phospholipids
Charge-reversible phospholipids with a specific structure address the degradation and cytotoxicity issues in RNA delivery by forming neutral lipid particles for efficient drug encapsulation and delivery.
Patent Information
- Application Number
- JP2022567497
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-10
- Filing Date
- 2022-06-02
- Publication Date
- 2025-10-02
- Estimated Expiration
- 2042-06-02
AI Technical Summary
Existing delivery systems for RNA-based pharmaceuticals face challenges due to rapid degradation and cytotoxicity issues, particularly when using positively charged lipids for nucleic acid encapsulation.
Development of charge-reversible phospholipids with a specific structure that remain neutral at physiological pH, forming lipid particles that encapsulate drugs like siRNA efficiently while minimizing cytotoxicity.
The charge-reversible phospholipids effectively encapsulate drugs, reducing cytotoxicity and enhancing drug delivery efficiency by maintaining a neutral charge in bodily fluids, thus stabilizing RNA-based pharmaceuticals.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to phospholipids and the like. [Background technology]
[0002] In recent years, development has been progressing for pharmaceuticals containing small interfering RNA (siRNA) and genetic vaccines containing messenger RNA (mRNA). For exogenously administered RNA to demonstrate its inherent activity in vivo, an extremely sophisticated delivery system is required. This is due to the fact that RNA is rapidly degraded by enzymes and rarely passes through cell membranes. Therefore, the practical application of RNA-containing pharmaceuticals and vaccines inevitably requires the development of a delivery system.
[0003] A known delivery system for drugs such as RNA involves administering the drug encapsulated in lipid particles. However, when administering negatively charged nucleic acids, positively charged lipids are usually used to induce electrostatic interactions, which raises concerns about cytotoxicity (Patent Document 1). [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 2016-023147 Summary of the Invention [Problem to be solved by the invention]
[0005] The present inventors have focused on the fact that charge-reversible phospholipids have the ability to encapsulate siRNA and are safe at physiological pH, and have also found that when the charge-reversible phospholipids are in the form of lipid particles that do not have a positive charge at the pH of body fluids (usually in the neutral range), they can reduce cytotoxicity.
[0006] An object of the present invention is to provide a phospholipid that is charge-reversible, has no positive charge at the pH of body fluids (usually in the neutral range), and exhibits low cytotoxicity. Preferably, a further object of the present invention is to provide lipid particles that can more efficiently encapsulate drugs and / or have a size suitable for more efficient drug delivery, and lipids for forming the lipid particles. [Means for solving the problem]
[0007] As a result of extensive research, the present inventors have found that the above-mentioned problems can be solved by using phospholipids with a specific structure, and have thus completed the present invention.
[0008] That is, the present invention relates to the following phospholipids, etc. 1. General formula (1): [ka] (In the formula, m represents a natural number of 9 to 25, n represents a natural number of 10 to 15, and X1, X2, and X3 are the same or different and represent H or OH. R 1 represents the following general formula (i) or (ii): [ka] (In the formula, p represents 1 or 2, q represents 1 or 2, and r represents an integer of 1 to 4.) [ka] (In the formula, s represents an integer of 1 to 3. R 2 represents a hydrogen atom or a hydrocarbon group. Phospholipids represented by the formula: 2. The phospholipid according to Item 1, wherein m is a natural number from 13 to 21, and n is a natural number from 11 to 12. 3. The following general formula (2) [ka] (In the formula, R 1 is the same as above.) Item 1. The phospholipid according to item 1, represented by: 4. A lipid particle containing the phospholipid (phospholipid A) according to item 1. 5. The lipid particle according to item 4, which encapsulates a drug. 6. The lipid particle according to item 5, wherein the drug is a polynucleotide. 7. The lipid particle according to item 4, which contains a sterol. 8. The lipid particle according to Item 4, further comprising a phospholipid other than the phospholipid A (phospholipid B). 9. An alcoholic solution containing the phospholipid according to item 1. 10. The alcohol solution according to item 9, wherein the alcohol in the alcohol solution is ethanol. 11. A method for producing lipid particles, comprising a step of mixing the alcohol solution according to item 9 with an acidic aqueous solution. 12. A pharmaceutical comprising the lipid particles according to item 4.
[0009] The present invention also relates to the following phospholipids, etc. 1. General formula (1): [ka] (In the formula, m represents a natural number of 9 to 25, n represents a natural number of 10 to 15, and X1, X2, and X3 are the same or different and represent H or OH. R 1 represents the following general formula (i) or (ii): [ka] (In the formula, p represents 1 or 2, q represents 1 or 2, and r represents an integer of 1 to 4.) [ka] (In the formula, s represents an integer of 1 to 3. R 2 represents a hydrogen atom or a hydrocarbon group. Phospholipids represented by the formula: 2. The phospholipid according to Item 1, wherein m is a natural number from 13 to 21, and n is a natural number from 11 to 12. 3. The following general formula (2) [ka] (In the formula, R 1 is the same as above.) Item 3. The phospholipid according to item 1 or 2, represented by the formula: 4. A lipid particle containing the phospholipid (phospholipid A) according to any one of items 1 to 3. 5. The lipid particle according to item 4, which encapsulates a drug. 6. The lipid particle according to item 5, wherein the drug is a polynucleotide. 7. The lipid particle according to any one of items 4 to 6, which contains a sterol. 8. The lipid particle according to any one of Items 4 to 7, further comprising a phospholipid other than the phospholipid A (phospholipid B). 9. An alcohol solution containing the phospholipid according to any one of items 1 to 3. 10. The alcohol solution according to item 9, wherein the alcohol in the alcohol solution is ethanol. 11. A method for producing lipid particles, comprising a step of mixing the alcohol solution according to item 9 or 10 with an acidic aqueous solution. 12. A pharmaceutical comprising the lipid particles according to any one of items 4 to 8. [Effects of the Invention]
[0010] The phospholipids of the present invention have charge reversibility, do not have a positive charge at the pH of body fluids (usually in the neutral range), and can exhibit low cytotoxicity. [Brief explanation of the drawings]
[0011] [Figure 1] 1 shows an NMR chart of DHSM-DEDA synthesized in Example 1. [Figure 2] 1 shows an NMR chart of DHSM-PPZ synthesized in Example 2. [Figure 3] 1 shows an NMR chart of DOP-DEDA synthesized in Comparative Example 1. [Figure 4]The results of the ζ-potential measurement in Test Example 1-2 are shown. The legend indicates the phospholipid A used as the lipid. The horizontal axis indicates the pH at the time of measurement. [Figure 5] The results of the LDH assay in Test Example 2-2 are shown below. [Figure 6] The results of the WST-8 assay in Test Example 2-2 are shown. [Figure 7] The results of the TLC test in Test Example 3-1 are shown below. [Figure 8] The results of the TLC test in Test Example 3-2 are shown below. DETAILED DESCRIPTION OF THE INVENTION
[0012] In this specification, the expressions "contain" and "comprise" include the concepts of "contain," "comprise," "consist essentially of," and "consist only of."
