Method of improving pharmacokinetics of migalastat
Administering migalastat without caffeine improves its pharmacokinetics, addressing the limitations of existing Fabry disease therapies by enhancing enzyme stability and reducing substrate accumulation in organs, thus improving treatment efficacy.
Patent Information
- Application Number
- JP2025169972
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-05-11
- Filing Date
- 2025-10-08
- Publication Date
- 2026-02-24
AI Technical Summary
Current therapies for Fabry disease, such as enzyme replacement therapy (ERT) face challenges including rapid degradation of the injected protein, high dosing requirements, immune responses, and limited efficacy in crossing the blood-brain barrier, while small molecule inhibitors and pharmacological chaperones like migalastat have limitations in improving pharmacokinetics and substrate accumulation in organs.
Administering migalastat orally with a specific time interval free from caffeine consumption to enhance its pharmacokinetics, thereby improving its effectiveness in treating Fabry disease.
This approach reduces the area under the curve (AUC) and maximum plasma concentration (Cmax) of migalastat by approximately 57% and 60%, respectively, enhancing its therapeutic efficacy in treating Fabry disease by improving enzyme stability and reducing substrate accumulation in organs.
Smart Images

Figure 00000061_0000 
Figure 00000061_0001 
Figure 00000061_0002
Abstract
Description
[Technical Field]
[0001] Principles and embodiments of the present invention generally relate to methods for improving the pharmacokinetics of migalastat. [Background technology]
[0002] Many human diseases result from mutations that cause changes in the amino acid sequence of proteins, reducing their stability and preventing their proper folding. Proteins generally fold within a specific region of the cell known as the endoplasmic reticulum, or ER. Cells have quality control mechanisms that ensure proteins fold into their correct three-dimensional shape and then move from the ER to their appropriate destination within the cell, a process generally referred to as protein trafficking. Misfolded proteins are often initially retained in the ER and then eliminated by the quality control mechanisms. In some cases, misfolded proteins can accumulate in the ER before being eliminated. Retention of misfolded proteins in the ER can interfere with their proper trafficking, resulting in reduced biological activity and impairing cellular function, ultimately leading to disease. In addition, accumulation of misfolded proteins in the ER can cause various stresses on the cell, which can also contribute to cellular dysfunction and disease.
[0003] Such mutations can lead to lysosomal storage disorders (LSDs), characterized by lysosomal enzyme deficiencies due to mutations in genes encoding the lysosomal enzymes. The resulting disease causes pathological accumulation of the enzyme's substrates, including lipids, carbohydrates, and polysaccharides. While many different mutational genotypes exist associated with each LSD, many of these mutations are missense mutations that can lead to the production of less stable enzymes. These less stable enzymes are sometimes prematurely degraded by ER-associated degradation pathways, resulting in enzyme deficiencies in lysosomes and pathological accumulation of substrates. Such mutant enzymes are sometimes referred to in the art as "folding mutants" or "conformational mutants."
[0004] Fabry disease, an LSD, is a progressive, X-linked congenital abnormality of glycosphingolipid metabolism caused by deficiency of the lysosomal enzyme α-galactosidase A (α-Gal A) as a result of mutations in the α-Gal A gene (GLA). Despite being an X-linked disorder, females can develop clinical symptoms to varying degrees.
[0005] Fabry disease is classified into three groups based on clinical symptoms: the classic form with systemic vasculopathy, an atypical variant form with clinical symptoms limited to cardiac tissue, and late-onset disease, which includes female carriers with mild to severe forms of the disease. Clinical symptoms include angiokeratoma (small, raised, reddish-purple spots on the skin), acrotactile dysesthesias (tingling of the hands and feet), hypohidrosis (reduced ability to sweat), and characteristic corneal and lens opacities (Non-Patent Document 1).
[0006] Fabry is a rare disorder with an estimated incidence of between 1 in 40,000 and 1 in 117,000 males in the general population. Furthermore, there are late-onset phenotypic variants of Fabry disease that may be underdiagnosed because they do not present with classic signs and symptoms. This screening of newborns for Fabry disease suggests that the actual incidence of Fabry disease may be higher than currently estimated.
[0007] Untreated, Fabry patients have a reduced life expectancy, and death usually occurs in their 30s or 40s due to vascular disease affecting the kidneys, heart, and / or central nervous system. The enzyme deficiency causes intracellular accumulation of the substrate globotriaosylceramide (GL-3) in vascular endothelium and visceral tissues throughout the body. The heart may become enlarged, and the kidneys may become progressively damaged. Gradual deterioration of renal function and the development of azotemia due to glycosphingolipid deposition usually occurs in the second to fourth decades of life, but can occur as early as the first decade of life. Renal involvement is found in both hemizygous (males) and heterozygous (females) patients. Affected males have a reduced life expectancy, and death usually occurs in their 30s or 40s due to vascular disease of the heart, brain, and / or kidneys. Other symptoms include fever, especially after meals, and gastrointestinal distress.
[0008] Cardiac disease as a result of Fabry disease occurs in most men and many women. Early cardiac findings include left ventricular hypertrophy, valvular disease, and conduction abnormalities. Mitral regurgitation is the most frequent valvular lesion, typically presenting in childhood or adolescence. Cerebrovascular symptoms are primarily due to multifocal small-vessel disease and may include thrombosis, transient ischemic attacks, basilar artery ischemia and aneurysms, seizures, hemiplegia, hemisensory loss, aphasia, labyrinthine disorders, or cerebral hemorrhage. The mean age at onset of cerebrovascular symptoms is 33.8 years. Personality changes and psychotic behavior may emerge with age.
[0009] Individuals with late-onset Fabry disease can be male or female. Late-onset Fabry disease manifests as atypical variants, and growing evidence indicates that there may be a significant number of unexplained "atypical variants" worldwide. Females who inherit an X chromosome containing an a-GAL mutation may develop symptoms later in life, significantly increasing the prevalence of the disease. These patients typically first experience symptoms in adulthood and often have symptoms localized to a single organ. For example, many men and women with late-onset Fabry disease have left ventricular hypertrophy. Late-onset Fabry disease may also manifest as strokes of unknown etiology. As patients age, cardiac complications of the disease progress and can cause death.
[0010] Patients with the milder "cardiac variant" of Fabry disease usually have 5-15% of normal a-Gal activity and present with left ventricular hypertrophy or cardiomyopathy. These cardiac variant patients remain essentially asymptomatic while their classically affected counterparts are severely impaired. Cardiac variants have been found in 11% of adult male patients with unexplained left ventricular hypertrophic cardiomyopathy, suggesting that Fabry disease may be more common than previously appreciated (Non-Patent Document 2).
[0011] Several approaches to treating Fabry disease exist. One approved therapy for Fabry disease is enzyme replacement therapy (ERT), which typically involves intravenous infusion of a purified form of the corresponding wild-type protein (Fabrazyme®, Genzyme Corp.). However, ERT has several drawbacks. One of the major complications of enzyme replacement therapy is the rapid degradation of the injected protein, which leads to the need for multiple, expensive, high-dose infusions. ERT also has several caveats, including the difficulty of large-scale production, purification, and storage of properly folded protein; the availability of glycosylated native protein; the development of anti-protein immune responses; and the inability of the protein to cross the blood-brain barrier and alleviate central nervous system pathology (i.e., low bioavailability). In addition, the replacement enzyme cannot penetrate the heart or kidney in sufficient quantities to reduce substrate accumulation in renal podocytes or cardiomyocytes, which are prominent in Fabry disease.
[0012] Additionally, ERT typically involves intravenous infusion of a purified form of the corresponding wild-type protein. Two α-Gal A preparations are currently available for the treatment of Fabry disease: agalsidase alfa (Replagal®, Shire Human Genetic Therapies) and agalsidase beta (Fabrazyme®; Sanofi Genzyme Corporation). While ERT is effective in many situations, this treatment also has limitations. ERT has not been demonstrated to reduce the risk of stroke, the heart muscle responds slowly, and clearance of GL-3 from some kidney cell types is limited. Also, some patients develop an immune response to ERT.
[0013] Another therapeutic approach for certain enzyme deficiencies involves the use of small molecule inhibitors to reduce production of the defective enzyme protein's natural substrate, thereby alleviating the pathology. This "substrate inhibition" approach has been described for a class of approximately 40 related enzyme disorders called lysosomal storage disorders, including glycosphingolipid storage disorders in particular. The small molecule inhibitors proposed for use as therapy are specific for inhibiting enzymes involved in glycolipid synthesis, reducing the amount of cellular glycolipid that needs to be degraded by the defective enzyme.
[0014] A third approach to treating Fabry disease is treatment with so-called pharmacological chaperones (PCs). Such PCs include small molecule inhibitors of α-Gal A, which can bind to α-Gal A and increase the stability of both the mutant enzyme and its wild-type counterpart. One such PC against α-Gal A is migalastat. [Prior art documents] [Patent documents]
[0015] [Patent Document 1] US Patent Application Publication No. 2010 / 0113517 [Patent Document 2] U.S. Patent No. 8,592,362 [Patent Document 3] U.S. Patent No. 8,592,362 [Patent Document 4] U.S. Patent No. 6,274,597 [Patent Document 5] U.S. Patent No. 6,583,158 [Patent Document 6] U.S. Patent No. 6,589,964 [Patent Document 7] U.S. Patent No. 6,599,919 [Patent Document 8] U.S. Patent No. 6,916,829 [Patent Document 9] U.S. Patent No. 7,141,582 [Non-patent literature]
[0016] [Non-Patent Document 1] The Metabolic and Molecular Bases of Inherited Disease, 8th Edition 2001, Scriver et al., ed., pp. 3733-3774, McGraw-Hill, New York. [Non-patent document 2] Nakao et al.,N.Engl.J.Med.1995;333:288-293 [Non-patent document 3] www.galafoldamenabilitytable.com [Non-patent document 4] www.fabrygenevariantsearch.com [Non-Patent Document 5] “Remington's Pharmaceutical Sciences” by EWMartin,18th Edition [Non-patent document 6] Ishii et al.,Biochem.Biophys.Res.Comm.1996;220:812-815 [Non-Patent Document 7] Hamler, Rick, et al. “Accurate quantitation of plasma globotriaosylsphingosine(lyso-Gb3) in normal individuals and Fabry disease patients by liquid chromatography-tandem mass spectrometry(LC-MS / MS).”Molecular Genetics and Metabolism,Volume 114.2(2015):S51 Summary of the Invention [Problem to be solved by the invention]
[0017] Thus, there remains a need for therapies to treat Fabry disease. [Means for solving the problem]
[0018] Various aspects of the present invention relate to methods for improving the pharmacokinetics of migalastat.
