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1.
Nan Fang Yi Ke Da Xue Xue Bao ; 44(5): 960-966, 2024 May 20.
Article Zh | MEDLINE | ID: mdl-38862454

OBJECTIVE: To assess the effects of repeated mild traumatic brain injury (rmTBI) in the parietal cortex on neuronal morphology and synaptic plasticity in the medulla oblongata of mice. METHODS: Thirty-two male ICR mice were randomly divided into sham operation group (n=8) and rmTBI group (n=24). The mice in the latter group were subjected to repeated mild impact injury of the parietal cortex by a free-falling object. The mice surviving the injuries were evaluated for neurological deficits using neurological severity scores (NSS), righting reflex test and forced swimming test, and pathological changes of the neuronal cells in the medulla oblongata were observed with HE and Nissl staining. Western blotting and immunofluorescence staining were used to detect the expressions of neuroligin 1(NLG-1) and postsynaptic density protein 95(PSD-95) in the medulla oblongata of the mice that either survived rmTBI or not. RESULTS: None of the mice in the sham-operated group died, while the mortality rate was 41.67% in rmTBI group. The mice surviving rmTBI showed significantly reduced NSS, delayed recovery of righting reflex, increased immobility time in forced swimming test (P < 0.05), and loss of Nissl bodies; swelling and necrosis were observed in a large number of neurons in the medulla oblongata, where the expression levels of NLG-1 and PSD-95 were significantly downregulated (P < 0.05). The mice that did not survive rmTBI showed distorted and swelling nerve fibers and decreased density of neurons in the medulla oblongina with lowered expression levels of NLG-1 and PSD-95 compared with the mice surviving the injuries (P < 0.01). CONCLUSION: The structural and functional anomalies of the synapses in the medulla oblongata may contribute to death and neurological impairment following rmTBI in mice.


Cell Adhesion Molecules, Neuronal , Disks Large Homolog 4 Protein , Medulla Oblongata , Mice, Inbred ICR , Parietal Lobe , Animals , Mice , Medulla Oblongata/metabolism , Disks Large Homolog 4 Protein/metabolism , Male , Parietal Lobe/metabolism , Cell Adhesion Molecules, Neuronal/metabolism , Neurons/metabolism , Brain Injuries, Traumatic/metabolism , Neuronal Plasticity
2.
AJNR Am J Neuroradiol ; 45(6): 769-772, 2024 Jun 07.
Article En | MEDLINE | ID: mdl-38697787

BACKGROUND AND PURPOSE: While classic brain MR imaging features of Alexander disease have been well-documented, lesional patterns can overlap with other leukodystrophies, especially in the early stages of the disease or in milder phenotypes. We aimed to assess the utility of a new neuroimaging sign to help increase the diagnostic specificity of Alexander disease. MATERIALS AND METHODS: A peculiar bilateral symmetric hyperintense signal on T2-weighted images affecting the medulla oblongata was identified in an index patient with type I Alexander disease. Subsequently, 5 observers performed a systematic MR imaging review for this pattern by examining 55 subjects with Alexander disease and 74 subjects with other leukodystrophies. Interobserver agreement was assessed by the κ index. Sensitivity, specificity, and receiver operating characteristic curves were determined. RESULTS: The identified pattern was present in 87% of subjects with Alexander disease and 14% of those without Alexander disease leukodystrophy (P < .001), 3 with vanishing white matter, 4 with adult polyglucosan body disease, and 3 others. It was found equally in both type I and type II Alexander disease (28/32, 88% versus 18/21, 86%; P = .851) and in subjects with unusual disease features (2/2). Sensitivity (87.3%; 95% CI, 76.0%-93.7%), specificity (86.5%; 95% CI, 76.9%-92.5%), and interobserver agreement (κ index = 0.82) were high. CONCLUSIONS: The identified pattern in the medulla oblongata, called the chipmunk sign due to its resemblance to the face of this rodent, is extremely common in subjects with Alexander disease and represents a diagnostic tool that can aid in early diagnosis, especially in subjects with otherwise atypical MR imaging findings and/or clinical features.


