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1.
Mol Nutr Food Res ; 65(2): e2000472, 2021 01.
Article En | MEDLINE | ID: mdl-33249735

SCOPE: This study investigates the effect of the sweetness of a sucrose versus an isocaloric glucose solution in dietary concentrations on blood glucose regulation by adjusting the sweetness level using the sweet taste inhibitor lactisole. METHODS AND RESULTS: A total of 27 healthy males participated in this randomized, crossover study with four treatments: 10% glucose, 10% sucrose, 10% sucrose + 60 ppm lactisole, and 10% glucose + 60 ppm lactisole. Plasma glucose, insulin, glucagon-like peptide 1, and glucagon levels are measured at baseline and 15, 30, 60, 90, and 120 min after beverage consumption. Test subjects rated the sucrose solution to be sweeter than the isocaloric glucose solution, whereas no difference in sweetness is reported after addition of lactisole to the sucrose solution. Administration of the less sweet glucose solution versus sucrose led to higher blood glucose levels after 30 min, as reflected by a lower ΔAUC for sucrose (1072 ± 136) than for glucose (1567 ± 231). Application of lactisole leads to no differences in glucose, insulin, or glucagon responses induced by sucrose or glucose. CONCLUSION: The results indicate that the structure of the carbohydrate has a stronger impact on the regulation of blood glucose levels than the perceived sweetness.


Blood Glucose/metabolism , Glucose/administration & dosage , Sucrose/administration & dosage , Taste Perception , Administration, Oral , Adolescent , Adult , Blood Glucose/analysis , Glucagon/blood , Glucagon-Like Peptide 1/blood , Healthy Volunteers , Humans , Insulin/blood , Male , Middle Aged , Young Adult
2.
Nutrients ; 12(10)2020 Oct 14.
Article En | MEDLINE | ID: mdl-33066498

Knowledge regarding the involvement of sweetness perception on energy intake is scarce. Here, the impact of glucose and sucrose sweetness, beyond their caloric load, on subsequent food intake and biomarkers of satiation was evaluated by co-administration of the sweet taste receptor inhibitor lactisole. A total of 27 healthy, male subjects received solutions of either 10% glucose w/o 60 ppm lactisole or 10% sucrose w/o 60 ppm lactisole. Subsequent food intake from a standardized breakfast was evaluated 2 h after receiving the respective test solution. Changes in postprandial plasma concentrations of cholecystokinin, ghrelin, and serotonin were determined over a period of 120 min, as was the body temperature. Administration of lactisole to the sucrose solution increased the energy intake from the subsequent standardized breakfast by 12.9 ± 5.8% (p = 0.04), led to a decreased Δ AUC of the body core temperature by 46 ± 20% (p = 0.01), and time-dependently reduced Δ serotonin plasma concentrations (-16.9 ± 6.06 ng/mL vs. -0.56 ± 3.7 ng/mL after sucrose administration, p = 0.03). The present study shows that lactisole increases energy intake and decreases plasma serotonin concentrations as well as body core temperature induced by sucrose, but not glucose. This finding may be associated with the different binding affinities of sucrose and glucose to the sweet taste receptor.


Benzene Derivatives/administration & dosage , Dietary Sucrose/administration & dosage , Eating/physiology , Energy Intake/physiology , Satiation/physiology , Serotonin/blood , Serotonin/metabolism , Sugar-Sweetened Beverages , Taste Buds/metabolism , Taste Perception/physiology , Adolescent , Adult , Body Temperature , Breakfast , Cholecystokinin/blood , Dietary Sucrose/metabolism , Ghrelin/blood , Glucose/metabolism , Healthy Volunteers , Humans , Male , Middle Aged , Postprandial Period , Young Adult
3.
J Agric Food Chem ; 67(36): 10174-10184, 2019 Sep 11.
Article En | MEDLINE | ID: mdl-31418563

The progress of lipid oxidation in foods is evaluated by measuring the peroxides and their scission products. However, hydrogen abstraction-independent pathways are not considered by commonly applied methods despite the known reactivity of epoxides toward biomolecules. Herein, a novel liquid chromatography tandem-mass spectrometry method was developed to detect hydroperoxidized and epoxidized triacylglycerols (TAGs) without derivatization or hydrolyzation of food samples. Epoxidized TAGs could be detected in refined canola oil at concentrations of 96.8 ± 2.08 µM, while only 5.77 ± 0.04 µM hydroperoxidized TAGs could be determined. In contrast to canola oil, margarine was more resistant to lipid oxidation since generation of epoxidized TAGs could only be marginally enhanced from 21.7 ± 0.48 to 28.8 ± 0.64 µM in margarine after treatment at 180 °C for 60 min, as also reflected by a peroxide value of 0.80 ± 0.00 mequiv O2/kg, which remained unchanged. The new method allows the assessment of food safety by the simultaneous measurement of hydroperoxidized and epoxidized TAGs without hydrolysis and laborious sample preparation.


Chromatography, Liquid/methods , Margarine/analysis , Mass Spectrometry/methods , Rapeseed Oil/chemistry , Triglycerides/chemistry , Epoxy Compounds/chemistry , Hydrogen Peroxide/chemistry , Oxidation-Reduction
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