Composition for controlling uptake of microparticles

A lactic acid bacteria composition inhibits the uptake of microparticles into the body by blocking endocytosis, addressing health risks from nanoplastics and other microparticles, and reducing the risk of inflammatory bowel disease and small intestine cancer.

WO2025206195A1PCT designated stage Publication Date: 2025-10-02MEIJI CO LTD

Patent Information

Application Number
PCT/JP2025/012504
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-03-29
Filing Date
2025-03-27
Publication Date
2025-10-02

AI Technical Summary

Technical Problem

There are no effective food-derived materials to control the uptake of nanoplastics and other microparticles into the body, which poses health risks such as oxidative stress, DNA damage, and increased risk of inflammatory bowel disease and small intestine cancer.

Method used

A composition comprising lactic acid bacteria, specifically from genera Lactobacillus, Streptococcus, and Bifidobacterium, is used to inhibit the uptake of microparticles into the body by blocking or restricting endocytosis, thereby reducing the risk of health issues associated with microparticle ingestion.

Benefits of technology

The lactic acid bacteria composition effectively suppresses the uptake of microparticles into intestinal epithelial cells, reducing oxidative stress and the risk of inflammatory bowel disease and small intestine cancer, and can be used as a probiotic or synbiotic for non-therapeutic benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a composition for controlling uptake of microparticles into a body, the composition containing a lactic acid bacterium. The lactic acid bacterium is preferably any one selected from bacteria belonging to the genus Lactobacillus and bacteria belonging to the genus Streptococcus. For example, the lactic acid bacterium is a bacterium belonging to Lactobacillus delbrueckii, Lactobacillus paracasei, Lactobacillus gasseri, or Streptococcus thermophilus.
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Description

Composition for controlling uptake of microparticles

[0001] The present invention relates to a composition for controlling the uptake of microparticles.

[0002] It is estimated that 150 million tons of plastic waste is discarded in the world's oceans, with 8 million tons being newly discharged annually. Plastic broken down into tiny particles by the effects of waves and ultraviolet rays is called microplastics, with those 5 mm or smaller being called microplastics and those 100 nm or smaller being called nanoplastics (NP). Microplastics do not decompose naturally and therefore remain in the natural environment. Humans ingest microplastics on a daily basis by consuming marine organisms that have ingested them. Microplastics are also found in plastic bottles and toothpaste, and it has been reported that we ingest as much as 5 g of microplastics per week.

[0003] Microplastics have been detected not only in feces but also in various organs, and research into the harmful effects of long-term exposure is ongoing. In vitro studies using cells suggest that NPs are taken up into cells, inducing oxidative stress, DNA damage, apoptosis, and other conditions (Non-Patent Documents 1-3). Oxidative stress is also a concern as it may be involved in the development of inflammatory bowel disease, colon cancer, and small intestine cancer.

[0004] It is known that when nanoparticles come close to cells, they interact with the cell membrane, resulting in the nanoparticles being encapsulated in the cell membrane and taken up into the cell by endocytosis (Non-Patent Document 4).In addition, it has been reported that polyethylene oxide microplastics have an enhancing effect on the toxicity of mouse intestines and Caco-2 cells (Non-Patent Document 5).

[0005] Furthermore, the acute effects of 48-hour exposure to different concentrations of polystyrene nanoplastics (0, 5, 10, and 20 mg / L) on the intestinal microbiota and oxidative stress parameters of freshwater crayfish (Procambarus clarkii) were examined. It was reported that exposure to polystyrene nanoplastics may lead to a weakened immune system in P. clarkii. Significant changes in the levels of glutathione (GSH), superoxide dismutase (SOD), acid phosphatase (ACP), lysozyme (LZM), alkaline phosphatase (AKP), peroxidase (POD), glutathione peroxidase (GPX), and protein carbonylation were observed with increasing nanoplastic concentrations. These findings suggest that lactic acid bacteria may play a supporting role in the treatment of oxidative stress (Non-Patent Document 6). Furthermore, lactic acid bacteria collected from infant feces efficiently adsorbed three types of nanoplastics: polypropylene, polyethylene, and polyvinyl chloride, suggesting that this could be a novel strategy for nanoplastic removal in the intestinal environment (Non-Patent Document 7).

[0006] Biomolecules 2021, 11(10), 1442; https: / / doi.org / 10.3390 / biom11101442Int. J. Mol. Sci. 2021, 22(4), 2094; https: / / doi.org / 10.3390 / ijms22042094Nanoscale, First published 08 Mar 2024, Advance Article. https: / / doi.org / 10.1039 / D3NR06638JACS Nano. 2015 September 22; 9(9): 8655.8671. doi:10.1021 / acsnano.5b03184.Sci Total Environ. 2023 Dec 10:903:166057. doi: 10.1016 / j.scitotenv.2023.166057.Sci Total Environ. 2022 Aug 10:833:155722. doi: 10.1016 / j.scitotenv.2022.155722.Chemosphere. 2023 Apr:320:138038. doi: 10.1016 / j.chemosphere.2023.138038.

[0007] There have been no reports of food-derived materials that can control the uptake of nanoplastics and other microparticles into the body. It would be desirable if the uptake of microparticles could be controlled by ingesting ingredients that are commonly eaten.

[0008] The present invention provides the following: [1] A composition for controlling the uptake of microparticles into the body, comprising lactic acid bacteria. [2] The composition according to 1, wherein the lactic acid bacteria are any one selected from bacteria belonging to the genus Lactobacillus, bacteria belonging to the genus Streptococcus, and bacteria belonging to the genus Bifidobacterium. [3] The composition according to 1 or 2, wherein the lactic acid bacteria are bacteria belonging to Lactobacillus delbrueckii, Lactobacillus paracasei, Lactobacillus gasseri, or Streptococcus thermophilus, Lactobacillus paragasseri, Lactobacillus lactis, or Bifidobacterium longum. [4] The composition according to any one of 1 to 3, wherein controlling uptake means inhibiting uptake. [5] The composition according to any one of 1 to 4, wherein the uptake into the body is uptake into intestinal epithelial cells. [6] The composition according to any one of 1 to 5, wherein the microparticles are nanoplastics or microplastics. [7] The composition according to any one of 1 to 6, for treating any one selected from oxidative stress, DNA damage, and apoptosis caused by the uptake of microparticles into the body. [8] The composition according to any one of 1 to 7, for use as a probiotic or synbiotic. [9] The composition according to any one of 1 to 8, wherein the control of uptake is due to an effect on cells.

[10] The composition according to 9, wherein the effect on cells is due to blocking, preventing, or restricting the uptake of microparticles into cells.

[11] The composition according to any one of 1 to 10, wherein the control of uptake is due to control of endocytosis by cells.

[12] The composition according to any one of 1 to 11, wherein the control of uptake is not due to adsorption of the microparticles by the lactic acid bacteria.

[13] The composition according to any one of 1 to 12, wherein the lactic acid bacteria are live or killed cells.

[14] The composition according to any one of 1 to 12, wherein the lactic acid bacteria are heat-killed cells.

[15] A method for reducing the risk of developing any one selected from inflammatory bowel disease, colon cancer, and small intestine cancer, comprising a step of administering a composition containing lactic acid bacteria to a subject, thereby controlling the uptake of microparticles into the body.

[16] The method according to 15, wherein the controlling of uptake is due to an action on cells.

[17] The method according to 15 or 16, wherein the action on cells is due to blocking, preventing, or restricting the uptake of microparticles into cells.

[18] The method according to any one of 15 to 17, wherein the controlling of uptake is due to controlling endocytosis by cells.

[19] The method according to any one of 15 to 18, wherein the controlling of uptake is not due to adsorption of the microparticles by the lactic acid bacteria.