[0019] One aspect of the invention relates to a method of administering migalastat to a patient, comprising orally administering to the patient a formulation comprising a therapeutically effective dose of migalastat or a salt thereof, wherein the patient does not consume caffeine within a specific time interval following administration of the formulation comprising migalastat or a salt thereof. In various embodiments, this time interval comprises abstaining from caffeine for at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours before administering the migalastat or a salt thereof, and for at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours after administering the migalastat or a salt thereof.
[0020] In some embodiments, the patient does not consume caffeine within a time interval of at least 1 hour before and at least 1 hour after administering migalastat or a salt thereof, i.e., the patient does not consume caffeine within about 1 hour of administering the formulation comprising migalastat or a salt thereof.
[0021] In some embodiments, the patient does not consume caffeine within a time interval of at least 2 hours before and at least 1 hour after administration of migalastat or a salt thereof.
[0022] In some embodiments, the patient does not consume caffeine within a time interval of at least 2 hours before and at least 2 hours after administration of migalastat or a salt thereof, i.e., the patient does not consume caffeine within about 2 hours of administration of the formulation comprising migalastat or a salt thereof.
[0023] In some embodiments, the patient does not consume caffeine within a time interval of at least 3 hours before and at least 2 hours after administration of migalastat or a salt thereof.
[0024] In some embodiments, the patient does not consume caffeine within a time interval of at least 3 hours before and at least 3 hours after administration of migalastat or a salt thereof, i.e., the patient does not consume caffeine within about 3 hours of administration of the formulation comprising migalastat or a salt thereof.
[0025] In some embodiments, the patient consumes caffeine outside of the time interval for abstaining from caffeine. For example, if the time interval for abstaining from caffeine is at least 2 hours before and at least 2 hours after administering migalastat or a salt thereof, in some embodiments, the patient consumes caffeine at least 2 hours before and / or at least 2 hours after administering migalastat or a salt thereof. In various embodiments, the patient consumes caffeine at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours before administering migalastat or a salt thereof. In various embodiments, the patient consumes caffeine at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours after administering migalastat or a salt thereof.
[0026] In some embodiments, not consuming caffeine within a specific time interval of administering a formulation comprising migalastat or a salt thereof may be associated with a decreased area under the curve (AUC) and / or maximum plasma concentration (C max In some embodiments, a patient can improve the pharmacokinetics of migalastat, such as by avoiding a decrease in the AUC and C of migalastat, by not consuming caffeine within 2 hours of administration of a formulation containing migalastat or a salt thereof. maxApproximately 57% and 60% reductions, respectively, are avoided.
[0027] In some embodiments, the patient fasts during the time interval to abstain from caffeine, hi some embodiments, the patient does not consume food for at least 2 hours before and at least 2 hours after administering migalastat or a salt thereof, and the patient does not consume caffeine for at least 2 hours before and at least 2 hours after administering migalastat or a salt thereof.
[0028] In some embodiments, the patient fasts for a time interval that is different from the time interval for abstaining from caffeine.
[0029] In some embodiments, the therapeutically effective dose of migalastat or a salt thereof is in the range of about 100 mg to about 150 mg every other day.
[0030] In some embodiments, the therapeutically effective dose of migalastat or a salt thereof is about 123 mg free base equivalent (FBE) every other day.
[0031] In some embodiments, the therapeutically effective dose of migalastat or a salt thereof is about 150 mg of migalastat hydrochloride every other day.
[0032] In one or more embodiments, the formulation comprises an oral dosage form, hi some embodiments, the oral dosage form comprises a tablet, capsule, or solution.
[0033] Another aspect of the present invention is a method for treating Fabry disease in a human patient in need thereof, comprising orally administering to the patient a formulation comprising a therapeutically effective dose of migalastat or a salt thereof, wherein the patient does not consume caffeine within a specific time interval during which the formulation comprising migalastat or a salt thereof is administered. This method of treatment may have any of the features described herein for methods of administering migalastat.
[0034] In one or more embodiments, the patient has a HEK assay-applicable mutation in α-galactosidase A. In one or more embodiments, the mutation is disclosed in a pharmacological reference table. In one or more embodiments, the pharmacological reference table is provided in the package insert for the migalastat product approved for the treatment of Fabry disease. In one or more embodiments, the pharmacological reference table is provided in the GALAFOLD® package insert. In one or more embodiments, the pharmacological reference table is provided on a website. In one or more embodiments, the website is one or more of (NPL 3) or (NPL 4).
[0035] Further features of the present invention will become apparent from the following written description and accompanying drawings. [Brief explanation of the drawings]
[0036] [Figure 1A] The complete DNA sequence of the human wild-type GLA gene (SEQ ID NO: 1) is shown. [Figure 1B] The complete DNA sequence of the human wild-type GLA gene (SEQ ID NO: 1) is shown. [Figure 1C] The complete DNA sequence of the human wild-type GLA gene (SEQ ID NO: 1) is shown. [Figure 1D] The complete DNA sequence of the human wild-type GLA gene (SEQ ID NO: 1) is shown. [Figure 1E] The complete DNA sequence of the human wild-type GLA gene (SEQ ID NO: 1) is shown. [Figure 2] The wild-type α-Gal A protein (SEQ ID NO: 2) is shown. [Figure 3] The nucleic acid sequence encoding the wild-type α-Gal A protein (SEQ ID NO:3) is shown. [Figure 4] 1 shows a study schematic for a study investigating the effect of caffeine and sweeteners on migalastat pharmacokinetics. [Figure 5] 1 shows the concentration-time profile of migalastat when administered with caffeine and various sweeteners. DETAILED DESCRIPTION OF THE INVENTION
[0037] Before describing several exemplary embodiments of the invention, it is to be understood that the invention is not limited to the details of construction or method steps set forth in the following description. The invention is capable of other embodiments and of being practiced or carried out in various ways.
[0038] Various aspects of the present invention relate to the administration of migalastat, for example, to treat Fabry disease. Surprisingly, it has been discovered that co-administration of caffeine and migalastat has a negative effect on the pharmacokinetics of migalastat, regardless of the food effect on the pharmacokinetics of migalastat. Therefore, various embodiments of the present invention relate to the administration of migalastat or a salt thereof without the co-administration of caffeine, i.e., the patient does not consume caffeine within a specific time interval during which migalastat or a salt thereof is administered.
[0039] definition The terms used herein generally have their ordinary meaning in the art, within the context of this invention and in the specific context in which each term is used. Certain terms are discussed below or elsewhere in this specification to provide further guidance to the practitioner in describing the compositions and methods of the invention and how to make and use them.
[0040] As used herein, the phrase "patient does not consume caffeine" and similar terms refer to a patient who does not consume (e.g., does not eat or drink) foods, beverages, or other products containing caffeine. In some embodiments, a food, beverage, or product is considered to contain caffeine if it contains more than a certain amount of caffeine, e.g., more than 1 mg, 2 mg, 5 mg, or 10 mg. In some embodiments, examples of caffeine-containing beverages include coffee, espresso, tea, caffeine energy drinks, and caffeine soda.
[0041] The term "Fabry disease" refers to an X-linked congenital abnormality of glycosphingolipid catabolism resulting from deficient lysosomal α-Gal A activity. This defect leads to the accumulation of the substrate globotriaosylceramide ("GL-3," also known as Gb3 or ceramide trihexoside) and related glycosphingolipids in vascular endothelial lysosomes in the heart, kidney, skin, and other tissues. Another substrate for this enzyme is plasma globotriaosylsphingosine ("plasma lyso-Gb3").
[0042] The term "atypical Fabry disease" refers to patients who have primarily the cardiac manifestations of α-Gal A deficiency, i.e., progressive GL-3 accumulation within cardiomyocytes that causes significant hypertrophy of the heart, particularly the left ventricle.
[0043] A "carrier" is a female in whom one X chromosome contains a defective α-Gal A gene and one X chromosome contains a normal gene, and in which there is X chromosome inactivation of the normal allele in one or more cell types. Carriers are often diagnosed with Fabry disease.
[0044] "Patient" refers to a subject who has been diagnosed with or is suspected of having a particular disease. The patient may be a human or an animal.
[0045] "Fabry patient" refers to an individual with mutant α-Gal A, as further defined below, who has been diagnosed with or is suspected of having Fabry disease. The hallmark markers for Fabry disease can occur with equal prevalence in hemizygous male and female carriers, although females are typically affected with less severe disease.
[0046] Human α-galactosidase A (α-Gal A) refers to the enzyme encoded by the human GLA gene. The complete DNA sequence of α-Gal A, including introns and exons, is available under GenBank accession number X14448.1 and is shown in Figures 1A-E (SEQ ID NO: 1). The human α-Gal A enzyme consists of 429 amino acids and is available under GenBank accession numbers X14448.1 and U78027.1, and is shown in Figure 2 (SEQ ID NO: 2). The nucleic acid sequence containing only the coding region (i.e., exons) of SEQ ID NO: 1 is shown in Figure 3 (SEQ ID NO: 3).
[0047] The term "mutant protein" includes proteins that have a mutation in the gene encoding the protein that prevents the protein from achieving a stable conformation under conditions normally present in the endoplasmic reticulum (ER). Failure to achieve a stable conformation results in significant amounts of the enzyme not being transported to lysosomes but rather being degraded. Such mutations are sometimes referred to as "conformational mutants." Such mutations include, but are not limited to, missense mutations and small in-frame deletions and insertions.
[0048] As used herein in one embodiment, the term "mutant α-Gal A" includes α-Gal A with a mutation in the gene encoding α-Gal A that prevents the enzyme from achieving a stable conformation under conditions normally present in the ER. The inability to achieve a stable conformation results in significant amounts of the enzyme not being transported to lysosomes but rather being degraded.
[0049] As used herein, the term "pharmacological chaperone" ("PC") or "specific pharmacological chaperone" ("SPC") refers to any molecule, including small molecules, proteins, peptides, nucleic acids, carbohydrates, etc., that specifically binds to a protein and has one or more of the following effects: (i) promoting the formation of a stable molecular conformation of the protein; (ii) directing trafficking of the protein from the ER to another cellular site, preferably its native cellular site, i.e., preventing ER-associated degradation of the protein; (iii) preventing aggregation of misfolded proteins; and / or (iv) restoring or enhancing at least some wild-type function and / or activity to a protein. For example, a compound that specifically binds to α-Gal A means that it binds to and exerts a chaperone effect on that enzyme and not on a general group of related or unrelated enzymes. More specifically, the term does not refer to endogenous chaperones such as BiP, or nonspecific agents, i.e., chemical chaperones, that demonstrate nonspecific chaperone activity for various proteins, such as glycerol, DMSO, or heavy water. In one or more embodiments of the present invention, the PC may be a reversible competitive inhibitor. In one or more embodiments, the PC is migalastat or a salt thereof. In another embodiment, the PC is migalastat free base (e.g., 123 mg of migalastat free base). In yet another embodiment, the PC is a salt of migalastat (e.g., 150 mg of migalastat HCl).
