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1.
Kidney Int ; 97(4): 728-740, 2020 04.
Article in English | MEDLINE | ID: mdl-31948598

ABSTRACT

Chronic Kidney Disease (CKD) is increasing in incidence and has become a worldwide health problem. Sleep disorders are prevalent in patients with CKD raising the possibility that these patients have a disorganized circadian timing system. Here, we examined the effect of adenine-induced tubulointerstitial nephropathy on the circadian system in mice. Compared to controls, adenine-treated mice showed serum biochemistry evidence of CKD as well as increased kidney expression of inflammation and fibrosis markers. Mice with CKD exhibited fragmented sleep behavior and locomotor activity, with lower degrees of cage activity compared to mice without CKD. On a molecular level, mice with CKD exhibited low amplitude rhythms in their central circadian clock as measured by bioluminescence in slices of the suprachiasmatic nucleus of PERIOD 2::LUCIFERASE mice. Whole animal imaging indicated that adenine treated mice also exhibited dampened oscillations in intact kidney, liver, and submandibular gland. Consistently, dampened circadian oscillations were observed in several circadian clock genes and clock-controlled genes in the kidney of the mice with CKD. Finally, mice with a genetically disrupted circadian clock (Clock mutants) were treated with adenine and compared to wild type control mice. The treatment evoked worse kidney damage as indicated by higher deposition of gelatinases (matrix metalloproteinase-2 and 9) and adenine metabolites in the kidney. Adenine also caused non-dipping hypertension and lower heart rate. Thus, our data indicate that central and peripheral circadian clocks are disrupted in the adenine-treated mice, and suggest that the disruption of the circadian clock accelerates CKD progression.


Subject(s)
Circadian Clocks , Adenine/toxicity , Animals , Circadian Rhythm , Humans , Matrix Metalloproteinase 2 , Mice , Mice, Inbred C57BL , Suprachiasmatic Nucleus
2.
Sci Rep ; 8(1): 1081, 2018 01 18.
Article in English | MEDLINE | ID: mdl-29348553

ABSTRACT

The circadian clock system is associated with feeding and mood. Patients with night eating syndrome (NES) delay their eating rhythm and their mood declines during the evening and night, manifesting as time-specific depression. Therefore, we hypothesized that the NES feeding pattern might cause time-specific depression. We established new NES model by restricted feeding with high-fat diet during the inactive period under normal-fat diet ad libitum. The FST (forced swimming test) immobility time in the NES model group was prolonged only after lights-on, corresponding to evening and early night for humans. We examined the effect of the NES feeding pattern on peripheral clocks using PER2::LUCIFERASE knock-in mice and an in vivo monitoring system. Caloric intake during the inactive period would shift the peripheral clock, and might be an important factor in causing the time-specific depression-like behavior. In the NES model group, synthesis of serotonin and norepinephrine were increased, but utilization and metabolism of these monoamines were decreased under stress. Desipramine shortened some mice's FST immobility time in the NES model group. The present study suggests that the NES feeding pattern causes phase shift of peripheral clocks and malfunction of the monoamine system, which may contribute to the development of time-specific depression.


Subject(s)
Behavior, Animal , Depression , Feeding Behavior , Animals , Biomarkers , Chromatography, High Pressure Liquid , Circadian Rhythm , Corpus Striatum/metabolism , Female , Hippocampus/metabolism , Metabolomics/methods , Mice , Photoperiod , Physical Exertion , Swimming , Time Factors
3.
Sci Rep ; 8(1): 1395, 2018 01 23.
Article in English | MEDLINE | ID: mdl-29362450

ABSTRACT

Microbiota-derived short-chain fatty acids (SCFAs) and organic acids produced by the fermentation of non-digestible fibre can communicate from the microbiome to host tissues and modulate homeostasis in mammals. The microbiome has circadian rhythmicity and helps the host circadian clock function. We investigated the effect of SCFA or fibre-containing diets on circadian clock phase adjustment in mouse peripheral tissues (liver, kidney, and submandibular gland). Initially, caecal SCFA concentrations, particularly acetate and butyrate, induced significant day-night differences at high concentrations during the active period, which were correlated with lower caecal pH. By monitoring luciferase activity correlated with the clock gene Period2 in vivo, we found that oral administration of mixed SCFA (acetate, butyrate, and propionate) and an organic acid (lactate), or single administration of each SCFA or lactate for three days, caused phase changes in the peripheral clocks with stimulation timing dependency. However, this effect was not detected in cultured fibroblasts or cultured liver slices with SCFA applied to the culture medium, suggesting SCFA-induced indirect modulation of circadian clocks in vivo. Finally, cellobiose-containing diets facilitated SCFA production and refeeding-induced peripheral clock entrainment. SCFA oral gavage and prebiotic supplementation can facilitate peripheral clock adjustment, suggesting prebiotics as novel therapeutic candidates for misalignment.