[20] The method according to any one of 15 to 19, wherein the lactic acid bacteria are live cells or killed cells.

[21] The method according to any one of 15 to 19, wherein the lactic acid bacteria are heat-killed cells.

[0009]

[22] A composition comprising lactic acid bacteria for use in a method for controlling the uptake of microparticles into the body. Use of lactic acid bacteria in the manufacture of a composition for controlling the uptake of microparticles into the body. A method or non-therapeutic method for controlling the uptake of microparticles into the body, comprising a step of having a subject ingest a composition comprising lactic acid bacteria. Use or non-therapeutic use of lactic acid bacteria for controlling the uptake of microparticles into the body.

[23] The composition, use in manufacture, method or non-therapeutic method, use or non-therapeutic use according to 1, wherein the lactic acid bacteria is any one selected from bacteria belonging to the genus Lactobacillus, bacteria belonging to the genus Streptococcus, and bacteria belonging to the genus Bifidobacterium.

[24] The composition, use in production, method or non-therapeutic method, use or non-therapeutic use according to 1 or 2, wherein the lactic acid bacteria are bacteria belonging to Lactobacillus delbrueckii, Lactobacillus paracasei, Lactobacillus gasseri, Streptococcus thermophilus, Lactobacillus paragasseri, Lactobacillus lactis, or Bifidobacterium longum.

[25] The composition, use in production, method or non-therapeutic method, use or non-therapeutic use according to any one of 1 to 3, wherein controlling uptake means inhibiting uptake.

[26] The composition, use in production, method or non-therapeutic method, use or non-therapeutic use according to any one of 1 to 4, wherein uptake into the body is uptake into intestinal epithelial cells.

[27] The composition, use in production, method or non-therapeutic method, use or non-therapeutic use according to any one of 1 to 5, wherein the microparticles are nanoplastics or microplastics.

[28] The composition, use in manufacturing, method, or non-therapeutic method, use, or non-therapeutic use according to any one of 1 to 6, wherein the composition is for treating any one selected from oxidative stress, DNA damage, and apoptosis caused by the uptake of microparticles into the body.

[29] The composition, use in production, method, or non-therapeutic method, use, or non-therapeutic use according to any one of 1 to 7, wherein the composition is for use as a probiotic or synbiotic.

[30] A composition comprising lactic acid bacteria for reducing the risk of developing any one selected from inflammatory bowel disease, colon cancer, and small intestine cancer by controlling the uptake of microparticles into the body. A composition comprising lactic acid bacteria for use in a method for controlling the uptake of microparticles into the body, thereby reducing the risk of developing any one selected from inflammatory bowel disease, colon cancer, and small intestine cancer. Use of lactic acid bacteria in the production of a composition for controlling the uptake of microparticles into the body, thereby reducing the risk of developing any one selected from inflammatory bowel disease, colon cancer, and small intestine cancer. A non-therapeutic method for reducing the risk of developing any one selected from inflammatory bowel disease, colon cancer, and small intestine cancer, comprising the step of administering a composition comprising lactic acid bacteria to a subject, thereby controlling the uptake of microparticles into the body. Use of a composition containing lactic acid bacteria to reduce the risk of developing any one selected from inflammatory bowel disease, colon cancer, and small intestine cancer by controlling the uptake of microparticles into the body.

[0010] In one embodiment, the composition controls the uptake of microparticles into the body.

[0011] According to one embodiment of the composition, the uptake of microparticles into the body can be controlled using lactic acid bacteria, which are widely consumed as food.

[0012] L. bulgaricus 2038 and S. thermophilus 1131 inhibit PSNP uptake. Mean ± standard error (n = 5-6 / group). The fluorescence intensity of PSNP incorporated into Caco-2 cells is expressed as the median fluorescence intensity. Values ​​for each group were normalized by dividing the value by the median fluorescence intensity of the control group so that the value for the control group was 1.000. * p < 0.05 (Tukey-Kramer test). 16S rRNA gene, Lactobacillus delbrueckii ssp. bulgaricus 2038 (SEQ ID NO: 1). 16S rRNA gene, Streptococcus thermophilus 1131 (SEQ ID NO: 2). Live L. bulgaricus 2038 and live S. thermophilus 1131 inhibit PSNP uptake. Mean ± standard error (n = 7 / group). The fluorescence intensity of PSNP taken up by Caco-2 cells is expressed as median fluorescence intensity. Values ​​for each group were normalized by dividing by the median fluorescence intensity of the control group so that the value for the control group was 1.000. *: p<0.05 (Tukey-Kramer test). Live and heat-treated L. bulgaricus 2038 cells, and live and heat-treated S. thermophilus 1131 cells all inhibited PSNP uptake. Mean ± standard error (n = 6 / group). The fluorescence intensity of PSNP taken up by Caco-2 cells is expressed as median fluorescence intensity. Values ​​for each group were normalized by dividing by the median fluorescence intensity of the control group so that the value for the control group was 1.000. *: p<0.05 (Tukey-Kramer test). Heat-treated cells of various L. bulgaricus strains all inhibited PSNP uptake. Mean (n = 3 / group). The fluorescence intensity of PSNP incorporated into Caco-2 is expressed as median fluorescence intensity.The values ​​for each group were normalized by dividing by the median fluorescence intensity of the control group so that the value for the control group was 1.000. Various strains of S. thermophilus used in heat-treated cells all inhibited PSNP uptake. Mean values ​​(n = 3 / group). The fluorescence intensity of PSNP taken up into Caco-2 cells is shown as median fluorescence intensity. The values ​​for each group were normalized by dividing by the median fluorescence intensity of the control group so that the value for the control group was 1.000. Heat-treated L. lactis P2306614, LG21, and R-1 all inhibited PSNP uptake. Mean values ​​(n = 3 / group). The fluorescence intensity of PSNP taken up into Caco-2 cells is shown as median fluorescence intensity. The values ​​for each group were normalized by dividing by the median fluorescence intensity of the control group so that the value for the control group was 1.000. Heat-treated L. paracasei YIT9029 and B. longum BB536 all inhibited PSNP uptake. Mean values ​​(n = 3 / group). The fluorescence intensity of PSNP taken up by Caco-2 is expressed as the median fluorescence intensity. The values ​​for each group were normalized by dividing them by the median fluorescence intensity of the control group so that the value for the control group was 1.000.

[0013] The present embodiment relates to a composition containing a specific bacterium, and more particularly to a composition for controlling the uptake of microparticles into the body.

[0014] [Active ingredient] The composition of the present invention contains any of the lactic acid bacteria as an active ingredient. "Any" refers to any type and number. "Containing as an active ingredient" means that the composition uses an effective amount to exert the intended function, or that the ingredient is specified in the label as contributing to the intended purpose. In functional food products, the active ingredient is sometimes referred to as a functional ingredient (an ingredient that contributes to a specific health purpose (excluding those related to reducing disease risk)). Regardless of which material is used, the ingredients contained in the composition of the present invention are used at an intake level that guarantees safety or below the acceptable daily intake (ADI), giving priority to the food safety laws of each country.

[0015] (Lactic Acid Bacteria) In the present invention, unless otherwise specified, the term "lactic acid bacteria" refers to a general term for microorganisms that utilize glucose to produce lactic acid, including microorganisms that produce lactic acid at a sugar yield of 50% or more (lactic acid bacteria in the narrow sense) and bifidobacteria. Lactic acid bacteria in the narrow sense are those that produce lactic acid at a sugar yield of 50% or more and, in addition, have physiological properties such as being Gram-positive cocci or bacilli, being non-motile, often not capable of forming spores (although some lactic acid bacteria, such as Bacillus coagulans, are capable of forming spores), and being catalase-negative. Bifidobacteria are bacteria belonging to the genus Bifidobacterium, producing acetic acid in addition to lactic acid, and are Gram-positive, anaerobic bacilli.

