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1.
J Neurophysiol ; 132(3): 943-952, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-39108212

ABSTRACT

Cotransmission, meaning the release of multiple neurotransmitters from one synapse, allows for increased diversity of signaling in the brain. Dopamine (DA) and γ-aminobutyric acid (GABA) are known to coexpress in many regions such as the olfactory bulb and the ventral tegmental area. Tuberoinfundibular dopaminergic neurons (TIDA) in the arcuate nucleus of the hypothalamus (Arc) project to the median eminence (ME) and regulate prolactin release from the pituitary, and prior work suggests dopaminergic Arc neurons also cotransmit GABA. However, the extent of cotransmission, and the projection patterns of these neurons have not been fully revealed. Here, we used a genetic intersectional reporter expression approach to selectively label cells that express both tyrosine hydroxylase (TH) and vesicular GABA transporter (VGAT). Through this approach, we identified cells capable of both DA and GABA cotransmission in the Arc, periventricular (Pe), paraventricular (Pa), ventromedial, and the dorsolateral hypothalamic nuclei, in addition to a novel population in the caudate putamen. The highest density of labeled cells was in the Arc, 6.68% of DAPI-labeled cells at Bregma -2.06 mm, and in the Pe, 2.83% of DAPI-labeled cells at Bregma -1.94 mm. Next, we evaluated the projections of these DA/GABA cells by injecting an mCherry virus that fluoresces in DA/GABA cells. We observed a cotransmitting DA/GABA population, with projections within the Arc, and to the Pa and ME. These data suggest DA/GABA Arc neurons are involved in prolactin release as a subset of TIDA neurons. Further investigation will elucidate the interactions of dopamine and GABA in the hypothalamus.NEW & NOTEWORTHY Cotransmitting dopaminergic (DA) and γ-aminobutyric acid (GABA)ergic (DA/GABA) neurons contribute to the complexity of neural circuits. Using a new genetic technique, we characterized the locations, density, and projections of hypothalamic DA/GABA neurons. DA/GABA cells are mostly in the arcuate nucleus (Arc), from which they project locally within the arcuate, to the median eminence (ME), and to the paraventricular (Pa) nucleus. There is also a small and previously unreported group of DA/GABA cells in the caudate putamen.


Subject(s)
Arcuate Nucleus of Hypothalamus , Dopaminergic Neurons , GABAergic Neurons , Median Eminence , Animals , Arcuate Nucleus of Hypothalamus/metabolism , Arcuate Nucleus of Hypothalamus/cytology , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Median Eminence/metabolism , Median Eminence/cytology , Dopaminergic Neurons/metabolism , Dopaminergic Neurons/physiology , Male , Mice , Tyrosine 3-Monooxygenase/metabolism , Vesicular Inhibitory Amino Acid Transport Proteins/metabolism , Female , Neural Pathways/metabolism , Neural Pathways/physiology
2.
CNS Neurosci Ther ; 30(8): e70001, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39154359

ABSTRACT

AIMS: The parabrachial nucleus (PBN) promotes wakefulness states under general anesthesia. Recent studies have shown that glutamatergic neurons within the PBN play a crucial role in facilitating emergence from anesthesia. Our previous study indicates that vesicular glutamate transporter 2 (vglut2) expression neurons of the PBN extend into the extended amygdala (EA). However, the modulation of PBNvglut2-EA in general anesthesia remains poorly understood. This study aims to investigate the role of PBNvglut2-EA in alterations of consciousness during sevoflurane anesthesia. METHODS: We first validated vglut2-expressing neuron projections from the PBN to the EA using anterograde tracing. Then, we conducted immunofluorescence staining of c-Fos to investigate the role of the EA involved in the regulation of consciousness during sevoflurane anesthesia. After, we performed calcium fiber photometry recordings to determine the changes in PBNvglut2-EA activity. Lastly, we modulated PBNvglut2-EA activity under sevoflurane anesthesia using optogenetics, and electroencephalogram (EEG) was recorded during specific optogenetic modulation. RESULTS: The expression of vglut2 in PBN neurons projected to the EA, and c-Fos expression in the EA was significantly reduced during sevoflurane anesthesia. Fiber photometry revealed that activity in the PBNvglut2-EA pathway was suppressed during anesthesia induction but restored upon awakening. Optogenetic activation of the PBNvglut2-EA delayed the induction of anesthesia. Meanwhile, EEG recordings showed significantly decreased δ oscillations and increased ß and γ oscillations compared to the EYFP group. Furthermore, optogenetic activation of the PBNvglut2-EA resulted in an acceleration of awakening from anesthesia, accompanied by decreased δ oscillations on EEG recordings. Optogenetic inhibition of PBNvglut2-EA accelerated anesthesia induction. Surprisingly, we found a sex-specific regulation of PBNvglut2-EA in this study. The activity of PBNvglut2-EA was lower in males during the induction of anesthesia and decreased more rapidly during sevoflurane anesthesia compared to females. Photoactivation of the PBNvglut2-EA reduced the sensitivity of males to sevoflurane, showing more pronounced wakefulness behavior and EEG changes than females. CONCLUSIONS: PBNvglut2-EA is involved in the promotion of wakefulness under sevoflurane anesthesia. Furthermore, PBNvglut2-EA shows sex differences in the changes of consciousness induced by sevoflurane anesthesia.


