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2.
Health Phys ; 126(4): 241-248, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38381972

ABSTRACT

ABSTRACT: Concerns have been raised about the possibility of effects from exposure to short wavelength light (SWL), defined here as 380-550 nm, on human health. The spectral sensitivity of the human circadian timing system peaks at around 480 nm, much shorter than the peak sensitivity of daytime vision (i.e., 555 nm). Some experimental studies have demonstrated effects on the circadian timing system and on sleep from SWL exposure, especially when SWL exposure occurs in the evening or at night. The International Commission on Non-Ionizing Radiation Protection (ICNIRP) has identified a lack of consensus among public health officials regarding whether SWL from artificial sources disrupts circadian rhythm, and if so, whether SWL-disrupted circadian rhythm is associated with adverse health outcomes. Systematic reviews of studies designed to examine the effects of SWL on sleep and human health have shown conflicting results. There are many variables that can affect the outcome of these experimental studies. One of the main problems in earlier studies was the use of photometric quantities as a surrogate for SWL exposure. Additionally, the measurement of ambient light may not be an accurate measure of the amount of light impinging on the intrinsically photosensitive retinal ganglion cells, which are now known to play a major role in the human circadian timing system. Furthermore, epidemiological studies of long-term effects of chronic SWL exposure per se on human health are lacking. ICNIRP recommends that an analysis of data gaps be performed to delineate the types of studies needed, the parameters that should be addressed, and the methodology that should be applied in future studies so that a decision about the need for exposure guidelines can be made. In the meantime, ICNIRP supports some recommendations for how the quality of future studies might be improved.


Subject(s)
Melatonin , Humans , Circadian Rhythm/radiation effects , Sleep/radiation effects
3.
Nature ; 623(7987): 562-570, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37880372

ABSTRACT

Vision enables both image-forming perception, driven by a contrast-based pathway, and unconscious non-image-forming circadian photoentrainment, driven by an irradiance-based pathway1,2. Although two distinct photoreceptor populations are specialized for each visual task3-6, image-forming photoreceptors can additionally contribute to photoentrainment of the circadian clock in different species7-15. However, it is unknown how the image-forming photoreceptor pathway can functionally implement the segregation of irradiance signals required for circadian photoentrainment from contrast signals required for image perception. Here we report that the Drosophila R8 photoreceptor separates image-forming and irradiance signals by co-transmitting two neurotransmitters, histamine and acetylcholine. This segregation is further established postsynaptically by histamine-receptor-expressing unicolumnar retinotopic neurons and acetylcholine-receptor-expressing multicolumnar integration neurons. The acetylcholine transmission from R8 photoreceptors is sustained by an autocrine negative feedback of the cotransmitted histamine during the light phase of light-dark cycles. At the behavioural level, elimination of histamine and acetylcholine transmission impairs R8-driven motion detection and circadian photoentrainment, respectively. Thus, a single type of photoreceptor can achieve the dichotomy of visual perception and circadian photoentrainment as early as the first visual synapses, revealing a simple yet robust mechanism to segregate and translate distinct sensory features into different animal behaviours.


Subject(s)
Circadian Rhythm , Drosophila melanogaster , Photoreceptor Cells, Invertebrate , Visual Perception , Animals , Acetylcholine/metabolism , Biological Clocks/physiology , Biological Clocks/radiation effects , Circadian Rhythm/physiology , Circadian Rhythm/radiation effects , Drosophila melanogaster/cytology , Drosophila melanogaster/physiology , Drosophila melanogaster/radiation effects , Feedback, Physiological , Histamine/metabolism , Neurotransmitter Agents/metabolism , Photoreceptor Cells, Invertebrate/metabolism , Photoreceptor Cells, Invertebrate/radiation effects , Receptors, Cholinergic/metabolism , Receptors, Histamine/metabolism , Visual Perception/physiology , Visual Perception/radiation effects
4.
Nature ; 617(7959): 194-199, 2023 05.
Article in English | MEDLINE | ID: mdl-37100907

