Methods for Treating Apoptosis and Altering Programmed Cell Death
Isomyosmine addresses oxidative damage by altering programmed cell death and immune regulation, extending lifespan and reversing aging through telomere maintenance and metabolic modulation.
Patent Information
- Application Number
- JP2021185699
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-09-29
- Filing Date
- 2021-11-15
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2038-09-13
AI Technical Summary
Oxidative damage leads to replicative senescence and aging, causing telomere shortening and premature apoptosis, which can result in organ failure and various diseases, with existing therapies failing to effectively modulate programmed cell death or extend lifespan.
Administration of isomyosmine or its pharmaceutically acceptable salts to alter programmed cell death, increase blood oxygen saturation, and regulate immune and metabolic pathways, thereby extending cellular and human lifespan, and treating conditions like oxidative stress and inflammatory diseases.
Isomyosmine effectively postpones disease onset, extends lifespan, and reverses the aging process by maintaining telomerase levels, regulating oxidative stress, and modulating immune and metabolic functions.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 565,248, filed September 29, 2017, the disclosure of which is incorporated herein by reference. [Background technology]
[0002] Oxidative damage is a major cause of replicative senescence and human aging. At birth, humans have 15,000 telomeres, but only 10,000 at age 20 and 5,000 at age 65. External adjustment of oxidative stress levels can alter the rate of telomere shortening and replicative lifespan of a given cell culture. For example, hyperoxia (40% oxygen tension) accelerates the production of reactive oxygen species (ROS) in mitochondrial respiration, dramatically increasing telomere shortening. Short telomeres activate the DNA damage response, which leads to apoptosis (programmed cell death) and senescence. As cells divide, short telomeres accumulate due to end-replication problems. Short telomeres recruit DNA-damaging proteins, which activate cellular programs of apoptosis or senescence. This cellular response manifests as organ failure in clinically recognizable syndromes of telomere shortening.
[0003] It would be desirable to develop therapies to beneficially alter programmed cell death (or modulate programmed cell lifespan), which would then prolong disease onset, increase lifespan, and reverse the normal aging process in individuals. Summary of the Invention
[0004] In one embodiment, a method for altering programmed cell death (apoptosis) comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof. Beneficial alteration of programmed cell death (or modulation of programmed cell lifespan) may postpone the onset of various diseases, extend lifespan, and / or reverse the normal aging process in an individual.
[0005] In another aspect, a method for increasing blood oxygen saturation comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof.
[0006] In another aspect, a method of modulating the immune system comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof.
[0007] In another embodiment, a method of modulating T cells comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof.
[0008] In another aspect, a method for preventing continuing genetic mutations comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof.
[0009] In another aspect, a method for extending beta cell longevity comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof.
[0010] In another aspect, a method for improving cellular health comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof.
[0011] In another aspect, a method of extending cellular lifespan comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof. One aspect of extending cellular lifespan includes extending human lifespan.
[0012] In yet another embodiment, a method for regulating ferritin levels or treating hemochromatosis comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof. In some embodiments, administration of isomyosmine or a pharmaceutically acceptable salt thereof is effective to maintain ferritin levels in an individual at or below 200 ng / mL. In some embodiments, administration of isomyosmine or a pharmaceutically acceptable salt thereof is effective to maintain ferritin levels in an individual at or below 150 ng / mL.
[0013] In another aspect, a method of treating a wound comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof. Topical administration of isomyosmine, in particular, has been found to dramatically improve healing, for example, by avoiding scarring around surgical incisions.
[0014] In another aspect, a method for treating traumatic brain injury comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof. Isomyosmine may be particularly effective in treating concussion resulting from a motor vehicle accident, sports collision, or other source of trauma to the head.
[0015] In another aspect, a method of mitigating the effects of space travel comprises administering to an individual in need thereof a pharmaceutical composition containing a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof. [Brief explanation of the drawings]
[0016] A more complete understanding of the present invention and certain advantages thereof may be obtained by considering the accompanying drawings and by reference to the following detailed description.
[0017] [Figure 1] FIG. 1 is a schematic diagram of the process by which telomeres shorten, leading to apoptosis (programmed cell death) and senescence.
[0018] [Figure 2] FIG. 2 shows the mechanism of oxidative stress in tissue damage, including the toxicity of xenobiotic-induced free radicals and subsequent detoxification by cellular enzymes.
[0019] [Figure 3] FIG. 3 is a graph showing the ability of isomyosmine, myosmine, anatabine, anabasine, and nornicotine to inhibit the enzymatic activity of MAO-A.
[0020] [Figure 4] FIG. 4 is a graph showing the ability of isomyosmine, myosmine, anatabine, anabasine, and nornicotine to inhibit the activity of MAO-B. DETAILED DESCRIPTION OF THE INVENTION
[0021] Aspects of the present specification disclose, in part, pharmaceutical compositions. As used herein, the term "pharmaceutically acceptable" refers to any molecular entity or composition that does not produce adverse, allergic, or other untoward or unwanted reactions when administered to an individual. As used herein, the term "pharmaceutically acceptable composition" is synonymous with "pharmaceutical composition" and refers to a therapeutically effective concentration of an active ingredient, such as any of the therapeutic compounds disclosed herein. The pharmaceutical compositions disclosed herein are useful for medical and veterinary applications. The pharmaceutical compositions may be administered to an individual alone or in combination with other supplementary active ingredients, agents, drugs, or hormones.
[0022] The pharmaceutical compositions disclosed herein may include a pharmaceutically acceptable carrier that facilitates the processing of the active ingredient into a pharmaceutically acceptable composition. As used herein, the term "pharmacologically acceptable carrier" is synonymous with "pharmacological carrier" and refers to any carrier that does not have any substantial long-term or permanent adverse effects when administered, including terms such as "pharmacologically acceptable medium," "stabilizer," "diluent," "additive," "auxiliary agent," or "excipient." Such carriers are generally mixed with the active compound, or can dilute or encapsulate the active compound, and can be solid, semi-solid, or liquid. It will be understood that the active ingredient can be soluble or delivered as a suspension in the desired carrier or diluent. Any of various pharmaceutically acceptable carriers can be used, including, but not limited to, aqueous media such as water, saline, glycine, hyaluronic acid, etc.; solid carriers such as mannitol, lactose, starch, magnesium stearate, sodium saccharin, talcum, cellulose, glucose, sucrose, magnesium carbonate, etc.; solvents; dispersion media; coating agents; antibacterial and antifungal agents; isotonic and absorption delaying agents; or any other inactive ingredients. The choice of pharmaceutically acceptable carrier may depend on the mode of administration. Unless a pharmaceutically acceptable carrier is incompatible with the active ingredient, its use in pharmaceutically acceptable compositions is contemplated.Non-limiting examples of specific uses of such pharmaceutical carriers can be found in Pharmaceutical Dosage Forms and Drug Delivery Systems (Howard C. Ansel et al., eds., Lippincott Williams & Wilkins Publishers, 7th ed. 1999); REMINGTON: THE SCIENCE AND PRACTICE OF PHARMACY (Alfonso R. Gennaro ed., Lippincott, Williams & Wilkins, 20th ed. 2000); Goodman & Gilman's The Pharmacological Basis of Therapeutics (Joel G. Hardman et al., eds., McGraw-Hill Professional, 10th ed. 2001); and Handbook of Pharmaceutical Excipients (Raymond C. Rowe et al., APhA Publications, 4th edition 2003). These protocols are routine procedures, and any modifications thereto are well within the skill of those in the art from the teachings in this disclosure.
[0023] Isomyosmine The pharmaceutical composition may contain isomyosmine. Isomyosmine (3-(3,4-dihydro-2H-pyrrol-2-yl)-pyridine) is a nicotine-related alkaloid present in nicotine-containing plants of the Solanaceae family. [ka]
[0024] Isomyosmine may be prepared synthetically using known techniques and is commercially available from several chemical suppliers. Isomyosmine has two optical isomers (+ / -) resulting from the asymmetric carbon atoms in the pyrrole ring attached to its pyridine ring. Unless otherwise clear from the context, the term "isomyosmine," as used herein, includes mixtures of enantiomers (+ / -), including racemic mixtures, as well as isolated forms of one or the other enantiomer.
[0025] Unless otherwise clear from the context, "isomyosmine" as used herein refers to both salt and non-salt forms of isomyosmine. Non-limiting examples of possible salts are found in PH Stahl et al., Handbook of Pharmaceutical Salts: Properties, Selection and Use, Weinheim / Zurich: Wiley-VCH / VHCA, 2002, which lists among others 1-hydroxy-2-naphthoic acid, 2,2-dichloroacetic acid, 2-hydroxyethanesulfonic acid, 2-oxoglutaric acid, 4-acetamidobenzoic acid, 4-aminosalicylic acid, acetic acid, adipic acid, ascorbic acid (L), aspartic acid (L), benzenesulfonic acid, benzoic acid, camphoric acid (+), camphor-10-sulfonic acid (+), capric acid (decanoic acid), caproic acid (hexanoic acid), caprylic acid (octanoic acid), carbonic acid, cinnamic acid, citric acid, cyclamic acid, dodecanoic acid, benzo ... benzoic acid, benzoic acid, benzoic acid, benzoic acid, camphor-10-sulfonic acid (+), capric acid (decanoic acid), caproic acid (hexanoic acid), caprylic acid (octanoic acid), benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic Decyl sulfate, ethane-1,2-disulfonic acid, ethanesulfonic acid, formic acid, fumaric acid, galactosaccharic acid, gentisic acid, glucoheptonic acid (D), gluconic acid (D), glucuronic acid (D), glutamic acid, glutaric acid, glycerophosphoric acid, glycolic acid, hippuric acid, hydrobromic acid, hydrochloric acid, isobutyric acid, lactic acid (DL), lactobionic acid, lauric acid, maleic acid, malic acid (-L), malonic acid, mandelic acid (DL), methanesulfonic acid, naphthalene-1,5-disulfonic acid, naphthalene-2-sulfonic acid, nicotinic acid, nitric acid, oleic acid, oxalic acid, palmitic acid, pamoic acid, phosphoric acid, proprionic acid acid), pyroglutamic acid (-L), salicylic acid, sebacic acid, stearic acid, succinic acid, sulfuric acid, tartaric acid (+L), thiocyanic acid, toluenesulfonic acid (p), and undecylenic acid.
[0026] As an alternative to synthetically preparing isomyosmine, it can be obtained by extraction from tobacco or other naturally occurring sources. For example, tobacco extracts can be prepared from cured tobacco stems, petioles, or both. In the extraction process, cured tobacco material is extracted with a solvent, typically water, ethanol, steam, or carbon dioxide. The resulting solution contains soluble components of tobacco, including isomyosmine. Isomyosmine can be purified from other components of tobacco using a suitable technique, such as liquid chromatography.
[0027] In pharmaceutical applications, isolated forms of isomyosmine are commonly used. As used herein, "isolated form of isomyosmine" refers to isomyosmine that has either been synthetically prepared or substantially separated from the natural material from which it originates. Isolated forms of isomyosmine should have very high purity (including enantiomeric purity, if enantiomers are used). In the case of synthetic isomyosmine, for example, purity refers to the ratio of the weight of isomyosmine to the weight of the final reaction product. In the case of isomyosmine isolated from natural materials, for example, purity refers to the ratio of the weight of isomyosmine to the total weight of the isomyosmine-containing extract. Typically, the level of purity is at least about 95%, and more usually at least about 96%, about 97%, about 98%, or higher. For example, the level of purity can be about 98.5%, 99.0%, 99.1%, 99.2%, 99.3%, 99.4%, 99.5%, 99.6%, 99.7%, 99.8%, 99.9%, or higher.
[0028] As people age, the natural cell death of aging cells can induce oxidative stress or a phenomenon called inflammaging. The innate immune system, consisting of professional phagocytes, cytokines, interferons, killer cells, and the complement system, is robustly developed. However, the adaptive (or acquired) immune system, consisting of B cells, T cells, and antibodies, weakens. The weakening of the adaptive system is due to atrophy of the thymus. This process is known as immunosenescence. This loss of self-recognition initiates the upregulation of the innate immune system. Activation of the innate immune system by host inducers creates a pro-inflammatory profile known as oxidative stress.
[0029] Without wishing to be bound by theory, we hypothesize that isomyosmine has the unique ability to function as an immunometabolic regulator. Recent studies have shown that lymphocytes, the primary immune cells, have different metabolic requirements depending on their functional state. Naive lymphocytes (lymphocytes that have not yet been exposed to antigens) rely on oxidative phosphorylation, i.e., slow glycolysis in mitochondria followed by the Krebs cycle. Instead, activated lymphocytes rely more on aerobic glycolysis, i.e., fast glycolysis in the cytosol and lactic acid fermentation, a metabolic utilization strategy also used by cancer cells, known as the Warburg effect. Memory lymphocytes are programmed to persist in the body for several years and rely on fatty acid oxidation. Lymphocyte lifespan is determined by ATP synthesis from glycolysis and oxidative phosphorylation. As an immunometabolic regulator, isomyosmine has the ability to protect against oxidative stress and regulate both pathways. By increasing electron flow, ATP, and oxygen saturation, isomyosmine is expected to have utility in treating a wide range of diseases, from diabetes to autoimmunity to cancer.
[0030] Cells have an internal "clock" that tells them how many times to divide and replace dying cells. Adult cells typically divide only 14 to 29 times; therefore, the number of remaining divisions decreases with age. Telomeres, the caps on the ends of chromosomes, are essentially cellular "fuses" that burn out when pieces are lost from their ends with cell division. Premature telomere shortening can lead to premature death of an individual. Telomeres consist of simple repeat sequences whose length is maintained by the enzyme telomerase. Loss of telomerase function, for example, due to disease states or the overproduction of ROS during the normal aging process, leads to progressive telomere shortening and chromosomal instability.
[0031] The aforementioned properties of isomyosmine are thought to contribute to its ability to maintain sufficient telomerase levels to elongate telomeres and beneficially alter programmed cell death (apoptosis), thereby potentially postponing the onset of various diseases, extending survival, and / or reversing the normal aging process in individuals.
[0032] Oxidative stress reflects an imbalance between the systemic manifestations of reactive oxygen species and the ability of biological systems to readily detoxify reactive intermediates or repair the resulting damage. Disturbances in the normal redox state of cells can cause toxic effects through the production of peroxides and free radicals that damage all components of the cell, including proteins, lipids, and DNA. Oxidative stress resulting from oxidative metabolism leads to base damage and strand breaks in DNA. Base damage is mostly indirect and occurs via the generation of reactive oxygen species (ROS), e.g., O2 - (superoxide radical), - Oxidative stress is caused by OH (hydroxyl radical) and H2O2 (hydrogen peroxide). Some reactive oxidative species play a role as cellular messengers in redox signaling. Therefore, oxidative stress can further cause the breakdown of normal mechanisms of cell signaling. Unless otherwise clear from the context, references herein to "oxidative stress" specifically refer to chronic oxidative stress.
[0033] In some embodiments, isomyosmine can be administered to an individual to treat conditions or disorders associated with oxidative stress. In some examples, immune responses in an individual can be identified or quantified by measuring uric acid and / or ferritin levels. In other examples, cortisol levels can be measured to identify or quantitate chronic stress states. Cortisol levels rise in individuals during "fight or flight" situations, along with the release of adrenaline. In healthy individuals, cortisol levels return to normal levels immediately after such an encounter. However, when cortisol levels are elevated in an individual even during rest, this can be indicative of a chronic state of stress, which can be caused by severe anxiety or emotional distress. Elevated cortisol levels have also been observed in association with coronary artery disease and periodontitis (George RSet et al., Int'l J Res Med Sci. 2017 May 5(5):1930-1935); and type 2 diabetes (Della Volpe, "High Evening Cortisol Levels Linked to Increased Risk for Type 2 Diabetes," 2016, https: / / www.endocrineweb.com / amp / 20168).
[0034] Elevated cortisol levels have also been observed in astronauts during space travel. Stress and disrupted sleep cycles may contribute to immune system dysregulation, including changes in white blood cell distribution, reduced T cell function, and / or altered cytokine production profiles. Viral reactivation has also been observed in astronauts over a six-month mission. In some embodiments disclosed herein, these and / or other effects of space travel can be alleviated by administering an effective amount of isomyosmine or a pharmaceutically acceptable salt thereof to an individual in need thereof.
[0035] Cumulative oxidative stress, accompanied by disruption of mitochondrial respiration and mitochondrial damage, has been linked to neurodegenerative diseases, including Lou Gehrig's disease (ALS), Parkinson's disease, and Alzheimer's disease. Oxidative stress can contribute to a variety of other disorders, including Huntington's disease, depression, multiple sclerosis, Asparger's syndrome, ADHD, cancer, Lafora disease, atherosclerosis, heart failure, myocardial infarction, Fragile X syndrome, sickle cell anemia, lichen planus, vitiligo, autism, infections, and chronic fatigue syndrome.
