Using microbial communities for human and animal health
A pre-adapted mixture of bacterial species, including Faecalibacterium prausnitzii and others, addresses the instability of probiotics in the gut by enhancing gut microbiome stability and functionality, effectively treating gastrointestinal disorders through improved intestinal barrier and metabolic regulation.
Patent Information
- Application Number
- JP2023204439
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2016-02-04
- Filing Date
- 2023-12-04
- Publication Date
- 2025-09-11
- Estimated Expiration
- 2037-02-03
AI Technical Summary
Current treatments for gastrointestinal disorders, such as dysbiosis, are inadequate due to the difficulty in maintaining stability and functionality of probiotic strains in the gut microbiome, and existing mixtures of bacteria do not guarantee effective interaction and occupation of functional niches, leading to inconsistent therapeutic outcomes.
A composition consisting of specific bacterial species, including Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae, is administered after pre-adaptation in a fermenter to enhance their interaction and functionality in the gut, thereby stabilizing the gut microbiome and treating gastrointestinal disorders.
The pre-adapted bacterial mixture effectively stabilizes the gut microbiome, enhances intestinal barrier function, reduces inflammation, and improves metabolic homeostasis, providing therapeutic benefits for conditions like IBS, IBD, and other gastrointestinal disorders.
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Abstract
Description
[Technical Field]
[0001] Technical field of the invention The present invention preferably relates to a mixture of bacteria belonging to at least 6 or 7 different specific bacterial species for use in preventing or treating gastrointestinal disorders, more preferably said mixture of bacteria being grown together in a fermenter before administering said mixture to a subject to prevent or treat said disorder. [Background technology]
[0002] Background technology The intestinal ecosystem of humans and animals contains 10 11 The gut microbiome consists of a diverse range of different habitats and metabolic niches colonized by more than 100 microorganisms, primarily anaerobes, known as the microbiota (Macfarlane & Macfarlane, 1997). Today, it is well recognized that the human or animal gut microbiome plays a critical role in human health and well-being by contributing to energy harvesting, regulating the immune system, and establishing colonization resistance against opportunistic pathogens (Fuller & Gibson, 1997; Cummings & Macfarlane, 1997). Evidence exists that the interaction of bacteria and their metabolic products with the mucosal layer and / or intestinal wall is important (Barnett et al. 2012). While the gut microbiome is generally stable over time, its composition can change with external perturbations such as dietary changes, antibiotic use, increased hygiene, and stress.
[0003] This leads to a state of gastrointestinal imbalance called dysbiosis (Clemente et al. 2012). Dysbiosis is characterized by moderate or severe disruption of the normal gut microbiome composition, resulting in the absence of important microbial species, gaps in specific microbial functions, and impaired regulation of intestinal wall activity. This can lead to the colonization of pathogenic microorganisms, causing diarrhea or necrotizing enterocolitis (Sekirov et al. 2008). One extreme form of this pathology is CDAD (Clostridium difficile-associated diarrhea), in which classical antibiotic therapy increasingly fails to cure patients.
[0004] Other consequences of microbial dysbiosis can be chronic inflammation (Willing et al., 2009) or a susceptible immune response leading to food allergies, or increased intestinal permeability, nutrient malabsorption, and even bacteremia. The adverse effects of dysbiosis on microbial functionality and the physiology of the intestinal wall can thus impair human health. In fact, constipation, IBS, IBD, pouchitis, metabolic syndrome, obesity, diabetes, cardiovascular disease, psychiatric conditions, cognitive dysfunction, neurodegenerative diseases, various types of cancer (e.g., colon cancer), inflammation of the female reproductive tract, CDAD, rheumatoid arthritis, and rheumatoid arthritis are all associated with alterations in the activity and composition of the gut microbiota. Therefore, it is clear that dysbiosis should be avoided or treated as soon as it occurs.
[0005] When dysbiosis is associated with the presence of pathogens, the obvious strategy to eliminate microorganisms harmful to health is the application of antibiotics. However, the widespread and inappropriate use of broad-spectrum antibiotics over the past few decades has dramatically increased antibiotic resistance (Brandl et al., 2008). Furthermore, many antibiotics also attack the indigenous gut microorganisms that perform important functions and confer health benefits, thus exacerbating the dysbiotic condition. As a result, the past two decades have seen a significant increase in research into functional foods, particularly the development of prebiotic and probiotic products. Although the concept of prebiotics is attractive because it involves dietary modulation of indigenous gut microorganisms already adapted to the host (Van Loo et al., 1999), it is primarily used in a preventative manner.
[0006] For therapeutic applications, severely disrupted gut microbiomes would benefit more from the introduction of key microbial species rather than providing beneficial substrates for health-promoting species that are less abundant or even absent in affected individuals. A potential solution is the introduction of viable, health-promoting microorganisms called probiotics (Iannitti and Palmieri, 2010). Probiotic products mostly consist of one to several unconnected microbial strains (mostly lactic acid-producing bacteria) with specific functionalities. However, survival of probiotic strains in the harsh conditions of the upper gastrointestinal tract is difficult, and competition with the vast indigenous microbiome is often negligible. However, the concept of introducing new species into compromised gut ecosystems has gained momentum in recent years with the application of fecal microbial transplants (FMT) (Khoruts et al., 2010).
[0007] It involves the transfer of a fecal microbial slurry from a healthy donor to an affected recipient. This form of bacteriotherapy is primarily applied to treat antibiotic-resistant infections and has a cure rate of over 90%. FMT is currently being investigated to treat many other conditions resulting from gastrointestinal dysbiosis (Crohn's disease, obesity, irritable bowel syndrome). FMT appears to function efficiently where single probiotic strains often fail. However, poorly characterized fecal transplantation carries the risk of infectious disease transmission, and its widespread applicability in non-acute, non-fatal conditions is currently being questioned (De Vrieze 2013).
[0008] In early 2013, an alternative to fecal microbial transplantation was proposed in the art with a scientific paper (Petrof et al., 2013) and a patent application (WO2013037068 - Method for the Treatment of Gastrointestinal Disorders) regarding the use of an artificial mixture of microorganisms isolated from individuals based on their culturability as a therapeutic agent for curing CDAD. Such a product would also be composed of a known set of microorganisms, eliminating concerns about disease transmission from fecal transplants if QPS standards were respected. However, mixing microorganisms together does not guarantee that they will interact with each other and occupy the functional niches required for a microbial network. Therefore, product stability, standardization, and performance of critical functions are not guaranteed.
[0009] Patent application WO2014145958A2 (Network-Based Microbial Compositions and Methods) proposes administering an effective amount of a therapeutic bacterial composition, a plurality of isolated bacteria, or a purified bacterial preparation to a mammalian subject in need thereof. The plurality of isolated bacteria or purified bacterial preparation can form a so-called network ecology. The bacteria belonging to this preparation are selected based on genomic information and provided to the mammalian subject as a loosely assembled set of strains.
[0010] In a publication by Becker et al. (2011), a community consisting of eight different strains was described: Anaerostipes caccae, Bacteroides thetaiotaomicron, Bifidobacterium longum, Blautia producta, Clostridium butyricum, Clostridium ramosum, Escherichia coli, and Lactobacillus plantarum. The community was called SIHUMIx (Simplified Human Microbiota extended). This artificial microbial community was tested in a rat study, comparing SIHUMIx-inoculated rats with conventional human-associated and germ-free rats. The authors claim that the community is representative of the human colon-associated microbiota in terms of composition and functionality. The microbial community evolved according to the rats' age, reaching a stable composition over time.
[0011] Van den Abbeele et al. (2013) proposed the possibility of creating glycan-degrading communities using conventional in vitro fermenters that can be inoculated with a mixture of appropriate key species and cross-feeding microorganisms. After inoculation and stabilization, such microbial network units for specific functions can be achieved and produced on a large scale.
[0012] Finally, Newton et al. (1998) used an anaerobic chemostat to create a reproducible, defined bacterial community containing 14 different sugar-hydrolyzing and amino acid-fermenting species (i.e., Bifidobacterium longum, Bif. adolescentis, Bif. pseudolongum, Bif. infantis, Bacteroides thetaiotaomicron, Bact. vulgatus, Lactobacillus acidophilus, Enterococcus faecalis, Enterococcus faecium, Escherichia coli, Clostridium perfringens, Cl. butyricum, Cl. innocuum, and Cl. bifermentans) and studied the effects of the sulfate-reducing bacterium (SRB), Desulfovibrio desulfuricans, on intestinal organisms.
[0013] However, there remains a need to design alternative and specific mixtures of bacterial species that can be effectively used to prevent or treat gastrointestinal disorders. Furthermore, it is not entirely clear whether pre-adapted mixtures will perform therapeutically worse or better when compared to administering loosely assembled, non-pre-adapted mixtures of the same bacterial species. Summary of the Invention
[0014] Summary of the Invention In a first instance, the present invention relates to a composition consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum and Anaerostipes caccae, preferably for use in preventing or treating symptoms associated with gastrointestinal disorders.
[0015] In other words, the present invention relates to a method for preventing or treating symptoms associated with gastrointestinal disorders in a subject in need thereof, comprising administering a therapeutically effective amount of a composition consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae.
[0016] The present invention further relates to the above composition, wherein the gastrointestinal disorder is a disruption of intestinal barrier function, diarrhea, constipation, irritable bowel syndrome, inflammatory bowel disease, Crohn's disease, ulcerative colitis, celiac disease, pouchitis, mucositis, intestinal infection, gut microbiota dysbiosis, and any combination thereof.
[0017] The present invention also relates to the above composition, wherein the gastrointestinal disorder is prevented or treated via a) stimulating the growth and / or activity of one or a limited number of beneficial bacteria in the intestinal tract, b) inhibiting the growth and / or activity of one or a limited number of pathogenic bacteria in the intestinal tract, c) relatively increasing the adhesion of non-pathogenic bacteria to the mucosa of gastrointestinal surfaces, d) reducing the uncontrolled uptake of antigens, pro-inflammatory substances, bacteria or bacterial products by the intestine, e) providing anti-inflammatory activity at the intestinal surface, f) increasing intestinal barrier function, g) producing bacterial metabolites, or h) any combination of a) to g).
[0018] The present invention also relates to the above composition, wherein bacteria belonging to the species Roseburia hominis are excluded from the composition. The present invention further relates to the above-mentioned composition, wherein bacteria belonging to the species Escherichia coli, Enterococcus faecium, Lactobacillus mucosae, Bifidobacterium adolescentis, Bifidobacterium longum, Bacteroides thetaiotaomicron and Bacteroides vulgatus are further added to the composition.
[0019] The present invention further relates to the above compositions, further comprising one or more prebiotics. In a preferred embodiment, the present invention relates to the above-described composition, wherein the bacteria have been pre-acclimated by growing them together in a fermenter prior to administering the composition to prevent or treat the gastrointestinal disorder. In this regard, the present invention further relates to the composition as described above, wherein said fermenter is a dynamic simulator of the gastrointestinal tract.
