Drug delivery compositions, methods for producing the same, and uses thereof

By forming carbonate apatite particles with PEG derivatives during formation, the system addresses the challenge of selective drug delivery to target tissues, reducing normal organ accumulation and enhancing therapeutic efficacy.

JP7843500B2Active Publication Date: 2026-04-10山本浩文
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
山本浩文
Filing Date
2022-01-18
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing drug delivery systems using carbonate apatite particles face challenges in achieving high accumulation in target tissues while minimizing accumulation in normal organs, particularly the liver, leading to potential toxicity and reduced therapeutic efficacy.

Method used

The development of carbonate apatite particles with an average diameter of 500-1000 nm, formed in the presence of PEG derivatives with terminal carboxylic acids, which are incorporated during particle formation, enhancing selective delivery to target tissues and reducing accumulation in normal organs.

Benefits of technology

The new drug delivery system achieves significant therapeutic effects in target tissues with reduced accumulation in normal organs, demonstrating improved safety and efficacy with lower drug doses.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a safe and efficacious DDS technique that achieves higher accumulation in a lesion and reduced accumulation in normal organs including the liver and, therefore, that can exert a sufficient therapeutic effect using a smaller amount of a drug. More particularly, provided is a composition that comprises carbonate apatite particles loaded with a drug, characterized in that: the average particle size of the particles is larger than 500 nm and not larger than 1000 nm; primary particles are formed in the presence of a polyethylene glycol (PEG) derivative having one or more terminal carboxylic acids, derivatives thereof or salts thereof; and the PEG derivative is incorporated into the primary particles.
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Description

[Technical Field]

[0001] This invention relates to a drug delivery composition that has high accumulation in target tissues and organs, while sufficiently reducing accumulation in normal organs, a method for producing the same, and its uses. [Background technology]

[0002] Calcium phosphate coprecipitation is a known method for introducing non-viral nucleic acids into cells. This method has advantages such as low toxicity, non-immunogenicity, and ease of operation, but its drawbacks include low efficiency in nucleic acid introduction and expression.

[0003] Akaike et al. found that carbonate apatite (hydroxyapatite (Ca 10 By using a carrier (having a chemical structure in which some of the hydroxyl groups of (PO4)6(OH)2 are replaced with carbonate groups), the efficiency of nucleic acid delivery in vitro has been improved (Patent Document 1, Non-Patent Document 1). Specifically, a cell delivery agent is disclosed in which, when complex particles composed of nucleic acid and carbonate apatite are changed from pH 8.0 to pH 6.0, at least 50% of the complex particles that were present at pH 8.0 dissolve within a predetermined time after the pH is changed to 6.0. The complex particles are taken into cells by endocytosis and released from endosomes into the cytoplasm. Since the pH inside endosomes is acidic (approximately pH 5.5), the taken-up complex particles are exposed to changes in external pH from around pH 7 to pH 5, causing the complex particles to dissolve rapidly and release nucleic acids, resulting in high cell delivery efficiency.

[0004] However, carbonate apatite particles tend to aggregate, and when injected intravenously into mice, they immediately cause vascular embolism, resulting in instant death of the mice, making in vivo administration impossible.

[0005] Therefore, the inventors succeeded in finely dispersing conventional carbonate apatite particles to an average particle size of 50 nm or less by ultrasonic treatment using an ultrasonic cleaner commonly used for cleaning test tubes, etc., enabling intravenous administration to animals. These microparticles significantly improve the efficiency of substance uptake into cells, and when administered intravenously to tumor model mice carrying drugs with antitumor activity, they efficiently deliver the drugs to tumor tissue, while accumulating in the liver and kidneys is reduced compared to liposomes and atelocollagen, resulting in a significant improvement in antitumor activity with a smaller amount of drug than before (Patent Document 2, Non-Patent Document 2). These carbonate apatite microparticles were named super carbonate apatite (sCA). The inventors have demonstrated therapeutic effects against various diseases, including cancer, by loading various therapeutic small RNA molecules such as siRNA and miRNA, and other drugs, onto sCA particles and administering them in vivo to animals (see, for example, reviews such as Non-Patent Documents 3 and 4, and Non-Patent Document 5).

[0006] However, intravenous administration of sCA alone to cynomolgus monkeys resulted in liver function abnormalities (Non-Patent Literature 2), suggesting that sCA still accumulates in normal organs such as the liver. Furthermore, inorganic ion-based systems, such as sCA, are problematic due to their low efficiency in delivering genes to lesions (Non-Patent Literature 3).

[0007] Thus, in order to safely utilize these drugs for pharmaceutical purposes in humans, it is essential to develop drug delivery system (DDS) technologies that achieve higher accumulation in diseased tissue and reduced accumulation in normal organs, including the liver. [Prior art documents] [Patent Documents]

[0008] [Patent Document 1] Patent No. 4536655 [Patent Document 2] Patent No. 5436650 [Non-patent literature]

[0009] [Non - Patent Document 1] Gene. 2006;376(1):87 - 94. [Non - Patent Document 2] PLoSOne. 2015 Mar 4;10(3):e0116022. doi: 10.1371 / journal.pone.0116022. [Non - Patent Document 3] Cancers 2020, 12,1852;doi:10.3390 / cancers12071852 [Non - Patent Document 4] Journal of Oncology Volume 200, Article ID 8029721, 14 pages https: / / doi.org / 10.1155 / 2020 / 8029721 [Non - Patent Document 5] Mol Cancer Ther. 2018 May;17(5):977 - 987. doi: 10.1158 / 1535 - 7163. [Summary of the Invention] [Problems to be Solved by the Invention]

[0010] An object of the present invention is to provide a safe and effective DDS technology that realizes higher accumulation in lesions and reduction of accumulation in normal organs including the liver, so that a sufficient therapeutic effect can be achieved with a smaller amount of drug. [Means for Solving the Problems]

[0011] The inventors have found that when drugs are delivered using sCA, they still accumulate not only in target tissues and organs (e.g., cancerous lesions) but also in normal organs such as the liver, spleen, and lungs, with particularly high accumulation in the liver (Figure 7). The inventors focused on the fact that even after ultrasonic treatment resulted in a large proportion of particles with an average particle diameter of 50 nm or less, micron-sized particles still remained visible to the naked eye (Non-Patent Literature 2). Therefore, they diligently investigated methods such as filtering the sCA particles, nanoparticle formation by laser, use of other crushing treatments, and modification of the sCA particle surface with polyethylene glycol (PEG), but none of these succeeded in eliminating the persistence of large particles.

[0012] Next, the inventors conceived the idea of ​​not PEGylated the surface of sCA particles, but rather incorporating PEG like a "nail" during particle formation, and then combining this with a crushing process to achieve microparticle size. Therefore, using PEG derivatives with average molecular weights of 2000 and 10000, the inventors added the PEG derivatives from the beginning to the buffer used for carbonate apatite preparation. In the former case, the amount of sCA particles (liquid turbidity) was visibly reduced compared to the case without the PEG derivative. Therefore, the inventors proceeded with the investigation using the PEG derivative with a molecular weight of 10000. As a result, while conventional water-bath ultrasonic cleaning and wet crushing processes did not yield clear images with atomic force microscopy (AFM) due to the large particle size, using a special ultrasonic treatment called Covaris, dispersion was achieved to the extent that particles could be clearly identified with AFM, and a single peak was obtained with dynamic scattering (DLS), with an average particle size of 650 nm. Even with the addition of strong Covaris ultrasonic treatment, the nucleic acids within the particles were preserved without degradation to the same extent as in the case of water-bath ultrasonic cleaning.

[0013] When sCA, to which a PEG derivative was added during particle formation, was loaded with microRNA (miR-34a) and sonicated, and then added to miR-34a-sensitive colorectal cancer cells, the Covaris-treated sCA showed cytotoxicity comparable to that of conventional sCA treated with aquarium-type ultrasonic cleaning.

[0014] The average particle size of Covaris-treated particles measured by DLS was 650 nm. However, when diluted 50 times and measured by AFM, the smallest particles were around 30 nm. Since the particles measured by DLS accounted for the majority of the particle volume, we hypothesized that this was responsible for the antitumor effect of nucleic acid and conducted verification. Using a hollow fiber membrane, we fractionated the particles by size into 10-50 nm, 50-200 nm, and 200-1000 nm, and measured the amount of nucleic acid (MIRTX: Non-Patent Literature 5) loaded in each fraction. We found that the 200-1000 nm fraction contained one-eighth the amount of nucleic acid as conventional sCA, and the smaller fractions contained less than the detection limit. When each fraction and conventional sCA were intravenously administered to nude mice subcutaneously transplanted with MIRTX-sensitive pancreatic cancer cells, the 200-1000 nm fraction, despite containing only one-eighth the amount of nucleic acid loaded in sCA, significantly suppressed tumor growth more effectively than conventional sCA. On the other hand, fractions with smaller particle sizes did not show any tumor growth inhibitory effect. Based on the above, the inventors have demonstrated that the 200-1000 nm fraction is the main component of the antitumor effect. Furthermore, the new DDS created in this way was used in cNaD1( C controlled colour Na noparticle D rug 1 ) was named as such.

[0015] When fluorescently labeled nucleic acids were loaded onto sCA or cNaD1 and administered intravenously to tumor-bearing mice, the tumors and normal organs of the mice were excised, and the fluorescence intensity was measured. The fluorescent nucleic acids loaded onto cNaD1 fluoresced in the tumors at one-eighth the amount of sCA administered, just as they did when sCA was administered. On the other hand, accumulation in normal organs, including the liver, was significantly reduced compared to sCA.

[0016] Since cNaD1 showed superior therapeutic effects compared to sCA with significantly lower nucleic acid levels, the inventors incorporated a PEG derivative with an average molecular weight of 2000 during particle formation. Surprisingly, using a PEG derivative with an average molecular weight of 2000 resulted in a single peak with an average particle size of 740 nm in DLS, without the need for sonication or fractionation using hollow fiber membranes, and it could be used directly as a drug delivery carrier. Similar to cNaD1, it demonstrated significantly superior antitumor effects at significantly lower doses than sCA, while almost no accumulation in normal tissue was observed even when administered at high doses equivalent to those of sCA. Therefore, particles prepared using a PEG derivative with an average molecular weight of 2000 were named cNaD2.

[0017] Next, when the particle performance of cNaD2 was investigated over time from the dissolution of the PEG derivative, it was found that the amount of nucleic acid per amount of incorporated Ca (NA / Ca ratio) was highest when particle formation was performed 2 to 3 days after the dissolution of the PEG derivative, indicating an improvement in nucleic acid loading efficiency. The PEG derivative used here is a derivative in which one end is methylated and the other end has an ester of carboxylic acid and N-hydroxysuccinimide (NHS) attached, and is easily hydrolyzed. The inventors considered that the terminal 5-membered ring might be unnecessary since the amount of nucleic acid in the particles increases as hydrolysis progresses, and synthesized a PEG derivative with a free carboxylic acid at the terminal from monomethylated PEG. Using this, particles were created and the amount of nucleic acid loaded was compared with that of cNaD2. As a result, particles made using any of the synthesized monomethyl monocarboxylic acid PEGs were able to load nucleic acids equivalent to or greater than that of cNaD2. When particles made using monomethylmonocarboxylic acid PEG were loaded with fluorescently labeled nucleic acids and administered to tumor-bearing mice, their accumulation in tumors and livers was examined. Compared to sCA, tumor accumulation was significantly increased, while liver accumulation was significantly reduced. On the other hand, when using regular PEG without a carboxylic acid at the end, tumor specificity was as low as or even lower than that of sCA.

