 h, filtered, and the filter cake was added to saturated sodium bicarbonate (115 mL). The mixture was stirred for 0.5 h, filtered, and the filter cake was added to EA (11.5 mL) and PE (115 mL). The mixture was stirred at 50° C. for 1 h, filtered, and the filter cake was dried to give the title compound (6.1 g, 64%). 1 H NMR (500 MHz, CD 3 OD) δ ppm 0.87-0.98 (m, 3H), 1.54-1.67 (m, 2H), 2.07-2.23 (m, 2H), 3.52-3.65 (m, 1H), 3.71-3.83 (m, 3H), 3.85-4.01 (m, 1H), 4.07-4.18 (m, 1H), 4.52-4.60 (m, 1H), 4.63-4.74 (m, 1H), 4.81 (d, J = 12.0 Hz, 1H), 4.86 (d, J = 3.5 Hz, 1H), 4.92 (s, 1H), 7.24-7.49 (m, 10H), 8.10 (d, J = 9.0 Hz, 0.15H); 13 C NMR (125 MHz, CD 3 OD) δ ppm 12.63, 18.97, 37.43, 53.88, 54.82, 60.82, 61.32, 68.68, 70.03, 70.37, 71.03, 71.19, 71.95, 72.68, 89.40, 96.10, 127.44, 127.94, 127.98, 137.52, 175.08; + ) 430.1.

[0230] (Example 37) Preparation of 2-N-butyryl-3-O-cyclohexylaminocarbonyl-6-O-(4-cyclohexylamino-4-oxo-butyryl)-D-glucosamine (Compound 77). DMAP (0.12 g, 1 mmol, 0.1 eq) was added to a solution of 2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (4.3 g, 10 mmol, 1 eq) in pyridine (43 mL), followed by dihydrofuran-2,5-dione (1.0 g, 10 mmol, 1 eq). The reaction mixture was stirred at rt for 16 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 20 to 1 / 10) to give 2-N-butyryl-1,3-di-O-benzyl-6-O-(4-hydroxy-4-oxo-butyryl)-D-glucosamine (3.0 g, 56.7%). DCC (1.4 g, 6.8 mmol, 1.2 eq) was added to a solution of 2-N-butyryl-1,3-di-O-benzyl-6-O-(4-hydroxy-4-oxo-butyryl)-D-glucosamine (3.0 g, 5.7 mmol, 1.0 eq) in DCM (30 mL), the mixture was stirred at rt for 16 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 40) to give 2-N-butyryl-1,3-di-O-benzyl-4-O-cyclohexylaminocarbonyl-6-O-(4-cyclohexylamino-4-oxo-butyryl)-D-glucosamine (3.0 g, 73.0%). 10% Pd / C (1.5 g) was added to a solution of the compound obtained above (3.0 g, 4.1 mmol, 1 eq) in MeOH (15 mL), followed by acetic acid (15 mL). The mixture was diluted with H 2 The mixture was stirred at rt under atmosphere for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (2.0 g, 88.5%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.95 (t, J=7.0Hz, 3H), 1.11-1.99 (m, 21H), 2.01 (s, 2H), 2.66-2.68 (m, 4H), 3.33-4.60 (m, 8.44H), 5.08 (s, 0.78H), 7.76 (s, 0.57H), 8.23 ​​(s, 0.76H);13 C NMR (CD 3 OD, 125 MHz) δ ppm 12.64, 19.00, 24.63, 28.77, 37.52, 37.57, 50.36, 50.48, 51.00, 54.19, 63.85, 69.28, 70.84, 71.07, m / z (ESI + ): 556.3.

[0231] (Example 38) Preparation of 2-N-butyryl-4,6-di-O-pentanoyl-D-glucosamine (compound 78). Valeric anhydride (2.23 g, 12 mmol, 3 eq) was added to a solution of 2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (2 g, 4 mmol, 1 eq) and DMAP (0.025 g, 0.2 mmol, 0.05 eq) in pyridine (10 mL). The mixture was stirred at 35° C. for 16 h. Pyridine was removed under reduced pressure. The residue was dissolved in ethyl alcohol (30 mL) and diluted with H 2 2.3 g, 4 mmol, 1 eq) of the compound obtained above was dissolved in MeOH (10 mL) and AcOH (10 mL) and the solution was diluted with H2O (150 mL) and the solid was collected and dried to give 2-N-butyryl-1,3-di-O-benzyl-4,6-di-O-pentanoyl-D-glucosamine (2.3 g, 92% yield) as a pale yellow solid. 2 Pd / C (1.2 g, 10%, wet) was added under reduced pressure. The mixture was stirred at 25° C. for 40 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (1 g, 60% yield). 1 H NMR (500 MHz, CD 3OD) δ 5.15 (s, 0.82H), 4.70 (s, 0.16H), 4.26 - 4.03 (m, 3H), 3.99 (d, J = 10.3 Hz, 1H), 3.89 (t, J = 9.7 Hz, 1H), 3.70 (s, 0.48H), 2.50 - 2.34 (m, 4H), 2.26 (d, J = 6.7 Hz, 2H), 1.77 - 1.57 (m, 6H), 1.41 (s, 4H), 0.98 (d, J = 7.1 Hz, 9H). 13 C NMR (125 MHz, CD 3 OD) δ 175.13, 173.79, 173.05, 95.66, 91.15, 72.05, 71.47, 71.07, 68.94, 67.27, 62.41, 57.50, 54.36, 37.88, 37.44, 33.35, 33.23, 26.61, 21.84, 18.95, 12.66, 12.53. m / z (ESI + ) 417.9.

[0232] (Example 39) Preparation of 2-N-butyryl-4,6-di-O-(4-hydroxy-4-oxo-butyryl)-D-glucosamine (compound 79). Dihydrofuran-2,5-dione (3 g, 30 mmol, 3 eq) was added to a solution of 2-N-butyryl-1,3-di-O-benzyl-D-glucosamine (4.29 g, 10 mmol, 1 eq) and DMAP (0.06 g, 0.5 mmol, 0.05 eq) in pyridine (22 mL). The mixture was stirred at 35° C. for 16 h. Pyridine was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 20) to give 2-N-butyryl-1,3-di-O-benzyl-4,6-di-O-(4-hydroxy-4-oxo-butyryl)-D-glucosamine (1.6 g, 25.8% yield) as a white solid. The compound obtained above (1.5 g, 2 mmol, 1 eq) was dissolved in MeOH (10 mL) and AcOH (10 mL), followed by H 2Pd / C (0.75 g, 10%, wet) was added under reduced pressure. The mixture was stirred at 25° C. for 40 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 10) to give the title compound (0.518 g, 57.68% yield) as a white solid. 1 H NMR (500 MHz, CD 3 OD) δ 5.16 (s, 0.81H), 4.71 (d, J = 6.0 Hz, 0.19H), 4.19 (t, J = 16.4 Hz, 3H), 3.99 (s, 1H), 3.93 (t, J = 9.6 Hz, 1H), 3.73 (s, 1H), 3.65 (s, 0.45H), 2.65 (t, J = 20.7 Hz, 9H), 2.27 (d, J = 6.3 Hz, 2H), 1.69 (d, J = 6.5 Hz, 2H), 1.37 (d, J = 34.1 Hz, 2H), 1.00 (s, 3H). 13 C NMR (126 MHz, CD 3 OD) δ 175.16, 174.85, 172.60, 172.10, 91.10, 72.04, 68.86, 67.12, 62.89, 62.85, 54.22, 48.45, 37.90, 37.45, 31.66, 29.34, 28.82, 28.67, 28.59, 28.45, 22.33, 18.97, 13.04, 12.54. m / z (ESI + ) 449.9, m / z (ESI - ) 447.9.

[0233] (Example 40) Preparation of 2-O-butyryl-4,6-di-O-propanoyl-D-glucosamine (compound 80). Propionic anhydride (1.56 g, 12 mmol, 3 eq) was added to a solution of N-butyryl-1,3-di-O-benzyl-D-glucosamine (2 g, 4 mmol, 1 eq) and DMAP (0.025 g, 0.2 mmol, 0.05 eq) in pyridine (10 mL). The mixture was stirred at 35° C. for 16 h. Pyridine was removed under reduced pressure. The residue was dissolved in ethyl alcohol (30 mL) and diluted with H 2 2H2O (150 mL), the solid was collected and dried to give N-butyryl-1,3-di-O-benzyl-4,6-di-O-propanoyl-D-glucosamine (1.5 g, 65% yield) as a white solid. This white solid (1.5 g, 2 mmol, 1 eq) was dissolved in MeOH (7.5 mL) and AcOH (7.5 mL) followed by addition of H 2 Pd / C (0.75 g, 10%, wet) was added under reduced pressure. The mixture was stirred at 25° C. for 40 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (0.596 g, 82.54% yield) as a white solid. 1 H NMR (500 MHz, CD 3 OD) δ 5.16 (d, J = 3.4 Hz, 0.87H), 4.95 (d, J = 9.8 Hz, 1H), 4.71 (d, J = 7.8 Hz, 0.09H), 4.25 (dd, J = 12.1, 4.6 Hz,1H), 4.16 (m, 1H), 4.08 (dd, J = 12.1, 2.2 Hz, 1H), 4.00 m,, 1H), 3.94 - 3.87 (m, 1H), 2.49 - 2.36 (m, 4H), 2.27 (t, J = 7.4 Hz, 2H), 1.69 (dd, J = 14.8, 7.4 Hz, 2H), 1.17 (td, J = 7.6, 3.8 Hz, 6H), 1.04 - 0.94 (m, 3H). 13 C NMR (126 MHz, CD 3OD) δ 175.14, 174.47, 173.82, 91.15, 71.56, 68.91, 67.30, 62.42, 54.33, 37.44, 26.91, 26.77, 18.96, 12.53, 7.93, 7.91. m / z (ESI + ) 361.9.