[0050] A "competitive inhibitor" of an enzyme can refer to a compound that is structurally similar to the chemical and molecular structure of the enzyme substrate and binds to the enzyme at approximately the same location as the substrate. Thus, the inhibitor competes for the same active site as the substrate molecule, thus increasing the Km. Competitive inhibition is usually reversible if enough substrate molecules are available to displace the inhibitor; i.e., competitive inhibitors can bind reversibly. Therefore, the amount of enzyme inhibition depends on the inhibitor concentration, the substrate concentration, and the relative affinities of the inhibitor and substrate for the active site.
[0051] As used herein, the term "specifically binds" refers to the interaction of a pharmacological chaperone with a protein, such as α-Gal A, specifically with amino acid residues in the protein that are directly involved in contact with the pharmacological chaperone. A pharmacological chaperone specifically binds to a target protein, e.g., α-Gal A, and exerts a chaperone effect on that protein, rather than on a general group of related or unrelated proteins. The amino acid residues in a protein that interact with a given pharmacological chaperone may or may not be within the "active site" of the protein. Specific binding can be assessed by routine binding assays or by structural studies, e.g., cocrystallization, NMR, etc. The active site of α-Gal A is the substrate-binding site.
[0052] "Deficient α-Gal A activity" refers to α-Gal A activity in cells from a patient that is below the normal range when compared (using the same method) with the activity of normal individuals who do not have or are not suspected of having Fabry disease or any other disease (particularly a hematological disorder).
[0053] As used herein, the terms "enhancing α-Gal A activity" or "increasing α-Gal A activity" refer to increasing the amount of α-Gal A in a stable conformation in cells contacted with an α-Gal A-specific pharmacological chaperone compared to the amount in cells (preferably of the same cell type, or the same cells, e.g., at an earlier stage) that have not been contacted with the α-Gal A-specific pharmacological chaperone. The terms also refer to increasing α-Gal A trafficking to lysosomes in cells contacted with an α-Gal A-specific pharmacological chaperone compared to trafficking of α-Gal A not contacted with a pharmacological chaperone specific for that protein. These terms refer to both wild-type and mutant α-Gal A. In one embodiment, the increase in α-Gal A amount in cells is measured by measuring the hydrolysis of an artificial substrate in lysates from cells treated with PC. Increased hydrolysis is an indication of increased α-Gal A activity.
[0054] The term "α-Gal A activity" refers to the normal physiological function of wild-type α-Gal A in a cell. For example, α-Gal A activity includes the hydrolysis of GL-3.
[0055] A "responder" is an individual diagnosed with or suspected of having a lysosomal storage disorder (LSD), e.g., Fabry disease, whose cells respond to contact with PC by exhibiting a sufficient increase in α-Gal A activity and / or alleviation of symptoms or enhancement of a surrogate marker, respectively. Non-limiting examples of enhanced Fabry surrogate markers include lyso-GB3 and those disclosed in U.S. Patent No. 6,223,999, hereby incorporated by reference in their entireties.
[0056] Non-limiting examples of improvements in surrogate markers of Fabry disease disclosed in (Patent Document 1) include increased α-Gal A levels or activity in cells (e.g., fibroblasts) and tissues; decreased GL-3 accumulation; decreased plasma concentrations of homocysteine and vascular cell adhesion molecule-1 (VCAM-1); decreased GL-3 accumulation in cardiomyocytes and valvular fibrocytes; decreased plasma lyso-Gb3; reduced cardiac hypertrophy (especially the left ventricle), valvular insufficiency, and arrhythmias; reduced proteinuria; decreased urinary concentrations of lipids such as CTH, lactosylceramide, and ceramide, and increased urinary concentrations of glucosylceramide and sphingomyelin; absence of lamellar inclusions (zebra bodies) in glomerular epithelial cells; improved renal function; alleviated hypohidrosis; absence of angiokeratoma; and improvement in hearing abnormalities such as high-frequency sensorineural hearing loss, progressive hearing loss, sudden hearing loss, or tinnitus. Improvement of neurological symptoms includes prevention of transient ischemic attacks (TIA) or stroke; and reduction of neuropathic pain manifested as acroparesthesia (burning or tingling pain in the extremities). Another clinical marker that may determine Fabry disease is the prevalence of adverse cardiovascular symptoms. Common cardiac signs and symptoms in Fabry disease include left ventricular hypertrophy, valvular disease (especially mitral valve prolapse and / or regurgitation), premature coronary artery disease, angina, myocardial infarction, conduction abnormalities, arrhythmias, and congestive heart failure.
[0057] A dose that achieves one or more of the aforementioned responses is a "therapeutically effective dose."
[0058] The phrase "pharmaceutically acceptable" refers to molecular entities and compositions that are physiologically tolerable and typically do not produce adverse reactions when administered to humans. In some embodiments, as used herein, the term "pharmaceutically acceptable" means approved by a federal or state regulatory agency for use in animals, more particularly in humans, or listed in the United States Pharmacopeia or other generally recognized pharmacopeia. With respect to pharmaceutical carriers, the term "carrier" refers to a diluent, adjuvant, excipient, or vehicle with which a compound is administered. Such pharmaceutical carriers may be sterile liquids, such as water and oils. Preferred carriers, particularly for injectable solutions, include water or aqueous solutions, saline solutions, and aqueous dextrose and glycerol solutions. Suitable pharmaceutical carriers are described in (Non-Patent Document 5), or other editions.
[0059] As used herein, the term "isolated" means that the referenced material is removed from the environment in which it is normally found. Thus, isolated biological material can be free of cellular components, i.e., components of the cells in which the material is found or produced. In the case of nucleic acid molecules, isolated nucleic acids include PCR products, mRNA bands on gels, cDNA, or restriction fragments. In another embodiment, isolated nucleic acids are preferably excised from the chromosome in which they are found, and more preferably, when found in a chromosome, they are no longer connected to non-regulatory regions, non-coding regions, or other genes located upstream or downstream of the gene contained in the isolated nucleic acid molecule. In yet another embodiment, isolated nucleic acids lack one or more introns. Isolated nucleic acids include sequences inserted into plasmids, cosmids, artificial chromosomes, etc. Thus, in a specific embodiment, recombinant nucleic acids are isolated nucleic acids. An isolated protein may be associated with other proteins or nucleic acids, or both, with the cell to which it is associated, or, if it is a membrane-bound protein, with the cell membrane. An isolated organelle, cell, or tissue is removed from the anatomical site in an organism in which it is found. An isolated material may, but need not, be purified.
[0060] The term "enzyme replacement therapy" or "ERT" refers to the introduction of a non-naturally occurring purified enzyme into an individual deficient in such an enzyme. The administered protein may be obtained from a natural source or by recombinant expression (as described in more detail below). The term also refers to the introduction of a purified enzyme in an individual who would otherwise require or benefit from the administration of the purified enzyme, e.g., an individual suffering from an enzyme deficiency. The introduced enzyme may be a purified recombinant enzyme made in vitro, or may be a protein purified from isolated tissue or body fluids, such as placenta or animal milk, or purified from a plant.
[0061] The term "ERT-naive patient" refers to a Fabry patient who has never received ERT or has not received ERT for at least 6 months prior to initiating migalastat therapy.
[0062] The term "ERT-experienced patient" refers to a Fabry patient who was receiving ERT immediately prior to initiating migalastat therapy. In some embodiments, an ERT-experienced patient has been receiving ERT for at least 12 months immediately prior to initiating migalastat therapy.
[0063] As used herein, the term "free base equivalent" or "FBE" refers to the amount of migalastat present in migalastat or a salt thereof. In other words, the term "FBE" refers to either the amount of migalastat free base or the equivalent amount of migalastat free base provided by a salt of migalastat. For example, due to the weight of the hydrochloride salt, only 150 mg of migalastat hydrochloride provides the same amount of migalastat as 123 mg of migalastat in free base form. Other salts are expected to have different conversion factors depending on the molecular weight of the salt.
[0064] The term "migalastat" includes migalastat free base or a pharmaceutically acceptable salt thereof (eg, migalastat HCl), unless specifically indicated to the contrary.
[0065] The terms "mutation" and "variant" (e.g., as in "applicable mutation or variant") refer to a change in the nucleotide sequence of a gene or chromosome. The two terms mentioned herein are typically used together—for example, as "mutation or variant"—to refer to a change in the nucleotide sequence mentioned in the perforation sequence. If only one of these two terms is mentioned for any reason, the missing term is included and should be understood as such. Furthermore, the terms "applicable mutation" and "applicable variant" refer to a mutation or variant that is applicable to PC therapy, for example, applicable to migalastat therapy. A particular type of applicable mutation or variant is a "HEK assay applicable mutation or variant," which is a mutation or variant that has been determined to be applicable to migalastat therapy according to the criteria in the in vitro HEK assay described herein and in U.S. Patent Application Publication No. 2007 / 0122994, which is hereby incorporated by reference in its entirety.
[0066] The terms "about" and "approximately" are generally intended to refer to an acceptable degree of error for the measured quantity, given the nature or precision of the measurement. Typical exemplary degrees of error are within 20 percent (%), preferably within 10%, and more preferably within 5% of a given value or range of values. Alternatively, particularly in biological systems, the terms "about" and "approximately" can refer to values within an order of magnitude of a given value, preferably within 10-fold or 5-fold, and more preferably within 2-fold. Numerical quantities provided herein are approximate unless otherwise specified, i.e., the terms "about" or "approximately" can be implied even when not explicitly stated.
[0067] Fabry disease Fabry disease is a rare, progressive, severe, X-linked lysosomal storage disorder (LSD). Mutations in the GLA gene cause a deficiency of the lysosomal enzyme α-Gal A, which is required for glycosphingolipid metabolism. Decreased α-Gal A activity, which begins in early childhood, leads to the accumulation of glycosphingolipids, including GL-3 and plasma lyso-Gb3, leading to the symptoms and fatal sequelae of Fabry disease, including pain, gastrointestinal symptoms, renal failure, cardiomyopathy, cerebrovascular events, and premature death. Early initiation of therapy and lifelong treatment offers the opportunity to slow disease progression and extend life expectancy.
