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1.
Nat Commun ; 15(1): 5568, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38956050

ABSTRACT

Sirenians of the superorder Afrotheria were the first mammals to transition from land to water and are the only herbivorous marine mammals. Here, we generated a chromosome-level dugong (Dugong dugon) genome. A comparison of our assembly with other afrotherian genomes reveals possible molecular adaptations to aquatic life by sirenians, including a shift in daily activity patterns (circadian clock) and tolerance to a high-iodine plant diet mediated through changes in the iodide transporter NIS (SLC5A5) and its co-transporters. Functional in vitro assays confirm that sirenian amino acid substitutions alter the properties of the circadian clock protein PER2 and NIS. Sirenians show evidence of convergent regression of integumentary system (skin and its appendages) genes with cetaceans. Our analysis also uncovers gene losses that may be maladaptive in a modern environment, including a candidate gene (KCNK18) for sirenian cold stress syndrome likely lost during their evolutionary shift in daily activity patterns. Genomes from nine Australian locations and the functionally extinct Okinawan population confirm and date a genetic break ~10.7 thousand years ago on the Australian east coast and provide evidence of an associated ecotype, and highlight the need for whole-genome resequencing data from dugong populations worldwide for conservation and genetic management.


Subject(s)
Genome , Mammals , Animals , Genome/genetics , Mammals/genetics , Phylogeny , Evolution, Molecular , Aquatic Organisms/genetics , Australia , Circadian Clocks/genetics , Biological Evolution
2.
Nat Commun ; 15(1): 5537, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38956413

ABSTRACT

Circadian gene expression is fundamental to the establishment and functions of the circadian clock, a cell-autonomous and evolutionary-conserved timing system. Yet, how it is affected by environmental-circadian disruption (ECD) such as shiftwork and jetlag are ill-defined. Here, we provided a comprehensive and comparative description of male liver circadian gene expression, encompassing transcriptomes, whole-cell proteomes and nuclear proteomes, under normal and after ECD conditions. Under both conditions, post-translation, rather than transcription, is the dominant contributor to circadian functional outputs. After ECD, post-transcriptional and post-translational processes are the major contributors to whole-cell or nuclear circadian proteome, respectively. Furthermore, ECD re-writes the rhythmicity of 64% transcriptome, 98% whole-cell proteome and 95% nuclear proteome. The re-writing, which is associated with changes of circadian regulatory cis-elements, RNA-processing and protein localization, diminishes circadian regulation of fat and carbohydrate metabolism and persists after one week of ECD-recovery.


Subject(s)
Circadian Clocks , Circadian Rhythm , Liver , Proteome , Animals , Liver/metabolism , Proteome/metabolism , Male , Circadian Rhythm/physiology , Circadian Rhythm/genetics , Circadian Clocks/genetics , Circadian Clocks/physiology , Transcriptome , Mice , Mice, Inbred C57BL , Gene Expression Regulation , Jet Lag Syndrome/metabolism , Shift Work Schedule
3.
Cells ; 13(12)2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38920666

ABSTRACT

Thyroid hormones, thyroxin (T4) and the biologically active triiodothyronine (T3), play important roles in liver metabolic regulation, including fatty acid biosynthesis, beta-oxidation, and cholesterol homeostasis. These functions position TH signaling as a potential target for the treatment of metabolic dysfunction-associated steatotic liver disease (MASLD). Elevated T3 levels in the circulation are associated with increased hepatic lipid turnover, which is also under the control of the circadian clock system. In this study, we developed a cell system to study the impact of hepatocyte circadian rhythms on the metabolic response to T3 treatment under control and steatotic conditions. Synchronized AML-12 circadian reporter hepatocytes were treated with T3 at different circadian phases and metabolic conditions. T3 treatment increased metabolic activity in a dose-independent fashion and had no significant effect on circadian rhythms in AML-12 cells. T3 had marked time-of-treatment-dependent effects on metabolic transcript expression. Steatosis induction altered metabolic transcript expression in AML-12 cells. In this condition, the circadian rhythm period was lengthened, and this effect was independent of T3. Under steatotic conditions, T3 had marked time-of-treatment dependent effects on metabolic transcript expression, which differed from those observed under control conditions. These findings reveal a time-of-day-dependent response of hepatocytes to T3, which is further modulated by the metabolic state. Our data suggest that time has a strong influence on liver TH action, which might be considered when treating MASLD.


