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1.
Int J Mol Sci ; 25(12)2024 Jun 13.
Article in English | MEDLINE | ID: mdl-38928237

ABSTRACT

The physiology of reproduction has been of interest to researchers for centuries. The purpose of this work is to review the development of our knowledge on the neuroendocrine background of the regulation of ovulation. We first describe the development of the pituitary gland, the structure of the median eminence (ME), the connection between the hypothalamus and the pituitary gland, the ovarian and pituitary hormones involved in ovulation, and the pituitary cell composition. We recall the pioneer physiological and morphological investigations that drove development forward. The description of the supraoptic-paraventricular magnocellular and tuberoinfundibular parvocellular systems and recognizing the role of the hypophysiotropic area were major milestones in understanding the anatomical and physiological basis of reproduction. The discovery of releasing and inhibiting hormones, the significance of pulse and surge generators, the pulsatile secretion of the gonadotropin-releasing hormone (GnRH), and the subsequent pulsatility of luteinizing (LH) and follicle-stimulating hormones (FSH) in the human reproductive physiology were truly transformative. The roles of three critical neuropeptides, kisspeptin (KP), neurokinin B (NKB), and dynorphin (Dy), were also identified. This review also touches on the endocrine background of human infertility and assisted fertilization.


Subject(s)
Neurosecretory Systems , Ovulation , Humans , Ovulation/physiology , Female , Neurosecretory Systems/physiology , Neurosecretory Systems/metabolism , Animals , Pituitary Gland/metabolism , Kisspeptins/metabolism , Neurokinin B/metabolism , Luteinizing Hormone/metabolism , Gonadotropin-Releasing Hormone/metabolism , Dynorphins/metabolism , Hypothalamus/metabolism , Hypothalamus/physiology
2.
PLoS Biol ; 22(6): e3002624, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38941452

ABSTRACT

Comparative research suggests that the hypothalamus is critical in switching between survival behaviors, yet it is unclear if this is the case in humans. Here, we investigate the role of the human hypothalamus in survival switching by introducing a paradigm where volunteers switch between hunting and escape in response to encounters with a virtual predator or prey. Given the small size and low tissue contrast of the hypothalamus, we used deep learning-based segmentation to identify the individual-specific hypothalamus and its subnuclei as well as an imaging sequence optimized for hypothalamic signal acquisition. Across 2 experiments, we employed computational models with identical structures to explain internal movement generation processes associated with hunting and escaping. Despite the shared structure, the models exhibited significantly different parameter values where escaping or hunting were accurately decodable just by computing the parameters of internal movement generation processes. In experiment 2, multi-voxel pattern analyses (MVPA) showed that the hypothalamus, hippocampus, and periaqueductal gray encode switching of survival behaviors while not encoding simple motor switching outside of the survival context. Furthermore, multi-voxel connectivity analyses revealed a network including the hypothalamus as encoding survival switching and how the hypothalamus is connected to other regions in this network. Finally, model-based fMRI analyses showed that a strong hypothalamic multi-voxel pattern of switching is predictive of optimal behavioral coordination after switching, especially when this signal was synchronized with the multi-voxel pattern of switching in the amygdala. Our study is the first to identify the role of the human hypothalamus in switching between survival behaviors and action organization after switching.


Subject(s)
Hypothalamus , Magnetic Resonance Imaging , Humans , Hypothalamus/physiology , Magnetic Resonance Imaging/methods , Male , Adult , Female , Young Adult , Hippocampus/physiology , Escape Reaction/physiology , Deep Learning , Brain Mapping/methods , Periaqueductal Gray/physiology
4.
Curr Biol ; 34(12): 2657-2671.e7, 2024 Jun 17.
Article in English | MEDLINE | ID: mdl-38810639

