• Title/Summary/Keyword: gut-microbiome

Search Result 136, Processing Time 0.023 seconds

Effect of Heme-rich Nutrient on Anaerobic Bacterial Growth and Survival: A Model Study on Lactobacillus gasseri (헴철이 풍부한 영양원이 혐기성 세균의 생장과 생존에 미치는 영향: 락토바실러스 가세리 모델연구)

  • Lee, Seungki;Kim, Pil
    • Microbiology and Biotechnology Letters
    • /
    • v.49 no.1
    • /
    • pp.57-64
    • /
    • 2021
  • Lactic acid bacteria (LAB), belonging to the Firmicutes phylum, lack heme biosynthesis and, thus, are characterized as fermentative and catalase-negative organisms. To verify the hypothesis that heme-rich-nutrients might compensate the heme-biosynthesis incapability of non-respiratory LAB in animal gut, a heme-rich-nutrient was fed to a dog and its fecal microbiome was analyzed. Firmicutes abundance in the feces from the heme-rich-nutrient-fed dog was 99%, compared to 92% in the control dog. To clarify the reason of increased Firmicutes abundance in the feces from the heme-rich-nutrient-fed dog, Lacobacillus gasseri were used as model anerobic LAB to study a purified heme (hemin). The anaerobic growth of L. gasseri in the medium with 25 µM hemin supplementation was faster than that in the medium without hemin, while the growth in the 50 µM hemin-supplemented medium did not vary. Cellular activities of the cytochrome bd complex were 1.55 ± 0.19, 2.11 ± 0.14, and 2.20 ± 0.08 U/gcell in the cells from 0, 25, and 50 µM hemin-supplemented medium, while intracellular ATP concentrations were 7.90 ± 1.12, 11.95 ± 0.68, and 12.56 ± 0.58 µmolATP/gcell, respectively. The ROS-scavenging activities of the L. gasseri cytosol from 25 µM and 50 µM hemin-supplemented medium were 68% and 82% greater than those of the cytosol from no hemin supplemented-medium, respectively. These findings indicate that external hemin could compensate the heme-biosynthesis incapability of L. gasseri by increasing the cytosolic ROS-scavenging and extra ATP generation, possibly through increasing the electron transfer. Increase in the number of anaerobic bacteria in heme-rich-nutrient-fed animal gut is discussed based on the results.

Breastfeeding and Melatonin (모유 수유와 멜라토닌)

  • Song, Minyu;Park, Won Seo;Yoo, Jayeon;Ham, Jun-Sang
    • Journal of Dairy Science and Biotechnology
    • /
    • v.36 no.3
    • /
    • pp.133-145
    • /
    • 2018
  • Breastfeeding is highly recommended due to its benefits for both the infant and mother; however, most mothers predominantly use formula feed. Breastfeeding affords protection against a wide variety of medical conditions that may emerge at different time points over the lifespan, including hospital admissions for respiratory infections and neonatal fever, offspring childhood obesity, and cancer as well as cardiovascular disease, hyperlipidemia, hypertension, and diabetes. Moreover, breastfeeding is expected to decrease the risk of adolescent depression and other psychopathologies. It is also important for the development of the gut, gut-brain axis, and immune system, and night-time breast milk is likely to have higher antioxidant, anti-inflammatory, and immune regulatory effects due to the impact of breast milk melatonin on the infant's developing microbiome and gut permeability. Melatonin can be added to a night-time-specific formula feed; however, it is not included in the Korean Food Additive Codex.

Characterization of Lactobacillus plantarum strains isolated from black raspberry and their effect on BALB/c mice gut microbiota

  • Choi, Hye Ran;Chung, Yi Hyung;Yuk, Hyun-Gyun;Lee, Hyunki;Jang, Han Su;Kim, Yosum;Shin, Daekeun
    • Food Science and Biotechnology
    • /
    • v.27 no.6
    • /
    • pp.1747-1754
    • /
    • 2018
  • The objective of this study was to evaluate probiotic effects of two Lactobacillus plantarum strains (GBL16 and 17) isolated from black raspberry. Results revealed that the number of GBL16 was gradually decreased as bile salt concentration was increased from 0.3 to 1%. However, GBL17 did not show any difference when GBL17 was applied to 1% bile salt, and it indicates that GBL17 is more tolerant to bile salt than GBL16. GBL17 exhibited higher heat resistance and adhesion ability to Caco-2 cells than GBL16. Regarding gut microbiome, no significant change in the number of total bacteria in intestines of mice after treatment with GBLs was determined. However, the combination of GBL16 and GBL17 significantly increased the number of total bacteria in intestines of mice after they were orally administered. Therefore, the results suggest that both GBL16 and 17 strains could be one of major probiotics that can improve human gut health.