[0020] More specifically, the present invention relates to a method for the preparation of a medicament ... ZJ316, Anaerostipes caccae LMG P-29359, Anaerostipes caccae DSMZ 14662 and / or a strain exhibiting at least 97% sequence identity with the 16S rRNA sequence of at least one of said strains.
[0021] The present invention further relates to the above composition, wherein said composition is a pharmaceutical composition formulated as either a rectal administration form or an orally ingested form. In this regard, the present invention further relates to the above composition, wherein the oral intake form is a capsule, microcapsule, tablet, granule, powder, troche, pill, suspension or syrup. The present invention further relates to the above compositions incorporated into a food, beverage, food supplement or dietary supplement. The present invention more specifically relates to a method for manufacturing a pharmaceutical composition comprising: 5 ~10 11 The composition comprises colony forming units of bacteria. [Brief explanation of the drawings]
[0022] BRIEF DESCRIPTION OF THE DRAWINGS [Figure 1] Figure 1: Schematic diagram of the SHIME® unit, consisting of the stomach, small intestine, and three individual colonic regions. Liquid SHIME® nutrient medium and pancreatic juice enter compartments simulating the stomach and small intestine, respectively. After a defined residence time within these sterile compartments, the suspension proceeds to three successive colonic compartments: the ascending, transverse, and descending colonic compartments, each characterized by a different pH and residence time. These compartments are inoculated with human fecal microbiota. All vessels are kept anaerobic by flushing the headspace with N2, continuously stirred, and maintained at 37°C.
[0023] [Figure 2] Figure 2: Butyrate production by 23 different compositions over 24 h of incubation (upper panel) and their effect on the transepithelial electrical resistance (TEER) of Caco-2 cells cultured in the presence of THP1 cells (lower panel). For the latter, samples collected from 23 after 24 h of incubation were sterile filtered and added for 24 h (1:5 v / v) to the apical compartment of Caco-2 cells grown for 14 days on semipermeable inserts and placed on top of PMA-stimulated THP1-derived macrophages (co-culture). Growth medium alone (DMEM) was used as a control. THP1 cells cultured for 48 h in the presence of PMA induce damage to Caco-2 cells, as measured by a decrease in TEER in the DMEM control. TEER values were normalized to the value measured before co-culture (0 h) and are expressed as a percentage of the initial value. The coding of the different compositions was as follows: MX-Y, where X = the number of isolates present in the composition and Y = the unique composition A, B, C, etc. containing X isolate.
[0024] [Figure 3]Figure 3: Butyrate production during 24 and 48 hours of incubation in conditioned SHIME® nutrient medium with either the complete seven-species composition or the six-species composition, each time omitting one of the original seven species. Results are presented as the percentage of butyrate production detected in each incubation with the six-species composition relative to the full seven-species composition. Compositions are referred to as "Total" (all seven species) or "Total-X," where X is the species omitted from the total composition. *: p<0.05 compared to "Total" at 24 hours; #: p<0.05 compared to "Total" at 48 hours.
[0025] [Figure 4] Figure 4: Levels (mM) of butyrate, propionate, and acetate produced by compositions after 5 days of anaerobic incubation in conditioned SHIME® nutrient medium. Compositions were produced by either the "assembly" strategy (left panel) or the "collaborom" strategy (right panel).
[0026] [Figure 5] Figure 5: Evolution of propionic acid (left panel) and butyric acid (right panel) levels (mM) over 14 days in three independent production cycles of the composition by the "Collaborome" strategy. During initial growth in appropriate culture medium, the strains of the composition were mixed, inoculated, and cultivated in triplicate for 14 days in a SHIME® device consisting of a single colonic region at pH 6.15-6.4.
[0027] [Figure 6] Figure 6: Evolution of SCFA levels, expressed as mole % of acetate, propionate, and butyrate, during the production of the composition by the alternative "Collaborome" strategy. Following initial growth in the appropriate culture medium, the composition strains were mixed, inoculated, and cultivated in triplicate for 8 days in a single fermentor operated in fed-batch mode. At specific intervals of 16 hours, 40% (v:v) of the growth medium was replaced with conditioned SHIME® nutrient medium.
[0028] [Figure 7] Figure 7: Production of acetate, propionate, butyrate, and total short-chain fatty acids (SCFAs) (mM) during 24 h of incubation using (i) sterile basal medium (upper panel) or sterile medium supplemented with (ii) microbiota derived from the SHIME colonic region (middle panel) or (iii) fecal microbiota (lower panel). Different treatments with compositions produced by the "Collaborome" strategy were applied in the range of 0% to 4% and 20% of the total incubation volume.
[0029] [Figure 8] Figure 8: Evolution of the levels (mM) of acetate (upper panel), propionate (middle panel), and butyrate (lower panel) in antibiotic recovery experiments in M-SHIME®. Following induction of dysbiosis in SHIME®-derived colonic microbiota by administration of a cocktail of antibiotics (40 / 40 / 10 mg / L amoxicillin / ciprofloxacin / tetracycline, respectively), the dysbiotic microbiota was treated for 5 days with compositions produced by either the "assembly" or "collaborome" strategy (day 1 = start of composition administration). Results are expressed as the delta of SCFA levels in SHIME at each time point relative to the value before antibiotic administration.
[0030] [Figure 9] Figure 9: Levels (mM) of acetate (upper panel), propionate (middle panel), and butyrate (lower panel) in an IBD-associated dysbiosis recovery experiment in M-SHIME®. Three independent SHIME® colon vessels were inoculated with fecal material from ulcerative colitis patients. Simultaneously, a single dose of a composition produced by either the "assembly" or "collaborome" strategy was added to each SHIME colon vessel. A third experiment was run in parallel as a control experiment in which no composition was administered. Production of acetate, propionate, and butyrate continued for 1 and 2 days after administration of the composition.
[0031] [Figure 10]Figure 10: Evolution of acetate, propionate, and butyrate levels (mol%) in an antibiotic withdrawal experiment in C57 / BL6 mice. After a control period in which mice were fed a standard diet, gut microbiota dysbiosis was induced by adding clindamycin (250 mg / L) to the drinking water for 5 days. After this, mice (n = 10 per group) were orally gavaged for 5 days with either saline (control without bacterial intervention; left panel), a composition produced by the "Collaborome" strategy (center panel), or an expanded composition produced by the "Collaborome" strategy (right panel). Mouse fecal samples obtained from the same intervention group were pooled, and acetate, propionate, and butyrate levels were quantified.
[0032] [Figure 11] Figure 11: Evolution of the Disease Activity Index (DAI) and body weight change in a TNBS-induced colitis experiment in C57 / BL6 mice. After a one-week acclimation period, during which mice were fed a standard diet, the experiment began. Each group (n=9 / group) was treated by oral gavage for five consecutive days. Prophylactic administration of all treatments began one day before rectal administration of 2 mg of TNBS / 50% EtOH and continued for four days after TNBS administration until the mice were sacrificed. The following treatments were included: TNBS + saline (vehicle TNBS control); TNBS + composition produced by the "assembly" strategy; and TNBS + composition produced by the "collaborome" strategy. A conventional group (no TNBS treatment but treated with saline) was included as a vehicle control.
[0033] [Figure 12]Figure 12: Disease Activity Index (DAI) development in a DSS-induced chronic colitis experiment in C57 / BL6 mice. The experiment began after a one-week acclimation period during which mice were fed a standard diet. Each group (n = 10 / group) was treated by oral gavage three times a week for eight consecutive weeks. Prophylactic administration of all treatments began one week before the first DSS cycle. The first DSS cycle began in week 2 and included one week of DSS administration (0.25% in drinking water) followed by two weeks of recovery. This first cycle was followed by an identical second DSS cycle. The third DSS cycle consisted of one week of DSS administration followed by one week of recovery, after which the animals were sacrificed. The following treatments were included: DSS + saline solution (vehicle DSS control); DSS + a composition produced by the "Collaborome" strategy. A conventional group (no DSS treatment, treated with saline) was included as a vehicle control. DETAILED DESCRIPTION OF THE INVENTION
[0034] Description of the Invention The gut microbiome comprises hundreds of microbial species that coexist within various organisms and interact with each other and the host. Currently, it is generally believed that the gut microbiota plays an important role in human health and disease by regulating metabolic function and immune homeostasis (Cenit et al., 2014). Several studies have investigated these complex gut microbial communities in an attempt to define a "core microbiome," suggesting that all human individuals share a critical number of essential species or strains that define the functional capabilities of a healthy gut microbiome (Kinross et al., 2011). Based on this concept (i.e., all humans inhabit a "core microbiome"), the extensive literature available on the composition and function of the gut microbiota (e.g., keystone species, mucosal versus luminal microbiota, proximal versus distal colon bacteria, etc.), and functional genomic analyses, we have been able to identify a list of candidate microorganisms that encompass the major functions of the complex human gut microbiome.
[0035] In a first example, the present invention relates to a specific selection of a subgroup of bacterial species of the human gut microbiome that has a particular surprising effect. More specifically, the present invention relates to a composition consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae, preferably for use in preventing or treating symptoms associated with gastrointestinal disorders. The term "consisting essentially of" indicates that the composition may contain other bacterial species and / or other ingredients, as long as they do not adversely affect the effect of the composition (i.e., preventing or treating symptoms associated with gastrointestinal disorders). In one embodiment, the composition of the present invention comprises bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum and Anaerostipes caccae.
[0036] In another embodiment, the composition of the present invention comprises bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum and Anaerostipes caccae.
[0037] The bacterial species Faecalibacterium prausnitzii (Duncan et al. 2002), Butyricicoccus pullicaecorum (Eeckhaut et al. 2008), Roseburia inulinivorans (Duncan et al. 2006), Roseburia hominis (Duncan et al. 2006), Akkermansia muciniphila (Derrien et al. 2004), Lactobacillus plantarum (Walter 2008), and Anaerostipes caccae (Schwiertz et al. 2002) are well known to those skilled in the art. The term "conditions associated with gastrointestinal disorders" refers to health problems in humans and animals. The use of the compositions of the present invention leads to the prevention / recovery of dysbiosis, more specifically, by positively regulating the interaction between bacteria and the intestinal surface. The result is improved function of the intestinal surface: e.g., barrier, hormonal, immune function. The onset of effect on the intestinal surface is faster when a "pre-adapted composition" is administered compared to a "loosely assembled set of the same strains" (see further). As used herein, modulating or improving the barrier, hormonal, or immune function of the intestinal surface is meant to include altering any parameter that affects the normal homeostasis of the intestinal surface, particularly its role in the first line of defense against invasion by pathogens, antigens, or other harmful substances, and its role in producing substances (e.g., immune molecules, hormones) that have a systemic effect on the host.
[0038] The parameters include, but are not limited to: - stimulation of the growth and / or activity of one or a limited number of beneficial bacteria in the intestinal tract (e.g. lactobacilli, bifidobacteria, butyrate- or propionate-producing bacteria, etc.); - Inhibition of the growth and / or activity of one or many pathogenic bacteria in the intestinal tract; - a relative increase in the adhesion of non-pathogenic bacteria to the mucous membrane of the intestinal surface; - Reduction of uncontrolled uptake of antigens, pro-inflammatory molecules, bacteria or bacterial products from the intestine, - Regulation of gut-associated lymphoid tissue (GALT) and the host's systemic immune system; - production of certain bacterial metabolites (e.g., propionate, butyrate); and - Regulation of the production of certain intestinal signaling molecules (e.g., proglucagon, GLP-1, GLP-2, FIAF) that directly or indirectly regulate metabolic homeostasis; Includes.