ABSTRACT

Animals need to detect threats, initiate defensive responses, and, in parallel, remember where the threat occurred to avoid the possibility of re-encountering it. By probing animals capable of detecting and avoiding a shock-related threatening location, we were able to reveal a septo-hippocampal-hypothalamic circuit that is also engaged in ethological threats, including predatory and social threats. Photometry analysis focusing on the dorsal premammillary nucleus (PMd), a critical interface of this circuit, showed that in freely tested animals, the nucleus appears ideal to work as a threat detector to sense dynamic changes under threatening conditions as the animal approaches and avoids the threatening source. We also found that PMd chemogenetic silencing impaired defensive responses by causing a failure of threat detection rather than a direct influence on any behavioral responses and, at the same time, updated fear memory to a low-threat condition. Optogenetic silencing of the main PMd targets, namely the periaqueductal gray and anterior medial thalamus, showed that the projection to the periaqueductal gray influences both defensive responses and, to a lesser degree, contextual memory, whereas the projection to the anterior medial thalamus has a stronger influence on memory processes. Our results are important for understanding how animals deal with the threat imminence continuum, revealing a circuit that is engaged in threat detection and that, at the same time, serves to update the memory process to accommodate changes under threatening conditions.


Subject(s)
Fear , Hippocampus , Memory , Animals , Fear/physiology , Memory/physiology , Male , Hippocampus/physiology , Neural Pathways/physiology , Hypothalamus/physiology , Optogenetics , Rats/physiology
5.
Curr Biol ; 34(11): 2448-2459.e4, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38754425

ABSTRACT

Adaptive behavioral responses to stressors are critical for survival. However, which brain areas orchestrate switching the appropriate stress responses to distinct contexts is an open question. This study aimed to identify the cell-type-specific brain circuitry governing the selection of distinct behavioral strategies in response to stressors. Through novel mouse behavior paradigms, we observed distinct stressor-evoked behaviors in two psycho-spatially distinct contexts characterized by stressors inside or outside the safe zone. The identification of brain regions activated in both conditions revealed the involvement of the dorsomedial hypothalamus (DMH). Further investigation using optogenetics, chemogenetics, and photometry revealed that glutamatergic projections from the DMH to periaqueductal gray (PAG) mediated responses to inside stressors, while GABAergic projections, particularly from tachykinin1-expressing neurons, played a crucial role in coping with outside stressors. These findings elucidate the role of cell-type-specific circuitry from the DMH to the PAG in shaping behavioral strategies in response to stressors. These findings have the potential to advance our understanding of fundamental neurobiological processes and inform the development of novel approaches for managing context-dependent and anxiety-associated pathological conditions such as agoraphobia and claustrophobia.


Subject(s)
Brain Stem , Stress, Psychological , Animals , Mice , Male , Brain Stem/physiology , Periaqueductal Gray/physiology , Mice, Inbred C57BL , Neural Pathways/physiology , Optogenetics , Hypothalamus/physiology , Neurons/physiology
6.
Horm Behav ; 163: 105564, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38772157

ABSTRACT

A key challenge in animal behavior is disentangling the social stimuli that drive conspecific behaviors. For some species, like teleost fish, putative sexual signaling cues are inextricably linked to others, making it difficult to parse the precise roles distinct signals play in driving conspecific behaviors. In the African cichlid Astatotilapia burtoni, males are either dominant or subordinate, wherein bright coloration, territoriality, and courtship behavior inextricably correlate positively with rank. Here, we leveraged androgen receptor (AR) mutant male A. burtoni that lack dominance-typical coloration but not behavior to isolate the role of male coloration in driving female mating behaviors in this species. We found in independent behavioral assays that females behave aggressively towards AR mutant but not WT males, yet still mated with both types of males. Females showed enhanced activation of esr2b + cells in the hypothalamus when housed with either mutant or WT males and this activation scaled with spawning activities. Therefore, there is not a simple relationship between male coloration and female mating behaviors in A. burtoni, suggesting independent sensory mechanisms converge on hypothalamic esr2b cells to coordinate behavioral output.