[0234] (Example 41) 2-N-(Butyryl- d7 Preparation of .DELTA.-D-glucosamine (compound 81). To a suspension of glucosamine hydrochloride (2.5 g, 11.59 mmol, 1 eq) in pyridine (50 mL) was added HMDS (24.2 mL, 115.9 mmol, 10 eq) followed by TMSCl (14.7 mL, 115.9 mmol, 10 eq). The resulting mixture was stirred at rt for 3 h. The mixture was evaporated in vacuum and purified by flash column chromatography (eluent, EA / PE=1 / 30-1 / 10) to give 1,3,4,6-tetra-O-trimethylsilyl-D-glucosamine (4.0 g, 85.6%). Butyric acid- d7 (0.771 g, 8.1 mmol, 1 eq) was added to a solution of 1,3,4,6-tetra-O-trimethylsilyl-D-glucosamine (3.8 g, 8.1 mmol, 1 eq) in DCM (38 mL), followed by DCC (2.01 g, 9.7 mmol, 1.2 eq). The mixture was stirred at rt for 3 h. The mixture was evaporated in vacuum and purified by flash column chromatography (eluent, EA / PE=1 / 30 to 1 / 15) to give 2-N-butyryl-1,3,4,6-tetra-O-trimethylsilyl-D-glucosamine (3.0 g, 67.8%). The above obtained compound (3.0 g, 5.5 mmoL, 1 eq) was dissolved in DCM (30 mL), followed by the addition of 4 M HCl in dioxane (1 mL). The mixture was stirred at rt for 3 h and concentrated in vacuo to give the title compound (1.4 g, 99.9%). 1 H NMR (400 MHz, D 2O) δ ppm 3.38-3.50 (m, 1.67H), 3.61-3.87 (m, 4.63H), 4.65 (d, J= 8.0 Hz, 0.4H), 5.14 (d, J= 3.0 Hz, 0.6H); 13 C NMR (125 MHz, D 2 m / z (ESI - ): 255.0.

[0235] (Example 42) Preparation of 6-O-(4-aminobutyryl)-2-N-butyryl-D-glucosamine hydrochloride (compound 82). 4M HCl / dioxane (0.8 mL, 3.2 mmol, 2 eq) was added to a solution of 6-O-(4-tert-butyloxycarbonylaminobutyryl)-2-N-butyryl-D-glucosamine (700 mg, 1.6 mmol, 1 eq) in dioxane (15 mL). The mixture was stirred at rt for 3 h, some solid evolved, and the solvent was removed. The residue was dissolved in water and dried under vacuum at -40°C to give the title compound (400 mg, 67.1%). 1 H NMR (500 MHz, D 2 O) δ 5.13 (d, J = 3.5 Hz, 0.35H), 4.47 - 4.22 (m, 1.35H), 4.07 - 3.93 (m, 0.42H), 3.84 (dd, J = 10.6, 3.2 Hz, 1.02H), 3.72 (dd, J = 10.7, 9.1 Hz, 1.18H), 3.67 - 3.54 (m, 1.25H), 3.56 - 3.32 (m, 1.45H), 3.00 (s, 2H), 2.53 (d, J = 2.3 Hz, 2H), 2.22 (d, J = 6.9 Hz, 2H), 2.00 - 1.81 (m, 2H), 1.56 (d, J = 7.3 Hz, 2H), 0.85 (dt, J = 11.5, 5.7 Hz, 3H);13 C NMR (125 MHz, D 2 O) δ 177.81, 177.56, 176.90, 174.60, 95.02, 90.92, 73.51, 73.27, 70.36, 70.11, 69.84, 69.23, 63.49, 62.51, 60.62, m / z (ESI - ) 370.9.

[0236] (Example 43) Preparation of 6-O-(4-aminobutyryl)-2-N-4-O-dibutyryl-D-glucosamine hydrochloride (compound 83). Butyric anhydride (2 g, 12.6 mmol, 3.15 eq) was added to a solution of 6-O-(4-tert-butoxyaminobutyryl)-1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (3 g, 4.9 mmol, 1 eq) and DMAP (25 mg, 0.2 mmol, 0.05 eq) in pyridine (30 mL). The mixture was stirred at rt for 16 h, removed pyridine, dissolved with DCM, the organic layer was washed with water and saturated sodium bicarbonate solution and dried over anhydrous magnesium sulfate. The organic layer was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 50) to obtain 6-O-(4-tert-butoxyaminobutyryl)-1,3-di-O-benzyl-2-N-4-O-dibutyryl-D-glucosamine (3 g, 89%). The compound thus obtained (3 g, 8.1 mmol, 1 eq) was dissolved in MeOH (15 mL) and acetic acid (15 mL), followed by the addition of Pd / C (10%, 1.2 g). The mixture was subjected to H 2The mixture was stirred at rt under atmosphere for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 50) to give 6-O-(4-tert-butoxyaminobutyryl)-2-N-4-O-dibutyryl-D-glucosamine (2 g, 90%). The Boc derivative (1 g, 2 mmol, 1 eq) was dissolved in DCM (40 mL) followed by the addition of 4M HCl / dioxane (1 mL, 4 mmol, 2 eq). The mixture was stirred at rt for 3 h, some solid evolved and the solvent was removed. The residue was dissolved in water and dried under vacuum at -40°C to give the title compound (380 mg, 43.4%). 1 H NMR (500 MHz, D 2 O) δ 5.19 (d, J = 3.0 Hz, 0.62H), 4.92 (t, J = 9.4 Hz, 0.9H), 4.31 (td, J = 12.9, 3.1 Hz, 0.98H), 4.21 (d, J = 10.1 Hz, 0.61H), 4.12 (dd, J = 27.3, 12.6 Hz, 0.94H), 3.97 - 3.88 (m, 1.23H), 3.85 (d, J = 9.7 Hz, 0.32H), 3.78 - 3.69 (m, 0.69H), 3.02 (t, J = 7.5 Hz, 2H), 2.60 - 2.48 (m, 2H), 2.38 (dd, J = 9.1, 5.1 Hz, 2H), 2.24 (t, J = 7.2 Hz, 2H), 2.04 - 1.84 (m, 2H), 1.67 - 1.45 (m, 4H), 0.95 - 0.76 (m, 6H); 13 C NMR (125 MHz, D 2O) δ 177.84, 177.61, 175.71, 174.32, 95.15, 90.97, 71.45, 71.20, 70.58, 70.24, 68.40, 67.16, 62.38, 56.43, 53.83, 38.65,37.92,37.51,35.69,30.53,21.94,18.96,17.89,12.77,12.57; - ) 440.8.

