Pharmaceutical compositions comprising budesonide for treating IgA nephropathy - Patent Application 20070223333
Patent Information
- Application Number
- JP2024543526
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-11-16
- Filing Date
- 2023-01-24
- Publication Date
- 2026-02-24
AI Technical Summary
を示している。例えば、活性及び/又は増殖性B細胞によって産生されるバイオマーカーの血清レベルの低下は、B細胞の活性/増殖が低下していることを示し得、B細胞の過剰活性、過剰量、及び/又は過剰増殖が病原性に関連するIgANなどの疾患の治療における有益な効果の指標となる可能性がある。
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Abstract
Description
[Technical field]
[0001] The present invention relates to methods for treating IgA nephropathy and to methods for determining whether a pharmaceutical composition is capable of safely and effectively treating IgA nephropathy. The present invention also relates to compositions for use in the treatment of IgA nephropathy and methods for producing those compositions. [Background technology]
[0002] The listing or discussion of an apparently prior-published document in this specification should not necessarily be taken as an acknowledgement that the document is part of the state of the art or common general knowledge.
[0003] IgA nephropathy (IgAN), sometimes referred to as Berger disease, is a severe, progressive autoimmune disease of the kidney that puts up to 50% of patients at risk of developing end-stage renal disease (ESRD) within 10-20 years.
[0004] IgAN is a rare disease, with an estimated 130,000-150,000 people in the United States and 200,000 in Europe. A significantly higher prevalence has been observed in Asia, including Greater China, where IgAN has historically been the leading cause of ESRD. IgAN is estimated to affect approximately 2 million people in Greater China.
[0005] Although IgAN manifests in the kidneys, most scientific studies have found that the pathogenesis of IgAN begins in the ileum, the last part of the small intestine before the large intestine. Clusters of lymphoid tissue known as Peyer's patches are found primarily in the ileum, where they produce secretory IgA antibodies. IgA antibodies play a vital role in the immune system by protecting the body from foreign substances such as food-borne agents, bacteria, and viruses.
[0006] Patients with IgAN have elevated levels of a subclass of IgA antibodies produced in the intestine that lacks galactose units in its hinge region. The hinge region is a flexible stretch of amino acids in the central portion of the heavy chain of IgA antibodies. It is presumed that in IgAN patients, a combination of genetic predisposition and environmental, bacterial or dietary factors leads to increased production of these galactose-deficient IgA antibodies, potentially coupled with increased intestinal permeability, leading to their appearance in the blood. Galactose-deficient IgA antibodies (also referred to herein as O-galactosylated under-IgA1) are immunogenic when found in the circulation, eliciting autoantibodies, or antibodies made by the body in response to components of its own tissues. This in turn leads to the formation of pathogenic immune complexes, i.e. clusters of antibodies, that are deposited in the membranes of the glomeruli, the filtering apparatus of the kidney. These trapped immune complexes initiate an inflammatory cascade that damages the membrane, causing proteins and blood to leak into the urine. Eventually the glomeruli are destroyed and the kidneys' ability to remove waste products from the blood is reduced. As the disease progresses, waste products normally removed from the blood build up, resulting in potentially life-threatening complications that lead to the need for dialysis or a kidney transplant in many patients.
[0007] The standard of care for ESRD is dialysis or kidney transplantation, which not only severely impacts the patient's quality of life but also represents a significant medical economic burden.
[0008] Despite the need for new therapies, few new drugs have been developed for chronic kidney disease in the past decade, and until recently, no approved therapies for the direct treatment of IgAN itself. Patients with IgAN are typically initially administered antihypertensive drugs. This treatment regimen initially attempts to manage the symptoms of IgAN by lowering blood pressure and reducing proteinuria, but has not been proven to address the underlying cause of IgAN. Over time, physicians attempt to inhibit disease progression with a variety of off-label therapies, such as statins, omega-3 acids, and diuretics, but a significant proportion of patients experience continued deterioration of kidney function, and until recently, no approved treatment options were available.
[0009] For IgAN patients with advanced disease, clinicians may treat patients with systemic immunosuppressants, consisting mainly of high doses of systemic corticosteroids such as prednisone, prednisolone, and methylprednisolone. Although several published reports have shown that these drugs may reduce proteinuria, this high dose of systemic corticosteroids is also associated with a wide range of adverse events, including hypertension, weight gain, diabetes, serious infections, and osteoporosis. Additionally, the potential impact on the underlying disease in terms of renal function, as measured by estimated glomerular filtration rate (eGFR), remains to be proven.
[0010] Thus, there is a clear need for new and / or improved treatments for IgAN that provide effective localized treatment with immunosuppressants without such undesirable side effects in an attempt to meet the current clinical need for an effective treatment of IgAN.
[0011] Peyer's patches (collecting lymphoid follicles) are small clusters of lymphoid tissue found throughout the ileal region of the small intestine. They are an important part of the immune system as they monitor the gut bacterial population and prevent the growth of pathogenic bacteria in the intestine.
[0012] Because Peyer's patches are responsible for the synthesis of most of the IgA in the body, targeted administration of locally acting immunosuppressants to the ileum (and especially the terminal / distal ileum), where Peyer's patches are primarily found, may help to reduce the formation of IgA molecules that ultimately drive immune complex formation in IgAN by reducing the formation of secretory galactosyl IgA antibodies and their appearance in the blood. Such targeted release is also likely to limit systemic exposure of locally acting immunosuppressants, such as certain corticosteroids, to avoid undesirable side effects.
[0013] Peyer's patches are potent sites of B cell activation in humans, so it stands to reason that monitoring survival factors associated with B cell activation would provide an indication of the efficacy of treatment with locally acting immunosuppressants.
[0014] Tumor necrosis factor (TNF) family members, B cell-activating factor (BAFF) and its homolog proliferation-inducing ligand (APRIL), are important survival factors for peripheral B cells and are expressed by cells including monocytes, dendritic cells, neutrophils, basophils, stromal cells, activated T cells, intestinal mucosal cells, activated and malignant B cells, and epithelial cells (Mackay and Schneider, 2009. Nat. Rev. Immunol., 9:491-502; Schneider et al., 1999. J. Exp. Med., 189:1747-1756; Yu et al, 2000. Nat. Immunol., 1:252-256).
[0015] BAFF is a ligand for the receptor, transmembrane activator and CAML interactor (TACI) (also known as tumor necrosis factor receptor superfamily member 13B (TNFRSF13B)), B cell maturation antigen (BCMA) (also known as tumor necrosis factor receptor superfamily member 17 (TNFRSF17)), and B cell activating factor receptor (BAFF-R) (also known as tumor necrosis factor receptor superfamily member 13C (TNFRSF13C)). BAFF-R is specific for BAFF, but TACI and BCMA also bind APRIL (Mackay and Schneider, 2009. Nat. Rev. Immunol., 9:491-502).
[0016] BAFF is a potent B cell activator and is essential for regulating B cell homeostasis and B cell selection. Excess BAFF has been shown to be associated with the development of autoimmune disorders such as IgAN in animal models, and high levels of BAFF have been detected in the serum of patients with various autoimmune conditions. Elevated levels of BAFF are associated with upregulation of humoral immunity through increased levels of B cells and immunoglobulins (Steri et al, 2017. N. Engl. J. Med., 376:1615-1626).
[0017] Increased serum levels of BAFF and APRIL have been found in patients suffering from IgAN, which has led to the development of drugs that attempt to inhibit these molecules. The focus of these drugs is to disrupt the interaction between BAFF and / or APRIL and their receptors. For example, but not limited to, the BAFF inhibitor Blisibimod (Anthera Pharmaceuticals, discontinued) is a fusion protein consisting of four BAFF binding domains fused to the N-terminus of the Fc region of a human antibody, which binds to BAFF and inhibits its interaction with the BAFF receptor. Similarly, the BAFF / APRIL combination antagonist, Atacicept (Merck Serono, licensed by Vera Therapeutics), is also a recombinant fusion protein that combines BAFF and APRIL binding domains with an antibody Fc region, blocking the interaction with TACI. The APRIL antagonist VIS649 (Visterra, a subsidiary of Otsuka Pharmaceuticals) and the BAFF inhibitor belimumab (GlaxoSmithKline) are monoclonal antibodies that directly bind to APRIL and BAFF, respectively, and block their interaction with their receptors. Thus, drugs targeting BAFF and APRIL aim to block the activity of endogenous BAFF / APRIL molecules in order to reduce B cell activation and proliferation and the associated immunological effects.
[0018] The current understanding of the pathogenesis of IgAN and current treatments are summarized in J. Barratt et al., Treatment of IgA Nephropathy: Evolution Over Half a Century, Seminars in Nephrology, 2018, 38(5), 531-540; see also Boyd et al., Kidney International, 2012, 81, 833-843. The current understanding of the pathogenesis of IgAN is also reviewed in Seikrit et al., The Immune Landscape of IgA Induction in the Gut, Seminars in Immunopathology, 2021, 43, 627-637.
[0019] Surprisingly, we have found that oral administration of a budesonide formulation having a unique in vitro release profile results in a significant decrease in serum levels of BAFF in these subjects compared to levels observed prior to administration of budesonide. Furthermore, the observed decrease in serum BAFF levels can occur concomitantly with a decrease in levels of biomarkers associated with B cell activation and proliferation. Thus, the in vitro release profile indicates successful targeted release within the subject's intestine (i.e., successful targeted release to the distal ileum).
[0020] In addition, of particular interest, treatment of IgAN with systemic glucocorticoids has been shown to reduce both total serum IgA and O-galactosylated under-IgA1 (Kosztyu P et al.,:Glucocorticoids Reduce Aberrant O-Glycosylation of IgA1 in IgA Nephropathy Patients.Kidney Blood Press Res 2018;43:350-359). However, in this treatment with oral administration of a budesonide formulation as defined herein, no difference was observed in the total levels of functional IgA antibodies, including IgA1 and IgG, with budesonide capsule treatment, but serum levels of galactosyl IgA (O-galactosylated under-IgA) were reduced. This finding led to the conclusion that the effect of local ileal treatment with budesonide capsules was selective for pathogenic antibodies, but not effective against the general pool of IgA, IgA1, and IgG.
[0021] These results support a direct effect of treatment with the budesonide formulations defined herein on the underlying pathogenic pathways in IgAN, and demonstrate that the budesonide payload has a primarily local rather than systemic effect, resulting in reduced side effects for patients treated with nefecombudesonide.
[0022] In support of this, in silico modeling of budesonide formulations with unique in vitro release profiles indicates that the payload is primarily released to the ileum, especially the distal ileum. Because budesonide has a high first-pass rate, primarily through gut wall metabolism in the small intestine (Seidegard J et.al., Presystemic elimination of budesonide in man when administered locally at different levels in the gut,with and without local inhibition by ketoconazole.Eur J PharmSci.2008 Nov15;35(4):264-70, Raje et al.Evaluation of separate role of intestine and liver in first pass metabolism of budesonide in rat Xenobiotica.2018 Dec;48(12):1206-1214), these results further indicate that budesonide formulations have a local rather than a systemic effect.
[0023] Taken together, the results described herein demonstrate that budesonide formulations exhibiting the unique in vitro release profile defined herein are effective treatments for IgAN, with lower levels of undesirable side effects due to their targeted local release and the effect of topical corticosteroids.
[0024] Formulations of the corticosteroid budesonide have been previously described in International Patent Application No. WO 2009 / 138716A1. Summary of the Invention
[0025] According to a first aspect of the present invention, there is provided a method for treating IgA nephropathy, the method comprising: (i) to identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition satisfying a standard in vitro USP <711> In the test using a dissolution apparatus according to Ph.Eur.2.9.3 dissolution test apparatus 2 (paddle apparatus) (described below), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) the composition meets the requirement that no more than about 10% of the budesonide is released into a pharma- ceutical relevant dissolution medium within about 30 minutes; (c) identifying that the composition satisfies the requirement that at least about 70% of the budesonide is released into a pharma- ceutical relevant dissolution medium within about 120 minutes; and then (ii) administering the composition to a patient with IgA nephropathy in need of the treatment; This method is hereinafter referred to as the "method of the present invention."
[0026] The term "pharmaceutical relevant dissolution media" includes media that are suitable for use in in vitro dissolution assays that provide results indicative of in vivo release in the relevant parts of the intestinal tract. For example, a pharmaceutical relevant dissolution medium may alternatively be referred to as an "enteric pharmaceutical relevant dissolution medium" or an "enteric pharmaceutical relevant dissolution medium" and may be any such medium that simulates dissolution and release in the small intestine or relevant parts thereof.
[0027] Pharmaceutically relevant dissolution media are preferably aqueous.
[0028] Pharmaceutically relevant dissolution media may have a pH of about 6.2 to about 7.5, for example, about 6.5 to about 6.8.
[0029] Pharmaceutically relevant dissolution media can be phosphate buffered media at a pH of about 6.2, Level 1 fasted state simulated intestinal fluid (FaSSIF) at a pH of about 6.5 (e.g. FaSSIF buffer defined below under the heading "Release in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5"), phosphate buffered media at a pH of about 6.8 (e.g. phosphate buffered media defined below under the heading "Release in medium at pH 6.8"), or phosphate buffered media at a pH of about 7.2 or about 7.5.
[0030] The method of the present invention comprises (I) combining budesonide with one or more pharma- ceutical acceptable excipients that provide a modified release of the budesonide following administration to the gastrointestinal tract to produce a pharma- ceutical composition for treating IgA nephropathy, and then (II) administering the budesonide in accordance with the standard in vitro USP <711> / Testing the composition in a Ph.Eur.2.9.3 dissolution test, and if the composition meets requirements (a)-(c) above, administering the composition to a patient with IgA nephropathy in need of the treatment.
[0031] As an alternative embodiment of the present invention, there is provided a composition comprising a combination of budesonide and one or more pharma- ceutically acceptable excipients that provide modified release of said budesonide following administration to the gastrointestinal tract, said composition meeting the dissolution profile of step (i) outlined above for use in the treatment of IgA nephropathy.
[0032] As a further alternative embodiment of the present invention, there is provided the use of a composition comprising a combination of budesonide and one or more pharma- ceutically acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition meeting the dissolution profile of step (i) outlined above for the manufacture of a medicament for the treatment of IgA nephropathy.
[0033] As referred to herein, the term "treatment" of IgA nephropathy includes curative, symptomatic and / or palliative treatment as well as the prevention or diagnosis of associated conditions.
[0034] For the avoidance of doubt, USP <711> References to USP and Ph.Eur. 2.9.3 refer to the tests published on May 1, 2016, and references to Ph.Eur. 2.9.3 refer to Chapter 2.9.3 of the European Pharmacopoeia 10.0. It is understood that jurisdictions outside of the United States and Europe may have equivalent pharmacopoeias that reflect the same or similar tests as outlined in the USP and Ph.Eur., such as the Chinese Pharmacopoeia.
[0035] For the avoidance of doubt, step (ii) of administering a composition to a patient is performed only if the average (mean) of the compositions tested satisfies each and all of criteria (a), (b), and (c) of step (i).
[0036] As used herein, the term "budesonide" refers to a compound according to Formula I: [ka]
[0037] Budesonide is also commonly referred to by its IUPAC name: 16α,17-[(1RS)-butylidenebis(oxy)]-11β,21-dihydroxypregna-1,4-diene-3,20-dione.
[0038] Although the compositions of the present invention include budesonide, it is understood that the compositions may alternatively include a different corticosteroid that can have a localized effect in a similar manner to budesonide. Such suitable alternative corticosteroids include, but are not limited to, aclometasone, beclomethasone, betamethasone, clobetasol, hydrocortisone, dexamethasone, flunisolide, methylprednisolone, mometasone, prednisolone, triamcinolone, fluticasone, ciclesonide, fludrocortisone, and mixtures thereof including budesonide.
[0039] The paddle device of device 2 can be operated at about 50 revolutions per minute (rpm), about 75 rpm, or about 100 rpm. Preferably, the paddle device of device 2 can be operated at about 100 rpm, or about 50 rpm.
[0040] The pharma- ceutically relevant dissolution media of criteria b) and c) may comprise a surfactant in an amount of about 0.5 mg / mL (0.05% w / v). The surfactant may be a polysorbate, preferably the surfactant is polysorbate 80 (e.g. Tween 80).
[0041] In criterion a) of step (i) of the method, the amount of budesonide released may be about 5% or less, such as about 2.5% or less, within about 120 minutes.
[0042] In criterion a) of step (i) of the method, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, for example from about 0% to about 2.5%, within about 120 minutes.
[0043] In criterion b) of step (i) of the method, the amount of budesonide released may be about 5% or less, such as about 2.5% or less, within about 30 minutes.
[0044] In criterion b) of step (i) of the method, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, for example from about 0% to about 2.5%, within about 30 minutes.
[0045] In criterion c) of step (i) of the method, the amount of budesonide released may be at least about 75%, such as about 80%, for example about 84% or about 85%, within about 120 minutes.
[0046] In criterion c) of step (i) of the method, the amount of budesonide released may be from about 70% to about 100%, such as from about 75% to about 100%, such as from about 84% to about 100%, for example, from about 85% to 100%, within about 120 minutes.
[0047] In criterion b) of step (i) of the method, the composition may further satisfy the requirement that about 10% or less of the budesonide is released into the pharma- ceutically relevant dissolution medium within about 37.5 minutes, e.g., about 5% or less, e.g., about 2.5% or less of the budesonide is released into the pharma-ceutically relevant dissolution medium within about 37.5 minutes. For example, the amount of budesonide released into the pharma-ceutically relevant dissolution medium may be about 0% to about 10%, e.g., about 0% to about 5%, e.g., about 0% to about 2.5%, within about 37.5 minutes. Optionally, the release within about 37.5 minutes is achieved when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 50 rpm.
[0048] In criterion b) of step (i) of the method, the composition may further satisfy the requirement that at least about 20% of the budesonide is released into the pharma- ceutically relevant dissolution medium within about 75 minutes, e.g., at least about 21%, e.g., at least about 22% or 23%, of the budesonide is released into the pharma-ceutically relevant dissolution medium within about 75 minutes. For example, the amount of budesonide released into the pharma-ceutically relevant dissolution medium may be about 23% to about 74% within about 75 minutes. Optionally, the release within about 75 minutes is achieved when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 50 rpm.
[0049] In criterion c) of the method, the composition may further satisfy the requirement that at least about 75% of the budesonide is released into the pharma- ceutically relevant dissolution medium within about 150 minutes, e.g., at least about 76%, e.g., at least about 77%, of the budesonide is released into the pharma-ceutically relevant dissolution medium within about 150 minutes. For example, the amount of budesonide released into the pharma-ceutically relevant dissolution medium may be from about 77% to about 100% within about 150 minutes. Optionally, the release within about 150 minutes is achieved when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 50 rpm.
[0050] In criterion b) of the method, the composition may further satisfy the requirement that no more than about 10% of the budesonide is released into the pharma- ceutically relevant dissolution medium within about 45 minutes, e.g., no more than about 5%, e.g., no more than about 2.5%, of the budesonide is released into the pharma-ceutically relevant dissolution medium within about 45 minutes. For example, the amount of budesonide released into the pharma-ceutically relevant dissolution medium may be about 0% to about 10%, e.g., about 0% to about 5%, e.g., about 0% to about 2.5%, within about 45 minutes. Optionally, the release within about 45 minutes is achieved when no surfactant is present in the pharma-ceutically relevant dissolution medium and the paddle rotation speed of the paddle device 2 is 50, 75, or 100 rpm.