[0039] The present invention therefore relates to the above-mentioned composition, wherein said gastrointestinal disorder is prevented or treated via a) stimulating the growth and / or activity of one or a limited number of beneficial bacteria in the intestinal tract, b) inhibiting the growth and / or activity of one or a limited number of pathogenic bacteria in the intestinal tract, c) relatively increasing the adhesion of non-pathogenic bacteria to the mucous membranes of gastrointestinal surfaces, d) reducing the uncontrolled uptake of antigens, pro-inflammatory substances, bacteria or bacterial products by the intestine, e) providing anti-inflammatory activity at the intestinal surface, f) increasing intestinal barrier function, g) producing bacterial metabolites, or h) any combination of a) to g).
[0040] Health conditions that may be associated with common gastrointestinal disorders include, but are not limited to, constipation, irritable bowel syndrome (IBS), inflammatory bowel disease (IBD), gut microbiota dysbiosis, mucositis, metabolic syndrome, obesity, diabetes, cardiovascular disease, chronic fatigue syndrome, psychiatric conditions, cognitive dysfunction, neurodegenerative diseases, forms of cancer, autoimmune conditions, immune dysfunction, rheumatism, rheumatoid arthritis, inflammation of the female reproductive tract, and pathogenic infections (bacterial, viral, and fungal). Examples of neurodegenerative diseases include, but are not limited to, ALS, dementia, Alzheimer's disease, Parkinson's disease, and Huntington's disease. Examples of cancer types include, but are not limited to, lung cancer, breast cancer, prostate cancer, pancreatic cancer, and, particularly, colorectal cancer. Examples of autoimmune diseases include, but are not limited to, multiple sclerosis, atopic dermatitis, celiac disease, psoriasis, and lupus.
[0041] Based on the observation that the composition of the present invention enhances the interaction and / or activity of non-pathogenic bacteria on the mucosal layer of the gastrointestinal epithelium, it is assumed that the preparation is particularly useful for improving the barrier function of the intestinal surface, for example, for preventing or reducing the uncontrolled intestinal uptake of antigens, pro-inflammatory molecules, pathogenic bacteria, or bacterial products. One such indication with impaired mucosal barrier is inflammatory bowel disease. In inflammatory bowel disease, it is generally recognized that impaired mucosal damage is one of the key factors leading to these chronic indications, and therefore the composition of the present invention has a beneficial effect on said indication. Therefore, an object of the present invention is to provide a use of the composition of the present invention in the prevention and treatment of conditions associated with impaired barrier function and characterized by the uncontrolled intestinal uptake of antigens, pro-inflammatory molecules, pathogenic bacteria, or bacterial products.
[0042] As used herein, "inflammatory bowel disease," also referred to as "chronic colon disease," includes any condition characterized by persistent mucosal inflammation at various levels of the gastrointestinal tract, such as inflammatory bowel syndrome, mucositis, gastric ulcers, Crohn's disease, ulcerative colitis, colorectal cancer, and pouchitis.
[0043] Mucositis is generally recognized as an adverse event of chemotherapy and radiotherapy or stem cell transplantation, and is essentially characterized by inflammation of the mucosal surface covering the mouth and gastrointestinal tract, so it is assumed that the application of the composition of the present invention will have a beneficial effect on the indication.Therefore, the object of the present invention is to provide the use of the composition of the present invention in the prevention and treatment of conditions related to mucositis.Mucositis can occur anywhere along the gastrointestinal tract.When it occurs in the oral cavity, it is typically called oral mucositis.
[0044] It is envisaged that an application of the compositions of the present invention is to provide protection against invasion by antigens that cause allergic reactions, where such allergens may include certain food substances, chemicals and other molecules. Thus, in a further embodiment, the present invention provides for the use of the compositions in the prevention and treatment of conditions associated with invasion by antigens that cause allergic reactions (e.g., food allergies, asthma, eczema).
[0045] Furthermore, application of the composition is expected to affect both the gut-associated lymphoid tissue (GALT) and the systemic immune system. Among other effects, this may result in a decrease in the expression of proinflammatory cytokines, an increase in the production of immunomodulatory factors, and an improvement in lymphocyte activity. Therefore, the composition is expected to be particularly useful for improving the development and function of the host immune system.
[0046] In another aspect of the present invention, based on the observation that the composition of the present invention regulates epithelial barrier and subsequently reduces chronic inflammation, it is assumed that the composition is particularly useful for controlling and improving metabolic homeostasis.The non-limiting effects of the preparation on metabolic homeostasis include controlling food intake and fat and glucose metabolism, improving insulin secretion and sensitivity, and controlling cholesterol synthesis and metabolism.Therefore, the object of the present invention is to provide the use of the composition of the present invention in controlling food intake, inducing satiety, controlling weight, and preventing and treating conditions related to impaired metabolic homeostasis, such as obesity and type 2 diabetes.
[0047] Based on the observation that the compositions of the present invention reduce several established causative risk factors for cardiovascular disease (CVD), another aspect of the present invention contemplates that the compositions are particularly useful for preventing CVD. While CVD technically refers to any disease affecting the cardiovascular system, it is commonly used to refer to diseases associated with atherosclerosis. The latter is a syndrome affecting arterial blood vessels, resulting in a chronic inflammatory response in the walls of arteries, largely due to the accumulation of macrophage leukocytes and promoted by low-density lipoproteins. The development of CVD depends on multiple mechanisms, and many distinct causative risk factors have been identified. These factors include, but are not limited to, elevated LDL cholesterol, plasma triglycerides, metabolic diseases (obesity, diabetes, etc.), chronic inflammation, and oxidative stress. The latter two factors are particularly important. Atherosclerosis develops from LDL (LDL-ox) oxidized by free radicals, particularly oxygen free radicals, in the context of oxidative stress. An exaggerated immune system response to LDL-ox-induced damage in the context of chronic inflammation further promotes the progression of the disease. It is therefore an object of the present invention to provide the use of the compositions of the present invention in the prevention or treatment of CVD.
[0048] In a further aspect, considering the beneficial effect of the compositions of the present invention on the adhesion of normal microflora to mucosal layers, it is envisioned that application of the compositions provides protection against mucoadhesion and invasion by pathogens, including, but not limited to, Bacillus anthracis, Bacillus cereus, Bordetella pertussis, Borrelia burgdorferi, Brucella abortus, Brucella canis, Brucella melitensis, Brucella suis, Campylobacter jejuni, Chlamydia pneumonia, Chlamydia trachomatis, Chlamydophila psittaci, Clostridium botulinum, Clostridium difficile, Clostridium perfringens, Clostridium tetani, Corynebacterium diphtheria, enterotoxigenic Escherichia coli (ETEC), enteropathogenic E. coli, E.coli O157:H7;Francisella tularensis;Haemophilus influenza;Helicobacter pylori;Legionella pneumophila;Leptospira interrogans;Listeria monocytogenes;Mycobacterium leprae;Mycobacterium tuberculosis;Mycoplasma pneumonia;Neisseria gonorrhoeae;Neisseria meningitides;Pseudomonas aeruginosa;Rickettsia rickettsia;Salmonella typhi;Salmonella typhimurium;Shigella sonnei;Staphylococcus aureus;Staphylococcus epidermidis;Staphylococcus saprophyticus;Streptococcus agalactiae;Streptococcus pneumonia;Streptococcus pyogenes;Treponema pallidum;Vibrio cholera;Yersinia pestis; Candida spp.; Norovirus (Norwalk Virus); Hepatitis A; and viruses that cause smallpox, influenza, mumps, measles, chickenpox, Ebola, and rubella. Thus, in a further aspect, the present invention provides the use of the compositions of the present invention in the prevention and treatment of conditions associated with mucosal adhesion and invasion by pathogens; in particular, in the treatment and prevention of acquired diarrhea and traveler's diarrhea.
[0049] The present invention therefore relates to a method for preventing or treating symptoms associated with gastrointestinal disorders in a subject in need thereof, comprising administering a therapeutically effective amount of a composition consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae.
[0050] The term "subject in need" refers to a human or non-human animal having a gastrointestinal disorder as described above. The term "therapeutically effective amount" refers to the minimum combined total amount of seven bacterial species that can exert its preventative or therapeutic effect. The seven bacterial species are listed below: Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae. However, "therapeutically effective amount" also refers to the minimum combined total amount of the six bacterial species listed below: Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae.
[0051] Depending on the final application, the combined total amount may be the result of equal amounts of each of the seven bacterial species, or may be the result of unequal amounts of the seven bacterial species, with each single species of the seven bacterial species having a minimum abundance of 0.0001% of the combined total amount, more preferably a minimum abundance of 0.001% of the combined total amount, and most preferably a minimum abundance of 0.01% of the combined total amount. Thus, for example, if six species have an abundance of 10.00% of the combined total amount, the seventh species has an abundance of 40.00% of the combined total amount. Depending on the final application, the combined total amount may be 10. 2 ~10 14 Daily dose range of bacterial cells, preferably 10 3 ~10 13 Daily dose range of bacterial cells, more preferably 10 4 ~10 12 Daily dose ranges of bacterial cells, and most preferably 10 5 ~10 11 Daily dose range of bacterial cells.
[0052] The present invention further relates to the above composition, wherein bacteria belonging to the species Roseburia hominis have been excluded from said composition, the term "excluded" specifically referring to creating a composition of six bacterial species as further shown in the Examples section without adding or removing the seventh species, Roseburia hominis. The present invention further relates to the above composition, wherein bacteria belonging to the genus Escherichia coli, Enterococcus faecium, Lactobacillus mucosae, Bifidobacterium adolescentis, Bifidobacterium longum, Bacteroides thetaiotaomicron and Bacteroides vulgatus are further added to the composition.
[0053] The bacterial species Escherichia coli (Rath et al. 1999), Enterococcus faecium (Schleifer et al. 1984), Lactobacillus mucosae (Roos et al. 2000), Bifidobacterium adolescentis (Scharek et al. 2000), Bifidobacterium longum (Bahaka et al. 1993), Bacteroides thetaiotaomicron (Scharek et al. 2000) and Bacteroides vulgatus (Rath et al. 1999) are well known to those skilled in the art. The present invention further relates to the above compositions, further comprising one or more prebiotics.
[0054] The term "prebiotic" refers to any chemical that induces the growth or activity of microorganisms (e.g., bacteria) that contribute to the health of their host. Thus, prebiotics can affect or alter the composition of organisms in the gut microbiome. However, it is a more general term that can, in principle, also refer to other areas of the body. Typical, but not limiting, prebiotics are non-digestible fiber compounds that stimulate the growth or activity of beneficial bacteria that colonize the large intestine by acting as a substrate for them, at least partially passing undigested through the upper gastrointestinal tract.