Subject(s)
Cichlids , Receptors, Androgen , Sexual Behavior, Animal , Animals , Cichlids/physiology , Cichlids/genetics , Female , Male , Receptors, Androgen/genetics , Sexual Behavior, Animal/physiology , Mutation , Hypothalamus/physiology , Hypothalamus/metabolism , Pigmentation/genetics , Pigmentation/physiology , Aggression/physiology
7.
Sci Rep ; 14(1): 11341, 2024 05 18.
Article in English | MEDLINE | ID: mdl-38762574

ABSTRACT

The hypothalamus is the key regulator for energy homeostasis and is functionally connected to striatal and cortical regions vital for the inhibitory control of appetite. Hence, the ability to non-invasively modulate the hypothalamus network could open new ways for the treatment of metabolic diseases. Here, we tested a novel method for network-targeted transcranial direct current stimulation (net-tDCS) to influence the excitability of brain regions involved in the control of appetite. Based on the resting-state functional connectivity map of the hypothalamus, a 12-channel net-tDCS protocol was generated (Neuroelectrics Starstim system), which included anodal, cathodal and sham stimulation. Ten participants with overweight or obesity were enrolled in a sham-controlled, crossover study. During stimulation or sham control, participants completed a stop-signal task to measure inhibitory control. Overall, stimulation was well tolerated. Anodal net-tDCS resulted in faster stop signal reaction time (SSRT) compared to sham (p = 0.039) and cathodal net-tDCS (p = 0.042). Baseline functional connectivity of the target network correlated with SSRT after anodal compared to sham stimulation (p = 0.016). These preliminary data indicate that modulating hypothalamus functional network connectivity via net-tDCS may result in improved inhibitory control. Further studies need to evaluate the effects on eating behavior and metabolism.


Subject(s)
Feasibility Studies , Hypothalamus , Obesity , Transcranial Direct Current Stimulation , Humans , Transcranial Direct Current Stimulation/methods , Hypothalamus/physiology , Male , Adult , Female , Obesity/therapy , Obesity/physiopathology , Cross-Over Studies , Appetite/physiology , Middle Aged , Nerve Net/physiology , Appetite Regulation/physiology , Reaction Time/physiology
8.
J Neurosci ; 44(22)2024 May 29.
Article in English | MEDLINE | ID: mdl-38604780

ABSTRACT

The autonomic nervous system (ANS) regulates the body's physiology, including cardiovascular function. As the ANS develops during the second to third trimester, fetal heart rate variability (HRV) increases while fetal heart rate (HR) decreases. In this way, fetal HR and HRV provide an index of fetal ANS development and future neurobehavioral regulation. Fetal HR and HRV have been associated with child language ability and psychomotor development behavior in toddlerhood. However, their associations with postbirth autonomic brain systems, such as the brainstem, hypothalamus, and dorsal anterior cingulate cortex (dACC), have yet to be investigated even though brain pathways involved in autonomic regulation are well established in older individuals. We assessed whether fetal HR and HRV were associated with the brainstem, hypothalamic, and dACC functional connectivity in newborns. Data were obtained from 60 pregnant individuals (ages 14-42) at 24-27 and 34-37 weeks of gestation using a fetal actocardiograph to generate fetal HR and HRV. During natural sleep, their infants (38 males and 22 females) underwent a fMRI scan between 40 and 46 weeks of postmenstrual age. Our findings relate fetal heart indices to brainstem, hypothalamic, and dACC connectivity and reveal connections with widespread brain regions that may support behavioral and emotional regulation. We demonstrated the basic physiologic association between fetal HR indices and lower- and higher-order brain regions involved in regulatory processes. This work provides the foundation for future behavioral or physiological regulation research in fetuses and infants.


Subject(s)
Brain Stem , Gyrus Cinguli , Heart Rate, Fetal , Hypothalamus , Magnetic Resonance Imaging , Humans , Female , Male , Gyrus Cinguli/physiology , Gyrus Cinguli/diagnostic imaging , Brain Stem/diagnostic imaging , Brain Stem/physiology , Infant, Newborn , Pregnancy , Heart Rate, Fetal/physiology , Adult , Hypothalamus/physiology , Hypothalamus/diagnostic imaging , Hypothalamus/embryology , Adolescent , Young Adult , Brain Mapping/methods , Neural Pathways/physiology
9.
J Neurosci ; 44(21)2024 May 22.
Article in English | MEDLINE | ID: mdl-38575343