[0016] (Bacteria Belonging to the Genus Lactobacillus) In one embodiment, bacteria belonging to the genus Lactobacillus are used as the active ingredient. In the present invention, when describing bacteria belonging to the genus Lactobacillus, unless otherwise specified, the classification follows the reclassification according to Zheng J, Wittouck S, Salvetti E, Franz CMAP, Harris HMB, Mattarelli P, O'Toole PW, Pot B, Vandamme P, Walter J, Watanabe K, Wuyts S, Felis GE, Ganzle MG, Lebeer S.: A taxonomic note on the genus Lactobacillus: Description of 23 novel genera, emended description of the genus Lactobacillus Beijerinck 1901, and union of Lactobacillaceae and Leuconostocaceae. Int J Syst Evol Microbiol. 2020 Apr; 70(4): 2782-2858.

[0017] In one embodiment, the active ingredient is selected from bacteria belonging to the genus Lactobacillus, such as Lactobacillus delbrueckii, Lactobacillus delbrueckii subsp. bulgaricus, Lactobacillus delbrueckii subsp. lactis, Lactobacillus gasseri, Lactobacillus paragasseri, Lactobacillus helveticus, Lactobacillus acidophilus, Lactobacillus crispatus, and Lactobacillus amylovorus. Bacteria belonging to Lactobacillus amylovorus, Lactobacillus gallinarum, or Lactobacillus johnsonii are used.

[0018] In another embodiment, the active ingredient is a bacterium belonging to the genus Lactobacillus, such as Lactobacillus delbrueckii, Lactobacillus delbrueckii subsp. bulgaricus, Lactobacillus gasseri, or Lactobacillus paragasseri, because these bacteria have been widely consumed and because the use of any of these bacteria can be expected to produce other effects in addition to the intended effect.

[0019] (Lactobacillus delbrueckii, Lactobacillus delbrueckii subsp. bulgaricus) In a preferred embodiment, the active ingredient is selected from bacteria belonging to L. delbrueckii subsp. bulgaricus, including strains 2038, OLL1255 (Accession No.: NITE BP-76), OLL1171 (Accession No.: NITE BP-01569), OLL1247 (Accession No.: NITE BP-01814), OLL205013 (Accession No.: NITE BP-02411), OLL1073R-1 (Accession No.: FERM BP-10741), and taxonomically equivalent strains. OLL1073R-1 is also available from Meiji Co., Ltd. in Meiji Probio Yogurt R-1.

[0020] L. delbrueckii ssp. bulgaricus 2038 was isolated from Meiji Bulgaria Yogurt LB81 (Meiji Co., Ltd.) and is commercially available. It is also stored at Meiji Co., Ltd. (Meiji Innovation Center, 1-29-1 Shichikuni, Hachioji, Tokyo).

[0021] The mycological properties of 2038 are as follows: Morphology: rod-shaped bacterium, does not produce gas from glucose, GC content 49.7%, gram-positive, catalase-negative, lactic acid optical rotation: D-type, does not grow at 15°C, produces acid by assimilating glucose, lactose, etc., does not form spores, non-motile.

[0022] The sequence of the 16S rRNA gene of 2038 is shown in SEQ ID NO: 1 in the sequence listing and in FIG.

[0023] (Lactobacillus paragasseri, Lactobacillus gasseri) In one embodiment, Lactobacillus paragasseri or a bacterium belonging to Lactobacillus gasseri is used as an active ingredient. Lactobacillus paragasseri is a gram-positive bacterium that performs homolactic fermentation, and is classified as JCM5343. Tis used as the type strain. Lactobacillus paragasseri can be distinguished from Lactobacillus gasseri by the average nucleotide identity (ANI) or DNA-DNA hybridization method. Examples of lactic acid bacteria strains belonging to Lactobacillus paragasseri include JCM 5343 T , Lactobacillus paragasseri OLL2809 (NITE BP-72), FERM BP-6999 (LG21), and NITE BP-224.

[0024] Strains with numbers beginning with JCM can be purchased from the Microbial Materials Development Division, BioResource Research Center, RIKEN (3-1-1 Takanodai, Tsukuba, Ibaraki Prefecture, 305-0074). Lactobacillus paragasseri FERM BP-6999 can also be isolated from Meiji Probio Yogurt LG21, sold by Meiji Co., Ltd.

[0025] (Lactobacillus paracasei) In one embodiment, a bacterium belonging to the genus Lactobacillus paracasei is used as the active ingredient. Lactobacillus paracasei is a Gram-positive bacterium that performs heterolactic fermentation, and mNCDO 151 is the type strain. Examples of lactic acid bacteria strains belonging to Lactobacillus paracasei include YIT9029 (FERM BP-1366) and YIT9018 (FERM BP-665).

[0026] (Streptococcus Bacteria) In one embodiment, bacteria belonging to the genus Streptococcus are used as the active ingredient.

[0027] In a preferred embodiment, Streptococcus thermophilus (also known as Streptococcus salivarius subsp. thermophilus), a bacterium belonging to the genus Streptococcus, is used as the active ingredient. More specifically, Streptococcus thermophilus 1131 or a strain taxonomically identical thereto is used.

[0028] S. thermophilus 1131 can be isolated from Meiji Bulgaria Yogurt LB81 (Meiji Co., Ltd.).

[0029] The bacteriological properties of 1131 are as follows: Morphology: Streptococcus, does not produce gas from glucose, Gram-positive, catalase-negative, lactic acid rotatory L-form, grows at 45°C, produces acid by assimilating glucose, lactose, fructose, etc., does not form spores, is non-motile.

[0030] The partial sequence (489 bases long) of the 16S rRNA gene of 1131 is shown in SEQ ID NO: 2 in the sequence listing and in FIG.

[0031] (Bifidobacteria) In one embodiment, bifidobacteria are used as the active ingredient. Examples of bifidobacteria include, but are not limited to, bacteria of the genus Bifidobacterium. Further examples of bifidobacteria include, but are not limited to, Bifidobacterium bifidum, Bifidobacterium longum, and Bifidobacterium lactis. In one embodiment, bacteria belonging to the genus Bifidobacterium longum are used as the active ingredient. Examples of bifidobacterium strains belonging to Bifidobacterium longum include B. longum BB536. B. longum BB536 can also be isolated from "Bifidus BB536 Plain Yogurt, Fat Free" sold by Morinaga Milk Industry Co., Ltd.

[0032] (Taxonomically equivalent strains) A strain taxonomically equivalent to a certain strain (hereinafter referred to as strain S) refers to, for example, any of the following: A strain belonging to the same species as strain S, in which the entire sequence or a characteristic part (such as the V1 region, V2 region, or all or part of the V1 and V2 regions, or a part including the V1 and V2 regions) of its 16S rRNA gene (hereinafter sometimes referred to as "16S" or "16S rRNA gene") has 90% or more, preferably 95% or more, more preferably 98% or more, even more preferably 98.5% or more, even more preferably 98.7% or more, even more preferably 99% or more, and even more preferably 100% sequence identity with the sequence of strain S. A strain that has the same mycological properties as strain S.

[0033] In the present invention, unless otherwise specified, sequence identity refers to the percentage of matching bases shared between two sequences when the two sequences are optimally aligned. Analysis of base sequence identity can be performed using algorithms or programs well known to those skilled in the art (e.g., BLASTN, BLASTP, BLASTX, ClustalW). When using a program, parameters can be appropriately set by those skilled in the art, or the default parameters of each program may be used. Specific techniques for these analysis methods are also well known to those skilled in the art. Commercially available genetic information processing software may be used to calculate identity.

[0034] Regarding criteria for determining species identity based on 16S rRNA gene sequences, those skilled in the art can refer to Stackebrandt E, Ebers J. Taxonomic parameters revisited: tarnished gold standards. Microbiol Today 2006;33:152-155.