Subject(s)
Circadian Rhythm , Hepatocytes , Triiodothyronine , Hepatocytes/metabolism , Animals , Triiodothyronine/pharmacology , Triiodothyronine/metabolism , Mice , Thyroid Hormones/metabolism , Cell Line , Fatty Liver/metabolism , Fatty Liver/pathology , Circadian Clocks/genetics
4.
Mol Ecol ; 33(13): e17425, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38847383

ABSTRACT

Annual rhythms are observed in living organisms with numerous ecological implications. In the zooplanktonic copepod Calanus finmarchicus, such rhythms are crucial regarding its phenology, body lipid accumulation, and global carbon storage. Climate change drives annual biological rhythms out of phase with the prevailing environmental conditions with yet unknown but potentially catastrophic consequences. However, the molecular dynamics underlying phenology are still poorly described. In a rhythmic analysis of C. finmarchicus annual gene expression, results reveal that more than 90% of the transcriptome shows significant annual rhythms, with abrupt and dramatic upheaval between the active and diapause life cycle states. This work explores the implication of the circadian clock in the annual timing, which may control epigenetic mechanisms to profoundly modulate gene expression in response to calendar time. Results also suggest an increased light sensitivity during diapause that would ensure the photoperiodic entrainment of the endogenous annual clock.


Subject(s)
Circadian Clocks , Copepoda , Diapause , Transcriptome , Animals , Copepoda/genetics , Copepoda/physiology , Diapause/genetics , Circadian Clocks/genetics , Photoperiod , Seasons , Climate Change , Zooplankton/genetics , Circadian Rhythm/genetics
6.
FASEB J ; 38(11): e23719, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38837828

ABSTRACT

Chronic disruption of circadian rhythms by night shift work is associated with an increased breast cancer risk. However, little is known about the impact of night shift on peripheral circadian genes (CGs) and circadian-controlled genes (CCGs) associated with breast cancer. Hence, we assessed central clock markers (melatonin and cortisol) in plasma, and peripheral CGs (PER1, PER2, PER3, and BMAL1) and CCGs (ESR1 and ESR2) in peripheral blood mononuclear cells (PBMCs). In day shift nurses (n = 12), 24-h rhythms of cortisol and melatonin were aligned with day shift-oriented light/dark schedules. The mRNA expression of PER2, PER3, BMAL1, and ESR2 showed 24-h rhythms with peak values in the morning. In contrast, night shift nurses (n = 10) lost 24-h rhythmicity of cortisol with a suppressed morning surge but retained normal rhythmic patterns of melatonin, leading to misalignment between cortisol and melatonin. Moreover, night shift nurses showed disruption of rhythmic expressions of PER2, PER3, BMAL1, and ESR2 genes, resulting in an impaired inverse correlation between PER2 and BMAL1 compared to day shift nurses. The observed trends of disrupted circadian markers were recapitulated in additional day (n = 20) and night (n = 19) shift nurses by measurement at early night and midnight time points. Taken together, this study demonstrated the misalignment of cortisol and melatonin, associated disruption of PER2 and ESR2 circadian expressions, and internal misalignment in peripheral circadian network in night shift nurses. Morning plasma cortisol and PER2, BMAL1, and ESR2 expressions in PBMCs may therefore be useful biomarkers of circadian disruption in shift workers.


Subject(s)
Circadian Clocks , Circadian Rhythm , Hydrocortisone , Melatonin , Shift Work Schedule , Humans , Female , Melatonin/metabolism , Melatonin/blood , Adult , Shift Work Schedule/adverse effects , Circadian Clocks/genetics , Hydrocortisone/blood , Hydrocortisone/metabolism , Circadian Rhythm/physiology , Period Circadian Proteins/genetics , Period Circadian Proteins/metabolism , Nurses , Leukocytes, Mononuclear/metabolism , Estrogen Receptor alpha/metabolism , Estrogen Receptor alpha/genetics , Estrogen Receptor beta/metabolism , Estrogen Receptor beta/genetics , ARNTL Transcription Factors/genetics , ARNTL Transcription Factors/metabolism , Work Schedule Tolerance/physiology , Working Conditions
7.
Commun Biol ; 7(1): 752, 2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38902439