ABSTRACT

Information seeking, such as standing on tiptoes to look around in humans, is observed across animals and helps survival. Its rodent analog-unsupported rearing on hind legs-was a classic model in deciphering neural signals of cognition and is of intense renewed interest in preclinical modeling of neuropsychiatric states. Neural signals and circuits controlling this dedicated decision to seek information remain largely unknown. While studying subsecond timing of spontaneous behavioral acts and activity of melanin-concentrating hormone (MCH) neurons (MNs) in behaving male and female mice, we observed large MN activity spikes that aligned to unsupported rears. Complementary causal, loss and gain of function, analyses revealed specific control of rear frequency and duration by MNs and MCHR1 receptors. Activity in a key stress center of the brain-the locus ceruleus noradrenaline cells-rapidly inhibited MNs and required functional MCH receptors for its endogenous modulation of rearing. By defining a neural module that both tracks and controls rearing, these findings may facilitate further insights into biology of information seeking.


Subject(s)
Exploratory Behavior , Hypothalamic Hormones , Locus Coeruleus , Melanins , Neurons , Pituitary Hormones , Animals , Locus Coeruleus/metabolism , Locus Coeruleus/cytology , Locus Coeruleus/physiology , Melanins/metabolism , Hypothalamic Hormones/metabolism , Pituitary Hormones/metabolism , Male , Female , Mice , Neurons/physiology , Neurons/metabolism , Exploratory Behavior/physiology , Mice, Inbred C57BL , Receptors, Somatostatin/metabolism , Hypothalamus/cytology , Hypothalamus/metabolism , Hypothalamus/physiology
10.
Sci Rep ; 14(1): 8346, 2024 04 09.
Article in English | MEDLINE | ID: mdl-38594484

ABSTRACT

Nest-building behavior is a widely observed innate behavior. A nest provides animals with a secure environment for parenting, sleep, feeding, reproduction, and temperature maintenance. Since animal infants spend their time in a nest, nest-building behavior has been generally studied as parental behaviors, and the medial preoptic area (MPOA) neurons are known to be involved in parental nest-building. However, nest-building of singly housed male mice has been less examined. Here we show that male mice spent longer time in nest-building at the early to middle dark phase and at the end of the dark phase. These two periods are followed by sleep-rich periods. When a nest was removed and fresh nest material was introduced, both male and female mice built nests at Zeitgeber time (ZT) 6, but not at ZT12. Using Fos-immunostaining combined with double in situ hybridization of Vgat and Vglut2, we found that Vgat- and Vglut2-positive cells of the lateral preoptic area (LPOA) were the only hypothalamic neuron population that exhibited a greater number of activated cells in response to fresh nest material at ZT6, compared to being naturally awake at ZT12. Fos-positive LPOA neurons were negative for estrogen receptor 1 (Esr1). Both Vgat-positive and Vglut2-positive neurons in both the LPOA and MPOA were activated at pup retrieval by male mice. Our findings suggest the possibility that GABAergic and glutamatergic neurons in the LPOA are associated with nest-building behavior in male mice.


Subject(s)
Hypothalamus , Preoptic Area , Humans , Mice , Male , Female , Animals , Hypothalamus/physiology , Preoptic Area/physiology , Neurons/physiology
11.
Nature ; 628(8009): 826-834, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38538787

