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PMID: 22457395 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Resistant starches protect against colonic DNA damage and alter microbiota and gene expression in rats fed a Western diet.

The Journal of nutrition ·Vol. 142 ·No. 5 ·2012-05-00 ·Pages 832-40

Conlon MA, Kerr CA, McSweeney CS, Dunne RA, Shaw JM, Kang S, Bird AR, Morell MK, Lockett TJ, Molloy PL, Regina A, Toden S, Clarke JM, Topping DL

Abstract

Resistant starch (RS), fed as high amylose maize starch (HAMS) or butyrylated HAMS (HAMSB), opposes dietary protein-induced colonocyte DNA damage in rats. In this study, rats were fed Western-type diets moderate in fat (19%) and protein (20%) containing digestible starches [low amylose maize starch (LAMS) or low amylose whole wheat (LAW)] or RS [HAMS, HAMSB, or a whole high amylose wheat (HAW) generated by RNA interference] for 11 wk (n = 10/group). A control diet included 7% fat, 13% protein, and LAMS. Colonocyte DNA single-strand breaks (SSB) were significantly higher (by 70%) in rats fed the Western diet containing LAMS relative to controls. Dietary HAW, HAMS, and HAMSB opposed this effect while raising digesta levels of SCFA and lowering ammonia and phenol levels. SSB correlated inversely with total large bowel SCFA, including colonic butyrate concentration (R(2) = 0.40; P = 0.009), and positively with colonic ammonia concentration (R(2) = 0.40; P = 0.014). Analysis of gut microbiota populations using a phylogenetic microarray revealed profiles that fell into 3 distinct groups: control and LAMS; HAMS and HAMSB; and LAW and HAW. The expression of colonic genes associated with the maintenance of genomic integrity (notably Mdm2, Top1, Msh3, Ung, Rere, Cebpa, Gmnn, and Parg) was altered and varied with RS source. HAW is as effective as HAMS and HAMSB in opposing diet-induced colonic DNA damage in rats, but their effects on the large bowel microbiota and colonocyte gene expression differ, possibly due to the presence of other fiber components in HAW.

MeSH Terms
Amylose/pharmacology Animal Feed Animals Bacteria/drug effects,growth & development Colon/microbiology,physiology Colorectal Neoplasms/epidemiology,genetics,prevention & control DNA Damage/physiology Dietary Carbohydrates/pharmacology Dietary Fiber/pharmacology Dietary Proteins/pharmacology Gene Expression/physiology Gene Expression Regulation, Neoplastic/drug effects,physiology Male Metagenome/physiology Rats Rats, Sprague-Dawley Risk Factors Starch/pharmacology Zea mays
Chemicals
Dietary Carbohydrates Dietary Fiber Dietary Proteins Starch Amylose
Authors & Affiliations
14 authors, click to expand affiliations / ORCID
Conlon Michael A
CSIRO Preventative Health, Adelaide, South Australia, Australia.
Kerr Caroline A
McSweeney Christopher S
Dunne Robert A
Shaw Janet M
Kang Seungha
Bird Anthony R
Morell Matthew K
Lockett Trevor J
Molloy Peter L
Regina Ahmed
Toden Shusuke
Clarke Julie M
Topping David L
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Article Info
Journal
The Journal of nutrition
Abbr.
J Nutr
ISSN
1541-6100
Published
2012-05-00
Epub
2012-00-28
Pages
832-40
Language
English
Region
United States
NLM ID
0404243
PMCID
PMC3327741
Subset
IM
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