ABSTRACT

Tissue specificity is a fundamental property of an organ that affects numerous biological processes, including aging and longevity, and is regulated by the circadian clock. However, the distinction between circadian-affected tissue specificity and other tissue specificities remains poorly understood. Here, using multi-omics data on circadian rhythms in mice, we discovered that approximately 35% of tissue-specific genes are directly affected by circadian regulation. These circadian-affected tissue-specific genes have higher expression levels and are associated with metabolism in hepatocytes. They also exhibit specific features in long-reads sequencing data. Notably, these genes are associated with aging and longevity at both the gene level and at the network module level. The expression of these genes oscillates in response to caloric restricted feeding regimens, which have been demonstrated to promote longevity. In addition, aging and longevity genes are disrupted in various circadian disorders. Our study indicates that the modulation of circadian-affected tissue specificity is essential for understanding the circadian mechanisms that regulate aging and longevity at the genomic level.


Subject(s)
Caloric Restriction , Circadian Clocks , Circadian Rhythm , Longevity , Organ Specificity , Animals , Mice , Circadian Rhythm/genetics , Circadian Rhythm/physiology , Organ Specificity/genetics , Longevity/genetics , Circadian Clocks/genetics , Aging/genetics , Aging/physiology , Mice, Inbred C57BL , Male , Gene Expression Regulation
8.
Sci Rep ; 14(1): 12936, 2024 06 05.
Article in English | MEDLINE | ID: mdl-38839826

ABSTRACT

Circadian rhythms are endogenous oscillations in nearly all organisms, from prokaryotes to humans, allowing them to adapt to cyclical environments for close to 24 h. Circadian rhythms are regulated by a central clock, based on a transcription-translation feedback loop. One important protein in the central loop in metazoan clocks is PERIOD, which is regulated in part by Casein kinase 1ε/δ (CK1ε/δ) phosphorylation. In the nematode Caenorhabditis elegans, period and casein kinase 1ε/δ are conserved as lin-42 and kin-20, respectively. Here, we studied the involvement of lin-42 and kin-20 in the circadian rhythms of the adult nematode using a bioluminescence-based circadian transcriptional reporter. We show that mutations of lin-42 and kin-20 generate a significantly longer endogenous period, suggesting a role for both genes in the nematode circadian clock, as in other organisms. These phenotypes can be partially rescued by overexpression of either gene under their native promoter. Both proteins are expressed in neurons and epidermal seam cells, as well as in other cells. Depletion of LIN-42 and KIN-20, specifically in neuronal cells after development, was sufficient to lengthen the period of oscillating sur-5 expression. Therefore, we conclude that LIN-42 and KIN-20 are critical regulators of the adult nematode circadian clock through neuronal cells.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Circadian Rhythm , Animals , Caenorhabditis elegans/genetics , Caenorhabditis elegans/physiology , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/genetics , Caenorhabditis elegans Proteins/metabolism , Circadian Clocks/genetics , Circadian Rhythm/genetics , CLOCK Proteins/genetics , CLOCK Proteins/metabolism , Gene Expression Regulation , Mutation , Neurons/metabolism , Transcription Factors
9.
Biomolecules ; 14(5)2024 May 06.
Article in English | MEDLINE | ID: mdl-38785965