[0013] 1. Lipid-containing composition In one aspect, the present invention provides a compound represented by general formula (1):
[0014] [ka]
[0015] (In the formula, m represents a natural number of 9 to 25, n represents a natural number of 10 to 15, and X1, X2, and X3 are the same or different and represent H or OH. R 1 represents the following general formula (i) or (ii):
[0016] [ka]
[0017] (In the formula, p represents 1 or 2, q represents 1 or 2, and r represents an integer of 1 to 4.)
[0018] [ka]
[0019] (In the formula, s represents an integer of 1 to 3. R 2 represents a hydrogen atom or a hydrocarbon group. The present invention relates to a phospholipid represented by the formula (hereinafter, also referred to as "the phospholipid of the present invention"). This will be explained below.
[0020] In the above general formula (1), m is a natural number from 9 to 25, and n is a natural number from 10 to 15. m is preferably a natural number from 13 to 21, more preferably a natural number from 14 to 18, and even more preferably 15. n is preferably a natural number from 11 to 12, and more preferably 12. m is more preferably a natural number from 13 to 21, and n is even more preferably a natural number from 11 to 12.
[0021] In the general formula (1), X1, X2, and X3 may be the same or different and represent H or OH. X1, X2, and X3 preferably represent H.
[0022] The phospholipid of the present invention is preferably a compound represented by the following general formula (2). [ka]
[0023] In the above general formula (2), R 1 is R in the above general formula (1). 1 is the same as
[0024] In the above general formulas (1) and (2), R 1 represents the following general formula (i) or (ii).
[0025] [ka]
[0026] [ka]
[0027] In the above general formula (i), p represents 1 or 2, and q represents 1 or 2. It is preferable that p is 2. It is also preferable that q is 2. It is also preferable that both p and q are 2.
[0028] In the above general formula (i), r represents an integer of 1 to 4. From the viewpoint of even better low cytotoxicity, r is preferably 1. Furthermore, from the viewpoint of even greater improvement in the encapsulation rate of the drug, r is preferably 2.
[0029] In the above general formula (ii), s represents an integer of 1 to 3. s is preferably 2.
[0030] In the above general formula (ii), R 2 represents a hydrogen atom or a hydrocarbon group. 2 The hydrocarbon group represented by the formula (I) is not particularly limited as long as it is a monovalent hydrocarbon group. carbonization The hydrogen group is preferably a chain hydrocarbon group, more preferably an alkyl group. The number of carbon atoms in the hydrocarbon group is not particularly limited, but is, for example, 1 to 8, preferably 1 to 6, more preferably 1 to 4, even more preferably 1 or 2, and particularly preferably 1.
[0031] R 2 is preferably a hydrogen atom or an alkyl group, more preferably a hydrogen atom.
[0032] The phospholipid of general formula (1) also includes salt forms. The salt can be either an acidic salt or a basic salt. Examples of acidic salts include inorganic acid salts such as hydrochloride, hydrobromide, sulfate, nitrate, and phosphate; organic acid salts such as acetate, propionate, tartrate, fumarate, maleate, malate, citrate, methanesulfonate, and paratoluenesulfonate. Examples of basic salts include alkali metal salts such as sodium salt and potassium salt; and alkaline earth metal salts such as calcium salt and magnesium salt; salts with ammonia; salts with organic amines such as morpholine, piperidine, pyrrolidine, monoalkylamine, dialkylamine, trialkylamine, mono(hydroxyalkyl)amine, di(hydroxyalkyl)amine, and tri(hydroxyalkyl)amine.
[0033] The phospholipids of the present invention can be synthesized in a variety of ways. For example, the compounds of the present invention can be synthesized by the following reaction scheme:
[0034] [ka]
[0035] (Wherein m, n, X1, X2, X3, and R 1 is the same as above.) The compound can be synthesized according to or in accordance with the following procedure.
[0036] In this reaction, a compound represented by general formula (A) and a compound represented by general formula (B) are reacted with a phospholipase D The compound represented by general formula (1) can be obtained by reacting the compound in the presence of a known enzyme such as
[0037] The amount of the compound represented by general formula (B) used is preferably 1 mole or more, more preferably 2 moles or more, even more preferably 4 moles or more, and particularly preferably 8 moles or more, relative to 1 mole of the compound represented by general formula (A), from the viewpoint of yield, etc. The amount of the compound represented by general formula (B) used is preferably 20 moles or less, more preferably 16 moles or less, and even more preferably 14 moles or less, relative to 1 mole of the compound represented by general formula (A), from the viewpoint of yield, etc.