[0035] The composition may contain microorganisms other than lactic acid bacteria, such as yeast, as long as the intended function is not impaired. In one preferred embodiment, the composition contains one or more types of lactic acid bacteria but does not contain other microorganisms, such as yeast.

[0036] (Production, Acquisition, and Form of Lactic Acid Bacteria) The lactic acid bacteria used as an active ingredient can be produced by culturing. The culturing conditions are not particularly limited as long as the desired effect is achieved.

[0037] The lactic acid bacteria may be contained in any state as long as they can exert the desired effect. For example, the lactic acid bacteria may be the bacterial cells themselves or a culture of the effective bacteria (consisting of bacterial cells and culture supernatant). The bacterial cells may be in a live state (viable bacterial cells) or in a dead state (dead bacterial cells) as long as they can exert the desired effect.

[0038] Killed bacteria can be obtained by sterilizing effective bacteria. The sterilization method is not particularly limited as long as it can produce the desired effect, and can be heat, a germicidal lamp (UV), ozone, a chemical, high osmotic pressure, or the like.

[0039] The killed bacteria are preferably heat-killed bacteria obtained by heat-treating live bacteria. The heat treatment to obtain heat-killed bacteria is not particularly limited as long as the desired effect is achieved, and is carried out at a temperature and for a time sufficient to kill the effective bacteria used. While these conditions vary depending on the effective bacteria used, the heat treatment temperature is, for example, 55°C or higher, preferably 60°C or higher, more preferably 65°C or higher, and even more preferably 70°C or higher, and may be 80°C or higher, or even 90°C or higher. The upper limit of the heat treatment temperature can be set appropriately, for example, 121°C or lower, 100°C or lower, 90°C or lower, or 80°C or lower. Depending on the heat treatment temperature, the heat treatment time can be 1 minute or more, 3 minutes or more, 10 minutes or more, 15 minutes or more, 30 minutes or more, or 45 minutes or more. The upper limit of the heat treatment time can be, for example, 120 minutes or less, 100 minutes or less, 90 minutes or less, or 80 minutes or less.

[0040] The lactic acid bacteria to be contained in the composition can be prepared in the form of a dry product, suspension, paste, gel, or the like, regardless of whether they are live or dead cells.

[0041] [Uses] (Action / Function) The composition of this embodiment can be used to control the uptake of microparticles into the body. Control includes upward control (promotion, increase, suppression of decline) and downward control (suppression, decrease, suppression of increase). In a preferred aspect, the uptake of microparticles into the body is suppressed. In a preferred aspect, the control (preferably suppression) of the uptake is preferably achieved by an action on cells, more preferably by controlling endocytosis, blocking, preventing, or restricting the uptake of microparticles into cells, or controlling the permeation of tight junctions. That is, in this aspect, the composition of this embodiment preferably suppresses the uptake of microparticles by causing lactic acid bacteria to act on cells, controlling endocytosis by the cells, inhibiting, preventing, or restricting the uptake of microparticles by the cells, or controlling the permeation of tight junctions. In another preferred aspect, the control of endocytosis is preferably the suppression of endocytosis. In another preferred aspect, the control of the uptake is preferably achieved by controlling the permeability of microparticles to the cell membrane. In the above-mentioned embodiment, the control of uptake is preferably suppression of uptake, and is more preferably achieved by suppressing the permeability of microparticles to the cell membrane. In another preferred embodiment, the control of tight junction permeation is preferably suppression of tight junction permeation. Furthermore, as shown in the examples described below, the control of uptake is preferably not achieved by adsorption of microparticles by lactic acid bacteria.

[0042] In vitro studies using intestinal epithelial cells have reported that NPs are taken up into the cells and induce oxidative stress, DNA damage, apoptosis, and the like (Non-Patent Documents 1 to 3). Oxidative stress is also feared to be involved in the development of inflammatory bowel disease, colon cancer, and small intestine cancer. Therefore, the composition of the present embodiment is suitable for treating any of oxidative stress, DNA damage, and apoptosis caused by the ingestion of microparticles into the body, and is also suitable for reducing the risk of developing any of inflammatory bowel disease, colon cancer, and small intestine cancer.

[0043] "Inhibition of uptake into the body" refers to a decrease in the amount taken up into the body by using a composition or active ingredient compared to when the composition or active ingredient is not used or when the composition or active ingredient is used in a smaller amount. Inhibition of uptake into the body includes suppressing an increase (enhancement) in the amount taken up into the body. For example, in a situation where the uptake of microparticles into cells is enhanced, using the composition or active ingredient of this embodiment to suppress the enhancement of uptake of microparticles is also an aspect of inhibiting uptake of microparticles into the body.

[0044] In the present invention, "in the body" can be read as "in a living organism" or "in a living organism." Controlling uptake into the body includes controlling uptake into cells.

[0045] This embodiment is expected to control the uptake of microparticles in various cells, tissues, and organs. The cells, tissues, and organs for which the uptake of microparticles can be suppressed are not particularly limited. Examples of organs include the esophagus, stomach, small intestine, large intestine, rectum, appendix, trachea, lungs, eyes, nasal cavity, pharynx, thyroid gland, spleen, liver, gallbladder, kidney, bladder, ureter, urethra, heart, artery, and vein. Examples of cells include epithelial cells. Epithelial cells are present on the surface of the body (skin), body cavities (intestinal tract), organs, etc., and also constitute exocrine glands and endocrine glands.

[0046] In a preferred embodiment, the composition is used to control the uptake of microparticles in intestinal epithelial cells or alveolar epithelial cells, more particularly in intestinal epithelial cells. The intestinal tract refers to the digestive organs in humans and animals that digest and absorb ingested food. The intestinal tract includes the small intestine and large intestine, and is preferably the small intestine.

[0047] Whether a certain component can control the uptake of microparticles into the body can be evaluated, for example, using appropriate cultured cells. More specifically, cultured cells are cultured on a Transwell plate insert to form a monolayer, and a labeled standard nanoplastic is added to the apical side of the Transwell. At this time, the test component is added and the cells are cultured for a period of time. The cells are then detached, and the amount of nanoplastic taken up into the cells is analyzed using the labeled substance as an indicator. If necessary, this can be compared with the amount of uptake in a system without the test component. An example of cultured cells that can be used is Caco-2 cells.

[0048] In the present invention, microparticles refer to particles that are insoluble in water and have a size (particle diameter or length) of 1 mm or less. Microparticles can also be referred to as micromaterials or microsubstances. Particles that are insoluble in water can also be referred to as solid particles. Microparticles can be tiny substances that have adverse effects on the human body.

[0049] The size of the microparticles can be 100 μm or less, 10 μm or less, 1 μm or less, etc. The microparticles can also be, for example, 1 nm or more, 2 nm or more, 3 nm or more, 4 nm or more, 5 nm or more, 10 nm or more.

[0050] The material (also referred to as component, material, or raw material) of the microparticles is not particularly limited. Examples of the material include plastics, metals (titanium dioxide, aluminum oxide, zinc oxide, cerium oxide, magnesium oxide, iron oxide, titanium, silver, gold, iron, etc.), carbons (fullerene, carbon tubes, etc.), and ceramics (silicon dioxide, nanoclay, silicic acid, etc.).

[0051] Examples of plastic materials include polystyrene (PS), polyethylene (PE), polypropylene (PP), polyvinyl chloride (PVC), polyethylene terephthalate (PET), polycarbonate (PC), ethylene vinyl acetate (EVA), acrylonitrile styrene (SAN), acrylonitrile butadiene styrene (ABS), acrylate styrene acrylonitrile (ASA), polyacetal (POM), alkyd (Alkyd), unsaturated polyester (UPR), polyvinyl acetate (PVAc), polyacrylonitrile (PAN), polymethyl methacrylate (PMMA), polyallylamine-acrylonitrile butadiene styrene-polymethacrylimide (PAA-MABS-PMI), polyamide (PA), urea resin (UF), polyurethane (PUR), epoxy resin (EP), melamine resin (MF), phenolic resin (PF), and silicone resin (SI).