Subject(s)
Amygdala , Anesthetics, Inhalation , Mice, Inbred C57BL , Neurons , Parabrachial Nucleus , Sevoflurane , Vesicular Glutamate Transport Protein 2 , Wakefulness , Sevoflurane/pharmacology , Animals , Vesicular Glutamate Transport Protein 2/metabolism , Vesicular Glutamate Transport Protein 2/genetics , Vesicular Glutamate Transport Protein 2/biosynthesis , Wakefulness/drug effects , Wakefulness/physiology , Mice , Anesthetics, Inhalation/pharmacology , Parabrachial Nucleus/drug effects , Parabrachial Nucleus/metabolism , Parabrachial Nucleus/physiology , Male , Neurons/drug effects , Neurons/metabolism , Amygdala/drug effects , Amygdala/metabolism , Mice, Transgenic , Neural Pathways/drug effects , Neural Pathways/metabolism , Optogenetics/methods , Electroencephalography
3.
J Neurochem ; 168(9): 3116-3131, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39032068

ABSTRACT

The nucleus of the solitary tract (NTS) receives direct viscerosensory vagal afferent input that drives autonomic reflexes, neuroendocrine function and modulates behaviour. A subpopulation of NTS neurons project to the nucleus accumbens (NAc); however, the function of this NTS-NAc pathway remains unknown. A combination of neuroanatomical tracing, slice electrophysiology and fibre photometry was used in mice and/or rats to determine how NTS-NAc neurons fit within the viscerosensory network. NTS-NAc projection neurons are predominantly located in the medial and caudal portions of the NTS with 54 ± 7% (mice) and 65 ± 3% (rat) being TH-positive, representing the A2 NTS cell group. In horizontal brainstem slices, solitary tract (ST) stimulation evoked excitatory post-synaptic currents (EPSCs) in NTS-NAc projection neurons. The majority (75%) received low-jitter, zero-failure EPSCs characteristic of monosynaptic ST afferent input that identifies them as second order to primary sensory neurons. We then examined whether NTS-NAc neurons respond to cholecystokinin (CCK, 20 µg/kg ip) in vivo in both mice and rats. Surprisingly, there was no difference in the number of activated NTS-NAc cells between CCK and saline-treated mice. In rats, just 6% of NTS-NAc cells were recruited by CCK. As NTS TH neurons are the primary source for NAc noradrenaline, we measured noradrenaline release in the NAc and showed that NAc noradrenaline levels declined in response to cue-induced reward retrieval but not foot shock. Combined, these findings suggest that high-fidelity afferent information from viscerosensory afferents reaches the NAc. These signals are likely unrelated to CCK-sensitive vagal afferents but could interact with other sensory and higher order inputs to modulate learned appetitive behaviours.


Subject(s)
Mice, Inbred C57BL , Nucleus Accumbens , Solitary Nucleus , Animals , Nucleus Accumbens/metabolism , Nucleus Accumbens/physiology , Solitary Nucleus/metabolism , Solitary Nucleus/physiology , Mice , Male , Rats , Rats, Sprague-Dawley , Excitatory Postsynaptic Potentials/physiology , Cholecystokinin/metabolism , Neural Pathways/physiology , Neural Pathways/metabolism , Signal Transduction/physiology
4.
Eur J Neurosci ; 60(5): 4861-4876, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39054660

ABSTRACT

Accumulating evidence suggests that electroacupuncture (EA) has obvious therapeutic effects and unique advantages in alleviating myocardial ischemia-reperfusion injury (MIRI), while the underlying neuromolecular mechanisms of EA intervention for MIRI have not been fully elucidated. The aim of the study is to investigate the role of the neural pathway of hypothalamic paraventricular nucleus (PVN) neurons projecting to the rostral ventrolateral medulla (RVLM) in the alleviation of MIRI rats by EA preconditioning. MIRI models were established by ligating the left anterior descending coronary artery for 30 min followed by reperfusion for 2 h. Electrocardiogram recording, chemogenetics, enzyme-linked immunosorbent assay, multichannel physiology recording and haematoxylin-eosin and immunofluorescence staining methods were conducted to demonstrate that the firing frequencies of neurons in the PVN and the expression of c-Fos decreased by EA pretreatment. Meanwhile, EA preconditioning significantly reduced the levels of creatine kinase isoenzymes (CK-MB), cardiac troponin I (cTnI) and lactic dehydrogenase (LDH). Virus tracing showed a projection connection between PVN and RVLM. The inhibition of the PVN-RVLM neural pathway could replicate the protective effect of EA pretreatment on MIRI rats. However, the activation of the pathway weakened the effect of EA preconditioning. EA pretreatment alleviated MIRI by regulating PVN neurons projecting to RVLM. This work provides novel evidence of EA pretreatment for alleviating MIRI.


Subject(s)
Electroacupuncture , Medulla Oblongata , Myocardial Reperfusion Injury , Neurons , Paraventricular Hypothalamic Nucleus , Rats, Sprague-Dawley , Animals , Electroacupuncture/methods , Paraventricular Hypothalamic Nucleus/metabolism , Medulla Oblongata/metabolism , Medulla Oblongata/physiology , Male , Neurons/physiology , Neurons/metabolism , Myocardial Reperfusion Injury/therapy , Myocardial Reperfusion Injury/metabolism , Rats , Neural Pathways/physiology , Neural Pathways/metabolism , Troponin I/metabolism , Proto-Oncogene Proteins c-fos/metabolism
5.
PLoS Biol ; 22(7): e3002646, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39012916