[0068] Fabry disease encompasses a range of disease severity and age of onset, but is traditionally divided into two major phenotypes, "classic" and "late-onset." The classic phenotype is primarily considered to be in men with undetectable to low α-Gal A activity and early onset of renal, cardiac, and / or cerebrovascular symptoms. The late-onset phenotype is primarily considered to be in men with higher residual α-Gal A activity and later onset of these disease symptoms. Heterozygous female carriers typically express the late-onset phenotype, but may also exhibit the classic phenotype depending on the pattern of X-chromosome inactivation.
[0069] Over 1,000 GLA mutations that cause Fabry disease have been identified. These include, but are not limited to, missense, nonsense, and splicing mutations, as well as small deletions and insertions and larger gene rearrangements. Approximately 60% are missense mutations that result in single amino acid substitutions in the α-Gal A enzyme. Missense GLA mutations often result in the production of abnormally folded, unstable forms of α-Gal A, the majority of which are associated with the classic phenotype. Normal cellular quality control mechanisms in the ER prevent these abnormal proteins from trafficking to lysosomes, targeting them for early degradation and removal. Many missense mutation forms are targets of migalastat, an α-Gal A-specific pharmacological chaperone.
[0070] The clinical manifestations of Fabry disease range in severity and roughly correlate with a patient's residual α-Gal A levels. The majority of patients currently receiving treatment are referred to as classic Fabry patients, most of whom are men. These patients experience disease in various organs, including the kidneys, heart, and brain. Disease symptoms first appear in adolescence and progress in severity until death, typically in the patient's 30s or 40s. Several recent studies suggest that there are many undiagnosed men and women with various Fabry disease symptoms, such as cardiac or renal dysfunction and stroke, that usually first appear in adulthood. This type of Fabry disease, referred to as late-onset Fabry disease, tends to have higher residual α-Gal A levels than classic Fabry patients. Late-onset Fabry patients typically experience their first disease symptoms in adulthood and often have disease symptoms localized to a single organ, such as left ventricular hypertrophy or progressive renal failure. In addition, late-onset Fabry disease can also present with strokes of unknown etiology.
[0071] Fabry disease is rare, involves multiple organs, and has a wide and heterogeneous age range for onset, making proper diagnosis a challenge. For example, Fabry patients have progressive renal dysfunction, and untreated individuals develop end-stage renal disease by their fourth decade. Deficiency of α-Gal A activity leads to the accumulation of globotriaosylceramide (Gb3) and related glycosphingolipids in many cell types, including those of the kidney. Gb3 accumulates in podocytes, distal tubules, and epithelial and tubular cells of the loop of Henle. Renal dysfunction can manifest as proteinuria and a reduced glomerular filtration rate.
[0072] Furthermore, awareness is low even among medical professionals, leading to frequent misdiagnosis. The diagnosis of Fabry disease is most often confirmed after a patient presents with symptoms, based on reduced α-Gal A activity in plasma or peripheral white blood cells (WBCs) in conjunction with mutation analysis. In females, diagnosis is even more challenging due to unreliable enzymatic identification of carrier females due to random X-chromosome inactivation in some cells of carriers. For example, some obligate carriers (daughters of classically affected men) have α-Gal A enzyme activity ranging from normal to very low activity. Because carriers may have normal α-Gal A enzyme activity in white blood cells, only identification of the α-Gal A mutation by genetic testing provides accurate carrier identification and / or diagnosis.
[0073] In one or more embodiments, a mutant form of α-Gal A that is considered migalastat-applicable is defined as one that exhibits a ≥ 1.20-fold relative increase (+10 μM migalastat) and a ≥ 3.0% absolute increase (+10 μM migalastat) over wild-type (WT) when the mutant form of α-Gal A is expressed in HEK-293 cells according to a Good Laboratory Practice (GLP)-validated in vitro assay (GLP HEK or migalastat applicability assay) (referred to as the "HEK assay"). Such mutations are also referred to herein as "HEK assay-applicable" mutations.
[0074] Prior screening methods have been provided to determine enzyme enhancement before treatment begins. For example, an assay using HEK-293 cells has been utilized in clinical trials to predict whether a given mutation will respond to pharmacological chaperone (e.g., migalastat) treatment. In this assay, a cDNA construct is generated. The corresponding α-Gal A mutant form is transiently expressed in HEK-293 cells. The cells are then incubated with migalastat (17 nM to 1 mM) for 4 to 5 days. α-Gal A levels are then measured in cell lysates using a synthetic fluorogenic substrate (4-MU-α-Gal) or by Western blot. This has been performed for known disease-causing missense or small in-frame insertion / deletion mutations. Mutations previously identified as responsive to PC (e.g., migalastat) using these methods are listed in U.S. Patent No. 5,929,999 (hereby incorporated by reference in their entirety).
[0075] Pharmacological Chaperones Binding of small molecule inhibitors of LSD-related enzymes can increase the stability of both mutant and corresponding wild-type enzymes (see Patent Document 4; Patent Document 5; Patent Document 6; Patent Document 7; Patent Document 8; and Patent Document 9, all of which are incorporated herein by reference). Specifically, administration of small molecule derivatives of glucose and galactose, which are specific and selective competitive inhibitors of several target lysosomal enzymes, effectively increased intracellular enzyme stability in vitro, thereby increasing enzyme trafficking to lysosomes. Therefore, increasing the amount of enzyme in lysosomes is expected to increase hydrolysis of the enzyme substrate. The original theory behind this strategy was as follows: because the mutant enzyme protein is unstable in the ER (Non-Patent Document 6), the enzyme protein is delayed in its normal transport pathway (ER → Golgi apparatus → endosomes → lysosomes) and is prematurely degraded. Therefore, compounds that bind to and increase the stability of mutant enzymes may act as "chaperones" for the enzyme, increasing the amount that can exit the ER and travel to lysosomes. In addition, because folding and trafficking of some wild-type proteins is incomplete, and in some cases up to 70% of some wild-type proteins are degraded before reaching their final cellular location, chaperones can be used to stabilize wild-type enzymes, increasing the amount of enzyme that can exit the ER and be transported to lysosomes.
[0076] In one or more embodiments, the pharmacological chaperone comprises migalastat or a salt thereof. The compound migalastat, also known as 1-deoxygalactonojirimycin (1-DGJ) or (2R,3S,4R,5S)-2-(hydroxymethyl)piperdine-3,4,5-triol, is a compound having the following chemical formula: [ka]
[0077] As discussed herein, pharmaceutically acceptable salts of migalastat may also be used in the present invention. When a salt of migalastat is used, the dosage of the salt will be adjusted so that the patient receives a dose of migalastat equivalent to the amount that they would have received if migalastat free base had been used. An example of a pharmaceutically acceptable salt of migalastat is migalastat HCl: [ka]
[0078] Migalastat is a low-molecular-weight iminosugar and an analog of the terminal galactose of GL-3. In vitro and in vivo pharmacological studies have demonstrated that migalastat acts as a pharmacological chaperone, binding with high affinity, selectivity, and reversibility to the active site of wild-type α-Gal A and specific mutant forms of α-Gal A, referred to as HEK assay-compatible mutations. Upon binding, migalastat stabilizes these mutant forms of α-Gal A in the endoplasmic reticulum, promoting their proper trafficking to lysosomes, and dissociating migalastat allows α-Gal A to reduce levels of GL-3 and other substrates. Approximately 30–50% of patients with Fabry disease have HEK assay-compatible mutations; the majority of these are associated with the classic phenotype of the disease.
[0079] HEK assay applicable mutations include at least those mutations listed in a pharmacological reference table (e.g., those listed in the U.S. or international package insert for a migalastat product, such as GALAFOLD®). As used herein, a "pharmacological reference table" refers to any publicly accessible written or electronic record contained either in the packaging of a migalastat product (e.g., GALAFOLD®) or in the package insert on a website accessible to a healthcare provider that conveys whether a particular mutation or variant is responsive to migalastat (e.g., GALAFOLD®) PC therapy, and is not necessarily limited to written records presented in tabular format. Thus, in one embodiment of the present invention, a "pharmacological reference table" refers to any repository of information containing one or more applicable mutations or variants. Exemplary pharmacological reference tables for HEK assay applicable mutations can be found in the summaries of product characteristics and / or prescribing information for GALAFOLD® in the various countries in which it is approved for use, or on websites such as (Non-Patent Document 3) or (Non-Patent Document 4), each of which is hereby incorporated by reference in its entirety.
[0080] Although the majority of a-Gal mutations are missense mutations, most lie outside the catalytic site, making it difficult to predict which mutations will result in an unstable enzyme that can be "rescued" by a pharmacological chaperone (PC) that stabilizes the enzyme, and which will not be stabilized by PC.
[0081] An exemplary pharmacological reference table for HEK assay-eligible mutations is provided below in Table 1. In one or more embodiments, if the double mutations are present on the same chromosome (male and female), the patient is considered eligible for the HEK assay if the double mutations are present in one entry in Table 1 (e.g., D55V / Q57L). In some embodiments, if the double mutations are present on different chromosomes (females only), the patient is considered eligible for the HEK assay if any one of the individual mutations is present in Table 1.
[0082] Table 1
[0083] Table 2
[0084] Table 3
[0085] Table 4
[0086] Table 5
[0087] Table 6
[0088] Table 7
[0089] Table 8
[0090] Table 9
[0091] Table 10
[0092] Table 11
[0093] Table 12
[0094] Table 13
[0095] Table 14
[0096] Table 15
[0097] Table 16
[0098] Table 17
[0099] Table 18
[0100] Table 19
[0101] Table 20
[0102] Table 21
[0103] Table 22
[0104] Table 23
[0105] Table 24
[0106] Table 25
[0107] Table 26
[0108] Table 27
[0109] Table 28
[0110] Table 29
[0111] Table 30
[0112] Table 31
[0113] [Table 32]
[0114] Dosing, Formulation and Administration In one or more embodiments, a Fabry patient is administered migalastat or a salt thereof once every other day (also referred to as "QOD"). In various embodiments, the doses described herein relate to migalastat hydrochloride or an equivalent dose of migalastat or a salt thereof other than the hydrochloride salt. In some embodiments, these doses relate to the free base of migalastat. In alternative embodiments, these doses relate to a salt of migalastat. In further embodiments, the salt of migalastat is migalastat hydrochloride. The administration of migalastat or a salt of migalastat is referred to herein as "migalastat therapy."