Subject(s)
Bacteria/metabolism , Circadian Rhythm Signaling Peptides and Proteins/metabolism , Fatty Acids, Volatile/administration & dosage , Gene Expression Regulation/drug effects , Animals , Circadian Clocks , Fatty Acids, Volatile/metabolism , Fatty Acids, Volatile/pharmacology , Fermentation , Gastrointestinal Microbiome , Kidney , Liver , Mice , Submandibular Gland
4.
Nutr Res ; 43: 16-24, 2017 Jul.
Article in English | MEDLINE | ID: mdl-28739049

ABSTRACT

In mammals, daily physiological events are precisely regulated by an internal circadian clock system. An important function of this system is to readjust the phase of the clock daily. In Japan, traditional herb medicines, so-called crude drugs (Shoyaku), are widely used for many diseases, and some are reported to affect circadian clock impairment, suggesting that some of them might have an ability to modify clock gene expression rhythms. Therefore, from selected 40 crude drugs, finding candidates that control the circadian clock phases was the first purpose of this study. As there are several crude drugs used for liver- and/or kidney-related diseases, the second aim of the present study was to find some crude drugs affecting liver/kidney circadian clock in vivo. To assess phase changes in the daily circadian rhythm, bioluminescence from the core clock gene product Period 2 was continuously monitored in mouse embryonic fibroblasts in vitro and in some peripheral tissues (kidney, liver, and submandibular gland) of PERIOD2::LUCIFERASE knock-in mice in vivo. In our screening, Polyporus and Bupleuri radix were found to be good candidates to effectively manipulate the peripheral circadian clock phase acutely, with stimulation time-of-day dependency in vitro as well as in vivo. Interestingly, Polyporus and Bupleuri radix are traditional herb medicines use for treating edema and promoting diuresis, and for chronic hepatitis, respectively. These crude drugs may be therefore good modulators of the circadian peripheral clocks including liver and kidney, and circadian clock genes become new molecular targets for these crude drugs.


Subject(s)
Bupleurum/chemistry , CLOCK Proteins/genetics , Circadian Clocks/drug effects , Plant Extracts/pharmacology , Polyporus/chemistry , Animals , CLOCK Proteins/metabolism , Circadian Clocks/genetics , Circadian Rhythm/drug effects , Circadian Rhythm/genetics , Fibroblasts/drug effects , Fibroblasts/metabolism , Humans , Kidney/drug effects , Kidney/metabolism , Liver/drug effects , Liver/metabolism , Luciferases/genetics , Luciferases/metabolism , Male , Mice , Period Circadian Proteins/genetics , Period Circadian Proteins/metabolism , Plants, Medicinal/chemistry
5.
NPJ Aging Mech Dis ; 3: 16030, 2017.
Article in English | MEDLINE | ID: mdl-28721279

ABSTRACT

The ability of the circadian clock to adapt to environmental changes is critical for maintaining homeostasis, preventing disease, and limiting the detrimental effects of aging. To date, little is known about age-related changes in the entrainment of peripheral clocks to external cues. We therefore evaluated the ability of the peripheral clocks of the kidney, liver, and submandibular gland to be entrained by external stimuli including light, food, stress, and exercise in young versus aged mice using in vivo bioluminescence monitoring. Despite a decline in locomotor activity, peripheral clocks in aged mice exhibited normal oscillation amplitudes under light-dark, constant darkness, and simulated jet lag conditions, with some abnormal phase alterations. However, age-related impairments were observed in peripheral clock entrainment to stress and exercise stimuli. Conversely, age-related enhancements were observed in peripheral clock entrainment to food stimuli and in the display of food anticipatory behaviors. Finally, we evaluated the hypothesis that deficits in sympathetic input from the central clock located in the suprachiasmatic nucleus of the hypothalamus were in part responsible for age-related differences in the entrainment. Aged animals showed an attenuated entrainment response to noradrenergic stimulation as well as decreased adrenergic receptor mRNA expression in target peripheral organs. Taken together, the present findings indicate that age-related circadian disorganization in entrainment to light, stress, and exercise is due to sympathetic dysfunctions in peripheral organs, while meal timing produces effective entrainment of aged peripheral circadian clocks.

6.
Sci Rep ; 5: 11417, 2015 Jun 15.
Article in English | MEDLINE | ID: mdl-26073568

ABSTRACT

The effects of acute stress on the peripheral circadian system are not well understood in vivo. Here, we show that sub-acute stress caused by restraint or social defeat potently altered clock gene expression in the peripheral tissues of mice. In these peripheral tissues, as well as the hippocampus and cortex, stressful stimuli induced time-of-day-dependent phase-advances or -delays in rhythmic clock gene expression patterns; however, such changes were not observed in the suprachiasmatic nucleus, i.e. the central circadian clock. Moreover, several days of stress exposure at the beginning of the light period abolished circadian oscillations and caused internal desynchronisation of peripheral clocks. Stress-induced changes in circadian rhythmicity showed habituation and disappeared with long-term exposure to repeated stress. These findings suggest that sub-acute physical/psychological stress potently entrains peripheral clocks and causes transient dysregulation of circadian clocks in vivo.


Subject(s)
Adaptation, Physiological/genetics , Cerebral Cortex/metabolism , Circadian Clocks/genetics , Gene Expression Regulation , Hippocampus/metabolism , Stress, Psychological/genetics , ARNTL Transcription Factors/genetics , ARNTL Transcription Factors/metabolism , Animals , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Female , Genes, Reporter , Immobilization , Luciferases/genetics , Luciferases/metabolism , Male , Mice , Mice, Transgenic , Nuclear Receptor Subfamily 1, Group D, Member 1/genetics , Nuclear Receptor Subfamily 1, Group D, Member 1/metabolism , Period Circadian Proteins/genetics , Period Circadian Proteins/metabolism , Photoperiod , Signal Transduction , Social Alienation/psychology , Stress, Psychological/metabolism , Stress, Psychological/physiopathology , Suprachiasmatic Nucleus/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
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