[0036] Oxidative stress is thought to be associated with certain cardiovascular diseases because oxidation of LDL within the vascular endothelium is a precursor to plaque formation. Oxidative stress also plays a role in the ischemic cascade resulting from oxygen-reperfusion injury after hypoxia. This cascade includes both stroke and heart attack. Oxidative stress has also been implicated in chronic fatigue syndrome. Oxidative stress also contributes to tissue damage after irradiation and hyperoxia and in diabetes (see Figure 2).
[0037] Oxidative stress is expected to be involved in the age-related development of cancer. Reactive species produced during oxidative stress can cause direct damage to DNA and are therefore mutagenic. They can also inhibit apoptosis and promote proliferation, invasiveness, and metastasis. Infection with Helicobacter pylori, which increases the production of reactive oxygen and nitrogen species in the human stomach, is also thought to be important in the development of gastric cancer.
[0038] Ferritin is a protein-iron complex found in all tissues, particularly the liver, spleen, skeletal muscle, and bone marrow. The ferritin molecule consists of 24 subunits, heavy and light chains. These subunits form a shell around a cavity where crystalline iron is stored. Intracellular accumulation of ferritin forms aggregates that are endocytosed by lysosomes. Hemosiderin is formed when ferritin is degraded by lysosomal proteases. Serum ferritin is the most useful measure for assessing total body iron stores. It results from excess intracellular iron not used for hemoglobin synthesis. The amount of ferritin in plasma directly reflects the total body iron stored as ferritin in tissues. In iron deficiency, serum ferritin is often below 12 ng / mL, whereas in iron overload, it can exceed 1000 ng / mL. A serum ferritin level greater than 200 ng / mL for premenopausal women or greater than 400 ng / mL for men (in the absence of inflammation, cancer, or hepatitis) supports the diagnosis of hereditary hemochromatosis.
[0039] Increased blood ferritin (iron) levels can lead to cell death through ROS accumulation. Excess iron can also attack beta cells. Serum ferritin levels are known to be significantly elevated in patients with type II diabetes. Type II diabetes patients with increased serum ferritin levels have poor glycemic control, which is reflected by increased HBA1c levels. Without wishing to be bound by theory, isomyosmine has the ability to bind to ferritin, which is believed to enable the regulation of ferritin levels and the treatment of diseases directly related to increased serum iron levels (e.g., hemochromatosis) or indirectly related diseases (e.g., type II diabetes). In some embodiments, isomyosmine may be administered to an individual in an amount effective to maintain serum ferritin levels within an appropriate range for the individual, such as less than about 200 ng / mL or less than about 150 ng / mL.
[0040] Type 2 diabetes mellitus (T2DM) is characterized by impaired insulin secretion, glucose intolerance, and hyperglycemia. T2DM is now widely viewed as a chronic, low-grade inflammatory disease caused by long-term immune system imbalance, metabolic syndrome, or obesity-related nutritional overload. T2DM-related complications in the kidneys, arteries, and eyes are also manifested by inflammatory processes. While the regulation of inflammation has long focused on innate immunity, particularly macrophages, growing evidence suggests that T cells are crucial for the development of metabolic inflammation and insulin resistance. Growing evidence supports the crucial and intimate involvement of T cells in the pathogenesis of type 2 diabetes. Xia et al., "Role of T Lymphocytes in Type 2 Diabetes and Diabetes-Associated Inflammation," Journal of Diabetes Research, Vol. 2017, Article 6494795.
[0041] In some embodiments, a therapeutically effective amount of isomyosmine or a pharmaceutically acceptable salt thereof is administered to an individual in need thereof to treat a wound or a disorder selected from the group consisting of hemochromatosis, traumatic brain injury, major depression, minor depression, atypical depression, dysthymia, attention deficit disorder, hyperactivity, conduct disorder, narcolepsy, social phobia, obsessive-compulsive disorder, atypical facial pain, eating disorders, drug withdrawal and dependence disorders, depression, panic disorder, bulimia, anergic depression, treatment-resistant depression, headache, chronic pain syndrome, generalized anxiety disorder, preeclampsia, coronary artery disease, sickle cell anemia, idiopathic pulmonary fibrosis, and endometriosis.
[0042] The pharmaceutical compositions disclosed herein can optionally include other pharmaceutically acceptable components (or pharmaceutical components), including, but not limited to, buffers, preservatives, tonicity adjusters, salts, antioxidants, osmolality adjusters, physiological substances, pharmacological substances, bulking agents, emulsifiers, humectants, sweeteners, or flavoring agents. Various buffers and means for adjusting pH can be used to prepare the pharmaceutical compositions disclosed herein, provided the resulting preparation is pharmaceutically acceptable. Such buffers include, but are not limited to, acetate buffer, citrate buffer, phosphate buffer, neutral buffered saline, phosphate buffered saline, and borate buffer. It will be understood that acids or bases can be used to adjust the pH of the composition as needed. Pharmaceutically acceptable antioxidants include, but are not limited to, sodium metabisulfite, sodium thiosulfate, acetylcysteine, butylated hydroxyanisole, and butylated hydroxytoluene. Useful preservatives include, but are not limited to, benzalkonium chloride, chlorobutanol, thimerosal, phenylmercuric acetate, phenylmercuric nitrate, stabilized oxychloro compositions, and chelating agents such as DTPA or DTPA-bisamide, calcium DTPA, and CaNaDTPA-bisamide. Tonicity adjusters useful in pharmaceutical compositions include, but are not limited to, salts such as sodium chloride, potassium chloride, mannitol, or glycerin, as well as other pharmaceutically acceptable tonicity adjusters. Pharmaceutical compositions may be provided as salts, which can be formed using a number of acids, including, but not limited to, hydrochloric acid, sulfuric acid, acetic acid, lactic acid, tartaric acid, malic acid, and succinic acid. Salts tend to be more soluble in aqueous or other protic solvents than the corresponding free base forms. It will be understood that these and other substances known in the art of pharmacology can be included in pharmaceutical compositions.
[0043] In one embodiment, the pharmaceutical composition comprises isomyosmine and a pharmaceutically acceptable adjuvant. In another embodiment, the pharmaceutical composition disclosed herein comprises isomyosmine, a pharmaceutically acceptable solvent, and a pharmaceutically acceptable adjuvant. In aspects of this embodiment, the pharmaceutical composition disclosed herein may further comprise a pharmaceutically acceptable stabilizer. In other aspects of this embodiment, the pharmaceutical composition disclosed herein may further comprise a pharmaceutically acceptable carrier, a pharmaceutically acceptable component, or both a pharmaceutically acceptable carrier and a pharmaceutically acceptable component.
[0044] The compositions may contain isomyosmine alone or in combination with other therapeutic compounds. Therapeutic compounds are compounds intended to provide pharmacological activity or other direct effect in the diagnosis, cure, mitigation, treatment, or prevention of disease, or to affect the structure or any function of the human or animal body. The therapeutic compounds disclosed herein may be used in the form of a pharmaceutically acceptable salt, solvate, or solvate of a salt, such as a hydrochloride salt. Furthermore, the therapeutic compounds disclosed herein may be provided as racemates or as individual enantiomers, including R- or S-enantiomers. Thus, the therapeutic compounds disclosed herein may contain only the R-enantiomer, only the S-enantiomer, or a combination of both the R-enantiomer and the S-enantiomer of the therapeutic compound. In some embodiments, the therapeutic compounds may have anti-inflammatory activity.
[0045] References herein to a "therapeutic compound" may refer to isomyosmine, an active compound other than isomyosmine as described herein, or both.
[0046] In one embodiment, the therapeutic compounds disclosed herein have anti-inflammatory activity that can reduce the levels of pro-inflammatory molecules. In one aspect of this embodiment, the therapeutic compounds disclosed herein have anti-inflammatory activity that can reduce the levels of substance P (SP), calcitonin gene-related peptide (CGRP), glutamate, or a combination thereof. In other aspects of this embodiment, the therapeutic compounds disclosed herein have anti-inflammatory activity that can reduce the levels of SP, CGRP, glutamate, or a combination thereof released from sensory neurons by, for example, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95%. In still other aspects of this embodiment, a therapeutic compound disclosed herein may increase the levels of SP, CGRP, glutamate, or a combination thereof released from sensory neurons by, for example, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 10% to about 90%, about 20% to about 90%, about The anti-inflammatory activity can be reduced by 30% to about 90%, about 40% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 10% to about 80%, about 20% to about 80%, about 30% to about 80%, about 40% to about 80%, about 50% to about 80%, or about 60% to about 80%, about 10% to about 70%, about 20% to about 70%, about 30% to about 70%, about 40% to about 70%, or about 50% to about 70%.
[0047] Prostaglandins mediate local inflammatory responses and are involved in all inflammatory functions through their actions on prostaglandin receptors, mediating inflammatory signaling, including chemotaxis (macrophages, neutrophils, and eosinophils), vasodilation, and pain sensitivity. However, PG-mediated inflammatory responses are self-limiting (resolved). The primary resolution factor is a prostaglandin called 15dPGJ2, which is an endogenous agonist of peroxisome proliferator-activated receptor gamma (PPAR-γ) signaling. The PPAR-γ signaling pathway 1) induces apoptosis of macrophage M1 cells, thereby reducing the levels of Th1 proinflammatory cytokines, and 2) promotes the differentiation of monocytes into macrophage M2 cells, which then produce and release Th2 anti-inflammatory cytokines.
[0048] In one embodiment, the therapeutic compound has anti-inflammatory activity that can reduce the level of prostaglandin-induced inflammation. In other aspects of this embodiment, the therapeutic compound has anti-inflammatory activity that can reduce the level of prostaglandin-induced inflammation released from sensory neurons by, for example, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95%. In yet another aspect of this embodiment, the therapeutic compound reduces the level of inflammation induced prostaglandins released from sensory neurons by, for example, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 10% to about 90%, about 20% to about 90%, about 30% to about 90%, about The anti-inflammatory activity can be reduced by about 40% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 10% to about 80%, about 20% to about 80%, about 30% to about 80%, about 40% to about 80%, about 50% to about 80%, or about 60% to about 80%, about 10% to about 70%, about 20% to about 70%, about 30% to about 70%, about 40% to about 70%, or about 50% to about 70%.
[0049] In another embodiment, the therapeutic compound has substantially similar anti-inflammatory activity to 15dPGJ2. In aspects of this embodiment, the therapeutic compound has anti-inflammatory activity that is, for example, at least 5%, at least 15%, at least 25%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of that observed with 15dPGJ2. In other aspects of this embodiment, the therapeutic compound has anti-inflammatory activity in the range of, e.g., about 5% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 25% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 80% to about 90%, about 25% to about 80%, about 50% to about 80%, about 60% to about 80%, about 70% to about 80%, about 25% to about 70%, about 50% to about 70%, about 25% to about 60%, about 50% to about 60%, or about 25% to about 50% of the activity observed for 15dPGJ2.
[0050] Peroxisome proliferator-activated receptors (PPARs) are a group of nuclear receptor proteins that function as transcription factors regulating gene expression. All PPARs are known to heterodimerize with retinoid X receptors (RXRs) and bind to specific regions of target gene DNA called peroxisome proliferator hormone response elements (PPREs). PPARs play essential roles in regulating cell differentiation, development, and metabolism (carbohydrates, lipids, and proteins), as well as tumorigenesis in higher organisms. This family includes three members: PPAR-α, PPAR-γ, and PPAR-δ (also called PPAR-β). PPAR-α is expressed in the liver, kidney, heart, muscle, adipose tissue, and other tissues. PPAR-δ is expressed in many tissues, but is predominantly expressed in the brain, adipose tissue, and skin. PPAR-γ contains three alternatively spliced forms, each with distinct expression patterns. PPAR-γ1 is expressed in virtually all tissues, including the heart, muscle, colon, kidney, pancreas, and spleen. PPAR-γ2 is primarily expressed in adipose tissue. PPAR-γ3 is expressed in macrophages, the large intestine, and white adipose tissue. Endogenous ligands for PPARs include free fatty acids and eicosanoids. PPAR-γ is activated by PGJ2 (prostaglandin), whereas PPAR-α is activated by leukotriene B4.
[0051] In some embodiments, therapeutic compounds may have anti-inflammatory activity that can stimulate some or all of the PPAR signaling pathways, and it is contemplated that such therapeutic compounds may therefore act as pan-PPAR agonists or as selective PPAR agonists.
[0052] In other aspects, the therapeutic compound has anti-inflammatory activity that can stimulate the PPAR-α signaling pathway. In aspects of this embodiment, the therapeutic compounds disclosed herein stimulate the PPAR-α signaling pathway, e.g., by at least 5%, at least 15%, at least 25%, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90%. In other aspects of this embodiment, a therapeutic compound disclosed herein stimulates the PPAR-α signaling pathway in a range, e.g., from about 5% to about 100%, from about 50% to about 100%, from about 60% to about 100%, from about 70% to about 100%, from about 80% to about 100%, from about 25% to about 90%, from about 50% to about 90%, from about 60% to about 90%, from about 70% to about 90%, from about 80% to about 90%, from about 25% to about 80%, from about 50% to about 80%, from about 60% to about 80%, from about 70% to about 80%, from about 25% to about 70%, from about 50% to about 70%, from about 25% to about 60%, from about 50% to about 60%, or from about 25% to about 50%.
[0053] In some embodiments, the therapeutic compound has anti-inflammatory activity that can stimulate the PPAR-6 signaling pathway. For example, the therapeutic compound can stimulate the PPAR-6 signaling pathway by at least 5%, at least 15%, at least 25%, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90%. In some cases, the therapeutic compound stimulates the PPAR-6 signaling pathway in a range of, for example, about 5% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 25% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 80% to about 90%, about 25% to about 80%, about 50% to about 80%, about 60% to about 80%, about 70% to about 80%, about 25% to about 70%, about 50% to about 70%, about 25% to about 60%, about 50% to about 60%, or about 25% to about 50%.
[0054] In some embodiments, the therapeutic compound has anti-inflammatory activity and can stimulate the PPAR-γ signaling pathway. The therapeutic compound can bind to all isoforms of PPAR-γ, or can selectively bind to PPAR-γ1, PPAR-γ2, PPAR-γ3, or a combination of any two thereof. The therapeutic compound can stimulate the PPAR-γ signaling pathway, for example, by at least 5%, at least 15%, at least 25%, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90%. A therapeutic compound may stimulate the PPAR-γ signaling pathway in a range of, for example, about 5% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 25% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 80% to about 90%, about 25% to about 80%, about 50% to about 80%, about 60% to about 80%, about 70% to about 80%, about 25% to about 70%, about 50% to about 70%, about 25% to about 60%, about 50% to about 60%, or about 25% to about 50%.
[0055] Macrophages are activated and polarized into distinct phenotypes that express unique cell surface molecules and secrete distinct sets of cytokines and chemokines. The classical M1 phenotype supports pro-inflammatory Th1 responses driven by cytokines such as interleukin-6 (IL-6), IL-12, and IL-23, whereas the alternative M2 phenotype supports anti-inflammatory processes, generally driven by IL-10. M2 cells can be further classified into subsets M2a, M2b, and M2c based on the type of stimulus and subsequent expression of surface molecules and cytokines.
[0056] In yet another embodiment, the therapeutic compound has anti-inflammatory activity that can promote the transition from M1 to M2 phenotype. The therapeutic compound may have anti-inflammatory activity that can induce apoptosis of macrophage M1 cells. The therapeutic compound may have anti-inflammatory activity that can promote the differentiation of macrophage M2 cells. In yet another aspect of this embodiment, the therapeutic compound disclosed herein has anti-inflammatory activity that can induce apoptosis of macrophage M1 cells and promote the differentiation of macrophage M2 cells.
[0057] In yet another embodiment, the therapeutic compound has anti-inflammatory activity capable of modulating Th1 and Th2 cytokines. The therapeutic compound may have anti-inflammatory activity capable of reducing the levels of interferon gamma (IFN-γ), tumor necrosis factor alpha (TNF-α), interleukin 12 (IL-12), or a combination thereof, released from Th1 cells. In other aspects of this embodiment, the therapeutic compound may have anti-inflammatory activity capable of reducing the levels of IFN-γ, TNF-α, IL-12, or a combination thereof, released from Th1 cells by, for example, at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90%. In still other aspects of this embodiment, the therapeutic compound increases the level of IFN-γ, TNF-α, IL-12, or a combination thereof released from Th1 cells, e.g., by about 5% to about 100%, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 10% to about 90%, about 20% to about 90%, The anti-inflammatory activity may be reduced by about 30% to about 90%, about 40% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 10% to about 80%, about 20% to about 80%, about 30% to about 80%, about 40% to about 80%, about 50% to about 80%, or about 60% to about 80%, about 10% to about 70%, about 20% to about 70%, about 30% to about 70%, about 40% to about 70%, or about 50% to about 70%.