[0051] In criterion b) of the method, the composition may further satisfy the requirement that no more than about 10% of the budesonide is released into the pharma- ceutically relevant dissolution medium within about 60 minutes, e.g., no more than about 5%, e.g., no more than about 2.5%, of the budesonide is released into the pharma-ceutically relevant dissolution medium within about 60 minutes. For example, the amount of budesonide released into the pharma-ceutically relevant dissolution medium may be about 0% to about 10%, e.g., about 0% to about 5%, e.g., about 0% to about 2.5%, within about 60 minutes. Optionally, the release within about 60 minutes is achieved when no surfactant is present in the pharma-ceutically relevant dissolution medium and the paddle rotation speed of the paddle device 2 is 50, 75, or 100 rpm.
[0052] In method criterion b), the composition may further satisfy the requirement that 50-90% of the budesonide is released into a pharma- ceutical relevant dissolution medium within about 90 minutes. Optionally, the release within about 90 minutes is achieved when the pharma-ceutical relevant dissolution medium is free of surfactants and the paddle rotation speed of the paddle apparatus 2 is 50, 75 or 100 rpm.
[0053] In criterion c) of the method, the composition may further satisfy the requirement that at least about 80% of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 180 minutes, e.g., at least about 85%, e.g., about 80% to about 100%, or about 85% to about 100%, of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 180 minutes. Optionally, the release within about 180 minutes is achieved when no surfactant is present in the pharma- ceutical relevant dissolution medium and the paddle rotation speed of the paddle apparatus 2 is 50, 75, or 100 rpm.
[0054] In criterion c) of the method, the composition may further satisfy the requirement that at least about 85% of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 240 minutes, e.g., at least about 90%, e.g., about 90% to about 100%, of the budesonide is released into the pharma-ceutical relevant dissolution medium within about 240 minutes. Optionally, the release within about 240 minutes is achieved when no surfactant is present in the pharma-ceutical relevant dissolution medium and the paddle rotation speed of the paddle apparatus 2 is 50, 75 or 100 rpm.
[0055] In criterion c) of the method, the composition may further satisfy the requirement that at least about 90% of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 360 minutes, e.g., at least about 95%, e.g., about 95% to about 100%, of the budesonide is released into the pharma-ceutical relevant dissolution medium within about 360 minutes. Optionally, the release within about 360 minutes is achieved when no surfactant is present in the pharma-ceutical relevant dissolution medium and the paddle rotation speed of the paddle apparatus 2 is 50, 75 or 100 rpm.
[0056] In criterion c) of the method, the composition may further satisfy the requirement that at least about 90% of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 480 minutes, e.g., at least about 95%, e.g., about 95% to about 100%, of the budesonide is released into the pharma-ceutical relevant dissolution medium within about 480 minutes. Optionally, the release within about 480 minutes is achieved when no surfactant is present in the pharma-ceutical relevant dissolution medium and the paddle rotation speed of the paddle apparatus 2 is 50, 75 or 100 rpm.
[0057] In criterion c) of the method, the composition may further satisfy the requirement that at least about 90% of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 600 minutes, e.g., at least about 95%, e.g., about 95% to about 100%, of the budesonide is released into the pharma-ceutical relevant dissolution medium within about 600 minutes. Optionally, the release within about 600 minutes is achieved when no surfactant is present in the pharma-ceutical relevant dissolution medium and the paddle rotation speed of the paddle apparatus 2 is 50, 75 or 100 rpm.
[0058] In one embodiment, in criterion a) of step (i) of the method, dissolution in an acid-resistant medium is in accordance with USP <711> The substance may be evaluated in accordance with the acceptance criteria in Table 2.9.3.-2 and / or Table 2.9.3.-3 of Ph.Eur.2.9.3 and / or Acceptance Table 3 of Ph.Eur.2.9.3.
[0059] In one embodiment, in criterion b) of step (i) of the method, the dissolution in a pharma- ceutical relevant dissolution medium meets the USP <711> The substance may be evaluated in accordance with the acceptance criteria in Table 2.9.3.-2 and / or Table 2.9.3.-3 of Ph.Eur.2.9.3 and / or Acceptance Table 3 of Ph.Eur.2.9.3.
[0060] In one embodiment, in criterion c) of step (i) of the method, the dissolution in a pharma- ceutical relevant dissolution medium satisfies USP <711> The substance may be evaluated in accordance with the acceptance criteria in Table 2.9.3.-2 and / or Table 2.9.3.-4 of Ph.Eur.2.9.3 and / or Acceptance Table 4 of Ph.Eur.2.9.3.
[0061] For the avoidance of doubt, the amount of budesonide released in criteria b) at 30 minutes and criteria c) at 120 minutes is achieved in the presence and absence of an added surfactant, such as, for example, polysorbate 80 (e.g., Tween 80) added to a pharma- ceutical relevant dissolution medium at a concentration of about 0.5 mg / mL. In addition, the amount of budesonide released at 37.5 minutes, 60 minutes, 75 minutes, 90 minutes, and 150 minutes is achieved in the presence and absence of an added surfactant, such as, for example, polysorbate 80 (e.g., Tween 80) added to a pharma-ceutical relevant dissolution medium at a concentration of about 0.5 mg / mL.
[0062] In one embodiment, the method comprises: (i) To identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition being capable of performing a standard in vitro USP <711> In said test using a dissolution apparatus according to Ph.Eur.2.9.3 dissolution test apparatus 2 (paddle apparatus described below), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) the composition meets the requirement that no more than about 10% of the budesonide is released in a pharma- ceutical relevant dissolution medium within about 30 minutes when the pharma-ceutical relevant dissolution medium does not contain a surfactant; (c) the composition meets the requirement that no more than about 10% of the budesonide is released into a pharma- ceutical relevant dissolution medium within about 37.5 minutes when the pharma-ceutical relevant dissolution medium does not contain a surfactant; (d) the composition meets the requirement that about 23% to about 74% of the budesonide is released in a pharma- ceutical relevant dissolution medium within about 75 minutes when the pharma-ceutical relevant dissolution medium does not contain a surfactant; (e) When the pharma- ceutical relevant dissolution medium does not contain a surfactant, the composition satisfies the requirement that at least about 77% of the budesonide is released into the pharma-ceutical relevant dissolution medium within about 150 minutes, and optionally (f) specifying that, when the pharma- ceutical relevant dissolution medium does not contain a surfactant, the composition satisfies the requirement that at least about 70% of the budesonide is released in the pharma-ceutical relevant dissolution medium within about 120 minutes.
[0063] In another embodiment, the method comprises: (i) To identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition being capable of performing a standard in vitro USP <711> In said test using a dissolution apparatus according to Ph.Eur.2.9.3 dissolution test apparatus 2 (paddle apparatus described below), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) the composition meets the requirement that no more than about 10% of the budesonide is released in a pharma- ceutical relevant dissolution medium within about 30 minutes when the pharma-ceutical relevant dissolution medium does not contain a surfactant; (c) the composition meets the requirement that no more than about 10% of the budesonide is released in a pharma- ceutical relevant dissolution medium within about 60 minutes when the pharma-ceutical relevant dissolution medium does not contain a surfactant; (d) when the pharma- ceutical relevant dissolution medium does not contain a surfactant, the composition satisfies the requirement that about 50% to about 90% of the budesonide is released in the pharma-ceutical relevant dissolution medium within about 90 minutes; (e) specifying that the composition satisfies the requirement that at least about 70%, e.g., at least about 75%, of the budesonide is released into the pharma- ceutical relevant dissolution medium within about 120 minutes when the pharma-ceutical relevant dissolution medium does not contain a surfactant.
[0064] It is known from pharmacokinetic studies of drug absorption in the fasted state that when 200-250 mL of water is ingested with a dosage form, a maximum total volume of about 300-500 mL becomes available to the proximal small intestine (see Klein, AAPS J., 12, 397, (2010)). Thus, the dissolution test used in the method of the present invention should use a volume of dissolution medium of at least about 500 mL (e.g., about 900 mL). The initial volume of dissolution medium used in criteria a), b), and c) may be about 900 mL.
[0065] The procedures used to test the compositions are essentially those set forth in the U.S.P. <711> / Ph.Eur.2.9.3 delayed release solid dosage form method B may be followed.
[0066] The temperature of the dissolution medium in criteria a), b) and c) may be maintained at about 37°C ± 0.5°C.
[0067] The number of compositions tested may be six or may be greater than six, for example twelve or twenty-four.
[0068] At each time point of criteria (a), (b) and (c), the amount of volume withdrawn from the dissolution medium may be 10 mL or 15 mL, and optionally the withdrawn volume is not replaced. Withdrawal of dissolution medium does not affect the overall dissolution profile of the composition. That is, preferably, dissolution testing is performed under sink conditions, and the amount of solvent exceeds the amount of solute, meaning that withdrawal of a small amount for analytical purposes does not affect dissolution.
[0069] Release in pH 6.8 medium According to an alternative aspect of the present invention, there is provided a method of treating IgA nephropathy, the method comprising: (i) to identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition being capable of measuring the release of said budesonide according to a standard in vitro USP <711> In said test using a dissolution apparatus according to Ph.Eur.2.9.3 dissolution test apparatus 2 (paddle apparatus described below), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) when the dissolution medium is aqueous and has a pH of about 6.8, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 30 minutes; (c) identifying that the composition meets the requirement that, when the dissolution medium is aqueous and has a pH of about 6.8, at least about 70% of the budesonide is released into the dissolution medium within about 120 minutes; and then (ii) administering the composition to a patient with IgA nephropathy in need of said treatment, which method is hereinafter referred to as the "method of the present invention."
[0070] The method of the present invention comprises: (I) combining budesonide with one or more pharma- ceutical acceptable excipients that provide a modified release of the budesonide following administration to the gastrointestinal tract to produce a pharma- ceutical composition for treating IgA nephropathy; and then (II) administering the budesonide in accordance with the standard in vitro USP <711> / Testing the composition in a Ph.Eur.2.9.3 dissolution test, and if the composition meets requirements (a)-(c) above (i.e. with respect to release in a medium at pH 6.8), administering the composition to a patient with IgA nephropathy in need of the treatment.
[0071] As an alternative embodiment, there is provided a composition for use in the treatment of IgA nephropathy comprising a combination of budesonide and one or more pharma- ceutically acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition meeting the dissolution profile of step (i) outlined above (i.e. for release in the above pharma- ceutical relevant media at pH 6.8).
[0072] As a further alternative embodiment, there is provided the use of a composition comprising a combination of budesonide and one or more pharma- ceutically acceptable excipients providing modified release of said budesonide following administration to the gastrointestinal tract, for the manufacture of a medicament for the treatment of IgA nephropathy, said composition meeting the dissolution profile of step (i) outlined above (i.e. for release in a pharma- ceutical relevant medium at pH 6.8).
[0073] For the avoidance of doubt, step (ii) of administering a composition to a patient is performed only if the average (mean) of the compositions tested satisfies all of criteria (a), (b), and (c) of step (i).
[0074] The paddle device of device 2 can be operated at about 50 revolutions per minute (rpm), about 75 rpm, or about 100 rpm. Preferably, the paddle device of device 2 can be operated at about 100 rpm, or about 50 rpm.
[0075] The aqueous dissolution medium of criteria b) and c) may comprise a surfactant in an amount of about 0.5 mg / mL (0.05% w / v). The surfactant may be a polysorbate, preferably the surfactant is polysorbate 80 (e.g. Tween 80).
[0076] The aqueous dissolution medium of criteria b) and c) may be a phosphate buffer medium, for example a sodium phosphate buffer solution at a concentration of about 50 mM.
[0077] A phosphate buffer at a pH of about 6.8 may be prepared by first preparing a 0.2 M sodium phosphate tribasic solution, then adding one part of the 0.2 M sodium phosphate tribasic solution to three parts of a 0.1 N hydrochloric acid solution. After mixing the two solutions together, the pH may be checked and adjusted to a pH of about 6.8 by adding either hydrochloric acid or sodium hydroxide as necessary.
[0078] In criterion a) of step (i) of the method, the amount of budesonide released may be about 5% or less, such as about 2.5% or less, within about 120 minutes.
[0079] In criterion a) of step (i) of the method, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, for example from about 0% to about 2.5%, within about 120 minutes.
[0080] In criterion b) of step (i) of the method, the amount of budesonide released may be about 5% or less, such as about 2.5% or less, within about 30 minutes.
[0081] In criterion b) of step (i) of the method, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, for example from about 0% to about 2.5%, within about 30 minutes.
[0082] In criterion c) of step (i) of the method, the amount of budesonide released may be at least about 75%, such as about 80%, for example about 84% or about 85%, within about 120 minutes.
[0083] In criterion c) of step (i) of the method, the amount of budesonide released may be from about 70% to about 100%, such as from about 75% to about 100%, for example, from about 84% to about 100%, for example, from about 85% to 100%, within about 120 minutes.
[0084] In criterion b) of step (i) of the method, the composition may further satisfy the requirement that when the dissolution medium is aqueous and has a pH of about 6.8, about 10% or less of the budesonide is released into the dissolution medium within about 37.5 minutes, e.g., when the dissolution medium is aqueous and has a pH of about 6.8, about 5% or less, e.g., about 2.5% or less of the budesonide is released into the dissolution medium within about 37.5 minutes. For example, when the dissolution medium is aqueous and has a pH of about 6.8, the amount of budesonide released may be about 0% to about 10%, e.g., about 0% to about 5%, e.g., about 0% to about 2.5%, within about 37.5 minutes. Optionally, the release within about 37.5 minutes is when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 50 rpm.
[0085] In criterion b) of step (i) of the method, the composition may further satisfy the requirement that, when the dissolution medium is aqueous and has a pH of about 6.8, at least about 20% of the budesonide is released into the dissolution medium within about 75 minutes, e.g., when the dissolution medium is aqueous and has a pH of about 6.8, at least about 21%, e.g., at least about 22% or 23%, of the budesonide is released into the dissolution medium within about 75 minutes. For example, when the dissolution medium is aqueous and has a pH of about 6.8, the amount of budesonide released within about 75 minutes may be about 23% to about 74%. Optionally, the release within about 75 minutes is achieved when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 50 rpm.
[0086] In criterion c) of the method, the composition may further satisfy the requirement that when the dissolution medium is aqueous and has a pH of about 6.8, at least about 75% of the budesonide is released into the dissolution medium within about 150 minutes, e.g., when the dissolution medium is aqueous and has a pH of about 6.8, at least about 76%, e.g., at least about 77% of the budesonide released within about 150 minutes is released into the dissolution medium. For example, when the dissolution medium is aqueous and has a pH of about 6.8, the amount of budesonide released within about 150 minutes may be about 77% to about 100%. Optionally, the release within about 150 minutes is achieved when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 50 rpm.
[0087] In criterion b) of the method, the composition may further satisfy the requirement that when the dissolution medium is aqueous and has a pH of about 6.8, about 10% or less of the budesonide is released into the dissolution medium within about 60 minutes, e.g., when the dissolution medium is aqueous and has a pH of about 6.8, about 5% or less, e.g., about 2.5% or less of the budesonide is released into the dissolution medium within about 60 minutes. For example, when the dissolution medium is aqueous and has a pH of about 6.8, the amount of budesonide released may be about 0% to about 10%, e.g., about 0% to about 5%, e.g., about 0% to about 2.5%, within about 60 minutes. Optionally, the release within about 60 minutes is when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 100 rpm.
[0088] In criterion b) of the method, the composition may further satisfy the requirement that 50-90% of the budesonide is released within about 90 minutes when the dissolution medium is aqueous and has a pH of about 6.8. Optionally, the release within about 90 minutes occurs when no surfactant is present in the dissolution medium and the paddle rotation speed of the paddle device 2 is 100 rpm.
[0089] In one embodiment, in criterion a) of step (i) of the method, dissolution in an acid-resistant medium is in accordance with USP <711> The substance may be evaluated in accordance with the acceptance criteria in Table 2.9.3.-2 and / or Table 2.9.3.-3 of Ph.Eur.2.9.3 and / or Acceptance Table 3 of Ph.Eur.2.9.3.
[0090] In one embodiment, in criterion b) of step (i) of the method, dissolution in the buffer stage medium is in accordance with USP <711> The substance may be evaluated in accordance with the acceptance criteria in Table 2.9.3.-2 and / or Table 2.9.3.-3 of Ph.Eur.2.9.3 and / or Acceptance Table 3 of Ph.Eur.2.9.3.
[0091] In one embodiment, in criterion c) of step (i) of the method, dissolution in the buffer stage medium is in accordance with USP <711> The substance may be evaluated in accordance with the acceptance criteria in Table 2.9.3.-2 and / or Table 2.9.3.-4 of Ph.Eur.2.9.3 and / or Acceptance Table 4 of Ph.Eur.2.9.3.
[0092] For the avoidance of doubt, the amount of budesonide released in criteria b) at 30 minutes and in criteria c) at 120 minutes is achieved in the presence and absence of an added surfactant, such as, for example, polysorbate 80 (e.g., Tween 80) added to the dissolution medium at a concentration of about 0.5 mg / mL. In addition, the amount of budesonide released at 37.5 minutes, 60 minutes, 75 minutes, 90 minutes, and 150 minutes is achieved in the presence and absence of an added surfactant, such as, for example, polysorbate 80 (e.g., Tween 80) added to the dissolution medium at a concentration of about 0.5 mg / mL.
[0093] In one embodiment, the method comprises: (i) To identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition being capable of performing a standard in vitro USP <711> In said test using a dissolution apparatus according to Ph.Eur.2.9.3 dissolution test apparatus 2 (paddle apparatus described below), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 30 minutes, when the dissolution medium is aqueous, surfactant-free, and has a pH of about 6.8; (c) the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 37.5 minutes, when the dissolution medium is aqueous, does not contain a surfactant, and has a pH of about 6.8; (d) the composition meets the requirement that about 23% to about 74% of the budesonide is released into the dissolution medium within about 75 minutes, when the dissolution medium is aqueous, does not contain a surfactant, and has a pH of about 6.8. (e) When the dissolution medium is aqueous, surfactant-free, and has a pH of about 6.8, the composition meets the requirement that at least about 77% of the budesonide is released into the dissolution medium within about 150 minutes. (f) The composition meets the requirement that at least about 70% of the budesonide is released into the dissolution medium within about 120 minutes, when the dissolution medium is aqueous, does not contain a surfactant, and has a pH of about 6.8.
[0094] In another embodiment, the method comprises: (i) To identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to the gastrointestinal tract, said composition being capable of performing a standard in vitro USP <711> In said test using a dissolution apparatus according to Ph.Eur.2.9.3 dissolution test apparatus 2 (paddle apparatus described below), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 30 minutes, when the dissolution medium is aqueous, surfactant-free, and has a pH of about 6.8; (c) the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 60 minutes, when the dissolution medium is aqueous, surfactant-free, and has a pH of about 6.8; (d) the composition meets the requirement that about 50% to about 90% of the budesonide is released into the dissolution medium within about 90 minutes, when the dissolution medium is aqueous, does not contain a surfactant, and has a pH of about 6.8. (e) The composition meets the requirement that at least about 70%, e.g., at least 75%, of the budesonide is released into the dissolution medium within about 120 minutes, when the dissolution medium is aqueous, does not contain a surfactant, and has a pH of about 6.8.
[0095] It is known from pharmacokinetic studies of drug absorption in the fasted state that when 200-250 mL of water is ingested with a dosage form, a maximum total volume of about 300-500 mL becomes available to the proximal small intestine (see Klein, AAPSJ., 12, 397, (2010)). Thus, the dissolution test used in the method of the present invention should use a volume of dissolution medium of at least about 500 mL (e.g., about 900 mL). The initial volume of dissolution medium used in criteria a), b), and c) may be about 900 mL.
