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Items: 1 to 20 of 1531

  • Wildcard search for 'food*' used only the first 600 variations. Lengthen the root word to search for all endings.
1.

The FATZO mouse, a next generation model of type 2 diabetes, develops NAFLD and NASH when fed a Western diet supplemented with fructose.

Sun G, Jackson CV, Zimmerman K, Zhang LK, Finnearty CM, Sandusky GE, Zhang G, Peterson RG, Wang YJ.

BMC Gastroenterol. 2019 Mar 18;19(1):41. doi: 10.1186/s12876-019-0958-4.

2.

Challenging metabolic tissues with fructose: Tissue-specific and sex-specific responses.

Pinnick KE, Hodson L.

J Physiol. 2019 Mar 18. doi: 10.1113/JP277115. [Epub ahead of print]

PMID:
30883738
3.

Moderate consumption of fermented alcoholic beverages diminishes diet-induced non-alcoholic fatty liver disease through mechanisms involving hepatic adiponectin signaling in mice.

Jung F, Lippmann T, Brandt A, Jin CJ, Engstler AJ, Baumann A.

Eur J Nutr. 2019 Mar 16. doi: 10.1007/s00394-019-01945-2. [Epub ahead of print]

PMID:
30879098
4.

Isocaloric Fructose Restriction Reduces Serum D-Lactate Concentration in Children With Obesity and Metabolic Syndrome.

Erkin-Cakmak A, Bains Y, Caccavello R, Noworolski SM, Schwarz JM, Mulligan K, Lustig RH, Gugliucci A.

J Clin Endocrinol Metab. 2019 Mar 14. pii: jc.2018-02772. doi: 10.1210/jc.2018-02772. [Epub ahead of print]

PMID:
30869790
5.

Protective effect of prebiotic and exercise intervention on knee health in a rat model of diet-induced obesity.

Rios JL, Bomhof MR, Reimer RA, Hart DA, Collins KH, Herzog W.

Sci Rep. 2019 Mar 7;9(1):3893. doi: 10.1038/s41598-019-40601-x.

7.

Non-alcoholic fatty liver in hereditary fructose intolerance.

Aldámiz-Echevarría L, de Las Heras J, Couce ML, Alcalde C, Vitoria I, Bueno M, Blasco-Alonso J, Concepción García M, Ruiz M, Suárez R, Andrade F, Villate O.

Clin Nutr. 2019 Feb 15. pii: S0261-5614(19)30073-1. doi: 10.1016/j.clnu.2019.02.019. [Epub ahead of print]

PMID:
30833214
8.

[Carbohydrate-related nutritional and genetic risks of obesity for indigenous northerners].

Kozlov AI.

Vopr Pitan. 2019;88(1):5-16. doi: 10.24411/0042-8833-2019-10001. Epub 2018 Nov 13. Russian.

PMID:
30811129
9.

Estrogen and voluntary exercise attenuate cardiometabolic syndrome and hepatic steatosis in ovariectomized rats fed a high-fat high-fructose diet.

Buniam J, Chukijrungroat N, Khamphaya T, Weerachayaphorn J, Saengsirisuwan V.

Am J Physiol Endocrinol Metab. 2019 Feb 26. doi: 10.1152/ajpendo.00466.2018. [Epub ahead of print]

PMID:
30807216
10.

Beta 3 Adrenergic Receptor Activation Rescues Metabolic Dysfunction in Female Estrogen Receptor Alpha-Null Mice.

Clookey SL, Welly RJ, Shay D, Woodford ML, Fritsche KL, Rector RS, Padilla J, Lubahn DB, Vieira-Potter VJ.

Front Physiol. 2019 Feb 5;10:9. doi: 10.3389/fphys.2019.00009. eCollection 2019.

11.

Repercussions of low fructose-drinking water in male rats.

Miranda CA, Schönholzer TE, Klöppel E, Sinzato YK, Volpato GT, Damasceno DC, Campos KE.

An Acad Bras Cienc. 2019 Feb 14;91(1):e20170705. doi: 10.1590/0001-3765201920170705.

12.