ABSTRACT

Empirical evidence suggests that heat exposure reduces food intake. However, the neurocircuit architecture and the signalling mechanisms that form an associative interface between sensory and metabolic modalities remain unknown, despite primary thermoceptive neurons in the pontine parabrachial nucleus becoming well characterized1. Tanycytes are a specialized cell type along the wall of the third ventricle2 that bidirectionally transport hormones and signalling molecules between the brain's parenchyma and ventricular system3-8. Here we show that tanycytes are activated upon acute thermal challenge and are necessary to reduce food intake afterwards. Virus-mediated gene manipulation and circuit mapping showed that thermosensing glutamatergic neurons of the parabrachial nucleus innervate tanycytes either directly or through second-order hypothalamic neurons. Heat-dependent Fos expression in tanycytes suggested their ability to produce signalling molecules, including vascular endothelial growth factor A (VEGFA). Instead of discharging VEGFA into the cerebrospinal fluid for a systemic effect, VEGFA was released along the parenchymal processes of tanycytes in the arcuate nucleus. VEGFA then increased the spike threshold of Flt1-expressing dopamine and agouti-related peptide (Agrp)-containing neurons, thus priming net anorexigenic output. Indeed, both acute heat and the chemogenetic activation of glutamatergic parabrachial neurons at thermoneutrality reduced food intake for hours, in a manner that is sensitive to both Vegfa loss-of-function and blockage of vesicle-associated membrane protein 2 (VAMP2)-dependent exocytosis from tanycytes. Overall, we define a multimodal neurocircuit in which tanycytes link parabrachial sensory relay to the long-term enforcement of a metabolic code.


Subject(s)
Brain Stem , Ependymoglial Cells , Feeding Behavior , Hot Temperature , Hypothalamus , Neural Pathways , Neurons , Animals , Female , Male , Mice , Agouti-Related Protein/metabolism , Arcuate Nucleus of Hypothalamus/metabolism , Arcuate Nucleus of Hypothalamus/cytology , Brain Stem/cytology , Brain Stem/physiology , Dopamine/metabolism , Eating/physiology , Ependymoglial Cells/cytology , Ependymoglial Cells/physiology , Feeding Behavior/physiology , Glutamic Acid/metabolism , Hypothalamus/cytology , Hypothalamus/physiology , Neural Pathways/metabolism , Neurons/metabolism , Parabrachial Nucleus/cytology , Parabrachial Nucleus/metabolism , Parabrachial Nucleus/physiology , Thermosensing/physiology , Time Factors , Vascular Endothelial Growth Factor A/cerebrospinal fluid , Vascular Endothelial Growth Factor A/metabolism
12.
Nat Neurosci ; 27(5): 952-963, 2024 May.
Article in English | MEDLINE | ID: mdl-38499854

ABSTRACT

Innate behaviors meet multiple needs adaptively and in a serial order, suggesting the existence of a hitherto elusive brain dynamics that brings together representations of upcoming behaviors during their selection. Here we show that during behavioral transitions, possible upcoming behaviors are encoded by specific signatures of neuronal populations in the lateral hypothalamus (LH) that are active near beta oscillation peaks. Optogenetic recruitment of intrahypothalamic inhibition at this phase eliminates behavioral transitions. We show that transitions are elicited by beta-rhythmic inputs from the prefrontal cortex that spontaneously synchronize with LH 'transition cells' encoding multiple behaviors. Downstream of the LH, dopamine neurons increase firing during beta oscillations and also encode behavioral transitions. Thus, a hypothalamic transition state signals alternative future behaviors, encodes the one most likely to be selected and enables rapid coordination with cognitive and reward-processing circuitries, commanding adaptive social contact and eating behaviors.


Subject(s)
Beta Rhythm , Neural Pathways , Prefrontal Cortex , Animals , Prefrontal Cortex/physiology , Neural Pathways/physiology , Male , Beta Rhythm/physiology , Mice , Optogenetics , Behavior, Animal/physiology , Hypothalamic Area, Lateral/physiology , Reward , Dopaminergic Neurons/physiology , Hypothalamus/physiology
13.
Behav Brain Res ; 465: 114958, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38485056

ABSTRACT

The lateral hypothalamic nucleus (LHy) is located in the dorsolateral hypothalamus of birds, and it is essential to many life processes. However, limited information is available about the role of LHy in mediating locomotive behaviors. In this work, we investigated the structure and function of LHy in pigeons (Columba livia) by Nissl staining, immunohistochemical (IHC) staining, insituhybridization (ISH) staining and constant current stimulation methods. The results showed that LHy appears crescent in shape, and three-dimensional coordinate value range of LHy is: A: 5.0-8.0 mm, L: 0.7-1.2 mm, D: 9.5-10.3 mm. The dopaminergic neurons in LHy were distributed in small amount and concentrated manner, while the glutamatergic neurons were distributed in a large number and uniform manner. The distribution of the above two neurons at each coronal level showed a significant positive correlation (R2 = 0.7516, P < 0.001). Our work demonstrated that LHy mainly mediates forward movement (P < 0.01) and ipsilateral lateral movement (P < 0.001), and these movements were significantly effected by electrical stimulation intensity. Our results showed that LHy can mediate the generation of directional behavior and this will provide technical support for the study of locomotor behavior regulation in birds.