[0096] The procedures used to test the compositions are essentially those set forth in the U.S.P. <711> / Ph.Eur.2.9.3 extended and / or delayed release solid dosage forms method B.
[0097] The temperature of the dissolution medium in criteria a), b) and c) may be maintained at about 37°C ± 0.5°C.
[0098] The number of compositions tested may be six or may be greater than six, for example twelve or twenty-four.
[0099] At each time point of criteria (a), (b) and (c), the amount of volume withdrawn from the dissolution medium may be 10 mL or 15 mL, and optionally the withdrawn volume is not replaced. Withdrawal of dissolution medium does not affect the overall dissolution profile of the composition. That is, preferably, dissolution testing is performed under sink conditions, and the amount of solvent exceeds the amount of solute, meaning that withdrawal of a small amount for analytical purposes does not affect dissolution.
[0100] Release in Level 1 Fasted State Simulated Intestinal Fluid at a pH of about 6.5 According to a further alternative aspect of the present invention there is provided a method of treating IgA nephropathy, the method comprising the steps of: (i) to identify a pharma- ceutical acceptable composition for treating IgA nephropathy comprising budesonide and one or more pharma- ceutical acceptable excipients that provide a modified release of said budesonide following administration to said gastrointestinal tract, said composition satisfying a standard in vitro USP <711> In the test using a dissolution apparatus according to Ph.Eur.2.9.3 Dissolution Test Apparatus 2 (paddle apparatus), the following requirements are met: (a) when the dissolution medium is aqueous and has a pH of about 1.2, the composition meets the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 120 minutes; (b) the composition meets the requirement that about 10% or less of the budesonide is released in a dissolution medium comprising Level 1 fasted state simulated intestinal fluid at a pH of about 6.5 within about 30 minutes; (c) identifying that the composition meets the requirement that at least about 70% of the budesonide is released in a dissolution medium comprising Level 1 fasted state simulated intestinal fluid at a pH of about 6.5 within about 120 minutes; and then (ii) administering the composition to a patient with IgA nephropathy in need of the treatment; This method is hereinafter referred to as the "method of the present invention."
[0101] The method of the present invention comprises (I) combining budesonide with one or more pharma- ceutical acceptable excipients that provide a modified release of the budesonide following administration to the gastrointestinal tract to produce a pharma- ceutical composition for treating IgA nephropathy, and then (II) administering the budesonide in accordance with the standard in vitro USP <711> / Ph.Eur.2.9.3 dissolution test, and if the composition meets requirements (a)-(c) above (i.e., with respect to release in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5), administering the composition to a patient with IgA nephropathy in need of the treatment.
[0102] As an alternative embodiment, there is provided a composition for use in the treatment of IgA nephropathy comprising a combination of budesonide and one or more pharma- ceutically acceptable excipients that provide modified release of said budesonide following administration to the gastrointestinal tract, said composition meeting the dissolution profile of step (i) outlined above (i.e. for release in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5).
[0103] As a further alternative embodiment, there is provided the use of a composition comprising a combination of budesonide and one or more pharma- ceutically acceptable excipients providing modified release of said budesonide following administration to the gastrointestinal tract, said composition meeting the dissolution profile of step (i) outlined above (i.e. for release in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5), for the manufacture of a medicament for the treatment of IgA nephropathy.
[0104] As referred to herein, the term "treatment" of IgA nephropathy includes curative, symptomatic and / or palliative treatment as well as the prevention or diagnosis of associated conditions.
[0105] The term "Level 1 Fasted State Simulated Intestinal Fluid" (Level 1 FaSSIF-V1) is understood by those skilled in the art to include biorelevant dissolution media with lower pH and buffering capacity than standard simulated intestinal fluid (media typically used in standard USP / Ph.Eur.tests; pH 6.8) and that have been specifically developed to simulate fasted conditions in the proximal small intestine (see, e.g., Markopoulous et al, In-vitro simulation of luminal conditions for evaluation of performance of oral drug products: Choosing the appropriate test media, European Journal of Pharmaceutics and Biopharmaceutics, 93, 2015, 173-182).
[0106] Level 1 FaSSIF-V1 includes a phosphate buffer system such as one containing NaH2PO4 (at a concentration of about 28.5 mM), NaOH (at a concentration of about 13.8 mM), HCl (qs) and deionized water (qs), which produces a medium with an osmolality of about 270 mOsmol / kg and a buffering capacity of about 12 mEq / pH / L.
[0107] In the present method of the present invention, a surfactant may be added to the FaSSIF medium. The surfactant may be a polysorbate, such as polysorbate 80 (e.g., Tween 80). To facilitate analysis, the surfactant may be present at a concentration of about 0.05% w / v (0.5 mg / mL).
[0108] therefore, The method of the invention as defined above, a composition that meets the elution profile of step (i) outlined above for use in treating IgA nephropathy; and the use of a composition meeting the dissolution profile of step (i) outlined above for the manufacture of a medicament for the treatment of IgA nephropathy. provided, in all cases, that the FaSSIF medium used in step (i) contains a surfactant such as a polysorbate, including polysorbate 80 (e.g., Tween 80), optionally present at a concentration of about 0.05% w / v (0.5 mg / mL), to facilitate analysis.
[0109] For the avoidance of doubt, step (ii) of administering a composition to a patient is performed only if the average (mean) of the compositions tested satisfies all of criteria (a), (b), and (c) of step (i).
[0110] In criterion a) of step (i) of the method, the amount of budesonide released may be about 5% or less, such as about 2.5% or less, within about 120 minutes.
[0111] In criterion a) of step (i) of the method, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, for example from about 0% to about 2.5%, within about 120 minutes.
[0112] In criterion b) of step (i) of the method, the amount of budesonide released may be about 5% or less, such as about 2.5% or less, within about 30 minutes.
[0113] In criterion b) of step (i) of the method, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, for example from about 0% to about 2.5%, within about 30 minutes.
[0114] In criterion c) of step (i) of the method, the amount of budesonide released may be at least about 75%, such as about 80%, for example about 84% or about 85%, within about 120 minutes.
[0115] In criterion c) of step (i) of the method, the amount of budesonide released may be from about 70% to about 99%, such as from about 70% to about 90%, within about 120 minutes.
[0116] For the avoidance of doubt, the amounts of budesonide released in criteria b) at 30 minutes and in criteria c) at 120 minutes are achieved in the presence and absence of polysorbate 80 (e.g., Tween 80) added, for example, to the FaSSIF medium at a concentration of about 0.05% w / v (about 0.5 mg / mL).
[0117] In criterion b) of step (i) of the method, the composition may further satisfy the requirement that no more than about 10% of the budesonide is released into the dissolution medium within about 60 minutes, such as no more than about 5%, such as no more than about 2.5%, of the budesonide is released within about 60 minutes. For example, the amount of budesonide released may be from about 0% to about 10%, such as from about 0% to about 5%, such as from about 0% to about 2.5%, within about 60 minutes. The amount of budesonide released within about 60 minutes is achieved in the presence and absence of polysorbate 80 (e.g., Tween 80), added, for example, to the FaSSIF medium at a concentration of about 0.05% w / v (about 0.5 mg / mL).
[0118] In criterion c) of step (i) of the method, in the presence of polysorbate 80 (e.g., Tween 80) added to the FaSSIF medium at a concentration of about 0.05% w / v (about 0.5 mg / mL), the composition may further satisfy the requirement that, within about 90 minutes, at least about 20%, such as 25%, or 30%, such as 35% of the budesonide is released into the dissolution medium, such as at least about 40% of the budesonide is released, such as about 30% to about 65% of the budesonide is released, such as about 35% to about 65% of the budesonide is released (including about 40% to about 60% of the budesonide is released into the dissolution medium, such as about 45% to about 55% of the budesonide is released).
[0119] In criterion c) of step (i) of the method, in the absence of polysorbate 80 (e.g., Tween 80) added to the FaSSIF medium at a concentration of about 0.05% (about 0.5 mg / mL) w / v, the composition may further satisfy the requirement that at least about 10% of the budesonide is released, e.g., at least about 15%, e.g., about 10% to about 50% of the budesonide is released, e.g., about 10% to about 40% of the budesonide is released (including about 10% to about 30% of the budesonide is released, e.g., about 15% to about 30% of the budesonide is released), into the dissolution medium within about 90 minutes.
[0120] In criterion c) of step (i) of the method, the composition may further satisfy the requirement that at least about 90% of the budesonide is released into the dissolution medium within about 180 minutes, such as at least about 95% of the budesonide is released within about 180 minutes. The amount of budesonide released within about 180 minutes is achieved at a concentration of about 0.05% w / v (about 0.5 mg / mL) in FaSSIF medium, in the presence and absence of added polysorbate 80 (e.g., Tween 80).
[0121] The paddle device of device 2 can be operated at about 50 rpm, about 75 rpm, or about 100 rpm. Preferably, the paddle device of device 2 is operated at about 100 rpm.
[0122] It is known from pharmacokinetic studies of drug absorption in the fasted state that when 200-250 mL of water is ingested with a dosage form, a maximum total volume of about 300-500 mL becomes available to the proximal small intestine (see Klein, AAPSJ., 12, 397, (2010)). Thus, the dissolution test used in the method of the present invention should use a volume of dissolution medium (including FaSSIF) that is at least about 500 mL (e.g., about 900 mL). Preferably, the initial volume of the dissolution medium used in criteria a), b) and c) is about 900 mL.
[0123] The procedures used to test the compositions are essentially those set forth in the U.S.P. <711> / Ph.Eur.2.9.3 delayed release solid dosage form method B may be followed.
[0124] The temperature of the dissolution medium in criteria a), b) and c) may be maintained at about 37°C ± 0.5°C.
[0125] The number of compositions tested may be at least three, such as six, or may be greater than six, such as twelve or twenty-four.
[0126] At each time point of criteria (a), (b) and (c), the amount of volume withdrawn from the dissolution medium may be 10 mL or 15 mL, and optionally the withdrawn volume is not replaced. Withdrawal of dissolution medium does not affect the overall dissolution profile of the composition. That is, preferably, dissolution testing is performed under sink conditions, and the amount of solvent exceeds the amount of solute, meaning that withdrawal of a small amount for analytical purposes does not affect dissolution.
[0127] In particular, but not exclusively, when the composition of the invention is a core-shell composition as defined below, the method of the invention as defined herein may further comprise the following additional steps: (1) providing budesonide in the absence of delayed release excipients with the same sustained release excipients as described herein; (2) Standard in vitro USP <711> and determining that in a test using a dissolution apparatus according to Ph.Eur.2.9.3 Dissolution Test Apparatus 2 (paddle apparatus), the composition meets the requirement that within about 15 minutes, about 20 to about 60%, for example about 25 to about 50%, of the budesonide is released in a dissolution medium comprising Level 1 fasted state simulated intestinal fluid at a pH of about 6.5.
[0128] In one embodiment, in the absence of a delayed-release coating (e.g., without an enteric coating), within about 30 minutes, about 70 to about 90% of the budesonide is released into the Level 1 FaSSIF-V1 dissolution medium as defined herein, and more preferably within about 45 minutes, about 75 to about 85% of the budesonide is released into the dissolution medium.
[0129] In the absence of a delayed-release (e.g., enteric) coating, about 80% to about 90% of the budesonide may be released into the Level 1 FaSSIF-V1 dissolution medium as defined herein within about 60 minutes, and more particularly, about 90% to about 95%, including about 97% and about 100%, of the budesonide may be released into the dissolution medium within about 90 minutes, e.g., within about 120 minutes, within about 180 minutes, etc.
[0130] Budesonide compositions in the absence of delayed release excipients having dissolution profiles as described above further confirm that the majority of budesonide is released in the ileum in vivo.
[0131] Impact on biomarkers The methods of the invention, in all embodiments outlined above, may result in a statistically significant reduction in the level of serum B-cell activating factor (BAFF) (also known as tumor necrosis factor ligand superfamily member 13B (TNFSF13B)) in a subject compared to the baseline level of serum BAFF in the subject prior to treatment.
[0132] "Statistically significant reduction" includes the meaning of a reduction that is statistically significant to a p-value of <0.05 after using a one-way analysis of variance (ANOVA) when comparing the change seen in the treated patient group with the change seen in patients receiving a placebo.
[0133] "Compared to baseline levels" means that the measured level of a molecule (e.g., BAFF) is lower than the level measured at the beginning of the study (i.e., before administration of the drug). The baseline level is the level immediately prior to the start of treatment and is used as a comparison standard for subsequently measured levels (e.g., immediately after the course of treatment or at the time point after the end of the course of treatment). Thus, such reduction is specific to the subject or group of subjects in question, and is not an absolute value.
[0134] The reduction in serum levels of BAFF in a subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% compared to the baseline serum level of BAFF in the subject prior to treatment. For example, the reduction in serum levels of BAFF in a subject can be at least about 5%. In particular, the reduction in serum BAFF levels in a subject may be at least about 10%, for example, the reduction in serum BAFF levels in a subject may be at least about 14%.
[0135] The reduction in serum levels of BAFF in a subject can be about 1% to about 70%. For example, the reduction in serum levels of BAFF in a subject can be about 5% to about 50%. In particular, the reduction in serum levels of BAFF in a subject can be about 5% to about 25%, for example, the reduction in serum levels of BAFF in a subject can be about 10% to about 25%. For example, the reduction in serum levels of BAFF in a subject can be about 14% to about 23%.
[0136] A statistically significant decrease in the level of serum BAFF observed after the method of the invention may be associated with a statistically significant decrease in the serum level of one or more biomarkers associated with B cell activation and / or proliferation, compared to the serum baseline level of the one or more biomarkers in the subject before treatment. A decrease in the serum level of one or more biomarkers associated with B cell activation and / or proliferation indicates a beneficial effect in the treatment of a disease in which B cell overactivity, overabundance, and / or overproliferation is associated with pathogenesis. For example, a decrease in the serum level of a biomarker produced by activated and / or proliferating B cells may indicate that B cell activity / proliferation is decreased, which may be indicative of a beneficial effect in the treatment of a disease in which B cell overactivity, overabundance, and / or overproliferation is associated with pathogenesis, such as IgAN.
[0137] The one or more biomarkers may be transmembrane activating factor and interactor of CAML (TACI) (also known as tumor necrosis factor receptor superfamily member 13B (TNFRSF13B)), B-cell maturation antigen (BCMA) (also known as tumor necrosis factor receptor superfamily member 17 (TNFRSF17)), BAFF-R (also known as tumor necrosis factor receptor superfamily member 13C (TNFRSF13C)), CD27, CD30, a C-X-C motif kinase, or a marker for inflammatory bowel disease. chemokine 12 (CXCL12), CXC motif chemokine 13 (CXCL13), chemokine (C-C motif) ligand 19 (CCL19), interleukin 2 (IL-2), interleukin 6 (IL-6), chemokine (C-C motif) ligand 3 (CCL3), chemokine (C-C motif) ligand 4 (CCL4), soluble CD23 (sCD23), secretory IgA, IgA-IgG immune complexes, under-O-galactosylated IgA1, or a combination thereof.
[0138] "Biomarker" (also known as "biological marker") includes the meaning of a measurable indicator of some biological state or condition. Often, a biomarker is a naturally occurring biological molecule, such as a protein, amino acid, antibody, nucleic acid (e.g., RNA or DNA), nucleotide, lipid, carbohydrate / sugar, primary metabolite, or secondary metabolite. Such biomarkers can be associated with specific pathological or physiological processes, diseases, pharmacological responses to drugs, and can be used to predict the incidence and prevalence of disease, or to predict the outcome of disease and therapeutic interventions, etc.
[0139] The reduction in serum level of the biomarker in the subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% compared to the baseline serum level of the biomarker in the subject prior to treatment. For example, the reduction in serum level of the biomarker can be from about 1% to about 90%, or from about 5 to about 70%, or from about 10 to about 50%.
[0140] The reduction in the serum level of TACI in the subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 35%, 40%, 45%, 50%, 60%, 65%, 70%, or 75% compared to the baseline serum level of TACI in the subject before treatment. For example, the reduction in the serum level of TACI in the subject can be at least about 5%. In particular, the reduction in the serum level of TACI in the subject can be at least about 11%.
[0141] The reduction in serum levels of TACI in a subject can be about 1% to about 70%. For example, the reduction in serum levels of TACI in a subject can be about 5% to about 50%. In particular, the reduction in serum levels of TACI in a subject can be about 5% to about 20%, for example, the reduction in serum levels of TACI in a subject can be about 10% to about 20%. For example, the reduction in serum levels of TACI in a subject can be about 11% to about 17%.
[0142] The reduction in serum levels of BCMA in a subject may be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, or 60% compared to the baseline serum level of BCMA in the subject prior to treatment. For example, the reduction in serum levels of BCMA in a subject may be at least about 1%. In particular, the reduction in serum levels of BCMA in a subject may be at least about 6%.
[0143] Furthermore, the reduction in serum levels of BCMA in a subject may be about 1% to about 60%. For example, the reduction in serum levels of BCMA in a subject may be about 1% to about 20%. In particular, the reduction in serum levels of BCMA in a subject may be about 1% to about 10%, for example, the reduction in serum levels of BCMA in a subject may be about 5% to about 10%. For example, the reduction in serum levels of BCMA in a subject may be about 6% to about 7%.
[0144] The reduction in the serum level of BAFF-R in the subject can be at least 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% compared to the baseline serum level of BAFF-R in the subject prior to treatment.
[0145] The reduction in the serum level of CD27 in the subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, or 65% compared to the baseline serum level of CD27 in the subject before treatment. For example, the reduction in the serum level of CD27 in the subject can be at least about 5%. In particular, the reduction in the serum level of CD27 in the subject can be at least about 10%, for example, the reduction in the serum level of CD27 in the subject can be at least about 15%.
[0146] The reduction in serum levels of CD27 in a subject can be about 1% to about 60%. For example, the reduction in serum levels of CD27 in a subject can be about 1% to about 25%. In particular, the reduction in serum levels of CD27 in a subject can be about 5% to about 25%, for example, the reduction in serum levels of CD27 in a subject can be about 10% to about 20%. For example, the reduction in serum levels of CD27 in a subject can be about 15% to about 19%.
[0147] The reduction in serum levels of CD30 in a subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, or 75% compared to the baseline serum level of CD30 in the subject before treatment. For example, the reduction in serum levels of CD30 in a subject can be at least about 1%. In particular, the reduction in serum levels of CD30 in a subject can be at least about 3%, for example, the reduction in serum levels of CD30 in a subject can be at least about 5%.
[0148] The reduction in serum levels of CD30 in a subject may be about 1% to about 75%. For example, the reduction in serum levels of CD30 in a subject may be about 1% to about 25%. In particular, the reduction in serum levels of CD30 in a subject may be about 1% to about 10%, for example, the reduction in serum levels of CD30 in a subject may be about 5% to about 10%. For example, the reduction in serum levels of CD30 in a subject may be about 5% to about 8%.
[0149] The reduction in the serum level of secretory IgA in the subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, or 75% compared to the baseline serum level of secretory IgA in the subject before treatment. For example, the reduction in the serum level of secretory IgA in the subject can be at least about 1%. In particular, the reduction in the serum level of secretory IgA in the subject can be at least about 2%, for example, the reduction in the serum level of secretory IgA in the subject can be at least about 3%.