ABSTRACT

Circadian rhythms integrate a finely tuned network of biological processes recurring every 24 h, intricately coordinating the machinery of all cells. This self-regulating system plays a pivotal role in synchronizing physiological and behavioral responses, ensuring an adaptive metabolism within the environmental milieu, including dietary and physical activity habits. The systemic integration of circadian homeostasis involves a balance of biological rhythms, each synchronically linked to the central circadian clock. Central to this orchestration is the temporal dimension of nutrient and food intake, an aspect closely interwoven with the neuroendocrine circuit, gut physiology, and resident microbiota. Indeed, the timing of meals exerts a profound influence on cell cycle regulation through genomic and epigenetic processes, particularly those involving gene expression, DNA methylation and repair, and non-coding RNA activity. These (epi)genomic interactions involve a dynamic interface between circadian rhythms, nutrition, and the gut microbiota, shaping the metabolic and immune landscape of the host. This research endeavors to illustrate the intricate (epi)genetic interplay that modulates the synchronization of circadian rhythms, nutritional signaling, and the gut microbiota, unravelling the repercussions on metabolic health while suggesting the potential benefits of feed circadian realignment as a non-invasive therapeutic strategy for systemic metabolic modulation via gut microbiota. This exploration delves into the interconnections that underscore the significance of temporal eating patterns, offering insights regarding circadian rhythms, gut microbiota, and chrono-nutrition interactions with (epi)genomic phenomena, thereby influencing diverse aspects of metabolic, well-being, and quality of life outcomes.


Subject(s)
Circadian Rhythm , Epigenomics , Gastrointestinal Microbiome , Humans , Circadian Rhythm/genetics , Circadian Rhythm/physiology , Animals , Epigenesis, Genetic , Nutritional Status , Circadian Clocks/genetics
10.
Biochem Soc Trans ; 52(3): 1419-1430, 2024 Jun 26.
Article in English | MEDLINE | ID: mdl-38779952

ABSTRACT

Legumes house nitrogen-fixing endosymbiotic rhizobia in specialised polyploid cells within root nodules. This results in a mutualistic relationship whereby the plant host receives fixed nitrogen from the bacteria in exchange for dicarboxylic acids. This plant-microbe interaction requires the regulation of multiple metabolic and physiological processes in both the host and symbiont in order to achieve highly efficient symbiosis. Recent studies have showed that the success of symbiosis is influenced by the circadian clock of the plant host. Medicago and soybean plants with altered clock mechanisms showed compromised nodulation and reduced plant growth. Furthermore, transcriptomic analyses revealed that multiple genes with key roles in recruitment of rhizobia to plant roots, infection and nodule development were under circadian control, suggesting that appropriate timing of expression of these genes may be important for nodulation. There is also evidence for rhythmic gene expression of key nitrogen fixation genes in the rhizobium symbiont, and temporal coordination between nitrogen fixation in the bacterial symbiont and nitrogen assimilation in the plant host may be important for successful symbiosis. Understanding of how circadian regulation impacts on nodule establishment and function will identify key plant-rhizobial connections and regulators that could be targeted to increase the efficiency of this relationship.


Subject(s)
Fabaceae , Gene Expression Regulation, Plant , Nitrogen Fixation , Rhizobium , Symbiosis , Rhizobium/physiology , Rhizobium/metabolism , Fabaceae/microbiology , Fabaceae/metabolism , Circadian Rhythm/physiology , Root Nodules, Plant/microbiology , Root Nodules, Plant/metabolism , Circadian Clocks/physiology , Circadian Clocks/genetics
11.
Proc Natl Acad Sci U S A ; 121(21): e2318690121, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38739791

ABSTRACT

Cyanobacteria are photosynthetic bacteria whose gene expression patterns are globally regulated by their circadian (daily) clocks. Due to their ability to use sunlight as their energy source, they are also attractive hosts for "green" production of pharmaceuticals, renewable fuels, and chemicals. However, despite the application of traditional genetic tools such as the identification of strong promoters to enhance the expression of heterologous genes, cyanobacteria have lagged behind other microorganisms such as Escherichia coli and yeast as economically efficient cell factories. The previous approaches have ignored large-scale constraints within cyanobacterial metabolic networks on transcription, predominantly the pervasive control of gene expression by the circadian (daily) clock. Here, we show that reprogramming gene expression by releasing circadian repressor elements in the transcriptional regulatory pathways coupled with inactivation of the central oscillating mechanism enables a dramatic enhancement of expression in cyanobacteria of heterologous genes encoding both catalytically active enzymes and polypeptides of biomedical significance.


