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1.
Genes Brain Behav ; 23(4): e12908, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39052331

ABSTRACT

Rough-and-tumble play in juvenile rats and song in flocks of adult songbirds outside a breeding context (gregarious song) are two distinct forms of non-sexual social behavior. Both are believed to play roles in the development of sociomotor skills needed for later life-history events, including reproduction, providing opportunities for low-stakes practice. Additionally, both behaviors are thought to be intrinsically rewarded and are associated with a positive affective state. Given the functional similarities of these behaviors, this study used RNA-sequencing to identify commonalities in their underlying neurochemical systems within the medial preoptic area. This brain region is implicated in multiple social behaviors, including song and play, and is highly conserved across vertebrates. DESeq2 and rank-rank hypergeometric overlap analyses identified a shared neurotranscriptomic profile in adult European starlings singing high rates of gregarious song and juvenile rats playing at high rates. Transcript levels for several glutamatergic receptor genes, such as GRIN1, GRIN2A, and GRIA1, were consistently upregulated in highly gregarious (i.e., playful/high singing) animals. This study is the first to directly investigate shared neuromodulators of positive, non-sexual social behaviors across songbirds and mammals. It provides insight into a conserved brain region that may regulate similar behaviors across vertebrates.


Subject(s)
Preoptic Area , Social Behavior , Vocalization, Animal , Animals , Preoptic Area/metabolism , Rats , Male , Vocalization, Animal/physiology , Transcriptome , Starlings/genetics , Starlings/physiology , Receptors, N-Methyl-D-Aspartate/genetics , Receptors, N-Methyl-D-Aspartate/metabolism , Songbirds/genetics , Sequence Analysis, RNA/methods
2.
Nature ; 632(8023): 147-156, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39020173

ABSTRACT

Changes in the amount of daylight (photoperiod) alter physiology and behaviour1,2. Adaptive responses to seasonal photoperiods are vital to all organisms-dysregulation associates with disease, including affective disorders3 and metabolic syndromes4. The circadian rhythm circuitry is implicated in such responses5,6, yet little is known about the precise cellular substrates that underlie phase synchronization to photoperiod change. Here we identify a brain circuit and system of axon branch-specific and reversible neurotransmitter deployment that are critical for behavioural and sleep adaptation to photoperiod. A type of neuron called mrEn1-Pet17 in the mouse brainstem median raphe nucleus segregates serotonin from VGLUT3 (also known as SLC17A8, a proxy for glutamate) to different axonal branches that innervate specific brain regions involved in circadian rhythm and sleep-wake timing8,9. This branch-specific neurotransmitter deployment did not distinguish between daylight and dark phase; however, it reorganized with change in photoperiod. Axonal boutons, but not cell soma, changed neurochemical phenotype upon a shift away from equinox light/dark conditions, and these changes were reversed upon return to equinox conditions. When we genetically disabled Vglut3 in mrEn1-Pet1 neurons, sleep-wake periods, voluntary activity and clock gene expression did not synchronize to the new photoperiod or were delayed. Combining intersectional rabies virus tracing and projection-specific neuronal silencing, we delineated a preoptic area-to-mrEn1Pet1 connection that was responsible for decoding the photoperiodic inputs, driving the neurotransmitter reorganization and promoting behavioural synchronization. Our results reveal a brain circuit and periodic, branch-specific neurotransmitter deployment that regulates organismal adaptation to photoperiod change.


Subject(s)
Adaptation, Physiological , Axons , Circadian Rhythm , Neurotransmitter Agents , Photoperiod , Animals , Female , Mice , Adaptation, Physiological/physiology , Amino Acid Transport Systems, Acidic/deficiency , Amino Acid Transport Systems, Acidic/genetics , Amino Acid Transport Systems, Acidic/metabolism , Axons/metabolism , Axons/physiology , Circadian Rhythm/physiology , CLOCK Proteins/genetics , Darkness , Dorsal Raphe Nucleus/cytology , Dorsal Raphe Nucleus/metabolism , Neural Pathways/physiology , Neurotransmitter Agents/metabolism , Preoptic Area/cytology , Preoptic Area/metabolism , Presynaptic Terminals/metabolism , Presynaptic Terminals/physiology , Rabies virus , Serotonin/metabolism , Sleep/physiology , Wakefulness/physiology
3.
J Physiol Sci ; 74(1): 33, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38867187