[0150] The decrease in serum secretory IgA levels in a subject can be about 1% to about 75%. For example, the decrease in serum secretory IgA levels in a subject can be about 1% to about 25%. In particular, the decrease in serum secretory IgA levels in a subject can be about 1% to about 10%, for example, the decrease in serum secretory IgA levels in a subject can be about 1% to about 5%. For example, the decrease in serum secretory IgA levels in a subject can be about 1% to about 3%.
[0151] The reduction in serum levels of IgA-IgG immune complexes in the subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, or 75% compared to the baseline serum levels of IgA-IgG immune complexes in the subject before treatment. For example, the reduction in serum levels of IgA-IgG immune complexes in the subject can be at least about 1%. In particular, the reduction in serum levels of IgA-IgG immune complexes in the subject can be at least about 5%, and the reduction in serum levels of IgA-IgG immune complexes in the subject can be at least about 8%.
[0152] The reduction in serum levels of IgA-IgG immune complexes in a subject can be about 1% to about 75%. For example, the reduction in serum levels of IgA-IgG immune complexes in a subject can be about 1% to about 25%. In particular, the reduction in serum levels of IgA-IgG immune complexes in a subject can be about 1% to about 20%, for example, the reduction in serum levels of IgA-IgG immune complexes in a subject can be about 2% to about 20%. For example, the reduction in serum levels of IgA-IgG immune complexes in a subject can be about 2% to about 15%.
[0153] The reduction in serum levels of O-galactosylated under-IgA1 in the subject can be at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 30%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, or 75% compared to the baseline serum levels of O-galactosylated under-IgA1 in the subject prior to treatment. For example, the reduction in serum levels of O-galactosylated under-IgA1 in the subject can be at least about 1%. In particular, the reduction in serum levels of under-O-galactosylated IgA1 in a subject can be at least about 5%, and the reduction in serum levels of under-O-galactosylated IgA1 in a subject can be at least about 8%.
[0154] The reduction in serum levels of O-galactosylated under-IgA1 in a subject can be about 1% to about 75%. For example, the reduction in serum levels of O-galactosylated under-IgA1 in a subject can be about 1% to about 25%. In particular, the reduction in serum levels of O-galactosylated under-IgA1 in a subject can be about 1% to about 20%, for example, the reduction in serum levels of O-galactosylated under-IgA1 in a subject can be about 2% to about 20%. For example, the reduction in serum levels of O-galactosylated under-IgA1 in a subject can be about 2% to about 15%.
[0155] The above reduction in biomarkers is relevant to the methods of the present invention, which require that a budesonide-containing composition both exhibits a particular in vitro release profile and is intended to treat and / or is capable of treating IgAN.
[0156] Compositions exhibiting in vitro release profiles were also found to exhibit appropriate reductions in relevant biomarkers, indicating that: Budesonide is released into the area of the digestive tract where Peyer's patches are primarily located (e.g., the ileum); Such compositions are therefore capable of safely and effectively treating IgAN with appropriate doses of budesonide.
[0157] Budesonide-Containing Compositions The compositions that may be used in the methods of the present invention may include any combination of budesonide and one or more excipients that results in the desired in vitro release profile in all aspects described herein, which may be a combination of sustained and / or delayed release coatings and may be applied according to various formulation principles, as described below.
[0158] In any event, the composition preferably includes at least one delayed release coating, preferably located on the exterior of the composition, to ensure that the active ingredient is not released until it reaches the stomach and / or small intestine.
[0159] Such delayed release coatings may therefore include so-called "enteric coatings," which refer to materials that have gastro-resistant properties, i.e., the material prevents dissolution or disintegration in the gastric environment, thereby allowing the composition to pass through the stomach towards the ileum region of the small intestine.
[0160] Enteric coatings may include azopolymers, disulfide polymers, cellulose acetate, cellulose acetate succinate, cellulose acetate phthalate, cellulose acetate tetrahydrophthalate, polyvinyl acetate phthalate, hydroxyethyl ethylcellulose phthalate, methacrylic acid copolymers, polymethacrylic acid / acrylic acid copolymers, styrene maleic acid copolymers, hydroxypropyl methylcellulose phthalate, acrylic resins, cellulose acetate trimellitate, hydroxypropyl methylcellulose trimellitate, shellac, hydroxyethyl ethylcellulose phthalate, carboxymethylcellulose, and hydroxypropyl methylcellulose acetate succinate.
[0161] Specific enteric coating materials include cellulose acetate, cellulose acetate succinate, cellulose acetate phthalate, cellulose acetate tetrahydrophthalate, polyvinyl acetate phthalate, hydroxyethyl ethylcellulose phthalate, methacrylic acid copolymers, polymethacrylic acid / acrylic acid copolymers, styrene maleic acid copolymers, hydroxypropyl methylcellulose phthalate, acrylic resins, cellulose acetate trimellitate, hydroxypropyl methylcellulose trimellitate, shellac, hydroxyethyl ethylcellulose phthalate, carboxymethylcellulose and hydroxypropyl methylcellulose acetate succinate.
[0162] Preferred enteric coating materials include polyvinyl acetate phthalates, especially methacrylic acid copolymers.
[0163] One skilled in the art will appreciate that the enteric coating can include other commonly used materials such as talc (as a plasticizer), dibutyl sebacate (as a plasticizer), and blends of HMPC and PEG as sub-coating agents.
[0164] The compositions may comprise one or more cores comprising budesonide encapsulated by a combination of delayed release and sustained release excipients to substantially prevent release of the contents of the composition until the distal region of the small intestine (e.g., the ileum, such as the distal ileum) is reached. Such compositions are hereinafter referred to as "core-shell compositions of the invention," which encompass "beads" and "encapsulated cores."
[0165] The budesonide-containing core may be loaded into a capsule. If a capsule is used, the delayed release coating (e.g., an enteric coating) may be on the capsule and not directly on the core.
[0166] When the enteric coating is on a capsule, such as a size 1 capsule, the enteric coating may be present in an amount of about 34 to about 46 mg per capsule, e.g., about 34 to about 42 mg per capsule, e.g., about 36 to about 40 mg per capsule.
[0167] In such core-shell compositions of the invention, they can be individually coated (or further coated) with a sustained release polymer coating to ensure that the majority of the budesonide is substantially released in the distal region of the small intestine (e.g., the ileum, such as the distal ileum).
[0168] For the avoidance of doubt, a sustained release polymer coating is different from a delayed release coating.
[0169] Such an extended release coating can ensure that the majority of the budesonide is released broadly throughout the ileum, and in combination with a delayed release coating (e.g., an enteric coating) can further ensure that such release is substantially and / or primarily in the ileum region of the small intestine.
[0170] "Substantially released to the ileum region" includes at least about 51%, such as at least about 60%, such as at least about 70%, or at least 75%, such as at least about 80%, such as at least about 90%, of the initial content of active ingredient in the composition being released to that region.
[0171] Those skilled in the art will understand that any pharmaceutical composition should be taken according to prescription guidance, and if taken in a manner different from the prescription information, the desired effect may not be achieved.In the context of the present invention, the composition is preferably taken orally at least 1 hour before a meal, and more preferably, the composition is taken orally in the morning at least 1 hour before the first meal of the day.
[0172] The sustained release coating may comprise a pharma- ceutically acceptable polymer blend comprising a water insoluble polymer and a pore-forming polymer applied directly to the budesonide-containing core. The resulting core, or a composition comprising multiple cores, may then be encapsulated within a delayed release coating, this combination of excipients substantially preventing release of the contents of the composition until the ileal region of the small intestine is reached.
[0173] As used herein, the term "water-insoluble polymer" refers to a polymer that has a water-insoluble polymeric solution of about 0.1 mg / mL in an aqueous solvent such as water at about 25° C. -1 It refers to a polymer having a solubility of less than 1000 mg / kg. The presence of a water-insoluble polymer makes it possible to control the release rate of budesonide in the composition.
[0174] The water insoluble polymer may be an alkyl cellulose or a derivative thereof, for example, the water insoluble polymer may be ethyl cellulose (or a derivative thereof).
[0175] The term "alkylcellulose or derivatives thereof" refers to a compound derived from cellulose in which the protons on at least a portion of the cellulose hydroxy groups are replaced with alkyl groups.
[0176] As used herein, the term "pore-forming polymer" refers to a polymer that has a higher water solubility than a water-insoluble polymer and therefore can dissolve first leaving pores in the coating, thus allowing a certain amount of water to permeate towards the core.
[0177] Thus, the pore-forming polymer may be defined as being "water soluble." That is, the pore-forming polymer has a water solubility of at least about 10 mg / mL in an aqueous solvent, such as water, at 25° C. -1 It has a solubility of
[0178] The pore-forming polymer may have a nominal viscosity of about 1 to about 300 mPa*s, such as about 1 to about 50 mPa*s, such as about 1 to about 30 mPa*s, such as about 1 to about 20 mPa*s, such as about 2 to about 9 mPa*s, such as about 2 to about 7 mPa*s, preferably about 2 to about 6 mPa*s. The nominal viscosity of the pore-forming polymer can be measured by the standard Ph.Eur.2.2.9 capillary viscometer method at 20° C. as a 2 wt % solution of the polymer in water.
[0179] Further, the pore-forming polymer may have a gelling temperature of from about 35 to about 65°C, for example, from about 55 to about 65°C, for example, from about 58 to about 64°C.
[0180] The pore-forming polymer may comprise a polymer selected from the list consisting of polyethylene glycol (PEG), hydroxypropyl methylcellulose (HPMC), and hydroxypropyl cellulose (HPC). Preferably, the pore-forming polymer is hydroxypropyl methylcellulose.
[0181] The degree of substitution of HPMC with methoxy groups can be about 15 to about 35% by weight, for example, about 25 to about 35% by weight, or about 27 to about 31% by weight, for example, about 27 to about 30% by weight.Furthermore, the degree of substitution of HPMC with hydroxypropyl groups can be about 4 to about 32% by weight, for example, about 4 to about 20% by weight, or about 5 to about 15% by weight, for example, about 7 to about 12% by weight.
[0182] The term "degree of substitution of HPMC" refers to the average substitution level of hydroxy groups on the cellulose chain and is expressed herein as a percentage, i.e., the percentage of hydroxy groups that are substituted with the moiety in question.
[0183] The water-insoluble polymer may be present in an amount of about 45% to about 90% by weight of the total sustained release coating, and the pore-forming polymer may be present in an amount of about 35% to about 5% by weight of the total sustained release coating. For example, the water-insoluble polymer may be present in an amount of about 45% to about 65% by weight of the total sustained release coating, and the pore-forming polymer may be present in an amount of about 35% to about 15% by weight of the total sustained release coating. For example, the water-insoluble polymer may be present in an amount of about 47% to about 56% by weight of the total sustained release coating, and the pore-forming polymer may be present in an amount of about 32% to about 22% by weight of the total sustained release coating.
[0184] The pharma- ceutically acceptable polymer blend of the sustained release coating may comprise fatty acids in an amount of about 2% to about 8% by weight, for example, about 3% to about 7% by weight of the total sustained release coating.
[0185] The fatty acid is an unsaturated fatty acid, e.g., C4-C 28 Unsaturated fatty acids, e.g. C 13 ~C 22 The fatty acid may be an unsaturated fatty acid, etc. For example, the unsaturated fatty acid may be selected from the group consisting of myristoleic acid, palmitoleic acid, sapienic acid, oleic acid, elaidic acid, vaccenic acid, and erucic acid. Preferably, the unsaturated fatty acid is oleic acid.
[0186] The pharma- ceutically acceptable polymer blend of the sustained release coating may comprise medium chain triglycerides in an amount of about 3% to about 12% by weight of the total sustained release coating, e.g., about 5% to about 12% by weight, e.g., about 5 to about 8% by weight.
[0187] The term "medium chain triglyceride" refers to a triglyceride having an aliphatic tail of 6 to 12 carbons. For example, the medium chain triglyceride may be selected from the list consisting of caproic acid, caprylic acid, capric acid, and lauric acid.
[0188] The pharma- ceutically acceptable polymer blend of the sustained release coating may comprise an additional water-soluble polymer in an amount of about 1% to about 5% by weight, e.g., about 2% to about 3% by weight, of the total sustained release coating. For the avoidance of doubt, the additional water-soluble polymer is different from the pore-forming polymer. Preferably, the additional water-soluble polymer is a poly(ethylene glycol) having a molecular weight in the range of about 200 to about 1000 g / mol.
[0189] The polymer blends coating one or more cores can be coalescable. The term "coalescable" when referring to a sustained release polymer blend refers to the fact that the polymers of the sustained release blend can be blended to form a single polymer phase coating.
[0190] Thus, the sustained release polymer blend coating one or more of the cores may include one or more coalescing polymers. The one or more coalescing polymers may include water insoluble polymers.
[0191] The sustained release polymer blend may be present in an amount of from about 5 to about 18% by weight of the total beads / cores, such as from about 6 to about 16% by weight of the total beads / cores, such as from about 6 to about 13% by weight of the total beads / cores, such as from about 6 to about 12% by weight.
[0192] It has been found that in the polymer blend of the sustained release coating, the pore-forming polymer dissolves first in the aqueous solution before the water-insoluble polymer, leaving behind pores in the coating, thus allowing a certain amount of water to permeate towards the core in a controlled manner.
[0193] The core may have an average size ranging from about 0.5 to about 3 mm, such as from about 0.5 to about 2 mm, for example, from about 0.8 to about 1.5 mm.
[0194] The core-shell composition of the present invention can be prepared by a process comprising: (a) providing one or more cores comprising budesonide; (b) the one or more cores are individually coated with a sustained release pharma- ceutically acceptable polymer blend comprising a water-insoluble polymer in an amount of about 45% to about 90% by weight and a pore-forming polymer in an amount of about 35% to about 5% by weight; The composition is encapsulated within a delayed release coating that substantially prevents release of the contents of the composition until the composition reaches the ileal region of the small intestine.
[0195] The core-shell composition of the above process may include any of the features outlined above with respect to the method of the present invention.
[0196] The cores may be prepared by providing inert (e.g., sugar) beads and coating them with an aqueous budesonide suspension. The inert beads may have a size of about 1 to about 2 mm, such as about 1 to about 1.5 mm, for example about 1 to about 1.2 mm.
[0197] As referred to herein, the term "inert bead" includes a single pharma- ceutically inert bead that provides the starting material for the preparation of the core-shell compositions of the present invention.
[0198] The inert beads are preferably commercially available sugar spheres (often called non-pareils). Sugar spheres consist mainly of sucrose with small amounts of other materials such as starch added. Suppliers of sugar spheres include Paulaur Corporation (USA), Chr. Hansen (Denmark), NP Pharm (France), Emilio Castelli (Italy) and JRS Pharma (Germany).
[0199] Prior to adding the sustained release polymer blend, the core may be coated with a seal coating that includes a stabilizing polymer and a water-soluble polymer. The stabilizer may be an acid, preferably citric acid, and the soluble polymer is the same polymer used as the pore-forming polymer in the polymer blend. Alternative stabilizers for inclusion in the seal coating include poly(vinylpyrrolidone) (PVP), and the soluble polymer is the same polymer used as the pore-forming polymer in the polymer blend.
[0200] The sustained release polymer blend can be applied to the core as an aqueous polymer suspension and the suspension sprayed onto the core. The aqueous polymer blend can be sprayed onto the core at a temperature of about 30° C. to about 65° C., for example, about 30° C. to about 50° C.
[0201] Towards the higher end of this range, spraying at temperatures such as about 50 to about 65° C. may be able to avoid the need for a separate curing / coalescence step, as outlined below.
[0202] The core-shell composition of the present invention can be obtained by the process of coating the core in a fluidized bed apparatus as defined above. That is, the coating with the sustained release polymer blend can be carried out in a fluidized bed apparatus. Suitable fluidized bed apparatus are readily available from suppliers such as Glatt GmbH.
[0203] After coating with the polymer blend, the polymers may be coalesced, which may be accomplished by curing.
[0204] Curing can be carried out at a temperature of about 55° C. to about 75° C., for example, about 60° C. to about 70° C., for example, about 63° C. to about 66° C. Furthermore, curing can be carried out for about 1 hour to about 10 hours, for example, about 1 hour to about 5 hours, for example, about 2 hours to about 4 hours.
[0205] It has been found that a sustained release polymer coating blend allows for economical preparation of budesonide cores using fluidized bed equipment while arriving at a composition having a desired release profile.
[0206] Accordingly, in addition, the curing of the core-shell compositions of the present invention may be carried out in a fluidized bed apparatus.
[0207] According to a further aspect of the present invention there is provided a composition which produces a desired in vitro release profile in all aspects described herein, the composition comprising a plurality of beads, the plurality of beads comprising: (a) a budesonide-containing core, wherein the budesonide of the core is present as a coating on one of a plurality of inert core substrates (e.g., sugar beads), as described herein; (b) a sustained release coating present on said budesonide-containing cores in an amount of about 6 to about 12% by weight of the total bead weight, said coating comprising a combined blend of at least two polymers: (i) and (ii) (i) any one of the water-insoluble polymers described herein (e.g., ethyl cellulose), and (ii) any one of the pore-forming polymers described herein (e.g., hydroxypropyl methylcellulose having a degree of substitution of about 27 to about 30% by weight with methoxy groups and / or a degree of substitution of about 7 to about 12% by weight with hydroxypropyl groups); a sustained release coating, the blend of polymers (i) and (ii) being in any one of the proportions set forth above (e.g., the water-insoluble polymer (i) in an amount of about 47% to about 56% by weight and the pore-forming polymer (ii) in an amount of about 32% to about 22% by weight, respectively, of the total sustained release coating); The beads are then loaded into a capsule which is coated with a delayed release coating (e.g., any one of the enteric coatings described herein, such as polyvinyl acetate phthalate, or methacrylic acid copolymers, among others).
[0208] The composition may include one or more of the other preferred features disclosed for the core-shell compositions and / or beads described herein, such as, for example: any one of the fatty acids described herein, for example in an amount of about 3% to about 7% by weight of the total sustained release coating; any one of the medium chain triglycerides described herein, for example in an amount of about 5-8% by weight of the total sustained release coating; One or more additional water-soluble polymers, such as poly(ethylene glycol) having a molecular weight in the range of about 200 to about 1000 g / mol, in an amount of 2% to about 3% by weight of the total sustained release coating.
[0209] The composition may also include a seal coating solution of a suitable acid (eg, citric acid) located between the budesonide-containing core and the sustained release coating.
[0210] Each capsule may contain approximately 4 mg of budesonide, and when administered to a patient, a total of approximately 16 mg can be delivered orally by a patient taking four capsules.
[0211] The coalesced blend of at least two polymers (i) and (ii) obtained prior to loading the coated beads into capsules is preferably obtained by coating the budesonide-containing cores by applying an aqueous dispersion comprising polymers (i) and (ii) as defined above in a fluidized bed apparatus at a temperature of about 30° C. to about 65° C., for example about 30° C. to about 50° C., in particular about 50 to about 65° C., and then, if necessary, further coalescing the thus coated polymeric sustained release coating in order to harden it, by applying it in a fluidized bed apparatus at a temperature of about 60° C. to about 70° C. (for example about 63° C. to about 66° C.) for a suitable time (for example about 2 to about 4 hours).
[0212] Alternatively, the polymer blend may be sprayed as an organic solution, in which case no additional curing step needs to be performed.
[0213] As mentioned above, the core(s) coated with the aforementioned sustained release polymer blend may be loaded into a capsule and the capsule may be coated with the delayed release coating.
[0214] However, regardless of how they are made, the compositions that may be used in the methods of the present invention may be useful in the treatment of IgAN because they meet the in vitro release characteristics defined above.