Alexander Disease , Magnetic Resonance Imaging , Sensitivity and Specificity , Humans , Alexander Disease/diagnostic imaging , Male , Female , Adult , Magnetic Resonance Imaging/methods , Middle Aged , Young Adult , Adolescent , Brain Stem/diagnostic imaging , Brain Stem/pathology , Child , Aged , Medulla Oblongata/diagnostic imaging , Medulla Oblongata/pathology , Child, Preschool
3.
Trends Neurosci ; 47(6): 447-460, 2024 Jun.
Article En | MEDLINE | ID: mdl-38749825

The descending-pain modulating circuit controls the experience of pain by modulating transmission of sensory signals through the dorsal horn. This circuit's key output node, the rostral ventromedial medulla (RVM), integrates 'top-down' and 'bottom-up' inputs that regulate functionally defined RVM cell types, 'OFF-cells' and 'ON-cells', which respectively suppress or facilitate pain-related sensory processing. While recent advances have sought molecular definition of RVM cell types, conflicting behavioral findings highlight challenges involved in aligning functional and molecularly defined types. This review summarizes current understanding, derived primarily from rodent studies but with corroborating evidence from human imaging, of the role of RVM populations in pain modulation and persistent pain states and explores recent advances outlining inputs to, and outputs from, RVM pain-modulating neurons.


Medulla Oblongata , Pain , Medulla Oblongata/physiology , Medulla Oblongata/physiopathology , Animals , Humans , Pain/physiopathology , Neurons/physiology , Neural Pathways/physiopathology , Neural Pathways/physiology
6.
Clin Radiol ; 79(7): e933-e940, 2024 Jul.
Article En | MEDLINE | ID: mdl-38670919

BACKGROUND: This study aimed to establish an intelligent segmentation algorithm to count the number of deep medullary veins (DMVs) and analyze the relationship between DMVs and imaging markers of cerebral small vessel disease (CSVD). METHODS: DMVs on magnetic resonance imaging (MRI) of patients with CSVD were counted by intelligent segmentation and manual counting. The dice coefficient and intraclass correlation coefficient (ICC) were used to evaluate their consistency and correlation. Structural MR images were used to assess imaging markers and total burden of CSVD. A multivariate linear regression model was used to evaluate the correlation between the number of DMVs counted by intelligent segmentation and imaging markers of CSVD, including white matter hyperintensities of the presumed vascular origin, lacune, perivascular spaces, cerebral microbleeds, and total CSVD burden. RESULTS: A total of 305 patients with CSVD were enrolled. An intelligent segmentation algorithm was established to calculate the number of DMVs, and it was validated and tested. The number of DMVs counted intelligently significantly correlated with the manual counting method (r = 0.761, P< 0.001). The number of smart-counted DMVs negatively correlated with the imaging markers and total burden of CSVD (P< 0.001), and the correlation remained after adjusting for age and hypertension (P< 0.05). CONCLUSIONS: The proposed intelligent segmentation algorithm, which was established to count DMVs, can provide objective and quantitative imaging information for the follow-up of patients with CSVD. DMVs are involved in CSVD pathogenesis and a likely new imaging marker for CSVD.


Algorithms , Cerebral Small Vessel Diseases , Cerebral Veins , Magnetic Resonance Imaging , Humans , Cerebral Small Vessel Diseases/diagnostic imaging , Female , Male , Middle Aged , Magnetic Resonance Imaging/methods , Cerebral Veins/diagnostic imaging , Aged , Medulla Oblongata/diagnostic imaging , Medulla Oblongata/blood supply
7.
Brain Res ; 1837: 148955, 2024 Aug 15.
Article En | MEDLINE | ID: mdl-38679314

Swallowing is induced by a central pattern generator in the nucleus tractus solitarius (NTS). We aimed to create a medullary slice preparation to elucidate the neural architecture of the central pattern generator of swallowing (Sw-CPG) and record its neural activities. Experiments were conducted on 2-day-old Sprague-Dawley rats (n = 46). The brainstem-spinal cord was transected at the pontomedullary and cervicothoracic junctions; the medulla was sliced transversely at thicknesses of 600, 700, or 800 µm. The rostral end of the slice was 100 µm rostral to the vagus nerve. We recorded hypoglossal nerve activity and electrically stimulated the vagus nerve or microinjected bicuculline methiodide (BIC) into the NTS. The 800-µm slices generated both rhythmic respiratory activity and electrically elicited neural activity. The 700-µm slices generated only respiratory activity, while the 600-µm slices did not generate any neural activity. BIC microinjection into the NTS in 800-µm slices resulted in the typical activity that closely resembled the swallowing activity reported in other experiments. This swallowing-like activity consistently lengthened the respiratory interval. Despite complete inhibition of respiratory activity, weak swallowing-like activity was observed under bath application of a non-NMDA receptor antagonist. Contrastingly, bath application of NMDA receptor antagonists resulted in a complete loss of swallowing-like activity and no change in respiratory activity. These results suggest that the 800-µm medullary slice preparation contains both afferent and efferent neural circuits and pattern generators of swallowing activity. Additionally, NMDA receptors may be necessary for generating swallowing activity. This medullary slice preparation can therefore elucidate Sw-CPG neural networks.