ABSTRACT

Circadian rhythms influence many behaviours and diseases1,2. They arise from oscillations in gene expression caused by repressor proteins that directly inhibit transcription of their own genes. The fly circadian clock offers a valuable model for studying these processes, wherein Timeless (Tim) plays a critical role in mediating nuclear entry of the transcriptional repressor Period (Per) and the photoreceptor Cryptochrome (Cry) entrains the clock by triggering Tim degradation in light2,3. Here, through cryogenic electron microscopy of the Cry-Tim complex, we show how a light-sensing cryptochrome recognizes its target. Cry engages a continuous core of amino-terminal Tim armadillo repeats, resembling how photolyases recognize damaged DNA, and binds a C-terminal Tim helix, reminiscent of the interactions between light-insensitive cryptochromes and their partners in mammals. The structure highlights how the Cry flavin cofactor undergoes conformational changes that couple to large-scale rearrangements at the molecular interface, and how a phosphorylated segment in Tim may impact clock period by regulating the binding of Importin-α and the nuclear import of Tim-Per4,5. Moreover, the structure reveals that the N terminus of Tim inserts into the restructured Cry pocket to replace the autoinhibitory C-terminal tail released by light, thereby providing a possible explanation for how the long-short Tim polymorphism adapts flies to different climates6,7.


Subject(s)
Circadian Clocks , Circadian Rhythm , Cryptochromes , Drosophila Proteins , Drosophila melanogaster , Animals , Circadian Clocks/physiology , Circadian Clocks/radiation effects , Circadian Rhythm/physiology , Circadian Rhythm/radiation effects , Cryptochromes/chemistry , Cryptochromes/metabolism , Cryptochromes/ultrastructure , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Drosophila melanogaster/radiation effects , Drosophila Proteins/chemistry , Drosophila Proteins/metabolism , Drosophila Proteins/ultrastructure , Light , Mammals/metabolism , Cryoelectron Microscopy , Active Transport, Cell Nucleus/radiation effects , alpha Karyopherins/metabolism
5.
Sleep ; 46(8)2023 08 14.
Article in English | MEDLINE | ID: mdl-36625482

ABSTRACT

STUDY OBJECTIVES: Light is the main time cue for the human circadian system. Sleep and light are intrinsically linked; light exposure patterns can influence sleep patterns and sleep can influence light exposure patterns. However, metrics for quantifying light regularity are lacking, and the relationship between sleep and light regularity is underexplored. We developed new metrics for light regularity and demonstrated their utility in adolescents, across school term and vacation. METHODS: Daily sleep/wake and light patterns were measured using wrist actigraphy in 75 adolescents (54% male, 17.17 ± 0.83 years) over 2 weeks of school term and a subsequent 2-week vacation. The Sleep Regularity Index (SRI) and social jetlag were computed for each 2-week block. Light regularity was assessed using (1) variation in mean daily light timing (MLiT); (2) variation in daily photoperiod; and (3) the Light Regularity Index (LRI). Associations between SRI and each light regularity metric were examined, and within-individual changes in metrics were examined between school and vacation. RESULTS: Higher SRI was significantly associated with more regular LRI scores during both school and vacation. There were no significant associations of SRI with variation in MLiT or daily photoperiod. Compared to school term, all three light regularity metrics were less variable during the vacation. CONCLUSIONS: Light regularity is a multidimensional construct, which until now has not been formally defined. Irregular sleep patterns are associated with lower LRI, indicating that irregular sleepers also have irregular light inputs to the circadian system, which likely contributes to circadian disruption.


Subject(s)
Circadian Rhythm , Light , Photoperiod , Sleep , Lighting , Humans , Male , Female , Adolescent , Sleep Duration/radiation effects , Circadian Rhythm/physiology , Circadian Rhythm/radiation effects , Sleep/physiology , Sleep/radiation effects , Holidays , Leisure Activities , Jet Lag Syndrome , Time Factors , Schools , Cues , Actigraphy
6.
Elife ; 112022 08 11.
Article in English | MEDLINE | ID: mdl-35950750