[0052] An example of a microparticle whose uptake can be suitably controlled by this embodiment is a microplastic, and its size may be 1000 nm or less, 900 nm or less, 800 nm or less, 700 nm or less, 600 nm or less, 500 nm or less, 400 nm or less, 300 nm or less, 200 nm or less, 100 nm or less, 90 nm or less, 80 nm or less, 70 nm or less, 60 nm or less, 50 nm or less, 40 nm or less, 30 nm or less, 20 nm or less, or 10 nm or less, or 1 nm or more, 2 nm or more, 3 nm or more, 4 nm or more, 5 nm or more, or 10 nm or more. In one embodiment, the uptake of nanoplastics can be suitably controlled. In the present invention, the term "nanoplastics" refers to plastics with a size of 1 to 100 nm, unless otherwise specified.

[0053] Other examples of fine particles for which intake control can be suitably performed by this embodiment are suspended particulate matter (SPM, particles of 10 μm or less suspended in the air) and fine particulate matter (PM2.5, small particles of 2.5 μm or less suspended in the air). The material of suspended particulate matter and fine particulate matter varies depending on the source of generation. When the source is yellow sand, volcanic smoke, etc., the material is inorganic elements, etc. When the source is a factory, automobile, etc., the material is elemental carbon, organic carbon, inorganic elements, etc. When the source is secondary particles (generated by reaction of chemical substances in the air), the material is sulfate ions, nitrate ions, ammonium ions, organic carbon, etc. The size can be 10 μm or less, 9 μm or less, 8 μm or less, 7 μm or less, 6 μm or less, 5 μm or less, 4 μm or less, 3 μm or less, 2.5 μm or less, 2 μm or less, 1 μm or less, 0.5 μm or less, and 0.01 μm or more, 0.05 μm or more, 0.1 μm or more.

[0054] The specific gravity of the microparticles whose uptake can be suitably controlled by this embodiment can be, for example, 1.6 or less, 1.5 or less, or 1.4 or less.

[0055] (Subject) The composition of the present embodiment is suitable for administration to healthy subjects in whom it is desirable to control the uptake of microparticles into the body, healthy subjects in whom it is desirable to control the uptake of microparticles into intestinal epithelial cells, for example, healthy subjects in whom it is desired to control the uptake of microparticles into the body, healthy subjects thought to be ingesting a large amount of microparticles, and healthy subjects concerned about the ingestion of microparticles. A healthy subject refers to a human who has not been diagnosed with any disease (pre-disease) or a companion animal, as described below. In other words, when the composition of the present embodiment is used on these healthy subjects, the composition of the present embodiment is not provided for therapeutic purposes.

[0056] The compositions of this embodiment are also suitable for ingestion by healthy subjects who have enhanced uptake of microparticles into their bodies.

[0057] Preferably, the subject is healthy (eg, free of intestinal disease, free of infections, and free of cancer).

[0058] The composition of this embodiment can be used non-therapeutically. Non-therapeutic means not intended to treat a disease. In one embodiment, the composition of this embodiment can be used in the form of a food or the like (for example, as a food composition). In the above aspect, the composition is not a medicine, but is provided in the form of, for example, a supplementary food, health food, or supplement. Non-therapeutic use means maintenance of the current state, temporary improvement or relief, support, etc.

[0059] Furthermore, the composition of this embodiment is suitable for administration to subjects with a disease for whom it is desirable to control the uptake of microparticles into the body, subjects with a disease for whom it is desirable to control the uptake of microparticles into intestinal epithelial cells, subjects with a disease for whom it is desired to control the uptake of microparticles into the body, subjects with a disease who are thought to be ingesting a large amount of microparticles, and subjects with a disease who are concerned about the ingestion of microparticles.

[0060] The composition of this embodiment is also suitable for administration to a subject suffering from a disease in which the uptake of microparticles into the body is enhanced.

[0061] The composition of this embodiment can also be used for non-therapeutic purposes in subjects with a disease. In one embodiment, the composition of this embodiment can be used in the form of a food or the like (e.g., as a food composition) as a composition for therapeutic support. Here, therapeutic support refers to non-therapeutic uses of disease or illness treatment. Examples of therapeutic support include use in subjects undergoing treatment for a disease or illness to enhance the therapeutic effect or provide nutritional support during treatment; use in subjects treated for a disease or illness to improve the prognosis, maintain a good prognosis, or provide nutritional support after treatment; and use in subjects scheduled to undergo treatment for a disease or illness to enhance the effect of subsequent treatment or provide nutritional support before treatment. In these embodiments, the composition is provided in the form of, for example, a supplementary food, health food, liquid food, highly functional liquid food, supplement, or the like, rather than a pharmaceutical. The composition of this embodiment can also be used for therapeutic purposes in subjects with a disease. In one embodiment, the composition of this embodiment can be used in the form of a pharmaceutical or the like (e.g., as a pharmaceutical composition) as a composition for therapeutic treatment.

[0062] When the composition of the present embodiment is used for non-therapeutic purposes, judgments as to whether it is desirable or necessary include judgments as non-therapeutic actions, such as advice other than diagnosis, by medical professionals such as doctors, nurses, pharmacists, midwives, and clinical laboratory technicians, judgments by those involved in non-therapeutic actions, such as nutritionists (including registered dietitians and sports nutritionists), public health nurses, sports instructors, pharmaceutical manufacturers, pharmaceutical distributors, food manufacturers, and food distributors, judgments by the subject themselves or their family, etc. Furthermore, the above judgments include judgments based on the output results of questionnaires on lifestyle habits, eating habits, and subjective symptoms, and judgments based on subjective symptoms (concerns about obesity or lifestyle-related diseases, etc.).

[0063] When the composition of the present embodiment is used for the purpose of treatment, the necessity of the use can be judged as a therapeutic procedure by a medical professional such as a doctor, nurse, pharmacist, midwife, or clinical laboratory technician.

[0064] The subject may be a human or a non-human animal. Non-human animals include mammals, birds, reptiles, amphibians, fish, etc. Non-human animals may be commercial animals, research animals, or companion animals. The phrase "companion animal" refers to a domestic or domestic animal whose physical, emotional, behavioral, and social needs can be readily met as a domestic companion or through close daily association with one or more humans. In one embodiment, species included within the definition of companion animal include dogs, canines, cats, felines, cows, horses, goats, sheep, pigs, primates (such as monkeys), rabbits, ferrets, rodents (such as guinea pigs, hamsters, mice, and rats), and other small mammals. In another embodiment, species included within the definition of companion animals are dogs, cats, horses, rabbits, ferrets, guinea pigs, and other small mammals, birds, small reptiles, fish, and livestock animals.

[0065] The age of the subject to which the composition of the present embodiment is administered is not particularly limited, and when the subject is a human, examples of such subjects include newborns (within 28 days of birth), infants (less than 1 year of age), toddlers (1 to 6 years of age), children (7 years of age or older, but younger than 15 years of age), adults (15 years of age or older), middle-aged and elderly people, people 60 years of age or older, elderly people (65 years of age or older), people who are ill or recovering from an illness, pregnant women, and women who have just given birth.