Subject(s)
Gene Expression Regulation, Bacterial , Photosynthesis , Photosynthesis/genetics , Circadian Clocks/genetics , Biotechnology/methods , Cyanobacteria/genetics , Cyanobacteria/metabolism , Promoter Regions, Genetic , Bacterial Proteins/metabolism , Bacterial Proteins/genetics
12.
Proc Natl Acad Sci U S A ; 121(23): e2316858121, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38805270

ABSTRACT

In mammals, CLOCK and BMAL1 proteins form a heterodimer that binds to E-box sequences and activates transcription of target genes, including Period (Per). Translated PER proteins then bind to the CLOCK-BMAL1 complex to inhibit its transcriptional activity. However, the molecular mechanism and the impact of this PER-dependent inhibition on the circadian clock oscillation remain elusive. We previously identified Ser38 and Ser42 in a DNA-binding domain of CLOCK as phosphorylation sites at the PER-dependent inhibition phase. In this study, knockout rescue experiments showed that nonphosphorylatable (Ala) mutations at these sites shortened circadian period, whereas their constitutive-phospho-mimetic (Asp) mutations completely abolished the circadian rhythms. Similarly, we found that nonphosphorylatable (Ala) and constitutive-phospho-mimetic (Glu) mutations at Ser78 in a DNA-binding domain of BMAL1 also shortened the circadian period and abolished the rhythms, respectively. The mathematical modeling predicted that these constitutive-phospho-mimetic mutations weaken the DNA binding of the CLOCK-BMAL1 complex and that the nonphosphorylatable mutations inhibit the PER-dependent displacement (reduction of DNA-binding ability) of the CLOCK-BMAL1 complex from DNA. Biochemical experiments supported the importance of these phosphorylation sites for displacement of the complex in the PER2-dependent inhibition. Our results provide direct evidence that phosphorylation of CLOCK-Ser38/Ser42 and BMAL1-Ser78 plays a crucial role in the PER-dependent inhibition and the determination of the circadian period.


Subject(s)
ARNTL Transcription Factors , CLOCK Proteins , Circadian Clocks , Period Circadian Proteins , Animals , Humans , Mice , ARNTL Transcription Factors/metabolism , ARNTL Transcription Factors/genetics , ARNTL Transcription Factors/chemistry , Circadian Clocks/genetics , Circadian Rhythm/physiology , Circadian Rhythm/genetics , CLOCK Proteins/metabolism , CLOCK Proteins/genetics , DNA/metabolism , HEK293 Cells , Mutation , NIH 3T3 Cells , Period Circadian Proteins/metabolism , Period Circadian Proteins/genetics , Phosphorylation , Protein Binding , Protein Domains
13.
J Agric Food Chem ; 72(23): 13284-13296, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38808775

ABSTRACT

Benzyl nitrile from tea plants attacked by various pests displays a diurnal pattern, which may be closely regulated by the endogenous circadian clock. However, the molecular mechanism by the circadian clock of tea plants that regulates the biosynthesis and release of volatiles remains unclear. In this study, the circadian clock gene CsPCL1 can activate both the expression of the benzyl nitrile biosynthesis-related gene CsCYP79 and the jasmonic acid signaling-related transcription factor CsMYC2 involved in upregulating CsCYP79 gene, thereby resulting in the accumulation and release of benzyl nitrile. Therefore, the anti-insect function of benzyl nitrile was explored in the laboratory. The application of slow-release beads of benzyl nitrile in tea plantations significantly reduced the number of tea geometrids and had positive effects on the yield of fresh tea leaves. These findings reveal the potential utility of herbivore-induced plant volatiles for the green control of pests in tea plantations.


Subject(s)
Camellia sinensis , Circadian Clocks , Nitriles , Plant Proteins , Volatile Organic Compounds , Camellia sinensis/genetics , Camellia sinensis/chemistry , Camellia sinensis/metabolism , Camellia sinensis/parasitology , Animals , Volatile Organic Compounds/chemistry , Volatile Organic Compounds/metabolism , Volatile Organic Compounds/pharmacology , Plant Proteins/genetics , Plant Proteins/metabolism , Circadian Clocks/genetics , Nitriles/pharmacology , Nitriles/chemistry , Nitriles/metabolism , Gene Expression Regulation, Plant , Moths/genetics , Moths/drug effects , Moths/metabolism , Insecticides/pharmacology , Insecticides/chemistry
14.
Cell Stem Cell ; 31(6): 834-849.e4, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38701785