[0055] In a preferred embodiment, the present invention relates to the above-mentioned composition, wherein the bacteria are grown together in a fermenter before administering the composition to prevent or treat the gastrointestinal disorder. The latter composition is also called a "collaborome strategy" or an "alternative collaborome strategy" (see further). In contrast, a composition in which the bacteria are not grown together in a fermenter before administration is called an "assembly strategy" (see further). In this regard, the present invention further relates to a composition as described above, in which said fermenter is a dynamic simulator of the gastrointestinal tract. In this particular case, the latter composition is also called the "collaborome strategy" (see further).
[0056] SHIME® (Simulator of the Human Microbial Ecosystem) is a dynamic in vitro model of the human gastrointestinal tract composed of five double-jacketed vessels simulating the stomach, small intestine, and three colonic regions (ascending, transverse, and descending colon) with a total retention time of 72 hours (Figure 1). Three times daily, 140 ml of SHIME® feed and 60 ml of pancreatic juice were added to the stomach and small intestinal compartments, respectively (Van den Abbeele et al., 2010). After an initial 2-week stabilization period, allowing the microbiota to adapt to the imposed in vitro conditions, the isolation procedure began. Therefore, selected microbial strains of the present invention can be inoculated under standardized conditions representative of the GI tract in single-stage (alternative collaborome strategy) or multistage reactors or dynamic simulators of the gastrointestinal tract (e.g., SHIME® or M-SHIME®, collaborome strategy).
[0057] Thus, the present invention relates to a reactor containing a composition comprising, consisting of, or consisting essentially of bacteria belonging to up to 6 or 7 or 14 species as defined herein and further listed below: - comprising a composition comprising, consisting of, or consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae, or - comprising a composition comprising, consisting of or consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Akkermansia muciniphila, Lactobacillus plantarum and Anaerostipes caccae, or - compositions comprising, consisting of, or consisting essentially of bacteria belonging to the species Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, Lactobacillus plantarum, Anaerostipes caccae, Escherichia coli, Enterococcus faecium, Lactobacillus mucosae, Bifidobacterium adolescentis, Bifidobacterium longum, Bacteroides thetaiotaomicron, and Bacteroides vulgatus.
[0058] In a preferred embodiment, the reaction vessel containing the composition is under standardized conditions representative of the GI tract, as defined below. Parameters characterizing standardized conditions include, but are not limited to, pH (ranging from 1.5 to 8); availability of a carbon source (either carbohydrate or protein, or a combination thereof); retention time in a specific reaction vessel (ranging from 10 minutes to 200 hours); oxygen availability (ranging from 0 to 8 g / L); availability of micronutrients; presence / absence of antibiotics; bile salt concentration (ranging from 0 to 20 mM); presence of heavy metals; and presence of host factors such as immune molecules. In preferred embodiments, parameters characterizing standardized conditions include pH, retention time in a specific reaction vessel, and bile salt concentration, all of which are defined herein above. Depending on the complexity of the collaborome, a period of 1 to 15 days is required to obtain a functionally stable collaborome. On average, to develop a collaborome composed of 7 to 14 members, a period of 3 to 10 days is sufficient to obtain a functionally stable collaborome (depending on environmental conditions). The compositions defined herein can therefore be obtained after 3 to 10 days of incubation or culturing under conditions where the pH, retention time in a particular reactor, and bile salt concentration are set as defined herein. Such a process allows for the production of functionally stable compositions or collaboromes. In the context of the present invention, a "functionally stable collaborome" is a composition as defined herein that still contains the initial various number of species of bacteria after at least 3 or 5 or 10 days of culture.
[0059] In a further aspect, a reactor is provided that operates under standardized conditions representative of the GI tract, including a pH range of 1.5 to 8; carbon source availability; retention time of 10 minutes to 200 hours; oxygen availability of 0 to 8 g / L; micronutrient availability; presence / absence of antibiotics; bile salt concentration between 0 and 20 mM; presence of heavy metals; and presence of host factors as immune molecules. In one embodiment, the reactor is such that the parameters characterizing the standardized conditions include pH, retention time in a particular reactor, and bile salt concentration, as defined in the preceding paragraph. In one embodiment, the reactor contains a composition of 5 to 20 distinct bacterial members, or 6 to 14 distinct bacterial members, or 5 to 15 distinct bacterial members. In preferred embodiments, the composition is allowed to remain in the reactor for 3 to 14 days, or 3 to 10 days, to obtain a functionally stable collaborome.
[0060] More specifically, the present invention relates to compositions and uses of sets of microbial strains that have specific functional characteristics and that result in faster biotherapy onset and higher efficacy compared to loosely assembled sets of the same strains (= "assembly strategies") that are pre-adapted to work together to prevent or treat human and animal health problems. Such sets of microorganisms that are pre-adapted to work together are referred to as "collaborome strategies" or "alternative collaborome strategies."
[0061] In other words, the present invention relates to pre-adapted compositions of a set of microbial strains, preferably for use to significantly reduce the time to initiation of biotherapy and / or to significantly increase the efficacy of treatment of dysbiosis, compared to a loosely assembled set of the same microbial strains.
[0062] The term "significantly shortening the time to biotherapy initiation" means that pre-acclimation allows a set of microorganisms to exert their functionality at least 5% faster (on a time scale), preferably at least 10% faster, more preferably at least 20% faster, and most preferably at least 30% faster, compared to a loosely assembled set of the same strains. Any value less than 5% is considered physiologically irrelevant.
[0063] The term "significantly increasing the effectiveness of treatment" means that pre-acclimation allows the set of microorganisms to exert their functionality at least 5% more effectively, preferably at least 10% more effectively, more preferably at least 20%, and most preferably at least 30% more effectively. Efficacy depends on the endpoint for which the set of microorganisms is designed. Possible functionalities include, but are not limited to, short-chain fatty acid (SCFA) production; improved intestinal barrier permeability; reduction / increase of pro-inflammatory cytokines; increase of anti-inflammatory cytokines; reduction of pathogen concentration (at least 0.5 log); reduction of gas production; stimulation of specific intestinal wall receptors, etc. Any value below 5% is considered physiologically irrelevant.
[0064] Thus, the present invention more particularly relates to a method for preventing or treating dysbiosis in humans and animals in need thereof, comprising administering to said human or animal a therapeutic amount of a pre-adapted composition of a set of microbial strains, said treatment resulting in faster onset and / or increased efficacy of biotherapy compared to administration of a loosely assembled set of the same microbial strains.
[0065] More specifically, the present invention relates to a method for the preparation of a medicament ... ZJ316, Anaerostipes caccae LMG P-29359, Anaerostipes caccae DSMZ 14662 and / or a strain exhibiting at least 97% sequence identity with at least one 16S rRNA sequence of said strains.
[0066] The strains shown above with accession numbers LMG P-29362, LMG P-29360, LMG P-29365, LMG P-29364, LMG P-29361, LMG P-29366 and LMG P-29359 have been deposited at the BCCM / LMG Laboratorium voor Microbiologie, Universiteit Gent (UGent), KL Ledeganckstraat 35, B-9000 Gent, Belgium. The strains shown above, having accession numbers DSMZ 17677, LMG24109, DSMZ 16841, DSMZ 16839, DSMZ 22959, ZJ316 and DSMZ 14662, have been deposited in public collections, are centrally described and are accessible to those skilled in the art worldwide.
[0067] It should be further apparent that variants of the strains exhibiting at least 97% (i.e., 97, 98, 99%) sequence identity to the corresponding strain's 16S rRNA sequence are also part of the present invention. Examples for determining such sequence "homology" are described, for example, in Eeckhaut et al. (2008). The term "16S rRNA" as used herein refers to a nucleic acid sequence of approximately 1,542 nucleotides that is a component of the prokaryotic ribosomal small subunit (30S). 16S rRNA is known to act as a scaffold for positioning ribosomal proteins. Because 16S rRNA sequences are known to be highly conserved, they are commonly used for phylogenetic studies. Comparative analysis of 16S rRNA sequences from thousands of organisms has demonstrated the existence of oligonucleotide signature sequences. The term "homology" as used herein refers to the sequence similarity of nucleic acids. For example, two nucleic acids generally exhibit 100% homology if they have identical sequences. A change in the sequence of one nucleotide of a nucleic acid reduces the percentage of homology. In general, the percentage of homology quantifies the degree of identity between two nucleic acid sequences.
[0068] Sequence identity or sequence homology is defined herein as the relationship between two or more amino acid (polypeptide or protein) sequences or two or more nucleic acid (polynucleotide) sequences, as determined by comparing the sequences. Usually, sequence identity or similarity is compared over the entire length of the sequences being compared. In the art, "identity" also means the degree of sequence relatedness between amino acid or nucleic acid sequences, as the case may be, as determined by the match between strings of such sequences. The "similarity" between two amino acid sequences is determined by comparing the amino acid sequence of one polypeptide and its conserved amino acid substitutes with the sequence of a second polypeptide. "Identity" and "similarity" can be easily calculated by various methods known to those skilled in the art. In a preferred embodiment, sequence identity is determined by comparing the entire length of the sequences identified herein.
[0069] The preferred method for determining identity is designed to maximize the match between the sequences tested. Methods for determining identity and similarity are compiled in publicly available computer programs. Preferred computer program methods for determining identity and similarity between two sequences include, for example, BestFit, BLASTP, BLASTN, and FASTA (Altschul, SF et al., J. Mol. Biol. 215:403-410 (1990)), which are publicly available from NCBI and other sources (BLAST Manual, Altschul, S., et al., NCBI NLM NIH Bethesda, MD 20894). The most preferred algorithm used is EMBOSS (http: / / www.ebi.ac.uk / emboss / align). The preferred parameters for amino acid sequence comparison using EMBOSS are gap open 10.0, gap extension 0.5, and Blosum 62 matrix. Preferred parameters for nucleic acid sequence comparison using EMBOSS are: Gap open 10.0, Gap extension 0.5, DNA complete matrix (DNA identity matrix).
[0070] Optionally, in determining the degree of amino acid similarity, those skilled in the art may also take into account the so-called "conservative" amino acid substitution that is obvious to those skilled in the art.Conservative amino acid substitution refers to the interchangeability of residues with similar side chains.For example, the group of amino acids with aliphatic side chains is glycine, alanine, valine, leucine, and isoleucine; the group of amino acids with aliphatic-hydroxyl side chains is serine and threonine; the group of amino acids with amide-containing side chains is asparagine and glutamine; the group of amino acids with aromatic side chains is phenylalanine, tyrosine, and tryptophan; the group of amino acids with basic side chains is lysine, arginine, and histidine; the group of amino acids with sulfur-containing side chains is cysteine and methionine.Preferred conservative amino acid substitution groups are valine-leucine-isoleucine, phenylalanine-tyrosine, lysine-arginine, alanine-valine, and asparagine-glutamine. Substitutional variants of the amino acid sequences disclosed herein are those in which at least one residue in the disclosed sequences has been removed and a different residue inserted in its place. Preferably, the amino acid changes are conservative. Preferred conservative substitutions for each of the naturally occurring amino acids are as follows: Ala to Ser; Arg to lys; Asn to gln or his; Asp to glu; Cys to ser or ala; Gln to asn; Glu to asp; Gly to pro; His to asn or gln; Ile to leu or val; Leu to ile or val; Lys to arg; gln to glu; Met to leu or ile; Phe to met, leu, or tyr; Ser to thr; Thr to ser; Trp to tyr; Tyr to trp or phe; and Val to ile or leu.