[0058] In another aspect of this embodiment, the therapeutic compound has anti-inflammatory activity that can increase the level of IL-10 released from Th2 cells. The therapeutic compound may have anti-inflammatory activity that can increase the level of IL-10 released from Th2 cells by, for example, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95%. In still other aspects of this embodiment, the therapeutic compound may increase the level of IL-10 released from Th2 cells, e.g., from about 5% to about 100%, from about 10% to about 100%, from about 20% to about 100%, from about 30% to about 100%, from about 40% to about 100%, from about 50% to about 100%, from about 60% to about 100%, from about 70% to about 100%, from about 80% to about 100%, from about 10% to about 90%, from about 20% to about 90%, from about 30% to about 9 ...40% to about 100%, from about 50% to about 100%, from about 60% to about 100%, from about 70% to about 100%, from about 80% to about 100%, from about 10% to about 90%, from about 20% to about 90%, from about 30% to about 90%, from about 40% to about 100%, from about 50% to about 100%, from about 60% to about 1 The anti-inflammatory activity may be increased by 0% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 10% to about 80%, about 20% to about 80%, about 30% to about 80%, about 40% to about 80%, about 50% to about 80%, or about 60% to about 80%, about 10% to about 70%, about 20% to about 70%, about 30% to about 70%, about 40% to about 70%, or about 50% to about 70%.
[0059] In another aspect of this embodiment, the therapeutic compound has anti-inflammatory activity that can decrease the levels of IFN-γ, TNF-α, IL-12, or a combination thereof, released from Th1 cells and increase the levels of IL-10 released from Th2 cells. The therapeutic compound has anti-inflammatory activity that can increase IFN-γ, TNF-α, IL-12, or a combination thereof, released from Th1 cells by, e.g., at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% and can increase the level of IL-10 released from Th2 cells by, e.g., at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95%.In further aspects of this embodiment, the therapeutic compound reduces IFN-γ, TNF-α, IL-12, or a combination thereof released from Th1 cells by, for example, about 5% to about 100%, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 10% to about 90%, about 20% to about 90%, about 30% to about 90%, about 40% to about 90%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 10% to about 80%, about 20% to about 80%, about 30% to about 80%, about 40% to about 80%, about 50% to about 80%, or about 60% to about 80%, about 10% to about 70%, about 20% to about 70%, about 30% to about 70%, about 40% to about 70%, or about The level of IL-10 released from Th2 cells can be reduced by, for example, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, about 10% to about 90%, about 20% to about 90%, about 30% to about 90%, about 40% to about 90%, and about 50% to about 100%. The anti-inflammatory activity may be increased by 0%, about 50% to about 90%, about 60% to about 90%, about 70% to about 90%, about 10% to about 80%, about 20% to about 80%, about 30% to about 80%, about 40% to about 80%, about 50% to about 80%, or about 60% to about 80%, about 10% to about 70%, about 20% to about 70%, about 30% to about 70%, about 40% to about 70%, or about 50% to about 70%.
[0060] In addition to isophosmin, the pharmaceutical formulations described herein may contain additional therapeutic compounds, such as nonsteroidal anti-inflammatory drugs (NSAIDs). NSAIDs are a large group of therapeutic compounds that have analgesic, anti-inflammatory, and antipyretic properties. NSAIDs reduce inflammation by blocking cyclooxygenase. NSAIDs include aceclofenac, acemetacin, actarit, alcofenac, alminoprofan, amfenac, aloxipirin, aminophenazone, anthraphenine, aspirin, azapropazone, benorylate, benoxaprofen, benzydamine, butibufen, celecoxib, chlortenoxacin, choline salicylate, clometacin, dexketoprofen, diclofenac, diflunisal, emorfazone, epirizole, etodolac, etoricoxib, feclobuzone, felbinac, fenbufen, fenclofenac, flurbiprofen, glafenine, and hydroxysalicylate. Examples of antihistamines include roxyethyl, ibuprofen, indomethacin, indoprofen, ketoprofen, ketorolac, lactylphenetidine, loxoprofen, lumiracoxib, mefenamic acid, meloxicam, metamizole, metiazinic acid, mofebutazone, mofezolac, nabumetone, naproxen, nifenazone, niflumic acid, oxametacin, phenacetin, pipebuzone, pranoprofen, propyphenazone, proquazone, protizinic acid, rofecoxib, salicylamide, salsalate, sulindac, suprofen, tiaramide, tinoridine, tolfenamic acid, valdecoxib, and zomepirac.
[0061] NSAIDs can be classified based on their chemical structure or mechanism of action. Non-limiting examples of NSAIDs include salicylic acid derivative NSAIDs, p-aminophenol derivative NSAIDs, propionic acid derivative NSAIDs, acetic acid derivative NSAIDs, enolic acid derivative NSAIDs, fenamic acid derivative NSAIDs, non-selective cyclooxygenase (COX) inhibitors, selective cyclooxygenase-1 (COX-1) inhibitors, and selective cyclooxygenase-2 (COX-2) inhibitors. The NSAID may be a profen. Examples of suitable salicylic acid derivative NSAIDs include, but are not limited to, acetylsalicylic acid (aspirin), diflunisal, and salsalate. Examples of suitable p-aminophenol derivative NSAIDs include, but are not limited to, paracetamol and phenacetin. Examples of suitable propionic acid derivative NSAIDs include, but are not limited to, aluminoprofen, benoxaprofen, dexketoprofen, fenoprofen, flurbiprofen, ibuprofen, indoprofen, ketoprofen, loxoprofen, naproxen, oxaprozin, pranoprofen, and saprofen. Examples of suitable acetic acid derivative NSAIDs include, but are not limited to, aceclofenac, acemetacin, actarit, alcofenac, amfenac, clometacin, diclofenac, etodolac, felbinac, fenclofenac, indomethacin, ketorolac, metiazinic acid, mofezolac, nabumetone, naproxen, oxametacin, sulindac, and zomepirac. Examples of suitable enolic acid (oxicam) derivative NSAIDs include, but are not limited to, droxicam, isoxicam, lornoxicam, meloxicam, piroxicam, and tenoxicam. Examples of suitable fenamic acid derivative NSAIDs include, but are not limited to, flufenamic acid, mefenamic acid, meclofenamic acid, and tolfenamic acid. Examples of suitable selective COX-2 inhibitors include, but are not limited to, celecoxib, etoricoxib, firocoxib, lumiracoxib, meloxicam, parecoxib, rofecoxib, and valdecoxib.
[0062] A therapeutic compound may have a log P value, which indicates that the compound is soluble in an organic solvent. As used herein, the term "log value" refers to the logarithm (base 10) of the partition coefficient (P) for a compound and is a measure of lipophilicity. Typically, P is defined as the ratio of the concentrations of the non-ionized compound in the two phases of a mixture of two immiscible solvents at equilibrium. Thus, log P = Log10(P), where P = [solute in immiscible solvent 1] / [solute in immiscible solvent 2]. The log P value of a compound, relative to the organic and aqueous phases, is constant for any given aqueous and organic solvent pair, and can be experimentally determined by one of several phase partitioning methods known to those skilled in the art, including, for example, shake-flask assays, HPLC assays, and interference between two immiscible electrolyte solutions (ITIES) assays.
[0063] In aspects of this embodiment, the therapeutic compound may have a log P value indicating that the compound is substantially soluble in an organic solvent. In aspects of this embodiment, the therapeutic compounds disclosed herein may have a log P value indicating that the compound is, for example, at least 50% soluble in an organic solvent, at least 60% soluble in an organic solvent, at least 70% soluble in an organic solvent, at least 80% soluble in an organic solvent, or at least 90% soluble in an organic solvent. In aspects of this embodiment, the therapeutic compounds disclosed herein may have a log P value indicating that the compound is, for example, between about 50% and about 100% soluble in an organic solvent, between about 60% and about 100% soluble in an organic solvent, between about 70% and about 100% soluble in an organic solvent, between about 80% and about 100% soluble in an organic solvent, or between about 90% and about 100% soluble in an organic solvent.
[0064] In aspects of this embodiment, therapeutic compounds disclosed herein may have a log P value of, e.g., greater than 1.1, greater than 1.2, greater than 1.4, greater than 1.6, greater than 1.8, greater than 2.0, greater than 2.2, greater than 2.4, greater than 2.6, greater than 2.8, greater than 3.0, greater than 3.2, greater than 3.4, or greater than 3.6. In other aspects of this embodiment, therapeutic compounds disclosed herein may have a log P value in the range of, e.g., between 1.8 and 4.0, between 2.0 and 4.0, between 2.1 and 4.0, between 2.2 and 4.0, between 2.3 and 4.0, between 2.4 and 4.0, between 2.5 and 4.0, between 2.6 and 4.0, or between 2.8 and 4.0. In other aspects of this embodiment, therapeutic compounds disclosed herein can have log P values in the ranges, for example, between 3.0 and 4.0, or between 3.1 and 4.0, between 3.2 and 4.0, between 3.3 and 4.0, between 3.4 and 4.0, between 3.5 and 4.0, or between 3.6 and 4.0. In yet other aspects of this embodiment, therapeutic compounds disclosed herein can have log P values in the ranges, for example, between 2.0 and 2.5, between 2.0 and 2.7, between 2.0 and 3.0, or between 2.2 and 2.5.
[0065] The therapeutic compound may have a hydrophobic polar surface area. As used herein, the term "polar surface area" refers to the sum of the surfaces of all polar atoms in the structure of the compound and is a measure of hydrophobicity. Typically, these polar atoms include, for example, oxygen, nitrogen, and their attached hydrogens. In aspects of this embodiment, the therapeutic compounds disclosed herein may have a surface area of, for example, 8.0 nm 2 Less than 7.0 nm 2 Less than 6.0 nm 2 Less than 5.0 nm 2 Less than 4.0 nm 2 Less than or equal to 3.0 nm 2 The polar surface area may be less than 1000 nm.
[0066] In some embodiments, the therapeutic compound can be a PPAR-γ agonist.Suitable examples of PPAR-γ agonists include, but are not limited to, benzbromarone, cannabidiol, cilostazol, curcumin, delta(9)-tetrahydrocannabinol, glycyrrhetinic acid, indomethacin, irbesartan, monascin, mycophenolic acid, resveratrol, 6-shogaol, telmisartan, thiazolidinediones, such as rosiglitazone, pioglitazone and troglitazone, NSAIDs, and fibrates.Other suitable PPAR-γ agonists are described in Masson et al. US Patent Application Publication No. 2011 / 0195993A1, the disclosure of which is incorporated herein by reference.
[0067] The therapeutic compound may be a nuclear receptor binding agent. Examples of suitable nuclear receptor binding agents include, but are not limited to, retinoic acid receptor (RAR) binding agents, retinoid X receptor (RXR) binding agents, liver X receptor (LXR) binding agents, and vitamin D binding agents.
[0068] The therapeutic compound may be an antihyperlipidemic agent. There are several classes of antihyperlipidemic agents (also known as lipid-lowering agents). They may differ in both their impact on cholesterol profile and adverse effects. For example, some agents may lower low-density lipoprotein (LDL) while preferentially increasing high-density lipoprotein (HDL). Clinically, the choice of agent will depend on the individual's cholesterol profile, cardiovascular risk, and / or liver and kidney function. Examples of suitable antihyperlipidemic agents include, but are not limited to, fibrates, statins, tocotrienols, niacin, bile acid sequestrants (resins), cholesterol absorption inhibitors, pancreatic lipase inhibitors, and sympathomimetic amines.
[0069] The therapeutic compound may be a fibrate.Fibrates are a class of amphiphilic carboxylic acids that have the property of modifying lipid levels.These therapeutic compounds are used for a range of metabolic disorders.One of the non-limiting uses is as an antihyperlipidemic agent, for example, to reduce the levels of triglycerides and LDL, and to increase the level of HDL.Suitable examples of fibrates include, but are not limited to, bezafibrate, ciprofibrate, clofibrate, gemfibrozil, and fenofibrate.
[0070] The therapeutic compound may be a statin. Statins (or HMG-CoA reductase inhibitors) are a class of therapeutic compounds used to reduce LDL and / or cholesterol levels by inhibiting the enzyme HMG-CoA reductase, which plays a central role in the production of cholesterol in the liver. To compensate for the decrease in cholesterol availability, the synthesis of hepatic LDL receptors increases, resulting in increased clearance of LDL particles from the blood. Examples of suitable statins include, but are not limited to, atorvastatin, fluvastatin, lovastatin, pitavastatin, pravastatin, rosuvastatin, and simvastatin.
[0071] Therapeutic compound can be tocotrienol.Tocotrienol is another class of HMG-CoA reductase inhibitor, and can be used to lower LDL and / or cholesterol level by inducing liver LDL receptor upregulation and / or reducing plasma LDL level.Suitable tocotrienol examples include but are not limited to γ-tocotrienol and δ-tocotrienol.
[0072] The therapeutic compound may be niacin. Niacin is a class of therapeutic compounds with lipid level-modifying properties. For example, niacin can lower LDL by selectively inhibiting hepatic diacylglycerol acyltransferase 2, reducing triglyceride synthesis and VLDL secretion via receptors HM74 and HM74A or GPR109A. These therapeutic compounds are used for a range of metabolic disorders. One non-limiting use is as an antihyperlipidemic agent, where it can inhibit the breakdown of fat in adipose tissue. By blocking the breakdown of fat, niacin causes a decrease in free fatty acids in the blood, resulting in a decrease in the secretion of very low-density lipoproteins (VLDL) and cholesterol by the liver. By lowering VLDL levels, niacin can also increase HDL levels in the blood. Examples of niacin include, but are not limited to, acipimox, niacin, nicotinamide, and vitamin B3.
[0073] The therapeutic compound may be a bile acid sequestrant. Bile acid sequestrants (also known as resins) are a class of therapeutic compounds used to bind to certain components of bile in the gastrointestinal tract. These agents disrupt the enterohepatic circulation of bile acids by capturing these components and preventing their reabsorption from the intestine. Bile acid sequestrants are particularly effective in lowering LDL and cholesterol by capturing cholesterol-containing bile acids released into the intestine and preventing their reabsorption from the intestine. In addition, bile acid sequestrants can also increase HDL levels. Examples of suitable bile acid sequestrants include, but are not limited to, cholestyramine, colesevelam, and colestipol.
[0074] In some embodiments, the therapeutic compound can be a cholesterol absorption inhibitor.Cholesterol absorption inhibitors are a class of therapeutic compounds that inhibit cholesterol absorption from the intestine.The reduction in cholesterol absorption leads to the upregulation of LDL receptors on cell surface and the increased uptake of LDL cholesterol into these cells, thus reducing the level of LDL in plasma.Examples of suitable cholesterol absorption inhibitors include, but are not limited to, ezetimibe, phytosterol, sterol, and stanol.
[0075] The therapeutic compound may be a fat absorption inhibitor. Fat absorption inhibitors are a class of therapeutic compounds that inhibit the absorption of fat from the intestine. A reduction in fat absorption reduces calorie intake. In one embodiment, the fat absorption inhibitor inhibits pancreatic lipase, an enzyme that breaks down triglycerides in the intestine. Examples of suitable fat absorption inhibitors include, but are not limited to, orlistat.
[0076] The therapeutic compound may be a sympathomimetic amine. Sympathomimetic amines are a class of therapeutic compounds that mimic the effects of sympathetic nervous system transmitters such as catecholamines, epinephrine (adrenaline), norepinephrine (noradrenaline), and / or dopamine. Sympathomimetic amines can act as α-adrenergic agonists, β-adrenergic agonists, dopamine agonists, monoamine oxidase (MAO) inhibitors, and COMT inhibitors. Such therapeutic compounds are used, inter alia, to treat cardiac arrest, hypotension, or even to delay preterm labor. Examples of suitable sympathomimetic amines include, but are not limited to, clenbuterol, salbutamol, ephedrine, pseudoephedrine, methamphetamine, amphetamine, phenylephrine, isoproterenol, dobutamine, methylphenidate, lisdexamfetamine, cathinone, cathinone, cocaine, benzylpiperazine (BZP), methylenedioxypyrovalerone (MDPV), 4-methylaminorex, pemoline, phenmetrazine, and propylhexedrine.
[0077] In another embodiment, isomyosmine may be administered to treat tobacco or other substance addiction, including promoting smoking cessation or otherwise assisting individuals in reducing or eliminating nicotine cravings or dependence. Isomyosmine has been found to be a potent inhibitor of monoamine oxidase (MAO), including both MAO-A and MAO-B. Through these and / or other mechanisms, including one or more of the anti-inflammatory mechanisms described above, pharmaceutical compositions containing isomyosmine may be particularly effective for treating tobacco addiction and / or assisting individuals in reducing or eliminating nicotine cravings or dependence. For some individuals, administration of isomyosmine may be effective for treating more than one disorder. For example, COPD is a relatively common disorder among smokers. Compositions containing isomyosmine may be useful for assisting such individuals not only with smoking cessation, but also in treating COPD and / or other chronic inflammation-related disorders from which the individual suffers, whether caused by or related to smoking.
