Application of Parasutterella in the preparation of products for treating obesity and related metabolic diseases
By using a bacterial suspension of Parasutterella excrementihominis strain (JCM 15078) to restore the balance of intestinal flora, the problems of insulin resistance and metabolic diseases caused by obesity were solved, and the effects of lowering blood sugar and improving adipose tissue and liver lesions were achieved.
Patent Information
- Application Number
- CN202310315642.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-28
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2043-03-28
AI Technical Summary
Existing technologies lack effective methods to regulate intestinal flora to improve insulin resistance and related metabolic diseases caused by obesity, such as type 2 diabetes and non-alcoholic fatty liver disease.
A bacterial suspension prepared from the Parasutterella excrementihominis strain (JCM 15078) was supplemented in mice with obesity and insulin resistance induced by a high-fat diet to restore intestinal flora balance and improve obesity and its related metabolic diseases.
It significantly reduces blood sugar levels in mice, alleviates adipose tissue inflammation, improves fatty degeneration of liver tissue, and effectively treats obesity and related metabolic diseases.
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Abstract
Description
Technical Field
[0001] The present invention relates to the field of biomedicine technology, and more specifically, to the use of Parasutterella bacteria in preparing products for treating obesity and related metabolic diseases. Background Art
[0002] With the rapid development of the economy, people's lifestyles and dietary structures have undergone tremendous changes, resulting in a sharp increase in the incidence of obesity across the country. Obese people often have multiple metabolic disorders, such as dyslipidemia and insulin resistance, and are at increased risk of developing chronic diseases such as diabetes, fatty liver and cardiovascular disease. This has become a public health issue that threatens the health of people in China and even the world, significantly increasing the medical burden. The occurrence and development of obesity is a complex process involving multiple factors, which is affected by diet, environment and genetics, and can also induce a variety of metabolic-related diseases. Many studies have confirmed that obese people have an imbalance in their intestinal flora, a decrease in the number of beneficial bacteria and an increase in the number of pathogenic bacteria, which further promotes the progression of insulin resistance, obesity and related metabolic diseases.
[0003] The gut microbiome has been a hot research area in recent years. A growing number of studies have shown that imbalances in gut microbiome homeostasis play a key role in the development and progression of obesity and a range of related metabolic diseases, such as non-alcoholic fatty liver disease (NAFLD) and type 2 diabetes mellitus (T2DM). However, the relationship between diet, gut microbiota, and obesity remains unclear, and specific reports on the relationship between obesity-induced gut microbiome changes and disease progression are lacking. How to specifically modulate gut microbiome composition to improve the progression of insulin resistance, obesity, and related metabolic diseases remains a challenging issue.
[0004] Currently, there are no reports on the therapeutic effects of Parasutterella in improving obesity-induced insulin resistance, obesity and related metabolic diseases. Summary of the Invention
[0005] One object of the present invention is to provide a use of Parasutterella in the preparation of a product for improving obesity-induced insulin resistance and / or treating obesity and its related metabolic diseases.
[0006] Another object of the present invention is to provide a product for improving obesity-induced insulin resistance and / or treating obesity and its related metabolic diseases.
[0007] In order to achieve the above object, the present invention adopts the following technical solutions:
[0008] The present invention first provides any one of the following applications of the genus Parasutterella:
[0009] A1) Use in the preparation of a product for improving obesity-induced insulin resistance;
[0010] A2) Use in the preparation of products for preventing and / or treating obesity and related metabolic diseases.
[0011] Furthermore, the bacterium of the genus Parasutterella is Parasutterella excrementihominis (hereinafter referred to as P. excrementihominis), specifically P. excrementihominis strain (JCM 15078), purchased from the JCM Collection of Japan.
[0012] Furthermore, the obesity-related metabolic diseases include type 2 diabetes and / or non-alcoholic fatty liver disease.
[0013] Furthermore, the product may be a medicine or the like.
[0014] The present invention further discloses a microbial preparation for improving obesity-induced insulin resistance or preventing and / or treating obesity and related metabolic diseases, wherein the active ingredient includes Parasutterella or its fermentation broth or bacterial suspension or culture or its metabolites.
[0015] Furthermore, the bacterium of the genus Parasutterella is Parasutterella excrementihominis (hereinafter referred to as P. excrementihominis), specifically P. excrementihominis strain (JCM 15078), purchased from the JCM Collection of Japan.
[0016] Furthermore, the obesity-related metabolic diseases include type 2 diabetes and / or non-alcoholic fatty liver disease.