[0018] From the above, it was suggested that PEG derivatives having one or more carboxylic acids at the terminal end are preferable for use in cNaD. Therefore, the inventors further prepared four types of mono- or dicarboxylic acid PEGs to create particles, and when these (cNaD3 to cNaD6) were loaded with fluorescent nucleic acids and administered intravenously to tumor-bearing mice, it was confirmed that they exhibited excellent tumor accumulation and reduced accumulation in normal organs, including the liver, similar to cNaD1 and cNaD2.

[0019] Based on these findings, the inventors have completed the present invention.

[0020] In other words, the present invention provides the following: [Section 1] A composition containing carbonate apatite particles carrying a drug, wherein the average particle diameter of the particles is greater than 500 nm and less than or equal to 1000 nm, and primary particles are formed in the presence of a polyethylene glycol (PEG) derivative having one or more carboxylic acids or derivatives thereof or salts thereof at its terminal, and the PEG derivative is incorporated into the primary particles. [Section 2] The composition according to item 1, wherein the average molecular weight of the PEG derivative is 1,000 to 20,000. [Item 3] The composition according to claim 1 or 2, wherein the composition contains the PEG derivative and / or its reaction product. [Section 4] The composition according to item 3, wherein the average molecular weight of the PEG derivative is 1000 to 5000. [Section 5] The composition according to any one of claims 1 to 4, wherein the PEG derivative has one or more carboxylic acids or salts thereof at its terminus. [Section 6] A composition according to any one of items 1 to 5, wherein the drug is a nucleic acid. [Section 7] A composition according to any one of claims 1 to 6, wherein the drug has antitumor activity. [Section 8] The composition according to any one of items 1 to 7, further containing albumin. [Section 9] A method for producing the composition described in item 1, comprising ultrasonically treating carbonate apatite particles, which are loaded with a drug and a PEG derivative, using a single-point focused ultrasonic irradiation device. [Section 10] The method according to claim 9, wherein carbonate apatite particles carrying a drug and a PEG derivative are prepared by mixing a first solution containing a drug and calcium ions, a second solution containing phosphate ions and bicarbonate ions, and a PEG derivative. [Section 11] The method according to claim 9 or 10, further comprising concentrating the composition according to claim 1 using a hollow fiber membrane. [Section 12] A drug delivery composition comprising one of the compositions described in any one of items 1 to 8. [Section 13] A drug delivery composition according to item 12, wherein the drug has antitumor activity and the target tissue is a tumor. [Section 14] The drug delivery composition according to item 12, wherein the drug has anti-inflammatory activity and the target tissue is inflamed tissue. [Effects of the Invention]

[0021] According to the present invention, a safe and effective drug delivery composition is provided that has higher accumulation in lesions, while reducing accumulation in normal organs, including the liver, and that produces sufficient therapeutic effects with a smaller amount of drug. [Brief explanation of the drawing]

[0022] [Figure 1-1] This figure shows the change in particle size of carbonate apatite particles formed in the absence of PEG derivatives due to ultrasonic treatment. [Figure 1-2] This figure shows the change in particle size of carbonate apatite particles formed in the presence of a PEG derivative (SUNBRIGHT ME-100CS) after ultrasonic treatment. [Figure 2] This figure shows the effect of the amount of PEG derivative (SUNBRIGHT ME-100CS) added on particle formation. [Figure 3] This figure shows the results of agarose gel electrophoresis verification of nucleic acids in particles after sonication and wet crushing. [Figure 4] This figure shows that the cytotoxic activity of miR-34a remains the same regardless of whether or not a PEG derivative is added, even when the sonication method is changed. [Figure 5] This figure shows the measurement results of the amount of nucleic acid (MIRTX) loaded in each size fraction of sCA-MIRTX and PCANP-MIRTX. MIRTX is a microRNA with antitumor activity described in Non-Patent Literature 5. [Figure 6] This figure shows the antitumor effects of sCA equipped with MIRTX and PCANP-MIRTX at different size fractions. [Figure 7] This figure shows the uptake of Alexa750-labeled NC (Negative Control) siRNAs, loaded into the 200-1,000 nm size fractions of sCA and PCANP, into tumors and normal organs. [Figure 8] This figure shows the particle size of PCANP (200-1000nm). [Figure 9] This figure shows the therapeutic effect of miR-136, which is embedded in sCA and cNaD2, on colorectal cancer DLD1. [Figure 10] This figure shows the therapeutic effect of microRNAs mounted on cNaD2 on a large tumor (600 mm³) created from patient-derived xenografts (PDX) from colorectal cancer patients. [Figure 11] This figure shows the therapeutic effect of Sdc4 siRNA mounted on cNaD2 on cancer stem cell model cells created from pancreatic cancer Panc-1. [Figure 12-1] This figure shows the accumulation of nucleic acids in tumors one hour after administration of Alexa750-labeled NC siRNA, loaded onto sCA or cNaD2, to tumor-bearing mice. [Figure 12-2] This figure shows the accumulation of nucleic acids in normal organs 4 hours after administration of Alexa750-labeled NC siRNA, loaded onto sCA or cNaD2, to tumor-bearing mice. [Figure 13] This figure shows the particle size of cNaD2. [Figure 14] This figure compares the nucleic acid loads of carbonate apatite particles (sCA-C1-Iris, sCA-C1-Hamari), cNaD2, and sCA prepared in the presence of monomethylmonocarboxylic acid PEG. The upper panel shows the nucleic acid load per particle, and the lower panel shows the nucleic acid load per Ca amount. [Figure 15-1] This figure shows the accumulation of nucleic acids in tumors one hour after administration to tumor-bearing mice with Alexa750-labeled NC siRNA loaded onto carbonate apatite particles (Handai-C1, Hamari-C1) prepared in the presence of monomethylmonocarboxylic acid PEG, carbonate apatite particles prepared in the presence of HO-PEG-OH, sCA, and sCA particles with PEG surface modification (Pegylation), while maintaining a constant Ca content (0.1 mg). [Figure 15-2] This figure shows the accumulation of nucleic acids in normal organs 4 hours after administration to tumor-bearing mice with Alexa750-labeled NC siRNA loaded onto carbonate apatite particles (Handai-C1, Hamari-C1) prepared in the presence of monomethylmonocarboxylic acid PEG, carbonate apatite particles prepared in the presence of HO-PEG-OH, sCA, and sCA particles with PEG surface modification (Pegylation), while maintaining a constant Ca content (0.1 mg). [Figure 16-1] This figure shows the accumulation of nucleic acids in tumors one hour after administration to tumor-bearing mice with a constant nucleic acid amount (15 μg) of Alexa750-labeled NC siRNA loaded onto carbonate apatite particles (Handai-C1, Hamari-C1) prepared in the presence of monomethylmonocarboxylic acid PEG, carbonate apatite particles prepared in the presence of HO-PEG-OH, sCA, and sCA particles with PEG surface modification (Pegylation). [Figure 16-2]This figure shows the changes over time in Figure 16-1. Alexa750-labeled NC siRNA was loaded onto carbonate apatite particles (Handai-C1, Hamari-C1) prepared in the presence of monomethylmonocarboxylic acid PEG, carbonate apatite particles prepared in the presence of HO-PEG-OH, sCA, and particles with PEG-modified sCA surfaces (Pegylation). The data shows the accumulation of nucleic acids in tumors 1 hour (left panel) and 4 hours (right panel) after administration to tumor-bearing mice at a constant nucleic acid dose (15 μg). [Figure 16-3] This figure shows the accumulation of nucleic acids in normal organs 4 hours after administration to tumor-bearing mice with a constant nucleic acid amount (15 μg) of Alexa750-labeled NC siRNA loaded onto carbonate apatite particles (Handai-C1, Hamari-C1) prepared in the presence of monomethylmonocarboxylic acid PEG, carbonate apatite particles prepared in the presence of HO-PEG-OH, sCA, and sCA particles with PEG surface modification (Pegylation). [Figure 16-4] This figure shows the changes over time in Figure 16-3. Alexa750-labeled NC siRNA was loaded onto carbonate apatite particles (Handai-C1, Hamari-C1) prepared in the presence of monomethylmonocarboxylic acid PEG, carbonate apatite particles prepared in the presence of HO-PEG-OH, sCA, and particles with PEG modification on the surface of sCA (Pegylation). The data shows the accumulation of nucleic acids in normal organs 1 hour (left panel) and 4 hours (right panel) after administration to tumor-bearing mice at a constant nucleic acid dose (15 μg). [Figure 17] This figure shows the ratio of nucleic acids to calcium (μg / mg) constituting sCA, sCA particles with PEG surface modification (Pegylation), and cNAD3-cNAD6 particles. [Figure 18] This figure shows that carbonate apatite particles (cNaD6) prepared in the presence of dicarboxylic acid PEG show similar accumulation in tumors and the liver as carbonate apatite particles (cNaD3) prepared in the presence of monomethylmonocarboxylic acid PEG. It also shows the accumulation of nucleic acids when Alexa750-labeled NC siRNA was administered to tumor-bearing mice at a constant nucleic acid dose (15 μg). [Figure 19] This figure shows the therapeutic effect of MIRTX, which is mounted on cNaD3, on DLD1 colorectal cancer. [Figure 20] This figure shows the uptake of Alexa750-labeled NC siRNA, loaded onto sCA, cNaD3 prepared immediately before use, or freeze-dried and stored, into mouse subcutaneous tumors and the liver. [Figure 21-1] This figure shows the accumulation of nucleic acids in the inflamed joints of the limbs 40 minutes after administration of Alexa750-labeled NC siRNA, loaded onto sCA or cNaD1, to a rheumatoid arthritis model mouse. [Figure 21-2] This figure shows the accumulation of nucleic acids in the liver 45 minutes after administration of Alexa750-labeled NC siRNA, loaded onto sCA or cNaD1, to a rheumatoid arthritis model mouse. [Figure 22] This figure shows the results of X-ray diffraction analysis of carbonate apatite particles (sCA-SIGMA(-OH)) prepared using sCA, cNaD2, cNaD3 (sCA-C1-HAMARI, sCA-C2-Handai), and PEG-OH. [Modes for carrying out the invention]

[0023] The present invention provides a composition containing carbonate apatite particles carrying a drug, wherein the average particle diameter of the particles is greater than 500 nm and less than or equal to 1000 nm, and primary particles are formed in the presence of a PEG derivative, and the PEG derivative is incorporated into the primary particles (hereinafter also referred to as "the composition of the present invention").