ABSTRACT

Autism spectrum disorders (ASDs) are considered neural dysconnectivity syndromes. To better understand ASD and uncover potential treatments, it is imperative to know and dissect the connectivity deficits under conditions of autism. Here, we apply a whole-brain immunostaining and quantification platform to demonstrate impaired structural and functional connectivity and aberrant whole-brain synchronization in a Tbr1+/- autism mouse model. We express a channelrhodopsin variant oChIEF fused with Citrine at the basolateral amygdala (BLA) to outline the axonal projections of BLA neurons. By activating the BLA under blue light theta-burst stimulation (TBS), we then evaluate the effect of BLA activation on C-FOS expression at a whole brain level to represent neural activity. We show that Tbr1 haploinsufficiency almost completely disrupts contralateral BLA axonal projections and results in mistargeting in both ipsilateral and contralateral hemispheres, thereby globally altering BLA functional connectivity. Based on correlated C-FOS expression among brain regions, we further show that Tbr1 deficiency severely disrupts whole-brain synchronization in the absence of salient stimulation. Tbr1+/- and wild-type (WT) mice exhibit opposing responses to TBS-induced amygdalar activation, reducing synchronization in WT mice but enhancing it in Tbr1+/- mice. Whole-brain modular organization and intermodule connectivity are also affected by Tbr1 deficiency and amygdalar activation. Following BLA activation by TBS, the synchronizations of the whole brain and the default mode network, a specific subnetwork highly relevant to ASD, are enhanced in Tbr1+/- mice, implying a potential ameliorating effect of amygdalar stimulation on brain function. Indeed, TBS-mediated BLA activation increases nose-to-nose social interactions of Tbr1+/- mice, strengthening evidence for the role of amygdalar connectivity in social behaviors. Our high-resolution analytical platform reveals the inter- and intrahemispheric connectopathies arising from ASD. Our study emphasizes the defective synchronization at a whole-brain scale caused by Tbr1 deficiency and implies a potential beneficial effect of deep brain stimulation at the amygdala for TBR1-linked autism.


Subject(s)
Autism Spectrum Disorder , Basolateral Nuclear Complex , Deep Brain Stimulation , Disease Models, Animal , Social Behavior , T-Box Domain Proteins , Animals , Autism Spectrum Disorder/physiopathology , Autism Spectrum Disorder/metabolism , Autism Spectrum Disorder/genetics , T-Box Domain Proteins/metabolism , T-Box Domain Proteins/genetics , Basolateral Nuclear Complex/metabolism , Basolateral Nuclear Complex/physiopathology , Mice , Deep Brain Stimulation/methods , Male , Amygdala/metabolism , Amygdala/physiopathology , Brain/metabolism , Brain/physiopathology , Mice, Inbred C57BL , Neural Pathways/physiopathology , Neural Pathways/metabolism , Proto-Oncogene Proteins c-fos/metabolism
6.
Nat Neurosci ; 27(9): 1783-1793, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38965445

ABSTRACT

The role of the striatum in motor control is commonly assumed to be mediated by the two striatal efferent pathways characterized by striatal projection neurons (SPNs) expressing dopamine (DA) D1 receptors or D2 receptors (D1-SPNs and D2-SPNs, respectively), without regard to SPNs coexpressing both receptors (D1/D2-SPNs). Here we developed an approach to target these hybrid SPNs in mice and demonstrate that, although these SPNs are less abundant, they have a major role in guiding the motor function of the other two populations. D1/D2-SPNs project exclusively to the external globus pallidus and have specific electrophysiological features with distinctive integration of DA signals. Gain- and loss-of-function experiments indicate that D1/D2-SPNs potentiate the prokinetic and antikinetic functions of D1-SPNs and D2-SPNs, respectively, and restrain the integrated motor response to psychostimulants. Overall, our findings demonstrate the essential role of this population of D1/D2-coexpressing neurons in orchestrating the fine-tuning of DA regulation in thalamo-cortico-striatal loops.


Subject(s)
Corpus Striatum , Neurons , Receptors, Dopamine D1 , Receptors, Dopamine D2 , Animals , Receptors, Dopamine D1/metabolism , Receptors, Dopamine D2/metabolism , Corpus Striatum/metabolism , Mice , Neurons/metabolism , Male , Mice, Transgenic , Mice, Inbred C57BL , Motor Activity/physiology , Motor Activity/drug effects , Neural Pathways/physiology , Neural Pathways/metabolism , Female , Globus Pallidus/metabolism
7.
Physiol Behav ; 284: 114639, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-39004195

ABSTRACT

Understanding the central nervous system (CNS) circuitry and its different neurotransmitters that underlie reward is essential to improve treatment for many common health issues, such as addiction. Here, we concentrate on understanding how the mesolimbic circuitry and neurotransmitters are organized and function, and how drug exposure affects synaptic and structural changes in this circuitry. While the role of some reward circuits, like the cerebral dopamine (DA)/glutamate (Glu)/gamma aminobutyric acid (GABA)ergic pathways, in drug reward, is well known, new research using molecular-based methods has shown functional alterations throughout the reward circuitry that contribute to various aspects of addiction, including craving and relapse. A new understanding of the fundamental connections between brain regions as well as the molecular alterations within these particular microcircuits, such as neurotrophic factor and molecular signaling or distinct receptor function, that underlie synaptic and structural plasticity evoked by drugs of abuse has been made possible by the ability to observe and manipulate neuronal activity within specific cell types and circuits. It is exciting that these discoveries from preclinical animal research are now being applied in the clinic, where therapies for human drug dependence, such as deep brain stimulation and transcranial magnetic stimulation, are being tested. Therefore, this chapter seeks to summarize the current understanding of the important brain regions (especially, mesolimbic circuitry) and neurotransmitters implicated in drug-related behaviors and the molecular mechanisms that contribute to altered connectivity between these areas, with the postulation that increased knowledge of the plasticity within the drug reward circuit will lead to new and improved treatments for addiction.