[0038] This reaction is carried out in the presence of a solvent. There are no particular limitations on the solvent as long as it is a solvent that can exert the activity of the enzyme. Various buffer solutions are suitably used as the solvent. A preferred example of the buffer solution is an acetate buffer. The pH of the solvent is preferably 4 to 7, more preferably 5 to 6. In addition to the aqueous solvent, this reaction system may contain various organic solvents (e.g., chloroform, etc.) to dissolve the compound represented by general formula (A).
[0039] This reaction is typically carried out by mixing an organic solvent solution of the compound represented by general formula (A) with an aqueous solvent solution of the compound represented by general formula (B), and adding the enzyme.
[0040] In addition to the above components, additives may also be used in this reaction as appropriate, provided that they do not significantly impair the progress of the reaction.
[0041] The reaction temperature is not particularly limited as long as it is a temperature at which the enzyme can exert its activity, and is usually 20 to 50°C, preferably 35 to 45°C.
[0042] The reaction time is not particularly limited as long as it is a time that allows the enzyme to exert its activity, and is usually 6 to 72 hours, preferably 12 to 24 hours.
[0043] After the reaction is complete, the solvent is distilled off, and the product can be isolated and purified by conventional methods such as chromatography and recrystallization. The structure of the product can be determined by elemental analysis, MS (FD-MS), IR analysis, 1 H-NMR, 13It can be identified by C-NMR or the like.
[0044] In recent years, ionizable lipids have been developed and made into nanoparticles to enhance the safety of lipid nanoparticles. Ionizable lipids are positively charged in acidic conditions, with a change in net charge from 0 to +1. On the other hand, the change in net charge of the phospholipids (charge-reversible lipids) of the present invention can range from -1 to +2, and the focus is different. The phospholipids of the present invention are ionized even under neutral conditions, and may have different physicochemical properties from ionizable lipids. The lipids of the present invention can also behave as amphipathic lipids under neutral conditions, and therefore can be expected to have higher stability and safety.
[0045] By using the phospholipids of the present invention, it is possible to form lipid particles that do not have a positive charge at the pH of body fluids (usually in the neutral range) and that allow the encapsulated drug to more efficiently exert its effect.
[0046] 2. Lipid particles In one aspect, the present invention relates to lipid particles (also referred to herein as "lipid particles of the present invention") containing the phospholipid of the present invention (also referred to herein as "phospholipid A"). This will be described below.
[0047] The lipid particles of the present invention are not particularly limited as long as they contain the phospholipids of the present invention as particle-constituting lipids. The phospholipids of the present invention contained in the lipid particles may be one type alone or a combination of two or more types. Examples of lipid particles of the present invention include particles in which an amphipathic lipid, including the phospholipids of the present invention, constitutes an outer layer, and the lipids are arranged with their hydrophilic portions facing outward. Examples of such particles include particles whose outer layer consists of a lipid monolayer membrane and particles whose outer layer consists of a lipid bilayer membrane, preferably particles whose outer layer consists of a lipid monolayer membrane, and more preferably particles in which the amphipathic lipids in the outer lipid monolayer membrane are arranged with their hydrophilic portions facing outward. The inner layer of the particle may consist of a homogeneous phase of aqueous or oily phase, but preferably contains one or more reverse micelles.
[0048] The particle size of the lipid particles of the present invention is not particularly limited. The particle size is preferably nano-sized, specifically, for example, 10 to 700 nm, preferably 20 to 500 nm, more preferably 40 to 200 nm, and even more preferably 60 to 150 nm.
[0049] The lipid particles of the present invention preferably do not have a positive charge at the pH of body fluids (usually in the neutral range).
[0050] The lipid particles of the present invention may contain, in addition to the phospholipids of the present invention, other lipids as particle-constituting lipids. Specific examples of lipids include phospholipids, glycolipids, sterols, saturated or unsaturated fatty acids, etc.
[0051] Specific examples of phospholipids include phosphatidylcholines such as dilauroylphosphatidylcholine, dimyristoylphosphatidylcholine, dipalmitoylphosphatidylcholine, distearoylphosphatidylcholine, dioleoylphosphatidylcholine, dilinoleoylphosphatidylcholine, myristoylpalmitoylphosphatidylcholine, myristoylstearoylphosphatidylcholine, and palmitoylstearoylphosphatidylcholine; dilauroylphosphatidylglycerol, dimyristoylphosphatidylglycerol, dipalmitoylphosphatidylglycerol, distearoylphosphatidylglycerol, dioleoylphosphatidylglycerol, dilinoleoylphosphatidylglycerol, myristoylpalmitoylphosphatidylglycerol, and myristoylstearoylphosphatidyl Examples of the phosphatidylethanolamine include glycerol, phosphatidylglycerols such as palmitoylstearoylphosphatidylglycerol, dilauroylphosphatidylethanolamine, dimyristoylphosphatidylethanolamine, dipalmitoylphosphatidylethanolamine, distearoylphosphatidylethanolamine, dioleoylphosphatidylethanolamine, dilinoleoylphosphatidylethanolamine, myristoylpalmitoylphosphatidylethanolamine, myristoylstearoylphosphatidylethanolamine, and palmitoylstearoylphosphatidylethanolamine, phosphatidylserine, phosphatidic acid, phosphatidylinositol, sphingomyelin, cardiolipin, egg yolk lecithin, soybean lecithin, and hydrogenated versions thereof. These may be modified with a water-soluble polymer such as PEG.
[0052] Specific examples of glycolipids include glyceroglycolipids such as diglycosyldiglyceride, digalactosyldiglyceride, galactosyldiglyceride, and glycosyldiglyceride; sphingoglycolipids such as galactosylcerebroside and ganglioside; stearyl glucoside, esterified stearyl glycoside, and the like.
