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Satiety Associated with Calorie Restriction and Time-Restricted Feeding: Central Neuroendocrine Integration

Overview
Journal Adv Nutr
Publisher Elsevier
Date 2022 Feb 8
PMID 35134815
Authors
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Abstract

This review focuses on summarizing current knowledge on how time-restricted feeding (TRF) and continuous caloric restriction (CR) affect central neuroendocrine systems involved in regulating satiety. Several interconnected regions of the hypothalamus, brainstem, and cortical areas of the brain are involved in the regulation of satiety. Following CR and TRF, the increase in hunger and reduction in satiety signals of the melanocortin system [neuropeptide Y (NPY), proopiomelanocortin (POMC), and agouti-related peptide (AgRP)] appear similar between CR and TRF protocols, as do the dopaminergic responses in the mesocorticolimbic circuit. However, ghrelin and leptin signaling via the melanocortin system appears to improve energy balance signals and reduce hyperphagia following TRF, which has not been reported in CR. In addition to satiety systems, CR and TRF also influence circadian rhythms. CR influences the suprachiasmatic nucleus (SCN) or the primary circadian clock as seen by increased clock gene expression. In contrast, TRF appears to affect both the SCN and the peripheral clocks, as seen by phasic changes in the non-SCN (potentially the elusive food entrainable oscillator) and metabolic clocks. The peripheral clocks are influenced by the primary circadian clock but are also entrained by food timing, sleep timing, and other lifestyle parameters, which can supersede the metabolic processes that are regulated by the primary circadian clock. Taken together, TRF influences hunger/satiety, energy balance systems, and circadian rhythms, suggesting a role for adherence to CR in the long run if implemented using the TRF approach. However, these suggestions are based on only a few studies, and future investigations that use standardized protocols for the evaluation of the effect of these diet patterns (time, duration, meal composition, sufficiently powered) are necessary to verify these preliminary observations.

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References
1.
Radler M, Wright B, Walker F, Hale M, Kent S . Calorie restriction increases lipopolysaccharide-induced neuropeptide Y immunolabeling and reduces microglial cell area in the arcuate hypothalamic nucleus. Neuroscience. 2014; 285:236-47. DOI: 10.1016/j.neuroscience.2014.11.014. View

2.
Abdalla M . Central and peripheral control of food intake. Endocr Regul. 2017; 51(1):52-70. DOI: 10.1515/enr-2017-0006. View

3.
Zheng H, Lenard N, Shin A, Berthoud H . Appetite control and energy balance regulation in the modern world: reward-driven brain overrides repletion signals. Int J Obes (Lond). 2009; 33 Suppl 2:S8-13. PMC: 2838178. DOI: 10.1038/ijo.2009.65. View

4.
Skibicka K, Hansson C, Alvarez-Crespo M, Friberg P, Dickson S . Ghrelin directly targets the ventral tegmental area to increase food motivation. Neuroscience. 2011; 180:129-37. DOI: 10.1016/j.neuroscience.2011.02.016. View

5.
Woods S, DAlessio D . Central control of body weight and appetite. J Clin Endocrinol Metab. 2008; 93(11 Suppl 1):S37-50. PMC: 2585760. DOI: 10.1210/jc.2008-1630. View