[0024] The carbonate apatite and carbonate apatite particles that can be used in the present invention are known. Carbonate apatite is hydroxyapatite (Ca 10 (PO4)6(OH)2) hydroxyl group (OH - ) part of the carbonate group (CO3 2- It has a chemical structure substituted with ) and the general formula Ca 10-m X m (PO4)6(CO3) 1-n Y nIt can be expressed as follows: Here, X can be any element that can partially substitute for Ca in carbonate apatite, for example, Sr, Mn, rare earth elements, etc. m is usually a positive number between 0 and 1, preferably between 0 and 0.1, more preferably between 0 and 0.01, and even more preferably between 0 and 0.001. Y is a unit that can partially substitute for CO3 in carbonate apatite, for example, OH, F, Cl, etc. n is usually a positive number between 0 and 0.1, preferably between 0 and 0.01, more preferably between 0 and 0.001, and even more preferably between 0 and 0.0001.

[0025] Carbonate apatite particles can be obtained by known methods. For example, they can be obtained by preparing an aqueous solution containing calcium ions, phosphate ions, and bicarbonate ions. The concentrations of each ion in the aqueous solution are not particularly limited as long as carbonate apatite particles are formed, and can be set appropriately with reference to the following.

[0026] The calcium ion concentration in the aqueous solution is usually 0.1 mM or higher, preferably 0.5 mM or higher, and more preferably 1 mM or higher. The upper limit of the calcium ion concentration is usually 1 M or lower, preferably 100 mM or lower, and more preferably 10 mM or lower.

[0027] The phosphate ion concentration in the aqueous solution is usually 0.1 mM or higher, preferably 0.5 mM or higher, and more preferably 1 mM or higher. The upper limit of the phosphate ion concentration is usually 1 M or lower, preferably 100 mM or lower, and more preferably 10 mM or lower.

[0028] The concentration of bicarbonate ions in the aqueous solution is usually 1.0 mM or higher, preferably 5 mM or higher, and more preferably 10 mM or higher. The upper limit of the bicarbonate ion concentration is usually 10 mM or lower, preferably 1 mM or lower, and more preferably 100 mM or lower.

[0029] The sources of calcium ions, phosphate ions, and bicarbonate ions are not particularly limited as long as they can supply these ions to the aqueous solution, but for example, salts of these ions can be added to the aqueous solution. Specifically, CaCl2 or CaCl2·2H2O can be used as the calcium ion source, NaH2PO4·2H2O can be used as the phosphate ion source, and NaHCO3 can be used as the carbonate ion source.

[0030] When incorporating other substances into carbonate apatite particles, the other substances can be added to the aqueous solution when forming the carbonate apatite particles. Examples of such "other substances" include any drug and the PEG derivatives described later. The type of drug is not particularly limited, but when carbonate apatite particles are used as a carrier for substances to cells or living organisms, various physiologically active substances can be used. In this specification, "loading" includes a state in which carbonate apatite particles and the other substance are adhered and complexed in any manner in a state in which the other substance can be transported. Therefore, the state in which the other substance is adhered not only to the inside of the carbonate apatite particles but also to the outside is included in "loading" in this invention. Furthermore, in this specification, when terms such as "incorporation" are used to describe the relationship between carbonate apatite particles and the other substance, they are substantially synonymous with "loading".

[0031] Examples of the above-mentioned drugs include, but are not limited to, nucleic acids such as DNA, RNA, antisense nucleic acids, siRNA, miRNA, and aptamers; enzymes, peptides or proteins; polypeptides such as various peptide hormones; various anticancer drugs; drugs for treating central nervous system diseases; various antibiotics; drugs for treating peripheral nerve diseases; drugs for treating sensory organ diseases; drugs for treating cardiovascular diseases; drugs for treating respiratory diseases; drugs for treating digestive system diseases; hormone preparations; drugs for treating urogenital diseases; drugs for treating skin diseases; drugs for treating dental and oral diseases; vitamins; tonics; cell activators; anti-allergic drugs; and anti-inflammatory drugs. These drugs may be used individually or in combination of two or more. If the drug is a nucleic acid, it may be DNA, RNA, or a chimeric molecule thereof. Furthermore, the nucleic acid may be single-stranded or double-stranded. There are no particular restrictions on the length of the nucleic acid, but preferably, small nucleic acid molecules such as antisense oligonucleotides (ASOs), siRNA, miRNA, and aptamers are used.

[0032] In one preferred embodiment, the drug may be a compound having antitumor activity. The types of cancer that the composition of the present invention can target are not particularly limited and include any cancer. For example, it may be an epithelial cell-derived cancer, but it may also be a non-epithelial sarcoma or hematological cancer. More specifically, this includes, but is not limited to, cancers of the digestive system (e.g., esophageal cancer, stomach cancer, duodenal cancer, colorectal cancer (colon cancer, rectal cancer), liver cancer (hepatocellular carcinoma, cholangiocarcinoma), gallbladder cancer, bile duct cancer, pancreatic cancer, anal cancer), cancers of the urinary system (e.g., kidney cancer, ureteral cancer, bladder cancer, prostate cancer, penile cancer, testicular cancer), cancers of the chest (e.g., breast cancer, lung cancer (non-small cell lung cancer, small cell lung cancer)), cancers of the reproductive system (e.g., uterine cancer (cervical cancer, endometrial cancer), ovarian cancer, vulvar cancer, vaginal cancer), brain tumors, cancers of the head and neck (e.g., maxillary cancer, pharyngeal cancer, laryngeal cancer, tongue cancer, thyroid cancer), cancers of the skin (e.g., basal cell carcinoma, squamous cell carcinoma), oral cancer, and cancers of the blood (leukemia, malignant lymphoma). Preferably, solid tumors, more preferably colorectal cancer, pancreatic cancer, breast cancer, esophageal cancer, gastric cancer, prostate cancer, etc., and more preferably colorectal cancer, pancreatic cancer, etc.

[0033] Compounds having antitumor activity incorporated into the composition of the present invention include, for example, alkylating agents such as cyclophosphamide hydrate, ifosfamide, thiotepa, busulfalane, melphalan, nimustine hydrochloride, ranimustine, dacarbazine, and temozolomide; and antimetabolites such as methotrexate, pemetrexed sodium hydrate, fluorouracil, doxifluridine, capecitabine, tagafur, cytarabine, gemcitabine hydrochloride, fludarabine phosphate, nelarabine, cladribine, and levofolinate calcium. Antibiotics such as doxorubicin hydrochloride, daunorubicin hydrochloride, prarubicin, epirubicin hydrochloride, idarubicin hydrochloride, acralubicin hydrochloride, amrubicin hydrochloride, mitoxantrone hydrochloride, mitomycin C, actinomycin D, bleomaciin hydrochloride, puperomacin hydrochloride, dinostatin stimalamer, and calicheamicin; microtubule inhibitors such as vincristine sulfate, vinblastine sulfate, vindesine sulfate, and paclitaxel; aromatase inhibitors such as anastrozole, exemestane, letrozole, and fadrozole hydrochloride hydrate; platinum-based drugs such as cisplatin, carboplatin, nedaplatin, and oxaliplatin; Examples of topoisomerase inhibitors such as irinotecan hydrochloride hydrate, nogitecan hydrochloride, etoposide, and sobuzoxane; corticosteroids such as prednisolone and dexamethasone; thalidomide and its derivative lenalidomide; and protease inhibitors such as bortezomib, but are not limited to these.

[0034] Low molecular weight anticancer drugs (e.g., molecular weight 1000 or less) can also be linked to water-soluble polymers directly or via hydrazones to form high molecular weight drugs. The type of water-soluble polymer is not particularly limited, but examples include polyhydroxypropyl methacrylamide (PHPMA) and styrene-maleic acid copolymers.

[0035] Alternatively, examples of compounds with antitumor activity include antibodies or their fragments such as anti-EGFR antibodies, anti-CD40 antibodies, anti-CD33 antibodies, anti-HER2 antibodies, anti-VEGF antibodies, anti-CTLA-4 antibodies, anti-PD-1 antibodies, anti-PD-L1 antibodies, and anti-CD20 antibodies, as well as sensitive substances that can be targeted for photodynamic therapy (e.g., polymer-type zinc protoporphyrin (P-ZnPP) and albumin-bound indocyanine green (ICG)).

[0036] Other preferred embodiments include, for example, siRNA, shRNA, dsRNA, microRNA, antisense nucleic acids (antisense DNA, antisense RNA), stabilized artificial nucleic acid BNA, ribozymes, decoy nucleic acids, aptamers, and the like.

[0037] More specifically, various miRNAs that have an inhibitory effect on the proliferation of cancer stem cells (e.g., hsa-miR-136-5p, hsa-miR-3065-3p, hsa-miR-4727-5p, hsa-miR-378g, hsa-miR-181a-5p, hsa-miR-362-5p, hsa-miR-608) (WO2018 / 181877); miR4689 and miR4685-3p (WO2015 / 133522) that have excellent therapeutic effects against colorectal cancer, especially colorectal cancer with mutations in the KRAS gene; miR-29b that has shown antitumor effects against various cancers such as cholangiocarcinoma, lung cancer, and acute leukemia; cancer Examples of suitable nucleic acids include miR-4711-5p (WO2020 / 246380), which suppresses the expression of KLF5 involved in cell regeneration, and TFDP1 and MDM2, which are important for cell cycle regulation; siRNA against syndecan 4 (SDC4), which is highly expressed in cancer stem cells (WO2020036183); and CpG oligonucleotides effective as cancer vaccine adjuvants, preferably K-type or D-type CpG oligonucleotides, more preferably K-type and K3-type CpG oligonucleotides possessing the characteristics of both K-type and D-type (WO2018 / 030338). However, the adjuvant is not limited to these, and any nucleic acid known to have antitumor activity can be used. Furthermore, the nucleic acid may be not only a natural nucleic acid, but also a mutant nucleic acid in which one or more nucleotides in its nucleotide sequence are substituted with other nucleotides, or which includes deletions, insertions, or additions, as long as it has activity equivalent to or greater than that of a natural nucleic acid. For example, the nucleic acid disclosed in WO2015 / 133521 can be cited as a variant of miR-29b.

[0038] The miRNA may be a mature miRNA, a hairpin-type precursor miRNA (pri-miRNA), or a pre-miRNA in which a portion of the pri-miRNA has been cleaved. The siRNA may also be a mature siRNA or a hairpin-type precursor (shRNA). Furthermore, the loop portion of the pre-iRNA or shRNA may be substituted with an amino acid derivative linker developed by Bonac Corporation (e.g., proline, glycine, lysine, phenylalanine, glutamic acid, glycylglycine).

[0039] The nucleic acids incorporated into the composition of the present invention may be subjected to various modifications commonly applied to nucleic acids, as necessary, in order to confer resistance to degradation by nucleases, etc. Examples of such modifications include modifications to the sugar chain portion, such as 2'-O methylation; modifications to the base portion; and modifications to the phosphate portion, such as phosphorothioate, amination, lower alkylamination, and acetylation.