[0053] Specific examples of sterols include cholesterol, cholesteryl hemisuccinate, lanosterol, dihydrolanosterol, desmosterol, dihydrocholesterol, phytosterol, stigmasterol, zymosterol, ergosterol, sitosterol, campesterol, brassicasterol, etc. In particular, since the sterols have the effect of stabilizing the liposome membrane and regulating the fluidity of the liposome membrane, it is desirable that they be contained as constituent lipids of the liposome membrane.
[0054] Specific examples of saturated or unsaturated fatty acids include saturated or unsaturated fatty acids having 10 to 22 carbon atoms, such as decanoic acid, myristic acid, palmitic acid, stearic acid, arachidonic acid, oleic acid, and docosanoic acid.
[0055] The lipids may be used alone or in combination of two or more.
[0056] The lipid particles of the present invention preferably contain a phospholipid other than the phospholipid of the present invention (sometimes referred to herein as "phospholipid B") and / or a sterol, and more preferably a phospholipid B and sterols. When the phospholipid of the present invention is a phospholipid having an unsaturated chain hydrocarbon group, in one embodiment of the present invention, phospholipid B preferably has a saturated chain hydrocarbon group. Phospholipid B is preferably phosphatidylcholine, and particularly preferably dipalmitoylphosphatidylcholine. Other examples of phospholipid B include distearoylphosphatidylcholine, dimyristoylphosphatidylcholine, dioleoylphosphatidylcholine, palmitoyloleoylphosphatidylcholine, etc. A preferred sterol is cholesterol.
[0057] When the lipid particles of the present invention contain phospholipid B, the content thereof is, for example, 15 to 100 mol, preferably 30 to 70 mol, more preferably 40 to 60 mol, and even more preferably 45 to 55 mol, per 100 mol of the phospholipid of the present invention. Alternatively, the content thereof is, for example, 5 to 70 mol, preferably 10 to 40 mol, more preferably 15 to 30 mol, and even more preferably 17 to 27 mol, per 100 mol of the phospholipid of the present invention. Alternatively, the content thereof is, for example, 400 to 500 mol, preferably 420 to 480 mol, more preferably 430 to 470 mol, and even more preferably 445 to 455 mol, per 100 mol of the phospholipid of the present invention.
[0058] When the lipid particles of the present invention contain a sterol, the content thereof is, for example, 30 to 200 mol, preferably 60 to 140 mol, more preferably 80 to 120 mol, even more preferably 90 to 110 mol, and still more preferably 95 to 105 mol, relative to 100 mol of the phospholipid of the present invention. Alternatively, the content thereof is, for example, 250 to 600 mol, preferably 300 to 500 mol, more preferably 340 to 480 mol, even more preferably 430 to 470 mol, and particularly preferably 445 to 455 mol, relative to 100 mol of the phospholipid of the present invention.
[0059] When the lipid particles of the present invention contain phospholipid B and a sterol, the content of phospholipid B is, for example, 15 to 100 mol, preferably 30 to 70 mol, more preferably 40 to 60 mol, and even more preferably 45 to 55 mol, per 100 mol of sterol. Alternatively, the content is, for example, 5 to 70 mol, preferably 10 to 40 mol, more preferably 15 to 30 mol, and even more preferably 17 to 27 mol, per 100 mol of sterol. Alternatively, the content is, for example, 70 to 140 mol, preferably 80 to 130 mol, more preferably 90 to 120 mol, and even more preferably 95 to 105 mol, per 100 mol of sterol.
[0060] The total content of the phospholipids of the present invention and other lipids (in a preferred embodiment, phospholipid B and sterols) that are blended as needed is, for example, 50 mol% or more, preferably 70 mol% or more, more preferably 90 mol% or more, even more preferably 95 mol% or more, and even more preferably 99 mol% or more, relative to 100 mol% of the lipids that constitute the lipid particles of the present invention.
[0061] In the lipid particles of the present invention, a portion of the phospholipid may be modified with a water-soluble polymer such as PEG. The content of the PEG-modified phospholipid is, for example, 0 to 50 mol%, preferably 0 to 30 mol%, more preferably 0 to 20 mol%, and even more preferably 0 to 15 mol%, relative to 100 mol% of the lipids constituting the lipid particles of the present invention.
[0062] The lipid particles of the present invention preferably encapsulate a drug. The drug is not particularly limited and examples thereof include polynucleotides, peptides, proteins, sugars, low molecular weight compounds, etc. The drug is preferably negatively charged and water-soluble. Polynucleotides can be suitably used as such a drug. The target disease of the drug is not particularly limited and examples thereof include cancer (particularly solid cancer).
[0063] The polynucleotide is not particularly limited as long as it can function as a drug, and examples include siRNA, miRNA, antisense nucleic acid, mRNA, expression vectors thereof, protein expression vectors, nucleic acids for genome editing (e.g., guide RNA, Cas protein expression vector, TALEN expression vector, etc.), etc.
[0064] Polynucleotides may be chemically modified as described below. To prevent degradation by hydrolases such as nucleases, the phosphate residues of each nucleotide may be substituted with chemically modified phosphate residues such as phosphorothioate (PS), methylphosphonate, and phosphorodithioate. The hydroxyl group at the 2-position of the sugar (ribose) of each ribonucleotide may be substituted with -OR (where R represents, for example, CH3(2'-O-Me), CH2CHOCH3(2'-O-MOE), CH2CH2NHC(NH)NH2, CH2CONHCH3, or CH2CH2CN). Furthermore, the base moiety (pyrimidine or purine) may be chemically modified, for example by introducing a methyl group or a cationic functional group into the 5-position of the pyrimidine base, or by substituting a thiocarbonyl group for the carbonyl group at the 2-position. Further examples include, but are not limited to, those in which the phosphate moiety or hydroxyl moiety is modified with, for example, biotin, an amino group, a lower alkylamine group, an acetyl group, etc. Also preferably used are BNA (LNA), in which the conformation of the sugar moiety is fixed to N-type by bridging the 2' oxygen and 4' carbon of the sugar moiety of the nucleotide.
