» Articles » PMID: 34302121

Non-hematopoietic IL-4Rα Expression Contributes to Fructose-driven Obesity and Metabolic Sequelae

Overview
Specialty Endocrinology
Date 2021 Jul 24
PMID 34302121
Citations 4
Authors
Affiliations
Soon will be listed here.
Abstract

Objective: The risks of excess sugar intake in addition to high-fat diet consumption on immunopathogenesis of obesity-associated metabolic diseases are poorly defined. Interleukin-4 (IL-4) and IL-13 signaling via IL-4Rα regulates adipose tissue lipolysis, insulin sensitivity, and liver fibrosis in obesity. However, the contribution of IL-4Rα to sugar rich diet-driven obesity and metabolic sequelae remains unknown.

Methods: WT, IL-4Rα-deficient (IL-4Rα) and STAT6-deficient mice (STAT6) male mice were fed low-fat chow, high fat (HF) or HF plus high carbohydrate (HC/fructose) diet (HF + HC). Analysis included quantification of: (i) body weight, adiposity, energy expenditure, fructose metabolism, fatty acid oxidation/synthesis, glucose dysmetabolism and hepatocellular damage; (ii) the contribution of the hematopoietic or non-hematopoietic IL-4Rα expression; and (iii) the relevance of IL-4Rα downstream canonical STAT6 signaling pathway in this setting.

Results: We show that IL-4Rα regulated HF + HC diet-driven weight gain, whole body adiposity, adipose tissue inflammatory gene expression, energy expenditure, locomotor activity, glucose metabolism, hepatic steatosis, hepatic inflammatory gene expression and hepatocellular damage. These effects were potentially, and in part, dependent on non-hematopoietic IL-4Rα expression but were independent of direct STAT6 activation. Mechanistically, hepatic ketohexokinase-A and C expression was dependent on IL-4Rα, as it was reduced in IL-4Rα-deficient mice. KHK activity was also affected by HF + HC dietary challenge. Further, reduced expression/activity of KHK in IL-4Rα mice had a significant effect on fatty acid oxidation and fatty acid synthesis pathways.

Conclusion: Our findings highlight potential contribution of non-hematopoietic IL-4Rα activation of a non-canonical signaling pathway that regulates the HF + HC diet-driven induction of obesity and severity of obesity-associated sequelae.

Citing Articles

Population-enriched innate immune variants may identify candidate gene targets at the intersection of cancer and cardio-metabolic disease.

Yeyeodu S, Hanafi D, Webb K, Laurie N, Kimbro K Front Endocrinol (Lausanne). 2024; 14:1286979.

PMID: 38577257 PMC: 10991756. DOI: 10.3389/fendo.2023.1286979.


System biology approaches identified novel biomarkers and their signaling pathways involved in renal cell carcinoma with different human diseases.

Hossen M, Samad A, Ahammad F, Sasa G, Jiang Z, Ding X Biosci Rep. 2022; 42(11).

PMID: 36314741 PMC: 9679400. DOI: 10.1042/BSR20221108.


Dietary Counseling Aimed at Reducing Sugar Intake Yields the Greatest Improvement in Management of Weight and Metabolic Dysfunction in Children with Obesity.

Radulescu A, Killian M, Kang Q, Yuan Q, Softic S Nutrients. 2022; 14(7).

PMID: 35406113 PMC: 9003198. DOI: 10.3390/nu14071500.


A luminescence-based protocol for assessing fructose metabolism via quantification of ketohexokinase enzymatic activity in mouse or human hepatocytes.

Park S, Helsley R, Noetzli L, Tu H, Wallenius K, OMahony G STAR Protoc. 2021; 2(3):100731.

PMID: 34409309 PMC: 8361265. DOI: 10.1016/j.xpro.2021.100731.

References
1.
Finucane M, Stevens G, Cowan M, Danaei G, Lin J, Paciorek C . National, regional, and global trends in body-mass index since 1980: systematic analysis of health examination surveys and epidemiological studies with 960 country-years and 9·1 million participants. Lancet. 2011; 377(9765):557-67. PMC: 4472365. DOI: 10.1016/S0140-6736(10)62037-5. View

2.
Charrez B, Qiao L, Hebbard L . The role of fructose in metabolism and cancer. Horm Mol Biol Clin Investig. 2015; 22(2):79-89. DOI: 10.1515/hmbci-2015-0009. View

3.
Softic S, Cohen D, Kahn C . Role of Dietary Fructose and Hepatic De Novo Lipogenesis in Fatty Liver Disease. Dig Dis Sci. 2016; 61(5):1282-93. PMC: 4838515. DOI: 10.1007/s10620-016-4054-0. View

4.
Softic S, Gupta M, Wang G, Fujisaka S, ONeill B, Rao T . Divergent effects of glucose and fructose on hepatic lipogenesis and insulin signaling. J Clin Invest. 2017; 127(11):4059-4074. PMC: 5663363. DOI: 10.1172/JCI94585. View

5.
Giles D, Moreno-Fernandez M, Divanovic S . IL-17 Axis Driven Inflammation in Non-Alcoholic Fatty Liver Disease Progression. Curr Drug Targets. 2015; 16(12):1315-23. PMC: 4929857. DOI: 10.2174/1389450116666150531153627. View