A Study on Changes in the Gut Microbiome of Herbal Medicines for Treating Obesity Using Literature Review (문헌 고찰을 통한 비만 치료 한약의 장내미생물 변화 연구)

  • Kim, Seung Won;Cheon, Jin Hong;Kim, Ki Bong
    • The Journal of Pediatrics of Korean Medicine
    • /
    • v.36 no.2
    • /
    • pp.40-51
    • /
    • 2022
  • Objective This study identified useful herbal medicines and prescriptions for obesity treatment by analyzing herbal medicines and prescriptions that showed meaningful results in weight loss by changing the gut microbiota. Methods Using PubMed, we selected and studied 23 papers showing meaningful results on weight loss through changes in the gut microbiota using herbal medicines. Result Of the 23 selected papers, 17 were of studies using herbal medicines, and 6 of studies using prescriptions. Pomegranate peel, Flos Lonicera, Rehmannia glutinosa, Rhein, Coix seed, Platycodon grandiflorus, mulberry leaves, Poria cocos, asperuloside, Bupleuri radix, Astragalus polysaccharides, Ephedra sinica, Ganoderma lucidum, Hirsutella sinensis, Caulis spatholobi, aconite, and Bletilla striata were used as herbal medicine. Linggui zhugan-tang, Bofutsushosan, Shenling baizhu powder, Chowiseungcheng-tang, Daesiho-tang, and Yijin-tang were used as prescription. Conclusion Seventeen herbal medicines and six prescriptions associated with meaningful results in weight loss through changes in the gut microbiota, suggest the possibility of treatment and prevention of obesity through herbal medicine.

Heat stress on microbiota composition, barrier integrity, and nutrient transport in gut, production performance, and its amelioration in farm animals

  • Patra, Amlan Kumar;Kar, Indrajit
    • Journal of Animal Science and Technology
    • /
    • v.63 no.2
    • /
    • pp.211-247
    • /
    • 2021
  • Livestock species experience several stresses, particularly weaning, transportation, overproduction, crowding, temperature, and diseases in their life. Heat stress (HS) is one of the most stressors, which is encountered in livestock production systems throughout the world, especially in the tropical regions and is likely to be intensified due to global rise in environmental temperature. The gut has emerged as one of the major target organs affected by HS. The alpha- and beta-diversity of gut microbiota composition are altered due to heat exposure to animals with greater colonization of pathogenic microbiota groups. HS also induces several changes in the gut including damages of microstructures of the mucosal epithelia, increased oxidative insults, reduced immunity, and increased permeability of the gut to toxins and pathogens. Vulnerability of the intestinal barrier integrity leads to invasion of pathogenic microbes and translocation of antigens to the blood circulations, which ultimately may cause systematic inflammations and immune responses. Moreover, digestion of nutrients in the guts may be impaired due to reduced enzymatic activity in the digesta, reduced surface areas for absorption and injury to the mucosal structure and altered expressions of the nutrient transport proteins and genes. The systematic hormonal changes due to HS along with alterations in immune and inflammatory responses often cause reduced feed intake and production performance in livestock and poultry. The altered microbiome likely orchestrates to the hosts for various relevant biological phenomena occurring in the body, but the exact mechanisms how functional communications occur between the microbiota and HS responses are yet to be elucidated. This review aims to discuss the effects of HS on microbiota composition, mucosal structure, oxidant-antioxidant balance mechanism, immunity, and barrier integrity in the gut, and production performance of farm animals along with the dietary ameliorations of HS. Also, this review attempts to explain the mechanisms how these biological responses are affected by HS.

