Obesity Reduces mTORC1 Activity in Mucosal-Associated Invariant T Cells, Driving Defective Metabolic and Functional Responses.
Aisling O'BrienRoisín M LoftusMarta M PisarskaLaura M TobinRonan BerginNicole A W WoodCathriona FoleyArimin MatFrances C TinleyCiaran BannanGary SommervilleNatacha VeerapenGurdyal S BesraLinda V SinclairPaul N MoynaghLydia LynchDavid K FinlayDonal O'SheaAndrew E HoganPublished in: Journal of immunology (Baltimore, Md. : 1950) (2019)
Obesity underpins the development of numerous chronic diseases, such as type II diabetes mellitus. It is well established that obesity negatively alters immune cell frequencies and functions. Mucosal-associated invariant T (MAIT) cells are a population of innate T cells, which we have previously reported are dysregulated in obesity, with altered circulating and adipose tissue frequencies and a reduction in their IFN-γ production, which is a critical effector function of MAIT cells in host defense. Hence, there is increased urgency to characterize the key molecular mechanisms that drive MAIT cell effector functions and to identify those which are impaired in the obesity setting. In this study, we found that MAIT cells significantly upregulate their rates of glycolysis upon activation in an mTORC1-dependent manner, and this is essential for MAIT cell IFN-γ production. Furthermore, we show that mTORC1 activation is dependent on amino acid transport via SLC7A5. In obese patients, using RNA sequencing, Seahorse analysis, and a series of in vitro experiments, we demonstrate that MAIT cells isolated from obese adults display defective glycolytic metabolism, mTORC1 signaling, and SLC7A5 aa transport. Collectively, our data detail the intrinsic metabolic pathways controlling MAIT cell cytokine production and highlight mTORC1 as an important metabolic regulator that is impaired in obesity, leading to altered MAIT cell responses.
Keyphrases
- insulin resistance
- weight loss
- metabolic syndrome
- induced apoptosis
- adipose tissue
- single cell
- type diabetes
- high fat diet induced
- bariatric surgery
- cell cycle arrest
- obese patients
- weight gain
- immune response
- cell therapy
- dendritic cells
- roux en y gastric bypass
- endoplasmic reticulum stress
- amino acid
- signaling pathway
- oxidative stress
- high fat diet
- stem cells
- machine learning
- skeletal muscle
- bone marrow
- mesenchymal stem cells
- regulatory t cells
- cell proliferation
- transcription factor
- data analysis
- glycemic control
- type iii