Subject(s)
Neurotransmitter Agents , Substance-Related Disorders , Humans , Animals , Neurotransmitter Agents/metabolism , Substance-Related Disorders/metabolism , Substance-Related Disorders/physiopathology , Neural Pathways/metabolism , Neural Pathways/physiology , Reward , Brain/metabolism , Limbic System/metabolism , Nerve Net/metabolism , Behavior, Addictive/metabolism , Behavior, Addictive/physiopathology
8.
Transl Neurodegener ; 13(1): 34, 2024 Jul 24.
Article in English | MEDLINE | ID: mdl-39044270

ABSTRACT

BACKGROUND: Depressive symptoms often occur in patients with Alzheimer's disease (AD) and exacerbate the pathogenesis of AD. However, the neural circuit mechanisms underlying the AD-associated depression remain unclear. The serotonergic system plays crucial roles in both AD and depression. METHODS: We used a combination of in vivo trans-synaptic circuit-dissecting anatomical approaches, chemogenetic manipulations, optogenetic manipulations, pharmacological methods, behavioral testing, and electrophysiological recording to investigate dorsal raphe nucleus serotonergic circuit in AD-associated depression in AD mouse model. RESULTS: We found that the activity of dorsal raphe nucleus serotonin neurons (DRN5-HT) and their projections to the dorsal hippocampal CA1 (dCA1) terminals (DRN5-HT-dCA1CaMKII) both decreased in brains of early 5×FAD mice. Chemogenetic or optogenetic activation of the DRN5-HT-dCA1CaMKII neural circuit attenuated the depressive symptoms and cognitive impairments in 5×FAD mice through serotonin receptor 1B (5-HT1BR) and 4 (5-HT4R). Pharmacological activation of 5-HT1BR or 5-HT4R attenuated the depressive symptoms and cognitive impairments in 5×FAD mice by regulating the DRN5-HT-dCA1CaMKII neural circuit to improve synaptic plasticity. CONCLUSIONS: These findings provide a new mechanistic connection between depression and AD and provide potential pharmaceutical prevention targets for AD.


Subject(s)
Alzheimer Disease , Cognitive Dysfunction , Depression , Disease Models, Animal , Dorsal Raphe Nucleus , Mice, Transgenic , Serotonergic Neurons , Animals , Dorsal Raphe Nucleus/metabolism , Male , Cognitive Dysfunction/genetics , Cognitive Dysfunction/metabolism , Cognitive Dysfunction/psychology , Cognitive Dysfunction/physiopathology , Mice , Serotonergic Neurons/metabolism , Serotonergic Neurons/physiology , Depression/metabolism , Depression/genetics , Depression/psychology , Alzheimer Disease/genetics , Alzheimer Disease/metabolism , Alzheimer Disease/psychology , Hippocampus/metabolism , Serotonin/metabolism , Optogenetics , Neural Pathways/metabolism , Neural Pathways/physiopathology
9.
J Neurochem ; 168(9): 2814-2831, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38877776

ABSTRACT

Irritable bowel syndrome (IBS), which is characterized by chronic abdominal pain, has a high global prevalence. The anterior cingulate cortex (ACC), which is a pivotal region involved in pain processing, should be further investigated regarding its role in the regulation of visceral sensitivity and mental disorders. A C57BL/6J mouse model for IBS was established using chronic acute combining stress (CACS). IBS-like symptoms were assessed using behavioral tests, intestinal motility measurements, and abdominal withdrawal reflex scores. Fluoro-Gold retrograde tracing and immunohistochemistry techniques were employed to investigate the projection of ACC gamma-aminobutyric acid-producing (GABAergic) neurons to the lateral hypothalamus area (LHA). Chemogenetic approaches enabled the selective activation or inhibition of the ACC-LHA GABAergic pathway. Enzyme-linked immunosorbent assay (ELISA) and western blot analyses were conducted to determine the expression of histamine, 5-hydroxytryptamine (5-HT), and transient receptor potential vanilloid 4 (TRPV4). Our findings suggest that CACS induced IBS-like symptoms in mice. The GABA type A receptors (GABAAR) within LHA played a regulatory role in modulating IBS-like symptoms. The chemogenetic activation of ACC-LHA GABAergic neurons elicited anxiety-like behaviors, intestinal dysfunction, and visceral hypersensitivity in normal mice; however, these effects were effectively reversed by the administration of the GABAAR antagonist Bicuculline. Conversely, the chemogenetic inhibition of ACC-LHA GABAergic neurons alleviated anxiety-like behaviors, intestinal dysfunction, and visceral hypersensitivity in the mouse model for IBS. These results highlight the crucial involvement of the ACC-LHA GABAergic pathway in modulating anxiety-like behaviors, intestinal motility alterations, and visceral hypersensitivity, suggesting a potential therapeutic strategy for alleviating IBS-like symptoms.


