Effect of Coleus tuberosus flour high resistant starch consumption in glucose, lipid, digest and short chain fatty acid profile in normal rats

被引:0
作者
Nugraheni, Mutiara [1 ]
Hamidah, Siti [1 ]
Windarwati [2 ]
机构
[1] Department of Cookery Vocational Education, Faculty of Engineering, Yogyakarta State University, Karangmalang, Depok, Sleman, Yogyakarta
[2] Department of Health Republic of Indonesia, Jalan Kesehatan, No. 1, Sekip, Sleman, Yogyakarta
关键词
Coleus tuberosus; Digest; Glucose; Lipids; Resistant starch; SCFA;
D O I
10.19026/ajfst.8.2718
中图分类号
学科分类号
摘要
This research was conducted to study the effect of processing methods on the resistant starch content of Coleus tuberosus and the influence of consumption of Coleus tuberosus flour toward profiles of glucose, lipids (total cholesterol, triglycerides, LDL, HDL), digest and Short Chain Fatty Acids (SCFA) in normal rats. Processing method affects the levels of resistant starch in the Coleus tuberosus starch. The results showed the levels of resistant starch of Coleus tuberosus with different processing are steaming-cooling: 9.5291±0.0724%; boiling-cooling: 9.1235±0.3680% and oven-cooling: 9.0306±0.9570%; raw Coleus tuberosus: 7.5243±0.2054%. Effect of Coleus tuberosus flour consumption with steaming-cooling process controlling glucose and lipid profile in normal rats compared to the other treatment processes. Short-chain fatty acid profiles in all processes showed the greatest proportion of acetic acid, followed by acid propionate and the last is butyric acid. This study shows that Coleus tuberosus flour that produced by heating and followed by cooling process can increase the levels of resistant starch and physiological benefits to the management profile of glucose, lipids, digest and SCFA in normal rats. © Maxwell Scientific Organization, 2015.
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页码:844 / 852
页数:8
相关论文
共 36 条
[1]  
Aluko R.E., Functional Foods and Nutraceuticals, (2012)
[2]  
Ashraf S., Anjum F.M., Nadeem M., Riaz A., Functional and technological aspects of resistant starch, Pak. J. Food Sci, 22, 2, pp. 90-95, (2012)
[3]  
Asp N.G., Bjorck I., Resistant Starch, Review. Trends in Food Science and Technology, 5, 3, pp. 111-114, (1992)
[4]  
Britesa C.M., Trigo M.J., Carrapico B., Alvina M., Bessa R.J., Maize and resistant starch enriched breads reduce postprandial glycemic responses in rats, Nutr. Res, 31, pp. 302-308, (2011)
[5]  
Champ M.L., Noah-Loizeau G., Kozlowski F., Complex Carbohydrates in Foods: Definition, Functionality and Analysis, (1999)
[6]  
Cummings J.H., Bingham S.A., Dietary fiber, fermentation and large bowel cancer, Cancer Surv, 6, pp. 601-621, (1987)
[7]  
Cummings J.H., Metabolism of Dietary Fiber in the Large Intestine, The Role of Dietary Fiber in Enternal Nutrition, (1989)
[8]  
Chiu Y.T., Stewart M.L., Effect of variety and cooking method on resistant starch content of white rice and subsequent postprandial glucose response and appetite in humans, Asia Pac J Clin Nutr, 22, 3, pp. 372-379, (2013)
[9]  
Damat D., Effect of butyrylated arrowroot starch to the digesta profile and molar ratio SCFA, J. Food Res, 2, pp. 144-149, (2013)
[10]  
De Deckere M.E.A., Kloots W.J., Van Amelsvoort J.M.M., Resistant starch decreases serum total cholesterol and triacylglycerol concentrations in the rat, J. Nutr, 123, pp. 2142-2151, (1993)