[0215] therefore, any one of the compositions defined herein for use in the treatment of IgAN, the use of any one of the compositions defined herein for the manufacture of a medicament for the treatment of IgAN, Further provided is a method for treating IgAN, the method comprising administering to a patient in need of such treatment any one of the compositions defined herein.
[0216] According to a further aspect of the present invention there is provided an inventive core-shell composition as hereinbefore described.
[0217] As an alternative to a core-shell composition, the composition may comprise a tablet comprising budesonide, which is encapsulated within one or more excipients that substantially prevent release of the contents of the composition until the tablet reaches the ileal region of the small intestine. Such compositions are hereinafter referred to as "encapsulated tablet compositions of the present invention."
[0218] One or more excipients encapsulating the tablet may be an enteric coating, as defined above, to substantially prevent release of the contents of the composition until the ileal region of the small intestine is reached.
[0219] The enteric coating in the tablet composition may be present in an amount of about 5% to about 15% by weight, such as about 7% to about 13% by weight, for example, about 8% to about 12% by weight of the whole tablet.
[0220] The tablet composition of the present invention may comprise a wet granulation of budesonide together with a filler, optionally comprising dicalcium phosphate, microcrystalline cellulose, mannitol, or a mixture thereof.
[0221] The filler may be present in an amount of about 50% to about 80% by weight, for example, about 60% to about 75% by weight, for example, about 65% to about 75% by weight, of the total tablet.
[0222] The tablet composition of the present invention may be a compressed tablet further comprising a lubricant, optionally the lubricant being magnesium stearate, aluminum stearate, calcium stearate, sodium stearate, zinc stearate, stearic acid, decanoic acid, dodecanoic acid, sodium stearyl fumarate, or mixtures thereof.
[0223] The lubricant may be present in an amount of about 0.1% to about 2% by weight of the whole tablet, for example, about 0.1% to about 1% by weight.
[0224] The tablet composition of the present invention may further comprise a disintegrant, optionally selected from crospovidone, croscarmellose sodium, or sodium starch glycolate. Alternatively, the tablet may be free of a disintegrant.
[0225] The disintegrant may be present in an amount of about 0.5% to about 5% by weight, for example, about 0.5% to about 4% by weight, for example, about 0.8% to about 3.5% by weight of the whole tablet.
[0226] The tablet composition of the present invention may further comprise a binder, optionally selected from hydroxyethyl cellulose, hydroxypropyl cellulose, copovidone, or mixtures thereof.
[0227] The binder may be present in an amount of about 5% to about 10% by weight, for example, about 6% to about 9% by weight, for example, about 7% to about 9% by weight of the whole tablet.
[0228] Such tablet compositions of the present invention may be gelling matrix tablets further comprising a gelling matrix material such as low molecular weight HPMC (eg, hypromellose).
[0229] The gelling matrix material may be present in an amount of about 10 to about 25% by weight, such as about 10 to about 20% by weight, for example, about 15 to about 20% by weight of the whole tablet.
[0230] The gelling matrix material can be diluted with water soluble fillers, which can include lactose, dextrose, mannitol, and combinations thereof.
[0231] The tablet may include an enteric coating comprising any of the materials outlined above. The enteric coating may be present in an amount of about 5 to about 15% by weight of the whole tablet, for example about 8 to about 12% by weight of the whole tablet.
[0232] Each tablet may contain from about 2 to about 20 mg of budesonide, for example, from about 4 to about 16 mg of budesonide. Preferably, each tablet contains about 4 mg of budesonide.
[0233] Compositions are useful when characterized by the methods of the invention (in all aspects) because they are more effective treatments for IgAN. Such compositions, pharmaceutical formulations, uses, and methods described herein may also have the advantage that they may be more convenient for the physician and / or patient, more effective, less toxic, have a broader spectrum of activity, be more potent, produce fewer side effects, have lower inter-patient variability, or have other useful pharmacological properties over similar formulations or methods (treatments) known in the prior art, whether or not they are used to treat IgAN.
[0234] Whenever the word "about" is used herein in the context of absolute amounts, such as weight, volume, size, diameter, etc., or relative amounts (e.g., percentages), of individual components of a composition or components of a composition (including concentrations and ratios), parameters such as time frames, and temperatures, it is to be understood that such variables are approximate and therefore may vary by ±10%, such as ±5%, preferably ±2% (e.g., ±1%) from the actual numbers specified herein. This is true even when such numbers are first presented as percentages (e.g., "about 10%" may mean ±10% about the number 10, anywhere between 9% and 11%). [Brief description of the drawings]
[0235] [Figure 1] 1 is a flow diagram detailing the preparation of cured polymer coated beads. [Diagram 2] 1 shows an in vitro dissolution profile of budesonide modified release capsules in the presence of added surfactant in a pH 6.8 buffer medium at a paddle rotation speed of 100 rpm. Data is shown for different capsule batches prepared according to the present invention. [Diagram 3] This repeats the in vitro dissolution profile shown in Figure 2, focusing only on dissolution at pH 6.8. [Figure 4] FIG. 1 shows comparative in vitro dissolution profiles of seven separate batches of budesonide modified release capsules according to the present invention in the absence of surfactant, at a paddle rotation speed of 50 rpm, and dissolution in buffered pH 6.8 medium. [Diagram 5] 1 shows the in vitro dissolution profiles of a budesonide modified release capsule according to the present invention along with three other commercially available budesonide-containing formulations in pH 6.8 buffered medium in the presence of added surfactant and at a paddle rotation speed of 100 rpm. [Figure 6]FIG. 1 shows the in vitro dissolution profiles of a budesonide modified release capsule according to the present invention and three other commercially available budesonide-containing formulations in pH 6.8 buffer medium in the absence of added surfactant and at a paddle rotation speed of 100 rpm. [Figure 7] Percentage change in BAFF levels compared to baseline levels after treatment. The percentage change in BAFF relative to baseline levels was measured in patients after 9 months of treatment with: (a) placebo, (b) Nefecon-budesonide (8 mg / day), and (c) Nefecon-budesonide (16 mg / day). The dotted lines indicate no percentage change after intervention with placebo or Nefecon-budesonide. [Figure 8] Percentage change in BAFF levels after the follow-up period compared to end-of-treatment levels. In patients receiving Nefecon-Budesonide (16 mg / day) for 9 months, the percentage change in BAFF was measured at the following time points: (a) at the end of the treatment period at month 9 compared to baseline, and (b) after the follow-up period at month 12 compared to the end of treatment. The dotted lines indicate no percentage change after placebo or Nefecon-Budesonide intervention. [Figure 9] Percentage change in APRIL levels compared to baseline levels after treatment. The percentage change in APRIL levels compared to baseline levels was measured in patients after 9 months of treatment with: (a) placebo, (b) Nefecon-budesonide (8 mg / day), and (c) Nefecon-budesonide (16 mg / day). The dotted lines indicate no percentage change after intervention with placebo or Nefecon-budesonide. [Figure 10]Percentage change in TACI levels compared to baseline levels after treatment. The percentage change in TACI levels compared to baseline levels was measured in patients after 9 months of treatment with: (a) placebo, (b) Nefecon-budesonide (8 mg / day), and (c) Nefecon-budesonide (16 mg / day). The dotted lines indicate no percentage change after intervention with placebo or Nefecon-budesonide. [Figure 11] Percentage change in BCMA levels compared to baseline levels after treatment. The percentage change in BCMA levels compared to baseline levels was measured in patients after 9 months of treatment with: (a) placebo, (b) Nefecon-budesonide (8 mg / day), and (c) Nefecon-budesonide (16 mg / day). The dotted lines indicate no percentage change after intervention with placebo or Nefecon-budesonide. [Figure 12] Percentage change in CD27 levels compared to baseline levels after treatment. The percentage change in CD27 levels compared to baseline levels was measured in patients after 9 months of treatment with: (a) placebo, (b) Nefecon-budesonide (8 mg / day), and (c) Nefecon-budesonide (16 mg / day). The dotted lines indicate no percentage change after intervention with placebo or Nefecon-budesonide. [Figure 13] Percentage change in CD27 levels after the follow-up period compared to end-of-treatment levels. In patients receiving Nefecon-Budesonide (16 mg / day) for 9 months, the percentage change in CD27 was measured at the following time points: (a) at the end of the treatment period at month 9 compared to baseline, and (b) after the follow-up period at month 12 compared to the end of treatment. The dotted lines indicate no % change after placebo or Nefecon-Budesonide intervention. [Figure 14]Percentage change in CD30 levels compared to baseline levels after treatment. The percentage change in CD30 levels compared to baseline levels was measured in patients after 9 months of treatment with: (a) placebo, (b) Nefecon-budesonide (8 mg / day), and (c) Nefecon-budesonide (16 mg / day). The dotted lines indicate no percentage change after intervention with placebo or Nefecon-budesonide. [Figure 15] There was a significant (p<0.05) budesonide capsule-dependent decrease in serum levels of secretory IgA, whereas serum levels of IgA were unchanged. [Figure 16] 1 shows that there was a significant (p<0.05) budesonide capsule dose-dependent decrease in serum levels of IgA-IgG immune complexes. [Figure 17] FIG. 1 shows that there was a significant (p<0.05) budesonide capsule dose-dependent decrease in levels of under-O-galactosylated IgA1. [Figure 18] 1 shows that no differences were observed in total IgA, IgA1, and IgG levels with budesonide capsule treatment. [Figure 19] 1 shows the in vitro dissolution profile of budesonide modified release capsules in the presence of added surfactant in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5. [Figure 20] 1 shows the in vitro dissolution profiles of budesonide modified release capsules in FaSSIF in the presence of added surfactant in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5 compared to three other commercially available budesonide-containing formulations. [Figure 21] FIG. 1 shows the in vitro dissolution profile of a core-shell bead formulation containing budesonide in the absence of an enteric coated capsule. [Figure 22] 1 shows the in vitro dissolution profiles of budesonide modified release capsules in FaSSIF in the absence of added surfactant in Level 1 fasted state simulated intestinal fluid at a pH of about 6.5 compared to three other commercially available budesonide-containing formulations. [Figure 23](a) shows the results of the PBPK model based on the dissolution of the modified release capsule, and (b) shows the results of the PBPK model based on the dissolution of the comparator product Entocort®. [Figure 24] Coronal MRI images of T2* / T1-weighted TRUFI detecting iron oxide-loaded capsules at 15 and 90 min and iron oxide dispersion in the ileum at 270 min. EXAMPLES
[0236] Example 1: Preparation of a core-shell composition Opadry OY-7240, referred to below, is a dry powder polymer blend having the following components: [Table 1]
[0237] Surelease is a polymer dispersion having the following components: [Table 2]
[0238] For the avoidance of doubt, the minimum and maximum values in the table above refer to the minimum and maximum values of these ingredients in different batches of Surelease.
[0239] A flow diagram detailing the preparation of budesonide beads according to the core-shell composition of the present invention is provided in FIG. 1 and is described in further detail below.
[0240] The budesonide coating suspension was prepared by dissolving Opadry OY-7240 Clear (2.29 kg) in purified water (26.5 kg) and then adding micronized budesonide (0.640 kg) to the solution with continuous mixing.
[0241] Sugar spheres (40.3 kg) with mesh size 16-18 were loaded into the preheated product bowl of the fluidized bed. When the product temperature reached the target of 45°C, the active coating suspension was sprayed onto the sugar spheres / inert cores. The operation was monitored and controlled by a process computer. After spraying of the required amount of active coating suspension was completed, the active coated beads were dried and cooled.
[0242] A seal coating solution was prepared by dissolving citric acid monohydrate (0.093 kg) and Opadry OY-7240 Clear (2.26 kg) in purified water (21.8 kg) with continuous mixing.
[0243] The seal coating solution was applied onto the pre-warmed activated coated beads. The operation was monitored and controlled by a process computer. When the required amount of solution had been sprayed, the coating was stopped and the seal coated beads were dried and cooled. The bed was emptied and the beads were sieved using 1.4 mm (14 mesh) and 0.5 mm (35 mesh) screens to remove both oversized and undersized particles. The beads were weighed and the yield of the acceptable fraction was calculated.
[0244] The sustained release coating solution was prepared by adding Opadry OY-7240 (1.37 kg) to purified water (16.3 kg) with continuous mixing. Ethylcellulose Suspension Dispersion Type B (Surelease, 12.8 kg) was added to the Opadry solution with continuous mixing.
[0245] The acceptable fraction of the seal-coated beads was charged into the preheated product bowl of a fluidized bed equipped with a Wurster column. When the product temperature reached the target temperature, the sustained release polymer coating suspension was sprayed onto the beads. The operation was monitored and controlled by a process computer. The amount sprayed was calculated from the amount of the acceptable fraction of the seal-coated beads from the previous step.
[0246] The resulting polymer blend of the sustained release coating on the beads contained about 27.3% HPMC by weight of the total blend and about 51.8% ethylcellulose by weight of the total blend, where ethylcellulose is a water insoluble polymer as defined above and HPMC functions as the pore forming polymer.
[0247] After spraying was completed, the beads were dried and cooled. The bed was emptied and the beads were sieved using 1.4 mm (14 mesh) and 0.5 mm (35 mesh) screens to remove any oversized and undersized particles. The beads were weighed and the yield of the acceptable fraction was calculated.
[0248] An acceptable fraction of the polymer coated beads was charged into the preheated drying bowl of the fluid bed apparatus. The beads were cured for 3 hours at a target temperature of 65°C. The operation was monitored and controlled by a process computer. The fluid bed was emptied and a sample of the cured beads was taken for assay and dissolution testing. The cured beads were weighed and the yield was calculated. The beads were loaded into a stainless steel in bin hopper.
[0249] The hardened beads were then filled into size 1 capsules using an automated encapsulation machine and the capsules were then coated with an enteric coating. The capsule enteric coating used was a blend of 1:1 and 1:2 methacrylic acid and methyl methacrylate copolymers. The amount of enteric coating applied to each capsule ranged from about 34 to about 42 mg per capsule. The total amount of budesonide in each capsule was about 4 mg.
[0250] Example 2: USP 10 ... <711> / General process for standard in vitro dissolution testing according to Ph.Eur.2.9.3 The in vitro dissolution of the encapsulated budesonide core-shell beads of Example 1 was performed as described in Ph.Eur.2.9.3 Dissolution Testing of Solid Dosage Forms (using Apparatus 2) and as described in USP <711> Analysis was carried out as described in Dissolution (using Apparatus 2). Measurements were carried out as described below. [Table 3]
[0251] Budesonide release was measured using ultra performance liquid chromatography (UPLC).
[0252] Reagents and Standards Standards and reference materials: Budesonide, Ph.Eur.CSR or suitable secondary standard.
[0253] Other Reagents: Tween 80, (Polyoxyethylene (20), Polysorbate (80), Fisher Scientific or equivalent.
[0254] Dissolution Media and Diluents acid resistant medium 0.1 N HCl solution. To prepare 6 L of acid-resistant medium, 50 mL of concentrated HCl was combined with 6000 mL of water and the resulting solution was mixed well.
[0255] 0.2M Sodium Phosphate Tribasic Buffer Solution To prepare 1 L of 0.2 M sodium phosphate tribasic buffer solution, approximately 76.02 g of sodium phosphate tribasic was added to 1000 mL of water, dissolved, and then mixed.
[0256] Buffer dissolution medium: 50 mM sodium phosphate buffer, pH 6.8, with Tween 80. To make 6 L of buffer dissolution medium, 4500 mL of acid-resistant medium was combined with 1500 mL of 0.2 M sodium phosphate tribasic buffer solution and 3 g of Tween 80, followed by mixing. The pH was checked and adjusted to 6.8±0.05, if necessary, using either hydrochloric acid or sodium hydroxide.
[0257] Analytical procedures Acid Resistance Procedure Note: Be careful not to scrape or damage the capsule when placing it in the sinker.
[0258] Into each of the six dissolution vessels was placed 900 mL of pre-heated degassed acid-resistant medium. The medium was maintained at a temperature of 37° C.±0.5° C.
[0259] The device is USP <711> / Pharmacopoeia test number 2.9.3 rotating paddle apparatus method was followed, operated at 100 rpm.
[0260] Each of the six capsules was then placed into a separate coil sinker and then into an individual container.
[0261] At 2 hours, 15 mL aliquots of the acid-resistant solution were removed using a syringe.
[0262] The test solutions were filtered through a Whatman GF / F fitted with a GMF filter, the first 5 mL was discarded and the remaining solution was collected in a test tube.
[0263] The following two steps were completed after the buffer step elution was initiated.
[0264] 5.0 mL of the filtered acid-resistant sample solution was pipetted into a 10 mL volumetric flask and diluted to volume with acetonitrile.
[0265] The solution was mixed thoroughly and an aliquot was transferred to an HPPLC vial for analysis.
[0266] Budesonide release during the acid resistance stage was determined according to USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0267] Buffer step elution procedure After collecting the acid-resistant samples, tweezers were used to transfer each coil sinker containing a budesonide capsule into a different set of dissolution vessels containing 900 mL of buffer dissolution medium at a temperature of 37°C ± 0.5°C.
[0268] The device is USP <711> / Pharmacopoeia test number 2.9.3 rotating paddle apparatus method was followed, operated at 100 rpm.
[0269] Sampling at designated time points: 0.5 and 2 hours, 15 mL aliquots of the elution solution were taken using a syringe. The collected liquid was not replaced.
[0270] The test solutions were filtered through a Whatman GF / F fitted with a GMF filter, the first 5 mL was discarded and the remaining solution was collected in a test tube.
[0271] 5.0 mL of the filtered eluted sample solution was pipetted into a 10 mL volumetric flask and diluted to volume with acetonitrile.
[0272] The solution was mixed thoroughly and an aliquot was transferred to an HPLC vial.
[0273] Budesonide release in the buffer phase was measured according to USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0274] Example 3: In vitro USP chromatography in the presence of surfactant in the buffer stage and with a paddle rotation speed of 100 rpm <711> / Dissolution profile analysis according to Pharmacopoeia test number 2.9.3 The capsules prepared in Example 1 ("budesonide capsules" or "nefecon budesonide") were tested under the dissolution conditions outlined in Example 2.
[0275] The overall dissolution profiles of three separate batches can be seen in Figure 2, with the time periods 0-2 hours being at acidic pH (pH 1.2) and 2-4 hours being at buffered pH 6.8. Figure 3 is a repeat of Figure 2, showing only the dissolution at buffered pH 6.8 from time 0-120 minutes in Figure 3, which corresponds to time periods 2-4 hours in Figure 2. Twelve capsules per batch were tested.
[0276] Quantitative results of the dissolution of budesonide in various media at 2 hours at pH 1.2, 0.5 hours at pH 6.8, and 2 hours at pH 6.8 are provided in Table 1 below. [Table 4]
[0277] Budesonide release in the acid-resistant and buffer stages was <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0278] Example 4: USP 10 ... <711> / General process for standard in vitro dissolution tests according to Ph.Eur.2.9.3 The in vitro dissolution of the encapsulated budesonide core-shell beads of Example 1 was performed as described in Ph.Eur.2.9.3 Dissolution Testing of Solid Dosage Forms (using Apparatus 2) and as described in USP <711> Analysis was carried out as described in Dissolution (using Apparatus 2). Measurements were carried out as described below. [Table 5]
[0279] Budesonide release was measured using ultra performance liquid chromatography (UPLC).
[0280] Reagents and Standards Standards and reference materials: Budesonide, Ph.Eur.CSR or suitable secondary standard.
[0281] Dissolution Media and Diluents acid resistant medium 0.1 N HCl solution. To prepare 6 L of acid-resistant medium, 50 mL of concentrated HCl was combined with 6000 mL of water and the resulting solution was mixed well.