[0115] Thus, in one or more embodiments, a Fabry patient is administered a dose of migalastat or a salt thereof in the range of about 15 mg to about 300 mg, about 15 mg to about 250 mg, about 15 mg to about 200 mg, about 15 mg to about 150 mg, or about 15 mg to about 123 mg once every other day, once every three days, once every four days, once every five days, once every six days, or once every seven days. In one or more embodiments, migalastat or a salt thereof is administered once every other day (also referred to as "QOD" or "Q48H"), once every four days (also referred to as "Q4D" or "Q96H"), or once every seven days (also referred to as "Q7D" or "Q168H"). In some embodiments, the dosing interval may include any dosing interval greater than 48 hours between doses. For example, dosing intervals may include dosing every 72, 96, 120, 144, or 168 hours.
[0116] In one or more embodiments, Fabry patients receive between about 15 mg and about 300 mg, between about 15 mg and about 250 mg, between about 15 mg and about 200 mg, between about 15 mg and about 150 mg, between about 15 mg and about 123 mg, between about 15 mg and about 100 mg, between about 15 mg and about 50 mg, between about 50 mg and about 300 mg, between about 50 mg and about 250 mg, between about 50 mg and about 200 mg, between about 50 mg and about 150 mg, between about 50 mg and about 123 mg, between about 50 mg and about 100 mg, between about 100 mg and about 300 mg, between about 100 mg Migalastat FBE within the range of about 250 mg, about 100 mg to about 200 mg, about 100 mg to about 150 mg, about 100 mg to about 123 mg, about 150 mg to about 300 mg, about 150 mg to about 250 mg, about 150 mg to about 200 mg, about 200 mg to about 300 mg, about 200 mg to about 250 mg, or about 250 mg to about 300 mg is administered at a frequency of once every other day, once every three days, once every four days, once every five days, once every six days, or once every seven days.
[0117] In one or more embodiments, Fabry patients receive about 15 mg, about 20 mg, about 25 mg, about 30 mg, about 35 mg, about 40 mg, about 45 mg, about 50 mg, about 55 mg, about 60 mg, about 65 mg, about 70 mg, about 75 mg, about 80 mg, about 85 mg, about 90 mg, about 95 mg, about 100 mg, about 105 mg, about 110 mg, about 115 mg, about 120 mg, about 123 mg, about 125 mg, about 130 mg, about 135 mg, about 140 mg, about 145 mg, about 150 mg, about 155 mg, about 160 mg, about 165 mg, about 170 mg, about 175 mg, about 180 mg, about 185 mg, about 190 mg, about 200 mg, about 210 mg, about 215 mg, about 220 mg, about 225 mg, about 230 mg, about 235 mg, about 240 mg, about 245 mg, about 250 mg, about 255 mg, about 260 mg, about 265 mg, about 270 mg, about 275 mg, about 280 mg, about 285 mg, about 290 mg, about 300 mg, about 310 mg, about 320 mg, about 330 mg, about 340 mg, about 345 mg, about 350 mg, about 355 mg, about 360 mg, about 365 mg, about 370 mg, about 375 mg, about 380 mg, about 385 mg, about 390 mg, about 400 mg, about 410 mg, about 420 mg, about 430 mg 80 mg, about 185 mg, about 190 mg, about 195 mg, about 200 mg, about 205 mg, about 210 mg, about 215 mg, about 220 mg, about 225 mg, about 230 mg, about 235 mg, about 240 mg, about 245 mg, about 250 mg, about 255 mg, about 260 mg, about 265 mg, about 270 mg, about 275 mg, about 280 mg, about 285 mg, about 290 mg, about 295 mg or about 300 mg of migalastat FBE is administered once every other day, once every 3 days, once every 4 days, once every 5 days, once every 6 days or once every 7 days.
[0118] It is again noted that 150 mg of migalastat hydrochloride is equivalent to 123 mg of the free base form of migalastat. Thus, in one or more embodiments, the dose is 150 mg of migalastat hydrochloride or an equivalent dose of migalastat or a salt thereof other than hydrochloride administered once every other day, once every three days, once every four days, once every five days, once every six days, or once every seven days. In a further embodiment, the dose is 150 mg of migalastat hydrochloride administered once every other day. In other embodiments, the dose is 123 mg of migalastat free base administered once every other day.
[0119] In one or more embodiments, Fabry patients receive between about 15 mg and about 300 mg, between about 15 mg and about 250 mg, between about 15 mg and about 200 mg, between about 15 mg and about 150 mg, between about 15 mg and about 123 mg, between about 15 mg and about 100 mg, between about 15 mg and about 50 mg, between about 50 mg and about 300 mg, between about 50 mg and about 250 mg, between about 50 mg and about 200 mg, between about 50 mg and about 150 mg, between about 50 mg and about 123 mg, between about 50 mg and about 100 mg, between about 100 mg and about 300 mg, between about 100 mg Migalastat hydrochloride within the range of about 250 mg, about 100 mg to about 200 mg, about 100 mg to about 150 mg, about 100 mg to about 123 mg, about 150 mg to about 300 mg, about 150 mg to about 250 mg, about 150 mg to about 200 mg, about 200 mg to about 300 mg, about 200 mg to about 250 mg, or about 250 mg to about 300 mg is administered at a frequency of once every other day, once every three days, once every four days, once every five days, once every six days, or once every seven days.
[0120] In one or more embodiments, Fabry patients receive about 15 mg, about 20 mg, about 25 mg, about 30 mg, about 35 mg, about 40 mg, about 42 mg, about 45 mg, about 50 mg, about 55 mg, about 57 mg, about 60 mg, about 65 mg, about 67 mg, about 70 mg, about 75 mg, about 77 mg, about 79 mg, about 80 mg, about 85 mg, about 90 mg, about 94 mg, about 95 mg, about 97 mg, about 100 mg, about 105 mg, about 110 mg, about 115 mg, about 120 mg, about 125 mg, about 128 mg, about 130 mg, about 135 mg, about 140 mg, about 144 mg, about 145 mg, about 150 mg, about 155 mg, about 160 mg g, about 165 mg, about 170 mg, about 175 mg, about 180 mg, about 185 mg, about 190 mg, about 195 mg, about 200 mg, about 205 mg, about 210 mg, about 215 mg, about 220 mg, about 225 mg, about 230 mg, about 235 mg, about 240 mg, about 245 mg, about 250 mg, about 255 mg, about 260 mg, about 265 mg, about 270 mg, about 275 mg, about 280 mg, about 285 mg, about 290 mg, about 295 mg or about 300 mg of migalastat hydrochloride is administered once every other day, once every three days, once every four days, once every five days, once every six days or once every seven days.
[0121] In some embodiments, the patient is administered 250 mg / kg of sodium bicarbonate (SBC) for 20 kg to about 50 kg, ... The weight is within the range of about ≦30kg, about 20kg to about ≦25kg, about 25kg to about ≧50kg, about 25kg to about ≦50kg, about 25kg to about ≦45kg, about 25kg to about ≦40kg, about 25kg to about ≦35kg, about 25kg to about ≦30kg, about 30kg to about ≧50kg, about 30kg to about ≦50kg, about 30kg to about ≦45kg, about 30kg to about ≦40kg, about 30kg to about ≦35kg, about 35kg to about ≧50kg, about 35kg to about ≦50kg, about 35kg to about ≦45kg, about 35kg to about ≦40kg, about 40kg to about ≧50kg, about 40kg to about ≦50kg, about 40kg to about ≦50kg, about 40kg to about ≦45kg, about 45kg to about ≧50kg, or about 45kg to about ≦50kg.
[0122] Administration of migalastat or a salt thereof according to the present invention may be in a formulation suitable for any administration route, but is preferably administered in oral dosage forms such as tablets, capsules, or solutions. For example, a patient may receive orally administered capsules, each containing 25 mg, 40 mg, 50 mg, 60 mg, 75 mg, 80 mg, 100 mg, or 150 mg of migalastat hydrochloride (i.e., 1-deoxygalactonojirimycin hydrochloride) or an equivalent dose of migalastat or a salt thereof other than the hydrochloride. In another example, a patient may receive orally administered capsules, each containing 150 mg of migalastat hydrochloride or an equivalent dose of migalastat or a salt thereof other than the hydrochloride.
[0123] In various embodiments, the doses described herein relate to migalastat hydrochloride or an equivalent dose of migalastat or a salt thereof other than the hydrochloride salt. In some embodiments, these doses relate to the free base of migalastat. In alternative embodiments, these doses relate to a salt of migalastat. In further embodiments, the salt of migalastat is migalastat hydrochloride. The administration of migalastat or a salt of migalastat is referred to herein as "migalastat therapy."
[0124] Administration of migalastat or a salt thereof may be over a specific period of time. In one or more embodiments, migalastat or a salt thereof is administered for a duration of at least 28 days, e.g., at least 30, 60, or 90 days, or at least 4, 6, 8, 12, 16, 26, or 52 weeks, or at least 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 16, 20, 24, 30, or 36 months, or at least 1, 2, 3, 4, or 5 years. In some embodiments, the migalastat therapy is at least about 4 weeks. In various embodiments, the migalastat therapy is long-term migalastat therapy for at least about 2, 3, 4, or 5 years.
[0125] In some embodiments, the PC (e.g., migalastat or a salt thereof) is administered orally. In one or more embodiments, the PC (e.g., migalastat or a salt thereof) is administered by injection. The PC may be accompanied by a pharmaceutically acceptable carrier, which may depend on the method of administration.
[0126] In one or more embodiments, the PC (e.g., migalastat or a salt thereof) is administered as monotherapy and can be in a form suitable for any route of administration, such as orally in tablet or capsule or liquid form, or in a sterile aqueous solution for injection, etc. In other embodiments, the PC is provided as a lyophilized powder that is added to the replacement enzyme formulation during or immediately after reconstitution to prevent enzyme aggregation in vitro prior to administration.
[0127] When a PC (e.g., migastat or a salt thereof) is formulated for oral administration, tablets or capsules may be prepared by conventional means with pharmaceutically acceptable excipients such as binders (e.g., pregelatinized maize starch, polyvinylpyrrolidone, or hydroxypropylmethylcellulose); fillers (e.g., lactose, microcrystalline cellulose, or calcium hydrogen phosphate); lubricants (e.g., magnesium stearate, talc, or silica); disintegrants (e.g., potato starch or sodium starch glycolate); or wetting agents (e.g., sodium lauryl sulfate). Tablets may be coated by methods well known in the art. Liquid preparations for oral administration may take the form, for example, of solutions, syrups, or suspensions, or may be prepared as a dry product for constitution with water or another suitable vehicle before use. Such liquid formulations may be prepared by conventional means with pharmaceutically acceptable additives such as suspending agents (e.g., sorbitol syrup, cellulose derivatives, or hydrogenated edible fats); emulsifying agents (e.g., lecithin or acacia); non-aqueous vehicles (e.g., almond oil, oily esters, ethyl alcohol, or fractionated vegetable oils); and preservatives (e.g., methyl or propyl p-hydroxybenzoate or sorbic acid). The formulations may also contain buffer salts, flavoring agents, coloring agents, and sweetening agents, as appropriate. Formulations for oral administration may be suitably formulated to give controlled release of the active chaperone compound.