Effects of exercise and dietary protein sources on adiposity and insulin sensitivity in obese mice.

Fjære E, Myrmel LS, Lützhøft DO, Andersen H, Holm JB, Kiilerich P, Hannisdal R, Liaset B, Kristiansen K, Madsen L.

J Nutr Biochem. 2019 Jan 18;66:98-109. doi: 10.1016/j.jnutbio.2019.01.003. [Epub ahead of print]

13.

Effect of Natural Honey on Glycemic Control and Anthropometric Measures of Patients with Type 2 Diabetes: A Randomized Controlled Crossover Trial.

Sadeghi F, Salehi S, Kohanmoo A, Akhlaghi M.

Int J Prev Med. 2019 Jan 15;10:3. doi: 10.4103/ijpvm.IJPVM_109_18. eCollection 2019.

14.

Long-Term Measures of Dyslipidemia, Inflammation, and Oxidative Stress in Rats Fed a High-Fat/High-Fructose Diet.

Feillet-Coudray C, Fouret G, Vigor C, Bonafos B, Jover B, Blachnio-Zabielska A, Rieusset J, Casas F, Gaillet S, Landrier JF, Durand T, Coudray C.

Lipids. 2019 Jan;54(1):81-97. doi: 10.1002/lipd.12128. Epub 2019 Feb 14.

PMID:
30767221
15.

[Specialized food products with modified carbohydrate profile for dietary correction of diet of patients with type 2 diabetes].

Kochetkova AA, Vorobyeva IS, Vorobyeva VM, Sharafetdinov KK, Plotnikova OA, Pilipenko VV, Alexeeva RI, Sasunova AN.

Vopr Pitan. 2018;87(6):76-88. doi: 10.24411/0042-8833-2018-10069. Epub 2018 Nov 13. Russian.

PMID:
30763493
16.

Impaired Skeletal Muscle Branched-Chain Amino Acids Catabolism Contributes to Their Increased Circulating Levels in a Non-Obese Insulin-Resistant Fructose-Fed Rat Model.

David J, Dardevet D, Mosoni L, Savary-Auzeloux I, Polakof S.

Nutrients. 2019 Feb 8;11(2). pii: E355. doi: 10.3390/nu11020355.

17.

Pre-diagnostic carbohydrate intake and treatment failure after radical prostatectomy for early-stage prostate cancer.

Kim K, Kong A, Flanigan RC, Quek ML, Hollowell CMP, Vidal PP, Branch J, Dean LA, Macias V, Kajadacsy-Balla AA, Fitzgibbon ML, Cintron D, Liu L, Freeman VL.

Cancer Causes Control. 2019 Feb 7. doi: 10.1007/s10552-019-1134-4. [Epub ahead of print]

PMID:
30729360
18.

Fructose-induced hypertriglyceridemia in rhesus macaques is attenuated with fish oil or apoC3 RNA interference.

Butler AA, Price CA, Graham JL, Stanhope KL, King S, Hung YH, Sethupathy P, Wong S, Hamilton J, Krauss RM, Bremer AA, Havel PJ.

J Lipid Res. 2019 Feb 5. pii: jlr.M089508. doi: 10.1194/jlr.M089508. [Epub ahead of print]

19.

Antidiabetic effects of Olea europaea L. leaves in diabetic rats induced by high-fat diet and low-dose streptozotocin.

Guex CG, Reginato FZ, de Jesus PR, Brondani JC, Lopes GHH, Bauermann LF.

J Ethnopharmacol. 2019 May 10;235:1-7. doi: 10.1016/j.jep.2019.02.001. Epub 2019 Feb 2.

PMID:
30721736
20.

Impact of Free-Choice Diets High in Fat and Different Sugars on Metabolic Outcome and Anxiety-Like Behavior in Rats.

Peris-Sampedro F, Mounib M, Schéle E, Edvardsson CE, Stoltenborg I, Adan RAH, Dickson SL.

Obesity (Silver Spring). 2019 Mar;27(3):409-419. doi: 10.1002/oby.22381. Epub 2019 Jan 30.

PMID:
30699240

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