[0078] Pharmaceutical compositions containing isomyosmine may also be effective in treating other disorders associated with MAO activity, including major depression, minor depression, atypical depression, dysthymia, attention deficit disorder, hyperactivity, conduct disorder, narcolepsy, social phobia, obsessive-compulsive disorder, atypical facial pain, eating disorders, drug withdrawal syndromes and drug dependence disorders, including dependence on alcohol, opioids, amphetamines, cocaine, tobacco, and cannabis (marijuana), depression, panic disorder, bulimia, anergic depression, treatment-resistant depression, headache, chronic pain syndromes, and generalized anxiety disorder.
[0079] The therapeutic compounds disclosed herein may be esters of the therapeutic compound. Generally, esters of a therapeutic compound increase the log P value compared to the same therapeutic compound without the ester modification. The ester group may be attached to the therapeutic compound, for example, via an existing carboxylic acid or hydroxy functional group of the therapeutic compound. The ester of a therapeutic compound may have increased hydrophobicity and therefore may be dissolved in a reduced volume of the solvents disclosed herein. In some instances, the ester of a therapeutic compound may be directly combined with the adjuvants disclosed herein, thereby eliminating the need for a solvent. The ester of a therapeutic compound may enable the preparation of pharmaceutical compositions disclosed herein when the non-esterified form of the same therapeutic compound would otherwise be immiscible in the solvents disclosed herein. The ester of a therapeutic compound may also be delivered in a manner that more effectively inhibits pro-inflammatory responses, provided the compound is combined with an adjuvant disclosed herein. In one embodiment, the therapeutic compound may be reacted with an ethyl ester to form an ethyl ester of the therapeutic compound.
[0080] In another embodiment, the pharmaceutical composition does not include a pharmaceutically acceptable solvent, as described above. In one aspect of this embodiment, the pharmaceutical composition may include a therapeutic compound and a pharmaceutically acceptable adjuvant, but does not include a pharmaceutically acceptable solvent.
[0081] The pharmaceutical composition may contain a therapeutic compound in an amount sufficient to allow for routine administration to an individual. In aspects of this embodiment, the pharmaceutical composition disclosed herein may be, for example, at least 5 mg, at least 10 mg, at least 15 mg, at least 20 mg, at least 25 mg, at least 30 mg, at least 35 mg, at least 40 mg, at least 45 mg, at least 50 mg, at least 55 mg, at least 60 mg, at least 65 mg, at least 70 mg, at least 75 mg, at least 80 mg, at least 85 mg, at least 90 mg, at least 95 mg, or at least 100 mg of a therapeutic compound. In other aspects of this embodiment, the pharmaceutical compositions disclosed herein can be, for example, at least 5 mg, at least 10 mg, at least 20 mg, at least 25 mg, at least 50 mg, at least 75 mg, at least 100 mg, at least 200 mg, at least 300 mg, at least 400 mg, at least 500 mg, at least 600 mg, at least 700 mg, at least 800 mg, at least 900 mg, at least 1,000 mg, at least 1,100 mg, at least 1,200 mg, at least 1,300 mg, at least 1,400 mg, or at least 1,500 mg. In still other aspects of this embodiment, the pharmaceutical compositions disclosed herein can be in the range of, for example, about 5 mg to about 100 mg, about 10 mg to about 100 mg, about 50 mg to about 150 mg, about 100 mg to about 250 mg, about 150 mg to about 350 mg, about 250 mg to about 500 mg, about 350 mg to about 600 mg, about 500 mg to about 750 mg, about 600 mg to about 900 mg, about 750 mg to about 1,000 mg, about 850 mg to about 1,200 mg, or about 1,000 mg to about 1,500 mg.In still other aspects of this embodiment, the pharmaceutical compositions disclosed herein may be administered in a range of doses, e.g., from about 10 mg to about 250 mg, from about 10 mg to about 500 mg, from about 10 mg to about 750 mg, from about 10 mg to about 1,000 mg, from about 10 mg to about 1,500 mg, from about 50 mg to about 250 mg, from about 50 mg to about 500 mg, from about 50 mg to about 750 mg, from about 50 mg to about 1,000 mg, from about 50 mg to about 1,500 mg, from about 100 mg g to about 250 mg, about 100 mg to about 500 mg, about 100 mg to about 750 mg, about 100 mg to about 1,000 mg, about 100 mg to about 1,500 mg, about 200 mg to about 500 mg, about 200 mg to about 750 mg, about 200 mg to about 1,000 mg, about 200 mg to about 1,500 mg, about 5 mg to about 1,500 mg, about 5 mg to about 1,000 mg, or about 5 mg to about 250 mg.
[0082] The pharmaceutical compositions described herein may contain a pharmaceutically acceptable solvent. A solvent is a liquid, solid, or gas (solute) that dissolves another solid, liquid, or gas, resulting in a solution. Solvents useful in pharmaceutical compositions include, but are not limited to, pharmaceutically acceptable polar aprotic solvents, pharmaceutically acceptable polar protic solvents, and pharmaceutically acceptable nonpolar solvents. Pharmaceutically acceptable polar aprotic solvents include, but are not limited to, dichloromethane (DCM), tetrahydrofuran (THF), ethyl acetate, acetone, dimethylformamide (DMF), acetonitrile (MeCN), and dimethyl sulfoxide (DMSO). Pharmaceutically acceptable polar protic solvents include, but are not limited to, acetic acid, formic acid, ethanol, n-butanol, 1-butanol, 2-butanol, isobutanol, sec-butanol, tert-butanol, n-propanol, isopropanol, 1,2 propanediol, methanol, glycerol, and water. Pharmaceutically acceptable non-polar solvents include, but are not limited to, pentane, cyclopentane, hexane, cyclohexane, benzene, toluene, 1,4-dioxane, chloroform, n-methyl-pyrrilidone (NMP), and diethyl ether.
[0083] The pharmaceutical compositions disclosed herein may comprise a sufficient amount of solvent to dissolve the therapeutic compounds disclosed herein. In other aspects of this embodiment, the pharmaceutical compositions disclosed herein may comprise, for example, less than about 90% (v / v), less than about 80% (v / v), less than about 70% (v / v), less than about 65% (v / v), less than about 60% (v / v), less than about 55% (v / v), less than about 50% (v / v), less than about 45% (v / v), less than about 40% (v / v), less than about 35% (v / v), less than about 30% (v / v), less than about 25% (v / v), less than about 20% (v / v), less than about 15% (v / v), less than about 10% (v / v), or less than about 5% (v / v), or less than about 1% (v / v) of solvent. In other aspects of this embodiment, the pharmaceutical compositions disclosed herein may be used in a range of concentrations, e.g., from about 1% (v / v) to 90% (v / v), from about 1% (v / v) to 70% (v / v), from about 1% (v / v) to 60% (v / v), from about 1% (v / v) to 50% (v / v), from about 1% (v / v) to 40% (v / v), from about 1% (v / v) to 30% (v / v), from about 1% (v / v) to 50% (v / v), from about 1% (v / v) to 60% (v / v), from about 1% (v / v) to 70% (v / v), from about 1% (v / v) to 80% (v / v), from about 1% (v / v) to 90% (v / v), from about 1% (v / v) to 90% (v / v), from about 1% (v / v) to 100% (v / v), from about 1% (v / v) to 120% (v / v), from about 1% (v / v) to 140% (v / v), from about 1% (v / v) to 160% (v / v), from about 1% (v / v) to 180% (v / v), from about 1% (v / v) to 190% (v / v), from about 1% (v / v) to 200% (v / v), from about 1% (v / v) to 250% (v / v), from about 1% (v / v) to 260% (v / v), from about 1% (v / v) to 280% (v / v), from about 1% (v / v) to 290% (v / v), from about 1% (v / v) to 30 %(v / v) to 20%(v / v), approximately 1%(v / v) to 10%(v / v), approximately 2%(v / v) to 50%(v / v), approximately 2%(v / v) to 40%(v / v), approximately 2%(v / v) to 30%(v / v), approximately 2%(v / v) to 20%(v / v), approximately 2%(v / v) to 10%(v / v), approximately 4%(v / v) to 50%(v / v), Approximately 4% (v / v) to 40% (v / v), approximately 4% (v / v) to 30% (v / v), approximately 4% (v / v) to 20% (v / v), approximately 4% (v / v) to 10% (v / v), approximately 6% (v / v) to 50% (v / v), approximately 6% (v / v) to 40% (v / v), approximately 6% (v / v) to 30% (v / v), approximately 6% (v / v) to 20% (v / v) ), about 6% (v / v) to 10% (v / v), about 8% (v / v) to 50% (v / v), about 8% (v / v) to 40% (v / v), about 8% (v / v) to 30% (v / v), about 8% (v / v) to 20% (v / v), about 8% (v / v) to 15% (v / v), or about 8% (v / v) to 12% (v / v).
[0084] In one embodiment, the solvent may comprise a pharmaceutically acceptable alcohol. As used herein, the term "alcohol" refers to an organic molecule containing a hydroxy functional group (-OH) attached to a carbon atom, where the carbon atom is saturated. In aspects of this embodiment, the alcohol may be, for example, C 1~4 Alcohol, C 2~4 Alcohol, C 1~5 Alcohol, C 1~7 Alcohol, C 1~10 Alcohol, C 1~15 Alcohol, or C 1~20 The alcohol may be, for example, an alcohol. In other aspects of this embodiment, the alcohol may be, for example, a primary alcohol, a secondary alcohol, or a tertiary alcohol. In other aspects of this embodiment, the alcohol may be, for example, an acyclic alcohol, a monohydric alcohol, a polyhydric alcohol (also known as a polyol or sugar alcohol), an unsaturated aliphatic alcohol, an alicyclic alcohol, or a combination thereof. Examples of monohydric alcohols include, but are not limited to, methanol, ethanol, propanol, butanol, pentanol, and 1-hexadecanol. Examples of polyhydric alcohols include, but are not limited to, glycol, glycerol, arabitol, erythritol, xylitol, maltitol, sorbitol (glucitol), mannitol, inositol, lactitol, galactitol (iditol), and isomalt. Examples of unsaturated aliphatic alcohols include, but are not limited to, prop-2-en-1-ol, 3,7-dimethylocta-2,6-dien-1-ol, and prop-2-yn-1-ol. Examples of cycloaliphatic alcohols include, but are not limited to, cyclohexane-1,2,3,4,5,6-hexyl and 2-(2-propyl)-5-methyl-cyclohexan-1-ol.
[0085] In another embodiment, the solvent may comprise a pharmaceutically acceptable alcohol-acid ester. Suitable pharmaceutically acceptable alcohols include those disclosed herein. Suitable acids include, but are not limited to, acetic acid, butyric acid, and formic acid. Alcohol-acid esters include, but are not limited to, methyl acetate, methyl butyrate, methyl formate, ethyl acetate, ethyl butyrate, ethyl formate, propyl acetate, propyl butyrate, propyl formate, butyl acetate, butyl butyrate, butyl formate, isobutyl acetate, isobutyl butyrate, isobutyl formate, pentyl acetate, pentyl butyrate, pentyl formate, and 1-hexadecyl acetate, 1-hexadecyl butyrate, and 1-hexadecyl formate.
[0086] In another embodiment, the solvent can include a pharmaceutically acceptable polyethylene glycol (PEG) polymer. PEG polymers, also known as polyethylene oxide (PEO) or polyoxyethylene (POE) polymers, are prepared by the polymerization of ethylene oxide and are commercially available over a wide range of molecular weights, from 100 g / mol to 10,000,000 g / mol. PEG polymers with low molecular weights are liquids or low-melting solids, while PEG polymers with high molecular weights are solids. PEG polymers include, but are not limited to, PEG100, PEG200, PEG300, PEG400, PEG500, PEG600, PEG700, PEG800, PEG900, PEG1000, PEG1100, PEG1200, PEG1300, PEG1400, PEG1500, PEG1600, PEG1700, PEG1800, PEG1900, PEG2000, PEG2100, PEG2200, PEG2300, PEG2400, PEG2500, PEG2600, PEG2700, PEG2800, PEG2900, PEG3000, and PEG325 PEG 10,000, PEG 11,000, PEG 12,000, PEG 13,000, PEG 14,000, PEG 15,000, PEG 16,000, PEG 17,000, PEG 18,000, PEG 19,000, or PEG 20,000.
[0087] In another embodiment, the solvent can include a pharmaceutically acceptable glyceride. Glycerides include substituted glycerols, in which one, two, or all three hydroxy groups of glycerol are esterified with a fatty acid to produce monoglycerides, diglycerides, and triglycerides, respectively. In these compounds, each hydroxy group of glycerol can be esterified with a different fatty acid. Furthermore, glycerides can be acetylated to produce acetylated monoglycerides, acetylated diglycerides, and acetylated triglycerides.
[0088] In one embodiment, the solvent can comprise a pharmaceutically acceptable solid solvent. The solid solvent can be useful in the manufacture of solid dosage formulations of the pharmaceutical compositions disclosed herein. Typically, the solid solvent is melted to dissolve the therapeutic compound. Pharmaceutically acceptable solid solvents include, but are not limited to, menthol and PEG polymers as described above.
[0089] Aspects of the present specification disclose, in part, a pharmaceutically acceptable adjuvant. An adjuvant is a pharmacological agent that modifies the effect of another agent, such as one or more therapeutic compounds disclosed herein. Furthermore, the adjuvants disclosed herein may be used as solvents to dissolve the therapeutic compounds disclosed herein, forming an adjuvant solution. The adjuvant may facilitate delivery of the therapeutic compound in a manner that more effectively inhibits pro-inflammatory responses. In one embodiment, the adjuvant facilitates delivery of the therapeutic compound into macrophages.
[0090] The pharmaceutical composition may include a pharmaceutically acceptable adjuvant in an amount sufficient to mix with the solution or emulsion. In other aspects of this embodiment, the pharmaceutical composition may include the adjuvant in an amount of, for example, at least 10% (v / v), at least 20% (v / v), at least 30% (v / v), at least 35% (v / v), at least 40% (v / v), at least 45% (v / v), at least 50% (v / v), at least 55% (v / v), at least 60% (v / v), at least 65% (v / v), at least 70% (v / v), at least 75% (v / v), or at least 80% (v / v), at least 85% (v / v), or at least 90% (v / v), at least 95% (v / v), or at least 99% (v / v). In other aspects of this embodiment, the pharmaceutical composition may be, for example, from about 30% (v / v) to about 99% (v / v), from about 35% (v / v) to about 99% (v / v), from about 40% (v / v) to about 99% (v / v), from about 45% (v / v) to about 99% (v / v), from about 50% (v / v) to about 99% (v / v), from about 30% (v / v) to about 98% (v / v), from about 35% (v / v) to about 98% (v / v), from about 40% (v / v) to about 99% (v / v), ) to about 98% (v / v), about 45% (v / v) to about 98% (v / v), about 50% (v / v) to about 98% (v / v), about 30% (v / v) to about 95% (v / v), about 35% (v / v) to about 95% (v / v), about 40% (v / v) to about 95% (v / v), about 45% (v / v) to about 95% (v / v), or about 50% (v / v) to about 95% (v / v).In still other aspects of this embodiment, the pharmaceutical composition may be, for example, from about 70% (v / v) to about 97% (v / v), from about 75% (v / v) to about 97% (v / v), from about 80% (v / v) to about 97% (v / v), from about 85% (v / v) to about 97% (v / v), from about 88% (v / v) to about 97% (v / v), from about 89% (v / v) to about 97% (v / v), from about 90% (v / v) to about 97% (v / v), from about 75% (v / v) to about 96% (v / v), from about 80% (v / v) to about 96% (v / v), from about 85% (v / v) to about 97% (v / v), The adjuvant may be present in an amount ranging from about 88% (v / v) to about 96% (v / v), about 88% (v / v) to about 96% (v / v), about 89% (v / v) to about 96% (v / v), about 90% (v / v) to about 96% (v / v), about 75% (v / v) to about 93% (v / v), about 80% (v / v) to about 93% (v / v), about 85% (v / v) to about 93% (v / v), about 88% (v / v) to about 93% (v / v), about 89% (v / v) to about 93% (v / v), or about 90% (v / v) to about 93% (v / v).