[0282] 0.2M Sodium Phosphate Tribasic Buffer Solution To prepare 1 L of 0.2 M sodium phosphate tribasic buffer solution, approximately 76.02 g of sodium phosphate tribasic was added to 1000 mL of water, dissolved, and then mixed.
[0283] Buffer dissolution medium: 50 mM sodium phosphate buffer, pH 6.8, with Tween 80. To make 6 L of buffer dissolution medium, 4500 mL of acid-resistant medium was combined with 1500 mL of 0.2 M sodium phosphate tribasic buffer solution. The pH was checked and adjusted to 6.8±0.05 if necessary using either hydrochloric acid or sodium hydroxide.
[0284] Analytical procedures Acid Resistance Procedure Note: Be careful not to scrape or damage the capsule when placing it in the sinker.
[0285] Into each of the six dissolution vessels was placed 900 mL of pre-heated degassed acid-resistant medium. The medium was maintained at a temperature of 37° C.±0.5° C.
[0286] The device is USP <711> / Pharmacopoeia test number 2.9.3 rotating paddle apparatus method was followed, operated at 50 rpm.
[0287] Each of the six capsules was then placed into a separate coil sinker and then into an individual container.
[0288] At 2 hours, 15 mL aliquots of the acid-resistant solution were removed using a syringe.
[0289] The test solutions were filtered through a Whatman GF / F fitted with a GMF filter, the first 5 mL was discarded and the remaining solution was collected in a test tube.
[0290] The following two steps were completed after the buffer step elution was initiated.
[0291] 5.0 mL of the filtered acid-resistant sample solution was pipetted into a 10 mL volumetric flask and diluted to volume with acetonitrile.
[0292] The solution was mixed thoroughly and an aliquot was transferred to an HPPLC vial for analysis.
[0293] Budesonide release during the acid resistance stage was determined according to USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0294] The capsules prepared in Example 1 ("budesonide capsules" or "nefecon budesonide") were tested under the dissolution conditions outlined in this example.
[0295] The overall dissolution profile of seven separate batches can be seen in Figure 4, where the time period from 0 to 2 hours is at acidic pH (pH 1.2) and the time period from 2 to 4.5 hours is at buffered pH 6.8.
[0296] For all samples, less than 10% of the budesonide was released at 0.625 hours.
[0297] The quantitative results of budesonide dissolution at 1.25 hours (75 minutes) at pH 6.8 are shown in the table below. [Table 6]
[0298] In 1.25 hours (75 minutes), 23-74% of the budesonide is released.
[0299] The quantitative results of budesonide dissolution at 2.5 hours (150 minutes) at pH 6.8 are shown in the table below. [Table 7]
[0300] The lowest amount of release observed at 2.5 hours was 77%.
[0301] Example 5: USP 100 paddle rotation speed in the presence of surfactant in the buffer stage <711> / Comparative test according to Ph.Eur.2.9.3 Outlined below is a variation of the in vitro study of Example 2, in which budesonide modified release capsules according to the invention were analyzed along with three other commercially available budesonide-containing formulations: Entocort® (Tillotts Pharma), Budenofalk® (Dr Falk Pharma GmbH) and Cortiment® (Ferring Pharmaceuticals, CH). [Table 8]
[0302] Standards and Reference Materials Budesonide, Ph.Eur.CSR.
[0303] Other Reagents: Tween 80, (Polysorbate(80)), Fisher Scientific or equivalent
[0304] Elution media, mobile phases and diluents acid resistant medium 0.1 N HCl solution. For example, to prepare 10 L, combine 82 mL of concentrated HCl with 10,000 mL of water and mix thoroughly.
[0305] buffer elution medium Sodium phosphate dissolution medium at pH 6.80 was prepared by diluting one bottle (961.5 mL) of Reagecon DBC09-960 concentrate to a total volume of 25 L.
[0306] For more details see Sodium Phosphate pH 6.80 Dissolution Media 6 x 961.5 ml (reagecon.com).
[0307] The pH of the buffer solutions was checked after preparation.
[0308] After the acid-resistant samples were taken, the capsules were removed from the solution with tweezers and set aside while the vessels were emptied, washed, and filled with pre-heated buffer. 0.05% Tween 80 (or equivalent) was added to each dissolution vessel, e.g., after filling the dissolution vessel with 900 mL of pre-heated buffer, 450 mg of Tween 80 was added to give a surfactant concentration of 0.05% w / v.
[0309] After all vessels had reached the target temperature, the experiment was initiated by adding a capsule to each vessel.
[0310] Changes in procedure at Budenofalk If the capsule broke during the acid stage, a different procedure was used: the majority of the acid phase was carefully decanted, then the remaining acid was carefully removed with a pipette to remove as little pellet as possible from the vessel. The buffer stage was initiated by adding 900 mL of pre-heated buffer media, followed by the addition of Tween.
[0311] Sampling at both stages 10 mL was aspirated, 8 mL was discarded (passed through a Whatman filter (0.7 μm)), and 1 mL was sampled into an HPLC vial.
[0312] The variations in this study compared to Example 2 did not affect the overall dissolution profile of the product tested, and comparative dissolution profiles of three other commercially available budesonide-containing formulations can be seen in FIG.
[0313] Example 6: USP in the absence of surfactant in the buffer stage and at a paddle rotation speed of 100 RPM <711> / Comparative test according to Ph.Eur.2.9.3
[0314] Outlined below is a variation of the in vitro study of Examples 2 and 5. In this study, enteric coated capsules filled with the core-shell beads of Example 1 were analyzed in a buffer step solution of pH 6.8 and at a paddle rotation speed of 100 rpm along with three other commercially available budesonide-containing formulations. The three formulations are Entocort® (Tillotts Pharma), Budenofalk® (Dr Falk Pharma GmbH) and Cortiment® (Ferring Pharmaceuticals, CH). [Table 9]
[0315] Standards and Reference Materials Budesonide, Ph.Eur.CSR.
[0316] Elution media, mobile phases and diluents acid resistant medium
[0317] 0.1 N HCl solution. For example, to prepare 10 L, combine 82 mL of concentrated HCl with 10,000 mL of water and mix thoroughly.
[0318] buffer elution medium Sodium phosphate dissolution medium at pH 6.80 was prepared by diluting one bottle (961.5 mL) of Reagecon DBC09-960 concentrate to a total volume of 25 L. For more details see Sodium Phosphate pH 6.80 Dissolution Media 6 x 961.5 ml (reagecon.com).
[0319] The pH of the buffer solutions was checked after preparation.
[0320] After the acid-resistant sample was taken, the capsule was removed from the solution with tweezers and set aside while the container was emptied, washed, and filled with 900 mL of pre-warmed buffer.
[0321] After all vessels had reached the target temperature, the experiment was initiated by adding a capsule to each vessel.
[0322] Changes in procedure at Budenofalk If the capsule broke during the acid stage, a different procedure was used: the majority of the acid phase was carefully decanted, then the remaining acid was carefully removed with a pipette to remove as little pellet as possible from the vessel. The buffer stage was initiated by adding 900 mL of pre-heated buffer medium.
[0323] Sampling at both stages 10 mL was aspirated, 8 mL was discarded (passed through a Whatman filter (0.7 μm)), and 1 mL was sampled into an HPLC vial.
[0324] The dissolution profile of the tested product, as well as the comparative dissolution profiles of the budesonide core-shell beads of Example 1 and three other commercially available budesonide-containing formulations, can be seen in FIG.
[0325] The following table shows f2 values for comparing budesonide capsules according to the present invention with each of the other commercially available products tested in this manner. An f2 value of 50 or greater is required to clearly demonstrate similarity in profile (FDA SUPAC Guidance 1995, 1997). [Table 10]
[0326] It is clear that the release profiles of budesonide are significantly different among the four commercial products. None of the f2 comparisons between Nefecon and the other products show similarity, and f2 values of 50 or greater are required to clearly show similarity. Indeed, based on the f2 evaluation as well as visual inspection of the graphical profiles, the release profiles must be considered as strongly different.
[0327] Example 7: Administration of bead-filled capsules and measurement of biomarkers The studies detailed in Examples 7-16 used enteric coated capsules filled with hardened beads as described in Example 1. The capsules are hereinafter referred to interchangeably as "budesonide capsules" or "nefecon budesonide."
[0328] Study design A randomized, double-blind, placebo-controlled study was conducted in which subjects with biopsy-confirmed primary IgA nephropathy and overt proteinuria were administered budesonide capsules and the levels of various biomarkers were measured in blood taken from the patients before the start of treatment, at the completion of treatment, and after the completion of treatment.
[0329] patient Males or females aged at least 18 years with biopsy-confirmed primary IgA nephropathy and overt proteinuria were recruited for the run-in phase. All patients gave written informed consent before enrollment. Inclusion criteria for randomization to treatment included a minimum of 1.73 m 2These included an estimated GFR (eGFR) of at least 45 mL / min per day, a urinary protein creatinine ratio (UPCR) of greater than 0.5 g / g, or a urinary total protein of at least 0.75 g / day, levels considered to increase the risk of progression to end-stage renal disease. Either 24-hour protein excretion or UPCR on a 24-hour urine collection was used to determine eligibility to overcome possible collection errors and deviations from normal creatinine excretion (e.g., physically active, muscular men), thereby minimizing the risk of unintentionally excluding patients.
[0330] procedure The drug is an oral capsule formulation as described in Example 1 (budesonide capsule) or placebo, designed with an in vitro dissolution profile as outlined above to provide a sustained release of the active compound that is delayed until the capsule reaches the ileum, particularly the distal ileum, targeting sites with dense Peyer's patches.
[0331] After screening, eligible patients were enrolled in a 6-month run-in period, a 9-month treatment period, and a 3-month follow-up period; patient eligibility was assessed prior to the run-in and treatment periods. During the run-in period, RAS blockade was optimized by gradually increasing ACE inhibitors (ACEIs) and angiotensin II receptor blockers (ARBs) to the maximum recommended or maximum tolerated doses (in line with established clinical practice) to target blood pressure <130 / 80 mmHg, UPCR <0.5 g / g, and urinary protein <0.75 g / day. At the end of the run-in period, patients with optimized RAS blockade, eGFR (estimated by the Chronic Kidney Disease Epidemiology Collaboration [CKD-EPI] serum creatinine equation ≥45 mL / min) or measured GFR ≥45 mL / min / 1.73 m were considered to be at increased risk of developing cardiovascular disease. 2 , and patients with persistent proteinuria (UPCR ≥ 0.5 g / g or proteinuria ≥ 0.75 g / day) despite blood pressure ≤ 160 / 100 mmHg were eligible for randomization to treatment.
[0332] An independent Data Safety Monitoring Board (DSMB) monitored all safety issues and reviewed the data at the interim analyses.
[0333] Randomization and Masking Patients were stratified according to baseline UPCR (≦0.9 g / g and >0.9 g / g) at month 0 (baseline). Patients were randomly assigned to treatment groups using a permuted block computer algorithm method. Within each block, patients were assigned in a 1:1:1 ratio to 16 mg / day budesonide capsules, 8 mg / day budesonide capsules, or placebo. All patients continued optimized RAS blockade therapy throughout the treatment phase.
[0334] In total, 50 patients received placebo, 51 patients received 8 mg / day budesonide capsules, and 48 patients received 16 mg / day budesonide capsules. Randomization was performed by Pharma Consulting Group AB (Uppsala, Sweden). Demographic and baseline characteristics of recruited patients are shown in Table 2.
[0335] The study was double-blind, so throughout the study and analysis, the treatment group assignment was blinded to each patient, all study staff (including the investigators and other staff who performed the randomization and analysis), the sponsor, and the DSMB (the DSMB reviewed masked safety data and unmasked data were available in case of concerns).
[0336] To ensure masking, the placebo capsules provided by the sponsor had the same appearance and route of administration as the active capsules. Patients self-administered the masked capsules once daily, 1 h before breakfast during the treatment period. During the follow-up period (months 9-12), patients who received 16 mg / day budesonide capsules during months 0-9 were tapered to 8 mg / day over 2 weeks, while all other patients (i.e., patients who received 8 mg / day budesonide capsules or placebo during months 0-9) received placebo to maintain masking. After tapering, no further study medication was administered. [Table 11]
[0337] Blood samples were taken from patients at the beginning of the treatment period (month 0, before any treatment was administered), at the end of the treatment period (month 9), and at the end of the follow-up period (month 12). The samples obtained were tested for the levels of several biomarkers, including: BAFF, APRIL, TACI, BCMA, CD27, CD30, secretory IgA, IgA-IgG immune complexes, and under-O-galactosylated IgA1.
[0338] For each randomized patient, a treatment-coded envelope was provided. In case of emergency, the code envelope could be opened. Any unmasked patient had to be excluded from the study.
[0339] Example 8: Treatment of patients with budesonide capsules results in a decrease in serum levels of BAFF Materials and Methods Biomarkers were measured using custom designed bead-based multiplex Luminex® assays (R&D Systems) according to the manufacturer's instructions.
[0340] The concept of the Luminex® assay is based on fluorescently tagged microspheres that selectively bind to molecules of interest, thus enabling the simultaneous detection and quantification of multiple biomarkers in very small volumes of serum.
[0341] In this study, biomarkers were selected and divided into panels according to the dynamic range of the assay (Panel 1: BAFF, APRIL; Panel 2: TACI, BCMA, CD27, CD30).
[0342] Panel 1 specific tagged microparticle cocktail or Panel 2 specific tagged microparticle cocktail was diluted 1:10 in reagent diluent (provided with the microparticles by R&D Systems), serum samples were diluted 1:2 in reagent diluent, and a standard curve was generated using serial dilutions of standard solution (provided with the microparticles by R&D Systems).
[0343] 50 μl of the microparticle cocktail was applied to a Luminex® assay plate, followed by 50 μl of standards or samples. The plate was incubated at room temperature for 2 hours at 800 rpm on a microplate shaker. Proteins not bound to the microbeads were removed by washing with wash buffer (provided with the microparticles by R&D Systems).
[0344] Biotinylated antibody cocktail (provided with the microparticles by R&D Systems) was added to each well and incubated for 1 hour at room temperature. The plate was washed with wash buffer (provided with the microparticles by R&D Systems) and then incubated with 50 μl per well of streptavidin-phycoerythrin (provided with the microparticles by R&D Systems) for 30 minutes, followed by a final wash step.
[0345] The microparticles were resuspended in 100 μl of wash buffer and the fluorescence of each well was read within 90 minutes on a MAGPIX® Luminex instrument.
[0346] Comparison of differences in biomarker levels was performed using one-way analysis of variance (ANOVA) statistical test with a p value <0.05.
[0347] result As can be seen in FIG. 7 and Table 3, treatment of patients with 8 mg / day and 16 mg / day budesonide capsules resulted in a statistically significant decrease in serum levels of BAFF compared to placebo-treated patients in samples taken at the end of the 9-month treatment period. [Table 12]
[0348] Furthermore, Figure 8 and Table 4 show that in serum samples taken after completion of the follow-on phase (i.e., 3 months after the end of the treatment period), serum levels of BAFF in patients previously treated with 16 mg / day budesonide capsules increased again, and the observed decrease was dependent on exposure to budesonide capsules. [Table 13]
[0349] Example 9: Treatment of patients with budesonide capsules does not lead to a decrease in serum levels of APRIL Materials and Methods The same materials and methods were used as described in Example 8 above.
[0350] Comparison of differences in APRIL levels was performed using one-way analysis of variance (ANOVA) statistical test with a p value <0.05.
[0351] result As can be seen in Figure 9 and Table 5, treatment of patients with 8 mg / day and 16 mg / day budesonide capsules did not result in observable changes in serum levels of APRIL in samples taken at the end of the 9-month treatment period, suggesting that the effect produced by treatment with budesonide capsules was specific to BAFF. Similarly, no changes were observed in the placebo group. [Table 14]
[0352] Example 10: Decreased serum levels of BAFF after budesonide capsule treatment are associated with decreased serum levels of TACI Materials and Methods The same materials and methods were used as described in Example 8 above.
[0353] Comparison of differences in TACI levels was performed using one-way analysis of variance (ANOVA) statistical test with a p value <0.05.
[0354] result As can be seen in Figure 10 and Table 6, treatment of patients with 8 mg / day and 16 mg / day budesonide capsules resulted in a statistically significant decrease in serum levels of TACI compared to placebo-treated patients in samples taken at the end of the 9-month treatment period. In the placebo group, levels of TACI were actually seen to increase slightly compared to baseline levels. [Table 15]
[0355] Example 11: Decreased serum levels of BAFF following budesonide capsule treatment are associated with decreased serum levels of BCMA. Materials and Methods The same materials and methods were used as described in Example 6 above.
[0356] Comparison of differences in BCMA levels was performed using a one-way analysis of variance (ANOVA) statistical test with a p value <0.05.
[0357] result As can be seen in Figure 11 and Table 7, treatment of patients with 8 mg / day and 16 mg / day budesonide capsules resulted in a statistically significant decrease in serum levels of BCMA compared to placebo-treated patients in samples taken at the end of the 9-month treatment period. In the placebo group, levels of BCMA were actually seen to increase very slightly compared to baseline levels. [Table 16]
[0358] Example 12: Decreased serum levels of BAFF following budesonide capsule treatment are associated with decreased serum levels of CD27. Because this study was limited to evaluating changes in circulating levels rather than tissue levels of each biomarker, and therefore the actual site where modulation occurred was uncertain, pathway analysis was performed to determine whether biomarkers significantly modulated by Nefecon budesonide, including those surrogate biomarkers of immune cell activation, including sCD27 and sCD30 (see Example 13), were associated with any specific biological processes and pathways.
[0359] Materials and Methods The same materials and methods were used as described in Example 8 above.
[0360] Comparison of differences in CD27 levels was performed using one-way analysis of variance (ANOVA) statistical test with a p value <0.05.
[0361] result As can be seen in Figure 12 and Table 8, treatment of patients with 8 mg / day and 16 mg / day budesonide capsules resulted in a statistically significant decrease in serum levels of CD27 compared to placebo-treated patients in samples taken at the end of the 9-month treatment period. In the placebo group, levels of CD27 were actually seen to increase slightly compared to baseline levels. [Table 17]
[0362] Furthermore, Figure 13 and Table 9 show that in serum samples taken after completion of the add-on period (i.e., 3 months after the end of the treatment period), serum levels of CD27 in patients previously treated with 16 mg / day budesonide capsules increased again, and the observed decrease was dependent on exposure to budesonide capsules. [Table 18]
[0363] Example 13: Decreased serum levels of BAFF following budesonide capsule treatment are associated with decreased serum levels of CD30. Materials and Methods The same materials and methods were used as described in Example 8 above.
[0364] Comparison of differences in CD30 levels was performed using one-way analysis of variance (ANOVA) statistical test with a p value <0.05.
[0365] result As can be seen in Figure 14 and Table 10, treatment of patients with 8 mg / day and 16 mg / day budesonide capsules resulted in a small but statistically significant decrease in serum levels of CD30 compared to placebo-treated patients in samples taken at the end of the 9-month treatment period. In the placebo group, CD30 levels were actually seen to increase slightly compared to baseline levels. [Table 19]
[0366] In agreement with large meta-analyses of genome-wide association (GWA) studies (Gesualdo L, Di Leo V, Coppo R. The mucosal immune system and IgA nephropathy. Semin Immunopathol. 2021;43:657-668; Coppo R. The gut-renal connection in IgA nephropathy. Semin Nephrol. 2018;38:504-512.), this study identified the gut immune network for IgA production as one of the most enriched Kyoto Encyclopaedia of Genes and Genomes (KEGG) pathways and showed that the mechanism of action of Nefecon budesonide is driven, at least in part, by effects within the ileal gut-associated lymphoid tissue (GALT).