Subject(s)
GABAergic Neurons , Gyrus Cinguli , Hypothalamic Area, Lateral , Irritable Bowel Syndrome , Mice, Inbred C57BL , Animals , Irritable Bowel Syndrome/metabolism , Gyrus Cinguli/metabolism , Gyrus Cinguli/drug effects , Mice , Male , Hypothalamic Area, Lateral/metabolism , GABAergic Neurons/metabolism , GABAergic Neurons/drug effects , gamma-Aminobutyric Acid/metabolism , Neural Pathways/metabolism , TRPV Cation Channels/metabolism , Stress, Psychological/metabolism
10.
Science ; 384(6702): eadh5548, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38900896

ABSTRACT

The molecular mechanisms that regulate breast cancer cell (BCC) metastasis and proliferation within the leptomeninges (LM) are poorly understood, which limits the development of effective therapies. In this work, we show that BCCs in mice can invade the LM by abluminal migration along blood vessels that connect vertebral or calvarial bone marrow and meninges, bypassing the blood-brain barrier. This process is dependent on BCC engagement with vascular basement membrane laminin through expression of the neuronal pathfinding molecule integrin α6. Once in the LM, BCCs colocalize with perivascular meningeal macrophages and induce their expression of the prosurvival neurotrophin glial-derived neurotrophic factor (GDNF). Intrathecal GDNF blockade, macrophage-specific GDNF ablation, or deletion of the GDNF receptor neural cell adhesion molecule (NCAM) from BCCs inhibits breast cancer growth within the LM. These data suggest integrin α6 and the GDNF signaling axis as new therapeutic targets against breast cancer LM metastasis.


Subject(s)
Bone Neoplasms , Breast Neoplasms , Integrin alpha6 , Meningeal Neoplasms , Meninges , Neural Pathways , Animals , Female , Humans , Mice , Basement Membrane/metabolism , Bone Neoplasms/secondary , Bone Neoplasms/metabolism , Breast Neoplasms/pathology , Breast Neoplasms/metabolism , Breast Neoplasms/genetics , Cell Line, Tumor , Cell Movement , Glial Cell Line-Derived Neurotrophic Factor/genetics , Glial Cell Line-Derived Neurotrophic Factor/metabolism , Integrin alpha6/metabolism , Laminin/metabolism , Macrophages/metabolism , Meningeal Neoplasms/metabolism , Meningeal Neoplasms/secondary , Meninges/pathology , Neoplasm Invasiveness , Neural Cell Adhesion Molecules/metabolism , Neural Cell Adhesion Molecules/genetics , Signal Transduction , Neural Pathways/metabolism , Mice, SCID , Mice, Knockout
11.
J Neurosci ; 44(31)2024 Jul 31.
Article in English | MEDLINE | ID: mdl-38811166

ABSTRACT

Neurons in the caudal nucleus of the solitary tract (cNTS) and intermediate reticular nucleus (IRt) that express the glucagon gene (Gcg) give rise to glucagon-like peptide 1 (GLP1)-immunopositive axons in the spinal cord and many subcortical brain regions. Central GLP1 receptor signaling contributes to motivated behavior and stress responses in rats and mice, in which hindbrain GLP1 neurons are activated to express c-Fos in a metabolic state-dependent manner. The present study examined whether GLP1 inputs to distinct brain regions arise from distinct subsets of Gcg-expressing neurons, and mapped the distribution of axon collaterals arising from projection-defined GLP1 neural populations. Using our Gcg-Cre knock-in rat model, Cre-dependent adeno-associated virus (AAV) tracing was conducted in adult male and female rats to compare axonal projections of IRt versus cNTS GLP1 neurons. Overlapping projections were observed in all brain regions that receive GLP1 input, with the caveat that cNTS injections produced Cre-dependent labeling of some IRt neurons, and vice versa. In additional experiments, specific diencephalic or limbic forebrain nuclei were microinjected with Cre-dependent retrograde AAVs (AAVrg) that expressed reporters to fully label the axon collaterals of transduced GLP1 neurons. AAVrg injected into each forebrain site labeled Gcg-expressing neurons in both the cNTS and IRt. The collective axon collaterals of labeled neurons entered the spinal cord and every brain region previously reported to contain GLP1-positive axons. These results indicate that the axons of GLP1 neural populations that innervate the thalamic paraventricular nucleus, paraventricular nucleus of the hypothalamus, and/or bed nucleus of the stria terminalis collectively innervate all central regions that receive GLP1 axonal input.


Subject(s)
Axons , Glucagon-Like Peptide 1 , Neurons , Rhombencephalon , Animals , Male , Female , Rats , Glucagon-Like Peptide 1/metabolism , Glucagon-Like Peptide 1/genetics , Neurons/metabolism , Axons/metabolism , Rhombencephalon/metabolism , Neural Pathways/metabolism , Rats, Sprague-Dawley , Hypothalamus/metabolism , Hypothalamus/cytology , Prosencephalon/metabolism , Limbic System/metabolism , Solitary Nucleus/metabolism , Glucagon-Like Peptide-1 Receptor/genetics , Glucagon-Like Peptide-1 Receptor/metabolism
12.
Brain Behav Immun ; 120: 44-53, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38777282

ABSTRACT

The functional alterations of the brain in bipolar II depression (BDII-D) and their clinical and inflammatory associations are understudied. We aim to investigate the functional brain alterations in BDII-D and their relationships with inflammation, childhood adversity, and psychiatric symptoms, and to examine the moderating effects among these factors. Using z-normalized amplitude of low-frequency fluctuation (zALFF), we assessed the whole-brain resting-state functional activity between 147 BDII-D individuals and 150 healthy controls (HCs). Differential ALFF regions were selected as seeds for functional connectivity analysis to observe brain connectivity alterations resulting from abnormal regional activity. Four inflammatory cytokines including interleukin (IL)-6, IL-1ß, tumor necrosis factor (TNF)-α, and C-reactive protein (CRP) and five clinical scales including Hamilton Depression Scale (HAMD), Hamilton Anxiety Scale (HAMA), Positive and Negative Syndrome Scale (PANSS), Columbia-Suicide Severity Rating Scale (C-SSRS), and Childhood Trauma Questionnaire (CTQ) were tested and assessed in BDII-D. Partial correlations with multiple comparison corrections identified relationships between brain function and inflammation, childhood adversity, and psychiatric symptoms. Moderation analysis was conducted based on correlation results and previous findings. Compared to HCs, BDII-D individuals displayed significantly lower zALFF in the superior and middle frontal gyri (SFG and MFG) and insula, but higher zALFF in the occipital-temporal area. Only the MFG and insula-related connectivity exhibited significant differences between groups. Within BDII-D, lower right insula zALFF value correlated with higher IL-6, CRP, and emotional adversity scores, while lower right MFG zALFF was related to higher CRP and physical abuse scores. Higher right MFG-mid-anterior cingulate cortex (mACC) connectivity was associated with higher IL-1ß. Moreover, IL-1ß moderated associations between higher right MFG-mACC/insula connectivity and greater depressive symptoms. This study reveals that abnormal functional alterations in the right MFG and right insula were associated with elevated inflammation, childhood adversity, and depressive symptoms in BDII-D. IL-1ß may moderate the relationship between MFG-related connectivity and depressive symptoms.