[0065] The drug is preferably contained in the inner layer of the lipid particle of the present invention. When the drug is a polynucleotide, the drug is preferably contained within a reverse micelle in the inner layer.
[0066] The molar ratio of the lipids constituting the lipid particles of the present invention to the drug (lipids constituting the lipid particles of the present invention / drug, mol / mol), when the drug is a polynucleotide such as siRNA, is, for example, 500 or more, preferably 1000 or more, more preferably 1500 or more, even more preferably 1900 or more, still more preferably 2500 or more, and particularly preferably 3200 or more. There are no particular limitations on the upper limit of the molar ratio, and it is, for example, 10000, 7000, or 5000.
[0067] The lipid particles of the present invention may contain other components in addition to those described above, such as membrane stabilizers, charged substances, antioxidants, membrane proteins, polyethylene glycol (PEG), antibodies, peptides, and sugar chains.
[0068] The antioxidant can be contained to prevent oxidation of the membrane, and is used as a constituent of the membrane as needed. Examples of the antioxidant used as a constituent of the membrane include butylated hydroxytoluene, propyl gallate, tocopherol, tocopherol acetate, concentrated mixed tocopherols, vitamin E, ascorbic acid, L-ascorbic acid stearate, ascorbic acid palmitate, sodium hydrogen sulfite, sodium sulfite, sodium edetate, erythorbic acid, citric acid, etc.
[0069] Membrane proteins can be incorporated to impart functionality to membranes or stabilize their structure, and are used as membrane components as needed. Examples of membrane proteins include peripheral membrane proteins, integral membrane proteins, albumin, and recombinant albumin.
[0070] The content of other components is, for example, 10% or less, preferably 5% or less, more preferably 2% or less, and even more preferably 1% or less, relative to 100% by mass of the lipid particles of the present invention.
[0071] The lipid particles of the present invention can be produced according to or in accordance with a known method for producing lipid particles, preferably by a method including a step (Step 1) of mixing an alcohol solution containing the phospholipid of the present invention with an acidic aqueous solution.
[0072] The alcohol solvent of the alcohol solution is not particularly limited as long as it is an alcohol capable of dissolving phospholipids. From the viewpoint of solubility, preferred alcohols include ethanol, 2-propanol, t-butanol, etc. Among these, ethanol is particularly preferred from the viewpoints of ease of handling, safety, etc.
[0073] The acidic aqueous solution usually contains an acid in addition to water as a solvent. Examples of the acid include organic acids and inorganic acids, preferably organic acids. Examples of the organic acid include maleic acid, formic acid, acetic acid, propionic acid, folic acid, isobutyric acid, valeric acid, isovaleric acid, pyruvic acid, oxalic acid, malonic acid, succinic acid, glutaric acid, ketoglutaric acid, adipic acid, lactic acid, tartaric acid, fumaric acid, oxaloacetic acid, malic acid, isocitric acid, citric acid, benzoic acid, phthalic acid, isophthalic acid, terephthalic acid, hemimellitic acid, trimellitic acid, trimesic acid, mellophanic acid, prenitic acid, pyromellitic acid, mellitic acid, methanesulfonic acid, benzenesulfonic acid, p-toluenesulfonic acid, camphorsulfonic acid, p-toluenesulfinic acid, benzenesulfinic acid, etc., preferably citric acid. Examples of inorganic acids include hydrochloric acid, sulfuric acid, nitric acid, carbonic acid, boric acid, boronic acid, hydrofluoric acid, hypochlorous acid, chlorous acid, chloric acid, perchloric acid, hypobromous acid, bromous acid, bromic acid, perbromic acid, hypoiodous acid, iodous acid, iodic acid, periodic acid, phosphorous acid, phosphoric acid, polyphosphoric acid, chromic acid, permanganic acid, and amberlyst. The acids may be used alone or in combination of two or more.
[0074] The pH of the acidic aqueous solution is preferably 3-5.
[0075] The acidic aqueous solution preferably contains a water-soluble drug.
[0076] The mixing ratio of the acidic aqueous solution to the alcoholic solution (acidic aqueous solution / alcoholic solution, v / v) is, for example, 1.5 to 10, preferably 2 to 8, and more preferably 3 to 6.
[0077] The mixing method is not particularly limited as long as the lipid and drug can be mixed, but for example, a method of vigorously stirring with a vortex mixer, etc. The mixing time varies depending on the mixing method, but is, for example, 10 seconds to 2 minutes, preferably 15 seconds to 1 minute.
[0078] Step 1 can be carried out, for example, at room temperature or under heating. The temperature in Step 1 is, for example, 5°C to 50°C, preferably 15°C to 45°C. When t-butanol is not used or its amount is small, lipid particles can be prepared even at a relatively low temperature in Step 1. The temperature is, for example, less than 30°C, 25°C or less.
[0079] Step 1 can also be carried out using a reaction system that uses a microchannel. In this case, various conditions can be adjusted appropriately depending on the reaction system.
[0080] After step 1, it is preferable to remove the alcohol by dialysis. Water can usually be used as the dialysis solvent. The dialysis time is, for example, 4 to 48 hours, preferably 6 to 24 hours, and more preferably 6 to 12 hours. It is preferable to exchange the dialysis solvent as needed during dialysis.
[0081] The lipid particles of the present invention can be frozen, lyophilized, or the like.
[0082] 3. Uses of lipid particles In one aspect, the present invention relates to a pharmaceutical containing the lipid particles of the present invention (sometimes referred to herein as the "pharmaceutical of the present invention"). The lipid particles of the present invention can also be used as a reagent.
[0083] The lipid particles of the present invention can more efficiently exert the effects of drugs (e.g., polynucleotides such as siRNA) while further reducing cytotoxicity, and therefore can be suitably used as drug carriers.
