Heat-treated brown rice starch structure and effect on short-chain fatty acids and mouse intestinal microbiota

被引:3
作者
Park, Jiyoung [1 ]
Mok, Boram [2 ]
Chung, Hyun-Jung [3 ]
Park, Hye Young [1 ]
Kim, Hong-Sik [1 ]
机构
[1] Rural Dev Adm, Dept Cent Area Crop Sci, Natl Inst Crop Sci, 126 Suin Ro, Suwon 16429, Gyeonggi, South Korea
[2] GEORGETOWN UNIV, Dept Oncol, Sch Med, 3900 Reservoir Rd NW, WASHINGTON, DC 20007 USA
[3] Chonnam Natl Univ, Div Food & Nutr, Gwangju 61186, South Korea
关键词
Rice starch structure; Short-chain fatty acids; Intestinal microbiota; BUTYRATE-PRODUCING BACTERIA; RESISTANT STARCH; LARGE-BOWEL; OBESITY; DIGESTIBILITY; METABOLISM; OVERWEIGHT; EXPRESSION; DIVERSITY; WEIGHT;
D O I
10.1016/j.ijbiomac.2024.137597
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Rice with high resistant starch (RS) exhibits the potential to improve glucose metabolism, insulin sensitivity. In this study, using two rice varieties-Samgwang, a medium-amylose rice, and Dodamssal, a high-amylose rice containing RS-we analyzed the composition and molecular structural characteristics of brown rice and its starch and the effects on fasting blood glucose levels, fecal short-chain fatty acid (SCFA), and gut microbiota after 8 weeks of consumption in mice. The amylose content of heat-treated Samgwang (HS) and -Dodamssal (HD) was 21.0 f 0.2 and 47.5 f 0.3 %, respectively, while RS contents were 0.8 f 0.0 and 14.7 f 1.0 %. HD exhibited a C-type starch crystallinity with a lower proportion of short chains and a higher proportion of long chains compared to HS. HD-fed mice exhibited lower fasting blood glucose levels and the highest SCFA levels in their feces. They also had the highest abundance of Ruminococcus bromii, an RS-degrading bacterium, the highest positive correlation with Faecalicatena fissicatena (r = 0.9), and the highest negative correlation with Lachnoclostridium scindens and Lawsonibacter asaccharolyticus (r = -0.8). Overall, HD consumption can improve glucose metabolism by increasing intestinal SCFA production and can serve as a prebiotic dietary ingredient to improve obesity and diabetes.
引用
收藏
页数:11
相关论文
共 50 条
[41]   SMALL-INTESTINAL MALABSORPTION AND COLONIC FERMENTATION OF RESISTANT STARCH AND RESISTANT PEPTIDES TO SHORT-CHAIN FATTY-ACIDS [J].
NORDGAARD, I ;
MORTENSEN, PB ;
LANGKILDE, AM .
NUTRITION, 1995, 11 (02) :129-137
[42]   Free Fatty Acids Profiles Are Related to Gut Microbiota Signatures and Short-Chain Fatty Acids [J].
Rodriguez-Carrio, Javier ;
Salazar, Nuria ;
Margolles, Abelardo ;
Gonzalez, Sonia ;
Gueimonde, Miguel ;
de los Reyes-Gavilan, Clara G. ;
Suarez, Ana .
FRONTIERS IN IMMUNOLOGY, 2017, 8
[43]   Gut Microbiota-Derived Short-Chain Fatty Acids: Novel Regulators of Intestinal Serotonin Transporter [J].
Buey, Berta ;
Forcen, Ana ;
Grasa, Laura ;
Layunta, Elena ;
Mesonero, Jose Emilio ;
Latorre, Eva .
LIFE-BASEL, 2023, 13 (05)
[44]   The relationship among gut microbiota, short-chain fatty acids, and intestinal morphology of growing and healthy broilers [J].
Liao, Xiudong ;
Shao, Yuxin ;
Sun, Guangming ;
Yang, Yunfeng ;
Zhang, Liyang ;
Guo, Yanli ;
Luo, Xugang ;
Lu, Lin .
POULTRY SCIENCE, 2020, 99 (11) :5883-5895
[45]   The Role of Short-Chain Fatty Acids of Gut Microbiota Origin in Hypertension [J].
Wu, Yeshun ;
Xu, Hongqing ;
Tu, Xiaoming ;
Gao, Zhenyan .
FRONTIERS IN MICROBIOLOGY, 2021, 12
[46]   The role of short-chain fatty acids in the interplay between diet, gut microbiota, and host energy metabolism [J].
den Besten, Gijs ;
van Eunen, Karen ;
Groen, Albert K. ;
Venema, Koen ;
Reijngoud, Dirk-Jan ;
Bakker, Barbara M. .
JOURNAL OF LIPID RESEARCH, 2013, 54 (09) :2325-2340
[47]   Taxonomic Characterization and Short-Chain Fatty Acids Production of the Obese Microbiota (vol 11, 598093, 2021) [J].
Martinez-Cuesta, M. C. ;
del Campo, R. ;
Garriga-Garcia, M. ;
Pelaez, C. ;
Requena, T. .
FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2021, 11
[48]   Short-chain fatty acids: a link between prebiotics and microbiota in chronic kidney disease [J].
Esgalhado, Marta ;
Kemp, Julie A. ;
Damasceno, Nagila R. T. ;
Fouque, Denis ;
Mafra, Denise .
FUTURE MICROBIOLOGY, 2017, 12 (15) :1413-1425
[49]   Unraveling the gut microbiota and short-chain fatty acids characteristics and associations in a cancer cachexia mouse model [J].
Liu, Hao ;
Cheng, Yuxi ;
Qu, Yidan ;
Wu, Guohao .
MICROBIAL PATHOGENESIS, 2023, 183
[50]   A newly developed solution for the preservation of short-chain fatty acids, bile acids, and microbiota in fecal specimens [J].
Takagi, Tomohisa ;
Kunihiro, Tadao ;
Takahashi, Shunsuke ;
Hisada, Takayoshi ;
Nagashima, Koji ;
Mochizuki, Jun ;
Mizushima, Katsura ;
Naito, Yuji .
JOURNAL OF CLINICAL BIOCHEMISTRY AND NUTRITION, 2023, 72 (03) :263-269