ABSTRACT

Hibernation and torpor are not passive responses caused by external temperature drops and fasting but are active brain functions that lower body temperature. A population of neurons in the preoptic area was recently identified as such active torpor-regulating neurons. We hypothesized that the other hypothermia-inducing maneuvers would also activate these neurons. To test our hypothesis, we first refined the previous observations, examined the brain regions explicitly activated during the falling phase of body temperature using c-Fos expression, and confirmed the preoptic area. Next, we observed long-lasting hypothermia by reactivating torpor-tagged Gq-expressing neurons using the activity tagging and DREADD systems. Finally, we found that about 40-60% of torpor-tagged neurons were activated by succeeding isoflurane anesthesia and by icv administration of an adenosine A1 agonist. Isoflurane-induced and central adenosine-induced hypothermia is, at least in part, an active process mediated by the torpor-regulating neurons in the preoptic area.


Subject(s)
Adenosine , Isoflurane , Neurons , Preoptic Area , Animals , Preoptic Area/drug effects , Preoptic Area/metabolism , Isoflurane/pharmacology , Isoflurane/administration & dosage , Adenosine/administration & dosage , Adenosine/pharmacology , Adenosine/metabolism , Neurons/drug effects , Neurons/metabolism , Neurons/physiology , Male , Anesthetics, Inhalation/pharmacology , Anesthetics, Inhalation/administration & dosage , Body Temperature/drug effects , Body Temperature/physiology , Hypothermia/chemically induced , Hypothermia/metabolism , Torpor/drug effects , Mice , Proto-Oncogene Proteins c-fos/metabolism
4.
Cells ; 13(11)2024 May 22.
Article in English | MEDLINE | ID: mdl-38891027

ABSTRACT

Sleep disruption is a frequent problem of advancing age, often accompanied by low-grade chronic central and peripheral inflammation. We examined whether chronic neuroinflammation in the preoptic and basal forebrain area (POA-BF), a critical sleep-wake regulatory structure, contributes to this disruption. We developed a targeted viral vector designed to overexpress tumor necrosis factor-alpha (TNFα), specifically in astrocytes (AAV5-GFAP-TNFα-mCherry), and injected it into the POA of young mice to induce heightened neuroinflammation within the POA-BF. Compared to the control (treated with AAV5-GFAP-mCherry), mice with astrocytic TNFα overproduction within the POA-BF exhibited signs of increased microglia activation, indicating a heightened local inflammatory milieu. These mice also exhibited aging-like changes in sleep-wake organization and physical performance, including (a) impaired sleep-wake functions characterized by disruptions in sleep and waking during light and dark phases, respectively, and a reduced ability to compensate for sleep loss; (b) dysfunctional VLPO sleep-active neurons, indicated by fewer neurons expressing c-fos after suvorexant-induced sleep; and (c) compromised physical performance as demonstrated by a decline in grip strength. These findings suggest that inflammation-induced dysfunction of sleep- and wake-regulatory mechanisms within the POA-BF may be a critical component of sleep-wake disturbances in aging.


Subject(s)
Aging , Astrocytes , Basal Forebrain , Preoptic Area , Sleep , Tumor Necrosis Factor-alpha , Animals , Astrocytes/metabolism , Astrocytes/pathology , Aging/metabolism , Preoptic Area/metabolism , Mice , Tumor Necrosis Factor-alpha/metabolism , Sleep/physiology , Basal Forebrain/metabolism , Basal Forebrain/pathology , Wakefulness , Male , Mice, Inbred C57BL , Neurons/metabolism , Neurons/pathology , Sleep Wake Disorders/metabolism , Sleep Wake Disorders/pathology
5.
Elife ; 122024 Jun 17.
Article in English | MEDLINE | ID: mdl-38884573