[0084] The content of the active ingredient (=drug) in the medicament of the present invention can be appropriately determined taking into consideration the type of target disease, the desired therapeutic effect, the administration method, the treatment period, the age and body weight of the patient, etc. For example, the content of the active ingredient in the medicament of the present invention can be about 0.0001 to 100 parts by weight, assuming that the total medicament of the present invention is 100 parts by weight.
[0085] The dosage form of the pharmaceutical of the present invention is not particularly limited as long as the desired effect is obtained, and it can be administered to mammals, including humans, by either oral administration or parenteral administration (e.g., intravenous injection, intramuscular injection, subcutaneous administration, rectal administration, transdermal administration, or topical administration). Parenteral administration is preferred, and intravenous injection is more preferred. Dosage forms for oral and parenteral administration and their manufacturing methods are well known to those skilled in the art, and can be manufactured by standard methods, such as by mixing the active ingredient with a pharmaceutically acceptable carrier.
[0086] Dosage forms for parenteral administration include injectable preparations (e.g., drip infusions, intravenous injections, intramuscular injections, subcutaneous injections, and intradermal injections), topical preparations (e.g., ointments, poultices, and lotions), suppository inhalants, eye preparations, eye ointments, nasal drops, and ear drops. For example, an injectable preparation is prepared by dissolving the lipid particles of the present invention in distilled water for injection, and a solubilizing agent, a buffer, a pH adjuster, an isotonic agent, a soothing agent, a preservative, a stabilizer, and the like can be added as needed. The pharmaceutical can also be in the form of a freeze-dried preparation for preparation immediately before use.
[0087] The medicament of the present invention may further contain other drugs that are effective in treating or preventing diseases. The medicament of the present invention may also contain ingredients such as bactericides, anti-inflammatory agents, cell activators, vitamins, and amino acids, as needed.
[0088] Carriers used in formulating the pharmaceutical of the present invention include excipients, binders, disintegrants, lubricants, colorants, flavorings, and, if necessary, stabilizers, emulsifiers, absorption enhancers, surfactants, pH adjusters, preservatives, antioxidants, bulking agents, wetting agents, surface activators, dispersants, buffers, preservatives, solubilizers, soothing agents, and the like that are commonly used in the art.
[0089] The dosage of the medicament of the present invention can be determined by a clinician based on various factors, such as the route of administration, the type of disease, the severity of symptoms, the patient's age, sex, and body weight, the severity of the disease, pharmacological knowledge such as pharmacokinetic and toxicological characteristics, whether a drug delivery system is used, and whether the medicament is administered as part of a combination of other drugs. The dosage of the medicament of the present invention can be, for example, approximately 1 μg / kg (body weight) to 10 g / kg (body weight) per day. The administration schedule of the medicament of the present invention can also be determined taking into account the same factors as the dosage. For example, the above daily dosage can be administered once a day to once a month. [Example]
[0090] The present invention will be described in detail below based on examples, but the present invention is not limited to these examples.
[0091] Synthesis Example 1. Synthesis of DHSM-DEDA and DHSM-PPZ (2S,3R)-3-hydroxy-2-stearamidooctadecyl (2-(2′-aminoethylenamine)ethyl) phosphate (DHSM-DEDA: Example 1) and (2S,3R)-3-hydroxy-2-stearamidooctadecyl (2-(piperazino)ethyl) phosphate (DHSM-PPZ: Example 2) were synthesized according to the following scheme.
[0092] [ka]
[0093] A mixture of 3.00 g (4.1 mmol) of DHSM dissolved in chloroform was added to a 0.5 M acetate buffer solution (pH 5.5) containing 5.54 g of 2-(2-aminoethylamino)ethanol (53 mmol), and the mixture was heated to 50°C. D(1,440 U) was added and stirred for 16 hours until the consumption of DHSM was confirmed by TLC analysis. In this specification, one unit is defined as the amount of enzyme (1 μmol / min) that can convert 1 μmol of substrate per minute under optimal conditions (30°C, acidity at which the chemical reaction proceeds most).
[0094] The reaction mixture was diluted with methanol and washed with 20% brine while warming to 50°C. The organic phase was concentrated under reduced pressure and concentrated to dryness. 5.75 g of concentrate was obtained. 3.04 g of the resulting crude reaction product was dissolved in 55.0 g of chloroform:methanol:water = 60:30:5 (vol / vol), 16 mL of EtOH / 1.25M HCl was added dropwise, and the filtrate was stirred for 30 minutes while cooling on ice. After stirring, the precipitated white crystals were filtered and suspended and washed three times with acetone. The resulting crystals were dried overnight under vacuum to obtain 2.15 g of white crystals. 21.5 g of chloroform:methanol = 2:1 (vol / vol) was added to the entire amount of the obtained white crystals, and the mixture was heated to 60°C to dissolve them, then filtered through a 0.2 μm membrane. The mixture was then cooled and stirred at room temperature for 1 hour. The white crystals precipitated after stirring were filtered and washed by suspending them in chloroform:methanol = 2:1 (vol / vol). The obtained crystals were dried in vacuum overnight to obtain 1.25 g of white crystals (yield 79%). The NMR chart is shown in Figure 1.
[0095] (Example 2) Synthesis of DHSM-PPZ 2.80 g (3.82 mmol) of DHSM was dissolved in chloroform, and the solution was added with 6.90 g of 1-(2-hydroxyethyl) piperazine (53 mmol) dissolved in 0.5 M acetate buffer (pH 5.5) and heated to 50°C. D (1,440 U) was added and stirred at 40°C. After 17 hours, the disappearance of DHSM was confirmed by TLC. One unit is defined as the amount of enzyme (1 μmol / min) that can convert 1 μmol of substrate per minute under optimal conditions (30°C, acidity at which the chemical reaction proceeds most).