[0071] Those skilled in the art are familiar with the fact that 16S rRNA sequences can be deposited online, for example, in GenBank (http: / / www.ncbi.nlm.nih.gov / genbank / ), and can be searched based on their unique accession numbers to use the 16S rRNA sequence as a reference in assessing sequence homology, for example, as described by Eeckhaut et al. (2008). The GenBank accession numbers for the 16S rRNA sequences of the seven bacterial species of the composition are listed below. These accession numbers can be used to search for each 16S rRNA sequence from http: / / www.ncbi.nlm.nih.gov / genbank / for assessing sequence homology.
[0072] [Table 1]
[0073] The present invention further relates to the above composition, wherein said composition is a pharmaceutical composition formulated as either a rectal administration form or an orally ingested form. In this regard, the present invention further relates to the above composition, wherein the oral intake form is a capsule, microcapsule, tablet, granule, powder, troche, pill, suspension or syrup. The present invention further relates to the above compositions incorporated into a food, beverage, food supplement or dietary supplement.
[0074] Therefore, the present invention relates to the above-mentioned composition, which is used as food, food supplement or medicine for humans, non-human livestock or farm animals or aquatic animals.Therefore, the composition can be incorporated into food, functional food, food supplement, cosmetics, nutraceuticals, probiotic compositions or medicines.Food is typically an edible material that is mainly composed of one or more of the macronutrients protein, carbohydrate and fat.Food may also contain one or more micronutrients, such as vitamins or minerals.
[0075] The term "food" as used herein also includes beverages.Examples of foods that can incorporate the composition include snack bars, cereals, breads, muffins, biscuits, cakes, pastries, processed vegetables, sweets, probiotic formulations including yogurt, beverages, vegetable oil-based liquids, animal fat-based liquids, frozen snacks, and cheese.Preferred foods include yogurt, cheese, and other dairy products.Examples of beverages include soft drinks, syrups, squash, dry drink mixes, and energy drinks.Nutraceuticals are food ingredients, food supplements, or food products that are thought to provide medical or health benefits, including disease prevention and treatment.Functional foods are foods that are typically marketed to provide health benefits beyond providing pure nutrition to consumers.
[0076] The present invention also provides probiotics comprising the composition discussed herein.Probiotics are typically live supplements that can enhance intestinal microflora.Such probiotics can be given not only to humans, but also to farm animals, livestock animals, and aquatic organisms.Probiotics can further comprise one or more acceptable excipients or flavorings that are suitable for human or animal consumption.
[0077] The compositions of the invention may be used in the manufacture of a pharmaceutical composition. Accordingly, the invention further provides a pharmaceutical composition comprising a composition of the invention and a pharmaceutically acceptable excipient or carrier.
[0078] The composition containing the compound of the present invention may be in various forms, for example, in the form of tablets, capsules or powders.Examples of excipients that may be present in such compositions include diluents (for example, starch, cellulose derivatives or sugar derivatives), stabilizers (for example, hygroscopic excipients, such as silica or maltodextrin), lubricants (for example, magnesium stearate), buffers (for example, phosphate buffers), binders, coating agents, preservatives or suspending agents.Suitable excipients are well known to those skilled in the art. More specifically, the present invention relates to a composition comprising a total of 10 5 ~10 11 The present invention relates to a composition as described above, comprising colony forming units of the bacterium of the present invention.
[0079] In this document and its claims, the verb "to comprise" and its conjugations are used in an open-ended sense, meaning that the items following the word are included, but items not specifically mentioned are not excluded. Additionally, the verb "to consist" may be substituted with "to consist essentially of," meaning that the compositions defined herein may contain more components than those specifically identified. Additionally, reference to an element by the indefinite article "a" or "an" does not exclude the possibility that more than one element may be present, unless the context clearly requires that only one of the elements be present. The indefinite article "a" or "an," therefore, typically means "at least one."
[0080] All patents and references cited herein are incorporated by reference in their entirety. The following examples are provided for illustrative purposes only and are not intended to limit the scope of the invention in any way. [Example]
[0081] example Example 1. Establishment of the composition of the present invention 1.1 Isolation of bacteria for compositions Young, healthy donors not exposed to antibiotic therapy were selected and inoculated into the SHIME® model. By controlling several operational parameters of the SHIME® model (Figure 1; Van den Abbeele et al., 2010), we were able to enrich and select for gut microbiota networks that have beneficial effects on human health, such as those involved in dietary fiber fermentation, bile acid metabolism, and lactose degradation. The SHIME® device has been used to isolate bacterial strains with various functional properties, such as fibrolytic (e.g., Bifido bacteria, Bacteroides), fermentative (e.g., Escherichia coli) or lactic acid producers (e.g., Lactobacilli, Pediococci, and Enterococci), butyric acid producers (e.g., Anaerostipes caccae, Butyricicoccus pullicaecorum, Faecalibacterium prausnitzii, Roseburia hominis, Roseburia inulinivorans, Clostridium butyricum), and propionic acid producers (e.g., Bacteroides thetaiotaomicron, Bacteroides vulgatus, Roseburia inulinivorans, Akkermansia muciniphila).For this purpose, selective media include LAMVAB (lactobacilli; Hartemink et al. 1997), RB (bifidobacteria; Hartemink et al. 1996), Enterococcus medium (Enterococci; Possemiers et al. 2004), TBX (Escherichia coli; Le Bon et al. 2010), BBE (Bacteroides fragilis group; Livingston et al. 1978), Mucin minimal medium (Akkermansia; Derrien et al. 2004), M2GSC (butyrate producer; Barcenilla et al. 2000) or lactate-containing minimal SHIME medium (butyrate producers), succinate and fucose-containing minimal SHIME medium (propionate producers), sulfate-enriched minimal medium (sulfate producers), arabinoxylan-containing minimal SHIME medium, and blood agar plates (Prevotella). In addition to SHIME, bacteria were also isolated directly from fresh fecal samples from healthy donors using the same strategy.
[0082] Ten-fold dilutions of samples collected from SHIME colonic compartments or homogenized fecal samples were prepared and spread onto agar plates with the specific medium composition described above. The plates were incubated at 37°C, taking into account the growth conditions of the different bacterial groups. During incubation, approximately 30 colonies were picked for each bacterial group and incubated in liquid growth medium under the appropriate conditions. The short-chain fatty acid concentrations in the overnight cultures were analyzed using gas chromatography as described by Possemiers et al. (2004). Additionally, samples from the liquid cultures were used for phylogenetic analysis. DNA was extracted as described by Possemiers et al. (2004), and near-full-length 16S rRNA sequences were amplified for each isolate using universal eubacterial primers fD1 and rD1 (Weisburg et al. 1991). Upon purification, the DNA samples were sent for sequencing. The obtained sequences were aligned with existing sequences for identification of each isolate using the BLAST toolbox (http: / / blast.ncbi.nlm.nih.gov / Blast.cgi).
[0083] 1.2 Design of the Composition of the Invention To combine various bacterial strains into a truly functional microbial network, pure cultures isolated from SHIME® reactors and feces (described in Example 1.1) were used. Additionally, pure cultures were sourced from culture collections such as BCCM / LMG (http: / / bccm.belspo.be) and DSMZ (www.dsmz.de).
[0084] Short-chain fatty acids (SCFAs) are the end products of dietary fiber fermentation by the gut microbiota and are known to exert several beneficial effects on host health. The main SCFAs produced are acetate, butyrate, and propionate in a molar ratio of approximately 60:20:20. While acetate is absorbed from the intestine and can be used by the host as an energy substrate, butyrate acts as the primary energy source for the intestinal epithelium and has been shown to have protective effects against inflammation and colon cancer. Propionate has similar local activity in the intestine compared to butyrate, but is transported to the liver and has been shown to have distinct cholesterol-lowering and glycemic effects.
[0085] Given the important and diverse physiological roles of SCFAs, disruption of gut microbial function (e.g., gastrointestinal disorders) can have significant impacts on host health. Consequently, in this example, we performed a screening to design compositions that could induce total SCFA production and the most interesting relative SCFA production ratios. Regarding the latter, butyrate was considered the most interesting among the various SCFAs produced. Furthermore, the effects of different compositions on the integrity of the intestinal barrier were evaluated by co-culture with epithelial and immune cells.
[0086] In practice, a total of 20 isolates (referred to as "Isolate-X") with the most interesting fermentation profiles, obtained from the isolation and selection rounds described in 1.1 or ordered from the culture collection, were recovered from their glycerol stocks and grown under their respective optimal growth conditions to obtain homogenous suspensions of bacterial strains.
[0087] [Table 2]
[0088] Isolates were combined in numbers ranging from 2 to 10 in a set of 98 individual initial screening experiments. For each experiment, fermentation was initiated in sterile incubation bottles containing sterile SHIME® nutrient medium adjusted to pH 6.8 with KH2PO4 / K2HPO4 and flushed with nitrogen. The sterile medium was then inoculated with a 10% (v / v) mixed inoculum consisting of equal amounts of the selected species. The incubation bottles were flushed with nitrogen to ensure anaerobic conditions and incubated at 37°C (90 rpm). Samples were analyzed for SCFA production after 24 hours. The composition with the highest butyric acid production was then selected, and a set of 23 different bacteria was further used in the final experiment (referred to as MX-Y, where X = the number of isolates present in the composition and Y = the unique composition A, B, C, etc. containing X isolate).
[0089] [Table 3]
[0090] These 23 combinations were reincubated as previously described. After 24 hours, samples were collected for SCFA analysis and for combination with a Caco-2 and THP1 cell co-culture model as described by Possemiers et al. (2013). The endpoint of the latter experiment was transepithelial electrical resistance (TEER) as a measure of protective effect on intestinal barrier function.
[0091] Figure 2 shows the effects of 23 different compositions on butyrate levels and TEER values obtained after 24 hours of incubation. Strong differences were observed in both butyrate levels and effects on intestinal barrier function, and the combination with the highest butyrate levels did not necessarily induce a highly protective effect on TEER levels, as indicated by the different rankings. Surprisingly, one composition of seven different isolates (designated M7-B in Figure 2) ranked first in both butyrate levels after 24 hours and specifically in protective effects on intestinal barrier function. This composition contained six isolates from SHIME and one culture obtained from a human fecal sample. 16S rRNA gene sequencing and sequence comparison with the NCBI BLAST database revealed that M7-B was composed of the novel SHIME isolates Lactobacillus plantarum, Faecalibacterium prausnitzii, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae, as well as the novel fecal isolate Butyricicoccus pullicaecorum. Interestingly, the novel isolates were all present in at least one of the other compositions shown in Figure 2, yet none of the other compositions achieved the same efficacy in protecting butyrate production and TEER values. This indicates that the observed effect is not related to one of the specific species present in the composition, but rather that it is only the specific combination of these seven bacteria that leads to the surprising positive results.