ABSTRACT

Rapid eye movement sleep (REMs) is characterized by activated electroencephalogram (EEG) and muscle atonia, accompanied by vivid dreams. REMs is homeostatically regulated, ensuring that any loss of REMs is compensated by a subsequent increase in its amount. However, the neural mechanisms underlying the homeostatic control of REMs are largely unknown. Here, we show that GABAergic neurons in the preoptic area of the hypothalamus projecting to the tuberomammillary nucleus (POAGAD2→TMN neurons) are crucial for the homeostatic regulation of REMs in mice. POAGAD2→TMN neurons are most active during REMs, and inhibiting them specifically decreases REMs. REMs restriction leads to an increased number and amplitude of calcium transients in POAGAD2→TMN neurons, reflecting the accumulation of REMs pressure. Inhibiting POAGAD2→TMN neurons during REMs restriction blocked the subsequent rebound of REMs. Our findings reveal a hypothalamic circuit whose activity mirrors the buildup of homeostatic REMs pressure during restriction and that is required for the ensuing rebound in REMs.


Subject(s)
GABAergic Neurons , Homeostasis , Preoptic Area , Sleep, REM , Animals , Preoptic Area/physiology , Sleep, REM/physiology , Mice , GABAergic Neurons/physiology , Male , Electroencephalography , Hypothalamic Area, Lateral/physiology
6.
Genes Brain Behav ; 23(3): e12906, 2024 06.
Article in English | MEDLINE | ID: mdl-38861664

ABSTRACT

Motherhood is a costly life-history transition accompanied by behavioral and neural plasticity necessary for offspring care. Motherhood in the monogamous prairie vole is associated with decreased pair bond strength, suggesting a trade-off between parental investment and pair bond maintenance. Neural mechanisms governing pair bonds and maternal bonds overlap, creating possible competition between the two. We measured mRNA expression of genes encoding receptors for oxytocin (oxtr), dopamine (d1r and d2r), mu-opioids (oprm1a), and kappa-opioids (oprk1a) within three brain areas processing salience of sociosensory cues (anterior cingulate cortex; ACC), pair bonding (nucleus accumbens; NAc), and maternal care (medial preoptic area; MPOA). We compared gene expression differences between pair bonded prairie voles that were never pregnant, pregnant (~day 16 of pregnancy), and recent mothers (day 3 of lactation). We found greater gene expression in the NAc (oxtr, d2r, oprm1a, and oprk1a) and MPOA (oxtr, d1r, d2r, oprm1a, and oprk1a) following the transition to motherhood. Expression for all five genes in the ACC was greatest for females that had been bonded for longer. Gene expression within each region was highly correlated, indicating that oxytocin, dopamine, and opioids comprise a complimentary gene network for social signaling. ACC-NAc gene expression correlations indicated that being a mother (oxtr and d1r) or maintaining long-term pair bonds (oprm1a) relies on the coordination of different signaling systems within the same circuit. Our study suggests the maternal brain undergoes changes that prepare females to face the trade-off associated with increased emotional investment in offspring, while also maintaining a pair bond.


Subject(s)
Arvicolinae , Maternal Behavior , Nucleus Accumbens , Pair Bond , Receptors, Opioid, mu , Animals , Female , Arvicolinae/genetics , Receptors, Opioid, mu/genetics , Receptors, Opioid, mu/metabolism , Maternal Behavior/physiology , Nucleus Accumbens/metabolism , Pregnancy , Receptors, Oxytocin/genetics , Receptors, Oxytocin/metabolism , Receptors, Opioid, kappa/genetics , Receptors, Opioid, kappa/metabolism , Gyrus Cinguli/metabolism , Preoptic Area/metabolism , Receptors, Dopamine D1/genetics , Receptors, Dopamine D1/metabolism
7.
Behav Brain Res ; 471: 115116, 2024 Aug 05.
Article in English | MEDLINE | ID: mdl-38897419