ABSTRACT

Circadian clocks are important for an individual's fitness, and recent studies have underlined their role in the outcome of biological interactions. However, the relevance of circadian clocks in fungal-fungal interactions remains largely unexplored. We sought to characterize a functional clock in the biocontrol agent Trichoderma atroviride to assess its importance in the mycoparasitic interaction against the phytopathogen Botrytis cinerea. Thus, we confirmed the existence of circadian rhythms in T. atroviride, which are temperature-compensated and modulated by environmental cues such as light and temperature. Nevertheless, the presence of such molecular rhythms appears to be highly dependent on the nutritional composition of the media. Complementation of a clock null (Δfrq) Neurospora crassa strain with the T. atroviride-negative clock component (tafrq) restored core clock function, with the same period observed in the latter fungus, confirming the role of tafrq as a bona fide core clock component. Confrontation assays between wild-type and clock mutant strains of T. atroviride and B. cinerea, in constant light or darkness, revealed an inhibitory effect of light on T. atroviride's mycoparasitic capabilities. Interestingly, when confrontation assays were performed under light/dark cycles, T. atroviride's overgrowth capacity was enhanced when inoculations were at dawn compared to dusk. Deleting the core clock-negative element FRQ in B. cinerea, but not in T. atroviride, was vital for the daily differential phenotype, suggesting that the B. cinerea clock has a more significant influence on the result of this interaction. Additionally, we observed that T. atroviride clock components largely modulate development and secondary metabolism in this fungus, including the rhythmic production of distinct volatile organic compounds (VOCs). Thus, this study provides evidence on how clock components impact diverse aspects of T. atroviride lifestyle and how daily changes modulate fungal interactions and dynamics.


Subject(s)
Botrytis , CLOCK Proteins , Circadian Rhythm , Fungal Proteins , Hypocreales , Microbial Interactions , Secondary Metabolism , Botrytis/growth & development , Botrytis/metabolism , Botrytis/radiation effects , CLOCK Proteins/metabolism , Circadian Rhythm/radiation effects , Fungal Proteins/metabolism , Hypocreales/growth & development , Hypocreales/metabolism , Hypocreales/radiation effects , Light , Temperature
7.
J Biol Rhythms ; 37(5): 498-515, 2022 Oct.
Article in English | MEDLINE | ID: mdl-35722987

ABSTRACT

Animals with altered freerunning periods are valuable in understanding properties of the circadian clock. Understanding the relationship between endogenous clock properties, entrainment, and influence of light in terms of parametric and non-parametric models can help us better understand how different populations adapt to external light cycles. Many clinical populations often show significant changes in circadian properties that in turn cause sleep and circadian problems, possibly exacerbating their underlying clinical condition. BTBR T+Itpr3tf/J (BTBR) mice are a model commonly used for the study of autism spectrum disorders (ASD). Adults and adolescents with ASD frequently exhibit profound sleep and circadian disruptions, including increased latency to sleep, insomnia, advanced and delayed sleep phase disorders, and sleep fragmentation. Here, we investigated the circadian phenotype of BTBR mice in freerunning and light-entrained conditions and found that this strain of mice showed noticeably short freerunning periods (~22.75 h). In addition, when compared to C57BL/6J controls, BTBR mice also showed higher levels of activity even though this activity was compressed into a shorter active phase. Phase delays and phase advances to light were significantly larger in BTBR mice. Despite the short freerunning period, BTBR mice exhibited normal entrainment in light-dark cycles and accelerated entrainment to both advanced and delayed light cycles. Their ability to entrain to skeleton photoperiods of 1 min suggests that this entrainment cannot be attributed to masking. Period differences were also correlated with differences in the number of vasoactive intestinal polypeptide-expressing cells in the suprachiasmatic nucleus (SCN). Overall, the BTBR model, with their unique freerunning and entrainment properties, makes an interesting model to understand the underlying circadian clock.


Subject(s)
Autism Spectrum Disorder/physiopathology , Circadian Clocks/radiation effects , Circadian Rhythm/radiation effects , Mice, Inbred Strains/physiology , Animals , Circadian Rhythm/physiology , Light , Mice , Mice, Inbred C57BL , Photoperiod , Suprachiasmatic Nucleus/physiology , Time Factors
8.
Biochem Biophys Res Commun ; 592: 93-98, 2022 02 12.
Article in English | MEDLINE | ID: mdl-35033872

ABSTRACT

Intrinsically photosensitive retinal ganglion cells (ipRGCs) are able to synthesize the photosensitive protein melanopsin, which is involved in the regulation of circadian rhythms, the papillary light reflex and other nonimaging visual functions. To investigate whether ipRGCs are involved in mediating the light modulation of sleep-wakefulness in rodents, melanopsin knockout mice (MKO), melanopsin-only mice (MO) and coneless, rodless, melanopsin knockout mice (TKO) were used in this study to record electroencephalogram and electromyography variations in the normal 12:12 h light:dark cycle, and 1 h and 3 h light pulses were administered at 1 h after the light was turned off. In the normal 12:12 h light-dark cycle, the WT, MKO and MO mice had a regular day-night rhythm and no significant difference in wakefulness, rapid eye movement (REM) or nonrapid eye movement (NREM) sleep. However, TKO mice could not be entrained according to the light-dark cycle and exhibited a free-running rhythm. Extending the light pulse durations significantly changed the sleep and wakefulness activities of the WT and MO mice but did not have an effect on the MKO mice. These results indicate that melanopsin significantly affects REM and NREM sleep and that ipRGCs play an important role in light-induced sleep in mice.