[0367] Example 14: - Analysis of secretory IgA levels after budesonide capsule treatment Materials and Methods Monoclonal mouse anti-human secretory component (Sigma) diluted 1:10,000 in coating buffer was applied to the wells of the immunoplate and incubated overnight at 4°C. The plates were then washed and blocked with 2% BSA for 1 hour at room temperature. Serum samples and standards (high, medium, and low) were diluted 1:10 in PBS and applied to the plates after washing and incubated overnight at 4°C. The plates were then washed and polyclonal rabbit anti-human IgA HRP (Sigma, 1:2000) was added to each well and the plates were incubated for 90 minutes at room temperature. The plates were then washed again and the levels of secretory IgA were visualized with o-phenylenediamine dihydrochloride substrate. The OD492 of the high, medium, and low standards of each plate were used to normalize the plate values to the standard plate.
[0368] result Serum levels of secretory IgA were significantly (p<0.05) decreased in a budesonide capsule-dependent manner. Serum levels of secretory IgA were unchanged (FIG. 15). This indicates a local release and local gut effect due to the targeted release of the budesonide capsules, rather than a systemic exposure of budesonide.
[0369] Example 15: Analysis of IgA-IgG immune complexes and O-galactosylated under-IgA1 levels after budesonide capsule treatment Materials and Methods IgA-IgG immune complexes: Wells from a 96-well immunoplate were coated with AffiniPure F(ab')2 fragment goat anti-human serum IgA (alpha chain specific) (Jackson Immunology) diluted to 5 μg / mL in coating buffer. After overnight incubation at 4°C, the plates were washed and nonspecific protein binding was blocked with 2% BSA in PBS for 1 hour at room temperature. Test serum samples and standards (high, medium, and low) were diluted 1:500 in PBS, added in duplicate to the wells, and incubated overnight at 4°C. The plates were then washed and incubated for 90 minutes with polyclonal rabbit anti-human IgG-HRP (Dako) diluted 1:2000 in PBS. The plates were washed again for 4 cycles and the levels of IgA / IgGIC in the serum samples were visualized using o-phenylenediamine dihydrochloride substrate. The OD492 of the high, medium, and low standards from each plate was used to normalize the plate values to the standard plate.
[0370] Undergalactosylated IgA: The levels of O-undergalactosylated IgA1 were measured using the commercially available KM55 ELISA (catalog number 27600, Immuno-Biological Laboratories, Inc. Minneapolis, MN 55432, USA).
[0371] result At the end of treatment, there was a significant (p<0.05) budesonide capsule dose-dependent decrease in serum levels of IgA-IgG immune complexes. IgA-IgG immune complex levels returned to baseline levels 3 months after cessation of budesonide capsule treatment (Figure 16). There was a similar, though less pronounced, change in levels of O-galactosylated underactive IgA1 (Figure 17).
[0372] Of particular interest is that treatment of IgAN with systemic glucocorticoids has been shown to reduce both total serum IgA and O-galactosylated IgA1 (Kosztyu P et al.,:Glucocorticoids Reduce Aberrant O-Glycosylation of IgA1 in IgA Nephropathy Patients.Kidney Blood Press Res 2018;43:350-359). However, in our treatment, no differences in the levels of total IgA, IgA1 and IgG were observed with budesonide capsule treatment (Figure 18), leading to the conclusion that the effect of local ileal treatment with budesonide capsules was selective for pathogenic antibodies but not effective against the general pool of IgA, IgA1 and IgG.
[0373] These results support a direct effect of Nefecon budesonide treatment on the pathogenic pathways underlying IgAN and indicate that the budesonide payload has a primarily local rather than systemic effect, reducing the side effects in patients when treated with Nefecon budesonide.
[0374] Example 16: Comparison of lag time to onset of plasma profile between budesonide capsules and a reference commercial product Budesonide capsules containing the same active ingredient (obtained according to Example 1 above) and a test product, a reference commercial product (Entocort® EC, AstraZeneca), were administered to 24 subjects in the fasting state in a randomized crossover clinical trial.
[0375] The lag time (in hours) for onset of blood levels for each subject after two separate doses of the test formulation and after administration of the reference (REF) product (suitable washout period 7-14 days) is shown in Table 11 below. [Table 20]
[0376] statistical analysis Data were analyzed with Sigmaplot for Windows, version 11.0.
[0377] Descriptive statistics Median values were calculated for lag time to onset of plasma levels for each arm of the study and are shown below in Table 12. (Medians are reported rather than means because these are discrete data, i.e., lag times can only correspond to sampling times in the study). [Table 21]
[0378] It was concluded that the median (50th percentile) lag time to onset of plasma levels was 4 hours for both doses of the test formulations and 1 hour for the reference commercial formulation.
[0379] To determine whether the lag times observed for the test formulations were statistically different from those of the reference product, two Repeated Measures Analysis of Variance (ANOVA) tests were applied to the data - one that assumes the data are normally distributed and one that makes no assumptions about how the data are distributed.
[0380] Repeated measures analysis of variance assuming a normally distributed data set yielded an F value of 51.815 and a P value of P<0.001, which is highly statistically significant. Post-hoc comparisons using Tukey's test to determine which arms of the study differed from each other yielded the results presented in Table 13 below: [Table 22]
[0381] This showed that there was no difference in the lag time to onset of plasma levels when the test formulations were administered separately, but the lag time to onset of plasma levels following administration of the test formulation was statistically significantly different compared to administration of the commercial control product (P<0.001).
[0382] Repeated measures analysis of variance was also applied to the ranking of the individual delay time values using the Friedman test (see, for example, Stanton. A Glanz, Primer of Biostatistics, 5th Edition, McGraw Hill 2002, ISBN 0-07-137946-0, pages 370-380).
[0383] Using this test, the chi-squared value was 52.950 with a p-value of less than 0.001, which is highly statistically significant. Post-hoc comparisons using Tukey's test to determine which arms of the study differed from each other yielded the results presented in Table 14 below: [Table 23]
[0384] This study shows (again) that there is no difference in the lag time to onset of plasma levels when the test formulation is administered, but that the lag time to onset of plasma levels when the test formulation is administered is statistically different (P<0.05) from when the commercial control formulation is administered.
[0385] In conclusion, regardless of the type of statistical analysis applied, the test formulations have significantly different lag times to onset of plasma levels compared to the commercial reference formulation, Entocort® EC. The median lag time to onset of plasma levels was 4 hours in each arm of the study where Nefecon F was administered, whereas the median lag time for Entocort® EC was 1 hour.
[0386] This analysis clearly demonstrates that, unlike the reference product, the test formulation described and claimed herein does not release the majority of its active ingredient until it reaches the distal portion of the small intestine (e.g., the ileum, such as the distal ileum).
[0387] Example 17: USP in the presence of added surfactant Tween 80 <711> / General process for standard in vitro dissolution testing according to Ph.Eur.2.9.3 The in vitro dissolution of the encapsulated budesonide core-shell beads of Example 1 was performed as described in Ph.Eur.2.9.3 Dissolution Testing of Solid Dosage Forms (using Apparatus 2) and as described in USP <711> Analysis was carried out as described in Dissolution (using Apparatus 2). Measurements were carried out as described below.
[0388] The study also analyzed three commercially available budesonide-containing formulations: Entocort® (Tillotts Pharma), Budenofalk® (Dr Falk Pharma GmbH) and Cortiment® (Ferring Pharmaceuticals, CH). [Table 24]
[0389] Budesonide release was measured using ultra performance liquid chromatography (UPLC).
[0390] Reagents and Standards Standards and reference materials: Budesonide, Ph.Eur.CSR or suitable secondary standard.
[0391] Other Reagents: Tween 80, (Polysorbate(80)), Fisher Scientific or equivalent
[0392] Dissolution Media and Diluents acid resistant medium
[0393] 0.1 N HCl solution. To prepare 6 L of acid-resistant medium, 50 mL of concentrated HCl was combined with 6000 mL of water and the resulting solution was mixed well.
[0394] buffer elution medium The buffer solution was prepared using FaSSIF buffer concentrate (from Biorelevant.com, product code FASBUF01).
[0395] 0.05% w / v (0.5 mg / mL) Tween 80 to this buffer solution: for example, to make 6 L of buffer dissolution medium, add 3 g of Tween 80 to 6 L of buffer solution to reach a Tween 80 concentration of 0.05% w / v.
[0396] The resulting solution was mixed well and the pH was checked and adjusted to 6.5±0.05, if necessary, using either hydrochloric acid or sodium hydroxide.
[0397] Budesonide release, USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0398] Example 18: In vitro USP in the presence of added surfactant Tween 80 <711> / Dissolution Profile Analysis of Budesonide Capsules According to Pharmacopoeia Test No. 2.9.3 Enteric coated capsules filled with hardened beads prepared as described in Example 1 above ("budesonide capsules") were tested under the dissolution conditions outlined in Example 17.
[0399] The overall average dissolution profile of the three samples in the buffer phase can be seen in Figure 19. No budesonide release was observed in the acid-resistant phase at the 2 hour sampling time point.
[0400] The quantitative results of the dissolution of budesonide in various media at 2 hours at pH 1.2 and at 15, 30, 45, 60, 90, 120, and 180 minutes at the pH 6.5 buffer step are shown in the table below. [Table 25]
[0401] Budesonide release, USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0402] For comparison, dissolution profiles of budesonide capsules and three other budesonide-containing formulations were obtained according to the protocol outlined below: Entocort® (Tillots Pharma), Budenofalk® (Dr Falk Pharma GmbH) and Cortiment® (Ferring Pharmaceuticals, CH). [Table 26]
[0403] Standards and Reference Materials Budesonide, Ph.Eur.CSR.
[0404] Other Reagents: Tween 80, (Polysorbate(80)), Fisher Scientific or equivalent.
[0405] Elution media, mobile phases and diluents acid resistant medium
[0406] 0.1 N HCl solution. For example, to prepare 10 L, 82 mL of concentrated HCl was combined with 10000 mL of water and mixed thoroughly.
[0407] buffer elution medium Buffer solutions were prepared using FaSSIF buffer concentrate from Biorelevant.com according to the instructions provided. The resulting solution was mixed thoroughly. The pH of the buffer solutions was checked after preparation. If necessary, the pH was adjusted to 6.5±0.05 using either hydrochloric acid or sodium hydroxide.
[0408] After pulling the acid-resistant samples, the capsules were removed from the solution with tweezers and set aside while the vessels were emptied, washed, and filled with pre-heated buffer. 0.05 w / v% Tween 80 (or equivalent) was added to each dissolution vessel, e.g., after filling the dissolution vessel with 900 mL of pre-heated buffer, 450 mg of Tween 80 was added to give a surfactant concentration of 0.05%.
[0409] After all vessels had reached the target temperature, the experiment was initiated by adding a capsule to each vessel.
[0410] Changes in procedure at Budenofalk If the capsule broke during the acid stage, a different procedure was used: the majority of the acid phase was carefully decanted, then the remaining acid was carefully removed with a pipette to remove as little pellet as possible from the vessel. The buffer stage was initiated by adding 900 mL of pre-heated buffer media, followed by the addition of Tween.
[0411] Sampling at both stages 10 mL was aspirated, 8 mL was discarded (through a Whatman filter) and 1 mL was sampled into an HPLC vial.
[0412] For the avoidance of doubt, the variations in this study compared to Example 2 do not affect the overall dissolution profile of the products tested.
[0413] Figure 20 shows the dissolution profile of the budesonide capsule compared to three other budesonide-containing formulations. From this figure, it can be clearly seen that in FaSSIF medium, which mimics the environment in the small intestine, the budesonide capsule has a release profile that distinguishes it from all other commercially available budesonide-containing formulations.
[0414] Example 19: In Vitro USP in the Absence of Enteric Coated Capsules <711> / Dissolution profile analysis of core-shell beads according to Pharmacopoeia test number 2.9.3 The hardened core-shell beads prepared in Example 1 in the absence of an enteric coated capsule were also tested under the buffer step dissolution conditions outlined in Example 17 (only).
[0415] The overall average elution profile of the three samples at the buffer stage can be seen in FIG.
[0416] Quantitative results of the elution of budesonide from the core-shell beads in the pH 6.5 buffer step at 15, 30, 45, 60, 90, 120, and 180 minutes are shown in the table below. [Table 27]
[0417] The release profile of the core shell beads in the absence of an enteric coated capsule in FaSSIF buffer concentrate further confirms that the majority of the budesonide is released in the ileum in vivo: the majority of the release from the beads occurs over a 90 minute period, which, combined with the delayed release from the enteric coating, results in the desired dissolution profile of the overall formulation, such that the majority of the budesonide is released in the ileum in vivo, as confirmed by the biomarker data obtained and the modeling results provided below in Example 25.
[0418] Example 20: USP in the absence of added surfactant Tween 80 <711> / General process for standard in vitro dissolution testing according to Ph.Eur.2.9.3 The in vitro dissolution of the encapsulated budesonide core-shell beads of Example 1 was performed as described in Ph.Eur.2.9.3 Dissolution Testing of Solid Dosage Forms (using Apparatus 2) and as described in USP <711> Analysis was carried out as described in Dissolution (using Apparatus 2). Measurements were carried out as described below.
[0419] The study also analyzed three commercially available budesonide-containing formulations: Entocort® (Tillotts Pharma), Budenofalk® (Dr Falk Pharma GmbH) and Cortiment® (Ferring Pharmaceuticals, CH). [Table 28]
[0420] Budesonide release was measured using ultra performance liquid chromatography (UPLC).
[0421] Reagents and Standards Standards and reference materials: Budesonide, Ph.Eur.CSR or suitable secondary standard.
[0422] Dissolution Media and Diluents acid resistant medium
[0423] 0.1 N HCl solution. To prepare 10 L of acid-resistant medium, 82 mL of concentrated HCl was combined with 10000 mL of water and the resulting solution was mixed thoroughly.
[0424] buffer elution medium Buffer solutions were prepared using FaSSIF buffer concentrate from Biorelevant.com according to the instructions provided. The resulting solution was mixed thoroughly. The pH of the buffer solutions was checked after preparation. If necessary, the pH was adjusted to 6.5±0.05 using either hydrochloric acid or sodium hydroxide.
[0425] After pulling the acid-resistant sample, the capsule was removed from the solution with tweezers and set aside while the container was emptied, washed, and filled with 900 mL of pre-warmed buffer.
[0426] After all vessels had reached the target temperature, the experiment was initiated by adding a capsule to each vessel.
[0427] Changes in procedure at Budenofalk If the capsule broke during the acid stage, a different procedure was used: the majority of the acid phase was carefully decanted, then the remaining acid was carefully removed with a pipette to remove as little pellet as possible from the vessel. The buffer stage was initiated by adding 900 mL of pre-heated buffer medium.
[0428] Sampling at both stages 10 mL was aspirated, 8 mL was discarded (through a Whatman filter) and 1 mL was sampled into an HPLC vial.
[0429] Budesonide release, USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0430] Example 21: In vitro USP in the absence of added surfactant Tween 80 <711> / Dissolution Profile Analysis of Budesonide Capsules According to Pharmacopoeia Test No. 2.9.3 Enteric coated capsules filled with hardened beads prepared as described in Example 1 above ("budesonide capsules") were tested under the dissolution conditions outlined in Example 20.
[0431] The overall average dissolution profile of the budesonide capsule can be seen in Figure 22, which also includes the dissolution profiles of three other budesonide-containing formulations under the same test as comparative examples. From this figure, it can be clearly seen that in the FaSSIF medium, which mimics the environment in the small intestine, the budesonide capsule has a release profile that distinguishes it from all other commercially available budesonide-containing formulations.
[0432] For Budesonide Capsules and Cortiment, no budesonide release was observed in the acid resistance phase at the 2 hour sampling time point. For Entocort, budesonide release up to 0.8% was observed, and for Budenofalk, budesonide release up to 0.6% was observed in the acid resistance phase at the 2 hour sampling time point.
[0433] Quantitative results of budesonide dissolution in various media at 2 hours at pH 1.2 and at 15, 30, 45, 60, 90, 120, and 180 minutes in the buffer step at pH 6.5 for both the budesonide capsules and three comparative formulations are shown in the table below. [Table 29]
[0434] Budesonide release, USP <711> The evaluation was based on the acceptance criteria of Ph.Eur.2.9.3.
[0435] The following table shows f2 values for comparing budesonide capsules according to the present invention with each of the other commercially available products tested in this manner. An f2 value of 50 or greater is required to clearly demonstrate similarity in profile (FDA SUPAC Guidance 1995, 1997). [Table 30]
[0436] It is clear that the release profiles of budesonide are significantly different among the four commercial products. None of the f2 comparisons between Nefecon and the other products show similarity, and f2 values of 50 or greater are required to clearly show similarity. Indeed, based on the f2 evaluation as well as visual inspection of the graphical profiles, the release profiles must be considered as strongly different.
[0437] Example 22: First tablet formulation The tablets are manufactured by the following process steps: 1. Wet granulation. Budesonide, mannitol, hydroxyethyl cellulose, hydroxypropyl cellulose, and sodium starch glycolate are blended. Then, an ethanol-water mixture is sprayed onto the powders while blending. The resulting granules are then dried. 2. Final Blending: The dried granules are blended with the sodium stearyl fumarate. 3. Tabletting: Tablets are compressed using a tablet press. 4. Enteric Coating: Methacrylic acid and methyl methacrylate copolymer, talc and dibutyl sebacate are dispersed in an isopropyl alcohol-water mixture during mixing. The coating dispersion is then sprayed onto the tablets using a fluid bed apparatus.
[0438] An example of a tablet composition according to the present invention is shown in the table below. [Table 31]
[0439] Example 23: Second tablet formulation The tablets are manufactured by the following process steps: 1. Wet granulation. First, budesonide is blended with colloidal silica. Then, microcrystalline cellulose and calcium phosphate dibasic are added, followed by additional blending. Then, a solution of hydroxypropyl cellulose in an ethanol-water mixture is sprayed onto the powder during blending. The resulting granules are then dried. 2. Blending: The dried granules are blended with microcrystalline cellulose, sodium starch glycolate, and copovidone. As a final blending step, magnesium stearate is added to the blend followed by final blending. 3. Tabletting: Tablets are compressed using a tablet press. 4. Enteric Coating: Methacrylic acid and methyl methacrylate copolymer, talc and dibutyl sebacate are dispersed in an isopropyl alcohol-water mixture while mixing. The coating dispersion is then sprayed onto the tablets using a pan coater.
[0440] An example of a tablet composition according to the present invention is shown in the table below. [Table 32]
[0441] Example 24: Third tablet formulation [Table 33]
[0442] Manufacturing of uncoated tablets (200g batch size) 1. All excipients except budesonide and sodium stearyl fumarate were blended in a Turbula mixer (blending at 46 rpm for 75 minutes). 2. During blending, the powder blend was granulated by spraying water onto the powder. The amount of water sprayed was 15% of the weight of the dry powder. 3. The granules were dried at 50°C overnight. 4. The dried granules were mixed with Sodium Stearyl Fumarate (lubricant) using a Turbula mixer at 46 rpm for 10 minutes. 5. Tablets were compressed to a plain tablet weight of 100 mg.