ABSTRACT

The neural mechanisms underlying paternal care in biparental mammals are not well understood. The California mouse (Peromyscus californicus) is a biparental rodent in which virtually all fathers are attracted to pups, while virgin males vary widely in their behavior toward unrelated infants, ranging from attacking to avoiding to huddling and grooming pups. We previously showed that pharmacologically inhibiting the synthesis of the neurotransmitter norepinephrine (NE) with the dopamine ß-hydroxylase inhibitor nepicastat reduced the propensity of virgin male and female California mice to interact with pups. The current study tested the hypothesis that nepicastat would reduce pup-induced c-Fos immunoreactivity, a cellular marker of neural activity, in the medial preoptic area (MPOA), medial amygdala (MeA), basolateral amygdala (BLA), and bed nucleus of the stria terminalis (BNST), brain regions implicated in the control of parental behavior and/or anxiety. Virgin males were injected with nepicastat (75 mg/kg, i.p.) or vehicle 2 hours prior to exposure to either an unrelated pup or novel object for 60 minutes (n = 4-6 mice per group). Immediately following the 60-minute stimulus exposure, mice were euthanized and their brains were collected for c-Fos immunohistochemistry. Nepicastat reduced c-Fos expression in the MeA and MPOA of pup-exposed virgin males compared to vehicle-injected controls. In contrast, nepicastat did not alter c-Fos expression in any of the above brain regions following exposure to a novel object. Overall, these results suggest that the noradrenergic system might influence MeA and MPOA function to promote behavioral interactions with pups in virgin males.


Subject(s)
Dopamine beta-Hydroxylase , Paternal Behavior , Peromyscus , Preoptic Area , Septal Nuclei , Animals , Male , Dopamine beta-Hydroxylase/metabolism , Dopamine beta-Hydroxylase/antagonists & inhibitors , Paternal Behavior/physiology , Paternal Behavior/drug effects , Septal Nuclei/drug effects , Septal Nuclei/metabolism , Preoptic Area/metabolism , Preoptic Area/drug effects , Proto-Oncogene Proteins c-fos/metabolism , Female , Enzyme Inhibitors/pharmacology , Basolateral Nuclear Complex/drug effects , Basolateral Nuclear Complex/metabolism , Corticomedial Nuclear Complex/drug effects , Corticomedial Nuclear Complex/metabolism , Norepinephrine/metabolism , Imidazoles , Thiones
8.
Mol Metab ; 84: 101951, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38729241

ABSTRACT

OBJECTIVE: Hypothalamic signals potently stimulate energy expenditure by engaging peripheral mechanisms to restore energy homeostasis. Previous studies have identified several critical hypothalamic sites (e.g. preoptic area (POA) and ventromedial hypothalamic nucleus (VMN)) that could be part of an interconnected neurocircuit that controls tissue thermogenesis and essential for body weight control. However, the key neurocircuit that can stimulate energy expenditure has not yet been established. METHODS: Here, we investigated the downstream mechanisms by which VMN neurons stimulate adipose tissue thermogenesis. We manipulated subsets of VMN neurons acutely as well as chronically and studied its effect on tissue thermogenesis and body weight control, using Sf1Cre and Adcyap1Cre mice and measured physiological parameters under both high-fat diet and standard chow diet conditions. To determine the node efferent to these VMN neurons, that is involved in modulating energy expenditure, we employed electrophysiology and optogenetics experiments combined with measurements using tissue-implantable temperature microchips. RESULTS: Activation of the VMN neurons that express the steroidogenic factor 1 (Sf1; VMNSf1 neurons) reduced body weight, adiposity and increased energy expenditure in diet-induced obese mice. This function is likely mediated, at least in part, by the release of the pituitary adenylate cyclase-activating polypeptide (PACAP; encoded by the Adcyap1 gene) by the VMN neurons, since we previously demonstrated that PACAP, at the VMN, plays a key role in energy expenditure control. Thus, we then shifted focus to the subpopulation of VMNSf1 neurons that contain the neuropeptide PACAP (VMNPACAP neurons). Since the VMN neurons do not directly project to the peripheral tissues, we traced the location of the VMNPACAP neurons' efferents. We identified that VMNPACAP neurons project to and activate neurons in the caudal regions of the POA whereby these projections stimulate tissue thermogenesis in brown and beige adipose tissue. We demonstrated that selective activation of caudal POA projections from VMNPACAP neurons induces tissue thermogenesis, most potently in negative energy balance and activating these projections lead to some similar, but mostly unique, patterns of gene expression in brown and beige tissue. Finally, we demonstrated that the activation of the VMNPACAP neurons' efferents that lie at the caudal POA are necessary for inducing tissue thermogenesis in brown and beige adipose tissue. CONCLUSIONS: These data indicate that VMNPACAP connections with the caudal POA neurons impact adipose tissue function and are important for induction of tissue thermogenesis. Our data suggests that the VMNPACAP → caudal POA neurocircuit and its components are critical for controlling energy balance by activating energy expenditure and body weight control.