Subject(s)
Bipolar Disorder , Depression , Interleukin-1beta , Magnetic Resonance Imaging , Humans , Female , Male , Bipolar Disorder/metabolism , Bipolar Disorder/physiopathology , Adult , Interleukin-1beta/metabolism , Depression/metabolism , Depression/physiopathology , Magnetic Resonance Imaging/methods , Inflammation/metabolism , Insular Cortex/metabolism , Middle Aged , Brain/metabolism , Brain/physiopathology , Psychiatric Status Rating Scales , Adverse Childhood Experiences , Neural Pathways/physiopathology , Neural Pathways/metabolism , Brain Mapping/methods , Young Adult , Frontal Lobe/metabolism , Frontal Lobe/physiopathology
13.
Prog Neurobiol ; 238: 102629, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38763506

ABSTRACT

The dorsomedial striatum (DMS) is associated with flexible goal seeking, as opposed to routinized habits. Whether local mechanisms brake this function, for instance when habits may be adaptive, is incompletely understood. We find that a sub-population of dopamine D1 receptor-containing striatal neurons express the melanocortin-4 receptor (MC4R) for α-melanocyte stimulating hormone. These neurons within the DMS are necessary and sufficient for controlling the capacity of mice to flexibly adjust actions based on the likelihood that they will be rewarded. In investigating MC4R function, we found that it suppresses immediate-early gene levels in the DMS and concurrently, flexible goal seeking. MC4R+ neurons receive input from the central nucleus of the amygdala, and behavioral experiments indicate that they are functionally integrated into an amygdalo-striatal circuit that suppresses action flexibility in favor of routine. Publicly available spatial transcriptomics datasets were analyzed for gene transcript correlates of Mc4r expression across the striatal subregions, revealing considerable co-variation in dorsal structures. This insight led to the discovery that the function of MC4R in the dorsolateral striatum complements that in the DMS, in this case suppressing habit-like behavior. Altogether, our findings suggest that striatal MC4R controls the capacity for goal-directed and inflexible actions alike.


Subject(s)
Central Amygdaloid Nucleus , Corpus Striatum , Goals , Receptor, Melanocortin, Type 4 , Animals , Receptor, Melanocortin, Type 4/metabolism , Mice , Central Amygdaloid Nucleus/metabolism , Central Amygdaloid Nucleus/physiology , Corpus Striatum/metabolism , Corpus Striatum/physiology , Male , Receptors, Dopamine D1/metabolism , Melanocortins/metabolism , Mice, Inbred C57BL , Neural Pathways/physiology , Neural Pathways/metabolism
14.
Curr Opin Neurol ; 37(4): 353-360, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38813843

ABSTRACT

PURPOSE OF REVIEW: Molecular imaging has traditionally been used and interpreted primarily in the context of localized and relatively static neurochemical processes. New understanding of brain function and development of novel molecular imaging protocols and analysis methods highlights the relevance of molecular networks that co-exist and interact with functional and structural networks. Although the concept and evidence of disease-specific metabolic brain patterns has existed for some time, only recently has such an approach been applied in the neurotransmitter domain and in the context of multitracer and multimodal studies. This review briefly summarizes initial findings and highlights emerging applications enabled by this new approach. RECENT FINDINGS: Connectivity based approaches applied to molecular and multimodal imaging have uncovered molecular networks with neurodegeneration-related alterations to metabolism and neurotransmission that uniquely relate to clinical findings; better disease stratification paradigms; an improved understanding of the relationships between neurochemical and functional networks and their related alterations, although the directionality of these relationships are still unresolved; and a new understanding of the molecular underpinning of disease-related alteration in resting-state brain activity. SUMMARY: Connectivity approaches are poised to greatly enhance the information that can be extracted from molecular imaging. While currently mostly contributing to enhancing understanding of brain function, they are highly likely to contribute to the identification of specific biomarkers that will improve disease management and clinical care.