[0128] Pharmaceutical formulations of PC (e.g., migastat or its salts) suitable for parenteral / injectable use generally include sterile aqueous solutions (where water soluble), or dispersions and sterile powders for the extemporaneous preparation of sterile injectable solutions or dispersions. In all cases, the form must be sterile and must be fluid to the extent that easy syringability exists. It must be stable under the conditions of manufacture and storage and must be preserved against the contaminating action of microorganisms, such as bacteria and fungi. The carrier can be a solvent or dispersion medium containing, for example, water, ethanol, polyol (e.g., glycerol, propylene glycol, polyethylene glycol, and the like), suitable mixtures thereof, and vegetable oils. Proper fluidity can be maintained, for example, by the use of a coating such as lecithin, by the maintenance of the required particle size in the case of dispersions, and by the use of surfactants. Prevention of the action of microorganisms can be brought about by various antibacterial and antifungal agents, for example, parabens, chlorobutanol, phenol, benzyl alcohol, sorbic acid, and the like. In many cases, it will be advisable to include isotonic agents, for example, sugars or sodium chloride. Prolonged absorption of the injectable compositions can be brought about by the use in the compositions of agents delaying absorption, for example, aluminum monostearate and gelatin.
[0129] Sterile injectable solutions are prepared by blending the required amount of purified enzyme (if present) and PC (e.g., migalastat or its salts) in an appropriate solvent with various other ingredients as enumerated above, as needed, followed by filtration or terminal sterilization. Generally, dispersions are prepared by blending the various sterilized active ingredients in a sterile vehicle containing the basic dispersion medium and the other required ingredients from those enumerated above. In the case of sterile powders for the preparation of sterile injectable solutions, the preferred methods of preparation are vacuum drying and freeze-drying, which yield a powder of the active ingredient plus any additional desired ingredients from a previously sterile-filtered solution thereof.
[0130] The formulation may contain an excipient. Pharmaceutically acceptable excipients that may be included in the formulation include buffers, such as citrate buffer, phosphate buffer, acetate buffer, bicarbonate buffer, amino acids, urea, alcohols, ascorbic acid, and phospholipids; proteins such as serum albumin, collagen, and gelatin; salts such as EDTA or EGTA, and sodium chloride; liposomes; polyvinylpyrollidone; sugars such as dextran, mannitol, sorbitol, and glycerol; propylene glycol and polyethylene glycol (e.g., PEG-4000, PEG-6000); glycerol; glycine or other amino acids; and lipids. Buffer systems used with the formulation include citrate, acetate, bicarbonate, and phosphate buffers. Phosphate buffers are a preferred embodiment.
[0131] The route of administration of the chaperone compound may be oral or parenteral, including intravenous, subcutaneous, intra-arterial, intraperitoneal, intraocular, intramuscular, buccal, rectal, intravaginal, intraorbital, intracerebral, intradermal, intracranial, intraspinal, intraventricular, intrathecal, intracisternal, intravesicular, intrapulmonary, intranasal, transmucosal, transdermal, or by inhalation.
[0132] Administration of the chaperone compound in the parenteral formulations described above may be by periodic injection of a bolus of the formulation, or by intravenous or intraperitoneal administration from an external (e.g., an IV bag) or internal (e.g., a bioerodible implant) reservoir.
[0133] Embodiments relating to pharmaceutical formulations and administration may be combined with any of the other embodiments of the invention, such as embodiments relating to methods of treating patients with Fabry disease, methods of treating ERT-naive Fabry patients, methods of treating ERT-experienced Fabry patients, methods of reducing the risk of a CBV event, methods of reducing the risk of a composite clinical outcome, methods of assessing the symptoms or outcome of a patient or population of patients, methods of evaluating a therapy, methods of enhancing α-Gal A in patients diagnosed with or suspected of having Fabry disease, use of a pharmacological chaperone to α-Gal A in the manufacture of a medicament for treating patients diagnosed with Fabry disease, or a pharmacological chaperone to α-Gal A for use in treating patients diagnosed with Fabry disease, and embodiments relating to applicable mutations, PCs, and suitable doses thereof.
[0134] In one or more embodiments, the PC (e.g., migalastat or a salt thereof) is administered in combination with ERT. ERT increases the amount of protein by exogenously introducing a wild-type or biologically functional enzyme via infusion. As discussed above, this therapy has been developed for many genetic disorders, including LSDs such as Fabry disease. After infusion, the exogenous enzyme is assumed to be taken up by tissues via nonspecific or receptor-specific mechanisms. Generally, uptake efficiency is not high, and the circulation time of exogenous proteins is short. In addition, exogenous proteins are unstable, subject to rapid intracellular degradation, and there is also the possibility of adverse immune reactions with subsequent treatment. In one or more embodiments, a chaperone is administered simultaneously with the replacement enzyme (e.g., replacement α-Gal A). In some embodiments, the chaperone is formulated with the replacement enzyme (e.g., replacement α-Gal A).
[0135] In one or more embodiments, the patient is switched from ERT to migalastat therapy. In some embodiments, the patient is identified as being on ERT, the patient's ERT is discontinued, and the patient begins receiving migalastat therapy. The migalastat therapy can be according to any of the methods described herein. In various embodiments, the patient has some degree of renal dysfunction, for example, mild, moderate, or severe renal dysfunction.
[0136] Administration of migalastat In some embodiments, migalastat or a salt thereof is administered to an adult patient. In some embodiments, the adult patient is ≥ 18 years of age. In some embodiments, migalastat or a salt thereof is administered to an adolescent patient. In some embodiments, the adolescent patient is of age within the range of 12 to <18 years, 13 to <18 years, 14 to <18 years, 15 to <18 years, 16 to <18 years, 17 to <18 years, 12 to <17 years, 13 to <17 years, 14 to <17 years, 15 to <17 years, 16 to <17 years, 12 to <16 years, 13 to <16 years, 14 to <16 years, 15 to <16 years, 12 to <15 years, 13 to <15 years, 14 to <15 years, 12 to <14 years, 13 to <14 years, or 12 to <13 years.
[0137] In some embodiments, migalastat or a salt thereof is administered to a patient having a body weight in the range of <15 kg to ≥45 kg, 15 kg to <25 kg, 25 kg to <35 kg, or 35 kg to <45 kg. In some embodiments, migalastat or a salt thereof is administered to a patient having a body weight <15 kg. In some embodiments, migalastat or a salt thereof is administered to a patient having a body weight ≥45 kg.
[0138] In some embodiments, about 25 mg of migalastat or a salt thereof is administered to a patient weighing less than 15 kg. In some embodiments, about 50 mg of migalastat or a salt thereof is administered to a patient weighing between 15 kg and less than 25 kg. In some embodiments, about 75 mg of migalastat or a salt thereof is administered to a patient weighing between 25 kg and less than 35 kg. In some embodiments, about 75 mg of migalastat or a salt thereof is administered to a patient weighing between 35 kg and less than 50 kg.
[0139] In some embodiments, migalastat or a salt thereof is administered at a first frequency for a first period of time, and then at a second frequency for a second period of time. The first frequency is greater than (i.e., more frequent than) the second frequency. The first and second frequencies may be any administration interval disclosed herein. In some embodiments, the first frequency is every other day, and the second frequency is every 3, 4, 5, 6, or 7 days. In some embodiments, the first frequency is every 4 days, and the second frequency is every 5, 6, or 7 days.
[0140] In some embodiments, migalastat or a salt thereof is administered at a first frequency for a first period of time, then at a second frequency for a second period of time, and then at a third frequency for a third period of time. The first frequency is greater than (i.e., more frequent than) the second frequency, and the second frequency is greater than the third frequency. For example, in some embodiments, migalastat or a salt thereof is administered at a first frequency of once every other day for a first period of time, then migalastat or a salt thereof is administered at a second frequency of once every four days for a second period of time, then migalastat or a salt thereof is administered at a third frequency of once every seven days for a third period of time.
[0141] Administration of migalastat without caffeine As mentioned above and described in further detail in the Examples below, caffeine has surprisingly been found to have a significant effect on the pharmacokinetics of migalastat. Accordingly, in some embodiments, the patient does not consume caffeine within a specific time interval prior to administration of a formulation containing migalastat or a salt thereof. In various embodiments, this time interval includes abstaining from caffeine for at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours before administration of migalastat or a salt thereof, and for at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours after administration of migalastat or a salt thereof.
[0142] In some embodiments, the patient does not consume caffeine within a time interval of at least 1 hour before and at least 1 hour after administering migalastat or a salt thereof, i.e., the patient does not consume caffeine within about 1 hour of administering the formulation comprising migalastat or a salt thereof.
[0143] In some embodiments, the patient does not consume caffeine within a time interval of at least 2 hours before and at least 1 hour after administration of migalastat or a salt thereof.
[0144] In some embodiments, the patient does not consume caffeine within a time interval of at least 2 hours before and at least 2 hours after administration of migalastat or a salt thereof, i.e., the patient does not consume caffeine within about 2 hours of administration of the formulation comprising migalastat or a salt thereof.
[0145] In some embodiments, the patient does not consume caffeine within a time interval of at least 3 hours before and at least 2 hours after administration of migalastat or a salt thereof.
[0146] In some embodiments, the patient does not consume caffeine within a time interval of at least 3 hours before and at least 3 hours after administration of migalastat or a salt thereof, i.e., the patient does not consume caffeine within about 3 hours of administration of the formulation comprising migalastat or a salt thereof.
[0147] In some embodiments, the patient consumes caffeine outside of the time interval for abstaining from caffeine. For example, if the time interval for abstaining from caffeine is at least 2 hours before and at least 2 hours after administering migalastat or a salt thereof, in some embodiments, the patient consumes caffeine at least 2 hours before and / or at least 2 hours after administering migalastat or a salt thereof. In various embodiments, the patient consumes caffeine at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours before administering migalastat or a salt thereof. In various embodiments, the patient consumes caffeine at least 30 minutes, at least 60 minutes (1 hour), at least 90 minutes (1.5 hours), at least 2 hours, at least 2.5 hours, at least 3 hours, or at least 4 hours after administering migalastat or a salt thereof.