[0066] [Composition] (Food composition, etc.) The composition of this embodiment can be a food composition, pharmaceutical composition, or cosmetic composition. Foods, pharmaceuticals, and cosmetics include not only those for humans but also those for non-human animals, unless otherwise specified. Foods include general foods, functional foods, and nutritional compositions, unless otherwise specified, and also include therapeutic foods (those that serve the purpose of treatment; prepared based on a menu prepared by a nutritionist or the like in accordance with a doctor's dietary prescription), therapeutic diets, ingredient-modified foods, nursing care foods, and foods for medical support. Foods include not only solid foods but also liquid foods, such as beverages, energy drinks, liquid foods, and soups, unless otherwise specified. Functional foods refer to foods that can impart specific functionality to the body, and include a wide range of health foods, including foods for specified health uses (including conditional FOSHUs [foods for specified health uses]), foods with functional claims, health functional foods including foods with nutrient functions, foods for special dietary uses, dietary supplements, health supplements, supplements (e.g., tablets, coated tablets, sugar-coated tablets, capsules, liquids, etc.), and beauty foods (e.g., diet foods). Furthermore, in the present invention, "functional foods" also encompasses health foods to which a health claim based on the Codex Alimentarius (the Joint FAO / WHO Food Standards Commission) is applied. In the present invention, pharmaceuticals include topical skin preparations. In the present invention, cosmetics include quasi-drugs, and include both cosmetics that do not contain active ingredients and medicated cosmetics that contain active ingredients.

[0067] (Route of Administration) The composition of this embodiment may be administered orally, parenterally, for example, via a tube (gastrostomy, enterostomy), or nasally. It may also be administered transdermally. In the present invention, the term "administer" is used not only to refer to administering a pharmaceutical to a subject, but also to refer to ingestion of food by a subject or application of cosmetics to the skin. "Administer" can sometimes be read as "intake" and "ingestion" can also be read as "administer."

[0068] (Content and dosage of active ingredient) The content of the active ingredient in the composition of this embodiment may be any amount that can achieve the desired effect. The content of lactic acid bacteria in the composition can be appropriately set taking into consideration various factors such as the age, weight, and symptoms of the subject to be ingested or administered. The content of lactic acid bacteria per unit of the composition (when multiple types of bacteria are included as active ingredients, this may be the content of each type or the total content; the same applies hereinafter when referring to the content) is, for example, 1 x 10 6 It can be 1×10 or more. 7 pcs or more, 1×10 8 More than 5 x 10 8 pcs or more, 1×10 9 More than 5 x 10 9 It may be 1×10 or more. 10 It is preferable that the number of particles is 1×10 or more. 11 More preferably, it is 2×10 11 The upper limit can be set appropriately, and whatever the lower limit, for example, 1 × 10 14 It may be 1×10 or less. 13 It may be 1×10 or less. 12 One unit of the composition can be taken by a subject once per day, or it can be taken by a subject multiple times per day, for example, three times.

[0069] The content of the active ingredient in the composition of this embodiment, when the active ingredient is a dried bacterial cell, can be, for example, 1 mg or more, or may be 2 mg or more, 5 mg or more, 10 mg or more, 15 mg or more, 20 mg or more, preferably 30 mg or more, more preferably 50 mg or more, and even more preferably 100 mg or more. The upper limit can be set appropriately, and whatever the lower limit, it may be, for example, 1000 mg or less, 750 mg or less, or 500 mg or less.

[0070] The content of lactic acid bacteria per 1 g of the composition is, for example, 1 × 10 4 It can be more than 5 x 10 4 pcs or more, 1×10 5pcs or more, 5×10 5 pcs or more, 1×10 6 pcs or more, 5×10 6 pcs or more, 1×10 7 pcs or more, 5×10 7 pcs or more, 1×10 8 pcs or more, 5×10 8 pcs or more, 1×10 9 pcs or more, 5×10 9 It may be 5×10 or more. 9 The upper limit can be set appropriately, and whatever the lower limit, for example, 1 × 10 14 It may be 1×10 or less. 13 It may be 1×10 or less. 12 It may be 1×10 or less. 11 It may be 1×10 or less. 10 It may be less than one.

[0071] Furthermore, when the lactic acid bacteria content is as described above, in either case, one unit of the composition can be, for example, 0.5 g or more, 1 g or more, 5 g or more, 10 g or more, 20 g or more, or 30 g or more. When the composition is in the form of a food such as fermented milk, one unit can be an amount that is easy to ingest as a food in one sitting, for example, 50 g or more, 60 g or more, 70 g or more, 80 g or more, 90 g or more, or 100 g or more. The upper limit can be set as appropriate, and in either case, the lower limit can be set to 500 g or less, 400 g or less, 300 g or less, 200 g or less, 150 g or less, or 125 g or less.

[0072] The composition of this embodiment contains lactic acid bacteria with a long history of consumption as an active ingredient, and therefore, the composition of this embodiment may be administered repeatedly or over a long period of time, for example, for three days or more, preferably one week or more, more preferably four weeks or more, and particularly preferably one month or more.

[0073] (Other Ingredients, Additives) The composition of this embodiment may contain ingredients acceptable for use as a food, pharmaceutical, or cosmetic. Examples of ingredients acceptable for use as a food or pharmaceutical include lipids (e.g., milk fat, vegetable oil, medium-chain fatty acid-containing oil), proteins (e.g., milk protein, milk protein concentrate (MPC), whey protein concentrate (WPC), whey protein isolate (WPI), α-lactalbumin (α-La), β-lactoglobulin (β-Lg), heat-denatured whey protein, and enzyme-treated whey protein), amino acids (e.g., lysine, arginine, glycine, alanine, glutamic acid, leucine, isoleucine, valine), kojibiose, and kojibiose-containing carbohydrates other than oligosaccharides having the above-mentioned constituent sugars (glucose, sucrose, fructose, maltose, trehalose, erythritol, maltitol, palatinose, xylitol, dextrin), electrolytes (e.g., sodium, potassium, calcium, magnesium), vitamins (e.g., vitamin A, vitamin B1, vitamin B2, vitamin B6, vitamin B12, vitamin C, vitamin D, vitamin E, vitamin K, biotin, folic acid, pantothenic acid, and nicotinic acids), minerals (e.g., copper, zinc, iron, cobalt, manganese), antibiotics, dietary fiber, etc. Examples of ingredients acceptable for cosmetics include aqueous ingredients, oily ingredients, powder ingredients, alcohols, moisturizing ingredients, fragrances, pigments, etc.

[0074] The composition of the present embodiment may further contain additives acceptable for use in foods, pharmaceuticals, or cosmetics. Examples of such additives include inert carriers (solid or liquid carriers), excipients, surfactants, binders, disintegrants, lubricants, solubilizers, suspending agents, coating agents, colorants, preservatives, buffers, pH adjusters, emulsifiers, stabilizers, sweeteners, antioxidants, flavors, acidulants, and natural products. More specifically, examples of the additives include water, other aqueous solvents, pharmaceutically acceptable organic solvents, collagen, polyvinyl alcohol, polyvinylpyrrolidone, carboxyvinyl polymers, sodium alginate, water-soluble dextran, water-soluble dextrin, sodium carboxymethyl starch, pectin, xanthan gum, gum arabic, casein, gelatin, agar, glycerin, propylene glycol, polyethylene glycol, petrolatum, paraffin, stearyl alcohol, stearic acid, human serum albumin, mannitol, sorbitol, lactose, sucralose, stevia, aspartame, acesulfame potassium, citric acid, lactic acid, malic acid, tartaric acid, phosphoric acid, acetic acid, fruit juice, and vegetable juice.