[0443] Preparation of coating dispersion Coating dispersions were prepared with the compositions shown in the table below: The dispersions were prepared according to the following steps: 1. A dilute mixture was prepared by blending isopropyl alcohol, water, and dibutyl sebacate in a container (Container A). 2. A Eudragit suspension was prepared by transferring approximately half of the diluted mixture (in Container A) to another container (Container B). Eudragit L100 and Eudragit S100 were then slowly added to Container B while mixing. The Eudragit suspension in Container B was then mixed for an additional 30-60 minutes. 3. While mixing with the high shear mixer, the talc was slowly added to the remaining diluted mixture in container A. The talc suspension was then mixed with the high shear mixer for an additional 10 minutes. 4. The talc suspension from container A was then slowly poured into the Eudragit suspension (container B) while mixing. 5. The mixture in vessel B was then stirred at room temperature for 24 hours. 6. The mixture was passed through a 0.5 mm sieve. 7. The final coating dispersion was then stored at room temperature with continuous stirring until and during coating. [Table 34]
[0444] Tablet Coating (50g batch size) Tablets were coated using a 12 cm diameter stainless steel pan coater and a standard spray nozzle. Coating weight gain was determined by weighing tablet samples after different coating periods. The following spray parameters were used: Coating pan rotation speed: 20~30rpm Product temperature: 24~27℃. Pump flow rate: 250-260μl / min Spray nozzle air pressure: 0.25bar
[0445] In vitro dissolution of tablets The in vitro dissolution profiles of the tablets were determined according to the protocol outlined in Example 6 above (USP 1000 at a paddle rotation speed of 100 rpm in the absence of surfactant at the phosphate buffer stage). <711> / Ph.Eur.2.9.3) and the protocol outlined in Example 20 above (USP 1000 in FaSSIF buffer at 100 rpm in the absence of added surfactant Tween 80). <711> The samples were analyzed according to the General Process for Standard In Vitro Dissolution Testing in Accordance with the US Pat. No. 6,399,411 and US Pat. No. 6,399,411. / Ph.Eur.2.9.3). The dissolution values at specific time points can be seen below. [Table 35]
[0446] The budesonide release from these tablets is consistent with the dissolution profile required to achieve predominantly ileal release. It is particularly surprising that the combination of gelling agent (hypromellose) and disintegrant (crospovidone) allowed the correct in vitro dissolution profile to be achieved. However, it is expected that other tablet formulations will be able to achieve the desired release profile.
[0447] Example 25: In silico modeling of the release site of a budesonide capsule A physiologically based pharmacokinetic (PBPK) model of the capsule prepared in Example 1 ("budesonide capsule" or "nefecon budesonide") was performed using GastroPlus® software (Simulations Plus, CA; version 9.8.3002).
[0448] Following the protocol outlined in Example 2, the in vitro release of budesonide capsules with an acid phase (first 2 hours) followed by a buffer phase was uploaded into the PBPK software. An IVIVC (in vitro in vivo correlation) was obtained to correlate the PBPK model predictions with the measured pharmacokinetic results. The predicted Cmax was faster and higher than observed. However, budesonide is known to undergo gut wall metabolism in the small intestine (Seidegard Jet. al. Presystemic elimination of budesonide in man when administered locally at different levels in the gut, with and without local inhibition by ketoconazole. Eur J Pharm Sci. 2008 Nov15;35(4):264-70, Raje et al. Evaluation of separate role of intestine and liver in first pass metabolism of budesonide in rat Xenobiotica. 2018 Dec;48(12):1206-1214). After introducing gut wall metabolism into the PBPK model, a good fit of the data was achieved.
[0449] As can be seen in Figure 23(a), the IVIVC PBPK model confirmed that the budesonide capsule begins to release budesonide only when it reaches the ileum, with at least about 90% of the budesonide being released throughout the ileum, with a small remaining amount being released in the section of the intestine following the ileum (i.e., the cecum). Thus, this model confirms that a composition having an in vitro release profile defined by the present invention achieves release of the budesonide payload to the ileum, which is the site of the highest concentration of Peyer's patches in the intestinal tract, and therefore any composition that fits this release profile will be effective in treating IgA nephropathy.
[0450] The release of budesonide from Entocort® (Tillotts Pharma) was also modeled using GastroPlus® software, and the results showed that all of the budesonide was released before the formulation entered the ileal segment of the small intestine (see Figure 23(b)).
[0451] Example 26: In vivo release study of capsule contents A study was conducted to evaluate where and when a capsule coated with the same enteric coating as the capsule described in Example 1 would release its contents in the gastrointestinal tract.
[0452] In this study, VCaps plus size 1 HPMC capsules were filled with 75 mg caffeine, 10 mg black iron oxide, and 87.5 mg manganese gluconate dehydrate. 140.9 mg sugar beads (also called pellets) were added to replicate the total weight of the core in the capsule described in Example 1. The capsules were then coated with the same enteric coating using the same coating process and the same equipment and facilities as the capsules described in Example 1.
[0453] Caffeine was placed in the capsules to use as a marker to determine when the capsule contents were released by measuring the appearance of caffeine in saliva at various time points. Because caffeine is rapidly absorbed after release in the intestinal tract, the appearance of caffeine in saliva provides a sensitive marker of capsule opening (Sager et al. Low dose caffeine as a salivary tracer for the determination of gastric water emptying in fed and fasted state: A MRI validation study. Eur J Pharm Biopharm 127:443-452(2018)). Iron oxide was placed in the capsules, and magnetic resonance imaging (MRI) was used to visualize the iron oxide, allowing the location of the capsule as it traveled through the digestive tract to be identified.
[0454] The study was conducted at the University Clinic in Greifswald, Germany as an open-label, single-center study in 12 healthy young human subjects. Subjects had stopped consuming caffeine-containing foods and beverages for 3 days prior to study inclusion and had fasted overnight for at least 10 hours prior to the study.
[0455] Before each participant ingested the enteric-coated capsule with a glass of water, an MRI scan was performed and a saliva sample was obtained. MRI scans were then performed every 15 min for the first 4 h, and then every 30 min until the study was completed. Saliva samples were obtained 1 min after each MRI scan. MRI imaging was performed on a Siemens MAGNETOM Avanto MR scanner (Siemens Healthcare, Erlangen, Germany) with a field strength of 1.5 Tesla, and imaging data were analyzed using Horos2.2.0 (The Horos Project). All measurements were performed with subjects in supine position (lying on their backs, head up). Saliva samples were analyzed using an LCMS8060 system (Shimadzu, Kyoto, Japan) and appropriately prepared for this purpose.
[0456] Figure 24 shows MRI images of various locations within the gastrointestinal tract: at 15 and 90 minutes, the capsule is intact and located in the stomach and jejunum, respectively, and at 270 minutes, the capsule has released its contents and the iron oxide is dispersed in the ileum. The mean gastric emptying time of the capsules (the time the capsule left the stomach) was 58±30 minutes (the highest gastric emptying time observed was 112.5 minutes). These values are consistent with the normal gastric emptying time of large non-disintegrating dosage forms (Wilson et al. Chapter 3. Gastrointestinal Transit and Drug Absorption (pages 41-65) In “Oral Drug Absorption: Prediction and Assessment” J. Dressman and C. Reppas eds. - 2nd. Edition Drug and the Pharmaceutical Sciences Vol. 193 Marcel Dekker, NY, NY ISBN-13: 978-1-4200-7733-9 (2010)). None of the capsules showed disintegration in the stomach.
[0457] The first time point at which the measured concentration of caffeine in undiluted saliva was ≥ 10 ng / ml was considered "salivary caffeine appearance." As shown in the table below, the mean time to first appearance of caffeine in saliva was 238 minutes after capsule ingestion, with a standard deviation of 47 minutes, ranging from 158 to 345 minutes. After subtracting the individual's gastric emptying time from the time caffeine first appeared in saliva, the release time of caffeine after entering the small intestine was calculated as a mean of 181 ± 31 minutes (range 120 to 233 minutes). These values indicate that the opening of the enteric coated capsule and the release of caffeine were well within the normal small intestinal transit time (3.5 to 4.5 hours (210 to 270 minutes)) (Wilson et al. Chapter 3. Gastrointestinal Transit and Drug Absorption (pages 41 to 65) In “Oral Drug Absorption: Prediction and Assessment” J. Dressman and C. Reppas eds. - 2nd Edition Drug and the Pharmaceutical Sciences Vol. 193 Marcel Dekker, NY, NY ISBN-13: 978-1-4200-7733-9 (2010)).
[0458] The table below shows the individual and average results for gastric emptying time (determined by MRI), salivary caffeine appearance time, and salivary caffeine appearance time after gastric emptying. [Table 36]
[0459] Based on the time of first appearance of caffeine in saliva and the location of iron oxide in the corresponding MRI images, the enteric coated capsules were opened and released in the ileum in 11 of the 12 subjects. Thus, this study confirms that the enteric coating and capsules described in Example 1 consistently release the capsule contents into the ileum. The beads contained in Example 1 begin to release budesonide after the capsule is opened, with the majority of the release occurring within 1 hour. Comparing the average small intestinal transit time of the beads of 3.5 to 4.5 hours (Wilson et al. Chapter 3. Gastrointestinal Transit and Drug Absorption (pages 41-65) In “Oral Drug Absorption: Prediction and Assessment” J. Dressman and C. Reppas eds.-2nd. Edition Drug and the Pharmaceutical Sciences Vol. 193 Marcel Dekker, NY, NY ISBN-13: 978-1-4200-7733-9 (2010)), with the average time from the capsule reaching the small intestine to opening (181 minutes in this study), and further with the time required for the release of most of the budesonide from the beads (about 1 hour), it can be concluded that the majority of the budesonide is released from the beads into the distal ileum and thus targets the Peyer's patches located there.
Claims
1. Use of one or more pharmaceutical compositions containing budesonide in the manufacture of a medicament for the treatment of IgA nephropathy, comprising: (i) the budesonide is present in a sustained-release component, the sustained-release component comprising a pharmaceutically acceptable cured polymer blend of a water-insoluble polymer having a water solubility (25°C) of less than about 0.1 mg / mL and a pore-forming, water-soluble polymer having a water solubility (25°C) of at least about 10 mg / mL; (ii) the pharmaceutical composition further comprises an enteric coating; (iii) the use comprises oral administration in the morning at least one hour before the first meal of the day of a dose of about 16 mg of budesonide in the one or more pharmaceutical compositions; use.
2. The use according to claim 1, wherein the pharmaceutical composition satisfies the following release profile in the test using a dissolution apparatus according to the standard in vitro USP<711> / Ph. Eur. 2.9.3 dissolution test, apparatus 2 (paddle apparatus), at a paddle rotation speed of 100 rpm: (a) when the dissolution medium is aqueous and has a pH of about 1.2, about 10% or less of the budesonide is released into the dissolution medium within about 120 minutes; (b) within about 30 minutes, about 10% or less of said budesonide is released into a pharmaceutically relevant dissolution medium which is Level 1 fasted state simulated intestinal fluid at a pH of about 6.5 or phosphate buffer at a pH of about 6.
8. (c) at least about 70% of said budesonide is released into said pharmaceutically relevant dissolution medium within about 120 minutes;
3. The use described in claim 1 or 2, wherein the pharmaceutical composition is in the form of one or more capsules or tablets.
4. The use described in any one of claims 1 to 3, wherein the enteric coating is located on the outside of the pharmaceutical composition.
5. The use described in any one of claims 1 to 4, wherein the pharmaceutical composition is in the form of one or more capsules.
6. The use described in claim 5, wherein each of the one or more capsules comprises multiple cores containing budesonide, the cores being coated with the sustained-release pharmaceutically acceptable hardened polymer blend.
7. The use described in claim 6, wherein the sustained-release pharmaceutically acceptable hardened polymer blend is present in an amount of about 5 to about 18% by weight of the total coated core, such as about 6 to about 16% by weight of the total coated core, such as about 6 to about 12% by weight of the total coated core.
8. The use described in claim 6, wherein the enteric coating is applied onto the multiple cores.
9. The use described in claim 5, wherein the enteric coating is applied onto the one or more capsules.
10. The use described in claim 9, wherein the enteric coating is present in an amount of about 34 to about 46 mg per capsule, such as about 34 to about 42 mg per capsule, for example about 36 to about 40 mg per capsule.
11. The use described in any one of claims 5 to 10, wherein the one or more capsules are size 1 capsules.
12. The use of any one of claims 1 to 11, wherein the water-insoluble polymer is present in an amount of about 45% to about 90% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, and the water-soluble polymer is present in an amount of about 35% to about 5% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, e.g., the water-insoluble polymer is present in an amount of about 45% to about 65% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, and the water-soluble polymer is present in an amount of about 35% to about 15% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, e.g., the water-insoluble polymer is present in an amount of about 47% to about 55% by weight and the water-soluble polymer is present in an amount of about 32% to about 22% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend.
13. The use of any one of claims 1 to 11, wherein the sustained-release pharmaceutically acceptable cured polymer blend comprises the water-insoluble polymer in an amount of about 45% to about 65% by weight, for example about 47% to about 56% by weight.
14. The use described in any one of claims 1 to 11, wherein the sustained-release pharmaceutically acceptable hardened polymer blend comprises the water-soluble polymer in an amount of about 35% by weight to about 15% by weight, for example about 32% by weight to about 22% by weight.
15. The use of any one of claims 1 to 11, wherein the sustained-release pharmaceutically acceptable cured polymer blend comprises the water-insoluble polymer in an amount of about 45% to about 65% by weight and the water-soluble polymer in an amount of about 35% to about 15% by weight.
16. The use of any one of claims 1 to 11, wherein the sustained-release pharmaceutically acceptable hardened polymer blend comprises the water-insoluble polymer in an amount of about 47% to about 56% by weight and the pore-forming water-soluble polymer in an amount of about 32% to about 22% by weight.
17. The use described in any one of claims 1 to 16, wherein the water-insoluble polymer is an alkyl cellulose.
18. The use of claim 17, wherein the water-insoluble polymer is ethyl cellulose.
19. The use described in any one of claims 1 to 18, wherein the water-soluble polymer is selected from polyethylene glycol (PEG), hydroxypropyl methylcellulose (HPMC), and hydroxypropyl cellulose (HPC).
20. The use of claim 19, wherein the water-soluble polymer comprises hydroxypropyl methylcellulose (HPMC).
21. The use described in any one of claims 1 to 20, wherein each pharmaceutical composition contains approximately 4 mg of budesonide.
22. A pharmaceutical composition for use in the treatment of IgA nephropathy, comprising budesonide, (i) the budesonide is present in a sustained-release component, the sustained-release component comprising a pharmaceutically acceptable cured polymer blend of a water-insoluble polymer having a water solubility (25°C) of less than about 0.1 mg / mL and a pore-forming, water-soluble polymer having a water solubility (25°C) of at least about 10 mg / mL; (ii) the pharmaceutical composition further comprises an enteric coating; (iii) the use comprises oral administration in the morning at least one hour before the first meal of the day of a dose of about 16 mg of budesonide in the one or more pharmaceutical compositions; Pharmaceutical compositions.
23. The pharmaceutical composition for use according to claim 22, wherein the pharmaceutical composition satisfies the following release profile in the test using a dissolution apparatus according to the standard in vitro USP <711> / Ph. Eur. 2.9.3 dissolution test, apparatus 2 (paddle apparatus), at a paddle rotation speed of 100 rpm: (a) when the dissolution medium is aqueous and has a pH of about 1.2, about 10% or less of the budesonide is released into the dissolution medium within about 120 minutes; (b) within about 30 minutes, about 10% or less of said budesonide is released into a pharmaceutically relevant dissolution medium which is Level 1 fasted state simulated intestinal fluid at a pH of about 6.5 or phosphate buffer at a pH of about 6.
8. (c) at least about 70% of said budesonide is released into said pharmaceutically relevant dissolution medium within about 120 minutes; 24. A pharmaceutical composition for use according to claim 22 or 23, wherein the pharmaceutical composition is in the form of one or more capsules or tablets.
25. A pharmaceutical composition for use according to any one of claims 22 to 24, wherein the enteric coating is located on the outside of the pharmaceutical composition.
26. A pharmaceutical composition for use according to any one of claims 22 to 25, wherein the pharmaceutical composition is in the form of one or more capsules.
27. The pharmaceutical composition for use according to claim 26, wherein each of the one or more capsules comprises a plurality of cores containing budesonide, the cores being coated with the sustained-release pharmaceutically acceptable hardened polymer blend.
28. A pharmaceutical composition for use according to claim 27, wherein the sustained-release pharmaceutically acceptable hardened polymer blend is present in an amount of about 5 to about 18% by weight of the total coated core, such as about 6 to about 16% by weight of the total coated core, for example about 6 to about 12% by weight of the total coated core.
29. The pharmaceutical composition for use according to claim 27, wherein the enteric coating is applied onto the plurality of cores.
30. The pharmaceutical composition for use according to claim 26, wherein the enteric coating is applied onto the one or more capsules.
31. The pharmaceutical composition for use according to claim 30, wherein the enteric coating is present in an amount of about 34 to about 46 mg per capsule, such as about 34 to about 42 mg per capsule, for example about 36 to about 40 mg per capsule.
32. A pharmaceutical composition for use according to any one of claims 26 to 31, wherein the one or more capsules are size 1 capsules.
33. A pharmaceutical composition for use according to any one of claims 23 to 32, wherein the water-insoluble polymer is present in an amount of about 45% to about 90% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, and the water-soluble polymer is present in an amount of about 35% to about 5% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, for example, the water-insoluble polymer is present in an amount of about 45% to about 65% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, and the water-soluble polymer is present in an amount of about 35% to about 15% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend, for example, the water-insoluble polymer is present in an amount of about 47% to about 55% by weight and the water-soluble polymer is present in an amount of about 32% to about 22% by weight of the total sustained-release pharmaceutically acceptable cured polymer blend.
34. A pharmaceutical composition for use according to any one of claims 23 to 33, wherein the sustained-release pharmaceutically acceptable hardened polymer blend comprises the water-insoluble polymer in an amount of about 45% to about 65% by weight, for example about 47% to about 56% by weight.
35. A pharmaceutical composition for use according to any one of claims 23 to 33, wherein the sustained-release pharmaceutically acceptable hardened polymer blend comprises the water-soluble polymer in an amount of about 35% to about 15% by weight, for example about 32% to about 22% by weight.
36. A pharmaceutical composition for use according to any one of claims 23 to 33, wherein the sustained-release pharmaceutically acceptable hardened polymer blend comprises the water-insoluble polymer in an amount of about 45% to about 65% by weight and the water-soluble polymer in an amount of about 35% to about 15% by weight.
37. A pharmaceutical composition for use according to any one of claims 23 to 33, wherein the sustained-release pharmaceutically acceptable hardened polymer blend comprises the water-insoluble polymer in an amount of about 47% to about 56% by weight and the pore-forming water-soluble polymer in an amount of about 32% to about 22% by weight.
38. A pharmaceutical composition for use according to any one of claims 23 to 37, wherein the water-insoluble polymer is an alkylcellulose.
39. The pharmaceutical composition for use according to claim 38, wherein the water-insoluble polymer is ethyl cellulose.
40. The pharmaceutical composition for use according to any one of claims 23 to 39, wherein the water-soluble polymer is selected from polyethylene glycol (PEG), hydroxypropyl methylcellulose (HPMC), and hydroxypropyl cellulose (HPC).
41. The pharmaceutical composition for use according to claim 40, wherein the water-soluble polymer comprises hydroxypropyl methylcellulose (HPMC).
42. A pharmaceutical composition for use according to any one of claims 23 to 41, wherein each pharmaceutical composition contains approximately 4 mg of budesonide.