[0092] The seven novel isolates were deposited at the BCCM / LMG Bacterial Collection (Ghent, Belgium) under the following accession numbers: Faecalibacterium prausnitzii LMG P-29362, Butyricicoccus pullicaecorum LMG P-29360, Roseburia inulinivorans LMG P-29365, Roseburia hominis LMG P-29364, Akkermansia muciniphila LMG P-29361, Lactobacillus plantarum LMG P-29366, and Anaerostipes caccae LMG P-29359.
[0093] As further experimental evidence of the surprising synergy between the seven isolates and the necessity for the presence of each species, experiments were set up in which one of the isolates was removed (i.e., eliminated) from the original composition of the seven isolates each time. Fermentation was restarted in sterile incubation bottles containing sterile SHIME® nutrient medium adjusted to pH 6.8 with KH2PO4 / K2HPO4 and flushed with nitrogen. The sterile medium was then inoculated with a 10% (v / v) mixed inoculum of equal volumes of six of the seven isolates. The complete composition of the seven isolates served as a control, resulting in a total of eight parallel incubations. The incubation bottles were flushed with nitrogen to ensure anaerobic conditions and incubated at 37°C (90 rpm). Samples were analyzed for butyric acid production after 24 and 48 hours. As shown in Figure 3, removing only one species from the original composition significantly reduced the butyric acid production levels after 24 hours for all six compositions to less than 80% of the original composition's butyric acid production levels. After 48 hours of incubation, butyric acid levels remained significantly lower for all six compositions, with the exception of the Roseburia hominis-free composition. This confirms that all isolates in the composition are essential for the composition to reach its full potential. Since only the Roseburia hominis-free composition still provided functionality similar to the full composition after 48 hours of incubation, the use of a six-component composition consisting essentially of Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Akkermansia muciniphila, Lactobacillus plantarum, and Anaerostipes caccae can be considered the second most optimal.
[0094] 1.3. Production of the Compositions of the Invention Compositions consisting of Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae species are produced using three different strategies: 1) growing the species of the composition separately and then mixing them together, 2) growing the species of the composition together in a multi-stage fermentor (i.e., the in vitro SHIME® model described above), and 3) growing the species of the composition together in a single-stage fermentor.
[0095] In the first strategy (= "assembly" strategy), selected species were recovered from their glycerol stocks and grown under their respective optimal growth conditions to obtain a homogenous suspension of bacterial strains. To evaluate their functional activity, a mixed inoculum consisting of equal amounts of the selected species was created. This inoculum was added at 10% (v / v) to a sterile incubation bottle containing sterile SHIME® nutrient medium adjusted to pH 6.8 with KH2PO4 / K2HPO4. The incubation bottle was flushed with nitrogen to ensure anaerobic conditions and incubated at 37°C (90 rpm). At specific intervals of 16 h, 40% (v:v) of the growth medium was replaced with conditioned SHIME® nutrient medium. Conditioned SHIME® nutrient medium was prepared by incubating 700 mL of regular SHIME® feed (pH 2) at 37°C for 1 hour, followed by the addition of 300 mL of pancreatic juice (pH 6.8) supplemented with 25 g / L NaHCO3, 23.6 g / L KH2PO4, and 4.7 g / L K2HPO4. Samples were analyzed for SCFA production over a 5-day period (Figure 4). Butyrate levels reached 7 mM after 24 hours of incubation and a maximum of 14 mM after 5 days of assembly.
[0096] In the second strategy (i.e., the "collaborome" strategy, or the strategy in which the bacteria were grown together in a dynamic gastrointestinal simulator prior to administration), selected species were recovered from their glycerol stocks and grown under their respective optimal growth conditions to obtain a homogenous suspension of bacterial strains. The strains were then mixed and inoculated in triplicate in a SHIME® device (Van den Abbeele et al., 2010) consisting of a single colonic region at pH 6.15–6.4. A two-week acclimation period was performed to create functional collaborome compositions. The necessity and relevance of such an acclimation period is clearly demonstrated by the evolution of the SCFA profile during the incubation of the selected species composition (Figure 5). Initially, the compositions require time to acclimate to each other and become active in converting the supplied substrates to SCFAs. However, 4–6 days after inoculation, SCFA production by the compositions began to stabilize, and high levels of butyrate were measured. By the last day of incubation (day 14), each of the triplicate incubations resulted in very similar, stable, potently active and functional compositions with butyrate levels reaching 19 mM.
[0097] When the stabilized collaborome was frozen at -80 °C as a glycerol stock and subsequently thawed for use as an inoculum in the same manner as in the assembly strategy, butyrate levels rose surprisingly quickly, reaching 25% higher levels under the same incubation conditions as for the assembly of individual species (Figure 4). Butyrate levels reached 12 mM already after 24 h of incubation for the assembly and a maximum of 19 mM already after 2 days.
[0098] In the third strategy, the composition was produced using an optimized single-stage fermenter approach operated in fed-batch mode (i.e., an alternative "collaborome" strategy, or a strategy in which the bacteria are grown together in one fermenter before administration). Selected species were recovered from their glycerol stocks and grown under their respective optimal growth conditions to obtain a homogenous suspension of bacterial strains. Fermentation was initiated in sterile incubation bottles containing sterile SHIME® feed adjusted to pH 6.8 with KH2PO4 / K2HPO4 and flushed with nitrogen. The sterile medium was then inoculated with a 10% (v / v) mixed inoculum consisting of equal amounts of the selected species. The incubation bottles were flushed with nitrogen to ensure anaerobic conditions and incubated at 37°C (90 rpm). At specific intervals of 16 hours, 40% (v:v) of the growth medium was replaced with conditioned SHIME® nutrient medium. Conditioned SHIME® nutrient medium was prepared by incubating 700 mL of regular SHIME® diet (pH 2) at 37°C for 1 hour, followed by the addition of 300 mL of pancreatic juice (pH 6.8) supplemented with 25 g / L NaHCO3, 23.6 g / L KH2PO4, and 4.7 g / L K2HPO4.
[0099] As shown in Figure 6, the total SCFA production and SCFA ratios produced by the composition remained stable after six replacement cycles. When re-inoculated using the same strategy described above, the stabilized collaborome led to maximum SCFA production two days faster (acetate / propionate / butyrate ratio of approximately 14 / 12 / 74) and 25% higher butyrate production compared to the same seed set in the assembly strategy.
[0100] Example 2: In vitro experiments 2.1: Effect of adding functional compounds to complex microbial gut communities This experiment demonstrates that the functional composition is active when inoculated into a mixed microbial gut community, where there is strong competition for colonic substrate with members of this complex gut community estimated to consist of 500-1000 microbial species. To address this issue, experiments were conducted in small incubation bottles using a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae, produced through the collaborome strategy described in Example 1.3.
[0101] Increasing concentrations of the pre-adapted composition (0, 4 and 20%) were washed with PBS and incubated in three different media: 1) Sterile basal medium [2g / L peptone, 2g / L yeast extract, 2mL / L Tween 80, 10μL / L vitamin K1, 500mg / L L-cysteine HCl, 100mg / L NaCl, 40mg / L K2HPO4, 40mg / L KH2PO4, 10mg / L MgSO4·7H2O, 6.7mg / L CaCl2·2H2O, 1.5mg / L resazurin, 50mg / L hemin (50mg / L) - pH 5.5] + starch 6g / L; 2) basal medium + 20% fecal slurry (prepared as described in De Boever et al., 2000 ); 3) Basal medium + 20% SHIME® colon suspension with complete microbiota was added.
[0102] Increasing concentrations of the pre-acclimated butyrate-producing consortium from 0% to 4% and 20% resulted in proportional increases in absolute butyrate levels (Figure 7). This was not only observed in sterile medium, but also in medium supplemented with a mixed microbiota derived from both fecal samples and SHIME® colonic regions. Thus, this experiment demonstrates that the composition is not only active when present in a non-competitive colonic environment, but also results in high butyrate levels when administered to a mixed microbiota in which many gut microbes compete for the same nutrients. Furthermore, not only was butyrate production increased, but propionic acid production also significantly increased. The combination of these increases and a decrease in acetic acid during incubation indicates that the composition can modulate the general microbial fermentation profile to a more health-beneficial profile.
[0103] 2.2: Efficacy of functional compositions to restore metabolic function of antibiotic-induced dysbiotic gut microbial communities Antibiotic use is thought to cause significant disruption of the gut microbiota community. Dysbiotic microbial compositions have been shown to be more susceptible to infection by pathogens. Furthermore, many gastrointestinal diseases, such as inflammatory bowel disease, are correlated with dysbiotic microbial compositions, highlighting the importance of a healthy gut microbiome. Recovery of taxonomic composition, especially functionality after long-term antibiotic intake, typically takes three months to reach a pre-conditioning state, representing a healthy gut microbial community (Panda et al., 2014). A shorter recovery time after exposure to antibiotic therapy could therefore reduce the risk of severe infection and generally promote host health. In this regard, the observed functional activity of selected compositions may be a promising strategy to promote microbial community recovery in antibiotic-induced dysbiosis and reduce infection risk.
[0104] In this example, antibiotic-induced dysbiosis was modeled in an in vitro SHIME® model by administering the appropriate antibiotic. The purpose of this experiment was to evaluate the restoration of a typical "healthy" metabolite profile in a simulated intestinal colonic environment upon administration of a functional composition. Furthermore, the experiment aimed to identify the effectiveness of the composition when produced by either an "assembly" or "collaborome" strategy (see Example 1.3). The experiment was again performed with a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae. To better mimic the complete functional profile of the gut microbiome, in this particular experiment the composition was further supplemented with Escherichia coli, Enterococcus faecium, Lactobacillus mucosae, Bifidobacterium adolescentis, Bifidobacterium longum, Bacteroides thetaiotaomicron and Bacteroides vulgatus.
[0105] In practice, SHIME® vessels (pH 6.15–6.40) were inoculated with fecal material and allowed to stabilize for 14 days (M-SHIME® device—Van den Abbeele et al., 2012). After a two-week control period, SHIME®-derived colonic microbiota were treated with an antibiotic cocktail (amoxicillin / ciprofloxacin / tetracycline at 40 / 40 / 10 mg / L, respectively) to induce dysbiosis. One day later, the dysbiotic microorganisms were treated for five days with functional compositions produced by either the "assembly" or "collaborome" strategies. The study endpoint was to assess the restoration of a typical "healthy" SCFA metabolite profile in a simulated enterocolonic environment. A control SHIME® vessel was included to simulate the spontaneous recovery of metabolic activity in the gut community after antibiotic exposure without administering any compositions. Results are expressed as the delta of SCFA levels in SHIME at each time point relative to the pre-antibiotic value (Figure 8).