Subject(s)
Light , Retinal Ganglion Cells/physiology , Retinal Ganglion Cells/radiation effects , Sleep/physiology , Sleep/radiation effects , Wakefulness/physiology , Wakefulness/radiation effects , Animals , Circadian Rhythm/physiology , Circadian Rhythm/radiation effects , Male , Mice, Inbred C57BL , Mice, Knockout , Rod Opsins/deficiency , Rod Opsins/metabolism , Sleep Stages/physiology , Sleep Stages/radiation effects
9.
Am J Physiol Endocrinol Metab ; 322(1): E1-E9, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34719945

ABSTRACT

Circadian disruption induced by rotating light cycles has been linked to metabolic disorders. However, how the interaction of light intensity and light cycle affects metabolism under different diets remains to be explored. Eighty mice were first randomly stratified into the low-fat diet (LFD, n = 40) or high-fat diet (HFD, n = 40) groups. Each group was further randomly subdivided into four groups (n = 8-12 per group) in terms of different light intensities [lower (LI, 78 lx) or higher intensity (HI, 169 lx)] and light cycles [12-h light:12-h dark cycle or circadian-disrupting (CD) light cycle consisting of repeated 6-h light phase advancement]. Body weight was measured weekly. At the end of the 16-wk experiment, mice were euthanized for serum and pathological analysis. Glucose and insulin tolerance tests were performed during the last 2 wk. The CD cycle increased body weight gain, adipocyte area, glucose intolerance, and insulin resistance of LFD as well as HFD mice under HI but not LI condition. Moreover, the serum and hepatic triglyceride levels increased with LFD-HI treatment, regardless of light cycle. In addition, the CD cycle improved lipid and glucose metabolism under HFD-LI condition. In summary, the detrimental effects of the CD cycle on metabolism were alleviated under LI condition, especially in HFD mice. These results indicate that modulating light intensity is a potential strategy to prevent the negative metabolic consequences associated with jet lag or shift work.NEW & NOTEWORTHY Glucose and lipid homeostasis is altered by the CD cycles in a light-intensity-dependent manner. Lower-intensity light reverses the negative metabolic effects of the CD cycles, especially under HFD feeding. The interaction of light intensity and light cycle on metabolism is independent of energy intake and eating pattern. Glucose metabolic disorders caused by rotating light cycles occur along with compensatory ß-cell mass expansion.


Subject(s)
Blood Glucose/metabolism , Cholesterol/blood , Circadian Clocks/radiation effects , Circadian Rhythm/radiation effects , Diet, Fat-Restricted , Diet, High-Fat , Light , Signal Transduction/radiation effects , Triglycerides/blood , Animals , Blood Glucose/analysis , Eating/radiation effects , Glucose Intolerance/blood , Glucose Tolerance Test , Insulin/blood , Insulin Resistance/radiation effects , Liver/metabolism , Locomotion/radiation effects , Male , Mice , Mice, Inbred C57BL , Weight Gain/radiation effects
10.
Cells ; 10(11)2021 11 11.
Article in English | MEDLINE | ID: mdl-34831351

ABSTRACT

Upon a sudden transition from low to high light, electrons transported from photosystem II (PSII) to PSI should be rapidly consumed by downstream sinks to avoid the over-reduction of PSI. However, the over-reduction of PSI under fluctuating light might be accelerated if primary metabolism is restricted by low stomatal conductance. To test this hypothesis, we measured the effect of diurnal changes in stomatal conductance on photosynthetic regulation under fluctuating light in tomato (Solanum lycopersicum) and common mulberry (Morus alba). Under conditions of high stomatal conductance, we observed PSI over-reduction within the first 10 s after transition from low to high light. Lower stomatal conductance limited the activity of the Calvin-Benson-Bassham cycle and aggravated PSI over-reduction within 10 s after the light transition. We also observed PSI over-reduction after transition from low to high light for 30 s at the low stomatal conductance typical of the late afternoon, indicating that low stomatal conductance extends the period of PSI over-reduction under fluctuating light. Therefore, diurnal changes in stomatal conductance significantly affect the PSI redox state under fluctuating light. Moreover, our analysis revealed an unexpected inhibition of cyclic electron flow by the severe over-reduction of PSI seen at low stomatal conductance. In conclusion, stomatal conductance can have a large effect on thylakoid reactions under fluctuating light.