[0148] In some embodiments, not consuming caffeine within a particular time interval of administering a formulation comprising migalastat or a salt thereof may be associated with, for example, a decrease in the area under the curve (AUC) and / or maximum plasma concentration (C max In some embodiments, patients can improve the pharmacokinetics of migalastat, such as avoiding a decrease in AUC and C for migalastat by not consuming caffeine within 2 hours of administration of a formulation containing migalastat or a salt thereof. max Approximately 57% and 60% reductions, respectively, are avoided.
[0149] In some embodiments, the patient fasts during the time interval to abstain from caffeine. In some embodiments, the patient does not consume food for at least 2 hours before and at least 2 hours after administering migalastat or a salt thereof, and the patient does not consume caffeine for at least 2 hours before and at least 2 hours after administering migalastat or a salt thereof.
[0150] In some embodiments, the patient fasts for a time interval that is different from the time interval for abstaining from caffeine.
[0151] In some embodiments, the patient does not consume caffeinated beverages during the time interval, hi some embodiments, caffeinated beverages include coffee, espresso, tea, caffeinated energy drinks, and caffeinated sodas.
[0152] In some embodiments, the patient consumes a non-caffeinated beverage during the time interval during which caffeine is not consumed. Examples of suitable non-caffeinated beverages include, but are not limited to, water (regular water, flavored water, sweetened water), fruit juice without pulp, and carbonated drinks that do not contain caffeine. In some embodiments, the non-caffeinated beverage comprises a sweetened beverage. In some embodiments, the non-caffeinated beverage comprises an artificially sweetened beverage. In some embodiments, the artificial sweetener comprises aspartame or acesulfame potassium. Other artificial sweeteners and / or sugar substitutes include, but are not limited to, sucralose, stevia, and saccharin. In some embodiments, the non-caffeinated and / or low-caffeine beverage comprises decaffeinated coffee or decaffeinated tea.
[0153] In some embodiments, the patient consumes only small amounts of caffeine during the time intervals during which caffeine is not consumed, rather than completely abstaining from caffeine. In various embodiments, the patient limits their total caffeine intake to less than 200 mg, less than 190 mg, less than 180 mg, less than 170 mg, less than 160 mg, less than 150 mg, less than 140 mg, less than 130 mg, less than 120 mg, less than 110 mg, less than 100 mg, less than 95 mg, less than 90 mg, less than 85 mg, less than 80 mg, less than 75 mg, less than 70 mg, less than 65 mg, less than 60 mg, less than 55 mg, less than 50 mg, less than 45 mg, less than 40 mg, less than 35 mg, less than 30 mg, less than 25 mg, less than 20 mg, less than 15 mg, less than 10 mg, less than 5 mg, less than 4 mg, less than 3 mg, less than 2 mg, or less than 1 mg during the time intervals during which caffeine is not consumed.
[0154] Another aspect of the invention is to administer to a patient migalastat pharmacokinetics (e.g., AUC and C max In some embodiments, this information and / or instructions is provided to the patient orally by a healthcare provider. In some embodiments, this information and / or instructions is provided to the patient in written form, such as in prescribing information, product labeling, product features, product monograph, patient information, etc. In various embodiments, this information and / or instructions is provided in product features and / or prescribing information for GALAFOLD® in the various countries in which it is approved for use, or on websites such as (Non-Patent Document 3) or (Non-Patent Document 4), each of which is hereby incorporated by reference in its entirety.
[0155] In some embodiments, the information and / or instructions include: In a pharmacokinetic study, administration of coffee containing approximately 190 mg of caffeine significantly reduced the systemic exposure of migalastat (AUC 0-∞ 57% average reduction in C maxIt has been shown that this results in an average reduction of 60% in A single-dose, six-way crossover pharmacokinetic study was conducted in 20 healthy subjects to evaluate the plasma bioavailability of 150 mg migalastat HCl capsules when administered with coffee and sweetened beverages compared with administration with water. The absorption rate (t max ) was not affected by the administration of coffee or sweetened beverages compared to water. However, consumption of 280 mL of coffee containing approximately 190 mg of caffeine at the time of administration resulted in a significant decrease in migalastat systemic exposure (AUC 0-∞ 57% average reduction in C max The bioavailability of migalastat was significantly higher than that of natural sucrose (AUC 8027 ng·h / mL). 0-∞ and 1265ng / mL C max ) sweeteners and artificial (aspartame or acesulfame K): AUC of 9075 ng.h / mL and 8641 ng.h / mL, respectively 0-∞ and C of 1374 ng / mL and 1225 ng / mL. max ) when administered with a sweetener, the AUC of water (8613 ng.h / mL 0-∞ and C of 1328 ng / mL. max ), there was not much difference. In addition to not consuming food for at least 2 hours before and 2 hours after taking migalastat, caffeine should not be consumed during this period. Caffeine in any form should not be consumed during the 4-hour fasting period. Consumption of caffeinated beverages or other products containing caffeine could not affect the way migalastat functions. Water (regular, flavored, or sweetened), pulpless fruit juices, and caffeine-free carbonated beverages cannot be consumed during the 4-hour fasting period. The exposure of migalastat is reduced by approximately 40% when taken with food; therefore, it should be taken on an empty stomach. Food should not be consumed at least 2 hours before and 2 hours after taking migalastat, resulting in a minimum 4-hour fast. Clear liquid foods, such as water, pulpless fruit juice, carbonated drinks, tea, or coffee (without milk or cream), can be consumed during this period. Contains one or more of the following:
[0156] Monitoring Lyso-Gb3 and Migalastat levels Lyso-Gb3 (globotriaosylsphingosine) can be monitored to determine whether the substrate is being cleared from the body of a Fabry patient. Higher levels of lyso-Gb3 correlate with higher levels of substrate. If the patient is being successfully treated, lyso-Gb3 levels are expected to decrease. One dosing regimen for Fabry disease is to administer about 20 mg to about 300 mg FBE of migalastat or a salt thereof to the patient once every other day.
[0157] In some embodiments, the method further comprises measuring migalastat levels. In one or more embodiments, the migalastat concentration (e.g., ng / mL) is measured. In some embodiments, the area under the curve (AUC 0-∞ In one or more embodiments, the minimum concentration (C) reached by migalastat before the next administration is measured. trough ) is measured.
[0158] Migalastat levels can be measured by methods known in the art. For example, when measuring migalastat from tissue samples, tissue aliquots can be homogenized (7 μL of water per 1 mg of tissue) using a homogenizer (e.g., FastPrep-24 from MP Biomedical, Irvine, CA). 500 ng / mL of 13C d2-AT1001 HCl internal standard (MDS Pharma Services) can then be added to a microcentrifuge tube containing 100 μL of tissue homogenate or 50 μL of plasma. 600 μL of 5 mM HCl in 95 / 5 MeOH:H2O can then be added, and the tube can be vortexed for 2 minutes, followed by centrifugation at 21,000 × g for 10 minutes at room temperature. The supernatant may then be collected in a clear 96-well plate, diluted with 5 mM HCl in dH2O, and applied to a 96-well solid-phase extraction (SPE) plate (Waters Corp., Milford MA). After several wash steps and elution into the clear 96-well plate, the extract may be dried down under N2 and reconstituted with mobile phase A. Migalastat levels can then be measured by liquid chromatography-tandem mass spectrometry (LC-MS / MS) (e.g., LC: Shimadzu; MS / MS: ABSciex API 5500 MS / MS). Liquid chromatography can be performed on a Halo HILIC column (150 x 4.6 mm, 2.7 µm) (Advanced Materials Technology, Inc.) at a flow rate of 0.7 mL / min using a binary mobile phase system of ACN:water:formate (Mobile Phase A: 5 mM ammonium formate, 0.5% formic acid, 95:5 ACN:water; Mobile Phase B: 5 mM ammonium formate, 0.5% formic acid, 5:47.5:47.5 ACN:MeOH:water). MS / MS analysis can be performed in APCi positive ion mode. For migalastat measurements in plasma, the same procedure can be followed, except without homogenization. The following precursor-to-product ion transitions can be monitored: mass / charge (m / z) 164.1 → m / z 80.1 for migalastat and m / z 167.1 → m / z 83.1 for the internal standard.A 12-point calibration curve and quality control samples may be prepared. The ratio of the area under the curve for migalastat to that for the internal standard is then determined, and the final concentration of migalastat in each sample is calculated using a linear least squares fit equation applied to the calibration curve. To derive an approximate molar concentration, 1 g of tissue may be estimated as a volume of 1 mL.
[0159] In some embodiments, samples may be collected 0, 1, 2, 3, 4, 6, 8, 12, 24, 48, 72, 96, 120, 144, and / or 168 hours after administration. In some embodiments, the migalastat concentration is measured 48 hours after administration. In some embodiments, the second period of administration begins after greater than about 5, 10, 15, 20, 25, 40, 50, 60, 70, 80, 90, 100, 125, 150, 175, or 200 ng / mL of migalastat is measured 48 hours after the first period of administration of migalastat.
[0160] In some embodiments, Lyso-Gb3 can be measured using validated assays via methods known in the art. As with migalastat, lyso-Gb3 levels may be measured using liquid chromatography-tandem mass spectrometry (LC-MS / MS) (e.g., LC: Shimadzu; MS / MS: ABSciex API 5500 MS / MS). For example, one process for measuring plasma lyso-Gb3 is described in (Non-Patent Document 7). In one or more embodiments, lyso-Gb3 is measured in a sample from the patient's urine.
[0161] Dose adjustment In some embodiments, the administration frequency of migalastat or a salt thereof is adjusted in response to changes in the patient's eGFR. In an exemplary embodiment, the patient's eGFR is adjusted to 60 mL / min / 1.73 m 2 Less than 45 mL / min / 1.73 m 2 Less than 30 mL / min / 1.73 m 2 Less than or equal to 15 mL / min / 1.73 m2 In some embodiments, the frequency of administration can be reduced when the patient's eGFR drops below 60 mL / min / 1.73 m 2 Less than 45 mL / min / 1.73 m 2 Less than 30 mL / min / 1.73 m 2 Less than or equal to 15 mL / min / 1.73 m 2 When the blood pressure drops below 100°C, the patient is not administered migalastat or a salt thereof.
[0162] Migalastat concentrations can be measured from plasma samples at various time points to monitor clearance from the body. trough A clinically relevant increase in C indicates significant accumulation of plasma migalastat concentrations. If migalastat is not sufficiently removed from the body before the next dose is administered, migalastat levels may accumulate, potentially causing inhibitory effects. Thus, in one or more embodiments, the C of normal renal function is trough Compared to C trough After a 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9 or 3.0 fold increase in dose, a change in dosing frequency is made.
[0163] In one or more embodiments, the AUC of normal renal function 0-∞ Compared with,AUC 0-∞ After a 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9 or 3.0 fold increase in dose, a change in dosing frequency is made.