[0091] In one embodiment, the adjuvant may be a pharmaceutically acceptable lipid. Lipids can be broadly defined as hydrophobic or amphiphilic small molecules. The amphiphilic nature of some lipids allows them to form structures such as vesicles, liposomes, or membranes in an aqueous environment. Non-limiting examples of lipids include fatty acids, glycerolipids (such as monoglycerides, diglycerides, and triglycerides), phospholipids, sphingolipids, sterol lipids, prenol lipids, saccharolipids, and polyketides. The pharmaceutical compositions disclosed herein may include, for example, oils, oily liquids, fats, fatty acids, waxes, fatty acid esters, fatty acid salts, fatty alcohols, glycerides (monoglycerides, diglycerides, or triglycerides), phospholipids, glycol esters, sucrose esters, glycerol oleate derivatives, medium-chain triglycerides, or mixtures thereof.
[0092] Lipids useful in pharmaceutical compositions can be pharmaceutically acceptable fatty acids. Fatty acids contain carboxylic acids with long, unbranched hydrocarbon chains that can be either saturated or unsaturated. The configuration thus results in fatty acids with a polar, hydrophilic end and a nonpolar, hydrophobic end that is insoluble in water. Most naturally occurring fatty acids have hydrocarbon chains of an even number, typically between 4 and 24 carbon atoms, which can be attached to functional groups containing oxygen, halogens, nitrogen, and sulfur. Synthetic or unnatural fatty acids can have hydrocarbon chains of any number of carbon atoms, ranging from 3 to 40. When double bonds are present, either cis or trans geometric isomerism can exist, which significantly affects the molecular configuration of the molecule. Cis double bonds cause bending in the fatty acid chain, and the effect becomes more pronounced the more double bonds there are in the chain. While most naturally occurring fatty acids are in the cis configuration, trans isomers exist in some natural and partially hydrogenated fats and oils.Examples of fatty acids include, but are not limited to, caprylic acid (8:0), pelargonic acid (9:0), capric acid (10:0), undecylic acid (11:0), lauric acid (12:0), tridecylic acid (13:0), myristic acid (14:0), myristoleic acid (14:1), pentadecanoic acid (15:0), palmitic acid (16:0), palmitoleic acid (16:1), sapienic acid (16:1), margaric acid (17:0), stearic acid (18:0), oleic acid (18:1), elaidic acid (18:1), vaccenic acid (18:1), linoleic acid (18:2), linoelaidic acid (18:2), α-linolenic acid (18:3), γ-linolenic acid (18:3), stearidonic ...α-linolenic acid (18:3), γ-linolenic acid (18:3), stearidonic acid (18:0), oleic acid (18:1), elaidic acid (18:1), vaccenic acid (18:1), linoleic acid (18:2), α-linolenic acid (18:3), γ-linolenic acid (18:3), stearidonic acid (18:0), 8:4), nonadecylic acid (19:0), arachidic acid (20:0), eicosenoic acid (20:1), dihomo-γ-linolenic acid (20:3), mead acid (20:3), arachidonic acid (20:4), eicosapentaenoic acid (20:5), heneicosylic acid (21:0), behenic acid (22:0), erucic acid (22:1), docosahexaenoic acid ( 22:6), tricosylic acid (23:0), lignoceric acid (24:0), nervonic acid (24:1), pentacosylic acid (25:0), cerotic acid (26:0), heptacosylic acid (27:0), montanic acid (28:0), nonacosylic acid (29:0), melissic acid (30:0), henatriacontylic acid (31:0), laxeroic acid (32:0), pusylic acid (33:0), gedaic acid (34:0), ceroplastic acid (35:0), and hexatriacontylic acid (36:0).
[0093] In one embodiment, the adjuvant can be a pharmaceutically acceptable saturated or unsaturated fatty acid, for example, the saturated or unsaturated fatty acid can contain at least 8, at least 10, at least 12, at least 14, at least 16, at least 18, at least 20, at least 22, at least 24, at least 26, at least 28, or at least 30 carbon atoms. In some instances, the saturated or unsaturated fatty acid contains, for example, between 4 and 24 carbon atoms, between 6 and 24 carbon atoms, between 8 and 24 carbon atoms, between 10 and 24 carbon atoms, between 12 and 24 carbon atoms, between 14 and 24 carbon atoms, or between 16 and 24 carbon atoms, between 4 and 22 carbon atoms, between 6 and 22 carbon atoms, between 8 and 22 carbon atoms, between 10 and 22 carbon atoms, between 12 and 22 carbon atoms, between 14 and 22 carbon atoms, or between 16 and 22 carbon atoms, between 4 and 20 carbon atoms, between 6 and 20 carbon atoms, between 8 and 20 carbon atoms, between 10 and 20 carbon atoms, between 12 and 20 carbon atoms, between 14 and 20 carbon atoms, or between 16 and 20 carbon atoms. If unsaturated, the fatty acid can have, for example, 1 or more, 2 or more, 3 or more, 4 or more, 5 or more, or 6 or more double bonds.
[0094] Pharmaceutically acceptable saturated or unsaturated fatty acids can be liquid at room temperature.The melting point of fatty acids is mainly determined by the saturated / unsaturated degree of hydrocarbon chain.In this embodiment, saturated or unsaturated fatty acids have a melting point temperature of, for example, 20 ℃ or less, 15 ℃ or less, 10 ℃ or less, 5 ℃ or less, 0 ℃ or less, -5 ℃ or less, -10 ℃ or less, -15 ℃ or less, or -20 ℃ or less. In other aspects of this embodiment, the saturated or unsaturated fatty acid has a melting point temperature in the range of, e.g., about -20°C to about 20°C, about -20°C to about 18°C, about -20°C to about 16°C, about -20°C to about 12°C, about -20°C to about 8°C, about -20°C to about 4°C, about -20°C to about 0°C, about -15°C to about 20°C, about -15°C to about 18°C, about -15°C to about 16°C, about -15°C to about 12°C, about -15°C to about 8°C, about -15°C to about 4°C, or about -15°C to about 0°C.
[0095] In another embodiment, the adjuvant may comprise one type of pharmaceutically acceptable fatty acid. The adjuvant may comprise, for example, palmitic acid only, stearic acid only, oleic acid only, linoleic acid only, or linolenic acid only. Alternatively, the adjuvant may comprise a plurality of different pharmaceutically acceptable fatty acids. The adjuvant may comprise, for example, two or more different fatty acids, three or more different fatty acids, four or more different fatty acids, five or more different fatty acids, or six or more different fatty acids.
[0096] In other aspects of this embodiment, the adjuvant can comprise two or more different pharmaceutically acceptable fatty acids, including at least palmitic acid, stearic acid, oleic acid, linoleic acid, and / or linolenic acid, and any combination thereof. The adjuvant can comprise, for example, a palmitic acid and / or stearic acid and / or oleic acid:linolenic acid and / or linoleic acid ratio of at least 2:1, at least 3:1, at least 4:1, at least 5:1, at least 6:1, at least 7:1, at least 8:1, at least 9:1, at least 10:1, at least 15:1, or at least 20:1. In some examples, the adjuvant can comprise, for example, a palmitic acid and / or stearic acid and / or oleic acid:linolenic acid and / or linoleic acid ratio ranging from about 1:1 to about 20:1, from about 2:1 to about 15:1, from about 4:1 to about 12:1, or from about 6:1 to about 10:1.
[0097] In other aspects of this embodiment, the adjuvant may comprise four or more different pharmaceutically acceptable fatty acids, including at least palmitic acid, stearic acid, oleic acid, linoleic acid, and / or linolenic acid, and any combination thereof. In other aspects of this embodiment, the adjuvant may comprise a palmitic:stearic:linolenic:linoleic ratio of, for example, 10:10:1:1, 9:9:1:1, 8:8:1:1, 7:7:1:1, 6:6:1:1, 5:5:1:1, 4:4:1:1, 3:3:1:1, 2:2:1:1, or 1:1:1:1. In other aspects of this embodiment, the adjuvant may comprise a ratio of palmitic acid:stearic acid:linolenic acid:linoleic acid ranging from, for example, about 10:10:1:1 to about 6:6:1:1, about 8:8:1:1 to about 4:4:1:1, or about 5:5:1:1 to about 1:1:1:1.
[0098] The lipid useful in pharmaceutical compositions can be pharmaceutically acceptable omega fatty acid.Non-limiting examples of omega fatty acid include omega-3, omega-6 and omega-9.Omega-3 fatty acid (also known as n-3 fatty acid or ω-3 fatty acid) is a family of essential unsaturated fatty acids that have the last carbon-carbon double bond at n-3 position, that is, the third bond counting from the methyl end of fatty acid.Omega-3 fatty acid is "essential" fatty acid because it is necessary for normal metabolism and cannot be synthesized by human body. Omega-3 fatty acids include, but are not limited to, hexadecatrienoic acid (16:3), alpha-linolenic acid (18:3), stearidonic acid (18:4), eicosatrienoic acid (20:3), eicosatetraenoic acid (20:4), eicosapentaenoic acid (20:5), heneicosapentaenoic acid (21:5), docosasapentaenoic acid (22:5), clupanodonic acid (22:5), docosahexaenoic acid (22:6), tetracosapentaenoic acid (24:5), and tetracosahexaenoic acid (24:6).
[0099] Omega-6 fatty acids (also known as n-6 or ω-6 fatty acids) are a family of unsaturated fatty acids that share a final carbon-carbon double bond at the n-6 position, i.e., the sixth bond counting from the methyl end of the fatty acid. Omega-6 fatty acids include, but are not limited to, linoleic acid (18:2), gamma-linolenic acid (18:3), calendic acid (18:3), eicosadienoic acid (20:2), dihomo-gamma-linolenic acid (20:3), arachidonic acid (20:4), docosadienoic acid (22:2), adrenic acid (22:4), docosapentaenoic acid (22:5), tetracosatetraenoic acid (24:4), and tetracosapentaenoic acid (24:5). Omega-9 fatty acids (also known as n-9 or ω-9 fatty acids) are a family of unsaturated fatty acids that share a final carbon-carbon double bond at the n-9 position, i.e., the ninth bond counting from the methyl end of the fatty acid. Omega-9 fatty acids include, but are not limited to, oleic acid (18:1), elaidic acid (18:1), eicosenoic acid (20:1), mead acid (20:3), erucic acid (22:1), and nervonic acid (24:1).
[0100] Lipids useful in the pharmaceutical compositions disclosed herein can be pharmaceutically acceptable oils. Oils include any fatty acid that is liquid at normal room temperature, e.g., about 20°C. In contrast, fats include any fatty acid that is solid at normal room temperature, e.g., 20°C. Oils suitable as lipids useful in the pharmaceutical compositions disclosed herein can be natural or vegetable oils. Examples of suitable natural oils include, but are not limited to, mineral oil, triacetin, ethyl oleate, hydrogenated natural oils, or mixtures thereof. Examples of suitable vegetable oils include, but are not limited to, almond oil, peanut oil, avocado oil, canola oil, castor oil, coconut oil, corn oil, cottonseed oil, grapeseed oil, hazelnut oil, hemp oil, linseed oil, olive oil, palm oil, peanut oil, rapeseed oil, rice bran oil, safflower oil, sesame oil, soybean oil, soybean oil, sunflower oil, walnut oil, wheat germ oil, or mixtures thereof. Each of these oils is commercially available from a number of sources well recognized by those skilled in the art.
[0101] Oils are typically mixtures of various fatty acids. For example, rapeseed oil obtained from rapeseed contains both omega-6 and omega-3 fatty acids in a ratio of about 2:1. As another example, linseed oil obtained from flax seeds contains about 7% palmitic acid, about 3.4-4.6% stearic acid, about 18.5-22.6% oleic acid, about 14.2-17% linoleic acid, and about 51.9-55.2% α-linolenic acid. In some embodiments, the pharmaceutical composition contains oils containing at least two different fatty acids, at least three different fatty acids, at least four different fatty acids, at least five different fatty acids, or at least six different fatty acids.
[0102] Lipids useful in pharmaceutical compositions can be pharmaceutically acceptable glycerolipids. Glycerolipids are mainly composed of mono-substituted glycerol, di-substituted glycerol, and tri-substituted glycerol. One group of glycerolipids is glyceride, in which one, two, or all three hydroxyl groups of glycerol are esterified with fatty acids to produce monoglycerides, diglycerides, and triglycerides, respectively. In these compounds, each hydroxyl group of glycerol can be esterified with a different fatty acid. Furthermore, glycerides can be acetylated to produce acetylated monoglycerides, acetylated diglycerides, and acetylated triglycerides. One group of glycerolipids is glyceride, in which one, two, or all three hydroxyl groups of glycerol have sugar residues attached via glycosidic bonds.
[0103] In some instances, the composition may contain one or more pharmaceutically acceptable stabilizers. The stabilizers reduce or eliminate the formation of esters of the therapeutic compound, which may result from an undesirable reaction with certain solvents used. Stabilizers include, but are not limited to, water, sacrificial acids containing a fatty acid moiety and acetic acid, ethyl acetate, sodium acetate / acetic acid (E262), monoglycerides, acetylated monoglycerides, diglycerides, acetylated monoglycerides, acetylated diglycerides, fatty acids, and fatty acid salts.
[0104] In one embodiment, the pharmaceutically acceptable stabilizer may include a pharmaceutically acceptable emulsifier. An emulsifier (also known as an emulsifier) is a substance that stabilizes an emulsion containing a liquid dispersed phase and a liquid continuous phase by increasing its kinetic stability. Therefore, in situations where the solvents and adjuvants used to make the pharmaceutical compositions disclosed herein are normally immiscible, the emulsifiers disclosed herein are used to create a uniform and stable emulsion. Emulsifiers include, but are not limited to, surfactants, polysaccharides, lectins, and phospholipids.
[0105] In one aspect of this embodiment, the emulsifier can include a surfactant. As used herein, the term "surfactant" refers to a natural or synthetic amphiphilic compound. The surfactant can be nonionic, zwitterionic, or ionic. Non-limiting examples of surfactants include polysorbates such as polysorbate 20 (TWEEN® 20), polysorbate 40 (TWEEN® 40), polysorbate 60 (TWEEN® 60), polysorbate 61 (TWEEN® 61), polysorbate 65 (TWEEN® 65), polysorbate 80 (TWEEN® 80), and polysorbate 81 (TWEEN® 81); poloxamers (polyethylene-polypropylene copolymers), such as poloxamer 124 (PLURONIC® L44), poloxamer 181 (PLURONIC® L61), poloxamer 182 (PLURONIC® L62), poloxamer 184 (PLURONIC® L64), poloxamer 188 (PLURONIC® F68), and poloxamers (polyethylene-polypropylene copolymers). 237 (PLURONIC® F87), poloxamer 338 (PLURONIC® L108), poloxamer 407 (PLURONIC® F127), polyoxyethylene glycol dodecyl ethers such as BRIJ® 30 and BRIJ® 35; 2-dodecoxyethanol (LUBROL®-PX); polyoxyethylene octylphenyl ether (TRITON® X-100); sodium dodecyl sulfate (SDS); 3-[(3-cholamidopropyl)dimethylammonio]-1-propanesulfonate (CHAPS); 3-[(3-cholamidopropyl)dimethylammonio]-2-hydroxy-1-propanesulfonate (CHAPSO); sucrose laurate; and sodium cholate. Other non-limiting examples of surfactant excipients can be found, for example, in Ansel, supra, (1999); Gennaro, supra, (2000); Hardman, supra, (2001); and Rowe, supra, (2003), each of which is incorporated herein by reference in its entirety.
[0106] In one aspect of this embodiment, the emulsifier may comprise a polysaccharide. Non-limiting examples of polysaccharides include guar gum, agar, alginate, calgene, dextran (e.g., dextran 1K, dextran 4K, dextran 40K, dextran 60K, and dextran 70K), dextrin, glycogen, inulin, starch, starch derivatives (e.g., hydroxymethyl starch, hydroxyethyl starch, hydroxypropyl starch, hydroxybutyl starch, and hydroxypentyl starch), hetastarch, cellulose, FICOLL, methylcellulose (MC), carboxymethylcellulose (CMC), hydroxyethyl cellulose (HEC), hydroxypropyl cellulose (HPC), hydroxyethyl methylcellulose (NEMC), hydroxypropyl methylcellulose (HPMC); polyvinyl acetate (PVA); polyvinylpyrrolidone (PVP), also known as povidone, having a K value of 18 or less, a K value greater than 18 or 95 or less, or a K value greater than 95, e.g., PVP 12 (KOLLIDON® 12), PVP 17 (KOLLIDON® 17), PVP 25 (KOLLIDON® 25), PVP 30 (KOLLIDON® 30), PVP 90 (KOLLIDON® 90); and polyethyleneimine (PEI).