Associations of physical activity with gut microbiota in pre-adolescent children

  • Santarossa, Sara;Sitarik, Alexandra R.;Johnson, Christine Cole;Li, Jia;Lynch, Susan V.;Ownby, Dennis R.;Ramirez, Alex;Yong, Germaine LM.;Cassidy-Bushrow, Andrea E.
    • Korean Journal of Exercise Nutrition
    • /
    • v.25 no.4
    • /
    • pp.24-37
    • /
    • 2021
  • [Purpose] To determine whether physical activity (PA), primarily the recommended 60 minutes of moderate-to-vigorous PA, is associated with gut bacterial microbiota in 10-year-old children. [Methods] The Block Physical Activity Screener, which provides minutes/day PA variables, was used to determine whether the child met the PA recommendations. 16S rRNA sequencing was performed on stool samples from the children to profile the composition of their gut bacterial microbiota. Differences in alpha diversity metrics (richness, Pielou's evenness, and Faith's phylogenetic diversity) by PA were determined using linear regression, whereas beta diversity (unweighted and weighted UniFrac) relationships were assessed using PERMANOVA. Taxon relative abundance differentials were determined using DESeq2. [Results] The analytic sample included 321 children with both PA and 16S rRNA sequencing data (mean age [SD] =10.2 [0.8] years; 54.2% male; 62.9% African American), where 189 (58.9%) met the PA recommendations. After adjusting for covariates, meeting the PA recommendations as well as minutes/day PA variables were not significantly associated with gut richness, evenness, or diversity (p ≥ 0.19). However, meeting the PA recommendations (weighted UniFrac R2 = 0.014, p = 0.001) was significantly associated with distinct gut bacterial composition. These compositional differences were partly characterized by increased abundance of Megamonas and Anaerovorax as well as specific Christensenellaceae_R-7_group taxa in children with higher PA. [Conclusion] Children who met the recommendations of PA had altered gut microbiota compositions. Whether this translates to a reduced risk of obesity or associated metabolic diseases is still unclear.

Gut microbiota-generated metabolites: missing puzzles to hosts' health, diseases, and aging

  • Yan Zhang;Shibo Wei;Hang Zhang;Yunju Jo;Jong-Sun Kang;Ki-Tae Ha;Jongkil Joo;Hyun Joo Lee;Dongryeol Ryu
    • BMB Reports
    • /
    • v.57 no.5
    • /
    • pp.207-215
    • /
    • 2024
  • The gut microbiota, an intricate community of bacteria residing in the gastrointestinal system, assumes a pivotal role in various physiological processes. Beyond its function in food breakdown and nutrient absorption, gut microbiota exerts a profound influence on immune and metabolic modulation by producing diverse gut microbiota-generated metabolites (GMGMs). These small molecules hold potential to impact host health via multiple pathways, which exhibit remarkable diversity, and have gained increasing attention in recent studies. Here, we elucidate the intricate implications and significant impacts of four specific metabolites, Urolithin A (UA), equol, Trimethylamine N-oxide (TMAO), and imidazole propionate, in shaping human health. Meanwhile, we also look into the advanced research on GMGMs, which demonstrate promising curative effects and hold great potential for further clinical therapies. Notably, the emergence of positive outcomes from clinical trials involving GMGMs, typified by UA, emphasizes their promising prospects in the pursuit of improved health and longevity. Collectively, the multifaceted impacts of GMGMs present intriguing avenues for future research and therapeutic interventions.

Interactions between NCR+ILC3s and the Microbiome in the Airways Shape Asthma Severity

  • Jongho Ham;Jihyun Kim;Sungmi Choi;Jaehyun Park;Min-gyung Baek;Young-Chan Kim;Kyoung-Hee Sohn;Sang-Heon Cho;Siyoung Yang;Yong-Soo Bae;Doo Hyun Chung;Sungho Won;Hana Yi;Hye Ryun Kang;Hye Young Kim
    • IMMUNE NETWORK
    • /
    • v.21 no.4
    • /
    • pp.25.1-25.16
    • /
    • 2021
  • Asthma is a heterogeneous disease whose development is shaped by a variety of environmental and genetic factors. While several recent studies suggest that microbial dysbiosis in the gut may promote asthma, little is known about the relationship between the recently discovered lung microbiome and asthma. Innate lymphoid cells (ILCs) have also been shown recently to participate in asthma. To investigate the relationship between the lung microbiome, ILCs, and asthma, we recruited 23 healthy controls (HC), 42 patients with non-severe asthma, and 32 patients with severe asthma. Flow cytometry analysis showed severe asthma associated with fewer natural cytotoxicity receptor (NCR)+ILC3s in the lung. Similar changes in other ILC subsets, macrophages, and monocytes were not observed. The asthma patients did not differ from the HC in terms of the alpha and beta-diversity of the lung and gut microbiomes. However, lung function correlated positively with both NCR+ILC3 frequencies and microbial diversity in the lung. Sputum NCR+ILC3 frequencies correlated positively with lung microbiome diversity in the HC, but this relationship was inversed in severe asthma. Together, these data suggest that airway NCR+ILC3s may contribute to a healthy commensal diversity and normal lung function.