[0237] (Example 44) Preparation of 6-O-(4-tert-butoxycarbonylaminobutyryl)-2-N-butyryl-D-glucosamine (compound 84). Triethylamine (15 mL, 108 mmol, 1.25 eq) was dissolved in MeOH (200 mL) with 4-aminobutanoic acid (9 g, 87 mmol, 1 eq) and (BOC) 2 To a solution of 0 (20.9 g, 96 mmol, 1.1 eq) was added. The mixture was stirred at 50° C. for 2 h and the solvent was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 50-1 / 5) to give 4-((tert-butoxycarbonylamino)butanoic acid (9.0 g, 75%). 4-((tert-butoxycarbonyl)amino)butanoic acid (8 g, 39.4 mmol, 2 eq) was added to a solution of 1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (8.5 g, 19.7 mmol, 1 eq) in DMF (200 mL), followed by HOBt (8 g, 159.2 mmol, 3 eq), EDCI (15 g, 78.2 mmol, 4 eq), DIPEA (15 g, 116 mmol, 6 eq). The mixture was stirred at rt for 16 h. 2HO (500 mL) was added to the reaction mixture. The white suspension was filtered, and the filter cake was washed with water and then dried under vacuum at 50° C. to give 1,3-di-O-benzyl-6-O-(4-tert-butoxycarbonylaminobutyryl)-2-N-butyryl-D-glucosamine (11 g, 45%). The above obtained compound (5 g, 8.1 mmol, 1 eq) was dissolved in MeOH (25 mL), followed by the addition of acetic acid (25 mL) and then Pd / C (10%, 2.5 g). The mixture was stirred for 2 hours at 37° C. for 1 hour at 37° C. for 1 hour at 37° C. for 1 hour at 37° C. 2 The mixture was stirred under atmosphere at rt for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (3.07 g, 86%). 1 H NMR (500 MHz, CD 3 OD) δ 5.53 (s, 0.48H), 5.13 (s, 0.93H), 4.42 (d, J = 11.7 Hz, 0.96H), 4.35 - 4.19 (m, 0.96H), 4.04 (s, 0.93H), 3.90 (d, J = 10.6 Hz, 0.93H), 3.75 (t, J = 9.6 Hz, 0.96H), 3.40 (t, J = 6.8 Hz, 1H), 3.12 (d, J = 5.5 Hz, 2H), 2.42 (t, J = 6.3 Hz, 2H), 2.27 (t, J = 6.3 Hz, 2H), 1.90 - 1.76 (m, 2H), 1.69 (dd, J = 13.7, 6.7 Hz, 2H), 1.48 (s, 9H), 1.01 (d, J = 7.1 Hz, 3H); 13 C NMR (125 MHz, CD 3 OD) δ 175.13, 173.51, 157.13, 95.74, 91.21, 78.58, 74.45, 73.87, 71.25, 71.07, 70.90, 69.28, 63.54, 57.25, 54.32, 53.39, 39.22, 37.50, 30.86, 27.37, 24.90, 18.95, 12.55; +) 435.0, (ESI - ) 433.0.

[0238] (Example 45) Preparation of 4,6-di-O-acetyl-2-N-butyryl-D-glucosamine (compound 85). DMAP (0.04 g, 0.29 mmol, 0.05 eq) was added to a solution of 1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (2.5 g, 5.8 mmol, 1 eq) in pyridine (25 mL), followed by acetic anhydride (1.5 g, 14.5 mmol, 2.5 eq). The reaction mixture was stirred at rt for 16 h and then diluted with H. 2 The mixture was stirred at rt for 1 h. The solid was filtered and then poured into H 2 The mixture was washed with 2,3-di-O-acetyl-1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (50 mL) and dried to give 4,6-di-O-acetyl-1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (3.2 g, 87.2%). The compound thus obtained (3.2 g, 5.1 mmol, 1 eq) was dissolved in MeOH (15 mL) and acetic acid (15 mL), followed by the addition of Pd / C (10%, 1.6 g). The mixture was stirred for 2 h at 37° C. for 1 ... 2 The mixture was stirred at rt under atmospheric pressure for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (1.5 g, 88.9%). 1 H NMR (CD 3 OD, 500 MHz) δ ppm 0.95 (t, J=7.0Hz, 3H), 1.60-1.67 (m, 2H), 2.04 (s, 3H), 2.08 (s, 3H), 2.23 (t, J=7.0Hz, 2H), 3.65-3.72 (m, 0.44H), 3.86 (t, J=9.5Hz, 0.87H), 3.94-4.21 (m, 3.82H), 4.66 (d, J=7.5Hz, 0.16H), 4.86 (t, J=9.5Hz, 1H), 5.11 (d, J=3.0Hz, 0.85H), 7.84 (d, J=8.5Hz, 0.6H); 13C NMR (CD 3 OD, 125 MHz) δ ppm 13.94, 20.30, 20.71, 20.92, 38.80, 38.85, 39.23, 55.60, 55.68, 58.68, 63.88, 68.88, 70.20, 72.82, m / z (ESI + ): 333.9.

[0239] (Example 46) Preparation of 2-N-butyryl-6-O-(9-hydroxy-9-oxononanoyl)-D-glucosamine (compound 86). BnBr (4.54 g, 26.565 mmol, 1.0 eq) and DBU (4.04 g, 26.565 mmol, 1.0 eq) were dissolved in N 2 To a solution of nonanedioic acid (5.0 g, 26.565 mmol, 1.0 eq) in THF (30 mL) was added under atmosphere at 0° C. The mixture was stirred at rt for 16 h. Ethyl acetate (50 mL) and H 2 O (50 mL) was added to the reaction mixture. The organic layer was 2 The mixture was washed with 200 mL of HO and brine (50 mL) and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 50) to give 9-(benzyloxy)-9-oxononanoic acid (5.2 g, 70.4%). 9-(benzyloxy)-9-oxononanoic acid (4.9 g, 17.604 mmol, 1.0 eq) in anhydrous THF (10 mL) was dissolved in N 2 Et in anhydrous THF (150 mL) at 0° C. 3 To a solution of N (1.78 g, 35.209 mmol, 1.0 eq) and NosCl (3.9 g, 19.604 mmol, 1.0 eq) was added. The mixture was stirred at rt for 2 h. Et 3N (1.78 g, 35.209 mmol, 1.0 eq), DMAP (430 mg, 3.521 mmol, 0.2 eq) and 1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (7.56 g, 17.604 mmol, 1.0 eq) were added to the mixture. The reaction mixture was stirred at rt for 16 h. Et 2 O (200 mL) and H 2 O (200 mL) was added to the reaction mixture. The organic layer was 2 The mixture was washed with 200 mL of HO and 1M sodium hydroxide solution (100*2 mL), dried over anhydrous sodium sulfate, and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 50) to obtain 1,3-di-O-benzyl-2-N-butyryl-6-O-(9-benzyloxy-9-oxononanoyl)-D-glucosamine (7.4 g, 61.2%). The above obtained compound (3.5 g, 5.074 mmol, 1 eq) was dissolved in MeOH (35 mL) and AcOH (35 mL), followed by the addition of Pd / C (10%, 4.41 g). The mixture was diluted with H 2 The mixture was stirred under atmosphere at 35° C. for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 50) to give the title compound (898 mg, 20.4%). 1 H NMR (500 MHz, CD 3OD) δ ppm 1.01 (t, J = 7.5 Hz, 3H), 1.41 (s, 6H), 1.57-1.77 (m, 6H), 2.28 (t, J = 7.5 Hz, 2H), 2.34 (t, J = 7.5 Hz, 2H), 2.40 (t, J = 7.5 Hz, 2H), 3.41 (t, J = 9.5 Hz, 1H), 3.76 (t, J = 9.0 Hz 1H), 3.86-3.98 (m, 1H), 3.98-4.11 (m, 1H), 4.26 (dd, J = 11.5, 5.0 Hz, 1H), 4.43 (d, J = 10.0 Hz, 1H), 5.13 (d, J = 3.5 Hz, 1H), 7.81 (d, J = 8.5 Hz, 1H); 13 C NMR (125 MHz, CD 3 OD) δ ppm 13.96, 20.36, 25.94, 26.01, 30.02, 34.92, 34.95, 38.91, 55.71, 64.76, 68.53, 70.75, 72.48, 72.58, 92.62, 175.50, 176.54, 177.72; m / z (ESI - ): 418.0.

[0240] (Example 47) Preparation of 2-N-butyryl-6-O-phosphono-D-glucosamine (compound 87). GlcNBu (2.49 g, 10 mmol, 1.0 eq) was dissolved in pyridine (25 mL) and the solution was agitated with N 2 The mixture was cooled to -10°C under atmosphere. To this solution was added diphenyl phosphorochloridate (2.68g, 10mmol, 1.0eq). The reaction mixture was stirred at rt for 2-4h and concentrated in vacuo. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 30) to give 2-N-butyryl-6-O-(diphenylphosphono)-D-glucosamine (1.6g, 73%). The above obtained compound (1.6g, 3.3mmol, 1eq) was dissolved in water (32mL) followed by addition of Pt 2O (0.16 g) was added. The mixture was diluted with H 2 The mixture was stirred under atmosphere at rt for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure to give the title compound (1.09 g, 99.2%). 1 H NMR (D 2 O, 500 MHz) δ ppm 0.77-0.81 (m, 3H), 1.47-1.51 (m,2H), 2.13-2.17 (m, 2H), 3.38-3.47 (m, 1.6H), 3.58 (t, J=9.0Hz, 0.4H), 3.65 (t, J=9.5Hz, 0.6H), 3.77-4.09 (m, 3.4H), 4.62 (d, J=8.0Hz, 0.4H), 5.01 (d, J=3.0Hz, 0.6H); 13 C NMR (D 2 O, 125 MHz) δ ppm 12.55, 18.88, 37.44, 37.84, 53.79, 56.36, 64.70, 69.35, 69.57, 70.23, 70.34, 90.86, 94.93, 177.46, 177.74; 31 P NMR (D 2 O, 200 MHz) δ ppm 1.02; m / z (ESI - ): 327.9.