[0040] The compositions of the present invention can deliver drugs with high selectivity not only to tumor tissue but also to other disease sites, such as inflammatory tissue. Therefore, compounds having anti-inflammatory effects can be used as drugs incorporated into the compositions. The inflammatory tissues that the compositions of the present invention can target are not particularly limited and can include inflammatory sites in any inflammatory disease. For example, inflammatory diseases include various autoimmune diseases (rheumatoid arthritis, SLE, scleroderma, polymyositis, Sjögren's syndrome, ANCA-associated vasculitis, Behçet's disease, Kawasaki disease, mixed cryoglobulinemia, multiple sclerosis, Guillain-Barré syndrome, myasthenia gravis, type 1 diabetes, Graves' disease, Hashimoto's disease, Addison's disease, IPEX, APS type-II, autoimmune myocarditis, interstitial pneumonia, bronchial asthma, autoimmune hepatitis, primary biliary cirrhosis, inflammatory bowel disease (Crohn's disease, ulcerative colitis), psoriasis, atopic dermatitis, hemolytic anemia, autoimmune thyroiditis, polyarthritis type of idiopathic juvenile arthritis, etc.), but are not limited to these.

[0041] Compounds having anti-inflammatory effects are not particularly limited and include, for example, steroidal anti-inflammatory drugs (e.g., hydrocortisol, prednisolone, triamcinolone, dexamethasone, betamethasone), non-steroidal anti-inflammatory drugs (e.g., aspirin, ethenzamide, diflunisal, loxoprofen, ibuprofen, diclofenac, indomethacin, COX-2 inhibitors), and antirheumatic drugs (e.g., sodium aurthiomalate, penicillamine, lobenzarit, auranofin, bucillamine, actarit, sulfasalazine, mizoribine, methotrexate, leflunomide, tacrolimus, infliximab, etanercept, adalimumab, tocilizumab, abatacept), but any known anti-inflammatory drug or therapeutic agent for the above-mentioned inflammatory diseases can be used.

[0042] In one preferred embodiment, miR-29a and miR-29b can be cited as miRNAs having therapeutic activity against inflammatory bowel disease (WO2018 / 199121).

[0043] Furthermore, the CpG oligonucleotide can be used not only as a cancer vaccine adjuvant but also as a vaccine adjuvant against various infectious diseases. Therefore, in another embodiment, the composition of the present invention containing the CpG oligonucleotide can target cells infected with various pathogens. The infected cells that can be targeted by the composition of the present invention are not particularly limited and include cells infected with any pathogen, but examples include influenza virus, avian influenza virus, parainfluenza virus, adenovirus, SARS virus, AIDS virus, cytomegalovirus, hepatitis virus, Japanese encephalitis virus, measles virus, rubella virus, varicella-zoster virus, poliovirus, papillomavirus, herpesvirus, mumps virus, rotavirus, cholera virus, rabies virus, viruses that cause viral hemorrhagic fevers such as Ebola hemorrhagic fever, Marburg disease, Lassa fever, and Crimean-Congo hemorrhagic fever; diphtheria, tetanus, tuberculosis bacteria, pneumococcus, meningococcus, staphylococcus, Pseudomonas aeruginosa, Bordetella pertussis, anthrax, Rickettia, Salmonella, etc.; fungi such as Cryptococcus and Aspergillus; and pathogenic organisms such as malaria parasites.

[0044] When the composition of the present invention is equipped with a CpG oligonucleotide and used as a vaccine adjuvant, the composition may also be equipped with an antigen protein or peptide derived from the above-mentioned pathogen as a drug and as an active ingredient.

[0045] The concentration of the drug in the aqueous solution used to produce carbonate apatite particles can be appropriately set according to its intended use. When using a compound with antitumor activity as the drug, it can be used at concentrations of, for example, 10-1000 μM, 20-500 μM, or 40-200 μM. When using nucleic acids such as siRNA, it can be used at concentrations of, for example, 0.1-1000 nM, 0.5-500 nM, or 1-200 nM.

[0046] The composition of the present invention is characterized in that, regardless of whether it contains it in the final form, the formation of primary particles of calcium carbonate apatite is carried out in the presence of a PEG derivative, and as a result, the PEG derivative is incorporated into the primary particles. Here, the "primary particles" mean the particles obtained when a drug and a PEG derivative are added to an aqueous solution containing calcium ions, phosphate ions and hydrogen carbonate ions to form calcium carbonate apatite particles. Although the drug and the PEG derivative are carried thereon, the calcium carbonate apatite particles in the final form contained in the composition of the present invention may not contain a PEG derivative or its reactant (e.g., hydrolysis product) by subsequent treatment (e.g., ultrasonic treatment or size fractionation).

[0047] The PEG derivative is not particularly limited as long as it has one or more carboxylic acids or its derivatives or its salts at the terminal, and for example, PEG derivatives represented by the following general formula can be mentioned.

[0048]

Chemical formula

[0049] R 1 Examples of R include, for example, a hydrogen atom, a hydroxyl group, a halogen atom, a C 1-3 alkyl group (e.g., methyl group), a C 1-3 alkoxy group (e.g., methoxy group), an amino group, -COOR 2 ) and the like. However, the PEG derivative and its reactant (e.g., hydrolysis product) are not limited thereto as long as they can produce calcium carbonate apatite particles having an average particle diameter of more than 500 nm and 1000 nm or less during particle formation or after ultrasonic treatment as required. R 2 Examples of R include, in addition to a hydrogen atom, any substituent capable of forming an ester with a carboxylic acid (e.g., NHS, p-nitrophenyl). However, the PEG derivative and its reactant (e.g., hydrolysis product) are not limited thereto as long as they can produce calcium carbonate apatite particles having an average particle diameter of more than 500 nm and 1000 nm or less during particle formation or after ultrasonic treatment as required. COOR 2If R is an ester derivative, 2 Preferably, the substituent is one that readily undergoes non-enzymatic hydrolysis to produce a free carboxylic acid or its salt (e.g., alkali metal salt, ammonium salt, etc.). X 1 and X 2 Examples include oxygen atoms, nitrogen atoms, and -Y-CO(CH2) m -(m is an integer from 1 to 3), C 1-5 Examples include alkyl groups and single bonds. Y is a single bond, C 1-3 Alkyl group (e.g., methyl group), C 1-3 Alkoxy groups (e.g., methoxy group), amino groups, oxygen atoms, sulfur atoms, C 1-3 Alkylamino group (e.g., ethylamino group), C 1-3 Examples include alkylthio groups (e.g., ethylthio groups), but the method is not limited to these, as long as carbonate apatite particles with an average particle diameter greater than 500 nm and less than or equal to 1000 nm can be produced during particle formation or, if necessary, after sonication. Alternatively, PEG derivatives are R 1 The linker may have a branched chain structure with the above general formula as its constituent unit.

[0050] The molecular weight of the PEG derivative is not particularly limited, but for example, the average molecular weight may be between 1,000 and 20,000. Preferably, the average molecular weight of the PEG derivative may be between 1,000 and 15,000. Therefore, in the above general formula, n can be any integer that gives the average molecular weight. In one particularly preferred embodiment, the average molecular weight of the PEG derivative may be between approximately 2,000 and approximately 10,000. In this specification, "approximately 2,000" means between 1,500 and less than 2,500, and "approximately 10,000" means between 9,500 and less than 10,500.

[0051] In one preferred embodiment, the average molecular weight of the PEG derivative may be 1000 to 5000. If the molecular weight of the PEG derivative is within this range, carbonate apatite particles with an average particle diameter greater than 500 nm and less than or equal to 1000 nm can be obtained without sonication or size fractionation after the formation of primary particles. More preferably, the average molecular weight of the PEG derivative in this embodiment may be 1000 to 3000, and even more preferably about 2000.

[0052] In another preferred embodiment, the PEG derivative is a compound having one or more carboxylic acids or salts thereof at its terminus. In the above general formula, COOR 2 In the case of PEG derivatives that are ester derivatives, the amount of drug (e.g., nucleic acids) carried per particle or per amount of Ca is maximized when carbonate apatite particles are formed 2 to 3 days after dissolving the PEG derivative. This is because the PEG derivative is gradually hydrolyzed, generating free carboxylic acids at the terminals, which increases the amount of nucleic acids carried. Therefore, using a PEG derivative having one or more carboxylic acids or salts thereof at the terminals is advantageous because it allows for the formation of carbonate apatite particles immediately after dissolution of the derivative.

[0053] In a particularly preferred embodiment, the following six types of PEG derivatives can be used in the present invention. 1. MeO(CH2CH2O) n -CO(CH2)2COO-NHS (average molecular weight 10000) 2. MeO(CH2CH2O) n -CO(CH2)2COO-NHS (average molecular weight 2000) 3. MeO(CH2CH2O) n -CO(CH2)2COOH (average molecular weight 2000) 4. MeO(CH2CH2O) n -(CH2)2NHCO(CH2)2COOH(average molecular weight 2000) 5. MeO(CH2CH2O) n -CH2COOH (average molecular weight 2000) 6. HOOC(CH2)2COO-(CH2CH2O)n -CO(CH2)2COOH (average molecular weight 2000)

[0054] The concentration of the PEG derivative in the aqueous solution used to produce carbonate apatite particles may be, for example, 0.25 to 4 mg / ml, preferably 0.5 to 3 mg / ml, and more preferably 1 to 2 mg / ml.

[0055] The mixing order of each ion source, drug, and PEG derivative is not particularly limited, and the aqueous solution may be prepared in any mixing order as long as the desired carbonate apatite particles are obtained. For example, a first solution containing calcium ions and a drug may be prepared, and separately, a second solution containing phosphate ions and bicarbonate ions and a third solution containing a PEG derivative may be prepared, and the first to third solutions may be mixed simultaneously or sequentially to prepare the aqueous solution, but the method is not limited to these.

[0056] The aqueous solution for producing carbonate apatite particles may contain components other than the ion sources and other substances described above, as long as carbonate apatite particles are formed. For example, the Ca or CO3 in the carbonate apatite may be partially replaced by adding fluoride ions, chloride ions, Sr, Mn, etc., to the aqueous solution and composition. However, it is preferable that the amount of fluoride ions, chloride ions, Sr, and Mn added is within a range that does not significantly affect the pH solubility and particle size range of the formed composite particles. Furthermore, the aqueous solution for producing carbonate apatite particles can also be prepared using various culture media and buffers for cell culture.

[0057] Carbonate apatite particles can be obtained by adjusting the pH of an aqueous solution containing the above-mentioned ions to a range of 6.0 to 9.0 and allowing it to stand (incubate) for a certain period of time. The pH of the aqueous solution used to form the carbonate apatite particles is preferably 7.0 or higher, more preferably 7.1 or higher, even more preferably 7.2 or higher, even more preferably 7.3 or higher, particularly preferably 7.4 or higher, and most preferably 7.5 or higher. On the other hand, the pH of the aqueous solution used to form the carbonate apatite particles is preferably 8.5 or lower, more preferably 8.0 or lower.

[0058] The temperature conditions of the aqueous solution used to form carbonate apatite particles are not particularly limited as long as carbonate apatite particles are formed, but are usually 10°C or higher, preferably 25°C or higher, and more preferably 37°C or higher. On the other hand, the upper limit of the temperature conditions is usually 80°C or lower, and preferably 70°C or lower.