ABSTRACT

In mammals, the circadian clock network drives daily rhythms of tissue-specific homeostasis. To dissect daily inter-tissue communication, we constructed a mouse minimal clock network comprising only two nodes: the peripheral epidermal clock and the central brain clock. By transcriptomic and functional characterization of this isolated connection, we identified a gatekeeping function of the peripheral tissue clock with respect to systemic inputs. The epidermal clock concurrently integrates and subverts brain signals to ensure timely execution of epidermal daily physiology. Timely cell-cycle termination in the epidermal stem cell compartment depends upon incorporation of clock-driven signals originating from the brain. In contrast, the epidermal clock corrects or outcompetes potentially disruptive feeding-related signals to ensure the optimal timing of DNA replication. Together, we present an approach for cataloging the systemic dependencies of daily temporal organization in a tissue and identify an essential gate-keeping function of peripheral circadian clocks that guarantees tissue homeostasis.


Subject(s)
Brain , Circadian Clocks , Epidermis , Homeostasis , Animals , Circadian Clocks/physiology , Circadian Clocks/genetics , Epidermis/metabolism , Epidermis/physiology , Mice , Brain/physiology , Brain/metabolism , Signal Transduction , Skin/metabolism , Mice, Inbred C57BL , Circadian Rhythm/physiology
15.
PLoS Genet ; 20(5): e1011278, 2024 May.
Article in English | MEDLINE | ID: mdl-38805552

ABSTRACT

Chromatin organization plays a crucial role in gene regulation by controlling the accessibility of DNA to transcription machinery. While significant progress has been made in understanding the regulatory role of clock proteins in circadian rhythms, how chromatin organization affects circadian rhythms remains poorly understood. Here, we employed ATAC-seq (Assay for Transposase-Accessible Chromatin with Sequencing) on FAC-sorted Drosophila clock neurons to assess genome-wide chromatin accessibility at dawn and dusk over the circadian cycle. We observed significant oscillations in chromatin accessibility at promoter and enhancer regions of hundreds of genes, with enhanced accessibility either at dusk or dawn, which correlated with their peak transcriptional activity. Notably, genes with enhanced accessibility at dusk were enriched with E-box motifs, while those more accessible at dawn were enriched with VRI/PDP1-box motifs, indicating that they are regulated by the core circadian feedback loops, PER/CLK and VRI/PDP1, respectively. Further, we observed a complete loss of chromatin accessibility rhythms in per01 null mutants, with chromatin consistently accessible at both dawn and dusk, underscoring the critical role of Period protein in driving chromatin compaction during the repression phase at dawn. Together, this study demonstrates the significant role of chromatin organization in circadian regulation, revealing how the interplay between clock proteins and chromatin structure orchestrates the precise timing of biological processes throughout the day. This work further implies that variations in chromatin accessibility might play a central role in the generation of diverse circadian gene expression patterns in clock neurons.


Subject(s)
Chromatin , Circadian Rhythm , Drosophila Proteins , Drosophila melanogaster , Animals , Chromatin/genetics , Chromatin/metabolism , Circadian Rhythm/genetics , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/genetics , Gene Expression Regulation , Transcription, Genetic , CLOCK Proteins/genetics , CLOCK Proteins/metabolism , Neurons/metabolism , Neurons/physiology , Promoter Regions, Genetic , Period Circadian Proteins/genetics , Period Circadian Proteins/metabolism , Circadian Clocks/genetics , Drosophila/genetics , Enhancer Elements, Genetic , Basic-Leucine Zipper Transcription Factors
16.
Horm Behav ; 163: 105562, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38810363