[0017] In the present invention, the abundance of Parasutterella species was significantly reduced in the intestines of mice with high-fat diet-induced obesity and insulin resistance models. After a hypoglycemic drug was used to lower blood sugar and body weight and improve insulin resistance in the mice, the abundance of Parasutterella species in the intestines of the mice significantly increased. Supplementing P. excrementihominis suspension with mice with high-fat diet-induced obesity and insulin resistance models significantly reduced the mice's obesity and insulin resistance, demonstrating that P. excrementihominis can effectively improve obesity-induced insulin resistance and treat obesity and obesity-related metabolic diseases.
[0018] The beneficial effects of the present invention are as follows:
[0019] The P. excrementihominis bacteria of the present invention can reduce blood glucose levels in mice with obesity and insulin resistance induced by a high-fat diet, playing an important role in the treatment of obesity and type 2 diabetes. P. excrementihominis can also improve adipose tissue inflammation and reduce liver steatosis in mice with obesity and insulin resistance induced by a high-fat diet, playing an important role in the treatment of obesity and non-alcoholic fatty liver disease. Therefore, this provides a new theoretical basis for the future use of P. excrementihominis alone or in combination to improve insulin resistance, obesity, and related metabolic diseases, and is expected to become a new approach for the treatment of obesity and related metabolic diseases. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The specific embodiments of the present invention will be further described in detail below with reference to the accompanying drawings.
[0021] Figure 1 Figure 3 shows the 16S sequencing results of intestinal microorganisms in NCD and HFD mice (A) and the abundance of Parasutterella genus in the intestinal flora of NCD, HFD and HFDA mice (B).
[0022] Figure 2 Figure 5. Metabolic index test results of HFD+PARA_C and HFD+PARA mice; A is body weight; B is blood glucose concentration 30, 60, 90 and 120 minutes after intraperitoneal injection of 20% glucose at 1.5 g / kg; C is statistical analysis of the area under the curve of the glucose tolerance test in Figure B; D is blood glucose concentration 30, 60, 90 and 120 minutes after intraperitoneal injection of insulin at 0.75 IU / kg.
[0023] Figure 3The following are the pathological results of adipose tissue of mice observed by HE staining; among them, A is the pathological result of adipose tissue of NCD mice, B is the pathological result of adipose tissue of HFD mice, C is the pathological result of adipose tissue of HFD+PARA_C mice, and D is the pathological result of adipose tissue of HFD+PARA mice.
[0024] Figure 4 HE staining was used to observe the liver tissue pathological results of mice (A) and the non-alcoholic fatty liver disease activity score (B). DETAILED DESCRIPTION
[0025] In order to more clearly illustrate the present invention, the present invention is further described below in conjunction with preferred embodiments and accompanying drawings. Similar components in the accompanying drawings are represented by the same reference numerals. It should be understood by those skilled in the art that the following detailed description is illustrative rather than restrictive and should not be used to limit the scope of protection of the present invention.
[0026] In the following examples, the P. excrementihominis bacteria were P. excrementihominis strain (JCM15078), purchased from the JCM Collection of Japan.
[0027] Example 1 Application of P. excrementihominis in Improving Insulin Resistance and Treating Obesity and Related Metabolic Diseases
[0028] 1. Parasutterella is closely associated with obesity and insulin resistance
[0029] 6-8 week old SPF male wild-type C57BL / 6 mice were selected and housed in a normal environment for 7 days to adapt to the environment.
[0030] in,
[0031] Normal control group (NCD): mice were fed with normal diet for 20 weeks and had free access to water;
[0032] Obesity and insulin resistance model group (HFD): Mice were fed a high-fat diet (60% high-fat diet, purchased from Research Diets, catalog number D12492) for 16 weeks to establish an obesity and insulin resistance model. After successful model establishment (20% weight increase compared with the normal control group, and the area under the OGTT curve was statistically different from that of the normal control group), they were randomly divided into two groups, namely HFDA (HFD + ACA) and HFD. Among them, the mice in the HFDA group had free access to water, and each mouse was given acarbose (ACA) (dose: 500 mg / kg) added to the drinking water daily for 4 weeks; the mice in the HFD group had free access to water for 4 weeks.
[0033] After 20 weeks of feeding, the mice were fecally collected using the stimulated defecation method on the experimental day. If the stimulated defecation method was unsuccessful, the mice were placed in a sterile cage without bedding. Fecal samples were collected immediately after defecation and placed in 1.5 ml EP tubes. 4-5 fecal samples were collected from each mouse. After collection, the mouse fecal specimens were transported in liquid nitrogen as soon as possible and then frozen in a -80°C freezer.
[0034] 16S rDNA sequencing (Illumina HiSeq 2000) was used to analyze the biodiversity of mouse feces, detect the composition of intestinal flora, and observe the differences in the abundance of intestinal flora in each group of mice. Figure 1 As shown. Among them,
[0035] The intestinal 16S sequencing results of NCD and HFD mice are as follows Figure 1 As shown in Figure A, comparison revealed that NCD and HFD mice had significantly different intestinal flora compositions.
