Differences in the functional activity of the brain when using sugar and low-calorie sweeteners
https://doi.org/10.14341/omet13291
Abstract
BACKGROUND. Eating foods with a high sugar content causes changes in the functioning of the cerebral systems, involving hedonic and homeostatic mechanisms, which may be one of the mechanisms for the formation of increased cravings for sweet foods, weight gain and the development of metabolic disorders. Low-calorie sweeteners are widely used as an alternative to sucrose. Changes in the activity of brain areas when using various low-calorie sweeteners that stimulate sweet taste receptors are poorly understood.
AIM. To study the features of functional activity of various brain regions in healthy volunteers using functional magnetic resonance imaging (fMRI) when consuming sugar and the low-calorie sweetener Erythritol (E968).
MATERIALS AND METHODS. The study included 12 volunteers with a normal body weight (BMI) <25 kg/m2). The study was performed on a Siemens Magnetom Prisma 3.0T MR tomograph. The MRI examination protocol included sequences for obtaining T2-weighted images and three-dimensional T1-weighted images to exclude structural pathology of the brain and obtain anatomical data, as well as a sequence for obtaining resting fMRI data.
RESULTS. The median age of the subjects was 25 years [24; 26]; the median BMI was 22.5 [20; 24.8]. According to fMRI data, when taking sugar, connections between the temporal zones and the visual cortex are activated, which may reflect enhanced sensory integration and motivational processing of food reward. The sweetener has an effect on functional connectivity; the connection between the structures of the cerebellum, parietal cortex and insular cortex is specifically weakened, which can be interpreted as a decrease in the involvement of integrative sensory-motivational networks active on an empty stomach.
CONCLUSION. A dynamic study of brain activity using fMRI showed a different pattern of activation of brain areas when consuming sugar and sweetener.
About the Authors
A. A. RaskurazhevRussian Federation
Anton A. Raskurazhev, MD, PhD
Scopus Author ID: 57191092653
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
P. I. Kuznetsova
Russian Federation
Polina I. Kuznetsova, MD, PhD
Scopus Author ID: 57191089917
125367, Moscow, Volokolamskoe shosse, h. 80
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
S. N. Morozova
Russian Federation
Sofia N. Morozova, MD, PhD
Scopus Author ID: 57201358482
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
K. V. Antonova
Russian Federation
Ksenia V. Antonova, MD, PhD
Scopus Author ID: 7004672742
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
N. V. Silina
Russian Federation
Natalia V. Silina, MD
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
N. V. Mazurina
Russian Federation
Natalya V. Mazurina, MD, PhD
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
E. A. Troshina
Russian Federation
Ekaterina A. Troshina, MD, PhD, Professor
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
M. M. Tanashyan
Russian Federation
Marine M. Tanashyan, MD, PhD, Professor, Academician of the Russian Academy of Sciences
Scopus Author ID: 6506228066
Moscow
Competing Interests:
Авторы декларируют отсутствие явных и потенциальных конфликтов интересов, связанных с содержанием настоящей статьи.
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1. Рисунок 1. Трехмерная визуализация различий функциональных связей головного мозга при приеме сахара и сахарозаменителя (сахар>сахарозаменитель). Красным выделено усиление связей, синим — уменьшение. | |
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2. Рисунок 2. Трехмерная визуализация различий функциональных связей головного мозга натощак по сравнению с приемом сахара (натощак>сахар). Красным выделено усиление связей, синим — уменьшение. | |
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3. Рисунок 3. Трехмерная визуализация различий функциональных связей головного мозга натощак по сравнению с сахарозаменителем (натощак>сахарозаменитель). Красным выделено усиление связей, синим — уменьшение. | |
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For citations:
Raskurazhev A.A., Kuznetsova P.I., Morozova S.N., Antonova K.V., Silina N.V., Mazurina N.V., Troshina E.A., Tanashyan M.M. Differences in the functional activity of the brain when using sugar and low-calorie sweeteners. Obesity and metabolism. 2026;23(2):67-76. (In Russ.) https://doi.org/10.14341/omet13291
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