Subject(s)
Brain , Neurodegenerative Diseases , Positron-Emission Tomography , Humans , Neurodegenerative Diseases/diagnostic imaging , Neurodegenerative Diseases/metabolism , Positron-Emission Tomography/methods , Brain/diagnostic imaging , Brain/metabolism , Neural Pathways/diagnostic imaging , Neural Pathways/metabolism
15.
J Comp Neurol ; 532(5): e25623, 2024 May.
Article in English | MEDLINE | ID: mdl-38803103

ABSTRACT

In Alzheimer´s disease (AD), hyperphosphorylated tau spreads along the cerebral cortex in a stereotypical pattern that parallels cognitive deterioration. Tau seems to spread transsynaptically along cortico-cotical pathways that, according to synaptic tract-tracing studies in nonhuman primates, have specific laminar patterns related to the cortical type of the connected areas. This relation is described in the Structural Model. In the present article, we study the laminar distribution of hyperphosphorylated tau, labeled with the antibody AT8, along temporal cortical types in postmortem human brains with different AD stages to test the predictions of the Structural Model. Brains from donors without dementia had scant AT8-immunorreactive (AT8-ir) neurons in allo-, meso-, and isocortical types. In early AD stages, the mesocortical dysgranular type, including part of the transentorhinal cortex, had the highest AT8 immunostaining and AT8-ir neurons density. In advanced AD stages, AT8 immunostaining increased along the isocortical types until reaching the auditory koniocortex. Regarding laminar patterns, in early AD stages there were more AT8-ir neurons in supragranular layers in each de novo involved neocortical type; in advanced AD stages, AT8-ir neurons were equally distributed in supra- and infragranular layers. These AT8-ir laminar patterns are compatible with the predictions of the Structural Model. In summary, we show that hyperphosphorylated tau initially accumulates in allo-, meso-, and isocortical types, offer a proof of concept for the validity of the Structural Model to predict synaptic pathway organization in the human cerebral cortex, and highlight the relevance of nonhuman primate tract-tracing studies to understand human neuropathology.


Subject(s)
Alzheimer Disease , Cerebral Cortex , Neural Pathways , tau Proteins , Alzheimer Disease/pathology , Alzheimer Disease/metabolism , Humans , tau Proteins/metabolism , Male , Female , Cerebral Cortex/metabolism , Cerebral Cortex/pathology , Aged , Phosphorylation , Aged, 80 and over , Neural Pathways/metabolism , Neural Pathways/pathology , Neural Pathways/chemistry , Middle Aged , Models, Neurological , Neurons/metabolism , Neurons/pathology
16.
J Neurosci ; 44(24)2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38719447

ABSTRACT

Acetylcholine is a robust neuromodulator of the limbic system and a critical regulator of arousal and emotions. The anterior cingulate cortex (ACC) and the amygdala (AMY) are key limbic structures that are both densely innervated by cholinergic afferents and interact with each other for emotional regulation. The ACC is composed of functionally distinct dorsal (A24), rostral (A32), and ventral (A25) areas that differ in their connections with the AMY. The structural substrates of cholinergic modulation of distinct ACC microcircuits and outputs to AMY are thought to depend on the laminar and subcellular localization of cholinergic receptors. The present study examines the distribution of muscarinic acetylcholine receptors, m1 and m2, on distinct excitatory and inhibitory neurons and on AMY-targeting projection neurons within ACC areas, via immunohistochemistry and injections of neural tracers into the basolateral AMY in adult rhesus monkeys of both sexes. We found that laminar densities of m1+ and m2+ expressing excitatory and inhibitory neurons depended on area and cell type. Among the ACC areas, ventral subgenual ACC A25 exhibited greater m2+ localization on presynaptic inhibitory axon terminals and greater density of m1+ and m2+ expressing AMY-targeting (tracer+) pyramidal neurons. These patterns suggest robust cholinergic disinhibition and potentiation of amygdalar outputs from the limbic ventral ACC, which may be linked to the hyperexcitability of this subgenual ACC area in depression. These findings reveal the anatomical substrate of diverse cholinergic modulation of specific ACC microcircuits and amygdalar outputs that mediate cognitive-emotional integration and dysfunctions underlying stress and affective disorders.


Subject(s)
Gyrus Cinguli , Macaca mulatta , Animals , Gyrus Cinguli/metabolism , Gyrus Cinguli/physiology , Male , Female , Receptor, Muscarinic M2/metabolism , Receptor, Muscarinic M1/metabolism , Nerve Net/metabolism , Nerve Net/physiology , Acetylcholine/metabolism , Neural Pathways/physiology , Neural Pathways/metabolism , Neurons/metabolism , Neurons/physiology
17.
Neurochem Res ; 49(8): 2060-2074, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38814359

ABSTRACT

Since the clinical introduction of general anesthesia, its underlying mechanisms have not been fully elucidated. The ventral tegmental area (VTA) and parabrachial nucleus (PBN) play pivotal roles in the mechanisms underlying general anesthesia. However, whether dopaminergic (DA) projections from the VTA to the PBN play a role in mediating the effects of general anesthesia is unclear. We microinjected 6-hydroxydopamine into the PBN to damage tyrosine hydroxylase positive (TH+) neurons and found a prolonged recovery time from propofol anesthesia. We used calcium fiber photometry recording to explore the activity of TH + neurons in the PBN. Then, we used chemogenetic and optogenetic approaches either activate the VTADA-PBN pathway, shortening the propofol anesthesia emergence time, or inhibit this pathway, prolonging the emergence time. These data indicate the crucial involvement of TH + neurons in the PBN in regulating emergence from propofol anesthesia, while the activation of the VTADA-PBN pathway facilitates the emergence of propofol anesthesia.