Subject(s)
Circadian Rhythm/radiation effects , Light , Photosystem I Protein Complex/metabolism , Plant Stomata/radiation effects , Electron Transport/radiation effects , Solanum lycopersicum/physiology , Solanum lycopersicum/radiation effects , Morus/drug effects , Morus/physiology , Oxidation-Reduction , Photosynthesis/radiation effects
11.
Environ Health Prev Med ; 26(1): 103, 2021 Oct 11.
Article in English | MEDLINE | ID: mdl-34635049

ABSTRACT

BACKGROUND: Exposure to the ionizing radiation (IR) encountered outside the magnetic field of the Earth poses a persistent threat to the reproductive functions of astronauts. The potential effects of space IR on the circadian rhythms of male reproductive functions have not been well characterized so far. METHODS: Here, we investigated the circadian effects of IR exposure (3 Gy X-rays) on reproductive functional markers in mouse testicular tissue and epididymis at regular intervals over a 24-h day. For each animal, epididymis was tested for sperm motility, and the testis tissue was used for daily sperm production (DSP), testosterone levels, and activities of testicular enzymes (glucose-6-phosphate dehydrogenase (G6PDH), sorbitol dehydrogenase (SDH), lactic dehydrogenase (LDH), and acid phosphatase (ACP)), and the clock genes mRNA expression such as Clock, Bmal1, Ror-α, Ror-ß, or Ror-γ. RESULTS: Mice exposed to IR exhibited a disruption in circadian rhythms of reproductive markers, as indicated by decreased sperm motility, increased daily sperm production (DSP), and reduced activities of testis enzymes such as G6PDH, SDH, LDH, and ACP. Moreover, IR exposure also decreased mRNA expression of five clock genes (Clock, Bmal1, Ror-α, Ror-ß, or Ror-γ) in testis, with alteration in the rhythm parameters. CONCLUSION: These findings suggested potential health effects of IR exposure on reproductive functions of male astronauts, in terms of both the daily overall level as well as the circadian rhythmicity.


Subject(s)
Circadian Rhythm/radiation effects , Gene Expression/radiation effects , Genitalia, Male/radiation effects , Radiation Exposure , Radiation, Ionizing , Reproductive Physiological Phenomena/radiation effects , ARNTL Transcription Factors/genetics , Acid Phosphatase , Animals , CLOCK Proteins/genetics , Epididymis/radiation effects , Glucosephosphate Dehydrogenase , L-Iditol 2-Dehydrogenase , L-Lactate Dehydrogenase , Male , Mice , Mice, Inbred C57BL , Models, Animal , Nuclear Receptor Subfamily 1, Group F, Member 1/genetics , Nuclear Receptor Subfamily 1, Group F, Member 2/genetics , Nuclear Receptor Subfamily 1, Group F, Member 3/genetics , RNA, Messenger/genetics , Sperm Motility/radiation effects , Spermatozoa/radiation effects , Testis/enzymology , Testis/radiation effects
12.
PLoS Biol ; 19(10): e3001413, 2021 10.
Article in English | MEDLINE | ID: mdl-34665816

ABSTRACT

Light plays a fundamental role in the ecology of organisms in nearly all habitats on Earth and is central for processes such as vision and the entrainment of the circadian clock. The poles represent extreme light regimes with an annual light cycle including periods of Midnight Sun and Polar Night. The Arctic Ocean extends to the North Pole, and marine light extremes reach their maximum extent in this habitat. During the Polar Night, traditional definitions of day and night and seasonal photoperiod become irrelevant since there are only "twilight" periods defined by the sun's elevation below the horizon at midday; we term this "midday twilight." Here, we characterize light across a latitudinal gradient (76.5° N to 81° N) during Polar Night in January. Our light measurements demonstrate that the classical solar diel light cycle dominant at lower latitudes is modulated during Arctic Polar Night by lunar and auroral components. We therefore question whether this particular ambient light environment is relevant to behavioral and visual processes. We reveal from acoustic field observations that the zooplankton community is undergoing diel vertical migration (DVM) behavior. Furthermore, using electroretinogram (ERG) recording under constant darkness, we show that the main migratory species, Arctic krill (Thysanoessa inermis) show endogenous increases in visual sensitivity during the subjective night. This change in sensitivity is comparable to that under exogenous dim light acclimations, although differences in speed of vision suggest separate mechanisms. We conclude that the extremely weak midday twilight experienced by krill at high latitudes during the darkest parts of the year has physiological and ecological relevance.