[0241] (Example 48) Preparation of 2-N-3,6-di-O-tributyryl-D-glucosamine (compound 88). Butyric anhydride (2.70 g, 17.034 mmol, 1.1 eq) and DMAP (95 mg, 0.774 mmol, 0.05 eq) were added to a solution of 1-O-benzyl-4,6-O-benzylidene-D-glucosamine (6.62 g, 15.486 mmol, 1.0 eq) in pyridine (66 mL). The mixture was stirred at 35° C. for 16 h. The mixture was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, EA / PE=1 / 20 to 1 / 5) to give 1-O-benzyl-4,6-O-benzylidene-2-N-3-O-dibutyryl-D-glucosamine (6.2 g, 80.5%). This compound (7.93 g, 15.937 mmol, 1.0 eq) was taken up in TFA (31.7 mL) and subsequently diluted with H 2 2.4 mL of N-O was added. The mixture was stirred at rt for 5 min and then added to saturated sodium bicarbonate (150 mL). The mixture was stirred for 10 min and extracted with DCM (100 mL x 3). The combined organic layers were washed with brine (100 mL) and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM = 1 / 100 to 1 / 50) to give 1-O-benzyl-2-N-3-O-dibutyryl-D-glucosamine (5.5 g, 84.2%). Butyric acid (646 mg, 7.327 mmol, 1.0 eq) in anhydrous THF (2 mL) was added to N- 2 Et in anhydrous THF (60 mL) at 0° C. 3 To a solution of N (741 mg, 7.327 mmol, 1.0 eq) and NosCl (1.62 g, 7.327 mmol, 1.0 eq) was added. The mixture was stirred at rt for 2 h. Et 3 N (741 mg, 7.327 mmol, 1.0 eq), DMAP (179 mg, 1.465 mmol, 0.2 eq) and 1-O-benzyl-2-N-3-O-dibutyryl-D-glucosamine (3 g, 7.327 mmol, 1.0 eq) were added to the mixture. The reaction mixture was stirred at rt for 16 h. Et 2 O (100 mL) and H 2 O (100 mL) was added to the reaction mixture. The organic layer was 2 200 mL and 1 M sodium hydroxide solution (100* The mixture was washed with 1,2-hexanediol (2 mL), dried over anhydrous sodium sulfate and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 50) to obtain 1-O-benzyl-2-N-3,6-di-O-tributyryl-D-glucosamine (1.35 g, 38.5%). The compound thus obtained (1.35 g, 2.805 mmol, 1 eq) was dissolved in MeOH (7 mL), followed by the addition of AcOH (7 mL) and then Pd / C (10%, 2.20 g). The mixture was diluted with H 2 The mixture was stirred under atmosphere at 35° C. for 48 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 50) to give the title compound (741.5 mg, 67.9%). 1 H NMR (500 MHz, CD 3 OD) δ ppm 0.88-1.06 (m, 9H), 1.55-1.77 (m, 6H), 2.12-2.25 (m, 2H), 2.27-2.45 (m, 4H), 3.59 (t, J = 9.5 Hz, 1H), 3.79-3.87 (m, 0.14H), 4.05-4.17(m, 2H), 4.28 (dt, J = 11.5, 5.0 Hz, 1H), 4.38-4.50 (m, 1H), 4.75 (d, J = 8.0 Hz, 0.14H), 5.07 (d, J = 3.5 Hz, 1H), 5.26 (t, J = 10.5 Hz, 1H), 7.67 (d, J = 9.0 Hz, 0.44H); 13 C NMR (125 MHz, CD 3 OD) δ ppm 12.53, 12.58, 17.98, 18.02, 18.92, 35.46, 35.69, 37.44, 52.25, 62.97, 68.75, 69.26, 73.14, 91.41, 173.84, 174.73; m / z (ESI + ): 390.0.

[0242] (Example 49) Preparation of 2-N-butyryl-4-O-(D-glucopyranosyl)-D-glucosamine (compound 89). Acetic anhydride (34.27 g, 340 mmol, 6 eq) was added to a solution of D-glucose (10 g, 5.6 mmol, 1 eq) and DMAP (0.69 g, 0.056 mmol, 0.1 eq) in pyridine (150 mL). The mixture was stirred at 20° C. for 16 h. Pyridine was removed under reduced pressure. The residue was washed with PE (150 mL) and the solid was collected and dried to give 1,2,3,4,6-pentaacetyl-D-glucopyranose (12 g, 55% yield) as a white solid. Phenylmethanamine (2.866 g, 26.8 mmol, 1.1 eq) was added to a solution of 1,2,3,4,6-penta-O-acetyl-D-glucopyranose (9.5 g, 24.4 mmol, 1 eq) in THF (40 mL). The mixture was stirred at 25° C. for 25 h. The mixture was concentrated under reduced pressure and purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 70) to give 2,3,4,6-tetra-O-acetyl-D-glucopyranose (9 g) as an oil. This compound (9.5 g, 27.3 mmol, 1 eq) was dissolved in DCM (100 mL), followed by the addition of DBU (0.831 g, 5.46 mmol, 0.2 eq) at 0° C. for 10 min, followed by the dropwise addition of 2,2,2-trichloroacetonitrile (11.23 g, 98.2 mmol, 3.6 eq). The mixture was stirred at 25° C. for 3 h, then concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 70) to give 2,3,4,6-tetra-O-acetyl-D-glucopyranosyl trichloroacetimidate (8.5 g, 63% yield) as an oil. 3A solution of was added dropwise to a solution of 2-N-butyryl-1,3,6-tri-O-benzyl-D-glucosamine (3.102 g, 5.97 mmol, 1 eq) and 2,3,4,6-tetra-O-acetyl-D-glucopyranosyl trichloroacetimidate (4.4 g, 8.96 mmol, 1.5 eq) in DCM (100 mL). The mixture was stirred at 25° C. for 1 h, and then the pH of the mixture was adjusted to 7. The mixture was then washed with brine (30 mL×3) and diluted with Na 2 SO 4 The organic phase was concentrated under reduced pressure and purified by flash column chromatography (eluent, MeOH / DCM=1 / 100-1 / 100) to give the corresponding disaccharide derivative (2.5 g, 50% yield) as a white solid. This disaccharide derivative (2.45 g, 2.88 mmol, 1 eq) was dissolved in MeOH (25 mL) and AcOH (25 mL). The solution was diluted with H 2 Pd / C (1 g, 10%, wet) was added under reduced pressure. The mixture was stirred at 25° C. for 16 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 20) to give 2-N-butyryl-4-O-(2,3,4,5-tetra-O-acetyl-D-glucopyranosyl)-D-glucosamine (0.5 g, 31% yield) as a white solid. To a solution of this intermediate compound (0.5 g, 0.86 mmol, 1 eq) in MeOH (10 mL) was added sodium methoxide (0.023 g, 0.43 mmol, 0.5 eq). The mixture was stirred at 25° C. for 16 h and then ... 2 The mixture was dissolved in 0 (1.5 mL) and stirred with acidic ion exchange resin. The mixture was filtered and the filtrate was concentrated under reduced pressure to give the title compound (0.26 g, 73% yield). 1H NMR (500 MHz, D2O) δ 5.23 (s, 0.49H), 5.15 (s, 0.14H), 5.07 (s, 0.09H), 4.67 - 4.48 (m, 1H), 4.38 (s, 0.12H), 4.18 (dd, J = 9.5, 5.0 Hz, 0.14H), 3.99 (d, J = 10.5 Hz, 1H), 3.93 (d, J = 14.0 Hz, 3H), 3.90 - 3.82 (m,0.68H), 3.81 - 3.68 (m, 3H), 3.62 (s, 0.42H), 3.59 - 3.47 (m, 2H), 3.47 - 3.41 (m, 1H), 3.34 (q, J = 11.0, 3.0 Hz, 1H), 2.49 - 2.11 (m, 2H), 1.64 (q, J = 14.0, 7.0 Hz, 2H), 1.09 - 0.72 (m, 3H). 13 C NMR (125 MHz, D2O) δ 178.64, 177.72, 177.49, 102.56, 94.84, 92.86, 90.53, 79.21, 78.82, 76.40, 75.96, 75.47, 75.11, 74.78, 73.16, 72.31, 71.56, 70.71, 70.21, 69.43, 69.05, 67.47, 60.54, 59.92, 56.18, 53.69, 52.61, 37.95, 37.52, 18.95, 12.59. m / z (ESI - ) 410.

