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    Effect of Chlorella vulgaris on gut microbiota through a simulated in vitro digestion process

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    https://www.riss.kr/link?id=A107316879

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    The diet plays a fundamental role in the formation of the gut microbiota, determining the interrelationship between the gut microbiota and the host. The current study investigated the effect of Chlorella vulgaris on the gut microbiota by using simulated in vitro digestion and colonic fermentation.
    Bioaccessibility was measured after in vitro digestion, and SCFAs and microbial profiling were analyzed after colonic fermentation.
    The bioaccessibility of C. vulgaris was 0.24 g/g. The three major SCFAs (acetate, propionate, and butyrate) increased significantly when compared to the control group. In microbial profiling analysis, microorganisms such as Faecalibacterium, Dialister, Megasphaera, Dorea, Odoribacter, Roseburia, Bifidobacterium, Butyricmonas, and Veillonella were high in C. vulgaris group.
    Among them, Faecalibacterium, Dialister, Megasphaera, Roseburia, and Veillonella were thought to be closely associated with the increased level of SCFAs. Finally, it can be expected to help improve gut microbiota and health through ingestion of C.
    vulgaris. However, further studies are vital to confirm the changes in the gut microbiota in in vivo, when C. vulgaris is ingested.
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    The diet plays a fundamental role in the formation of the gut microbiota, determining the interrelationship between the gut microbiota and the host. The current study investigated the effect of Chlorella vulgaris on the gut microbiota by using simulat...

    The diet plays a fundamental role in the formation of the gut microbiota, determining the interrelationship between the gut microbiota and the host. The current study investigated the effect of Chlorella vulgaris on the gut microbiota by using simulated in vitro digestion and colonic fermentation.
    Bioaccessibility was measured after in vitro digestion, and SCFAs and microbial profiling were analyzed after colonic fermentation.
    The bioaccessibility of C. vulgaris was 0.24 g/g. The three major SCFAs (acetate, propionate, and butyrate) increased significantly when compared to the control group. In microbial profiling analysis, microorganisms such as Faecalibacterium, Dialister, Megasphaera, Dorea, Odoribacter, Roseburia, Bifidobacterium, Butyricmonas, and Veillonella were high in C. vulgaris group.
    Among them, Faecalibacterium, Dialister, Megasphaera, Roseburia, and Veillonella were thought to be closely associated with the increased level of SCFAs. Finally, it can be expected to help improve gut microbiota and health through ingestion of C.
    vulgaris. However, further studies are vital to confirm the changes in the gut microbiota in in vivo, when C. vulgaris is ingested.

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    참고문헌 (Reference)

    1 Kuczynski J, "Using QIIME to analyze 16S rRNA gene sequences from microbial communities" 36 : 10.7.1-10.7.20, 2011

    2 Pérez-Burillo S, "Towards an improved global antioxidant response method(GAR+) : Physiologicalresembling in vitro digestion-fermentation method" 239 : 1253-1262, 2018

    3 McNabney SM, "Short chain fatty acids in the colon and peripheral tissues : a focus on butyrate, colon cancer, obesity and insulin resistance" 9 : 1348-, 2017

    4 Ramakrishna BS, "Role of the gut microbiota in human nutrition and metabolism" 28 : 9-17, 2013

    5 van der Beek CM, "Role of short-chain fatty acids in colonic inflammation, carcinogenesis, and mucosal protection and healing" 75 : 286-305, 2017

    6 Sarao LK, "Probiotics, prebiotics, and microencapsulation : a review" 57 : 344-371, 2017

    7 Sanders ME, "Probiotics and prebiotics in intestinal health and disease : from biology to the clinic" 16 : 605-616, 2019

    8 Reichardt N, "Phylogenetic distribution of three pathways for propionate production within the human gut microbiota" 8 : 1323-1335, 2014

    9 Fu X, "Nondigestible carbohydrates, butyrate, and butyrate-producing bacteria" 59 : S130-S152, 2019

    10 Dhariwal A, "MicrobiomeAnalyst : a web-based tool for comprehensive statistical, visual and meta-analysis of microbiome data" 45 : W180-W188, 2017

    1 Kuczynski J, "Using QIIME to analyze 16S rRNA gene sequences from microbial communities" 36 : 10.7.1-10.7.20, 2011

    2 Pérez-Burillo S, "Towards an improved global antioxidant response method(GAR+) : Physiologicalresembling in vitro digestion-fermentation method" 239 : 1253-1262, 2018

    3 McNabney SM, "Short chain fatty acids in the colon and peripheral tissues : a focus on butyrate, colon cancer, obesity and insulin resistance" 9 : 1348-, 2017

    4 Ramakrishna BS, "Role of the gut microbiota in human nutrition and metabolism" 28 : 9-17, 2013

    5 van der Beek CM, "Role of short-chain fatty acids in colonic inflammation, carcinogenesis, and mucosal protection and healing" 75 : 286-305, 2017

    6 Sarao LK, "Probiotics, prebiotics, and microencapsulation : a review" 57 : 344-371, 2017

    7 Sanders ME, "Probiotics and prebiotics in intestinal health and disease : from biology to the clinic" 16 : 605-616, 2019

    8 Reichardt N, "Phylogenetic distribution of three pathways for propionate production within the human gut microbiota" 8 : 1323-1335, 2014

    9 Fu X, "Nondigestible carbohydrates, butyrate, and butyrate-producing bacteria" 59 : S130-S152, 2019

    10 Dhariwal A, "MicrobiomeAnalyst : a web-based tool for comprehensive statistical, visual and meta-analysis of microbiome data" 45 : W180-W188, 2017

    11 Cani PD, "Human gut microbiome : hopes, threats and promises" 67 : 1716-1725, 2018

    12 Rowland I, "Gut microbiota functions : metabolism of nutrients and other food components" 57 : 1-24, 2017

    13 Fava F, "Gut microbiota and health : connecting actors across the metabolic system" 78 : 177-188, 2019

    14 DeSantis TZ, "Greengenes, a chimerachecked 16S rRNA gene database and workbench compatible with ARB" 72 : 5069-5072, 2006

    15 Ercolini D, "Food design to feed the human gut microbiota" 66 : 3754-3758, 2018

    16 Long W, "Differential responses of gut microbiota to the same prebiotic formula in oligotrophic and eutrophic batch fermentation systems" 5 : 13469-, 2015

    17 David LA, "Diet rapidly and reproducibly alters the human gut microbiome" 505 : 559-563, 2014

    18 Panahi Y, "Chlorella vulgaris : a multifunctional dietary supplement with diverse medicinal properties" 22 : 164-173, 2016

    19 Lyu Y, "Bioaccessibility of carotenoids and antioxidant capacity of seed-used pumpkin byproducts powders as affected by particle size and corn oil during in vitro digestion process" 343 : 128541-, 2021

    20 Ngo N, "Bifidobacterium spp : the promising Trojan Horse in the era of precision oncology" 15 : 3861-3876, 2019

    21 Adak A, "An insight into gut microbiota and its functionalities" 76 : 473-493, 2019

    22 Fadrosh DW, "An improved dual-indexing approach for multiplexed 16S rRNA gene sequencing on the Illumina MiSeq platform" 2 : 6-, 2014

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2007-05-09 학술지명변경 한글명 : Agricultrual Chemistry and Biotechnology -> Journal of Applied Biological Chemistry
    외국어명 : 미등록 -> Journal of Applied Biological Chemistry
    KCI등재
    2006-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2003-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2002-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2000-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.41 0.41 0.39
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.4 0.44 0.741 0.16
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