Subject(s)
Circadian Rhythm/radiation effects , Euphausiacea/physiology , Euphausiacea/radiation effects , Light , Acoustics , Animals , Aquatic Organisms/physiology , Atmosphere , Models, Biological , Vision, Ocular/physiology , Zooplankton/physiology
13.
Bull Exp Biol Med ; 171(5): 661-665, 2021 Sep.
Article in English | MEDLINE | ID: mdl-34617177

ABSTRACT

The rhythmic variations of body temperature in two groups of mice located in Moscow and Novosibirsk were compared with geomagnetic undulations within Pc5/Pi3 (1-5 mHz) range measured in Borok and Novosibirsk middle-latitude geophysical observatories located at the same longitudes as the examined mice. The spectral maxima of geomagnetic undulations and body temperature variations were observed with greatest probability at the frequencies of 1.6, 2.3, and 3.1 mHz. At this, the mean square of the distance between the frequencies of spectral maxima of simultaneous oscillations was smaller than that of random intervals favoring the hypothesis on geomagnetic undulations as the synchronizer of biorhythms. In both groups of mice, the share of intervals with a high spectral coherency between geomagnetic undulations and body temperature variations had common maximum in the pre-midnight sector of local time and it was higher for the large-scale geomagnetic undulations. Dependence of geomagnetic undulations on spatial scale suggests that body temperature is affected by electrotelluric field.


Subject(s)
Body Temperature/radiation effects , Electromagnetic Fields , Electromagnetic Radiation , Animals , Body Temperature/physiology , Body Temperature Regulation/radiation effects , Circadian Rhythm/physiology , Circadian Rhythm/radiation effects , Electromagnetic Fields/adverse effects , Geological Phenomena , Male , Mice , Russia , Time Factors
14.
Nutrients ; 13(10)2021 Sep 30.
Article in English | MEDLINE | ID: mdl-34684482

ABSTRACT

Sleep is an essential component of overall human health but is so tightly regulated that when disrupted can cause or worsen certain ailments. An important part of this process is the presence of the well-known hormone, melatonin. This compound assists in the governing of sleep and circadian rhythms. Previous studies have postulated that dysregulation of melatonin rhythms is the driving force behind sleep and circadian disorders. A computer-aided search spanning the years of 2015-2020 using the search terms melatonin, circadian rhythm, disorder yielded 52 full text articles that were analyzed. We explored the mechanisms behind melatonin dysregulation and how it affects various disorders. Additionally, we examined associated therapeutic treatments including bright light therapy (BLT) and exogenous forms of melatonin. We found that over the past 5 years, melatonin has not been widely investigated in clinical studies thus there remains large gaps in its potential utilization as a therapy.


Subject(s)
Circadian Rhythm/physiology , Melatonin/metabolism , Animals , Biosynthetic Pathways , Circadian Rhythm/radiation effects , Humans , Light , Melatonin/biosynthesis , Melatonin/chemistry , Transcription, Genetic
15.
Bull Exp Biol Med ; 171(6): 778-782, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34709516

ABSTRACT

We studied the effect of constant illumination on the effects of administration of arginine vasopressin (AVP), one of the most important regulators of the key adaptive hypothalamic-pituitary-adrenal (HPA) axis under basal conditions and during stress, as well as on the circadian rhythm of activity of HPA axis and the pineal gland in laboratory primates. In young adult female rhesus monkeys exposed to constant illumination for 7 weeks, the rise in the concentration of ACTH and cortisol in response to administration of AVP was markedly reduced in comparison with both the basal period and with the control group of animals. In addition, a destructive effect of constant lighting on circadian rhythm of cortisol secretion was observed in the absence of significant circadian changes in melatonin secretion. The inhibitory effect of constant illumination on the function of the HPA axis under basal conditions and under conditions of its activation can reduce the body's adaptive abilities.