[0059] The incubation time for the aqueous solution to form carbonate apatite particles is not particularly limited as long as carbonate apatite particles are formed, but is usually 1 minute to 24 hours, preferably 2 minutes to 2 hours, and more preferably 3 to 60 minutes. The presence or absence of particle formation can be confirmed, for example, by observation under a microscope.

[0060] The average particle size of the carbonate apatite particles contained in the composition of the present invention is not particularly limited as long as it is greater than 500 nm and less than or equal to 1000 nm, but is preferably between 600 nm and 800 nm. The average particle size can be measured by dynamic scattering (DLS) using a known instrument (e.g., nanoparticle analyzer nanoPartica SZ-100V2 (manufactured by Horiba, Ltd.)). It is preferable that the particle size distribution obtained by DLS shows a single peak. By controlling the average particle size to be within the above range, the amount of drug loaded per particle is increased compared to conventional sCA, and compared to sCA, it has higher accumulation in target tissues such as tumors and inflammatory tissues, and reduced accumulation in normal organs such as the liver, thus achieving the remarkable effects of the present invention, which show sufficient therapeutic effect with a smaller amount of drug.

[0061] When using a PEG derivative with an average molecular weight of 1000 to 5000, preferably 1000 to 3000, and more preferably about 2000, by performing the above incubation, carbonate apatite particles with an average particle diameter greater than 500 nm and less than or equal to 1000 nm, preferably 600 nm to 800 nm, can be obtained without performing sonication or size fractionation after the formation of primary particles. Therefore, the composition of the present invention containing the carbonate apatite particles contains the PEG derivative or its reaction product (e.g., hydrolysis product) used during particle formation.

[0062] In the above embodiments, the amount of the PEG derivative or its reactant contained in the composition of the present invention is not particularly limited as long as it can produce carbonate apatite particles having an average particle diameter greater than 500 nm and 1000 nm or less, but is usually 0.5 to 2.5% by weight, preferably 1 to 2% by weight, and more preferably 1.2 to 1.8% by weight.

[0063] On the other hand, when using PEG derivatives with an average molecular weight greater than 5000 (e.g., average molecular weight of 6000 or more, 7000 or more, 8000 or more, 9000 or more, 10000 or more), the carbonate apatite particles formed by carrying out the above incubation still have a large average particle size (for example, when using NOF Corporation's SUNBRIGHT® ME-100CS, a PEG derivative with an average molecular weight of 10000, the average particle size measured by DLS is 2200 nm), and even if the conventional water bath ultrasonic cleaning treatment used for sCA particle production is carried out, the requirements for carbonate apatite particles of the present invention described above are not met. Therefore, in this embodiment, by performing ultrasonic treatment using a single-point focused ultrasonic irradiation device called Covaris, a composition can be obtained that contains a subset of carbonate apatite particles having an average particle diameter greater than 500 nm and less than or equal to 1000 nm, preferably between 600 nm and 800 nm. Covaris is a special ultrasonic processing device that uses a completely different frequency than conventional sonicators and concentrates ultrasonic energy generated from a dish-shaped ultrasonic generating unit onto a single point, enabling efficient use of high-power, stable energy for sample processing. For example, the Covaris S220 from MS Kiki Co., Ltd. can be used as such a device. Examples of ultrasonic irradiation conditions include Peak Incident Power (PIP): 250W, Duty Factor (DF): 50%, Cycles per Burst (CPB): 200, and processing time: 1200 seconds. However, those skilled in the art can appropriately change the irradiation conditions according to the manual provided by the manufacturer.

[0064] Ultrasonic treatment can be performed in the presence of albumin (i.e., with albumin added to a dispersion containing carbonate apatite particles). This is because performing ultrasonic vibration treatment in an environment where albumin and carbonate apatite particles coexist allows for the production of carbonate apatite particles with finer particle sizes and also suppresses particle re-aggregation.

[0065] The amount of albumin added to the dispersion containing carbonate apatite particles is not particularly limited as long as the effect of micronization and / or suppression of re-aggregation is obtained, but for example, about 0.01 to 50 mg / ml, preferably 0.05 to 10 mg / ml, and more preferably about 0.1 to 5 mg / ml can be added.

[0066] Confirmation that the above ultrasonic treatment yielded a subset of carbonate apatite particles with an average particle diameter greater than 500 nm and less than or equal to 1000 nm can be confirmed by measuring the particle size distribution using DLS and calculating the average particle diameter, preferably by confirming that the particle size distribution shows a single peak. Alternatively, this can be confirmed by observing and photographing the dispersion after ultrasonic treatment using an atomic force microscope (AFM) to confirm whether a clear image of the particles can be obtained.

[0067] When the dispersion after sonication is diluted and analyzed using AFM, minute particles of approximately 30 nm can be observed when an appropriate concentration of PEG derivative is added. The inclusion of such minute particles may reduce the amount of nucleic acid loaded when the composition of the present invention is used for drug delivery, potentially negatively affecting the highly selective drug delivery to target tissues. Therefore, it is preferable to concentrate and purify a subset of carbonate apatite particles (peak region of particle size distribution measured by DLS) with an average particle diameter greater than 500 nm and less than or equal to 1000 nm by size fractionation of the particles in the dispersion. As a method for size fractionation, known methods such as ultrafiltration and gel filtration chromatography can be used, but preferably, it can be carried out by combining multiple hollow fiber membranes. For example, when using SUNBRIGHT(registered trademark) ME-100CS, a PEG derivative manufactured by NOF Corporation with an average molecular weight of 10,000, a peak region appeared between 200 and 1000 nm in the particle size distribution after sonication measured by DLS. Therefore, by using hollow fiber membranes with pore sizes of 1000 nm and 200 nm, particles larger than 1000 nm can be removed with the former, and then particles smaller than 200 nm can be removed by passing them through the latter, thereby concentrating and purifying the fraction with a particle size of 200 to 1000 nm.

[0068] The composition of the present invention obtained as described above has a significantly increased drug loading capacity per particle compared to conventional sCAs, which contributes to improved drug delivery to target tissues such as tumors and inflammatory tissues. The drug loading capacity of the composition of the present invention is such that, for example, when the drug is a nucleic acid such as miRNA, the particle (OD) 600 The amount of nucleic acid loaded per 1 mg of Ca (μg) is typically around 150 to 500, preferably around 200 to 400.

[0069] The composition of the present invention can be prepared as is, or by precipitating the carbonate apatite particles by centrifugation and redispersing them in a solvent suitable for administration to a living organism, to create a pharmaceutical composition suitable for parenteral administration (e.g., intravenous administration, intra-arterial administration, subcutaneous injection, intramuscular injection, local injection, intraperitoneal administration, etc.). Suitable formulations for parenteral administration include aqueous and non-aqueous isotonic sterile injection solutions, which may contain antioxidants, buffers, antibacterial agents, isotonic agents, etc. Also, aqueous and non-aqueous sterile suspensions are examples, which may contain suspending agents, solubilizers, thickeners, stabilizers, preservatives, etc. The formulations can be sealed in containers in unit doses or multiple doses, such as ampoules or vials. Alternatively, they can be freeze-dried by a known method and stored in a state where they can be dissolved or suspended in a suitable sterile vehicle immediately before use.

[0070] Compared to conventional sCAs, the composition of the present invention exhibits higher accumulation in target tissues such as tumors, while reducing accumulation in normal organs including the liver, and achieving sufficient therapeutic effects with a smaller amount of drug. Therefore, it can be used as an in vivo drug delivery composition for mammals, including humans. The content of carbonate apatite particles in the composition is, for example, 0.1 to 100% by weight of the total composition.

[0071] The dosage of the composition of the present invention varies depending on the purpose of administration, the method of administration, the type and severity of the disease, and the condition of the recipient (sex, age, weight, etc.). However, when systemically administered with nucleic acids such as miRNA, for example, the dosage is 0.02 mg / kg to 5 mg / kg, and preferably 0.1 mg / kg to 5 mg / kg.

[0072] Furthermore, the compositions of the present invention can be used to introduce drugs into cells in vitro. In this case, it can be carried out by adding the compositions of the present invention to the culture medium of the target cells and culturing them. The target cells are not particularly limited, and any cells such as bacteria, actinomycetes, yeasts, fungi, plant cells, insect cells, and animal cells can be used.

[0073] The present invention will be described in detail below with reference to examples, etc., but the present invention is not limited to these examples. [Examples]

[0074] Example 1: Creation of cNaD1 (controlled inorganic nanoparticle drug 1) and PCANP (PEG-dependent size-controlled carbonate apatite nanoparticle) (1) Preparation of carbonate apatite particles incorporating PEG derivatives 0.37 g of NaHCO3, 1 M NaH2PO4·2H2O (90 μL), and 1 M CaCl2 (180 μL) were added to 100 mL of distilled water and dissolved. The formula: CH3O-(CH2CH2O) n 200 mg of either of two PEG derivatives with different molecular weights represented by -CO(CH2)2COO-NHS (SUNBRIGHT ME-20CS (NOF); average molecular weight 2,000 and SUNBRIGHT ME-100CS (NOF); average molecular weight 10,000) was added, and the pH was adjusted to 7.5. 25 mL of this buffer solution was dispensed into a 50 mL Falcon tube (hereinafter also referred to as "25 mL buffer"), 50 μg of nucleic acid and 1 M CaCl2 (100 μL) were added, and the mixture was incubated at 37°C. For comparison, carbonate apatite particles without the addition of a PEG derivative were prepared in the same manner. After incubation for 30 minutes, the amount of particles (turbidity) in the liquid was observed visually. When a PEG derivative with an average molecular weight of 10,000 was added, particles were formed, although the amount was slightly less than when no derivative was added. On the other hand, when a PEG derivative with an average molecular weight of 2,000 was added, the amount of particles was clearly reduced. Therefore, in subsequent experiments, a PEG derivative with an average molecular weight of 10,000 was used, and the incubation time was set to 60 minutes to prepare carbonate apatite particles.

[0075] (2) Examination of particle dispersion treatment We compared the degree of particle dispersion by performing conventional ultrasonic cleaning processes used for sCA particle production, special ultrasonic treatment using a single-point focused ultrasonic irradiation device that can efficiently irradiate high-power ultrasonic energy, and wet crushing treatment using a wet atomization device.

[0076] (2-1) Ultrasonic treatment The aquarium-type ultrasonic cleaning process (hereinafter sometimes abbreviated as "Senjyo") was performed using the US-101 ultrasonic cleaner manufactured by SND Corporation. The Falcon tube described in (1) above was placed in the aquarium and ultrasonic treatment was performed for 10 minutes with an oscillation frequency of 38 kHz and an output of 80 W. In the special ultrasonic treatment (hereinafter sometimes abbreviated as "Covaris"), ultrasonic irradiation was performed using the Covaris type S220 from MS Kiki Co., Ltd. under the following irradiation conditions. PIP: 250 W DF: 50% CPB:200 Processing time: 1200 sec

[0077] Changes in particle size were investigated for carbonate apatite particles loaded with negative control miRNA, either untreated or after Senjyo sonication or Covaris sonication. Particle size was measured using a nanoparticle analyzer (nanoPartica SZ-100V2) from Horiba, Ltd., employing dynamic scattering (DLS). Untreated and sonicated particles were also imaged using an atomic force microscope (AFM) (NaioAFM Nanosurf) without dilution. The results are shown in Figures 1-1 and 1-2.