[0164] In some embodiments, the method further includes measuring lyso-Gb3 in one or more plasma samples from the patient. A first baseline lyso-Gb3 level may be measured during the first period. As used herein, "baseline lyso-Gb3 level" refers to the lowest plasma lyso-Gb3 value measured during a given period or dosing regimen. Thus, if the lyso-Gb3 level significantly increases from the baseline lyso-Gb3 level, this may indicate progression of kidney disease and / or inappropriate elimination of migalastat. Thus, in further embodiments, a second period of administration is initiated after an increase (e.g., at least about 20, 25, 30, 33, 35, 40, 45, or 50% and / or 1, 1.25, 1.5, 1.75, 2, 2.25, 2.5, or 3 nM) above the first baseline lyso-Gb3 level is measured. A 33% and / or 2 nM increase from baseline in plasma lyso-Gb3 is considered clinically relevant based on Phase 3 data in Fabry patients, signaling either impaired renal function and / or progression of disease-induced migalastat exposure. Lyso-Gb3 levels may be measured at various frequencies (e.g., about once every 2, 3, 4, or 5 months). It is expected that baseline lyso-Gb3 levels will take approximately 3 months to establish once a dosing regimen is initiated.
[0165] In some embodiments, the second period of administration may begin after an increase over the first baseline lyso-Gb3 level of at least about 30% or 33% and / or greater than 2 nM and / or about 50 ng / mL migalastat is measured 48 hours after the administration of migalastat during the first period of time. In some embodiments, the second period of administration may begin after an increase over the first baseline lyso-Gb3 level of at least about 30% or 33% and / or greater than 2 nM and / or greater than about 50 ng / mL migalastat is measured 48 hours after the administration of migalastat during the first period of time, or after an increase over the AUC 0-∞ and / or C troughmay be initiated after a greater than 1.5-fold increase in normal renal function compared to normal renal function during the first period. [Example]
[0166] Example 1: Examination of the effects of caffeine and sweeteners on the pharmacokinetics of migalastat This example describes Study AT1001-045, which was an open-label study of the bioavailability, safety, and tolerability of migalastat in combination with caffeine and a sweetener.
[0167] Objectives and Endpoints The primary objective was to evaluate the plasma migalastat bioavailability of 150 mg migalastat HCl capsules in a caffeine beverage, a sucrose beverage, a combined caffeine and sucrose beverage, an aspartame-sweetened beverage, and an acesulfame potassium-sweetened beverage versus water in healthy subjects.
[0168] A secondary objective was to assess the safety and tolerability of migalastat HCl in healthy subjects.
[0169] The primary endpoint was C max , AUC 0-t and AUC 0-∞ The objective was an analysis of variance comparison between each test treatment and the reference treatment for . The objective comparisons were point estimate ratios and lower / upper 90% confidence intervals.
[0170] Test Design This was a single-center, single-dose, randomized, open-label, six-way crossover study. Each subject received a single oral dose of 150 mg of migalastat HCl for each of six periods. A schematic diagram of the study is shown in Figure 4.
[0171] In the randomization sequence, each subject received a 150 mg migalastat HCl capsule with a caffeine beverage, a sucrose beverage, a combination of caffeine and sucrose beverage, an aspartame-sweetened beverage, an acesulfame potassium-sweetened beverage, or water.
[0172] All study treatments were administered in the fasted state (overnight + 4 hours post-dose).
[0173] Each single dose was followed by a 72-hour PK sampling period, which also served as a washout interval between treatments.
[0174] Subjects were followed for the duration of six treatment periods (approximately 19 days, including day -1) through a 72-hour blood sample in the sixth period.
[0175] Approximately 7 days after the sixth dosing period (day 23), subjects returned to the clinic for a follow-up visit.
[0176] The total duration of the study, including screening, was approximately 7.5 weeks.
[0177] No replacement of subjects was performed to discontinue the study.
[0178] Appropriate migalastat exposure ratios (C) with corresponding 90% confidence intervals max and AUC) to compare the objectives: Caffeine (test) vs. water (reference) Sucrose (test) vs. water (reference) Caffeine + sucrose (test) vs. water (reference) Aspartame (test) vs. water (reference) Acesulfame K (test) vs. water (reference) will be dealt with.
[0179] Study population, sample size and dose Study population: Healthy male and female subjects aged 18-45 years. Sample size: 20 gender-adjusted subjects. Dose: A single 150 mg capsule of migalastat hydrochloride, provided as GALAFOLD®.
[0180] Preparation of test drugs The following test treatments were prepared: Caffeinated beverage: 8 ounces of caffeinated tea; nothing added; administered warm (40-50°C) and consumed within 10 minutes Sucrose drink: 8 ounces of sucrose solution prepared with 26 grams of sucrose, chilled prior to drug administration, and consumed within 10 minutes Equivalent to the sucrose content in an 8-ounce serving of sucrose-containing Coca-Cola® Caffeine + sucrose drink: An 8 oz caffeine / sucrose drink (e.g., Jolt®) that is chilled and consumed within 10 minutes before drug administration Aspartame: 8 oz of aspartame solution prepared with 125 mg of aspartame, cooled prior to administration, and consumed within 10 minutes Equivalent to the aspartame content in one 8-ounce can of Diet Coke® Acesulfame K: 8 ounces of acesulfame K solution prepared with 30 mg of acesulfame K, cooled prior to administration and consumed within 10 minutes. Equivalent to the acesulfame K content in one 8-ounce serving of Diet Coke® or Coca-Cola® Zero Sugar can
[0181] result The pharmacokinetics of migalastat for each treatment are shown in Figure 5 and Table 2 below. For a treatment to be considered bioequivalent to water, the 90% confidence interval should be within 80% to 125% of the value for water.
[0182] [Table 33]
[0183] As is evident from Figure 5 and Table 2, the artificial sweeteners acesulfame K and aspartame are bioequivalent to water. Therefore, in some embodiments, beverages containing these artificial sweeteners may be administered with migalastat.
[0184] Sucrose was very nearly bioequivalent; the mean difference in AUC was only an 8% decrease with sucrose, which was not considered clinically relevant. Thus, in some embodiments, a beverage containing sucrose may be administered along with migalastat.
[0185] A major caffeine-migalastat interaction was observed; caffeine alone, C max was decreased by 60% and AUC by 57%; similar decreases were observed with caffeine plus sucrose. Therefore, in some embodiments, migalastat should not be administered with caffeinated beverages.
[0186] The patents and scientific literature referred to herein establish knowledge available to those skilled in the art. All U.S. patents and published or unpublished U.S. patent applications cited herein are incorporated by reference. All published foreign patents and patent applications cited herein are hereby incorporated by reference. All other published references, documents, articles and scientific literature cited herein are hereby incorporated by reference.
[0187] While the present invention has been particularly shown and described with reference to preferred embodiments thereof, workers skilled in the art will understand that various changes in form and details may be made therein without departing from the scope of the invention as encompassed by the appended claims.
[0188] The embodiments described herein are intended to illustrate the compositions and methods and are not intended to limit the scope of the present invention. Various modifications and variations that are consistent with the description as a whole and that are readily apparent to those skilled in the art are intended to be encompassed. The scope of the appended claims should not be limited by the specific embodiments shown in the examples, but should be accorded the broadest interpretation consistent with the description as a whole.
[0189] Patents, patent applications, publications, product descriptions, GenBank accession numbers, and protocols are cited throughout this application, the disclosures of which are incorporated herein by reference in their entireties for all purposes.
Claims
1. 1. A formulation comprising a therapeutically effective dose of migalastat or a salt thereof for use in the treatment of Fabry disease in a human patient in need thereof, wherein the formulation comprising migalastat or a salt thereof is administered without concomitant administration of caffeine.
2. The formulation of claim 1 , wherein the formulation comprising migalastat or a salt thereof is orally administered to the patient.
3. The patient does not consume caffeine within a specific time interval during which the formulation containing migalastat or a salt thereof is administered, thereby reducing the AUC and C max 3. The formulation of claim 1 or 2, which avoids a reduction of about 57% and about 60%, respectively.
4. 4. The formulation of any one of claims 1 to 3, wherein the patient does not consume caffeine within the time interval of at least 2 hours before and at least 2 hours after administration of the formulation comprising migalastat or a salt thereof.
5. 5. The formulation of any one of claims 1 to 4, wherein the patient does not consume caffeine within the time interval of at least 3 hours before and at least 2 hours after administration of the formulation comprising migalastat or a salt thereof.
6. 6. The formulation of any one of claims 1 to 5, wherein the patient does not consume caffeine within the time interval of at least 3 hours before and at least 3 hours after administration of the formulation comprising migalastat or a salt thereof.
7. 7. The formulation of any one of claims 1 to 6, wherein the patient consumes caffeine outside of the time interval for abstaining from caffeine.
8. 8. The formulation of any one of claims 1 to 7, further comprising administering caffeine to the patient at least 4 hours prior to administering the formulation comprising migalastat or a salt thereof.
9. 9. The formulation of any one of claims 1 to 8, further comprising administering caffeine to the patient at least 4 hours after administering the formulation comprising migalastat or a salt thereof.
10. 10. The formulation of any one of claims 1 to 9, wherein the patient consumes a non-caffeinated beverage during the time interval for abstaining from caffeine.
11. The formulation of any one of claims 1 to 10, wherein the patient fasts during the time interval for abstaining from caffeine.
12. The formulation of any one of claims 1 to 11, wherein the patient fasts within a time interval spanning at least 2 hours before and 2 hours after administration of the formulation comprising migalastat or a salt thereof.
13. The formulation of any one of claims 1 to 12, wherein the salt of migalastat is migalastat hydrochloride.
14. The formulation of any one of claims 1 to 13, wherein the therapeutically effective dose of migalastat or a salt thereof is in the range of 100 mg to 150 mg every other day.
15. 15. The formulation of any one of claims 1 to 14, wherein the therapeutically effective dose of migalastat or a salt thereof is about 123 mg free base equivalent (FBE) every other day.
16. 16. The formulation of any one of claims 1 to 15, wherein the therapeutically effective dose of migalastat hydrochloride is about 150 mg every other day.
Citation Information
Patent Citations
Method for the treatment of fabry disease using pharmacological chaperones
US20100113517A1
Method of enhancing lysosomal alpha-Galactosidase A
US6274597B1
Method for enhancing mutant enzyme activities in lysosomal storage disorders
US6583158B1
Method for enhancing mutant enzyme activities in lysosomal storage disorders
US6589964B2
Method for enhancing mutant enzyme activities in lysosomal storage disorders
US6599919B2