[0107] In one aspect of this embodiment, the emulsifier can include a lectin. Lectins are carbohydrate-binding proteins with high specificity for carbohydrate moieties. Lectins may be classified according to the carbohydrate moiety they bind, including, but not limited to, mannose-binding lectins, galactose / N-acetylgalactosamine-binding lectins, N-acetylgluxosamine-binding lectins, N-acetylneuraminic acid-binding lectins, and fucose-binding lectins. Non-limiting examples of surfactants include concanavalin A, lentil lectin, snowdrop lectin, loin, peanut agglutinin, jacain, hairy vetch lectin, wheat germ agglutinin, elderberry lectin, sophora japonica leucoagglutinin, sophora japonica hemagglutinin, gorse agglutinin, and holly oak lectin.
[0108] In one aspect of this embodiment, the emulsifier may comprise a phospholipid. The structure of a phospholipid generally comprises a hydrophobic tail and a hydrophilic head, and is amphipathic in nature. Most phospholipids contain a diglyceride, a phosphate group, and a simple organic molecule such as choline, although one exception to this rule is sphingomyelin, which is derived from sphingosine instead of glycerol. Phospholipids include, but are not limited to, diacylglycerides and phosphosphingolipids. Non-limiting examples of diacylglycerides include phosphatidic acid (phosphatidate) (PA), phosphatidylethanolamine (cephalin) (PE), phosphatidylcholine (lecithin) (PC), phosphatidylserine (PS), and phosphoinositides, including phosphatidylinositol (PI), phosphatidylinositol phosphate (PIP), phosphatidylinositol diphosphate (PIP2), and phosphatidylinositol triphosphate (PIP3). Non-limiting examples of phosphosphingolipids include ceramide phosphorylcholine (sphingomyelin) (SPH), ceramide phosphorylethanolamine (sphingomyelin) (Cer-PE), and ceramide phosphorylglycerol.
[0109] In one embodiment, the pharmaceutically acceptable stabilizer does not include a pharmaceutically acceptable emulsifier.
[0110] In another embodiment, the pharmaceutical composition does not comprise a pharmaceutically acceptable emulsifier.
[0111] Pharmaceutical compositions can act as delivery systems, allowing therapeutic compounds to be more effectively delivered or targeted to cell types, tissues, organs, or regions of the body in a manner that more effectively inhibits pro-inflammatory responses. This inhibition results in improved treatment of chronic inflammation. For example, pharmaceutical compositions can promote delivery of therapeutic compounds disclosed herein into macrophages. One possible mechanism for achieving this selective biodistribution is for pharmaceutical compositions disclosed herein to be designed to exploit the activity of chylomicrons. Chylomicrons are relatively large lipoprotein particles with diameters ranging from 75 nm to 1,200 nm. Containing triglycerides (85-92%), phospholipids (6-12%), cholesterol (1-3%), and apolipoproteins (1-2%), chylomicrons transport dietary lipids from the intestine to other locations in the body. Chylomicrons are one of five major groups of lipoproteins, the others being VLDL, IDL, low-density lipoprotein (LDL), and high-density lipoprotein (HDL), which allow fats and cholesterol to move within the aqueous solution of the bloodstream.
[0112] During digestion, fatty acids and cholesterol undergo processing in the gastrointestinal tract through the action of pancreatic juices containing lipases and emulsification by bile salts, forming micelles. These micelles enable the absorption of lipids as free fatty acids by the absorptive cells of the small intestine, known as enterocytes. Once inside the enterocytes, triglycerides and cholesterol are assembled into nascent chylomicrons. Nascent chylomicrons are composed primarily of triglycerides (85%) with some cholesterol and cholesteryl esters. The major apolipoprotein component is apolipoprotein B-48 (APOB48). These nascent chylomicrons are released by exocytosis from the enterocytes into the lacteals, lymphatic vessels derived from the villi of the small intestine, and then secreted into the bloodstream at the junction of the thoracic duct with the left subclavian vein.
[0113] While circulating in lymph and blood, chylomicrons exchange components with HDL. HDL donates apolipoprotein C-II (APOC2) and apolipoprotein E (APOE) to nascent chylomicrons, converting them into mature chylomicrons (often simply referred to as "chylomicrons"). APOC2 is a cofactor for lipoprotein lipase (LPL) activity. Upon distribution of triglyceride stores, chylomicrons return APOC2 to HDL (but retain APOE), thus becoming chylomicron remnants, which are only 30–50 nm in size. APOB48 and APOE are important for identifying and degrading chylomicron remnants in the liver into lipoproteins (VLDL, LDL, and HDL). These lipoproteins are processed and stored by responsible cells, including hepatocytes, adipocytes, and macrophages. Thus, without wishing to be limited by any theory, upon oral administration, the pharmaceutical compositions disclosed herein are processed into micelles, while in the gastrointestinal tract they are absorbed by enterocytes and assembled into nascent chylomicrons, remain associated with chylomicron remnants that are taken up by the liver, and ultimately loaded into macrophages.
[0114] Aspects of the present specification disclose, in part, a method for preparing a pharmaceutical composition disclosed herein, the method comprising contacting a pharmaceutically acceptable adjuvant disclosed herein with a therapeutic compound disclosed herein under conditions that allow the therapeutic compound to dissolve in the therapeutically acceptable adjuvant, thereby forming a pharmaceutical composition disclosed herein.
[0115] Other aspects of the present disclosure include methods for preparing pharmaceutical compositions. The methods may include: a) contacting a therapeutic compound with a pharmaceutically acceptable solvent under conditions that allow the therapeutic compound to dissolve in the pharmaceutically acceptable solvent, thereby forming a solution; and b) contacting the solution formed in step (a) with a pharmaceutically acceptable adjuvant disclosed herein under conditions that allow the formation of a pharmaceutical composition. The preparation method may further include a step (c) of removing the pharmaceutically acceptable solvent from the pharmaceutical composition.
[0116] The amount of therapeutic compound contacted with the pharmaceutically acceptable solvent in step (a) of the present method can vary widely. Factors that can affect the amount of therapeutic compound used include, among others, the final amount of therapeutic compound desired in the pharmaceutical composition, the desired concentration of the therapeutic compound in solution, the hydrophobicity of the therapeutic compound, the lipophobicity of the therapeutic compound, the temperature at which the contacting step (a) is performed, and the time for which the contacting step (a) is performed.
[0117] The volume of pharmaceutically acceptable solvent used in step (a) of the present method can vary over a wide range. Factors that may affect the volume of pharmaceutically acceptable solvent used include, among others, the final amount of pharmaceutical composition desired, the desired concentration of the therapeutic compound in solution, the hydrophobicity of the therapeutic compound, and the lipophobicity of the therapeutic compound.
[0118] In aspects of this embodiment, the amount of therapeutic compound contacted with the solvent in step (a) can be, for example, at least 10 mg, at least 20 mg, at least 30 mg, at least 40 mg, at least 50 mg, at least 60 mg, at least 70 mg, at least 80 mg, at least 90 mg, at least 100 mg, at least 200 mg, at least 300 mg, at least 400 mg, at least 500 mg, at least 600 mg, at least 700 mg, at least 800 mg, at least 900 mg, at least 1,000 mg, at least 1,100 mg, at least 1,200 mg, at least 1,300 mg, at least 1,400 mg, or at least 1,500 mg. In other aspects of this embodiment, the amount of therapeutic compound contacted with the solvent in step (a) can range, for example, from about 10 mg to about 100 mg, from about 50 mg to about 150 mg, from about 100 mg to about 250 mg, from about 150 mg to about 350 mg, from about 250 mg to about 500 mg, from about 350 mg to about 600 mg, from about 500 mg to about 750 mg, from about 600 mg to about 900 mg, from about 750 mg to about 1,000 mg, from about 850 mg to about 1,200 mg, or from about 1,000 mg to about 1,500 mg. In other aspects of this embodiment, the amount of therapeutic compound dissolved in the solvent in step (a) can be, for example, from about 10 mg to about 250 mg, from about 10 mg to about 500 mg, from about 10 mg to about 750 mg, from about 10 mg to about 1,000 mg, from about 10 mg to about 1,500 mg, from about 50 mg to about 250 mg, from about 50 mg to about 500 mg, from about 50 mg to about 750 mg, from about 50 mg to about 1,000 mg. mg, about 50 mg to about 1,500 mg, about 100 mg to about 250 mg, about 100 mg to about 500 mg, about 100 mg to about 750 mg, about 100 mg to about 1,000 mg, about 100 mg to about 1,500 mg, about 200 mg to about 500 mg, about 200 mg to about 750 mg, about 200 mg to about 1,000 mg, or about 200 mg to about 1,500 mg.
[0119] Step (a) may be performed at room temperature to allow the therapeutic compound to completely dissolve in the pharmaceutically acceptable solvent. However, in other embodiments of the method, step (a) may be performed at a temperature higher than room temperature, for example, higher than 21°C, higher than 25°C, higher than 30°C, higher than 35°C, or higher than 37°C. In certain cases, step (a) may be performed below room temperature to allow the therapeutic compound to completely dissolve in the solvent. However, in other embodiments of the method, step (a) may be performed at a temperature lower than room temperature, for example, lower than 10°C, higher than 5°C, higher than 0°C, higher than -10°C, or higher than -20°C. The contacting in step (a) may include mixing the therapeutic compound and the pharmaceutically acceptable solvent, for example, by stirring, inversion, sonication, or vortexing. This mixing can be carried out until the therapeutic compound is completely dissolved in the solvent, for example, for at least 1 second, at least 5 seconds, at least 10 seconds, at least 20 seconds, at least 30 seconds, at least 45 seconds, at least 60 seconds, or longer.
[0120] The concentration of the therapeutic compound in the solution can vary over a wide range. By way of example, the concentration of the therapeutic compound can be at least 0.00001 mg / mL, at least 0.0001 mg / mL, at least 0.001 mg / mL, at least 0.01 mg / mL, at least 0.1 mg / mL, at least 1 mg / mL, at least 10 mg / mL, at least 25 mg / mL, at least 50 mg / mL, at least 100 mg / mL, at least 200 mg / mL, at least 500 mg / mL, at least 700 mg / mL, at least 1,000 mg / mL, or at least 1,200 mg / mL. The concentration of the therapeutic compound can be, for example, up to 1,000 mg / mL, up to 1,100 mg / mL, up to 1,200 mg / mL, up to 1,300 mg / mL, up to 1,400 mg / mL, up to 1,500 mg / mL, up to 2,000 mg / mL, up to 2,000 mg / mL, or up to 3,000 mg / mL. In some instances, the concentration of the therapeutic compound can be, for example, from about 0.00001 mg / mL to about 3,000 mg / mL, from about 0.0001 mg / mL to about 3,000 mg / mL, from about 0.01 mg / mL to about 3,000 mg / mL, or from about 0.1 mg / mL to about 3,000 mg / mL, about 1 mg / mL to about 3,000 mg / mL, about 250 mg / mL to about 3,000 mg / mL, about 500 mg / mL to about 3,000 mg / mL, about 750 mg / mL to about 3,000 mg / mL, about 1,000 mg / mL to about 3,000 mg / mL, about 100 mg / mL to about 2,000 mg / mL, about 250 mg / mL to about 2,000 mg / mL, about 500 mg / mL to about 2,000 mg / mL, about 750 mg / mL to about 2,000 mg / mL, about 1,000 mg mg / mL to about 2,000 mg / mL, about 100 mg / mL to about 1,500 mg / mL, about 250 mg / mL to about 1,500 mg / mL, about 500 mg / mL to about 1,500 mg / mL, about 750 mg / mL to about 1,500 mg / mL, about 1,000 mg / mL to about 1,500 mg / mL, about 100 mg / mL to about 1,200 mg / mL, about 250 mg / mL to about 1,200 mg / mL, about 500 mg / mL to about 1,200 mg / mL, about 750 mg / mL to about 1,200 mg / mL, about 1,000 mg / mL g / mL to about 1,200 mg / mL, about 100 mg / mL to about 1,000 mg / mL, about 250 mg / mL to about 1,000 mg / mL, about 500 mg / mL to about 1,000 mg / mL, about 750 mg / mL to about 1,000 mg / mL, about 100 mg / mL to about 750 mg / mL, about 250 mg / mL to about 750 mg / mL, about 500 mg / mL to about 750 mg / mL, about 100 mg / mL to about 500 mg / mL, about 250 mg / mL to about 500 mg / mL, about 0.00001 mg / mL to about 0.0 The concentration may range from about 0.001 mg / mL, about 0.00001 mg / mL to about 0.001 mg / mL, about 0.00001 mg / mL to about 0.01 mg / mL, about 0.00001 mg / mL to about 0.1 mg / mL, about 0.00001 mg / mL to about 1 mg / mL, about 0.001 mg / mL to about 0.01 mg / mL, about 0.001 mg / mL to about 0.1 mg / mL, about 0.001 mg / mL to about 1 mg / mL, about 0.001 mg / mL to about 10 mg / mL, or about 0.001 mg / mL to about 100 mg / mL.
[0121] The volume of pharmaceutically acceptable adjuvant used in step (b) of the present method can be any desired volume. Factors used to determine the volume of pharmaceutically acceptable adjuvant used include, but are not limited to, the final amount of pharmaceutical composition desired, the desired concentration of the therapeutic compound in the pharmaceutical composition, the ratio of solvent:adjuvant used, and the miscibility of the solvent with the adjuvant.
[0122] In aspects of this embodiment, the solution:adjuvant ratio can be, for example, at least 5:1, at least 4:1, at least 3:1, at least 2:1, at least 0:1, at least 1:1, at least 1:2, at least 1:3, at least 1:4, at least 1:5, at least 1:6, at least 1:7, at least 1:8, at least 1:9, at least 1:10, at least 1:15, at least 1:20, or at least 1:25. In other aspects of this embodiment, the solution:adjuvant ratio may be, for example, about 5:1 to about 1:25, about 4:1 to about 1:25, about 3:1 to about 1:25, about 2:1 to about 1:25, about 0:1 to about 1:25, about 1:1 to about 1:25, about 1:2 to about 1:25, about 1:3 to about 1:25, about 1:4 to about 1:25, about 1:5 to about 1:25, about 5:1 to about 1:20, about 4:1 to about 1:20, about 3:1 to about 1:25, about 4:1 to about 1:25, about 5:1 to about 1:20, about 5:1 to about 1:25 ... :1 to about 1:20, about 2:1 to about 1:20, about 0:1 to about 1:20, about 1:1 to about 1:20, about 1:2 to about 1:20, about 1:3 to about 1:20, about 1:4 to about 1:20, about 1:5 to about 1:20, about 5:1 to about 1:15, about 4:1 to about 1:15, about 3:1 to about 1:15, about 0:1 to about 1:15, about 2:1 to about 1:15, about 1:1 to about 1:15, about 1:2 to about 1:15, 1:3 to about 1:15, about 1:4 to about 1:15, about 1:5 to about 1:15, about 5:1 to about 1:12, about 4:1 to about 1:12, about 3:1 to about 1:12, about 2:1 to about 1:12, about 0:1 to about 1:12, about 1:1 to about 1:12, about 1:2 to about 1:12, about 1:3 to about 1:12, about 1:4 to about 1:12, about 1:5 to about 1:12, about 1:6 to about 1:12, about 1:7 to about 1:12, The ratio may be in the range of about 1:8 to about 1:12, about 5:1 to about 1:10, about 4:1 to about 1:10, about 3:1 to about 1:10, about 2:1 to about 1:10, about 0:1 to about 1:10, about 1:1 to about 1:10, about 1:2 to about 1:10, about 1:3 to about 1:10, about 1:4 to about 1:10, about 1:5 to about 1:10, about 1:6 to about 1:10, about 1:7 to about 1:10, or about 1:8 to about 1:10.
[0123] Step (b) may be performed at room temperature to allow the solution containing the therapeutic compound to form a pharmaceutical composition. However, in other embodiments of the method, step (b) may be performed at a temperature higher than room temperature, for example, higher than 21°C, higher than 25°C, higher than 30°C, higher than 35°C, or higher than 37°C. In certain cases, step (b) may be performed at a temperature below room temperature to allow the therapeutic compound to completely dissolve in the pharmaceutically acceptable solvent. However, in other embodiments of the method, step (b) may be performed at a temperature lower than room temperature, for example, lower than 10°C, higher than 5°C, higher than 0°C, higher than -10°C, or higher than -20°C. The contacting in step (b) may include mixing the solution and the pharmaceutically acceptable adjuvant, for example, by stirring, inversion, sonication, or vortexing. Mixing may be performed for, for example, at least 1 second, at least 5 seconds, at least 10 seconds, at least 20 seconds, at least 30 seconds, at least 45 seconds, at least 60 seconds, or longer, until a pharmaceutical composition is formed.
[0124] In step (c), removal of the solvent from the pharmaceutical composition is accomplished using one of a variety of procedures known in the art, including, but not limited to, evaporation, dialysis, distillation, lyophilization, and filtration. These removal procedures may be carried out under ambient atmosphere, low pressure, or under vacuum.