[0075] (Dosage form / form) In one aspect, the food composition may be prepared in any form such as a solid, liquid, mixture, suspension, powder, granules, paste, jelly, gel, capsule, etc. Furthermore, the food composition according to the present invention can be prepared in any form such as dairy products, supplements (for example, tablets, coated tablets, sugar-coated tablets, enteric-treated agents such as enteric coating, capsules (enteric-coated soft capsules, enteric-coated hard capsules, large intestine delivery capsules, etc.), confectionery, beverages, energy drinks, seasonings, processed foods, side dishes, soup, etc. More specifically, the composition of this embodiment can be prepared in any form such as liquid food (semi-liquid food, concentrated liquid food, etc.), jelly, gel, powder, infant formula, infant formula, powdered milk / liquid milk for pregnant and lactating women, fermented milk, bar, milk powder ... cheese, chocolate, biscuits, ice cream, fermented milk, lactic acid bacteria drinks, dairy drinks, soft drinks, fruit juice drinks, tablets, cheese, bread, biscuits, crackers, pizza crust, whiskey, bourbon, spirits, liqueur, wine, fruit wine, sake, Chinese alcohol, shochu, beer, non-alcoholic beer with an alcohol content of 1% or less, happoshu, other miscellaneous alcohol, alcoholic beverages such as chuhai, mineral water; processed products using eggs, processed products (including delicacies) of seafood and meat (including liver and other offal) The formula can be in the form of miso paste, soy sauce, furikake (a seasoning), or other condiments, soups such as miso soup, foods for the sick, nutritional foods, frozen foods, or processed foods. It can also be in the form of granules, powders, pastes, thickened liquids, or other forms for mixing with beverages or foods. Granules and powders can be in cube or stick form (single-serving packets). Mineral water includes both sparkling and non-sparkling mineral water. For the purposes of this invention, "formulated milk powder" refers to a powdered product obtained by processing raw milk, cow's milk, special cow's milk, or raw buffalo milk, or a food made from these ingredients, or using them as the main ingredient, and adding nutrients necessary for infants. For the purposes of this invention, "formulated liquid milk" refers to a liquid product obtained by processing raw milk, cow's milk, special cow's milk, or raw buffalo milk, or a food made from these ingredients, or using them as the main ingredient, and adding nutrients necessary for infants.

[0076] In one embodiment, the pharmaceutical composition can be in any dosage form suitable for oral administration, such as solid preparations such as tablets, granules, powders, pills, and capsules (enteric-coated soft capsules, enteric-coated hard capsules, colon delivery capsules, etc.), liquid preparations such as solutions, suspensions, and syrups, gels, aerosols, and live bacterial preparations. The solid preparations can be coated or sugar-coated, and can be enterically treated by enteric coating or the like. Furthermore, the pharmaceutical composition can be in the form of ointments, creams, topical liquid preparations, eye drops, nasal drops, suppositories, patches, or inhalants suitable for topical administration.

[0077] In one embodiment, the cosmetic composition can be in the form of a solution, emulsion, suspension, gel, cream, mask pack, sheet, foam, or aerosol.

[0078] (Other) The composition of the present embodiment is suitable for being ingested by a subject at the same time as or before a food that contains a large amount of microparticles or a food that is suspected to contain a large amount of microparticles is ingested by the subject.

[0079] In the production of the composition of this embodiment, the stage of blending the active ingredients can be selected as appropriate. The stage of blending is not particularly limited as long as it does not significantly impair the properties of the active ingredients. For example, each raw material (acidulant, sweetener, stabilizer, fruit juice, flavoring, lactic acid bacteria cells, water) and a heat-treated predetermined lactic acid bacteria (about 10 9 The resulting mixture is mixed and bottled to prepare a composition in the form of a 100 mL fruit juice-flavored soft drink.

[0080] In one aspect, the composition can be labeled with its intended use (application), and in another aspect, the function of the composition or active ingredient or the usage method based on that function is labeled. Examples of the usage method based on the function are as described above for the functions, actions, and effects. In addition, the composition of this embodiment can be labeled with the fact that it can be used as a prebiotic or as a synbiotic (a combination of probiotics and prebiotics).

[0081] Specific examples of labeling include "control of the intake of fine particles into the body," "inhibition of the intake of fine particles into the body," "control of the intake of microplastics into the body," "inhibition of the intake of microplastics into the body," "control of the intake of nanoplastics into the body," "inhibition of the intake of nanoplastics into the body," "control of the intake of PM2.5 into the body," "inhibition of the intake of PM2.5 into the body," etc. Control or inhibition includes assisting control, assisting inhibition, temporarily alleviating, etc.

[0082] In one embodiment, the composition is labeled to recommend administration to a specific subject. Examples of subjects for which the labeling is provided are as described above for subjects.

[0083] Representation can be explicit or implicit. Examples of explicit representation are direct inscriptions on tangible objects such as the product itself, packaging, containers, labels, tags, etc., while examples of implicit representation (which can also be called implied) include advertising and promotional activities by place or means such as websites, stores, pamphlets, exhibitions, media seminars, books, newspapers, magazines, television, radio, video streaming sites, SNS, influencer marketing, mail, email, and audio.

[0084] The present invention will be described in more detail below with reference to examples.

[0085] [Example 1: Inhibition of nanoplastic uptake] L. bulgaricus ssp. bulgaricus 2038 was cultured in MRS medium for 18 hours, washed with PBS, and then subjected to OD analysis with PBS. 600 Caco-2 cells were suspended at a concentration of 10:10. Caco-2 cells were cultured on inserts of a 0.4 μm pore size Transwell plate (12 wells, 0.4 μm, cell culture surface treated, sterilized, model number: 3401) for 2 weeks to form a monolayer.

[0086] Fluorescently labeled polystyrene nanoplastics (PSNPs) with a particle size of 20 nm were added to the apical side of the Transwell at a concentration of 200 μg / mL. Fluorescently labeled PSNPs. Manufacturer: Thermo Fisher Scientific. Product name: FluoSpheres. TM Carboxylate-Modified Microspheres Model number: F8787 To prevent aggregation of PSNP, Tween 20 was added to a final concentration of 0.005%, and the PSNP was treated with an ultrasonic cleaner for 30 seconds twice.

[0087] Live L. bulgaricus 2038 cells were added to the apical side of the medium at a concentration of 1%. The bacterial concentration in the medium was approximately 5 × 10 6 The amount of PSNP taken up by Caco-2 cells was measured by flow cytometry analysis using FACSVerse.

[0088] In addition, live S. thermophilus 1131 cells were cultured in M17 medium containing 1% lactose for 18 hours, washed with PBS, and then analyzed at OD in PBS. 600 The subsequent experiments were carried out in the same manner as for L. bulgaricus 2038. The bacterial concentration in the medium was approximately 1 × 10 7 Calculated as CFU / mL.

[0089] The measurement results are shown in Figure 1. The measurement results were normalized by dividing the value of each group by the median fluorescence intensity of the control group so that the value of the control group was 1.000. In other words, the vertical axis of the graph represents the relative value of the median fluorescence intensity (MFI). This is also true for Figures 3 to 8 below. As a result, PSNP uptake into Caco-2 cells was significantly suppressed in the group to which L. bulgaricus 2038 was added (2038) or the group to which S. thermophilus 1131 was added (1131) compared to the group to which PBS was added (control) (Figure 1, n = 5-6, *: p < 0.05 (Tukey-Kramer test)).

[0090] Example 2: Confirmation of Nanoplastic Adsorption by Lactic Acid Bacteria L. bulgaricus 2038 and S. thermophilus 1131 were prepared as in Example 1. PSNP was added to Caco-2 culture medium at 200 μg / mL. To prevent aggregation, Tween 20 was added to a final concentration of 0.005% and the medium was ultrasonically cleaned for 30 seconds twice. L. bulgaricus 2038 or S. thermophilus 1131 was added to the medium at 1%. A control group was also set up without lactic acid bacteria. After incubation for 18 hours in a CO2 incubator at 37°C, the medium was passed through a 0.22 μm filter. The filter was washed with PBS using a syringe, and the lactic acid bacteria trapped on the filter were recovered. The fluorescence intensity was measured using a fluorescent plate reader.