Subject(s)
Columbidae , Hypothalamic Area, Lateral , Animals , Hypothalamus/physiology , Neurons
14.
Physiology (Bethesda) ; 39(4): 0, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38530221

ABSTRACT

Astrocytes are no longer considered as passive support cells. In the hypothalamus, these glial cells actively participate in the control of appetite, energy expenditure, and the processes leading to obesity and its secondary complications. Here we briefly review studies supporting this conclusion and the advances made in understanding the underlying mechanisms.


Subject(s)
Astrocytes , Energy Metabolism , Hypothalamus , Neurons , Astrocytes/metabolism , Astrocytes/physiology , Hypothalamus/metabolism , Hypothalamus/physiology , Animals , Humans , Neurons/physiology , Neurons/metabolism , Energy Metabolism/physiology , Obesity/metabolism , Obesity/physiopathology
15.
Diabetes Obes Metab ; 26 Suppl 2: 3-12, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38351898

ABSTRACT

BACKGROUND: Hypothalamic centres have been recognized to play a central role in body weight regulation for nearly 70 years. AIMS: In this review, we will explore the current undersanding of the role the hypothalamus plays in controlling food intake behaviours. MATERIALS AND METHODS: Review of relevant literature from PubMed searches and review article citations. RESULTS: Beginning with autopsy studies showing destructive hypothalamic lesions in patients manifesting hyperphagia and rapid weight gain, followed by animal lesioning studies pinpointing adjacent hypothalamic sites as the 'satiety' centre and the 'feeding' centre of the brain, the neurocircuitry that governs our body weight is now understood to consist of a complex, interconnected network, including the hypothalamus and extending to cortical sites, reward centres and brainstem. Neurons in these sites receive afferent signals from the gastrointestinal tract and adipose tissue indicating food availability, calorie content, as well as body fat mass. DISCUSSION: Integration of these complex signals leads to modulation of the two prime effector systems that defend a body fat mass set point: food intake and energy expenditure. CONCLUSION: Understanding the hypothalamic control of food intake forms the foundation for understanding and managing obesity as a chronic disease.


Subject(s)
Hypothalamus , Obesity , Animals , Humans , Hypothalamus/physiology , Obesity/metabolism , Body Weight , Adipose Tissue/metabolism , Eating/physiology , Energy Metabolism
16.
Nat Neurosci ; 27(4): 702-715, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38347201

ABSTRACT

Social behaviors often consist of a motivational phase followed by action. Here we show that neurons in the ventromedial hypothalamus ventrolateral area (VMHvl) of mice encode the temporal sequence of aggressive motivation to action. The VMHvl receives local inhibitory input (VMHvl shell) and long-range input from the medial preoptic area (MPO) with functional coupling to neurons with specific temporal profiles. Encoding models reveal that during aggression, VMHvl shellvgat+ activity peaks at the start of an attack, whereas activity from the MPO-VMHvlvgat+ input peaks at specific interaction endpoints. Activation of the MPO-VMHvlvgat+ input promotes and prolongs a low motivation state, whereas activation of VMHvl shellvgat+ results in action-related deficits, acutely terminating attack. Moreover, stimulation of MPO-VMHvlvgat+ input is positively valenced and anxiolytic. Together, these data demonstrate how distinct inhibitory inputs to the hypothalamus can independently gate the motivational and action phases of aggression through a single locus of control.