ABSTRACT

The embryonic environment is critical in shaping developmental trajectories and consequently post-natal phenotypes. Exposure to elevated stress hormones during this developmental stage is known to alter a variety of post-natal phenotypic traits, and it has been suggested that pre-natal stress can have long term effects on the circadian rhythm of glucocorticoid hormone production. Despite the importance of the circadian system, the potential impact of developmental glucocorticoid exposure on circadian clock genes, has not yet been fully explored. Here, we showed that pre-natal exposure to corticosterone (CORT, a key glucocorticoid) resulted in a significant upregulation of two key hypothalamic circadian clock genes during the embryonic period in the Japanese quail (Coturnix japonica). Altered expression was still present 10 days into post-natal life for both genes, but then disappeared by post-natal day 28. At post-natal day 28, however, diel rhythms of eating and resting were influenced by exposure to pre-natal CORT. Males exposed to pre-natal CORT featured an earlier acrophase, alongside spending a higher proportion of time feeding. Females exposed to pre-natal CORT featured a less pronounced shift in acrophase and spent less time eating. Both males and females exposed to pre-natal CORT spent less time inactive during the day. Pre-natal CORT males appeared to feature a delay in peak activity levels. Our novel data suggest that these circadian clock genes and aspects of diurnal behaviours are highly susceptible to glucocorticoid disruption during embryonic development, and these effects are persistent across developmental stages, at least into early post-natal life.


Subject(s)
Circadian Clocks , Corticosterone , Coturnix , Glucocorticoids , Animals , Coturnix/genetics , Female , Male , Circadian Clocks/drug effects , Circadian Clocks/genetics , Gene Expression Regulation, Developmental/drug effects , Circadian Rhythm/drug effects , Behavior, Animal/drug effects , Pregnancy , Hypothalamus/drug effects , Hypothalamus/metabolism
17.
Psychiatry Res ; 337: 115948, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38788553

ABSTRACT

Depressive disorders have increased in global prevalence, making improved management of these disorders a public health priority. Prior research has linked circadian clock genes to depression, either through direct interactions with mood-related pathways in the brain or by modulating the phase of circadian rhythms. Using machine learning and statistical techniques, we explored associations between 157,347 SNP variants from 51 circadian-related genes and depression scores from the patient health questionnaire 9 (PHQ-9) in 99,939 UK Biobank participants. Our results highlight multiple pathways linking the circadian system to mood, including metabolic, monoamine, immune, and stress-related pathways. Notably, genes regulating glucose metabolism and inflammation (GSK3B, LEP, RORA, and NOCT) were prominent factors in females, in addition to DELEC1 and USP46, two genes of unknown function. In contrast, FBXL3 and DRD4 emerged as significant risk factors for male depression. We also found epistatic interactions involving RORA, NFIL3, and ZBTB20 as either risk or protective factors for depression, underscoring the importance of transcription factors (ZBTB20, NFIL3) and hormone receptors (RORA) in depression etiology. Understanding the complex, sex-specific links between circadian genes and mood disorders will facilitate the development of therapeutic interventions and enhance the efficacy of multi-target treatments for depression.


Subject(s)
Inflammation , Neuronal Plasticity , Polymorphism, Single Nucleotide , Humans , Female , Male , Middle Aged , Inflammation/genetics , United Kingdom/epidemiology , Neuronal Plasticity/genetics , Neuronal Plasticity/physiology , Glucose/metabolism , Aged , Circadian Rhythm/physiology , Circadian Rhythm/genetics , Biological Specimen Banks , Adult , Circadian Clocks/genetics , Circadian Clocks/physiology , Depression/genetics , Depression/epidemiology , Sex Factors , Depressive Disorder/genetics , Depressive Disorder/epidemiology , UK Biobank
18.
Nat Commun ; 15(1): 3840, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38714698

ABSTRACT

As the circadian clock regulates fundamental biological processes, disrupted clocks are often observed in patients and diseased tissues. Determining the circadian time of the patient or the tissue of focus is essential in circadian medicine and research. Here we present tauFisher, a computational pipeline that accurately predicts circadian time from a single transcriptomic sample by finding correlations between rhythmic genes within the sample. We demonstrate tauFisher's performance in adding timestamps to both bulk and single-cell transcriptomic samples collected from multiple tissue types and experimental settings. Application of tauFisher at a cell-type level in a single-cell RNAseq dataset collected from mouse dermal skin implies that greater circadian phase heterogeneity may explain the dampened rhythm of collective core clock gene expression in dermal immune cells compared to dermal fibroblasts. Given its robustness and generalizability across assay platforms, experimental setups, and tissue types, as well as its potential application in single-cell RNAseq data analysis, tauFisher is a promising tool that facilitates circadian medicine and research.