[0125] In one embodiment, step (c) may result in the complete removal of the pharmaceutically acceptable solvent from the pharmaceutical compositions disclosed herein. In aspects of this embodiment, step (c) may result in the removal of, for example, at least 5%, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 93%, at least 95%, at least 97%, or at least 99% of the pharmaceutically acceptable solvent from the pharmaceutical compositions disclosed herein.
[0126] Step (c) is carried out at a temperature that allows evaporation of the pharmaceutically acceptable solvent disclosed herein, where the evaporation temperature is solvent-dependent. Factors that affect the evaporation temperature of the solvent disclosed herein include, but are not limited to, the specific solvent used, the amount of solvent present, the specific therapeutic compound present, the specific adjuvant present, the stability of the therapeutic compound present, the reactivity of the therapeutic compound present, the specific atmospheric pressure used, and the desired time for complete evaporation. Generally, pharmaceutical compositions require heating when the evaporation step is carried out at ambient pressure, e.g., 1 atm. However, under high vacuum conditions, the evaporation step can be carried out at temperatures below ambient temperature, e.g., below 22°C.
[0127] In one embodiment, removal of solvent from a pharmaceutical composition disclosed herein may be carried out at ambient atmospheric pressure and at a temperature greater than ambient temperature. In aspects of this embodiment, removal of solvent from the pharmaceutical composition may be at ambient atmospheric pressure and at a temperature, for example, greater than 25°C, greater than 30°C, greater than 35°C, greater than 40°C, greater than 45°C, greater than 50°C, greater than 55°C, greater than 60°C, greater than 65°C, greater than 70°C, greater than 80°C, or greater than 85°C. In other aspects of this embodiment, removal of solvent from the pharmaceutical composition may be carried out at ambient atmospheric pressure and at a temperature ranging from, for example, about 25°C to about 100°C, about 25°C to about 95°C, about 25°C to about 90°C, about 25°C to about 85°C, about 25°C to about 80°C, about 25°C to about 75°C, about 25°C to about 70°C, about 25°C to about 65°C, or about 25°C to about 60°C.
[0128] In another embodiment, removal of the solvent from the pharmaceutical composition may be carried out under vacuum and at a temperature below ambient temperature. In aspects of this embodiment, removal of the solvent from the pharmaceutical composition may be carried out under vacuum and at a temperature below 20°C, below 18°C, below 16°C, below 14°C, below 12°C, below 10°C, below 8°C, below 6°C, below 4°C, below 2°C, or below 0°C, for example. In other aspects of this embodiment, removal of solvent from the pharmaceutical composition is by evaporation under vacuum at about -20°C to about 20°C, about -20°C to about 18°C, about -20°C to about 16°C, about -20°C to about 14°C, about -20°C to about 12°C, about -20°C to about 10°C, about -20°C to about 8°C, about -20°C to about 6°C, about -20°C to about 4°C, about -20°C to about 2°C, about -20°C to about 0°C, about -15°C to about 20°C, about It may be carried out at a temperature ranging from -10°C to about 20°C, from about -5°C to about 20°C, from about 0°C to about 20°C, from about -10°C to about 20°C, from about -10°C to about 18°C, from about -10°C to about 16°C, from about -10°C to about 14°C, from about -10°C to about 12°C, from about -10°C to about 10°C, from about -10°C to about 8°C, from about -10°C to about 6°C, from about -10°C to about 4°C, from about -10°C to about 2°C, or from about -10°C to about 0°C.
[0129] The final concentration of therapeutic compound in pharmaceutical compositions disclosed herein can vary over a wide range and can generally be characterized as a therapeutically effective amount.In some embodiments, the final concentration of therapeutic compound in pharmaceutical compositions can be, for example, at least 0.00001mg / mL, at least 0.0001mg / mL, at least 0.001mg / mL, at least 0.01mg / mL, at least 0.1mg / mL, at least 1mg / mL, at least 10mg / mL, at least 25mg / mL, at least 50mg / mL, at least 100mg / mL, at least 200mg / mL, at least 500mg / mL, at least 700mg / mL, at least 1,000mg / mL, or at least 1,200mg / mL. In other aspects of this embodiment, the concentration of a therapeutic compound disclosed herein in solution can be, for example, up to 1,000 mg / mL, up to 1,100 mg / mL, up to 1,200 mg / mL, up to 1,300 mg / mL, up to 1,400 mg / mL, up to 1,500 mg / mL, up to 2,000 mg / mL, up to 2,000 mg / mL, or up to 3,000 mg / mL. In other aspects of this embodiment, the final concentration of the therapeutic compound in the pharmaceutical composition can be, for example, from about 0.00001 mg / mL to about 3,000 mg / mL, from about 0.0001 mg / mL to about 3,000 mg / mL, from about 0.01 mg / mL to about 3,000 mg / mL, or from about 0.1 mg / mL to about 3,000 mg / mL, about 1 mg / mL to about 3,000 mg / mL, about 250 mg / mL to about 3,000 mg / mL, about 500 mg / mL to about 3,000 mg / mL, about 750 mg / mL to about 3,000 mg / mL, about 1,000 mg / mL to about 3,000 mg / mL, about 100 mg / mL to about 2,000 mg / mL, about 250 mg / mL to about 2,000 mg / mL, about 500 mg / mL to about 2,000 mg / mL, about 750 mg / mL to about 2,000 mg / mL, about 1,000 mg mg / mL to about 2,000 mg / mL, about 100 mg / mL to about 1,500 mg / mL, about 250 mg / mL to about 1,500 mg / mL, about 500 mg / mL to about 1,500 mg / mL, about 750 mg / mL to about 1,500 mg / mL, about 1,000 mg / mL to about 1,500 mg / mL, about 100 mg / mL to about 1,200 mg / mL, about 250 mg / mL to about 1,200 mg / mL, about 500 mg / mL to about 1,200 mg / mL, about 750 mg / mL to about 1,200 mg / mL, about 1,000 mg / mL g / mL to about 1,200 mg / mL, about 100 mg / mL to about 1,000 mg / mL, about 250 mg / mL to about 1,000 mg / mL, about 500 mg / mL to about 1,000 mg / mL, about 750 mg / mL to about 1,000 mg / mL, about 100 mg / mL to about 750 mg / mL, about 250 mg / mL to about 750 mg / mL, about 500 mg / mL to about 750 mg / mL, about 100 mg / mL to about 500 mg / mL, about 250 mg / mL to about 500 mg / mL, about 0.00001 mg / mL to about 0.0 The concentration may range from about 0.001 mg / mL, about 0.00001 mg / mL to about 0.001 mg / mL, about 0.00001 mg / mL to about 0.01 mg / mL, about 0.00001 mg / mL to about 0.1 mg / mL, about 0.00001 mg / mL to about 1 mg / mL, about 0.001 mg / mL to about 0.01 mg / mL, about 0.001 mg / mL to about 0.1 mg / mL, about 0.001 mg / mL to about 1 mg / mL, about 0.001 mg / mL to about 10 mg / mL, or about 0.001 mg / mL to about 100 mg / mL.
[0130] The pharmaceutical compositions produced using the methods disclosed herein can be liquid formulations, or solid or semi-solid formulations. Liquid formulations can be formed by using various lipids, such as oils of other fatty acids, that remain liquid at a desired temperature range. In one embodiment, the pharmaceutical compositions disclosed herein are liquid at room temperature. In aspects of this embodiment, the pharmaceutical compositions disclosed herein can be formulated to be liquid at temperatures of, for example, about 25°C or higher, about 23°C or higher, about 21°C or higher, about 19°C or higher, about 17°C or higher, about 15°C or higher, about 12°C or higher, about 10°C or higher, about 8°C or higher, about 6°C or higher, about 4°C or higher, or about 0°C or higher.
[0131] Solid or semi-solid formulations may utilize different melting point temperatures of various adjuvants, such as fatty acids. Formation of solid or semi-solid dosage forms can be achieved by modifying the concentration of each of the fatty acids comprising the pharmaceutical compositions disclosed herein. For example, linolenic acid has a melting point temperature (T) of about -11°C. m ), and linoleic acid has a T of about -5°C. m Oleic acid has a T of about 16°C. m Palmitic acid has a T of approximately 61-62°C. m Stearic acid has a T of about 67-72°C. m Increasing the proportion of palmitic acid, stearic acid, or oleic acid increases the overall melting temperature of the composition, while increasing the proportion of linoleic acid and linolenic acid decreases the melting temperature of the composition. Thus, by controlling the type and amount of added adjuvant components, pharmaceutical compositions can be made that are substantially solid or semi-solid at room temperature but melt upon ingestion to reach body temperature. The resulting molten composition readily forms micelles, which are absorbed by the intestine, assembled into chylomicrons, and ultimately absorbed by macrophages. The solid dosage form can be a powder, granules, tablet, capsule, or suppository.
[0132] Aspects of the present specification disclose methods of treating an individual with chronic inflammation. In one embodiment, the method comprises administering to an individual in need thereof a pharmaceutical composition described herein, wherein the administration reduces symptoms associated with chronic inflammation, thereby treating the individual.
[0133] Aspects of the present specification, in part, disclose treating an individual suffering from chronic inflammation. As used herein, the term "treating" refers to reducing or eliminating clinical symptoms of chronic inflammation in an individual, or delaying or preventing the onset of clinical symptoms of chronic inflammation in an individual. For example, the term "treating" can mean reducing the symptoms of a condition characterized by chronic inflammation by, for example, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 100%. The actual symptoms associated with chronic inflammation are well known and can be determined by those skilled in the art, taking into account factors including, but not limited to, the location of the chronic inflammation, the cause of the chronic inflammation, the severity of the chronic inflammation, and / or the cause of the tissue or organ affected by the chronic inflammation. Those skilled in the art will know the appropriate symptoms or indicators associated with particular types of chronic inflammation and how to determine whether an individual is a candidate for the treatments disclosed herein.
[0134] Symptoms of chronic inflammation include, but are not limited to, edema, hyperemia, erythema, bruising, tenderness, stiffness, pain, swelling, fever, chills, nasal congestion, headache, respiratory distress, fluid retention, blood clots, loss of appetite, increased heart rate, granuloma formation, fibrinous, pus-like, non-viscous serous fluid, or ulcers and pain. The actual symptoms associated with chronic inflammation are well known and can be determined by one of skill in the art by considering factors including, but not limited to, the location of inflammation, the cause of inflammation, the severity of inflammation, the tissues or organs affected, and associated disorders.
[0135] Specific patterns of chronic inflammation are seen during certain bodily situations, such as when inflammation occurs at epithelial surfaces or when pyogenic bacteria are involved. For example, granulomatous inflammation results from the formation of granulomas in a limited but diverse range of diseases, including, but not limited to, tuberculosis, leprosy, sarcoidosis, and syphilis. Suppurative inflammation is inflammation that produces large amounts of pus, composed of neutrophils, dead cells, and fluid. Infections with pyogenic bacteria, such as Staphylococcus aureus, are characteristic of this type of inflammation. Serous inflammation results from the exudation of large amounts of non-viscous serous fluid, usually produced by serous mesothelial cells but sometimes derived from plasma. Skin blisters exemplify this pattern of inflammation. Ulcerative inflammation results from the necrotic loss of tissue from the epithelial surface, exposing the underlying layers and forming an ulcer.
[0136] Chronic inflammatory conditions may be associated with a large group of unrelated disorders that underlie various diseases and disorders. The immune system is often involved in chronic inflammatory diseases, which are manifested in both allergic reactions and some myopathies, and these diseases involve a number of immune system disorders that result in abnormal inflammation. Non-limiting examples of chronic inflammatory diseases that can be treated include preeclampsia, coronary artery disease, sickle cell anemia, idiopathic pulmonary fibrosis, and endometriosis.
[0137] In one embodiment, chronic inflammation includes tissue inflammation. Tissue inflammation is chronic inflammation limited to a specific tissue or organ. In aspects of this embodiment, tissue inflammation includes, for example, skin inflammation, muscle inflammation, tendon inflammation, ligament inflammation, bone inflammation, cartilage inflammation, lung inflammation, heart inflammation, liver inflammation, pancreas inflammation, kidney inflammation, bladder inflammation, stomach inflammation, intestinal inflammation, neuroinflammation, and brain inflammation.
[0138] In another embodiment, chronic inflammation includes systemic inflammation. Although the processes involved are the same as tissue inflammation, systemic inflammation is not limited to specific tissues, but actually overwhelms the body, including the endothelium and other organ systems. When caused by infection, the term sepsis is applied, with the term bacteremia specifically applied to bacterial sepsis and the term viremia specifically applied to viral sepsis. Vasodilation and organ dysfunction are significant problems associated with widespread infection, which can lead to septic shock and death.
[0139] In one aspect, isomyosmine is administered to individuals to treat respiratory disorders such as emphysema, for which recent research at Johns Hopkins University has identified a genetic malfunction as the underlying cause. Unless the chromosomes of lung stem cells function properly, the lungs' ability to transport oxygen to the body slows down. This results in shortness of breath and life-threateningly low blood oxygen levels. Lung cell telomeres play a critical role in protecting chromosomes from damage and enabling them to function properly. When lung stem cells, which are necessary for oxygen absorption, have telomeres that are too short, breathing is interrupted. Destruction of these telomeres causes lung stem cells to age prematurely and stop dividing and regenerating. This process impedes the movement of oxygen through the alveoli, the tiny sacs in the lungs where blood absorbs oxygen. In a worsening situation, at the same time as stem cell telomeres malfunction, the immune system sends substances to the lungs that cause harmful inflammation, which also occurs during emphysema. Previously, emphysema was thought to be solely an inflammatory problem. However, researchers now identify it as primarily a telomere problem leading to inflammation. Given these mechanisms, isomyosmine's ability to prevent telomere shortening, coupled with its ability to increase blood oxygen saturation, makes it particularly effective for treating emphysema and other respiratory disorders.
[0140] The compositions or compounds described herein can be administered to individuals.The individuals are typically human beings.Typically, any individuals who are candidates for conventional chronic inflammation treatments are candidates for the chronic inflammation treatments disclosed herein.Pre-operation assessment typically includes a complete informed consent that discloses all the risks and benefits associated with the procedure, as well as a routine medical history and physical examination.
[0141] The pharmaceutical compositions disclosed herein may contain a therapeutically effective amount of a therapeutic compound. As used herein, the term "effective amount" is synonymous with "therapeutically effective amount," "effective dose," or "therapeutically effective dose," and when used in connection with the treatment of chronic inflammation, refers to the minimum dose of a therapeutic compound disclosed herein necessary to achieve the desired therapeutic effect, including a dose sufficient to reduce symptoms associated with chronic inflammation. The effectiveness of a therapeutic compound disclosed herein in treating chronic inflammation can be determined by observing an individual's improvement based on one or more clinical symptoms and / or physiological indicators related to the condition. Improvement in chronic inflammation can also be indicated by a reduced need for concomitant therapy.
[0142] The appropriate effective amount of the therapeutic compound disclosed herein to be administered to an individual for a particular chronic inflammation can be determined by one skilled in the art by considering, without limitation, factors including the type of chronic inflammation, the location of the chronic inflammation, the cause of the chronic inflammation, the severity of the chronic inflammation, the desired degree of relief, the desired duration of relief, the specific therapeutic compound used, the excretion rate of the therapeutic compound used, the pharmacodynamics of the therapeutic compound used, the nature of other compounds contained in the compound, the specific route of administration, the specific characteristics, the patient's medical history and risk factors, such as age, weight, general health, etc., or any combination thereof. Furthermore, when repeated administration of the therapeutic compound is used, the effective amount of the therapeutic compound further depends on, without limitation, factors including the frequency of administration, the half-life of the therapeutic compound, or any combination thereof. Those skilled in the art are aware that the effective amount of the therapeutic compound disclosed herein can be extrapolated from in vitro assays and in vivo administration studies using animal models before administration to humans.
[0143] In aspects of this embodiment, a therapeutically effective amount of a therapeutic compound disclosed herein reduces symptoms associated with chronic inflammation by, for example, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 100%. In other aspects of this embodiment, a therapeutically effective amount of a therapeutic compound disclosed herein reduces symptoms associated with chronic inflammation, e.g., by up to 10%, up to 15%, up to 20%, up to 25%, up to 30%, up to 35%, up to 40%, up to 45%, up to 50%, up to 55%, up to 60%, up to 65%, up to 70%, up to 75%, up to 80%, up to 85%, up to 90%, up to 95%, or up to 100%. In still other aspects of this embodiment, a therapeutically effective amount of a therapeutic compound disclosed herein reduces symptoms associated with chronic inflammation by, for example, about 10% to about 100%, about 10% to about 90%, about 10% to about 80%, about 10% to about 70%, about 10% to about 60%, about 10% to about 50%, about 10% to about 40%, about 20% to about 100%, about 20% to about 90%, about 20% to about 80%, about 20% to about 20%, about 20% to about 60%, about 20% to about 50%, about 20% to about 40%, about 30% to about 100%, about 30% to about 90%, about 30% to about 80%, about 30% to about 70%, about 30% to about 60%, or about 30% to about 50%.