Subject(s)
Aggression , Motivation , Mice , Animals , Aggression/physiology , Social Behavior , Hypothalamus/physiology , Neurons/physiology
18.
Trends Cogn Sci ; 28(1): 18-29, 2024 01.
Article in English | MEDLINE | ID: mdl-37758590

ABSTRACT

Despite the physiological complexity of the hypothalamus, its role is typically restricted to initiation or cessation of innate behaviors. For example, theories of lateral hypothalamus argue that it is a switch to turn feeding 'on' and 'off' as dictated by higher-order structures that render when feeding is appropriate. However, recent data demonstrate that the lateral hypothalamus is critical for learning about food-related cues. Furthermore, the lateral hypothalamus opposes learning about information that is neutral or distal to food. This reveals the lateral hypothalamus as a unique arbitrator of learning capable of shifting behavior toward or away from important events. This has relevance for disorders characterized by changes in this balance, including addiction and schizophrenia. Generally, this suggests that hypothalamic function is more complex than increasing or decreasing innate behaviors.


Subject(s)
Hypothalamic Area, Lateral , Hypothalamus , Humans , Hypothalamic Area, Lateral/physiology , Hypothalamus/physiology , Learning/physiology , Cues , Cognition , Reward
19.
Curr Biol ; 34(1): 12-23.e5, 2024 01 08.
Article in English | MEDLINE | ID: mdl-38096820

ABSTRACT

Sleep disturbances are detrimental to our behavioral and emotional well-being. Stressful events disrupt sleep, in particular by inducing brief awakenings (microarousals, MAs), resulting in sleep fragmentation. The preoptic area of the hypothalamus (POA) is crucial for sleep control. However, how POA neurons contribute to the regulation of MAs and thereby impact sleep quality is unknown. Using fiber photometry in mice, we examine the activity of genetically defined POA subpopulations during sleep. We find that POA glutamatergic neurons are rhythmically activated in synchrony with an infraslow rhythm in the spindle band of the electroencephalogram during non-rapid eye movement sleep (NREMs) and are transiently activated during MAs. Optogenetic stimulation of these neurons promotes MAs and wakefulness. Exposure to acute social defeat stress fragments NREMs and significantly increases the number of transients in the calcium activity of POA glutamatergic neurons during NREMs. By reducing MAs, optogenetic inhibition during spontaneous sleep and after stress consolidates NREMs. Monosynaptically restricted rabies tracing reveals that POA glutamatergic neurons are innervated by brain regions regulating stress and sleep. In particular, presynaptic glutamatergic neurons in the lateral hypothalamus become activated after stress, and stimulating their projections to the POA promotes MAs and wakefulness. Our findings uncover a novel circuit mechanism by which POA excitatory neurons regulate sleep quality after stress.


Subject(s)
Sleep Deprivation , Sleep , Mice , Animals , Sleep/physiology , Hypothalamus/physiology , Preoptic Area/physiology , Neurons/physiology , Wakefulness/physiology
20.
Curr Biol ; 33(24): 5381-5389.e4, 2023 12 18.
Article in English | MEDLINE | ID: mdl-37992720

ABSTRACT

Endotherms can survive low temperatures and food shortage by actively entering a hypometabolic state known as torpor. Although the decrease in metabolic rate and body temperature (Tb) during torpor is controlled by the brain, the specific neural circuits underlying these processes have not been comprehensively elucidated. In this study, we identify the neural circuits involved in torpor regulation by combining whole-brain mapping of torpor-activated neurons, cell-type-specific manipulation of neural activity, and viral tracing-based circuit mapping. We find that Trpm2-positive neurons in the preoptic area and Vgat-positive neurons in the dorsal medial hypothalamus are activated during torpor. Genetic silencing shows that the activity of either cell type is necessary to enter the torpor state. Finally, we show that these cells receive projections from the arcuate and suprachiasmatic nucleus and send projections to brain regions involved in thermoregulation. Our results demonstrate an essential role of hypothalamic neurons in the regulation of Tb and metabolic rate during torpor and identify critical nodes of the torpor regulatory network.


Subject(s)
Hypothalamus , Torpor , Hypothalamus/physiology , Torpor/physiology , Preoptic Area , Suprachiasmatic Nucleus , Brain
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