Subject(s)
Energy Metabolism , Neurons , Preoptic Area , Thermogenesis , Ventromedial Hypothalamic Nucleus , Animals , Ventromedial Hypothalamic Nucleus/metabolism , Thermogenesis/physiology , Preoptic Area/metabolism , Mice , Neurons/metabolism , Male , Steroidogenic Factor 1/metabolism , Steroidogenic Factor 1/genetics , Pituitary Adenylate Cyclase-Activating Polypeptide/metabolism , Pituitary Adenylate Cyclase-Activating Polypeptide/genetics , Diet, High-Fat , Mice, Inbred C57BL , Body Weight , Adipose Tissue, Brown/metabolism
9.
Physiol Rep ; 12(10): e16046, 2024 May.
Article in English | MEDLINE | ID: mdl-38749925

ABSTRACT

We have previously reported that the subfornical organ (SFO) does not contribute to the chronic hypertensive response to DOCA-salt in rats, and yet the organum vasculosum of the lamina terminalis (OVLT) plays a significant role in the development of deoxycorticosterone acetate (DOCA)-salt hypertension. Since efferent fibers of the OVLT project to and through the median preoptic nucleus (MnPO), the present study was designed to test the hypothesis that the MnPO is necessary for DOCA-salt hypertension in the rat. Male Sprague-Dawley rats underwent SHAM (MnPOsham; n = 5) or electrolytic lesion of the MnPO (MnPOx; n = 7) followed by subsequent unilateral nephrectomy and telemetry instrumentation. After recovery and during the experimental protocol, rats consumed a 0.1% NaCl diet and 0.9% NaCl drinking solution. Mean arterial pressure (MAP) was recorded telemetrically 5 days before and 21 days after DOCA implantation (100 mg/rat; SQ). The chronic pressor response to DOCA was attenuated in MnPOx rats by Day 11 of treatment and continued such that MAP increased 25 ± 3 mmHg in MnPOsham rats by Day 21 of DOCA compared to 14 ± 3 mmHg in MnPOx rats. These results support the hypothesis that the MnPO is an important brain site of action and necessary for the full development of DOCA-salt hypertension in the rat.


Subject(s)
Desoxycorticosterone Acetate , Hypertension , Preoptic Area , Rats, Sprague-Dawley , Animals , Male , Preoptic Area/drug effects , Preoptic Area/metabolism , Hypertension/chemically induced , Hypertension/physiopathology , Hypertension/etiology , Rats , Sodium Chloride, Dietary/adverse effects , Blood Pressure/drug effects
10.
CNS Neurosci Ther ; 30(5): e14726, 2024 05.
Article in English | MEDLINE | ID: mdl-38715251

ABSTRACT

AIMS: The preoptic area (POA) of the hypothalamus, crucial in thermoregulation, has long been implicated in the pain process. However, whether nociceptive stimulation affects body temperature and its mechanism remains poorly studied. METHODS: We used capsaicin, formalin, and surgery to induce acute nociceptive stimulation and monitored rectal temperature. Optical fiber recording, chemical genetics, confocal imaging, and pharmacology assays were employed to confirm the role and interaction of POA astrocytes and extracellular adenosine. Immunofluorescence was utilized for further validation. RESULTS: Acute nociception could activate POA astrocytes and induce a decrease in body temperature. Manipulation of astrocytes allowed bidirectional control of body temperature. Furthermore, acute nociception and astrocyte activation led to increased extracellular adenosine concentration within the POA. Activation of adenosine A1 or A2A receptors contributed to decreased body temperature, while inhibition of these receptors mitigated the thermo-lowering effect of astrocytes. CONCLUSION: Our results elucidate the interplay between acute nociception and thermoregulation, specifically highlighting POA astrocyte activation. This enriches our understanding of physiological responses to painful stimuli and contributes to the analysis of the anatomical basis involved in the process.