[0036] The abundance of Parasutterella in the intestinal flora of mice in the NCD, HFD and HFDA groups is shown in the figure. Figure 1 As shown in Figure B, the abundance of Parasutterella was significantly decreased in the HFD group compared to the NCD group. However, the abundance of Parasutterella was significantly increased in the HFDA group compared to the HFD group, indicating that acarbose (ACA) treatment can significantly improve the decrease in Parasutterella abundance caused by a high-fat diet.
[0037] These results indicate that a high-fat diet, while causing obesity and insulin resistance in mice, disrupts the balance of their intestinal flora, particularly causing a decrease in the abundance of the genus Parasutterella. However, administration of the type 2 diabetes drug acarbose significantly restored the abundance of Parasutterella, suggesting a close association between intestinal Parasutterella and obesity and insulin resistance.
[0038] 2. Construction of a high-fat diet-induced obesity and insulin resistance model group, and oral gavage treatment
[0039] 6-8 week old SPF-grade wild-type male C57BL / 6 mice were selected and housed in a normal environment for 7 days to acclimate. They were randomly divided into four groups: a normal control group (NCD), an obesity and insulin resistance model group (HFD), an HFD + killed bacteria control group (HFD + PARA_C), and an HFD + live bacterial suspension group (HFD + PARA). Body weights were recorded. The mice were housed in an SPF animal facility at a temperature of 20-26°C, a humidity of 40% to 70%, good ventilation, and 12-hour white-black rotation lighting.
[0040] in,
[0041] Normal control group (NCD): After mice were fed with normal diet for 16 weeks, each mouse was gavaged with 200 μl of sterile water once a day for 4 weeks.
[0042] Obesity and insulin resistance model group (HFD): Mice were fed a high-fat diet (60% high-fat diet, purchased from Research Diets, Catalog No. D12492) for 16 weeks to establish an obesity and insulin resistance model. After successful model establishment (20% weight gain compared to the normal control group and statistically significant difference in the area under the OGTT curve compared to the normal control group), each mouse was gavaged with 200 μl of sterile water once daily for 4 weeks.
[0043] HFD+inactivated bacteria control group (HFD+PARA_C): Mice were fed a high-fat diet (60% high-fat diet, purchased from ResearchDiets, catalog number D12492) for 16 weeks to establish an obesity and insulin resistance model. After successful model establishment (weight gain of 20% compared with the normal control group, and the area under the OGTT curve was statistically different from that of the normal control group), each mouse was given 200 μl of inactivated P. excrementihominis (Japan JCM 15078) suspension (dose: 10 8 CFU / mouse) were administered orally once a day for 4 weeks.
[0044] HFD+viable bacterial suspension group (HFD+PARA): mice were fed a high-fat diet (60% high-fat diet, purchased from Research Diets, catalog number D12492) for 16 weeks to establish an obesity and insulin resistance model. After successful model establishment (weight gain of 20% compared with the normal control group, and the area under the OGTT curve showed statistically significant difference compared with the normal control group), each mouse was given 200 μl of P. excrementihominis (Japan JCM 15078) bacterial suspension (cultured in liquid culture medium under anaerobic conditions to prepare bacterial suspension) by gavage (dose: 10 8 CFU / mouse), once a day for 4 weeks.
[0045] 3. Detection and Analysis of Metabolic and Pathological Indicators
[0046] 1. Detection of metabolic indicators in mice
[0047] The body weight of mice in each group was measured once a week. The body weights and average values of the HFD+PARA_C and HFD+PARA groups were shown in Table 1 after 4 weeks of oral administration of bacterial suspension. Figure 2As shown in middle A, the results showed that compared with HFD+PARA_C mice, HFD+PARA mice had lower body weight, indicating that P. excrementihominis can significantly reduce the weight gain of mice caused by high-fat diet.
[0048] Fasting blood glucose was measured once a week. After successful model establishment and 4 weeks after bacterial suspension supplementation, mice in each group underwent IPGTT (intraperitoneal injection of 20% D-glucose 1.5 g / kg, purchased from Sigma, catalog number G7528-250G) and IPITT (intraperitoneal injection of insulin 0.75 u / kg, purchased from Novo Nordisk, catalog number 202106ABF1). Blood samples were collected by tail clipping before and 30, 60, 90, and 120 minutes after glucose or insulin injection, and blood glucose concentrations were measured. The results are shown in the table below. Figure 2 As shown in B, C and D, the results showed that compared with the mice in the HFD+PARA_C group, the mice in the HFD+PARA group had improved glucose tolerance and increased insulin sensitivity, indicating that P. excrementihominis can significantly improve the impaired glucose tolerance and insulin resistance of mice caused by a high-fat diet.