[0243] (Example 50) 2-N-Butyryl-6- 18 Preparation of OD-Glucosamine (Compound 90). Triphenylphosphine (667 mg, 2.54 mmol, 1.2 eq) was dissolved in THF (50 mL) with 2-N-butyryl-1,3,4-tri-O-benzyl-D-glucosamine (1.12 g, 2.2 mmol, 1 eq) and benzoic acid- 18 O 2(0.325 g, 2.58 mmol, 1.2 eq) was added to a solution of DEAD (0.44 g, 2.53 mmol, 1.2 eq). The mixture was stirred at rt for 16 h. The mixture was then concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 200) to give the 6-O-position of 18 The abundance of the O-isotope is 98.7%. 18 O-6-O-( 18 O-benzoyl)-2-N-butyryl-1,3,4-tri-O-benzyl-D-glucosamine (1.2 g, 86.8%) and benzoyl oxygen were obtained. This isotopically labeled intermediate (1.2 g, 1.9 mmol, 1 eq) was dissolved in MeOH (90 mL) followed by the addition of sodium methoxide (0.21 g, 3.8 mmol, 2 eq). The mixture was stirred at rt for 16 h and then concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100) to give 6- 18 O-2-N-butyryl-1,3,4-tri-O-benzyl-D-glucosamine (0.89 g, 89.8%) was obtained. The tribenzyl derivative (0.89 g, 1.7 mmol, 1 eq) was dissolved in MeOH (25 mL), followed by the addition of acetic acid (25 mL) and then Pd / C (10%, 0.8 g). The mixture was heated at 37° C. for 1 hour at 37° C. for 2 hours ... 2 The mixture was stirred at 30° C. under atmospheric pressure for 48 h, then filtered. The filtrate was concentrated under reduced pressure. DCM (25 mL) was then added to the residue, and the mixture was stirred for 10 min. The solid was filtered off, dried, and the 6-O-position was purified by filtration. 18 The title compound was obtained (0.36 g, 84.3%) with 97.5% O-isotope abundance. 1 H NMR (500 MHz, D 2O) δ 5.23 (d, J = 3.6 Hz, 0.65H), 4.74 (d, J = 8.7 Hz, 0.4H), 3.98 - 3.85 (m, 2.57H), 3.84 - 3.68 (m,1.94H), 3.61 - 3.44 (m, 1.47H), 2.32 (t, J = 7.2 Hz, 2H), 1.66 (q, J = 7.4 Hz, 2H), 0.95 (td, J = 7.4, 3.9 Hz, 3H). 13 C NMR (125 MHz, D 2 O) δ 177.54, 94.99, 90.88, 75.93, 73.83, 71.55, 70.55, 70.16, 69.94, 60.75, 60.59, 56.55, 53.99, 37.98, 37.57, 18.99, 12.65.; m / z (ESI - ): 250.2;(ESI - ): 252.1.

[0244] (Example 51) Preparation of 2-N-4-O-dibutyryl-6-O-(2-hydroxybenzoyl)-D-glucosamine (Compound 91). Butyric anhydride (0.742 g, 4.69 mmol, 1.5 eq) was added to a solution of 1,3-di-O-benzyl-2-N-butyryl-6-O-(2-benzyloxybenzoyl)-D-glucosamine (2 g, 3.13 mmol, 1 eq) and DMAP (0.038 g, 0.31 mmol, 0.1 eq) in pyridine (20 mL). The mixture was stirred at 35° C. for 2 h. Pyridine was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 100) to give 1,3-di-O-benzyl-2-N-4-O-dibutyryl-6-O-(2-benzyloxybenzoyl)-D-glucosamine (2 g, 90% yield) as a white solid. This solid (2.0 g, 2.82 mmol, 1 eq) was dissolved in MeOH (15 mL) and AcOH (15 mL) followed by H 2Pd / C (1 g, 10%, wet) was added under reduced pressure. The mixture was stirred at 25° C. for 40 h. The mixture was filtered and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 30) to give the title compound (0.24 g, 20% yield) as a white solid. 1 H NMR (500 MHz, CD 3 OD) δ 7.94 (d, J = 7.5 Hz, 1H), 7.49 (t, J = 7.5 Hz, 1H), 6.93 (dd, J = 18.0, 9.0 Hz, 2H), 5.59 (s, 0.007H), 5.49 (s, 0.002H), 5.19 (d, J = 2.0 Hz, 0.85H), 5.06 (t, J = 9.5 Hz, 0.97H), 4.77 (d, J = 7.0 Hz, 0.17H), 4.57 (d, J = 14.5 Hz, 0.32H), 4.49 (d, J = 11.5 Hz, 0.83H), 4.39 (dd, J = 12.0, 4.5 Hz, 0.96H), 4.31 (d, J = 9.5 Hz, 0.82H), 4.04 (dd, J = 10.5, 2.5 Hz, 0.83H), 3.94 (t, J = 10.0 Hz, 0.81H), 3.85 (d, J = 7.5 Hz, 0.14H), 3.80 - 3.71 (m, 0.26H), 2.45 - 2.32 (m, 2H), 2.25 (t, J = 7.5 Hz, 2H), 1.78 - 1.54 (m, 4H), 0.96 (q, J = 13.5, 6.5 Hz, 6H). 13 C NMR (125 MHz, CD3OD) δ 175.69, 175.23, 173.14, 169.52, 161.31, 135.60, 129.97, 119.00, 116.98, 112.14, 95.74, 91.28, 72.05, m / z (ES +) 340.0, m / z (ES - ) 338.0.

[0245] (Example 52) Preparation of 2-N-butyryl-6-O-(2-N-D-glucosaminocarbonyl)-D-glucosamine (Compound 92). TBSCl (18.7 g, 124 mmol, 2 eq) was added to a solution of 1,3-di-O-benzyl-2-N-butyryl-D-glucosamine (20 g, 62 mmol, 1 eq) and DMAP (0.75 g, 6.2 mmol, 0.1 eq) in pyridine (200 mL). The mixture was cooled to 37° C. for 1 h. 2 After stirring at rt under atmospheric pressure for 3 h, the pyridine was removed under reduced pressure. The residue was dissolved in EtOH (40 mL) and 2 2.0 (400 mL). The white suspension was filtered, the filter cake was washed with water and then dried under vacuum at 50° C. to give 1,3-di-O-benzyl-2-N-butyryl-6-O-trimethylsilyl-D-glucosamine (25 g, 74%). The product (25 g, 46 mmol, 1 eq) was dissolved in DMF (300 mL) followed by the addition of benzyl bromide (9.6 g, 56.1 mmol, 1.2 eq). To the mixture was added NaH (2.8 g, 69.2 mmol, 2.7 eq) in batches while maintaining the temperature below 0° C. The mixture was warmed to rt and stirred at rt for 4 h. The mixture was diluted with H 2 O (2000 mL). The mixture was stirred at rt for 1 h. The solid was collected by filtration and then poured into H 2The mixture was washed with 2,3-dichloromethane (100 mL) and PE (100 mL) and dried to give 1,3,4-tri-O-benzyl-2-N-butyryl-6-O-trimethylsilyl-D-glucosamine (27 g, 92.6%). The obtained compound (27 g, 42.6 mmol, 1 eq) was dissolved in DCM (15 mL) and treated with 4 M HCl in dioxane (27 mL). The mixture was stirred at rt for 2 h and concentrated under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 200 to 1 / 40) to give 1,3,4-tri-O-benzyl-2-N-butyryl-D-glucosamine (16 g, 72.3%). The compound thus obtained (5.2 g, 10 mmol, 1 eq) and 4-nitrophenyl carbonochloridate (2.4 g, 12 mmol, 1.2 eq) were dissolved in DCM (100 mL) followed by the addition of triethylamine (1.5 g, 15 mmol, 1.5 eq). The mixture was stirred at rt for 16 h and the solvent was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 200) to give 1,3,4-tri-O-benzyl-2-N-butyryl-6-O-(4-nitrobenzyloxycarbonyl)-D-glucosamine (4.3 g, 62.8%). This product (1.05 g, 1.5 mmol, 1 eq) and D-glucosamine hydrochloride (0.32 g, 1.5 mmol, 1 eq) were dissolved in DMF (50 mL) followed by the addition of triethylamine (0.24 g, 2.4 mmol, 1.5 eq). The mixture was stirred at rt for 16 h and the solvent was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 200) to give 1,3,4-tri-O-benzyl-2-N-butyryl-6-O-(2-N-D-glucose aminocarbonyl)-D-glucosamine (1.1 g, 98.9%). The latter compound (1.1 g, 1.5 mmol, 1 eq) was dissolved in MeOH (35 mL) followed by the addition of Pd / C (10%, 0.8 g) and acetic acid (35 mL). The mixture was heated at 30° C. 2Stirred under atmosphere for 16 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The mixture was filtered. The filtrate was concentrated under reduced pressure. DCM (15 mL) was then added to the residue and stirred for 10 min, the solid was filtered and dried to give compound 92 (0.46 g, 66.6%). 1 H NMR (500 MHz, D 2 O) δ 5.20 (d, J = 3.5 Hz, 0.64H), 5.16 (d, J = 3.5 Hz, 0.81H), 4.40 - 4.21 (m, 1.5H), 4.00 (dd, J = 9.6, 2.8 Hz, 0.7H), 3.93 - 3.78 (m, 2.37H), 3.78 - 3.64 (m, 2.66H), 3.64 - 3.57 (m, 0.77H), 3.55 - 3.39 (m, 2.62H), 3.33 (d, J = 14.1 Hz, 0.19H), 2.25 (t, J = 7.2 Hz, 2H), 1.59 (q, J = 7.4 Hz, 2H), 0.88 (td, J = 7.4, 4.0 Hz, 3H). 13 C NMR (126 MHz, D 2 O) δ 177.81, 177.57, 158.34, 158.08, 95.10, 91.23, 90.97, 81.77, 75.94, 73.95, 73.75, 73.60, 71.56, 71.08, 70.44, m / z (ESI - ): 453;(ESI + ): 455.1.