[0144] In yet other aspects of this embodiment, a therapeutically effective amount of a therapeutic compound disclosed herein generally ranges from about 0.001 mg / kg / day to about 100 mg / kg / day. In aspects of this embodiment, an effective amount of a therapeutic compound disclosed herein can be, for example, at least 0.001 mg / kg / day, at least 0.01 mg / kg / day, at least 0.1 mg / kg / day, at least 1.0 mg / kg / day, at least 5.0 mg / kg / day, at least 10 mg / kg / day, at least 15 mg / kg / day, at least 20 mg / kg / day, at least 25 mg / kg / day, at least 30 mg / kg / day, at least 35 mg / kg / day, at least 40 mg / kg / day, at least 45 mg / kg / day, or at least 50 mg / kg / day. In other aspects of this embodiment, an effective amount of a therapeutic compound disclosed herein can be in the range of, for example, from about 0.001 mg / kg / day to about 10 mg / kg / day, from about 0.001 mg / kg / day to about 15 mg / kg / day, from about 0.001 mg / kg / day to about 20 mg / kg / day, from about 0.001 mg / kg / day to about 25 mg / kg / day, from about 0.001 mg / kg / day to about 30 mg / kg / day, from about 0.001 mg / kg / day to about 35 mg / kg / day, from about 0.001 mg / kg / day to about 40 mg / kg / day, from about 0.001 mg / kg / day to about 45 mg / kg / day, from about 0.001 mg / kg / day to about 50 mg / kg / day, from about 0.001 mg / kg / day to about 75 mg / kg / day, or from about 0.001 mg / kg / day to about 100 mg / kg / day.In still other aspects of this embodiment, an effective amount of a therapeutic compound disclosed herein can be in the range of, for example, from about 0.01 mg / kg / day to about 10 mg / kg / day, from about 0.01 mg / kg / day to about 15 mg / kg / day, from about 0.01 mg / kg / day to about 20 mg / kg / day, from about 0.01 mg / kg / day to about 25 mg / kg / day, from about 0.01 mg / kg / day to about 30 mg / kg / day, from about 0.01 mg / kg / day to about 35 mg / kg / day, from about 0.01 mg / kg / day to about 40 mg / kg / day, from about 0.01 mg / kg / day to about 45 mg / kg / day, from about 0.01 mg / kg / day to about 50 mg / kg / day, from about 0.01 mg / kg / day to about 75 mg / kg / day, or from about 0.01 mg / kg / day to about 100 mg / kg / day. In still other aspects of this embodiment, an effective amount of a therapeutic compound disclosed herein can be in the range of, for example, from about 0.1 mg / kg / day to about 10 mg / kg / day, from about 0.1 mg / kg / day to about 15 mg / kg / day, from about 0.1 mg / kg / day to about 20 mg / kg / day, from about 0.1 mg / kg / day to about 25 mg / kg / day, from about 0.1 mg / kg / day to about 30 mg / kg / day, from about 0.1 mg / kg / day to about 35 mg / kg / day, from about 0.1 mg / kg / day to about 40 mg / kg / day, from about 0.1 mg / kg / day to about 45 mg / kg / day, from about 0.1 mg / kg / day to about 50 mg / kg / day, from about 0.1 mg / kg / day to about 75 mg / kg / day, or from about 0.1 mg / kg / day to about 100 mg / kg / day.
[0145] In other aspects of this embodiment, an effective amount of a therapeutic compound disclosed herein can be in the range of, for example, from about 1 mg / kg / day to about 10 mg / kg / day, from about 1 mg / kg / day to about 15 mg / kg / day, from about 1 mg / kg / day to about 20 mg / kg / day, from about 1 mg / kg / day to about 25 mg / kg / day, from about 1 mg / kg / day to about 30 mg / kg / day, from about 1 mg / kg / day to about 35 mg / kg / day, from about 1 mg / kg / day to about 40 mg / kg / day, from about 1 mg / kg / day to about 45 mg / kg / day, from about 1 mg / kg / day to about 50 mg / kg / day, from about 1 mg / kg / day to about 75 mg / kg / day, or from about 1 mg / kg / day to about 100 mg / kg / day. In still other aspects of this embodiment, an effective amount of a therapeutic compound disclosed herein can be in the range of, for example, from about 5 mg / kg / day to about 10 mg / kg / day, from about 5 mg / kg / day to about 15 mg / kg / day, from about 5 mg / kg / day to about 20 mg / kg / day, from about 5 mg / kg / day to about 25 mg / kg / day, from about 5 mg / kg / day to about 30 mg / kg / day, from about 5 mg / kg / day to about 35 mg / kg / day, from about 5 mg / kg / day to about 40 mg / kg / day, from about 5 mg / kg / day to about 45 mg / kg / day, from about 5 mg / kg / day to about 50 mg / kg / day, from about 5 mg / kg / day to about 75 mg / kg / day, or from about 5 mg / kg / day to about 100 mg / kg / day.
[0146] The dose can be a single dose or cumulative (continuous dose administration) and can be easily determined by one skilled in the art. For example, treatment of chronic inflammation can involve a one-time administration of an effective dose of the pharmaceutical composition disclosed herein. Alternatively, treatment of chronic inflammation can involve multiple administrations of an effective dose of the pharmaceutical composition over a range of time periods, such as once daily, twice daily, briefly daily, once every few days, or once weekly. The timing of administration can vary from individual to individual depending on factors such as the severity of the individual's symptoms. For example, an effective dose of the pharmaceutical composition disclosed herein can be administered to the individual once daily indefinitely or until the individual no longer requires therapy. Those skilled in the art will recognize that the individual's condition can be monitored throughout the course of treatment and the effective amount of the pharmaceutical composition disclosed herein administered can be adjusted accordingly.
[0147] In one embodiment, when administered to an individual, a pharmaceutical composition comprising a therapeutic compound disclosed herein results in a biodistribution of the therapeutic compound that differs from the biodistribution of the therapeutic compound contained in the same pharmaceutical composition but without the adjuvant disclosed herein.
[0148] In another embodiment, upon administration to an individual, the therapeutic compound of the pharmaceutical compositions disclosed herein is delivered to macrophages. Macrophages are one of the primary cell types believed to be involved in regulating inflammatory responses. The resulting high levels of therapeutic compounds with anti-inflammatory activity in macrophages result in clinically effective treatment of chronic inflammation. In one aspect of this embodiment, upon administration to an individual, a therapeutically effective amount of the therapeutic compound of the pharmaceutical compositions disclosed herein is preferentially delivered to macrophages. In another aspect of this embodiment, upon administration to an individual, the therapeutic compound of the pharmaceutical compositions disclosed herein is substantially delivered to macrophages. In still other aspects of this embodiment, upon administration to an individual, the amount of therapeutic compound of the pharmaceutical compositions disclosed herein that is delivered to macrophages is, e.g., at least 5%, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 100% of the total amount of therapeutic compound contained in the administered pharmaceutical composition.In yet another aspect of this embodiment, upon administration to an individual, the amount of therapeutic compound of the pharmaceutical compositions disclosed herein delivered to macrophages is, for example, about 5% to about 100%, about 10% to about 100%, about 15% to about 100%, about 20% to about 100%, about 25% to about 100%, about 30% to about 100%, about 35% to about 100%, about 40% to about 100%, about 45% to about 100%, about 50% to about 100%, about 5% to about 90%, about 10% to about 90%, about 15% to about 90%, about 20% to about 90%, about 25% to about 90%, about 30% to about 90%, about 35% to about 90%, about 40% to about 90%, about 45% to about 90%, about 50% to about 90%, about 5% to about 80%, about 10% to about 80%, about 15% to about 80%, about 20% to about 80%, about 25% to about 80%, about 30% to about 80%, about 35% to about 80%, about 40% to about 80%, about 4 It ranges from 5% to about 80%, from about 50% to about 80%, from about 5% to about 70%, from about 10% to about 70%, from about 15% to about 70%, from about 20% to about 70%, from about 25% to about 70%, from about 30% to about 70%, from about 35% to about 70%, from about 40% to about 70%, from about 45% to about 70%, or from about 50% to about 70%.
[0149] In another embodiment, when administered to an individual, the pharmaceutical compositions disclosed herein reduce gastric irritability. In one aspect of this embodiment, the pharmaceutical compositions disclosed herein substantially reduce gastric irritability. In yet another embodiment, when administered to an individual, the pharmaceutical compositions disclosed herein reduce gastric irritability compared to the same pharmaceutical composition disclosed herein but without the pharmaceutically acceptable adjuvant. In one aspect of this embodiment, the pharmaceutical compositions disclosed herein substantially reduce gastric irritability compared to the same pharmaceutical composition disclosed herein but without the pharmaceutically acceptable adjuvant. In other aspects of this embodiment, the pharmaceutical compositions disclosed herein reduce gastric irritability by, for example, at least 5%, at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 100%.In yet another aspect of this embodiment, the pharmaceutical compositions disclosed herein may reduce gastric irritability by, for example, about 5% to about 100%, about 10% to about 100%, about 15% to about 100%, about 20% to about 100%, about 25% to about 100%, about 30% to about 100%, about 35% to about 100%, about 40% to about 100%, about 45% to about 100%, about 50% to about 100%, about 5% to about 90%, about 10% to about 90%, about 15% to about 90%, about 20% to about 90%, about 25% to about 90%, about 30% to about 90%, about 35% to about 90%, about 40% to about 90%, %, about 45% to about 90%, about 50% to about 90%, about 5% to about 80%, about 10% to about 80%, about 15% to about 80%, about 20% to about 80%, about 25% to about 80%, about 30% to about 80%, about 35% to about 80%, about 40% to about 80%, about 45% to about 80%, about 50% to about 80%, about 5% to about 70%, about 10% to about 70%, about 15% to about 70%, about 20% to about 70%, about 25% to about 70%, about 30% to about 70%, about 35% to about 70%, about 40% to about 70%, about 45% to about 70%, or about 50% to about 70%.
[0150] In another embodiment, when administered to an individual, the pharmaceutical composition reduces gut irritability. In one aspect of this embodiment, the pharmaceutical composition substantially reduces gut irritability. In yet another embodiment, when administered to an individual, the pharmaceutical composition disclosed herein reduces gut irritability compared to the same pharmaceutical composition disclosed herein but without a pharmaceutically acceptable adjuvant. In one aspect of this embodiment, the pharmaceutical composition disclosed herein substantially reduces gut irritability compared to the same pharmaceutical composition disclosed herein but without a pharmaceutically acceptable adjuvant. In other aspects of this embodiment, the pharmaceutical composition disclosed herein reduces gut irritability by, for example, at least 5%, at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, or at least 100% compared to the same pharmaceutical composition disclosed herein but without a pharmaceutically acceptable adjuvant.In yet another aspect of this embodiment, the pharmaceutical compositions disclosed herein may reduce bowel irritability by, for example, about 5% to about 100%, about 10% to about 100%, about 15% to about 100%, about 20% to about 100%, about 25% to about 100%, about 30% to about 100%, about 35% to about 100%, about 40% to about 100%, about 45% to about 100%, about 50% to about 100%, about 5% to about 90%, about 10% to about 90%, about 15% to about 90%, about 20% to about 90%, about 25% to about 90%, about 30% to about 90%, about 35% to about 90%, about 40% to about 90%, about 45% to about 90%, about 50% to about 90%, about 5% to about 80%, about 10% to about 80%, about 15% to about 80%, about 20% to about 80%, about 25% to about 80%, about 30% to about 80%, about 35% to about 80%, about 40% to about 80%, about A reduction of 45% to about 80%, about 50% to about 80%, about 5% to about 70%, about 10% to about 70%, about 15% to about 70%, about 20% to about 70%, about 25% to about 70%, about 30% to about 70%, about 35% to about 70%, about 40% to about 70%, about 45% to about 70%, or about 50% to about 70%.
[0151] The pharmaceutical compositions disclosed herein can also be administered to an individual in combination with other therapeutic compounds to increase the overall therapeutic effect of the treatment. The use of multiple compounds to treat an indication can increase the beneficial effects while reducing the presence of side effects.
[0152] The following examples illustrate but do not limit the scope of the present disclosure as set forth above.
[0153] Example 1 This example describes experiments to determine the inhibition of monoamine oxidase (MAO) by isomyosmine and other alkaloids. MAO is an enzyme located on the outer membrane of mitochondria and is involved in the catabolism of monoamine neurotransmitters. There are two well-characterized isoenzymes: MAO-A, which catabolizes serotonin and norepinephrine, and MAO-B, which preferentially catabolizes benzylamine and phenylethylamine. Dopamine and tyramine are metabolized by both isoforms.
[0154] To detect MAO activity, we used a luminescence method (MAO-Glo Assay Kit from Promega, catalog number V1401). In this method, an MAO substrate (a derivative of beetle luciferin provided in the kit) is mixed with the compound to be tested (in this case, myosmine and a control compound). Then, MAO enzyme (either A or B, purchased separately) is added to the mixture and incubated with the reaction mixture at room temperature for 1 hour. If not inhibited by the test compound, the MAO enzyme converts the substrate to luciferin methyl ester. Finally, the luciferin detection reagent (provided in the kit) is added (for 20 minutes at room temperature) to stop the MAO reaction and convert luciferin methyl ester to D-luciferin. D-luciferin reacts with luciferase to generate a luminescence signal that is directly proportional to the D-luciferin concentration and, therefore, to MAO activity. That is, the more light produced, the higher the MAO activity. The luminescence signal is measured and recorded using a photometer.
[0155] The following materials were obtained from Toronto Research Chemicals, North York, Ontario: isomyosmine, catalog number I821350; myosmine, catalog number M835000; anabasine, catalog number A637175; and nornicotine, catalog number N756995. Anatabine was obtained from Emerson Resources, Norristown, PA.
[0156] As positive controls for the experiment, clorgyline (a well-characterized and potent inhibitor of MAO-A) and deprenyl (a well-characterized and potent inhibitor of MAO-B) were used.
[0157] MAO-A activity results Comparing the pure alkaloids isomyosmine, myosmine, anatabine, anabasine, and nornicotine, isomyosmine was the most potent of the five in inhibiting MAO-A enzyme activity (Figure 3). The line graph should be interpreted as follows: 100% activity means the test compound has no effect on the enzyme; 0% activity means the test compound completely inactivates the enzyme. The more the curve shifts to the left, the greater the inhibition the test compound exerts on the enzyme. As can be seen in Figure 3, the curve for isomyosmine is more left-shifted among the five alkaloids tested. A concentration of 2 mM (2,000 micromolar) results in approximately 50% inhibition. The curve for clorgyline, the positive control for the experiment, is significantly shifted to the left.
[0158] MAO-B activity results Similar results were obtained when five pure alkaloids, isomyosmine, myosmine, anatabine, anabasine, and nornicotine, were tested for inhibition of MAO-B. Isomyosmine was the most potent of the five alkaloids tested at inhibiting MAO-B activity (Figure 4).
[0159] Example 2 This example illustrates the effect of isomyosmin on normal blood oxygen saturation (SpO2). SpO2 refers to peripheral capillary oxygen saturation and is an estimate of the amount of oxygen in the blood. More specifically, it is the percentage of oxygenated hemoglobin (hemoglobin containing oxygen) compared to the total amount of hemoglobin in the blood (oxygenated hemoglobin and non-oxygenated hemoglobin). SpO2 can be measured by pulse oximetry, an indirect and noninvasive method. It works by emitting and then absorbing light waves that pass through the blood vessels (or capillaries) in the fingertip. Since the degree of oxygen saturation causes variations in the color of the blood, the variations in the light waves passing through the finger provide the SpO2 measurement. SpO2 levels were measured in seven individuals (1) before and (2) 1 hour after administration of a single dose (50–100 mg of isomyosmin). Table 1 summarizes the measured values. As can be seen from Table 1, isomyosmine was found to induce a significant increase in blood oxygenation in the individuals tested. Table 1 [Table 1]
[0160] While particular embodiments have been described and illustrated, it is to be understood that the invention is not limited thereto, as modifications will occur to those skilled in the art, and the present application contemplates any and all modifications that fall within the spirit and scope of the underlying invention disclosed and claimed herein.
Claims
[Claim 1] A pharmaceutical composition comprising isolated isomyosmine or a pharmaceutically acceptable salt thereof for use in treating emphysema and other respiratory disorders.
Citation Information
Patent Citations
Methods of treating cancers, autoimmune disorders, and other conditions associated with chronic inflammation
WO2016161055A2