[0049] The above results show that in the high-fat diet-induced obesity and insulin resistance model, which causes obesity and type 2 diabetes in mice, manifested as weight gain, decreased glucose tolerance and decreased insulin sensitivity, after supplementing with live P. excrementihominis bacterial suspension, the mice's weight and insulin resistance significantly decreased and glucose tolerance improved, indicating that P. excrementihominis can improve obesity and obesity-induced insulin resistance, lower blood sugar levels, and play an important role in the treatment of obesity and type 2 diabetes.
[0050] 2. Pathological changes in adipose tissue
[0051] Mice were killed by overdose anesthesia or cervical dislocation, and the peri-epididymal adipose tissue was obtained, weighed, and made into paraffin sections. The pathological changes of adipose tissue were observed by HE staining. The adipose tissue pathological results of NCD, HFD, HFD+PARA_C, and HFD+PARA mice were as follows: Figure 3 As shown in Figures A, B, C, and D, the results showed that the adipose tissue of NCD mice was uniform in size and had no inflammatory cell infiltration; compared with NCD mice, the adipose vacuoles of HFD mice were significantly enlarged, accompanied by a large number of inflammatory cell infiltration; compared with HFD mice, the adipose tissue of HFD+PARA_C mice did not show a significant reduction, accompanied by inflammatory cell infiltration; compared with HFD+PARA_C mice, the adipose tissue vacuoles of HFD+PARA mice were significantly smaller, and the inflammatory cell infiltration was reduced.
[0052] These results demonstrate that in a high-fat diet-induced model of obesity and insulin resistance, adipose tissue vacuoles significantly enlarge, accompanied by a large infiltration of inflammatory cells. Administration of a P. excrementihominis suspension significantly reduced adipose tissue vacuoles and inflammatory cell infiltration, demonstrating that P. excrementihominis can significantly improve adipose tissue vacuoles and inflammatory infiltration.
[0053] 3. Pathological changes in liver tissue
[0054] Under deep anesthesia, the mouse chest and abdominal cavity were exposed. 30 ml of normal saline was drawn into the syringe to perfuse the liver in vivo until the liver turned white. The gallbladder was cut off and the liver was removed. Part of the liver tissue was made into paraffin sections and the pathological changes of the liver tissue were observed by HE staining. The results are as follows Figure 4 As shown in Figure A, observations at 10x and 20x magnification revealed that compared with NCD mice, HFD mice had a large number of fat vacuoles in the liver tissue, with obvious lobular inflammatory infiltration and obvious ballooning of the liver tissue. Compared with HFD+PARA_C mice, HFD+PARA mice had significantly reduced fat vacuoles in the liver tissue and significantly improved inflammatory necrotic foci. The results of the non-alcoholic fatty liver disease activity score (NAS) were as follows: Figure 4 As shown in Figure 3B, the results showed that the NAS scores of HFD+PARA mice were significantly decreased compared with those of HFD+PARA_C mice.
[0055] These results demonstrate that a high-fat diet-induced obesity and insulin resistance model induces non-alcoholic fatty liver disease in mice, characterized by the presence of numerous fatty vacuoles and ballooning in liver tissue, along with significant lobular inflammatory infiltration and an elevated Non-alcoholic Fatty Liver Disease Activity Score (NAS) score. Administration of a P. excrementihominis suspension significantly reduced fatty vacuoles in liver tissue, ameliorated inflammatory necrotic foci, and decreased the Non-alcoholic Fatty Liver Disease Activity Score (NAS), suggesting that P. excrementihominis plays an important role in the treatment of obesity and non-alcoholic fatty liver disease.
[0056] In summary, P. excrementihominis can lower the blood sugar level in mice, and thus play an important role in the treatment of obesity and type 2 diabetes; P. excrementihominis can also improve adipose tissue inflammation in mice and reduce fatty degeneration of liver tissue, and thus play an important role in the treatment of obesity and non-alcoholic fatty liver disease.
[0057] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not limitations on the implementation methods of the present invention. For ordinary technicians in the relevant field, other different forms of changes or modifications can be made based on the above description. It is impossible to list all the implementation methods here. All obvious changes or modifications derived from the technical solution of the present invention are still within the scope of protection of the present invention.
Claims
1. Strains P. excrementi hominis Use of JCM 15078 in the preparation of a medicament for improving obesity-induced insulin resistance.
2. Strains P. excrementi hominis Use of JCM 15078 in the preparation of a medicament for treating obesity, type 2 diabetes and / or non-alcoholic fatty liver disease.
3. A drug, characterized in that The active ingredients of the drug include strains P. excrementi hominis JCM15078 or its fermentation broth or its bacterial suspension.
Citation Information
Patent Citations
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