[0246] (Example 53) Preparation of 1,3,4-tri-O-acetyl-2-N-butyryl-6-O-(2-acetyloxybenzoyl)-D-glucosamine (Compound 93). Acetic anhydride (2.22 g, 2.2 mmol, 4 eq) was added to a solution of 2-N-butyryl-6-O-(2-hydroxybenzoyl)-D-glucosamine (2 g, 5.4 mmol, 1 eq) and DMAP (0.032 g, 0.27 mmol, 0.05 eq) in pyridine (50 mL). The mixture was stirred at 35° C. for 2 h. Pyridine was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 100 to 1 / 70) to give the title compound (0.9 g, 31% yield) as a white solid. 1 H NMR (500 MHz, CD 3 OD) δ 8.02 (d, J = 7.5 Hz, 1H), 7.64 (t, J = 7.5 Hz, 1H), 7.39 (t, J = 7.5 Hz, 1H), 7.16 (d, J = 8.0 Hz, 1H), 6.14 (s, 1H), 5.34 (t, J = 10.0 Hz, 1H), 5.15 (t, J = 9.5 Hz, 1H), 4.51 - 4.39 (m, 2H), 4.36 (d, J = 12.5 Hz, 1H), 4.24 (d, J = 9.0 Hz, 1H), 2.37 (s, 3H), 2.19 (s, 3H), 2.15 (t, J = 7.0 Hz, 2H), 2.02 (s, 3H), 1.98 (s, 3H), 1.79 - 1.42 (m, J = 14.0, 6.9 Hz, 2H), 0.89 (t, J = 7.0 Hz, 3H). 13 C NMR (125 MHz, CD 3 OD) δ 175.18, 170.52, 169.92, 169.81, 169.37, 164.16, 150.62, 133.96, 131.37, 125.83, 123.60, 122.90, 90.06, 70.35, 69.70, 68.59, 62.32, 50.40, 37.11, 19.64, 19.35, 19.25, 19.19, 18.89, 12.45.m / z (ESI + ) 537.9.

[0247] (Example 54) Preparation of 2-N-butyryl-6-O-((3-carboxy-1-propyl)aminocarbonyl)-D-glucosamine (Compound 94). 1,3,4-Tri-O-benzyl-2-N-butyryl-6-O-(4-nitrobenzoyl)-D-glucosamine (1.4 g, 2 mmol, 1 eq) and 4-aminobutanoic acid (0.2 g, 2 mmol, 1 eq) were dissolved in DMF (200 mL) followed by the addition of triethylamine (0.3 g, 3 mmol, 1.5 eq). The mixture was stirred at rt for 16 h and DMF was removed under reduced pressure. The residue was purified by flash column chromatography (eluent, MeOH / DCM=1 / 50) to give 1,3,4-tri-O-benzyl-2-N-butyryl-6-O-((3-carboxy-1-propyl)aminocarbonyl)-D-glucosamine (1.05 g, 81.0%). The resulting compound (1.05 g, 1.65 mmol, 1 eq) was dissolved in MeOH (10 mL), followed by the addition of Pd / C (10%, 0.8 g) and acetic acid (10 mL). The mixture was diluted with H 2 The mixture was stirred under atmosphere at 30° C. for 16 h. The mixture was filtered. The filtrate was concentrated under reduced pressure. The residue was dissolved in water and dried under vacuum at −40° C. to give the title compound (510 mg, 81.7%). 1 H NMR (500 MHz, D 2 O) δ 8.09 (d, J = 10.1 Hz, 0.03H), 8.01 (d, J = 8.9 Hz, 0.26H), 5.14 (d, J = 3.5 Hz, 0.59H), 4.68 (d, J = 8.5 Hz, 0.43H), 4.44 - 4.09 (m, 1.87H), 4.05 - 3.78 (m, 1.43H), 3.77 - 3.60 (m, 1.35H), 3.60 - 3.37 (m, 1.40H), 3.14 (t, J = 6.7 Hz, 2H), 2.38 (t, J = 7.3 Hz, 2H), 2.23 (q, J = 7.1 Hz, 2H), 1.76 (p, J = 6.8 Hz, 2H), 1.58 (h, J = 7.5 Hz, 2H), 0.87 (t, J = 7.3 Hz, 3H). 13C NMR (125 MHz, D 2 O) δ 178.22, 177.77, 177.52, 158.29, 158.24, 95.07, 90.93, 73.76, 73.60, 70.43, 70.14, 70.04, 69.78, 69.66, 63.52, m / z (ESI - ): 376.9.

[0248] (Example 55) General method for pharmacokinetic studies of the compounds of the invention. The test compound is dissolved in water at a concentration determined by the desired dose and dosing volume for the particular animal to which the compound is to be administered. A calculated volume of dosing solution is administered to the animal (PO, SQ, IP or IV). Blood samples are collected at specific time points (e.g., 0 minutes (min), 5 min, 10 min, 15 min, 30 min, 1 hour (h), 1.5 h, 2 h, 3 h, 4, 6 h, etc.) after administration of the test compound. The blood samples are converted to plasma samples using standard techniques. The plasma samples are analyzed to determine the concentration of the test compound, in some cases GlcNBu.

[0249] (Example 56) Pharmacokinetic study of the compound in Sprague-Dawley (SD) rats. According to the general procedure above, SD rats were randomly grouped into 6 groups (n=6). Test compounds, GlcNBu or compounds provided herein were administered to animals at a dose of 0.93 mmol / kg by oral gavage. For illustrative purposes, GlcNBu was given at an oral dose of 232 mg / kg (0.93 mmol / kg) and compound 16 was administered at an equimolar dose (0.93 mmol / kg, i.e., 362 mg / kg). At pre-determined time points, blood was collected by retro-orbital plexus sampling and samples were analyzed using LC / MS-MS to determine the GlcNBu concentration in plasma.

[0250] The results of an exemplary pharmacokinetic study are presented in Figures 1 and 2. Plasma GlcNBu concentration-time curves following oral administration of GlcNBu and compound 16 are shown in Figure 1.

[0251] [ka]

[0252] and

[0253] [ka]

[0254] The curves labeled with represent plasma GlcNBu concentrations after oral administration of GlcNBu (232 mg / kg or 0.93 mmol / kg) and compound 16 (232 mg / kg or 0.93 mmol / kg), respectively. The results indicate that at molar equivalent oral doses, compound 16 significantly improves plasma drug exposure, increasing the Cmax of plasma GlcNBu concentrations by approximately 10-fold. Figures 2A and 2B show examples of other compounds of the invention presented in plasma GLcNBu concentration versus time curves, and summaries of pharmacokinetic parameters for these compounds are shown in Tables 4 and 5.

[0255] [Table 4]

[0256] [Table 5]

[0257] (Example 57) Evaluation of novel compounds in a monosodium iodoacetate-induced osteoarthritis (MIA) model in the rat knee. Osteoarthritis was induced by intra-articular (ia) injection of MIA solution in rat knee joints as follows. Briefly, rats were anesthetized with isoflurane and given a single ia dose of 2 mg MIA dissolved in saline through the infrapatellar ligament of the right knee. MIA was administered in a volume of 50 μL. A control group of rats injected with 10% ethanol in water was used to establish baseline measurements. Rats were randomized into 6 or 7 groups according to initial body weight. After MIA injection, the MIA group began treatment with vehicle or test compound at a pre-established dosing regime for 28 days. Clinical observations including body weight, joint swelling, and weight bearing were recorded on the day of induction preparation (day 0), 3, 5, 7, 14, 21, and / or 28 days. At the end of the study, animals were treated with CO 2 All rats were euthanized and sacrificed by IV. Joint specimens, including the tibia and femur, were cut in the coronal plane and stained with both H&E and Safranin-O. Knee joints were examined and scored for cartilage degeneration, presence of osteophytes, amount and extent of calcified cartilage and subchondral bone damage, and amount of synovial inflammation using the Osteoarthritis Research Society International (OARSI) scoring system published in 2010 (Kraus, VB, et al., Osteoarthritis Cartilage, 2010, Suppl 3:35-52).