Subject(s)
Circadian Rhythm/radiation effects , Hypothalamo-Hypophyseal System/radiation effects , Pituitary-Adrenal System/radiation effects , Adrenocorticotropic Hormone/blood , Animals , Arginine Vasopressin/pharmacology , Circadian Rhythm/drug effects , Circadian Rhythm/physiology , Female , Hydrocortisone/blood , Hypothalamo-Hypophyseal System/drug effects , Hypothalamo-Hypophyseal System/physiology , Lighting/methods , Macaca mulatta , Melatonin/blood , Pituitary-Adrenal System/drug effects , Pituitary-Adrenal System/physiology
16.
Nature ; 598(7880): 353-358, 2021 10.
Article in English | MEDLINE | ID: mdl-34588695

ABSTRACT

Time-restricted feeding (TRF) has recently gained interest as a potential anti-ageing treatment for organisms from Drosophila to humans1-5. TRF restricts food intake to specific hours of the day. Because TRF controls the timing of feeding, rather than nutrient or caloric content, TRF has been hypothesized to depend on circadian-regulated functions; the underlying molecular mechanisms of its effects remain unclear. Here, to exploit the genetic tools and well-characterized ageing markers of Drosophila, we developed an intermittent TRF (iTRF) dietary regimen that robustly extended fly lifespan and delayed the onset of ageing markers in the muscles and gut. We found that iTRF enhanced circadian-regulated transcription and that iTRF-mediated lifespan extension required both circadian regulation and autophagy, a conserved longevity pathway. Night-specific induction of autophagy was both necessary and sufficient to extend lifespan on an ad libitum diet and also prevented further iTRF-mediated lifespan extension. By contrast, day-specific induction of autophagy did not extend lifespan. Thus, these results identify circadian-regulated autophagy as a critical contributor to iTRF-mediated health benefits in Drosophila. Because both circadian regulation and autophagy are highly conserved processes in human ageing, this work highlights the possibility that behavioural or pharmaceutical interventions that stimulate circadian-regulated autophagy might provide people with similar health benefits, such as delayed ageing and lifespan extension.


Subject(s)
Autophagy/physiology , Circadian Rhythm/physiology , Drosophila melanogaster/physiology , Feeding Behavior/physiology , Longevity/physiology , Aging/genetics , Aging/radiation effects , Animals , Autophagy/genetics , Biomarkers , Circadian Clocks/radiation effects , Circadian Rhythm/genetics , Circadian Rhythm/radiation effects , Darkness , Drosophila melanogaster/genetics , Drosophila melanogaster/radiation effects , Feeding Behavior/radiation effects , Female , Longevity/genetics , Longevity/radiation effects , Male , Time Factors
18.
Elife ; 102021 09 22.
Article in English | MEDLINE | ID: mdl-34550876

ABSTRACT

Eukaryotes generally display a circadian rhythm as an adaption to the reoccurring day/night cycle. This is particularly true for visual physiology that is directly affected by changing light conditions. Here we investigate the influence of the circadian rhythm on the expression and function of visual transduction cascade regulators in diurnal zebrafish and nocturnal mice. We focused on regulators of shut-off kinetics such as Recoverins, Arrestins, Opsin kinases, and Regulator of G-protein signaling that have direct effects on temporal vision. Transcript as well as protein levels of most analyzed genes show a robust circadian rhythm-dependent regulation, which correlates with changes in photoresponse kinetics. Electroretinography demonstrates that photoresponse recovery in zebrafish is delayed in the evening and accelerated in the morning. Functional rhythmicity persists in continuous darkness, and it is reversed by an inverted light cycle and disrupted by constant light. This is in line with our finding that orthologous gene transcripts from diurnal zebrafish and nocturnal mice are often expressed in an anti-phasic daily rhythm.