[0078] When PEG derivatives were not added, conventional sonication (Senjyo) of sCA particles resulted in a large average particle diameter of 1980 nm, with many particles outside the measurement range. On the other hand, with Covaris treatment, although there were multiple particle size peaks, the average particle diameter was smaller at 740 nm compared to the others, and relatively few particles were outside the measurement range (Figure 1-1, top). However, in all cases, the grain was too large for AFM imaging, and a clear image could not be obtained. (Figure 1-1, bottom).

[0079] On the other hand, when the PEG derivative was added to the buffer first, the particle size of each group became slightly smaller (Figure 1-2, top). In particular, when Covaris treatment was performed, dispersion was achieved to the point where the particles could be clearly identified by AFM (Figure 1-2, bottom). The average particle size was 650 nm, and there was only one peak (Figure 1-2, top). Particles formed by forming carbonate apatite particles in the presence of a PEG derivative (average molecular weight 10,000) and then treating them with Covaris are sometimes referred to as cNaD1 (controlled inorganic nanoparticle drug 1).

[0080] The amount of PEG derivative added to 25 mL buffer was varied (25, 50, and 100 mg), and particles were formed. After Covaris treatment, the samples were diluted 50-fold and observed by AFM. As a result, when 25 and 50 mg of the PEG derivative were added, the particle sizes were measured to be 34 and 28 nm, respectively (Figure 2). Therefore, in subsequent experiments, unless otherwise specified, the PEG derivative was added at a concentration of 50 mg / 25 mL.

[0081] (2-2) Wet crushing treatment Wet crushing was performed using a wet pulverization device (Starburst minimo) from Sugino Machine Co., Ltd., under the conditions shown in Table 1. Particle size was measured using DLS (using a Zeta potential measuring device, Zetasizer Nano-ZS type, from MALVERN Co., Ltd.).

[0082] [Table 1]

[0083] The results are shown in Table 2. Analysis using DLS revealed that particles larger than 1000 nm still remained even after wet crushing. Furthermore, the treated particles were discolored black, suggesting that denaturation may have occurred due to heat reaching 70-80°C caused by particle collisions.

[0084] [Table 2]

[0085] (2-3) Evaluation of nucleic acid levels Next, the amount of negative control miRNA mounted on the carbonate apatite particles was examined by agarose gel electrophoresis. The results are shown in Figure 3. A band was observed around 25 bp for the miRNA alone. The amount of miRNA in the carbonate apatite particles was similar when they were prepared with added PEG derivatives and subjected to Senjyo sonication versus Covaris treatment. On the other hand, when wet crushing was performed by impacting ceramic balls 20-30 times (Starburst), a significant loss of nucleic acid occurred. The in vivo effects of preserved nucleic acids after Senjyo sonication have been proven (Mol Cancer Ther. 2018 May;17(5):977-987. doi: 10.1158 / 1535-7163; Mol Ther Nucleic Acids. 2018 Sep 7;12:658-671. doi: 10.1016 / j.omtn.2018.07.007; PLoS One. 2015 May 13;10(5):e0127119. doi: 10.1371 / journal.pone.0127119; Mol Cancer Ther. 2014 Apr;13(4):976-85. doi: 10.1158 / 1535-7163; Br J Cancer. 2020 Similar effects were expected with Covaris-treated particles. (Mar;122(7):1037-1049. doi: 10.1038 / s41416-020-0758-1; Mol Ther Nucleic Acids. 2015 Mar 10;4(3):e231. doi: 10.1038 / mtna.2015.5; PLoS One. 2015 Mar 4;10(3):e0116022. doi: 10.1371 / journal.pone.0116022; Front Immunol. 2018 Apr 18;9:783. doi: 10.3389 / fimmu.2018.00783; Mol Cancer Ther. 2015. PMID: 25904505)

[0086] (2-4) Cytotoxicity assessment Carbonate apatite particles (sCA-miR34a) loaded with miR-34a were subjected to Senjyo sonication or Covaris sonication. The resulting particles were added to the culture medium of HCT116 colorectal cancer cells and incubated. Cell viability was measured at 48 and 72 hours using Cell Counting Kit-8 (Dojindo) to evaluate the in vitro cytotoxicity of each particle. In this experiment, samples were prepared and tested with 25 mL buffer containing no PEG derivative (peg0), 50 mg (peg50), and 100 mg (peg100). Senjyo-treated peg0 corresponds to conventional sCA particles. Cell viability at each time point was calculated, with HCT116 cells not treated with sCA-miR34a set as 100%. As a result, Covaris-treated particles showed cytotoxicity equivalent to that of Senjyo-treated particles (cell viability of approximately 80% at 48 hours and approximately 60% at 72 hours), regardless of the presence or amount of PEG derivative added (Figure 4).

[0087] (3) Identification of the DDS main unit (3-1) Separation by particle size As shown in (2-1) above, when carbonate apatite particles (cNaD1) were subjected to Covaris sonication after adding a PEG derivative (average molecular weight 10,000) to 25 mL buffer, the average particle size measured by DLS was 650 nm. However, when the particles were diluted 50 times with distilled water and measured by AFM, the size of the smallest particles was 28-34 nm. Since the particles measured by DLS accounted for the majority of the particle volume and were assumed to be responsible for the antitumor effect of nucleic acids, particle size fractionation was performed to verify this.

[0088] For size fractionation, the following four types of modified polyethersulfone (mPES) hollow fiber membranes (manufactured by Spectrum LABS. COM) were used. 1) Pore size: 1 μm, Surface area: 95 cm² 2 2) Pore size: 0.2 micrometer, Surface area: 28 cm²2 3) Fractionated molecular weight: 750 kD, Surface area: 20 cm² 2 4) Fractionated molecular weight: 100 kD, surface area: 20 cm² 2 1) By using a hollow fiber membrane to remove particles larger than 1,000 nm, and then using a hollow fiber membrane (2) to remove particles smaller than 200 nm, a particle fraction of 200-1,000 nm, corresponding to the peak region of cNaD1 measured by DLS, was obtained. Furthermore, by passing particles smaller than 200 nm through a hollow fiber membrane (3) to remove particles smaller than 50 nm, a particle fraction of 50-200 nm was obtained, and by passing particles smaller than 50 nm through a hollow fiber membrane (4) to remove particles smaller than 10 nm, a particle fraction of 10-50 nm was obtained. Particles obtained by separating cNaD1 into different size fractions using hollow fiber membranes in this way are sometimes called PEG-dependent size-controlled carbonate apatite nanoparticles (PCANP).

[0089] (3-2) Evaluation of nucleic acid levels The nucleic acid content of samples (sCA-MIRTX) obtained by treating carbonate apatite particles loaded with MIRTX (the complete complementary chain of miR-29b-1-5p; Mol Cancer Ther. 2018 (mentioned above)) with Senjyo in the absence of a PEG derivative, and samples (PCANP-MIRTX) obtained by treating carbonate apatite particles loaded with MIRTX with Covaris in the presence of a PEG derivative (SUNBRIGHT ME-100CS) and fractionating them into three size groups as described above, was measured using a NanoDrop ultra-trace spectrophotometer (Thermo Scientific). The results are shown in Figure 5. The nucleic acid content of sCA-MIRTX was 28.5 μg, while the nucleic acid content of PCANP-MIRTX was 3.5 μg per particle of 200-1,000 nm size (approximately one-eighth of that of sCA-MIRTX). The nucleic acid content in particles of 50-200 nm and 10-50 nm size was below the detection limit. We also estimated the amount of nucleic acid using agarose gel electrophoresis and confirmed that the results were the same.

[0090] (3-2) In vivo functional evaluation MIRTX-sensitive pancreatic cancer cells (panc1) were transplanted subcutaneously into nude mice to induce subcutaneous tumors (2 tumors per mouse). The antitumor effects were compared in the following six groups. 1) Control (non-administered) group: 3 mice, 6 tumors 2) sCA-miR NC (senjyo-treated carbonate apatite particles carrying negative control miRNA in the absence of PEG derivatives) administration group: 3 mice, 6 tumors 3) sCA-MIRTX administration group: 4 mice, 8 tumors 4) PCANP-MIRTX (200-1000) administration group: 4 mice, 8 tumors 5) PCANP-MIRTX (50-200) administration group: 3 mice, 6 tumors 6) PCANP-MIRTX (10-50) administration group: 3 mice, 6 tumors In the sCA-miR NC and sCA-MIRTX administration groups, 20 μg / dose was administered; in the PCANP-MIRTX (200-1000) administration group, 2.5 μg / dose; and in the PCANP-MIRTX (50-200) and PCANP-MIRTX (10-50) administration groups, nucleic acids below the detection limit were administered via tail vein a total of eight times on days 0, 1, 3, 4, 6, 7, 8, and 10. The results are shown in Figure 6. The PCANP-MIRTX (200-1000nm) treatment group showed significantly smaller tumor weight on day 12 compared to the Control (no treatment) group, the sCA-miR NC treatment group, and the sCA-MIRTX treatment group (P values ​​<0.01, <0.01, <0.05, respectively). On the other hand, the sCA-MIRTX-treated group showed significantly smaller tumors compared to the non-treated group, but no significant difference was observed between them and the sCA-miR NC-treated group. No significant differences in tumor weight were observed in the PCANP-MIRTX (50-200) administration group, the PCANP-MIRTX (10-50) administration group, the non-administered group, or the sCA-miR NC administration group.

[0091] Next, samples prepared by Senjyo treatment of carbonate apatite particles loaded with nucleic acids fluorescently labeled with Alexa750 in the absence of a PEG derivative (sCA), and samples prepared by Covaris treatment of carbonate apatite particles loaded with fluorescent nucleic acids in the presence of a PEG derivative (SUNBRIGHT ME-100CS) and fractionated into particle sizes of 200-1,000 nm (PCANP-MIRTX(200-1000)), were centrifuged the day after particle preparation, resuspended in physiological saline, and administered via the tail vein of mice transplanted with HT-29 colorectal cancer cells. After 4 hours, tumors and normal organs were excised, and fluorescence intensity was measured using IVIS. The results are shown in Figure 7. The amount of fluorescent nucleic acid loaded onto PCANP was one-eighth the amount used in sCA (5 μg), and it fluoresced in the tumors in the same way as when the nucleic acid loaded onto sCA (40 μg) was administered. On the other hand, accumulation in normal organs, including the liver, was significantly reduced compared to sCA.

[0092] (4) Measurement of particle size The particle size distribution of PCANP(200-1000) was measured using DLS (using a Zeta-Sizing Nano-ZS instrument from MALVERN), and a single peak was obtained with a maximum peak of 717.4 nm and an average particle size of 664.6 nm (Figure 8).