[0091] As a result, the fluorescence was comparable to the background and no fluorescence was detected in the control group, the L. bulgaricus 2038-added group, and the S. thermophilus 1131-added group. This suggests that the suppression of PSNP uptake is not due to adsorption of PSNP to either strain.

[0092] [Example 3: Inhibition of microplastic uptake] Fluorescently labeled polyethylene microplastics (PSMP) with a particle size of 200 nm were added instead of the fluorescently labeled PSNP with a particle size of 20 nm used in Example 1. The culture system, amount added, addition method, and measurement method used were the same as in Example 1.

[0093] The measurement results are shown in Figure 3. As can be seen from Figure 3, the uptake of microplastics was significantly suppressed in the group to which live L. bulgaricus 2038 cells were added (2038) or the group to which live S. thermophilus 1131 cells were added (1131) compared to the group to which PBS was added (Control) (n = 7, *: p < 0.05 (Tukey-Kramer test)).

[0094] Example 4: Inhibition of Nanoplastic Uptake by Heat-Treated Bacteria The same experiment was performed using the bacteria from Example 1, which were incubated at 75°C for 1 hour to prepare heat-treated bacteria. Specifically, the above-mentioned nanoplastic (PSNP) was added to the apical side at 200 μg / mL to a monolayer of Caco-2 cells cultured on a Transwell insert. Simultaneously with the addition of PSNP, live L. bulgaricus 2038 cells, heat-treated cells, live S. thermophilus 1131 cells, or heat-treated S. thermophilus 1131 cells, which had been adjusted to an OD600nm of 10 and incubated at 75°C for 1 hour, were added to the medium at 1%. After 18 hours of culture, the amount of PSNP taken up by Caco-2 cells was measured using a FACSVerse.

[0095] The measurement results are shown in Figure 4. As can be seen from Figure 4, nanoplastic uptake was significantly suppressed in the group to which heat-treated L. bulgaricus 2038 cells were added (heat-treated 2038) or the group to which heat-treated S. thermophilus 1131 cells were added (heat-treated 1131) compared to the group to which PBS was added (Control) (n = 6, *: p < 0.05 (Tukey-Kramer test)).

[0096] Example 5: Inhibition of nanoplastic uptake by heat-treated L. bulgaricus cells Various strains of L. bulgaricus (P2306601, JCM 1002T, P2306602, P2306603, P2306604, P2306605, P2306606, P2306607, P2306608, 2038) were cultured in the same manner as in Example 1, and heat-treated in the same manner as in Example 4. The inhibition of nanoplastic uptake by each strain was evaluated in the same manner as in Example 4.

[0097] The measurement results are shown in Figure 5. Figure 5 suggests that for all strains of L. bulgaricus, nanoplastic uptake was suppressed compared to the PBS-added group (control) (n=3).

[0098] [Example 6: Inhibition of nanoplastic uptake by heat-treated S. thermophilus cells] Various strains of S. thermophilus (P2306609, P2306610, P2306611, P2306612, P2306613, JCM 17834T, 1131) were cultured in the same manner as in Example 1, and heat-treated in the same manner as in Example 4. The inhibition of nanoplastic uptake by each strain was evaluated in the same manner as in Example 4.

[0099] The measurement results are shown in Figure 6. Figure 6 suggests that for all strains of S. thermophilus, nanoplastic uptake was suppressed compared to the PBS-added group (control) (n=3).

[0100] Example 7: Inhibition of nanoplastic uptake by heat-treated cells of other bacterial species and strains (1) Various lactic acid bacteria (L. lactis P2306614, LG21, R-1, S. thermophilus 1131) were cultured, and the inhibition of nanoplastic (PSNP) uptake was evaluated as heat-treated cells using the same method as in Example 4. [Culturing method] L. lactis P2306614: Cultured in the same manner as S. thermophilus 1131 in Example 1, except for culturing in MRS medium. LG21 (FERM BP-6999): Cultured in the same manner as S. thermophilus 1131 in Example 1, except for culturing in MRS medium. R-1 (FERM BP-10741): Cultured in the same manner as S. thermophilus 1131 in Example 1, except for culturing in MRS medium. 1131 (S. thermophilus 1131): Cultured in the same manner as S. thermophilus 1131 in Example 1. 2038 (L. bulgaricus 2038): Cultured in the same manner as L. bulgaricus 2038 in Example 1.

[0101] The measurement results are shown in Figure 7. Figure 7 suggests that the uptake of nanoplastics was suppressed in all bacterial species and strains compared to the PBS-added group (control) (n=3).

[0102] [Example 8: Inhibition of nanoplastic uptake by heat-treated cells of other bacterial species and strains (2)] Various lactic acid bacteria (L. paracasei YIT9029, B. longum BB536) were cultured, and the cells of Example 4 were cultured and evaluated for their inhibition of nanoplastic uptake as heat-treated cells in the same manner as in Example 4. [Culturing method] L. paracasei YIT9029: Cultured in the same manner as S. thermophilus 1131 in Example 1, except that it was cultured in MRS medium. B. longum BB536: Cultured in the same manner as S. thermophilus 1131 in Example 1, except that it was cultured in GAM medium.

[0103] The measurement results are shown in Figure 8. Figure 8 suggests that the uptake of nanoplastics was suppressed in all bacterial species and strains compared to the control group where no addition was made (n=3).

[0104] [Summary] From the above experimental results, it can be said that lactic acid bacteria, particularly bacteria belonging to the genus Lactobacillus such as Lactobacillus delbrueckii ssp. bulgaricus, and bacteria belonging to the genus Streptococcus such as Streptococcus thermophilus, control the uptake of microparticles into the body (including intracellularly).

[0105] The present invention provides a method for inhibiting the uptake of microparticles into the body and a method for producing a food suitable for inhibiting the uptake of microparticles into the body, which prevents or improves diseases or conditions that can be improved by inhibiting the uptake of microparticles, and supports the maintenance and improvement of health in people who are not yet ill.The present invention can provide a food composition and a method for producing a food for maintaining and improving health.Furthermore, the present invention can improve the nutrition of various people, ensure healthy lives, and promote welfare.

[0106] [Sequences listed in the sequence listing] SEQ ID NO:1 16S rRNA gene, Lactobacillus delbrueckii ssp. bulgaricus 2038 SEQ ID NO:2 16S rRNA gene, Streptococcus thermophilus 1131

Claims

1. A composition for controlling the uptake of microparticles into the body, comprising lactic acid bacteria.

2. The composition according to claim 1, wherein the lactic acid bacteria are selected from the group consisting of bacteria belonging to the genus Lactobacillus, bacteria belonging to the genus Streptococcus, and bacteria belonging to the genus Bifidobacterium.

3. The composition according to claim 1, wherein the lactic acid bacteria are bacteria belonging to Lactobacillus delbrueckii, Lactobacillus paracasei, Lactobacillus gasseri, Streptococcus thermophilus, Lactobacillus paragasseri, Lactobacillus lactis or Bifidobacterium longum.

4. The composition according to claim 1, wherein controlling uptake means inhibiting uptake.

5. The composition according to claim 1, wherein the uptake into the body is into intestinal epithelial cells.

6. The composition of claim 1, wherein the microparticles are nanoplastics or microplastics.

7. The composition according to claim 1 for treating any one selected from oxidative stress, DNA damage, and apoptosis caused by the incorporation of microparticles into the body.

8. A composition according to any one of claims 1 to 7 for use as a probiotic or synbiotic.

9. A method for reducing the risk of developing any one of inflammatory bowel disease, colon cancer, and small intestine cancer, comprising the step of administering a composition containing lactic acid bacteria to a subject, thereby controlling the uptake of microparticles into the body.

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