[0258] (Example 58) Study of compound 16 in MIA models. The study of compound 16 in the MIA model was carried out as described above. MIA animals were randomized into 4 groups (n=6) and treated with vehicle (group 1 (G1)), or compound 16 at 234 mg / kg (group 2 (G2)) or 468 mg / kg (group 3 (G3)). Weight bearing results are shown in Table 6 below. On day 5, all compound-treated groups showed a significant increase in weight bearing in the right hind paw. A trend for increased weight bearing was evident throughout the treatment period from day 5 onwards in both treated groups, with a significant increase at day 14 in the high dose (G3). Overall histological scores from vehicle and treated groups are shown in Figures 4A-H.

[0259] [Table 6]

[0260] The results indicate that osteophytes in the high-dose group are significantly reduced compared to the vehicle group.The high-dose treatment group showed a clear tendency to reduce all other mean values ​​for each histological parameter evaluated in the study, including main tissue properties, surface regularity, structural integrity, chondrocyte population, degenerative changes in cartilage, inflammatory response in subchondral bone area, and angiogenesis.The low morphological and numerical changes of chondrocytes and close to the normal properties of tissue indicate that compound 16 slows down the degeneration of articular cartilage in this MIA-induced OA rat model.

[0261] (Example 59) Study of Compound 16 in a medial meniscus transection (MMT) model in rats. In the rat MMT model, one knee (right knee) was cleaned and prepared for surgery. An incision was made on the lateral side of the femoro-tibial joint. The medial collateral ligament was exposed by blunt dissection and transected to show the meniscus against the femur. A full thickness cut was made across the meniscus at its narrowest point. The joint space was returned to normal, the skin was closed, and the animals were allowed to recover. In this study, on day 2, animals after MMT induction, G1 and G2 animals were treated with vehicle and test compound 16, respectively. Animals were dosed 4 times daily and administered by gavage for 4 weeks.

[0262] After MMT, right front paw weight bearing decreased sharply by day 3 in both groups (Table 7, see FIG. 5). The rebound in right front paw weight bearing after day 3 was greater in G2 than in G1, and furthermore, this was significantly increased on days 3 and 14-28 in G2 compared to G1.

[0263] [Table 7]

[0264] Data from histology parameters (see Table 8, Figures 6A-6I) showed that G2 had lower values ​​than those of G1 in all parameters. Specifically, the degenerative changes of chondrocyte population in G2 (compound 16) were significantly lower compared to G1.

[0265] [Table 8]

[0266] This experiment demonstrated that G2 (compound 16) exhibited significantly more weight bearing in the injured hind limb starting on day 3 and from day 14 to day 28, as well as significantly less degeneration of chondrocyte mass. The above observations demonstrate the efficacy and support the use of the test compound qid to treat the MMT-induced model of osteoarthritis.

[0267] From one perspective, embodiments of the present invention can be summarized as follows and organized into numbered sections.

[0268] Section 1. Compound of formula (A)

[0269] [ka]

[0270] (In the formula, X is O, N or S; R is a substituted or unsubstituted C selected from linear or branched alkyl, alkenyl, alkynyl, aryl, heteroaryl, arylalkyl, alkylaryl, cycloalkyl, and alkyl including cyclic or heterocyclic moieties. 2 ~C 18 is a substituent, or R is a substituted or unsubstituted C selected from linear or branched alkyl, alkenyl, alkynyl, aryl, heteroaryl, arylalkyl, alkylaryl, cycloalkyl, and alkyl including cyclic or heterocyclic moieties. 2 ~C 12 is a substituent, R 2 is hydrogen, acyl or alkyl; R 1 , R 3 , R 4 and R 5 are independently hydrogen, a substituted or unsubstituted alkyl, aryl, arylalkyl, alkylaryl, cyclic or heterocyclic moiety, or an acyl group derived from a carboxylic acid, amino acid, or peptide, optionally bearing a protecting group, a phosphonyl group, or a sulfonyl group, with the proviso that R 1 , R 3 , R 4 and R 5 are not all hydrogen at the same time, or R 1 , R 3 , R 4 and R 5are independently selected from alkoxycarbonyl, aryloxycarbonyl, and arylalkoxycarbonyl; or R 3 and R 4 together with the atoms to which they are attached form a substituted or unsubstituted heterocyclic ring, or R 4 and R 5 together with the atoms to which they are attached form a substituted or unsubstituted heterocyclic ring, and n is an integer from 1 to 6, or a pharma- ceutically acceptable salt or ester thereof.

[0271] Section 2.R 1 , R 3 , R 4 and R 5 One or more of 1 C(=O)-, Q 1 is selected from unsubstituted or substituted alkyl, alkenyl, alkynyl, aryl, heteroaryl, substituted or unsubstituted carbocyclic, heterocyclic, alkoxy, aryloxy, arylalkyloxy, and alkylaryloxy; Q 1 The amino or hydroxyl group, if present, in the compound of clause 1 is optionally substituted.

[0272] Section 3. The compound is represented by formula (I)

[0273] [ka]

[0274] (In the formula, R, R 1 From R 5 and n is as defined in clause 1), or a pharma- ceutically acceptable salt or ester thereof.

[0275] Section 4. The compound is represented by formula (II)

[0276] [ka]

[0277] (In the formula, R 1 From R 5 and n is as defined in clause 1), or a pharma- ceutically acceptable salt or ester thereof.

[0278] Section 5. The compound is represented by formula (III)

[0279] [ka]

[0280] (In the formula, R 1 , R 3 From R 5 and n is as defined in clause 1), or a pharma- ceutically acceptable salt or ester thereof.

[0281] Section 6. The compound is represented by formula (IV)

[0282] [ka]

[0283] (In the formula, R 1 , R 3 , R 4 and R 5 are independently hydrogen, a substituted or unsubstituted alkyl, aryl, arylalkyl, alkylaryl, cyclic or heterocyclic moiety, or an acyl group derived from a carboxylic acid, amino acid, or peptide, optionally bearing a protecting group, a phosphonyl group, or a sulfonyl group, with the proviso that R 1 , R 3 , R 4 and R 5 are not all hydrogen at the same time, or R 1 , R 3 , R 4 and R 5are independently selected from alkoxycarbonyl, aryloxycarbonyl, and arylalkoxycarbonyl; or R 3 and R 4 together with the atoms to which they are attached form a substituted or unsubstituted heterocyclic ring, or R 4 and R 5 (c) together with the atom to which they are attached form a substituted or unsubstituted heterocyclic ring; or a pharma- ceutically acceptable salt or ester thereof.

[0284] Section 7.R 3 , R 4 and R 5 are independently H, C 1 ~C 12 alkyl, acyl, or amino acid, with the proviso that R 1 , R 3 , R 4 and R 5 Compounds in section 6, provided that they are not all H at the same time.

[0285] Section 8.R 1 is H and R 3 , R 4 and R 5 are independently H, C 1 ~C 6 alkyl, acyl, or a natural amino acid residue, with the proviso that R 3 , R 4 and R 5 Compounds in section 6, provided that they are not all H at the same time.

[0286] Section 9.R 1 and R 3 is H and R 4 and R 5 are independently H, C 1 ~C 6 acyl, or an unsubstituted or substituted naturally occurring aminoacyl group.

[0287] Clause 10. The compound of any one of clauses 1 to 9, wherein the compound is an alpha-anomer, a beta-anomer, or a mixture of alpha- and beta-anomers.

[0288] Clause 11. Any one of clauses 1 to 10, wherein the compound is not a derivative of N-acetylglucosamine.

[0289] Section 12. A compound according to any one of Sections 1 to 11, which is a compound set forth in any one of Tables 1, 2 and 3, or which is any one of Compound Nos. 1 to 172, or a pharma- ceutically acceptable salt or ester thereof.

[0290] Clause 13. A compound according to any one of clauses 1 to 12, wherein one or more of the C, H, O and / or N atoms in the compound are isotopically enriched.

[0291] Section 14. The C atoms in a compound are independently 12 C. 13 C or 14 The compound of section 13, which is C.

[0292] Section 15. H atoms are independently 1 H, D( 2 H) or T( 3 H).

[0293] Section 16. O-atoms are independently 16 O. 17 O or 18 A compound according to any one of clauses 13 to 15, wherein O is

[0294] Section 17. N atoms are independently 14 N or 15 A compound according to any one of clauses 13 to 16, wherein N.

[0295] Clause 18. A pharmaceutical composition comprising a compound of any of clauses 1 to 17 and a pharma- ceutically acceptable carrier.

[0296] Clause 19. The pharmaceutical composition of clause 18, wherein the composition is suitable for oral or topical administration.

[0297] Clause 20. The pharmaceutical composition of clause 18 or 19, wherein the composition is in the form of a hard shell gelatin capsule, a soft shell gelatin capsule, a cachet, a pill, a tablet, a lozenge, a powder, a granule, a pellet, a troche, or a dragee.