[0093] Preparation of cNaD2 using a lower molecular weight PEG derivative than in Example 2 In Example 1(3), although PCANP(200-1000) had a reduced particle volume and nucleic acid content compared to conventional sCA (Figure 5), when administered intravenously to mice, it accumulated in tumor tissue at a level equal to or greater than sCA and exhibited superior antitumor activity compared to sCA, while its accumulation in normal tissue was significantly reduced compared to sCA (Figures 6, 7). Carbonate apatite particles with such novel functions were used with cNaD1( c controlled colour na noparticle dThis will be referred to as rug1). In Example 1(1), when SUNBRIGHT ME-20CS (NOF), with an average molecular weight of 2,000, was used as the PEG derivative, the amount of carbonate apatite particles was significantly reduced, suggesting the possibility of forming particles with similar properties to cNaD1 without Covaris treatment or size fractionation. Therefore, carbonate apatite particles cNaD2 carrying nucleic acids were formed in the presence of the PEG derivative (SUNBRIGHT ME-20CS), and their antitumor effect and tumor / normal organ accumulation were evaluated.

[0094] (1) Preparation of cNaD2 SUNBRIGHT ME-20CS (NOF) was used as the PEG derivative, and carbonate apatite particles were prepared in the same manner as in Example 1(1). Incubation was carried out at 37°C for 60 minutes.

[0095] (2) Antitumor effect (2-1) Therapeutic effect of miR-136-equipped cNaD2 on colorectal cancer DLD1 Subcutaneous tumors were induced in nude mice using miR-136-sensitive colorectal cancer cells DLD1, and the antitumor effects of both sCA and cNaD2 were compared (3-5 mice, 4-5 tumors). Tumor size was 100 mm. 3The point at which this occurred was designated as day 0. Null mice were administered via the tail vein using sCA (sCA-NC), sCA (sCA-136), and cNaD2 (cNaD2-136), each containing negative control miRNA. The sCA group received 20 μg / dose, and the cNaD2 group received 5 μg / dose, for a total of eight doses on days 0, 2, 3, 5, 7, 9, 11, and 13. The results are shown in Figure 9. Compared to the control (sCA-NC) group, the sCA-136 group did not show significant suppression of tumor growth despite receiving four times the amount of nucleic acid compared to the cNaD2-136 group. On the other hand, the cNaD2-136 group, which received only 5 μg each time, showed significantly smaller tumor size and weight. Since the amount of nucleic acid that has shown antitumor effects with sCA-miRNA and sCA-siRNA to date has been 40-50 μg, the fact that antitumor effects were observed with only 5 μg of nucleic acid using cNaD2 is groundbreaking.

[0096] (2-2) Therapeutic effects of cNaD2-miRNA on large tumors Large subcutaneous tumors were induced in nude mice using patient-derived xenografts (PDX) from colorectal cancer patients, and the antitumor effects of both sCA and cNaD2 were compared. Three sCA-NC mice, four sCA-miRNA mice, and four cNaD2 mice were prepared, and tumors were transplanted at two locations per mouse. The tumor size was 600 mm. 3Using the point when the tumor had grown considerably as day 0, sCA-NC (negative control miRNA), sCA-miRNA (miR-136 or MIRTX), and cNaD2-miRNA (miR-136 or MIRTX) were administered via the tail vein of nude mice. Each group received 20 μg of nucleic acid per dose, administered a total of nine times on days 0, 1, 2, 3, 4, 5, 6, 7, and 8. The results are shown in Figure 10. Compared to the control (sCA-NC) group, the sCA-miRNA group did not show suppression of tumor growth, but the cNaD2-miRNA group showed a significant reduction in tumor volume on days 8 and 9 compared to the sCA-miRNA group.

[0097] (2-3) Therapeutic effects of cNaD2-Sdc4 siRNA on cancer stem cell model cells We created super cancer stem cells (super Panc-1 CSCs) from a single cell based on the pancreatic cancer cell line Panc-1, capable of creating subcutaneous tumors in nude mice. When these were transplanted into nude mice, the tumor volume reached 70 mm². 3 With the point at which the threshold was exceeded designated as day 0, siRNA against Syndecan-4 (SDC4) mounted on cNaD2 (cNaD2-Sdc4 siRNA) was administered via tail vein a total of nine times on days 0, 1, 2, 3, 4, 6, 7, 8, and 9 at a nucleic acid dose of 20 μg / dose (4 mice, 8 tumors). As a control, three super cancer stem cell transplanted mice with six tumors were provided without siRNA administration. In addition, a control group was provided who received 20 μg / dose of negative control siRNA mounted on sCA intravenously in parallel (3 mice, 6 tumors). The results are shown in Figure 11. cNaD2-Sdc4 siRNA significantly suppressed the proliferation of super cancer stem cells.

[0098] (3) Tumor / organ accumulation Subcutaneous tumors were created in nude mice by transplanting patient-derived xenografts (PDX) from colorectal cancer patients. 25 μg of Alexa750-labeled negative control siRNA (NC siRNA) was loaded onto sCA and intravenously administered via the tail vein. Similarly, Alexa750-labeled NC siRNA was loaded onto cNaD2 at doses of 5, 10, and 25 μg, respectively, and intravenously administered. After one hour, the accumulation of fluorescent nucleic acids in the tumors was examined using IVIS. The results showed that using cNaD2 resulted in higher tumor accumulation even with a 5 μg nucleic acid dose than with 25 μg administered via sCA. At the same 25 μg nucleic acid dose as sCA, cNaD2 showed more than five times the tumor accumulation (Figure 12-1).

[0099] One hour after tail vein injection, the concentration of nucleic acids in the blood is highly reflected in organs such as the liver; therefore, the accumulation of nucleic acids in normal organs was observed using IVIS four hours later. Accumulation was observed in the liver, lungs, kidneys, and spleen with sCA, but almost no nucleic acid accumulation was observed with cNaD2 (Figure 12-2). Comparing the average radioactivity efficiencies, when the same 25 μg of nucleic acid was administered, sCA showed more than 10 times the accumulation in the liver and more than 4 times the accumulation in the lungs and spleen compared to cNaD2.

[0100] (4) Measurement of particle size The particle size distribution of cNaD2 was measured using DLS (using a Zeta-Sizing Nano-ZS instrument from MALVERN), and a single peak was obtained with a maximum peak of 793.4 nm and an average particle size of 740.0 nm (Figure 13).

[0101] (5) Effect of time after PEG dissolution on the nucleic acid carrying capacity of particles In cNaD2, the particle performance over time from the dissolution of the PEG derivative was investigated. Dissolve 1.11 g of NaHCO3, 1 M NaH2PO4·2H2O (270 μL), and 1 M CaCl2 (540 μL) in 300 mL of distilled water and adjust the pH to 7.4. Dispense 25 mL of this buffer solution into a 50 mL Falcon tube and add 0.5 mL (50 μg) of 0.1 mg / mL of PEG derivative (SUNBRIGHT ME-20CS (NOF)). Six different PEG derivative solutions were used, prepared at 5 minutes, 1 hour, 8 hours, 1 day, 2 days, and 3 days after dissolving the PEG derivative in water. Add 10 μg / μL of negative control siRNA (NC siRNA) (53.2 μg) and 1 M CaCl2 (100 μL) (total Ca content 5.8 mg), mix, and incubate at 37°C for 60 minutes. For comparison, carbonate apatite particles (sCA) without the addition of PEG derivatives were prepared in the same manner. After incubation, the particles were centrifuged at 4°C and 12,000 rpm, the supernatant was removed, and the particles were collected in 0.5 mL of physiological saline (pH 8). Ca concentration and nucleic acid concentration were measured. The results are shown in Table 3. The amount of nucleic acid loaded onto cNaD2 increased with time elapsed since the dissolution of the PEG derivative, and the amount of nucleic acid per unit of Ca (NA / Ca ratio) was particularly high 2-3 days after the dissolution of the PEG derivative.

[0102] [Table 3]

[0103] As PEG derivative solutions, the same experiment was performed using three different solutions prepared after dissolving the PEG derivative in water: 15 minutes, 1 day, and 2 days later. The particle performance was compared with that of particles formed in the absence of the PEG derivative (sCA). The results are shown in Table 4. cNaD2 had a significantly higher nucleic acid load compared to sCA, and the nucleic acid load increased with time elapsed since the dissolution of the PEG derivative, with the NA / Ca ratio being highest 2 days after dissolution.

[0104] [Table 4]

[0105] Example 3: Preparation of cNaD (cNaD3-cNaD6) using PEG derivatives with carboxylic acid terminology (1) Nucleic acid carrying capacity of particles using monomethylmonocarboxylic acid PEG In Examples 1 and 2, PEG derivatives having an ester of carboxylic acid and N-succinimide (NHS) at the terminal were used. As time elapsed after the dissolution of the PEG derivative, the amount of nucleic acid in the formed PCANP2 particles increased. This suggests that the terminal ester is gradually hydrolyzed, and the more molecules with free carboxylic acid at the terminal, the greater the ability of the particles to carry nucleic acids. Therefore, commercially available methoxyPEG-OH (2 kDa) was reacted with succinic anhydride to synthesize monomethyl monocarboxylate PEG (C1-Iris, C1-Hamari) with the same structure as the hydrolysis product of SUNBRIGHT ME-20CS (NOF Corporation) (Iris and Hamari are the names of the companies that manufactured the monomethyl monocarboxylate PEG; the same applies below), and particles were formed in the same manner as in Example 2(5) (collectively referred to as cNaD3, cNaD3:CH3O (CH2CH2O)). n -CO(CH2)2COOH (average molecular weight 2000) was compared with sCA and cNaD2 in terms of its nucleic acid loading capacity. The results are shown in Figure 14. Monomethylmonocarboxylic acid PEG (C1-Iris, C1-Hamari) was shown to have nucleic acid loading capacity equal to or greater than that of cNaD2, and to be able to load significantly more nucleic acids than sCA.

[0106] (2) Tumor / normal organ accumulation of particles using monomethylmonocarboxylate PEG Particles containing NC siRNA labeled with Alexa750 were prepared using monomethylmonocarboxylic acid PEG (Handai-C1, Hamari-C1: cNaD3) and administered via tail vein to nude mice subcutaneously transplanted with colorectal cancer-derived PDX. For comparison, sCA particles formed in the absence of PEG derivatives, particles formed using HO-PEG-OH (Sigma), and sCA with PEG surface modification (Pegylation) were similarly administered to tumor-bearing mice. Ca concentration and nucleic acid concentration were measured for each sample, and administration was performed to ensure equal Ca or nucleic acid levels. Accumulation in tumors was observed after 1 hour, and accumulation in normal organs after 4 hours, using IVIS.

[0107] Figures 15-1 and 15-2 show the results of administration with a constant Ca amount (0.1 mg). Particles made using monomethylmonocarboxylate PEG (Handai-C1, Hamari-C1) showed approximately three times the accumulation of sCA (Figure 15-1). On the other hand, while accumulation in normal organs, including the liver, was observed in the sCA, Pegylation, and HO-PEG-OH groups, nucleic acid accumulation was low with monomethylmonocarboxylate PEG (Figure 15-2). Comparing the average radioactivity, monomethylmonocarboxylate PEG showed less than one-fifth the accumulation of sCA in the liver. Table 5 shows the dosage for each group when the Ca amount was kept constant. Compared to sCA, monomethylmonocarboxylate PEG had a higher NA / Ca ratio, and more nucleic acids were administered (Table 5).