[0106] Upon antibiotic treatment of SHIME® vessels, a significant decrease in acetate, propionate, and butyrate production was observed. This finding confirms the disruption of the gut microbial community. The recovery of metabolite profiles (in terms of SCFA production) to the pretreatment state is shown in Figure 8 as the evolution of acetate, propionate, and butyrate over a 5-day period. This indicates that functional recovery is slower in the control setting (without administration of the composition), with complete recovery not observed within 5 days for acetate and propionate. Interestingly, treatment with the composition resulted in a faster recovery of all three SCFAs compared to the control condition. Furthermore, while the assembly strategy composition induced a complete recovery of propionate and butyrate after 5 and 3 days, respectively, the collaborome strategy composition induced a faster recovery compared to the assembly strategy, with complete recovery of propionate and butyrate after 4 and 2.5 days, respectively. Finally, the collaborome strategy also resulted in a net increase in activity, accompanied by increased propionate and butyrate levels, compared to the assembly strategy. These results highlight the potential of this composition for the recovery of antibiotic-mediated microbial dysbiosis. Furthermore, the findings clearly demonstrate that pre-acclimation via the collaborating strategy results in a more efficient recovery of microbial SCFA production after antibiotic exposure compared to the assembly strategy.
[0107] 2.3: Efficacy of functional compositions to restore metabolic function of dysbiotic microbial gut communities in inflammatory bowel disease Inflammatory bowel disease (IBD) is associated with impaired host-microbe interactions and, at least in part, with a state of gut microbiota dysbiosis. The latter, for example, include low abundance of butyrate-CoA:acetate-CoA transferase and propionate kinase (Vermeiren et al., FEMS 2011), which in turn negatively impacts balanced SCFA production. Given the important impact of SCFAs on normal intestinal development and maintenance, restoring microbiota composition and function in terms of SCFA production may have a positive impact on IBD-related symptoms. In this regard, the observed functional activity of selected compositions may be a promising strategy for enhancing microbial community recovery in IBD dysbiosis as a basis for restoring and maintaining a healthy intestinal barrier.
[0108] In this example, IBD-associated dysbiosis was modeled in the previously described in vitro SHIME® model (Vigsnaes et al. 2013). The purpose of this experiment was to evaluate the restoration of the microbiota in terms of SCFA profile in a simulated enterocolonic environment upon administration of a functional composition. Furthermore, the experiment aimed to identify the effectiveness of the composition when produced by either an "assembly" or "collaborome" strategy (see Example 1.3). The experiment was again performed with a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae.
[0109] In practice, SHIME® vessels (pH 6.15-6.40) were inoculated with fecal material from ulcerative colitis patients (M-SHIME® device - Van den Abbeele et al., 2012). Simultaneously, a single dose of functional composition produced by either the "assembly" or "collaborome" strategy was added to the colonic region to simulate administration. A third experiment was performed in parallel as a control experiment without administration of the composition. Production of acetic acid, propionic acid, and butyric acid was followed for 1 and 2 days after administration of the composition.
[0110] The results are shown in Figure 9: Administration of the composition produced by the assembly strategy resulted in an increase in SCFA production (primarily acetate and butyrate) on day 1, but this effect was no longer observed on day 2. This indicates that the composition is functionally active in the IBD microbiome environment. Interestingly, the effect on propionate and butyrate production was much more pronounced with administration of the composition from the collaborome strategy, in contrast to the IBD control, with a 4-fold and 3-fold increase in propionate and butyrate production, respectively. In contrast to the composition from the assembly strategy, the effect was still pronounced on day 2, consistent with reduced acetate production (a sign of increased cross-feeding and therefore network improvement). These results highlight the potential of the composition for the recovery of IBD-associated microbial dysbiosis. Furthermore, this finding clearly demonstrates that pre-acclimation with the collaborome strategy results in a more efficient recovery of microbial SCFA production under IBD conditions compared to the assembly strategy.
[0111] 2.4: Efficacy of Functional Compositions to Inhibit the Growth of Plant-borne Clostridium difficile in an In Vitro Simulation Assay In this example, a Clostridium difficile challenge test was conducted to evaluate whether the functional composition was not only functionally active under intestinal conditions but also capable of protecting the intestinal environment from infection. In such a challenge test, the composition was challenged with plant-borne Clostridium difficile (Cdif) cells and its ability to inhibit Cdif growth under simulated gastrointestinal conditions was evaluated. Furthermore, the experiment aimed to identify the effectiveness of the composition when produced by either an "assembly" strategy or a "collaborome" strategy (see Example 1.3). The experiment was again performed with a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae.
[0112] In fact, Clostridium difficile (LMG 21717 T A glycerol stock of C. difficile was thawed and inoculated into a bottle containing Reinforced Clostridial Medium (RCM) broth that had been flushed with nitrogen to ensure anaerobic conditions. The bottle was incubated in a shaking incubator (90 rpm) for 24 hours, and 10% of the grown culture was re-inoculated into RCM broth. After 24 hours of growth, the homogenized C. difficile culture was diluted as follows: 1) basal medium (blank); 2) a basal medium containing the composition of the assembly strategy; 3) a basal medium containing the composition of the collabromic strategy; 4) Basal medium containing SHIME® colon suspension (10% v:v) into bottles containing 10% v:v of 100% ethanol.
[0113] The bottles were incubated at 37°C in a shaking incubator (90 rpm). At regular time points, samples were collected and immediately frozen at -80°C before C. difficile was quantified by a qPCR assay based on the detection and quantification of the triosephosphate isomerase gene. For this purpose, genomic DNA was extracted according to Boon et al. (2003). The amplification reaction contained forward and reverse oligonucleotides: 5'-TATGGACTATGTTGTAATAGGAC-3' (forward) and 5'-CATAATATTGGGTCTATTCCTAC-3' (reverse). Absolute amounts of PCR products were obtained by generating a standard curve.
[0114] In this controlled in vitro simulation assay, C. difficile growth was observed in the basal medium after 48 hours of incubation, confirming the effectiveness of the blank in the in vitro simulation assay. SHIME® colonic suspension (simulating actual fecal transplantation) showed the highest C. difficile growth inhibition after 48 hours of incubation (i.e., 58%). Interestingly, similar results were obtained with the collaborome strategy composition, showing approximately 53% C. difficile growth inhibition. The lowest effect was observed when the assembly strategy composition was added (i.e., 23% growth inhibition). This experiment clearly demonstrates that C. difficile growth was significantly inhibited by the composition, and that this inhibition was most pronounced when the collaborome strategy composition was pre-adapted.
[0115] 2.5: Effect of functional compositions on intestinal barrier function and host biomarkers of intestinal immunity Examples 2.1-2.3 demonstrate that the composition is functionally active under complex intestinal conditions and can restore the most active intestinal metabolite profile when produced by the collaborating strategy, which may have beneficial effects on the intestinal epithelium and, therefore, on intestinal barrier function and local immunity.
[0116] To assess this possibility, this example describes the combination of samples collected from previous experiments on an established co-culture cell model of enterocytes (Caco-2 cells) and macrophages (THP1) (Possemiers et al. 2013). In this model, stimulation of THP1 cells with LPS leads to increased production of pro-inflammatory cytokines, which tend to disrupt the enterocyte layer and create a so-called "leaky gut" state. The effect on "leaky gut" is measured by assessing the effect of transepithelial electrical resistance (TEER) [a measure of intestinal barrier effectiveness] and inflammatory cytokine production compared to control conditions. In practice, samples collected on day 1 from the M-SHIME experiment in Example 2.3 were combined with the co-culture leaky gut model.
[0117] 2.6: Effect of variation in strain identity on the functional activity of the composition Further experiments were carried out to assess whether the surprising synergistic effect between the seven isolates in the composition was strain-specific or could be achieved with other strains of the same species. In this example, two different compositions were produced by the "collaborome" strategy (see Example 1.3).
[0118] Composition 1 contains the specific isolates described in Example 1.2, while Composition 2 is composed of strains of the same species obtained from a culture collection: Composition 1: Faecalibacterium prausnitzii LMG P-29362, Butyricicoccus pullicaecorum LMG P-29360, Roseburia inulinivorans LMG P-29365, Roseburia hominis LMG P-29364, Akkermansia muciniphila LMG P-29361, Lactobacillus plantarum LMG P-29366 and Anaerostipes caccae LMG P-29359 Composition 2: Lactobacillus plantarum ZJ316, Faecalibacterium prausnitzii (DSMZ 17677), Butyricicoccus pullicaecorum (LMG 24109), Roseburia inulinivorans (DSMZ 16841), Roseburia hominis (DSMZ 16839), Akkermansia muciniphila (DSMZ 22959) and Anaerostipes caccae (DSMZ 14662).
[0119] In practice, selected species were recovered from their glycerol stocks and grown under their respective optimal growth conditions to obtain homogenous suspensions of bacterial strains. The strains were then mixed with Composition 1 and Composition 2 and inoculated in triplicate in a SHIME® device (Van den Abbeele et al., 2010) consisting of a single colonic region at a pH of 6.15–6.4. The butyrate production profile was followed over a 14-day period.
[0120] Surprisingly, the kinetics of butyric acid production were very similar for both compositions, with initial strong fluctuations, after which the butyric acid levels stabilized after about 6 days. At the end of the experiment (day 14), the butyric acid level for composition 1 reached 19.3 mM, while the level for composition 2 was 18.8 mM. This shows that the synergistic effect observed in the composition from Example 1.2 could be substituted by using different strains obtained from the same species.
[0121] Example 3: In vivo experiments 3.1: Mouse model of antibiotic-induced gastrointestinal microbiota disruption The experimental goal in this example was to evaluate whether the functional composition could also restore the metabolic capacity of the gut microbiome after antibiotic-induced dysbiosis in an in vivo setting.
[0122] In this example, a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae was used, produced via the "collaborome" strategy of Example 1.3. Furthermore, to assess the need to more completely mimic the complete functional profile of the gut microbiome, further experiments were performed on a composition further supplemented with Escherichia coli, Enterococcus faecium, Lactobacillus mucosae, Bifidobacterium adolescentis, Bifidobacterium longum, Bacteroides thetaiotaomicron, and Bacteroides vulgatus (referred to as the "expanded composition").
[0123] In practice, the "Composition" and "Extended Composition" were freshly prepared according to the collaborome strategy, washed twice with PBS (in an anaerobic chamber to ensure anaerobic conditions), concentrated to 100 μL, and administered to mice as soon as possible by oral gavage. Mice (C57 / BL6) at least 5 weeks old were purchased, maintained under pathogen-free conditions, and fed a standard diet. Mouse experiments were performed in accordance with protocols approved by the Ethics Committee of Animal Trials of Ghent University, Belgium. To induce antibiotic-induced dysbiosis, the antibiotic clindamycin was administered in drinking water at a concentration of 250 mg / L. Five days after antibiotic treatment, the stomach contents of the mice were neutralized with NaHCO3, and then the mice (10 mice per group) were treated for five consecutive days with the following: 1) Composition in saline solution; 2) an expansion composition in saline solution; and 3) Saline solution (control) were orally gavaged.
[0124] A conventional group (no antibiotic treatment but treated with saline solution) was included as a control to eliminate variability arising from the gavage procedure. Fecal samples (approximately 100 mg / mouse) were collected throughout the experiment and stored at -80°C for future analysis.