Subject(s)
Anesthetics, Intravenous , Dopaminergic Neurons , Parabrachial Nucleus , Propofol , Rats, Sprague-Dawley , Ventral Tegmental Area , Propofol/pharmacology , Animals , Ventral Tegmental Area/drug effects , Male , Dopaminergic Neurons/drug effects , Dopaminergic Neurons/metabolism , Parabrachial Nucleus/drug effects , Parabrachial Nucleus/physiology , Anesthetics, Intravenous/pharmacology , Rats , Neural Pathways/drug effects , Neural Pathways/metabolism , Anesthesia Recovery Period , Oxidopamine/pharmacology
18.
Sci Bull (Beijing) ; 69(14): 2241-2259, 2024 Jul 30.
Article in English | MEDLINE | ID: mdl-38580551

ABSTRACT

The rhesus macaque (Macaca mulatta) is a crucial experimental animal that shares many genetic, brain organizational, and behavioral characteristics with humans. A macaque brain atlas is fundamental to biomedical and evolutionary research. However, even though connectivity is vital for understanding brain functions, a connectivity-based whole-brain atlas of the macaque has not previously been made. In this study, we created a new whole-brain map, the Macaque Brainnetome Atlas (MacBNA), based on the anatomical connectivity profiles provided by high angular and spatial resolution ex vivo diffusion MRI data. The new atlas consists of 248 cortical and 56 subcortical regions as well as their structural and functional connections. The parcellation and the diffusion-based tractography were evaluated with invasive neuronal-tracing and Nissl-stained images. As a demonstrative application, the structural connectivity divergence between macaque and human brains was mapped using the Brainnetome atlases of those two species to uncover the genetic underpinnings of the evolutionary changes in brain structure. The resulting resource includes: (1) the thoroughly delineated Macaque Brainnetome Atlas (MacBNA), (2) regional connectivity profiles, (3) the postmortem high-resolution macaque diffusion and T2-weighted MRI dataset (Brainnetome-8), and (4) multi-contrast MRI, neuronal-tracing, and histological images collected from a single macaque. MacBNA can serve as a common reference frame for mapping multifaceted features across modalities and spatial scales and for integrative investigation and characterization of brain organization and function. Therefore, it will enrich the collaborative resource platform for nonhuman primates and facilitate translational and comparative neuroscience research.


Subject(s)
Brain , Macaca mulatta , Animals , Macaca mulatta/anatomy & histology , Brain/metabolism , Brain/anatomy & histology , Brain/diagnostic imaging , Humans , Connectome , Atlases as Topic , Male , Brain Mapping/methods , Diffusion Tensor Imaging/methods , Neural Pathways/anatomy & histology , Neural Pathways/metabolism , Neural Pathways/diagnostic imaging
19.
Brain Struct Funct ; 229(5): 1121-1142, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38578351

ABSTRACT

In mammals, the ventral respiratory column (VRC) plays a pivotal role in integrating neurochemically diverse inputs from brainstem and forebrain regions to generate respiratory motor patterns. VRC microinjection of the neuropeptide galanin has been reported to dampen carbon dioxide (CO2)-mediated chemoreflex responses. Additionally, we previously demonstrated that galaninergic neurons in the retrotrapezoid nucleus (RTN) are implicated in the adaptive response to hypercapnic stimuli, suggesting a link between RTN neuroplasticity and increased neuronal drive to the VRC. VRC neurons express galanin receptor 1, suggesting potential regulatory action by galanin, however, the precise galaninergic chemoreceptor-VRC circuitry remains to be determined. This study aimed to identify sources of galaninergic input to the VRC that contribute to central respiratory chemoreception. We employed a combination of retrograde neuronal tracing, in situ hybridisation and immunohistochemistry to investigate VRC-projecting neurons that synthesise galanin mRNA. In an additional series of experiments, we used acute hypercapnia exposure (10% CO2, 1 h) and c-Fos immunohistochemistry to ascertain which galaninergic nuclei projecting to the VRC are activated. Our findings reveal that a total of 30 brain nuclei and 51 subnuclei project to the VRC, with 12 of these containing galaninergic neurons, including the RTN. Among these galaninergic populations, only a subset of the RTN neurons (approximately 55%) exhibited activation in response to acute hypercapnia. Our findings highlight that the RTN is the likely source of galaninergic transmission to the VRC in response to hypercapnic stimuli.


Subject(s)
Galanin , Hypercapnia , Neurons , Animals , Hypercapnia/metabolism , Hypercapnia/physiopathology , Male , Galanin/metabolism , Neurons/metabolism , Carbon Dioxide/metabolism , Proto-Oncogene Proteins c-fos/metabolism , Neural Pathways/metabolism , Neural Pathways/physiology , Respiratory Center/metabolism , Rats , Chemoreceptor Cells/metabolism , Rats, Sprague-Dawley , Brain Stem/metabolism
20.
J Neuroendocrinol ; 36(6): e13397, 2024 06.
Article in English | MEDLINE | ID: mdl-38659185

ABSTRACT

The neurohormone oxytocin (OT) has become a major target for the development of novel therapeutic strategies to treat psychiatric disorders such as autism spectrum disorder because of its integral role in governing many facets of mammalian social behavior. Whereas extensive work in rodents has produced much of our knowledge of OT, we lack basic information about its neurobiology in primates making it difficult to interpret the limited effects that OT manipulations have had in human patients. In fact, previous studies have revealed only limited OT fibers in primate brains. Here, we investigated the OT connectome in marmoset using immunohistochemistry, and mapped OT fibers throughout the brains of adult male and female marmoset monkeys. We found extensive OT projections reaching limbic and cortical areas that are involved in the regulation of social behaviors, such as the amygdala, the medial prefrontal cortex, and the basal ganglia. The pattern of OT fibers observed in marmosets is notably similar to the OT connectomes described in rodents. Our findings here contrast with previous results by demonstrating a broad distribution of OT throughout the marmoset brain. Given the prevalence of this neurohormone in the primate brain, methods developed in rodents to manipulate endogenous OT are likely to be applicable in marmosets.


Subject(s)
Brain , Callithrix , Neurons , Oxytocin , Animals , Oxytocin/metabolism , Male , Female , Brain/metabolism , Neurons/metabolism , Neural Pathways/metabolism , Connectome
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