Subject(s)
Circadian Rhythm/radiation effects , Photoreceptor Cells, Vertebrate/radiation effects , Retinal Cone Photoreceptor Cells/radiation effects , Animals , Arrestins/genetics , Arrestins/metabolism , Darkness , Electroretinography , Female , G-Protein-Coupled Receptor Kinase 1/genetics , G-Protein-Coupled Receptor Kinase 1/metabolism , Light , Light Signal Transduction , Male , Mice , Models, Animal , Photoreceptor Cells, Vertebrate/metabolism , RGS Proteins/genetics , RGS Proteins/metabolism , Retinal Cone Photoreceptor Cells/metabolism , Vision, Ocular/radiation effects , Zebrafish/genetics , Zebrafish/metabolism
19.
Neuron ; 109(20): 3268-3282.e6, 2021 10 20.
Article in English | MEDLINE | ID: mdl-34416169

ABSTRACT

The suprachiasmatic nucleus (SCN) is the master circadian pacemaker in mammals and is entrained by environmental light. However, the molecular basis of the response of the SCN to light is not fully understood. We used RNA/chromatin immunoprecipitation/single-nucleus sequencing with circadian behavioral assays to identify mouse SCN cell types and explore their responses to light. We identified three peptidergic cell types that responded to light in the SCN: arginine vasopressin (AVP), vasoactive intestinal peptide (VIP), and cholecystokinin (CCK). In each cell type, light-responsive subgroups were enriched for expression of neuronal Per-Arnt-Sim (PAS) domain protein 4 (NPAS4) target genes. Further, mice lacking Npas4 had a longer circadian period under constant conditions, a damped phase response curve to light, and reduced light-induced gene expression in the SCN. Our data indicate that NPAS4 is necessary for normal transcriptional responses to light in the SCN and critical for photic phase-shifting of circadian behavior.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/genetics , Circadian Rhythm/genetics , Light , Neurons/metabolism , Suprachiasmatic Nucleus/metabolism , Animals , Arginine Vasopressin/metabolism , Basic Helix-Loop-Helix Transcription Factors/metabolism , Cholecystokinin/metabolism , Chromatin Immunoprecipitation , Circadian Rhythm/radiation effects , Gene Expression Profiling , Mice , Mice, Knockout , Neurons/radiation effects , Sequence Analysis, RNA , Single-Cell Analysis , Suprachiasmatic Nucleus/cytology , Suprachiasmatic Nucleus/radiation effects , Vasoactive Intestinal Peptide/metabolism
20.
PLoS One ; 16(7): e0254171, 2021.
Article in English | MEDLINE | ID: mdl-34252130

ABSTRACT

An appropriate exposure to the light-dark cycle, with high irradiances during the day and darkness during the night is essential to keep our physiology on time. However, considering the increasing exposure to artificial light at night and its potential harmful effects on health (i.e. chronodisruption and associated health conditions), it is essential to understand the non-visual effects of light in humans. Melatonin suppression is considered the gold standard for nocturnal light effects, and the activation of intrinsically photosensitive retinal ganglion cells (ipRGCs) through the assessment of pupillary light reflex (PLR) has been recently gaining attention. Also, some theoretical models for melatonin suppression and retinal photoreceptors activation have been proposed. Our aim in this study was to determine the influence of correlated color temperature (CCT) on melatonin suppression and PLR, considering two commercial light sources, as well as to explore the possible correlation between both processes. Also, the contribution of irradiance (associated to CCT) was explored through mathematical modelling on a wider range of light sources. For that, melatonin suppression and PLR were experimentally assessed on 16 healthy and young volunteers under two light conditions (warmer, CCT 3000 K; and cooler, CCT 5700 K, at ~5·1018 photons/cm2/sec). Our experimental results yielded greater post-stimulus constriction under the cooler (5700 K, 13.3 ± 1.9%) than under the warmer light (3000 K, 8.7 ± 1.2%) (p < 0.01), although no significant differences were found between both conditions in terms of melatonin suppression. Interestingly, we failed to demonstrate correlation between PLR and melatonin suppression. Although methodological limitations cannot be discarded, this could be due to the existence of different subpopulations of Type 1 ipRGCs differentially contributing to PLR and melatonin suppression, which opens the way for further research on ipRGCs projection in humans. The application of theoretical modelling suggested that CCT should not be considered separately from irradiance when designing nocturnal/diurnal illumination systems. Further experimental studies on wider ranges of CCTs and light intensities are needed to confirm these conclusions.


Subject(s)
Light , Temperature , Vision, Ocular/radiation effects , Circadian Rhythm/radiation effects , Color , Computer Simulation , Female , Humans , Male , Melatonin/metabolism , Models, Biological , Reflex, Pupillary/physiology , Reflex, Pupillary/radiation effects , Saliva/metabolism , Young Adult
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