[0125] SCFA profiles obtained from pooled mouse fecal samples from the same group demonstrate that 5 days of antibiotic treatment significantly reduced butyrate and propionate production, to the extent that only acetate remained (Figure 10). As shown in Figure 10, spontaneous recovery of metabolic function was slow, beginning only approximately 5 days (day 10) after the last antibiotic treatment, although the molar ratios of the three major SCFAs (acetate, propionate, and butyrate) had not yet returned to their pre-antibiotic states. However, when mice were treated with either the collaborome strategy composition or the extended composition, recovery of butyrate metabolism already began approximately 3 days (day 8) after antibiotic treatment. Furthermore, metabolic activity in mice treated with both compositions showed nearly complete recovery, with good production of both propionate and butyrate 5 days (day 10) after the last dose of antibiotics. The extended composition contained a higher diversity of acetate and propionate producers compared to the extended composition, which is also reflected by the slightly different fermentation profiles at day 10 of the experiment. In conclusion, this example provides in vivo confirmation that the functional composition is effective in obtaining faster and more robust restoration of the intestinal metabolic profile in antibiotic-induced dysbiosis. Furthermore, variation in the exact species combination in the composition allows tailoring the end result to a specific metabolic profile.
[0126] 3.2: TNBS mouse model of inflammation The TNBS (2,4,6-trinitrobenzenesulfonic acid) model is commonly used for colitis, which mimics some of the characteristics of Crohn's disease (Scheiffele et al. 2001), including weight loss, bloody diarrhea, and intestinal wall thickening. On histopathology, TNBS induces patchy transmural inflammation of the intestine, accompanied by the formation of deep ulcers, a classic feature seen in patients with CD. This makes the TNBS model an excellent candidate for in vivo evaluation of the ability of functional compositions to prevent and / or reverse damage to the intestinal mucosa in IBD and to aid in the maintenance / development of a healthy intestinal barrier.
[0127] In this example, a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae was used to evaluate the beneficial effects of the composition in the TNBS model. Furthermore, the experiment aimed to identify the effectiveness of the composition when produced by either the "assembly" or "collaboration" strategy (see Example 1.3). Colitis was induced in animals by rectal instillation of TNBS, a mucosal sensitizer, diluted in ethanol. Ethanol administration is a prerequisite for disrupting the colonic mucosal barrier, allowing TNBS to penetrate the basement membrane. TNBS haptenizes localized colonic and intestinal microbial proteins, rendering them immunogenic, thereby eliciting host innate and adaptive immune responses.
[0128] In practice, 8-10 week old male C57BL6 / J mice were housed in a temperature-controlled room at 20°C with a 12:12 hour light / dark cycle. Animals had free access to water and commercial food. To avoid cage effects, mice were randomized between cages. After 1 week of acclimation, the experiment began. Each group (n=9 / group) was treated by oral gavage for 5 consecutive days. Prophylactic administration of all treatments began 1 day before rectal administration of 2 mg TNBS / 50% EtOH and continued 4 days after TNBS administration until the mice were sacrificed. The following treatments were administered: 1) Composition of assembly strategy in TNBS + saline solution; 2) Composition of the collabromic strategy in TNBS + saline solution and 3) TNBS + saline solution (control) Includes:
[0129] A conventional group (no TNBS treatment but treated with saline solution) was included as a control to eliminate variability arising from the gavage procedure. As study endpoints, disease activity was monitored daily (before each day's treatment) by measuring body weight, fecal blood loss (ColoScreen), and general appearance.
[0130] The results of this example are presented in Figure 11. While no effects on body weight or disease activity were observed for the vehicle (saline) control group without TNBS, the control group receiving TNBS showed an immediate 8% weight loss and a strong increase in disease activity on day 1. Both weight loss and disease activity were partially recovered by the end of the study. Interestingly, a strong protective effect of the composition was observed on both weight loss and disease activity, but the degree of this protective effect depended on the production strategy of the composition. While initial mild protection was observed on day 1 for the assembly strategy, as indicated by low weight loss and disease activity, this protective effect was no longer observed on subsequent study days. In contrast, administration of the composition produced by the collaborome strategy led to a strong preventive effect on weight loss and disease activity on day 1 compared to the TNBS control, and a rapid and complete recovery by the end of the study, as indicated by disease activity returning to the level of the vehicle control. In conclusion, this example provides in vivo confirmation that the functional composition is effective in achieving faster and more robust recovery from intestinal inflammation and disease activity in TNBS-induced colitis. Furthermore, this finding clearly demonstrates that preconditioning by the collaborating strategy results in more efficient activity compared to the assembly strategy.
[0131] 3.3: DSS mouse model of inflammation The chronic DDS model is commonly used for colitis, which mimics some of the characteristics of Crohn's disease, including weight loss and bloody diarrhea. Histopathologically, chronic DDS administration induces intestinal inflammation with typical architectural changes, such as crypt disarray, submucosal inflammation and fibrosis of inflammatory cells, characteristics seen in patients with CD. This makes the DDS model an excellent candidate for in vivo evaluation of the ability of functional compositions to prevent and / or reverse damage to the intestinal mucosa in IBD and to help maintain / develop a healthy intestinal barrier.
[0132] In this example, a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Roseburia hominis, Akkermansia muciniphila, and Anaerostipes caccae, produced by the "Collaborome" strategy (see Example 1.3), is used to evaluate its beneficial effects in a chronic DSS model. Colitis is induced in animals by repeated administration of DSS (0.25% challenge) in drinking water. The experiment is conducted over a total of 8 weeks, with three cycles of DSS administration and recovery.
[0133] In practice, 6-week-old male C57BL6 / J mice are housed in a temperature-controlled room at 20°C with a 12:12-hour light-dark cycle. Animals have free access to water and commercial food. Mice are randomized between cages to avoid cage effects. After one week of acclimatization, the experiment begins. Each group (n=10 / group) is treated by oral gavage three times a week for eight consecutive weeks. Prophylactic administration of all treatments begins one week before the first DSS cycle. The first DSS cycle begins in week two and includes one week of DSS administration (0.25% in drinking water), followed by two weeks of recovery. This first cycle is followed by an identical second DSS cycle. The third DSS cycle consists of one week of DSS administration, followed by one week of recovery, after which the animals are sacrificed. The following treatments: 1) Non-DSS control 2) DSS + composition of the collaborom strategy in saline solution (3 times / week) and 3) DSS + saline solution (DSS control) Includes:
[0134] As a study endpoint, disease activity (DAI) was monitored three times a week (before each daily treatment) during each DSS cycle by monitoring body weight, fecal blood loss (ColoScreen), and general appearance. As shown in Figure 12, no effect on DAI was observed in the vehicle (saline) control group that did not receive DSS, while the control group that received DSS showed a strong increase in DAI with each administration cycle. Interestingly, a strong protective effect of the composition was observed on disease activity (approximately 25% lower DAI in each cycle). This further demonstrates that the functional composition is effective in providing strong protection from intestinal inflammation and disease activity in DSS-induced colitis induction.
[0135] Example 3.5: Mucositis model Mucositis is a clinical term used to describe damage to the mucosa after anticancer therapy. It occurs throughout the gastrointestinal (GT) tract (including the mouth) and genitourinary tract, and to a lesser extent on other mucosal surfaces. Its severity and duration vary depending on the dose and type of drug used. The importance of mucositis is that it limits the chemotherapy dose. The GI tract crypt epithelium is particularly vulnerable to chemotherapy toxicity, and direct cytotoxic effects on the mucosa result in symptoms including nausea and vomiting, abdominal pain, distension, and diarrhea. The 5-fluorouracil (5FU)-induced intestinal mucositis rat model was established by Keefe et al. to evaluate the effects of chemotherapy on the GI tract, and it is currently one of the most widely used models for investigating chemotherapy-induced mucositis in rats (Keefe 2004).
[0136] In this example, a composition containing Lactobacillus plantarum, Faecalibacterium prausnitzii, Butyricicoccus pullicaecorum, Roseburia inulinivorans, Akkermansia muciniphila, and Anaerostipes caccae was used as the basis for the experiment, produced by the "collaborome" strategy of Example 1.3. Mucositis is induced by a single intraperitoneal dose of 5FU.
[0137] A total of 30 rats were randomly assigned to either the control or experimental group at specific time points. All rats in the experimental group received a single intraperitoneal dose of 5FU (150 mg 5FU / kg BW). Rats in the control group were treated with the solvent vehicle (dimethyl sulfoxide). Following chemotherapy drug administration, study endpoints, including mortality, diarrhea, and general clinical condition, were assessed four times every 24 hours. Subgroups of rats were sacrificed by exsanguination and cervical dislocation at 24, 48, and 72 hours after drug administration. The primary endpoints of interest were the development of body weight, diarrhea, and general health (sickness score). Secondary endpoints included histology of intestinal samples and fecal and intestinal mucosal microbiota analysis.
[0138] To evaluate the effectiveness of the composition in preventing or alleviating the symptoms evaluated, some rats were administered the composition by oral gavage for 8 consecutive days. Prophylactic administration began 5 days before the administration of 5FU and continued for 3 days after the administration of 5FU or until the rats were sacrificed. Control animals did not receive the composition.
[0139] References [Table 4]
[0140] [Table 5]
[0141]
Table 6
Claims
1. 1. A composition comprising: wherein the composition comprises: Formulated for enteral delivery, and a mixture of bacterial species, the bacterial species being purified and present in an amount effective to increase butyrate as measured by gas chromatography after 48 hours of in vitro growth in culture, compared to a measurement of butyrate produced by an equal amount of any one strain of the bacterial species alone; Here, the bacterial species is Lactobacillus plantarum; Anaerostipes caccae; and Faecalibacterium prausnitzii Including, The composition.
2. The composition of claim 1 , wherein the composition is used to reduce symptoms associated with gastrointestinal disorders.
3. 3. The composition of claim 2, wherein the gastrointestinal disorder is diarrhea, constipation, irritable bowel syndrome, inflammatory bowel disease, Crohn's disease, ulcerative colitis, celiac disease, pouchitis, mucositis, or an intestinal infection.
4. 3. The composition of claim 2, wherein the symptoms associated with gastrointestinal disorders include nausea and vomiting, abdominal pain, bloating, or diarrhea.
5. The composition of claim 1 , wherein the composition is used to reduce inflammatory bowel bacteria in a subject.
6. The composition according to any one of claims 1 to 5, which is in the form of a capsule.
7. The composition according to any one of claims 1 to 5, which is in the form of a powder.
8. The composition according to any one of claims 1 to 5, which is in the form of a suspension.
9. 9. The composition of claim 8, wherein the suspension is a homogeneous suspension.
10. At least 10 5 A composition according to any one of claims 1 to 9, comprising colony forming units of bacteria.
11. 10 5 ~10 11 A composition according to any one of claims 1 to 10, comprising colony forming units of bacteria.
12. The composition of any one of claims 1 to 11, further comprising Butyricicoccus pullicaecorum, Roseburia inulinivorans, Akkermansia muciniphila, or Roseburia hominis.
13. The composition of any one of claims 1 to 11, further comprising Butyricicoccus pullicaecorum, Roseburia inulinivorans, and Akkermansia muciniphila.
14. 14. The composition of claim 13, further comprising Roseburia hominis.
Citation Information
Patent Citations
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