Subject(s)
Circadian Clocks , Circadian Rhythm , Single-Cell Analysis , Transcriptome , Single-Cell Analysis/methods , Animals , Mice , Circadian Rhythm/genetics , Circadian Clocks/genetics , Humans , Gene Expression Profiling/methods , Computational Biology/methods , Skin/metabolism , Software , Fibroblasts/metabolism , Sequence Analysis, RNA/methods
19.
Zhong Nan Da Xue Xue Bao Yi Xue Ban ; 49(2): 190-196, 2024 Feb 28.
Article in English, Chinese | MEDLINE | ID: mdl-38755715

ABSTRACT

One of the most common and significant symptoms for skin disorders is pruritus. Additionally, it serves as a significant catalyst for the exacerbation or reoccurrence of skin diseases. Pruritus seriously affects patients' physical and mental health, and even the quality of life. It brings a heavy burden to the patients, the families, even the whole society. The pathogenesis and regulation mechanisms for pruritus are complicated and have not yet been elucidated. Previous clinical studies have shown that itch worsens at night in scabies, chronic pruritus, atopic dermatitis, and psoriasis, suggesting that skin pruritus may change with circadian rhythm. Cortisol, melatonin, core temperature, cytokines, and prostaglandins are the main regulatory factors of the circadian rhythm of pruritus. Recent studies have shown that some CLOCK genes, such as BMAL1, CLOCK, PER, and CRY, play an important role in the regulation of the circadian rhythm of pruritus by regulating the Janus tyrosine kinase (JAK)-signal transducer and activator of transcription (STAT) and nuclear factor kappa-B (NF-κB) signaling pathways. However, the mechanisms for circadian clock genes in regulation of circadian rhythm of pruritus have not been fully elucidated. Further studies on the mechanism of circadian clock genes in the regulation of circadian rhythm of pruritus will lay a foundation for elucidating the regulatory mechanisms for pruritus, and also provide new ideas for the control of pruritus and the alleviation of skin diseases.


Subject(s)
Circadian Rhythm , Pruritus , Pruritus/physiopathology , Pruritus/etiology , Humans , Circadian Rhythm/physiology , CLOCK Proteins/genetics , CLOCK Proteins/metabolism , Signal Transduction , Melatonin/metabolism , ARNTL Transcription Factors/genetics , ARNTL Transcription Factors/metabolism , NF-kappa B/metabolism , Circadian Clocks/genetics , Circadian Clocks/physiology
20.
Nat Commun ; 15(1): 3712, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38697963

ABSTRACT

The discovery of nitrogen fixation in unicellular cyanobacteria provided the first clues for the existence of a circadian clock in prokaryotes. However, recalcitrance to genetic manipulation barred their use as model systems for deciphering the clock function. Here, we explore the circadian clock in the now genetically amenable Cyanothece 51142, a unicellular, nitrogen-fixing cyanobacterium. Unlike non-diazotrophic clock models, Cyanothece 51142 exhibits conspicuous self-sustained rhythms in various discernable phenotypes, offering a platform to directly study the effects of the clock on the physiology of an organism. Deletion of kaiA, an essential clock component in the cyanobacterial system, impacted the regulation of oxygen cycling and hindered nitrogenase activity. Our findings imply a role for the KaiA component of the clock in regulating the intracellular oxygen dynamics in unicellular diazotrophic cyanobacteria and suggest that its addition to the KaiBC clock was likely an adaptive strategy that ensured optimal nitrogen fixation as microbes evolved from an anaerobic to an aerobic atmosphere under nitrogen constraints.


Subject(s)
Bacterial Proteins , Circadian Clocks , Cyanothece , Nitrogen Fixation , Oxygen , Oxygen/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Circadian Clocks/genetics , Circadian Clocks/physiology , Cyanothece/metabolism , Cyanothece/genetics , Nitrogenase/metabolism , Nitrogenase/genetics , Circadian Rhythm Signaling Peptides and Proteins/metabolism , Circadian Rhythm Signaling Peptides and Proteins/genetics , Gene Expression Regulation, Bacterial , Cyanobacteria/metabolism , Cyanobacteria/genetics
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