[0096] The reaction mixture was diluted with methanol:1-butanol (4:1) and washed with 20% brine while warming to 45°C. After extraction and washing with water, the organic phase was concentrated under reduced pressure and evaporated to dryness. 2.53 g of concentrate was obtained. The resulting crude reaction product was dissolved in 25.5 mL of chloroform:methanol:water (60:30:5, vol / vol) and filtered through a 0.2 μm membrane. 12.7 mL of EtOH / 1.25M HCl was added dropwise to the filtrate while cooling with ice and stirred for 30 minutes. The precipitated white crystals were filtered and washed three times with acetone. The resulting crystals were dried under vacuum overnight to yield 1.90 g of white crystals (65% yield). The NMR chart is shown in Figure 2.
[0097] (Comparative Example 1) Synthesis of DOP-DEDA (dioleoylphosphate-diethylenediamine conjugate) DOP-DEDA was synthesized according to the following scheme.
[0098] [ka]
[0099] A mixture of 1.0 g (1.3 mmol) of DOPC dissolved in ethyl acetate was added to a 0.5 M acetate buffer solution (pH 5.5) containing 1.84 g of 2-(2-aminoethylamino)ethanol (17.8 mmol), and the mixture was heated to 40°C. D (600 U) was added and stirred for 48 hours until consumption of DOPC was confirmed by TLC analysis.
[0100] The reaction mixture was diluted with chloroform:methanol (6:1) and washed with 1% hydrochloric acid and 20% brine. The reaction mixture was concentrated under reduced pressure and then evaporated to dryness. 0.72 g of concentrate was obtained. 0.36 g of the crude reaction mixture was dissolved in 4 mL of dioxane, and 2 mL of dioxane / 4M HCl was added dropwise and stirred at room temperature. After ice cooling, acetone was added, and the mixture was stirred for 1 hour. The precipitated white crystals were suspended and washed three times with acetone. The obtained crystals were dried in vacuum overnight to obtain 0.20 g of white crystals (40% yield). The NMR chart is shown in Figure 3.
[0101] Test Example 1. Production of lipid particles and measurement of various physical properties <Test Example 1-1. Production of lipid particles> siRNA was added to 1 mM citrate buffer (pH 4.0) to prepare an siRNA acidic aqueous solution (25°C, siRNA concentration: 301.2 nM). Lipids were added to ethanol to prepare a phospholipid alcohol solution (25°C, lipid concentration: 2.5 mM). The lipid molar ratios were (1) DHSM-DEDA:DHSM:cholesterol (Chol) = 45:10:45, (2) DHSM-PPZ:DOPC:cholesterol (Chol) = 45:10:60, and (3) DOP-DEDA:DPPC:cholesterol (Chol) = 45:10:45. A 4.15-fold volume of the siRNA acidic aqueous solution relative to the phospholipid alcohol solution (siRNA / lipid molar ratio = 1 / 7000) was used to obtain lipid particles using a microfluidic channel (KeyChem-Basic, YMC). Finally, the ethanol was removed by dialysis.
[0102] <Test Example 1-2. Measurement of various physical properties> The lipid particles were diluted 50-fold with RNase-free water, and the particle size and polydispersity index (PDI) were measured using a Zetasizer Nano ZS (Malvern).The lipid particles were also diluted 50-fold with buffer (pH = 4.0, 5.0, 6.0, or 7.0), and the ζ-potential was measured.
[0103] Furthermore, the siRNA encapsulation rate was measured as follows. This was carried out using an RNA quantification reagent (RiboGreen reagent, Thermo Fisher Scientific). Specifically, the measurement was carried out as follows. 2% Triton-X 100 or RNase-free water was added to the lipid particle solution. The resulting solution, RNase-free water, and RiboGreen reagent were mixed in the wells of a 96-well black plate. The plate was shaken for 5 minutes, and then the fluorescence intensity of each well was measured. Based on the measured fluorescence intensity, the siRNA encapsulation rate in the lipid particles was calculated using the following formula: encapsulation rate (%) = (fluorescence intensity of total siRNA - fluorescence intensity of free siRNA) / (fluorescence intensity of total siRNA).
[0104] The results are shown in Table 1 and FIG.
[0105] [Table 1]
[0106] Test Example 2: Cytotoxicity evaluation test <Test Example 2-1. Production of lipid particles> Lipid particles were produced in the same manner as in Test Example 1-1.
[0107] <Test Example 2-2. Toxicity evaluation test> MDA-MB-231 human breast cancer cells were seeded in 96-well plates (7 × 10 3The wells were incubated at 37°C for 24 hours. Lipid particle solutions (containing 0.6 / 2 / 6 pmol of siRNA) or lipid complex solutions (complexes prepared using Lipofectamine® 2000 (Thermo Fisher Scientific), containing 0.6 / 2 / 6 pmol of siRNA) were added dropwise to the wells and incubated at 37°C for 96 hours. The cytotoxicity of the lipid particles and lipid complexes was evaluated using a Viability / Cytotoxicity Multiplex Assay Kit (Dojindo Laboratories). 20 μL of lysis buffer was added to the positive control wells and incubated at 37°C for 30 minutes. 100 μL of the supernatant from each well was transferred to a 96-well clear plate, and 100 μL of the LDH assay reagent solution from the kit was added to the supernatant and incubated at room temperature for 30 minutes. 50 μL of stop solution was then added, and the absorbance (450 nm) was measured. The results are shown in Figure 5. The medium was removed from the plate with the cells attached, and 120 μL of WST-8 assay reagent (Cell Counting Kit: medium = 1:9) was added to each well. After incubation at 37°C for 5 hours, the absorbance (450 nm) was measured. The results are shown in Figure 6.