Subject(s)
Astrocytes , Hypothermia , Nociception , Preoptic Area , Animals , Preoptic Area/drug effects , Preoptic Area/metabolism , Astrocytes/metabolism , Astrocytes/drug effects , Nociception/physiology , Hypothermia/chemically induced , Male , Mice , Receptors, Purinergic P1/metabolism , Mice, Inbred C57BL , Adenosine/metabolism , Capsaicin/pharmacology , Formaldehyde/toxicity , Formaldehyde/pharmacology
11.
Cell Rep ; 43(5): 114192, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38703367

ABSTRACT

The preoptic area of the hypothalamus (POA) is essential for sleep regulation. However, the cellular makeup of the POA is heterogeneous, and the molecular identities of the sleep-promoting cells remain elusive. To address this question, this study compares mice during recovery sleep following sleep deprivation to mice allowed extended sleep. Single-nucleus RNA sequencing (single-nucleus RNA-seq) identifies one galanin inhibitory neuronal subtype that shows upregulation of rapid and delayed activity-regulated genes during recovery sleep. This cell type expresses higher levels of growth hormone receptor and lower levels of estrogen receptor compared to other galanin subtypes. single-nucleus RNA-seq also reveals cell-type-specific upregulation of purinergic receptor (P2ry14) and serotonin receptor (Htr2a) during recovery sleep in this neuronal subtype, suggesting possible mechanisms for sleep regulation. Studies with RNAscope validate the single-nucleus RNA-seq findings. Thus, the combined use of single-nucleus RNA-seq and activity-regulated genes identifies a neuronal subtype functionally involved in sleep regulation.


Subject(s)
Galanin , Neurons , Preoptic Area , Sleep Deprivation , Animals , Galanin/metabolism , Galanin/genetics , Neurons/metabolism , Preoptic Area/metabolism , Mice , Sleep Deprivation/metabolism , Sleep Deprivation/genetics , Male , RNA-Seq , Mice, Inbred C57BL , Sleep/genetics , Sleep/physiology , Single-Cell Analysis
12.
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
13.
Peptides ; 177: 171226, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38649033

ABSTRACT

Close contact between lactating rodent mothers and their infants is essential for effective nursing. Whether the mother's effort to retrieve the infants to their nest requires the vasopressin-signaling via V1b receptor has not been fully defined. To address this question, V1b receptor knockout (V1bKO) and control mice were analyzed in pup retrieval test. Because an exploring mother in a new test cage randomly accessed to multiple infants in changing backgrounds over time, a computer vision-based deep learning analysis was applied to continuously calculate the distances between the mother and the infants as a parameter of their relationship. In an open-field, a virgin female V1bKO mice entered fewer times into the center area and moved shorter distances than wild-type (WT). While this behavioral pattern persisted in V1bKO mother, the pup retrieval test demonstrated that total distances between a V1bKO mother and infants came closer in a shorter time than with a WT mother. Moreover, in the medial preoptic area, parts of the V1b receptor transcripts were detected in galanin- and c-fos-positive neurons following maternal stimulation by infants. This research highlights the effectiveness of deep learning analysis in evaluating the mother-infant relationship and the critical role of V1b receptor in pup retrieval during the early lactation phase.


Subject(s)
Maternal Behavior , Mice, Knockout , Receptors, Vasopressin , Animals , Female , Mice , Animals, Newborn , Deep Learning , Lactation/genetics , Maternal Behavior/physiology , Preoptic Area/metabolism , Receptors, Vasopressin/genetics , Receptors, Vasopressin/metabolism
14.
Behav Brain Res ; 465: 114928, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38432301

