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      KCI등재 SCIE SCOPUS

      Supplement of High Protein-Enriched Diet Modulates the Diversity of Gut Microbiota in WT or PD-1H-Depleted Mice = Supplement of High Protein-Enriched Diet Modulates the Diversity of Gut Microbiota in WT or PD-1H-Depleted Mice

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      https://www.riss.kr/link?id=A107296489

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      다국어 초록 (Multilingual Abstract)

      Supplement of high-protein food plays an important role in improving the symptoms of malnutrition and the immune capacity of the body, but the association of high-protein diet and gut microbiota remained unaddressed. Here, we systematically analyzed t...

      Supplement of high-protein food plays an important role in improving the symptoms of malnutrition and the immune capacity of the body, but the association of high-protein diet and gut microbiota remained unaddressed. Here, we systematically analyzed the internal organs and gut microbiota in C57(WT) or PD-1H-depleted (KO) mice (T cells were activated) fed with pupae or feed for six weeks. We observed that the body weight gain in the mice fed with pupae increased less significantly than that of the feed group, while the villi and small intestine lengths in the pupa group were reduced compared with that of mice given feed. However, the average body weight of the KO mice increased compared with that of the WT mice fed with pupae or feed. Pupae increased the concentration of blood glucose in WT, but not in KO mice. Moreover, in the feed group, there was no difference in the weight of the internal organs between the WT and KO mice, but in the pupae-fed group, liver weight was decreased and spleen weight was increased compared with that of KO mice. The amounts/plural/amounts of Melainabacteria, Chloroflexi, and Armatimonadetes were specifically upregulated by pupae, and this upregulation was weakened or eliminated by PD-1H depletion. Some bacteria with high abundance in the feed-fed KO mice, such as Deferribacteres, Melainabacteria, Acidobacteria, Bacteroidetes, Spirochaetes and Verrucomicrobia, were decreased in pupae-fed KO mice, and Proteobacteria and Deinococcus were specifically enriched in pupae-fed KO mice. Bacteroidetes, Firmicutes and Akkermansia were associated with weight loss in the pupaefed group while Lachnospiraceae and Anaerobiospirillum were related glucose metabolism and energy consumption. Based on high-throughput sequencing, we discovered that some gut bacteria specifically regulated the metabolism of a high-protein diet, and PD-1H deficiency improved life quality and sustained blood glucose. Moreover, PD-1H responses to high-protein diet through modulating the type and quantity of gut bacteria. These findings provide evidence about the association among gut microbiota, T cell activation (for PD-1H depletion) and high-protein diet metabolism, have important theoretical significance for nutrition and health research.

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      참고문헌 (Reference)

      1 Rock CL, "Weight loss, glycemic control, and cardiovascular disease risk factors in response to differential diet composition in a weight loss program in type 2 diabetes : a randomized controlled trial" 37 : 1573-1580, 2014

      2 Wang L, "Vista, a novel mouse ig superfamily ligand that negatively regulates t cell responses" 208 : 577-592, 2011

      3 Edgar RC, "Uparse : highly accurate otu sequences from microbial amplicon reads" 10 : 996-998, 2013

      4 Matarese G, "The intricate interface between immune system and metabolism" 25 : 193-200, 2004

      5 Kawamoto S, "The inhibitory receptor pd-1 regulates iga selection and bacterial composition in the gut" 336 : 485-489, 2012

      6 Lee PC, "Succinic acid production with reduced by-product formation in the fermentation of anaerobiospirillum succiniciproducens using glycerol as a carbon source" 72 : 41-48, 2001

      7 Besedovsky L, "Sleep and immune function" 463 : 121-137, 2012

      8 Everard A, "Responses of gut microbiota and glucose and lipid metabolism to prebiotics in genetic obese and diet-induced leptin-resistant mice" 60 : 2775-2786, 2011

      9 Bolyen E, "Reproducible, interactive, scalable and extensible microbiome data science using QIIME 2" 37 : 852-857, 2019

      10 Caporaso JG, "Qiime allows analysis of high-throughput community sequencing data" 7 : 335-336, 2010

      1 Rock CL, "Weight loss, glycemic control, and cardiovascular disease risk factors in response to differential diet composition in a weight loss program in type 2 diabetes : a randomized controlled trial" 37 : 1573-1580, 2014

      2 Wang L, "Vista, a novel mouse ig superfamily ligand that negatively regulates t cell responses" 208 : 577-592, 2011

      3 Edgar RC, "Uparse : highly accurate otu sequences from microbial amplicon reads" 10 : 996-998, 2013

      4 Matarese G, "The intricate interface between immune system and metabolism" 25 : 193-200, 2004

      5 Kawamoto S, "The inhibitory receptor pd-1 regulates iga selection and bacterial composition in the gut" 336 : 485-489, 2012