[0108] In the graph showing the results of the LDH assay in Figure 5, the vertical axis shows the relative value of damaged cells when the negative control is corrected to 1, and the lower part of the column shows the relative value of damaged cells when the negative control is corrected to 1. Used for Phospholipids used A In Figure 5, "Nega" indicates a negative control, a sample to which no lipid particles were added. "Posi" indicates a positive control, a sample to which lysis buffer was added. "LFA" indicates a sample to which a lipid complex using Lipofectamine (registered trademark) 2000 was added instead of lipid particles. Three columns are shown for each sample, and the siRNA concentrations in the evaluation system differ in the three columns, with the siRNA concentrations in the evaluation system being 3 nM, 10 nM, and 30 nM from the left.
[0109] In the graph showing the results of the WST-8 assay in Figure 6, the vertical axis shows the relative value of viable cells when the negative control is corrected to 1, and the lower part of the column shows the relative value of viable cells when the negative control is corrected to 1. Used for Phospholipids used A "Nega," "Posi," and "LFA" in Figure 6 are the same as those in Figure 5 above. Three columns are shown for each sample, and as in Figure 5, the three columns have different siRNA concentrations in the evaluation system, with the siRNA concentrations in the evaluation system being 3 nM, 10 nM, and 30 nM from left to right.
[0110] Test Example 3. Thin-layer chromatography (TLC) test (verification of reaction specificity) <Test Example 3-1. TLC test of DHSM-DEDA> In Example 1, phospholipase D The stirring time after the addition of 1,440 U was changed to 16 hours to obtain a reaction mixture containing DHSM-DEDA. The reaction mixture was then diluted 3-fold with a solvent of chloroform:methanol = 1:1 by volume to prepare a diluted solution. 3 μL of the diluted solution was charged and a TLC test was performed. The TLC plate was manufactured by MERCK. TLC Silica gel 60F 254 The developing solvent was a mixed solvent of chloroform:methanol:water = 60:30:5 in volume ratio. Copper sulfate and ninhydrin were used as color developers. The results are shown in Figure 7.
[0111] In Figure 7, the TLC plate on the left was developed using copper sulfate as a coloring agent, and organic compounds were detected. The TLC plate on the right was developed using ninhydrin as a coloring agent, and amine compounds were detected. In each plate in Figure 7, "a" shows the TLC test results for an amount equivalent to 50 μg of the raw material DHSM, and "b" shows the TLC test results for the reaction mixture.
[0112] The results in Figure 7 show that when DHSM was used as a substrate, amine compounds were detected in the TLC plate b on the right, indicating that DHSM-DEDA was produced in sufficient quantities. Furthermore, the TLC plate b on the left shows that there were almost no organic compounds other than DHSM-DEDA, indicating that the production of impurities was suppressed. From the above, Figure 7 shows that when DHSM was used as a substrate, DHSM-DEDA was produced while suppressing the production of impurities, demonstrating excellent reaction specificity.
[0113] <Test Example 3-2. TLC test of DOP-DEDA> In Comparative Example 1, phospholipase D The stirring time after the addition of DOP-DEDA (600 U) was changed to 20 hours to obtain a reaction mixture containing DOP-DEDA. The reaction mixture was then diluted 3-fold with a solvent of chloroform:methanol = 1:1 by volume to prepare a diluted solution. 3 μL of the diluted solution was charged and a TLC test was performed. The TLC plate was manufactured by MERCK. TLC Silica gel 60F 254 The developing solvent was a mixed solvent of chloroform:methanol:water = 60:30:5 in volume ratio. Copper sulfate and ninhydrin were used as color developers. The results are shown in Figure 8.
[0114] In Figure 8, the TLC plate on the left is a TLC plate developed using copper sulfate as a coloring agent, and organic compounds are detected. The TLC plate on the right is a TLC plate developed using ninhydrin as a coloring agent, and amines are detected. In each plate in Figure 8, "a" shows the TLC test results for an amount equivalent to 50 μg of the raw material DOPC, and "b" shows the TLC test results for the reaction mixture.
[0115] The results in Figure 8 show that when DOPC was used as a substrate, amine compounds were detected in b on the right TLC plate, indicating that DOP-DEDA was produced in sufficient quantities. On the other hand, organic compounds other than DOP-DEDA were also detected in b on the left TLC plate, indicating that the production of impurities was not suppressed. From the above, Figure 8 shows that when DOPC was used as a substrate, the production of DOP-DEDA was insufficient, the production of impurities was not suppressed, and the reaction specificity was poor.
Claims
1. General formula (1): 【Chemical 1】 (wherein m represents a natural number from 9 to 25, n represents a natural number from 10 to 15, and X 1 , X 2 , X 3 are the same or different and represent H or OH. 1 represents the following general formula (i) or (ii): 【Chemistry 2】 (In the formula, p represents 1 or 2, q represents 1 or 2, and r represents an integer of 1 to 4.) 【Chemistry 3】 (wherein s represents an integer of 1 to 3. R 2 represents a hydrogen atom or a hydrocarbon group.) Phospholipids represented by the formula:
2. The phospholipid according to claim 1, wherein m represents a natural number from 13 to 21, and n represents a natural number from 11 to 12.
3. The following general formula (2) 【Chemistry 4】 (In the formula, R 1 is the same as above.) The phospholipid according to claim 1, represented by:
4. A lipid particle comprising the phospholipid (phospholipid A) according to claim 1.
5. The lipid particle according to claim 4 , which encapsulates a drug.
6. The lipid particle of claim 5 , wherein the drug is a polynucleotide.
7. The lipid particle of claim 4 , which contains a sterol.
8. The lipid particle according to claim 4 , further comprising a phospholipid other than the phospholipid A (phospholipid B).
9. An alcoholic solution containing the phospholipid of claim 1.
10. The alcohol solution according to claim 9, wherein the alcohol in the alcohol solution is ethanol.
11. A method for producing lipid particles, comprising a step of mixing the alcohol solution according to claim 9 with an acidic aqueous solution.
12. A pharmaceutical comprising the lipid particles according to claim 4.
Citation Information
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