ABSTRACT

Testosterone (T), estrogen receptor alpha (ERα), and androgen receptor (AR) play a significant role in the regulation of paternal behavior. We determined the effects of deprivation of paternal care on alterations in paternal behavior, T concentrations in plasma, and the presence of ERα and AR in the medial preoptic area (mPOA), bed nucleus of the stria terminalis (BNST), medial amygdala (MeA), and olfactory bulb (OB), as well as the corticosterone (CORT) concentrations in plasma caused by deprivation of paternal care in the Mongolian gerbil (Meriones unguiculatus). Twenty pairs of gerbils were formed; the pups were deprived of paternal care (DPC) in 10 pairs. In another 10 pairs, the pups received paternal care (PC). Ten males raised in DPC condition and 10 males raised in PC conditions were mated with virgin females. When they became fathers, each DPC male and PC male was subjected to tests of paternal behavior on day three postpartum. Blood samples were obtained to quantify T and CORT concentrations, and the brains were removed for ERα and AR immunohistochemistry analyses. DPC males gave less care to their pups than PC males, and they had significantly lower T concentrations and levels of ERα and AR in the mPOA and BNST than PC males. DPC males also had higher CORT concentrations than PC males. These results suggest that in the Mongolian gerbil father's absence causes a decrease in paternal care in the offspring, which is associated with alterations in the neuroendocrine mechanisms that regulate it.


Subject(s)
Receptors, Androgen , Septal Nuclei , Animals , Female , Male , Humans , Gerbillinae/physiology , Receptors, Androgen/metabolism , Septal Nuclei/metabolism , Estrogen Receptor alpha/metabolism , Paternal Behavior/physiology , Preoptic Area/metabolism , Fathers , Corticosterone
15.
Behav Brain Res ; 465: 114965, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38522595

ABSTRACT

Brain areas important for social perception, social reward, and social behavior - collectively referred to as the social-decision-making network (SDN) - appear to be highly conserved across taxa. These brain areas facilitate a variety of social behaviors such as conspecific approach/avoidance, aggression, mating, parental care, and recognition. Although the SDN has been investigated across taxa, little is known about its functioning in reptiles. Research on the snake SDN may provide important new insights, as snakes have a keen social perceptual system and express a relatively reduced repertoire of social behaviors. Here, we present the results of an experiment in which ball pythons (Python regius) interacted with a same-sex conspecific for one hour and neural activation was investigated through Fos immunoreactivity. Compared to controls, snakes that interacted socially had higher Fos counts in brain areas implicated in social behavior across taxa, such as the medial amygdala, preoptic area, nucleus accumbens, and basolateral amygdala. Additionally, we found differential Fos immunoreactivity in the ventral amygdala, which facilitates communication between social brain areas. In many of these areas, Fos counts differed by sex, which may be due to increased competition between males. Fos counts did not differ in early sensory (i.e., vomeronasal) processing structures. As ball python social systems lack parental care, cooperation, or long-term group living, these results provide valuable insight into the basal functions of the vertebrate social decision-making network.


Subject(s)
Brain , Proto-Oncogene Proteins c-fos , Male , Animals , Proto-Oncogene Proteins c-fos/metabolism , Brain/metabolism , Preoptic Area/metabolism , Nucleus Accumbens/metabolism , Snakes/metabolism
16.
Psychoneuroendocrinology ; 163: 106988, 2024 May.
Article in English | MEDLINE | ID: mdl-38342055

ABSTRACT

Perinatal testosterone, or its metabolite estradiol, organize the brain toward a male phenotype. Male rodents with insufficient testosterone during this period fail to display sexual behavior and partner preference for receptive females in adulthood. However, cohabitation with non-reproductive conspecifics under the influence of a D2 agonist facilitates the expression of conditioned partner preference via Pavlovian learning in gonadally intact male rats. In the present experiment, three groups of neonatal PD1 males (N = 12/group) were either gonadectomized (GDX), sham-GDX, or left intact and evaluated for social preferences and sexual behaviors as adults. We then examined whether the effects of GDX could be reversed by conditioning the males via cohabitation with receptive females under the effects of the D2 agonist quinpirole (QNP) or saline, along with the size of some brain regions, such as the sexually dimorphic nucleus of the preoptic area (SDN-POA), suprachiasmatic nucleus (SCN), posterior dorsal medial amygdala (MeApd) and ventromedial hypothalamus (VMH). Results indicated that neonatal GDX resulted in the elimination of male-typical sexual behavior, an increase in same-sex social preference, and a reduction of the area of the SDN-POA. However, GDX-QNP males that underwent exposure to receptive females in adulthood increased their social preference for females and recovered the size in the SDN-POA. Although neonatal GDX impairs sexual behavior and disrupts partner preference and brain dimorphism in adult male rats, Pavlovian conditioning under enhanced D2 agonism ameliorates the effects on social preference and restores brain dimorphism in the SDN-POA without testosterone.