      6 Lee PC, "Succinic acid production with reduced by-product formation in the fermentation of anaerobiospirillum succiniciproducens using glycerol as a carbon source" 72 : 41-48, 2001

      7 Besedovsky L, "Sleep and immune function" 463 : 121-137, 2012

      8 Everard A, "Responses of gut microbiota and glucose and lipid metabolism to prebiotics in genetic obese and diet-induced leptin-resistant mice" 60 : 2775-2786, 2011

      9 Bolyen E, "Reproducible, interactive, scalable and extensible microbiome data science using QIIME 2" 37 : 852-857, 2019

      10 Caporaso JG, "Qiime allows analysis of high-throughput community sequencing data" 7 : 335-336, 2010

      11 Caporaso JG, "PyNAST : a flexible tool for aligning sequences to a template alignment" 26 : 266-267, 2010

      12 Douglas PJ, "Protein, weight management, and satiety" 87 : 1558-1561, 2008

      13 Veiga-Fernandes H, "Neuro-immune interactions at barrier surfaces" 165 : 801-811, 2016

      14 Vijay-Kumar M, "Metabolic syndrome and altered gut microbiota in mice lacking toll-like receptor 5" 328 : 228-231, 2010

      15 Wu GD, "Linking long-term dietary patterns with gut microbial enterotypes" 334 : 105-108, 2011

      16 Zenewicz LA, "Il-22 deficiency alters colonic microbiota to be transmissible and colitogenic" 190 : 5306-5312, 2013

      17 Russell WR, "High-protein, reduced-carbohydrate weight-loss diets promote metabolite profiles likely to be detrimental to colonic health" 5 : 1062-1072, 2011

      18 Johnston CS, "High-protein, low-fat diets are effective for weight loss and favorably alter biomarkers in healthy adults" 3 : 586-591, 2004

      19 Hildebrandt MA, "High-fat diet determines the composition of the murine gut microbiome independently of obesity" 137 : 716-1724, 2009

      20 Manci EA, "High protein diet attenuates histopathologic organ damage and vascular leakage in transgenic murine model of sickle cell anemia" 239 : 966-974, 2014

      21 Lorenza P, "Gut microbiota dysbiosis as risk and premorbid factors of IBD and IBS along the childhood-adulthood transition" 22 : 487-504, 2015

      22 Jianming L, "Ganoderma lucidum polysaccharide alleviating colorectal cancer by alteration of special gut bacteria and regulation of gene expression of colonic epithelial cells" 47 : 127-135, 2018

      23 Jumpertz R, "Energy-balance studies reveal associations between gut microbes, caloric load, and nutrient absorption in humans" 94 : 58-65, 2011

      24 Sargrad KR, "Effect of high protein vs high carbohydrate intake on insulin sensitivity, body weight, hemoglobin a1c, and blood pressure in patients with type 2 diabetes mellitus" 105 : 573-580, 2005

      25 Riccardi G, "Dietary treatment of the metabolic syndrome--the optimal diet" 83 (83): S143-S148, 2000

      26 Cotillard A, "Dietary intervention impact on gut microbial gene richness" 500 : 585-588, 2013

      27 Varma Y, "Diet rapidly and reproducibly alters the human gut microbiome" 505 : 559-563, 2014

      28 Gabriele M, "Diet bioactive compounds : implications for oxidative stress and inflammation in the vascular system" 17 : 264-275, 2017

      29 Everard A, "Cross-talk between akkermansia muciniphila and intestinal epithelium controls diet-induced obesity" 110 : 9066-9071, 2013

      30 Everard A, "Cross-talk between akkermansia muciniphila and intestinal epithelium controls diet-induced obesity" 110 : 9066-9071, 2013

      31 Flies DB, "Coinhibitory receptor pd-1h preferentially suppresses cd4+ t cell–mediated immunity" 124 : 1966-1975, 2014

      32 Marcos A, "Changes in the immune system are conditioned by nutrition" 57 (57): S66-69, 2003

      33 Inokuchi R, "Anaerobiospirillum succiniciproducens-induced bacteremia in a healthy man" 32 : 812-, 2014

      34 Méndez-Salazar EO, "Altered gut microbiota and compositional changes in firmicutes and proteobacteria in mexican undernourished and obese children" 9 : 2494-, 2018

      35 Plovier H, "A purified membrane protein from akkermansia muciniphila or the pasteurized bacterium improves metabolism in obese and diabetic mice" 23 : 107-113, 2016

      36 Anhê F F, "A polyphenol-rich cranberry extract protects from dietinduced obesity, insulin resistance and intestinal inflammation in association with increased akkermansia spp. population in the gut microbiota of mice" 64 : 872-883, 2015

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
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      2006-04-04 학술지명변경 한글명 : -> Journal of Microbiology and Biotechnology KCI등재
      2006-03-30 학술지등록 한글명 :
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      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2004-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2001-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.59 0.33 1.17
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.91 0.78 0.472 0.08
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