[0108] [Table 5]

[0109] Next, the results of administering nucleic acid at a constant dose (15 μg) are shown in Figures 16-1 to 16-4. Nucleic acid concentration was measured using NanoDrop, and the amount of fluorescence contained inside the particles was confirmed to be equivalent using IVIS before administration. Particles prepared using monomethylmonocarboxylate PEG (Handai-C1, Hamari-C1) showed more than twice the accumulation of sCA in tumors after 1 hour (Figure 16-1). After 4 hours, tumor accumulation decreased in all cases (Figure 16-2). On the other hand, sCA, Pegylation, and HO-PEG-OH groups showed accumulation in normal organs, including the liver, after 4 hours, but nucleic acid accumulation was low with monomethylmonocarboxylate PEG (Figure 16-3). Comparing the average radioactivity, monomethylmonocarboxylate PEG showed less than one-tenth the accumulation of sCA in the liver. After 1 hour, sCA, Pegylation, and HO-PEG-OH groups showed even higher accumulation, but nucleic acid accumulation was low with monomethylmonocarboxylate PEG (Figure 16-4).

[0110] (3) Preparation of cNaD4 to cNaD6 Since the effectiveness of cNaD3, a PEG derivative having a carboxylic acid at its terminus, was demonstrated, three more PEG derivatives having monocarboxylic or dicarboxylic acids at their terminus were used to newly prepare carbonate apatite particles (cNaD4-cNaD6) in the same manner as in Example 1(1). 1) cNaD4:CH3O (CH2CH2O) n -(CH2)2NHCO(CH2)2-COOH (average molecular weight 2000) 2) cNaD5:CH3O (CH2CH2O) n -CH2COOH (average molecular weight 2000) 3) cNaD6:HOOC(CH2)2COO-(CH2CH2O) n -CO(CH2)2-COOH (average molecular weight 2000)) The ratio of nucleic acid uptake to calcium content in particles (NA / Ca ratio) was at the same level for cNaD4 (with an amide bond between PEG and the carboxyl group) as for cNaD3 (with an ester bond between PEG and the carboxyl group). While slightly lower for cNaD5, it was still about twice that of sCA. cNaD6, prepared using a dicarboxylic acid PEG derivative with carboxyl groups at both ends of PEG, also achieved a high NA / Ca ratio comparable to that of cNaD3 (Figure 17).

[0111] (4) Tumor / normal organ accumulation of particles using PEG dicarboxylic acid Particles containing NC siRNA labeled with Alexa750 using PEG dicarboxylic acid were prepared and administered via tail vein to nude mice subcutaneously transplanted with colorectal cancer-derived PDX. For comparison, sCA particles formed in the absence of cNaD3 and PEG derivatives, particles formed using HO-PEG-OH (Sigma), and sCA with PEG surface modification (Pegylation) were similarly administered to tumor-bearing mice. Ca concentration and nucleic acid concentration were measured for each sample, and the nucleic acid amount was kept constant (15 μg) during administration. Accumulation in tumors and normal organs was observed using IVIS after 1 hour. The results are shown in Figure 18. Particles prepared using dicarboxylate PEG (cNaD6) showed accumulation comparable to cNaD3 (more than twice that of sCA). While sCA, PEGylation, and HO-PEG-OH groups showed accumulation in normal organs including the liver, the accumulation of nucleic acids with cNaD6 was low, similar to cNaD3. Comparing the average radiation efficiency, in the liver, dicarboxylate PEG showed accumulation of less than one-fifth that of sCA, similar to monomethylmonocarboxylate PEG.

[0112] (5) Antitumor activity of cNaD3 Carbonate apatite particles (cNaD3) loaded with MIRTX were prepared and administered to nude mice (4 mice, 2 tumors / mice) subcutaneously transplanted with MIRTX-sensitive colorectal cancer cells DLD1 to investigate their antitumor effect. Tumor size: 60 mm 3 The point at which this occurred was designated as day 1, and cNaD3 loaded with MIRTX was administered via the tail vein of the mice. A nucleic acid dose of 25 μg / dose was administered a total of six times on days 1, 3, 6, 8, 10, and 13. The results are shown in Figure 19. In the cNaD3-MIRTX-administered group, a significant reduction in tumor size was observed on day 15 compared to the non-administered group (Parent) (Figure 19).

[0113] (6) Tumor / hepatic accumulation of freeze-dried cNaD3 Subcutaneous tumors were created in nude mice by transplanting PDX derived from colorectal cancer patients. 25 μg of Alexa750-labeled negative control siRNA (NC siRNA) was loaded onto sCA and intravenously administered via the tail vein. Similarly, 25 μg of Alexa750-labeled NC siRNA was loaded onto cNaD3 and intravenously administered. Both freshly prepared cNaD3 and lyophilized cNaD3 were used. Accumulation in the tumors was observed after 1 hour, and accumulation in the liver was observed after 4 hours using IVIS. As a result, in both cases, cNaD3 showed significant tumor accumulation compared to sCA, while almost no accumulation in the liver was observed (Figure 20).

[0114] Example 4: Accumulation of PCANP in inflammatory tissue Carbonate apatite particles loaded with Alexa750-labeled negative control siRNA (NC siRNA) in the presence of a PEG derivative (SUNBRIGHT ME-100CS) were treated with Covaris (cNaD1-Alexa750) and intravenously administered via tail vein to SKG mice (purchased from CREA Japan) that spontaneously develop autoimmune arthritis very similar to human rheumatoid arthritis immunopathologically. For comparison, sCA loaded with Alexa750-labeled NC siRNA was administered similarly. Fluorescent nucleic acid accumulation in the inflamed joints of the limbs was observed using IVIS at 40 minutes, and in the liver at 45 minutes. As a result, using cNaD1 showed significant accumulation in the inflamed joints of the limbs compared to sCA (Figure 21-1), while almost no accumulation in the liver was observed (Figure 21-2). Luminescence in the lower abdomen indicates the accumulation of fluorescent substance (Alexa750) from urine in the bladder, while luminescence in the upper abdomen indicates the accumulation of Alexa750 in the liver.

[0115] Example 5: Incorporation of PEG derivatives into cNaD2 and cNaD3 The physical properties of cNaD2 and two types of cNaD3 (sCA-C2-Handai, sCA-C1-HAMARI) were analyzed using X-ray diffraction (XRD) and Fourier transform infrared spectroscopy (FT-IR). For comparison, particles prepared using sCA and PEG-OH (Sigma) (sCA-SIGMA(-OH)) were similarly analyzed. A Burker AXS X-ray diffractometer (D8 ADVANCE) was used for XRD, and a Burker AXS FT-IRTENSOR II was used for FT-IR. XRD results showed peaks originating from PEG in cNaD2, cNaD3, and sCA-SIGMA(-OH), suggesting that PEG was incorporated into the particles (Figure 22). Similarly, PEG-derived peaks were detected in cNaD2, cNaD3, and sCA-SIGMA(-OH) in FT-IR.

[0116] The PEG derivative content in cNaD1 1 Quantitative analysis was performed using 1H NMR. 5 mg of carbonate apatite was mixed with a known amount of PEG derivative, and disodium fumarate was used as an internal standard for each sample. 1 ¹H NMR was measured, and a calibration curve (y = 22.58x;R) was obtained from the ratio of the integral values ​​of disodium fumarate and PEG. 2 A solution (= 0.9852) was prepared. Next, cNaD1 was suspended almost uniformly by vortexing and dispensed into 1 mL portions. After centrifugation, the supernatant was removed, and the residue was dried under reduced pressure (3 mmHg, room temperature, 10-12 hours) to obtain dried cNaD1. EDTA·2Na·2H2O (100 mg) and fumarate·2Na (10.0 mg) were mixed and dissolved in 1.0 mL of D2O. From the amount of this solution added, 1 The weight of EDTA·2Na·2H2O in the 1H NMR measurement samples was calculated. 1 The 1H NMR spectrum was measured, and the ratio of the integral values ​​of disodium fumarate to PEG was substituted into a calibration curve to calculate the weight of PEG contained in dried cNaD1. As a result, the proportion of PEG contained in dried cNaD1 was 1.2-1.8% (w / w) (Table 6).

[0117] [Table 6]

[0118] Example 6: Zeta potentials of cNaD2 and cNaD3 Zeta potentials were measured using a Zetasizer Plate Reader for sCA (with Senjyo sonication treatment), cNaD2, and cNaD3 (neither containing nucleic acids), which were prepared under identical conditions except for the presence and type of PEG derivative. The results showed that the zeta potential of all particles was near 0, but it shifted slightly to positive when the PEG derivative was incorporated (Table 7).

[0119] [Table 7] [Industrial applicability]

[0120] The carbonate apatite particles of the present invention, when administered in vivo, exhibit higher accumulation in lesions such as tumor tissue, while significantly reducing accumulation in normal organs, including the liver. Therefore, they are extremely useful as a safe and effective drug delivery composition that produces the desired therapeutic effect with a smaller drug dose.

[0121] This application is based on Japanese Patent Application No. 2021-006747 (filing date: January 19, 2021), the contents of which are fully incorporated herein.

Claims

1. A composition containing carbonate apatite particles carrying a drug, wherein the average particle diameter of the particles is greater than 500 nm and less than or equal to 1000 nm, and primary particles are formed in the presence of a polyethylene glycol (PEG) derivative having one or more carboxylic acids or derivatives thereof or salts thereof at its terminal, and the PEG derivative is incorporated into the primary particles.

2. The composition according to claim 1, wherein the average molecular weight of the PEG derivative is 1,000 to 20,000.

3. The composition according to claim 1 or 2, wherein the composition contains the PEG derivative and / or its reaction product.

4. The composition according to claim 3, wherein the average molecular weight of the PEG derivative is 1,000 to 5,000.

5. The composition according to any one of claims 1 to 4, wherein the PEG derivative has one or more carboxylic acids or salts thereof at its terminus.

6. The composition according to any one of claims 1 to 5, wherein the drug is a nucleic acid.

7. The composition according to any one of claims 1 to 6, wherein the drug has antitumor activity.

8. The composition according to any one of claims 1 to 7, further containing albumin.

9. A method for producing the composition described in claim 1, comprising ultrasonically treating carbonate apatite particles, which are loaded with a drug and a PEG derivative, using a single-point focused ultrasonic irradiation device.

10. The method according to claim 9, wherein carbonate apatite particles carrying a drug and a PEG derivative are prepared by mixing a first solution containing a drug and calcium ions, a second solution containing phosphate ions and bicarbonate ions, and a PEG derivative.

11. The method according to claim 9 or 10, further comprising concentrating the composition according to claim 1 using a hollow fiber membrane.

12. A drug delivery composition comprising the composition described in any one of claims 1 to 8.

13. The drug delivery composition according to claim 12, wherein the drug has antitumor activity and the target tissue is a tumor.

14. The drug delivery composition according to claim 12, wherein the drug has anti-inflammatory activity and the target tissue is inflamed tissue.

Citation Information

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