[0298] Clause 21. The pharmaceutical composition of clause 18 or 19, wherein the composition is in the form of a solution, an aqueous liquid suspension, a non-aqueous liquid suspension, an oil-in-water liquid emulsion, a water-in-oil liquid emulsion, an elixir, a syrup, an ointment, or a medicated patch.

[0299] Clause 22. The pharmaceutical composition of any one of clauses 18 to 21, wherein the composition is enteric coated.

[0300] Clause 23. The pharmaceutical composition of any one of clauses 18 to 22, wherein the composition is formulated for controlled release.

[0301] Clause 24. A method for preventing or treating a bone or joint disorder, comprising administering to a subject in need thereof an effective amount of a compound of any one of clauses 1 to 17, or a pharmaceutical composition of any one of clauses 18 to 23, such that the bone or joint disorder is prevented or treated in the subject.

[0302] Clause 25. The method of clause 24, wherein the bone or joint disorder is osteoporosis.

[0303] Clause 26. The method of clause 24, wherein the bone or joint disorder is osteopenia.

[0304] 27. The method of 24, wherein the bone or joint disorder is arthritis.

[0305] Clause 28. The method of clause 27, wherein the arthritis is osteoarthritis, inflammatory arthritis, traumatic arthritis, osteoarthritis or dysplastic arthritis.

[0306] Clause 29. The method of clause 28, wherein the inflammatory arthritis is rheumatoid arthritis or psoriatic arthritis.

[0307] Clause 30. The method of any one of clauses 24 to 29, wherein the subject is a mammal, e.g., a human.

[0308] Clause 31. A method for improving the therapeutic efficacy of GlcNBu in a subject in need thereof, comprising administering to the subject an effective amount of a compound of any one of clauses 1 to 17 or a pharmaceutical composition of any one of clauses 18 to 23, such that the therapeutic efficacy of GlcNBu is improved compared to administration of GlcNBu alone.

[0309] Clause 32. The method of clause 31, wherein the step of improving the therapeutic efficacy of GlcNBu includes one or more of the following: improving the bioavailability of GlcNBu, improving the AUC of GlcNBu in blood or plasma, improving the C of GlcNBu, max Improvement of GlcNBu T max Improvement of GlcNBu t 1 / 2 improved therapeutic biodistribution of GlcNBu, improved therapeutic levels of GlcNBu in selected tissues, improved bioabsorbability of GlcNBu, reduced metabolism of GlcNBu, and reduced side effects of GlcNBu.

[0310] Clause 33. The method of clause 31 or clause 32, wherein the subject is suffering from a bone or joint disorder.

[0311] Clause 34. The method of clause 33, wherein the bone or joint disorder is osteoporosis, osteopenia or arthritis.

[0312] Clause 35. The method of any one of clauses 31 to 34, wherein the subject is a mammal, e.g., a human.

[0313] 36. A kit comprising a compound of any one of clauses 1 to 17 or a pharmaceutical composition of any one of clauses 18 to 23 and instructions for use thereof.

[0314] Clause 37. A method for treating osteoporosis in a subject, comprising administering to the subject an effective amount of a compound of any one of clauses 1 to 17 or a pharmaceutical composition of any one of clauses 18 to 23, such that osteoporosis is treated in the subject.

[0315] 38. The method of claim 37, wherein compound No. 16 is administered to the subject.

[0316] Clause 39. A method for treating osteoarthritis in a subject, comprising administering to the subject an effective amount of a compound of any one of clauses 1 to 17 or a pharmaceutical composition of any one of clauses 18 to 23, such that osteoporosis is treated in the subject.

[0317] 40. The method of claim 39, wherein compound No. 16 is administered to the subject.

[0318] Section 41. A method for treating a bone or joint disorder, comprising administering to a subject in need thereof an effective amount of a compound according to any one of claims 1 to 10, or a pharmaceutical composition according to any one of claims 11 to 15, in combination with one or more second therapeutic agents, such that a bone or joint disorder is prevented or treated in the subject.

[0319] Clause 42. The method of clause 41, wherein the one or more second therapeutic agents are a bisphosphonate, denosumab, calcitonin, a selective estrogen receptor modulator (SERM), such as raloxifene, teriparatide, duloxetine, and / or a nonsteroidal anti-inflammatory drug (NSAID).

[0320] Although the present invention has been described in detail with respect to certain embodiments thereof, these embodiments are presented to illustrate, but not to limit, the invention, other embodiments may be made which employ the principles of the invention, which are within the spirit and scope defined by the claims appended hereto.

[0321] The contents of all documents and literature cited herein are hereby incorporated by reference in their entirety.

Claims

1. Compound of formula (IV) 【Chemistry 1】 (In the formula, R 1 is hydrogen, R 3 and R 4 is independently a substituted or unsubstituted C 1 acyl group or hydrogen, 1 The substituent of the acyl group is C 1 ~C 5 aliphatic group, C 3 ~C 8 Cycloalkyl groups, C 3 ~C 8 Heterocyclic groups, and C 6 aromatic groups, which may be further substituted with at least one substituent selected from amino, halogen, hydroxyl, nitro, lower alkyl, lower alkenyl, lower alkynyl, and lower alkoxy; R 5 is a substituted or unsubstituted C 1 acyl group or hydrogen, 1 The substituent of the acyl group is C 1 ~C 4 Aliphatic groups and C 3 ~C 8 cycloalkyl groups, which may be further substituted with at least one substituent selected from amino, halogen, hydroxyl, nitro, lower alkyl, lower alkenyl, lower alkynyl, and lower alkoxy; However, R 3 , R 4 and R 5 but not all hydrogen or acyl groups at the same time; R 5 is an acyl group which is a carbonyl group attached through a carbon atom to an alkyl group, said alkyl group is methyl, ethyl, propyl, butyl, hexyl, isopropyl, tert-butyl, sec-butyl, isobutyl, cyclopropyl, cyclopentyl, or cyclohexyl) or a pharma- ceutically acceptable salt thereof.

2. 2. The compound of claim 1 which is an alpha-anomer, a beta-anomer, or a mixture of alpha- and beta-anomers. 【Request 3】 【Chemistry 2】 or a pharma- ceutically acceptable salt thereof.

4. The C atoms in the compound are independently 12 C. 13 C, and 14 C, and the H atoms in the compound are independently selected from 1 H, 2 H, and 3 H, and the O-atoms in the compound are independently selected from 16 O. 17 O, and 18 O, and the N atoms in the compound are independently selected from 14 N and 15 4. The compound according to claim 1 , wherein the compound is selected from the group consisting of N.

5. 10. A pharmaceutical composition comprising a compound according to any one of claims 1 to 4 and a pharma- ceutically acceptable carrier.

6. 6. The pharmaceutical composition of claim 5, which is suitable for oral or topical administration.

7. 7. The pharmaceutical composition according to claim 5 or 6, in the form of a hard shell gelatin capsule, a soft shell gelatin capsule, cachets, pills, tablets, lozenges, powders, granules, pellets, troches, or dragees.

8. 7. The pharmaceutical composition of claim 5 or 6, in the form of a solution, an aqueous liquid suspension, a non-aqueous liquid suspension, an oil-in-water liquid emulsion, a water-in-oil liquid emulsion, an elixir, a syrup, an ointment, or a medicated patch.

9. 9. The pharmaceutical composition of any one of claims 5 to 8, which is enteric coated or formulated for controlled release.

10. 10. A pharmaceutical composition according to any one of claims 5 to 9 for the prevention or treatment of bone or joint disorders.

11. 11. The pharmaceutical composition of claim 10, wherein the bone or joint disorder is osteoporosis, osteopenia, and / or arthritis.

12. 12. The pharmaceutical composition according to claim 11, wherein the arthritis is osteoarthritis, inflammatory arthritis, traumatic arthritis, osteoarthritis or dysplastic arthritis.

13. The pharmaceutical composition according to claim 12, wherein the inflammatory arthritis is rheumatoid arthritis or psoriatic arthritis.

14. 14. The pharmaceutical composition according to any one of claims 10 to 13, wherein the subject is a mammal, optionally a human.

15. A kit comprising a compound according to any one of claims 1 to 4, or a pharmaceutical composition according to any one of claims 5 to 9, and instructions for use thereof.

Citation Information

Patent Citations

  • Glucosamine derivatives for preventing or treating joint disorders

    JP2021508732A

  • Anti-inflammatory steroid 2'-acetamido-2'-deoxy-glucoside compounds

    US3427300A

  • Antibacterial antibiotics am31' , am31' 'and am31'

    US3987029A

  • Glucosamine and glucosamine / Anti-inflammatory mutual prodrugs, compositions, and methods

    WO2005116086A2

  • Classes of compounds that interact with integrins

    WO2006081616A1