Subject(s)
Preoptic Area , Sex Characteristics , Pregnancy , Rats , Animals , Male , Female , Preoptic Area/metabolism , Brain , Quinpirole/pharmacology , Castration , Testosterone/pharmacology , Testosterone/metabolism
17.
Curr Biol ; 34(3): 489-504.e7, 2024 02 05.
Article in English | MEDLINE | ID: mdl-38211586

ABSTRACT

Animals must maintain physiological processes within an optimal temperature range despite changes in their environment. Through behavioral assays, whole-brain functional imaging, and neural ablations, we show that larval zebrafish, an ectothermic vertebrate, achieves thermoregulation through homeostatic navigation-non-directional and directional movements toward the temperature closest to its physiological setpoint. A brain-wide circuit encompassing several brain regions enables this behavior. We identified the preoptic area of the hypothalamus (PoA) as a key brain structure in triggering non-directional reorientation when thermal conditions are worsening. This result shows an evolutionary conserved role of the PoA as principal thermoregulator of the brain also in ectotherms. We further show that the habenula (Hb)-interpeduncular nucleus (IPN) circuit retains a short-term memory of the sensory history to support the generation of coherent directed movements even in the absence of continuous sensory cues. We finally provide evidence that this circuit may not be exclusive for temperature but may convey a more abstract representation of relative valence of physiologically meaningful stimuli regardless of their specific identity to enable homeostatic navigation.


Subject(s)
Habenula , Zebrafish , Animals , Zebrafish/physiology , Preoptic Area , Habenula/physiology , Larva/physiology , Body Temperature Regulation
18.
Trends Neurosci ; 47(1): 4-5, 2024 01.
Article in English | MEDLINE | ID: mdl-37919204

ABSTRACT

How sensory cues are integrated at the level of neural circuits to drive maternal behaviors remains incompletely understood. In a recent study, Valtcheva, Issa, and colleagues identified a previously unknown role for the posterior intralaminar (PIL) nucleus of the thalamus within the neural networks that mediate maternal behavior in mice induced by pup calls.


Subject(s)
Maternal Behavior , Preoptic Area , Female , Animals , Mice , Humans , Brain Mapping
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.
J Comp Neurol ; 532(2): e25566, 2024 02.
Article in English | MEDLINE | ID: mdl-38104256

ABSTRACT

The secondary general visceral sensory nucleus (SVN) receives ascending fibers from the commissural nucleus of Cajal (NCC), or the primary general visceral sensoru in the medulla oblongata of teleosts. However, the full set of fiber connections of the SVN have been studied only in the Nile tilapia. We have investigated the connections of the SVN in goldfish by tracer injection experiments to the nucleus. We paid special attention to the possible presence of spinal afferents, since the spinal cord projects to the lateral parabrachial nucleus, or the presumed homologue of SVN, in mammals. We found that the SVN indeed receives spinal projections. Spinal terminals were restricted to a region ventrolaterally adjacent to the terminal zone of NCC fibers, suggesting that the SVN can be subdivided into two subnuclei: the commissural nucleus-recipient (SVNc) and spinal-recipient (SVNsp) subnuclei. Tracer injections to the SVNc and SVNsp as well as reciprocal injections to the diencephalon revealed that both subnuclei project directly to diencephalic structures, such as the posterior thalamic nucleus and nucleus of lateral recess, although diencephalic projections of the SVNsp were rather sparse. The SVNsp appears to send fibers to more wide-spread targets in the preoptic area than the SVNc does. The SVNc projects to the telencephalon, while the SVNsp sends scarce or possibly no fibers to the telencephalon. Another notable difference was that the SVNsp gives rise to massive projections to the dorsal diencephalon (ventromedial thalamic, central posterior thalamic, and periventricular posterior tubercular nuclei). These differential connections of the subnuclei may reflect discrete functional significances of the general visceral sensory information mediated by the medulla oblongata and spinal cord.


Subject(s)
Diencephalon , Goldfish , Animals , Telencephalon , Medulla Oblongata , Preoptic Area , Mammals
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