Animals, Newborn , Bicuculline , Central Pattern Generators , Deglutition , Hypoglossal Nerve , Medulla Oblongata , Rats, Sprague-Dawley , Vagus Nerve , Animals , Deglutition/physiology , Deglutition/drug effects , Medulla Oblongata/physiology , Medulla Oblongata/drug effects , Bicuculline/pharmacology , Bicuculline/analogs & derivatives , Rats , Vagus Nerve/physiology , Vagus Nerve/drug effects , Central Pattern Generators/physiology , Central Pattern Generators/drug effects , Hypoglossal Nerve/physiology , Hypoglossal Nerve/drug effects , Electric Stimulation , Solitary Nucleus/drug effects , Solitary Nucleus/physiology
8.
J Neuroinflammation ; 21(1): 101, 2024 Apr 18.
Article En | MEDLINE | ID: mdl-38632579

BACKGROUND: Increased neuroinflammation in brain regions regulating sympathetic nerves is associated with hypertension. Emerging evidence from both human and animal studies suggests a link between hypertension and gut microbiota, as well as microbiota-derived metabolites short-chain fatty acids (SCFAs). However, the precise mechanisms underlying this gut-brain axis remain unclear. METHODS: The levels of microbiota-derived SCFAs in spontaneously hypertensive rats (SHRs) were determined by gas chromatography-mass spectrometry. To observe the effect of acetate on arterial blood pressure (ABP) in rats, sodium acetate was supplemented via drinking water for continuous 7 days. ABP was recorded by radio telemetry. The inflammatory factors, morphology of microglia and astrocytes in rostral ventrolateral medulla (RVLM) were detected. In addition, blood-brain barrier (BBB) permeability, composition and metabolomics of the gut microbiome, and intestinal pathological manifestations were also measured. RESULTS: The serum acetate levels in SHRs are lower than in normotensive control rats. Supplementation with acetate reduces ABP, inhibits sympathetic nerve activity in SHRs. Furthermore, acetate suppresses RVLM neuroinflammation in SHRs, increases microglia and astrocyte morphologic complexity, decreases BBB permeability, modulates intestinal flora, increases fecal flora metabolites, and inhibits intestinal fibrosis. CONCLUSIONS: Microbiota-derived acetate exerts antihypertensive effects by modulating microglia and astrocytes and inhibiting neuroinflammation and sympathetic output.


Hypertension , Microbiota , Humans , Rats , Animals , Rats, Inbred SHR , Neuroinflammatory Diseases , Hypertension/metabolism , Blood Pressure , Medulla Oblongata/metabolism , Acetates/pharmacology
10.
Physiol Behav ; 280: 114564, 2024 Jun 01.
Article En | MEDLINE | ID: mdl-38657747

Although salivation is essential during eating behavior, little is known about the brainstem centers that directly control the salivary glands. With regard to the inferior salivatory nucleus (ISN), the site of origin of the parasympathetic preganglionic cell bodies that innervate the parotid glands, previous anatomical studies have located it within the rostrodorsal medullary reticular formation. However, to date there is no functional data that shows the secretory nature of the somas grouped in this region. To activate only the somas and rule out the activation of the efferent fibers from and the afferent fibers to the ISN, in exp. 1, NMDA neurotoxin was administered to the rostrodorsal medullary region and the secretion of saliva was recorded during the following hour. Results showed an increased secretion of parotid saliva but a total absence of submandibular-sublingual secretion. In exp. 2, results showed that the hypersecretion of parotid saliva after NMDA microinjection was completely blocked by the administration of atropine (a cholinergic blocker) but not after administration of dihydroergotamine plus propranolol (α and ß-adrenergic blockers, respectively). These findings suggest that the somata of the rostrodorsal medulla are secretory in nature, controlling parotid secretion via a cholinergic pathway. The data thus functionally supports the idea that these cells constitute the ISN.


N-Methylaspartate , Parotid Gland , Receptors, N-Methyl-D-Aspartate , Salivation , Animals , Male , Rats , Adrenergic beta-Antagonists/pharmacology , Atropine/pharmacology , Excitatory Amino Acid Agonists/pharmacology , Medulla Oblongata/metabolism , Medulla Oblongata/drug effects , Microinjections , N-Methylaspartate/pharmacology , N-Methylaspartate/metabolism , Parotid Gland/metabolism , Parotid Gland/drug effects , Propranolol/pharmacology , Rats, Wistar , Receptors, N-Methyl-D-Aspartate/metabolism , Saliva/metabolism , Salivation/drug effects , Salivation/physiology , Sialorrhea
11.
Auton Neurosci ; 253: 103177, 2024 Jun.
Article En | MEDLINE | ID: mdl-38636284

BACKGROUND: Many esophageal striated muscles of mammals are dually innervated by the vagal and enteric nerves. Recently, substance P (SP)-sensory nerve terminals with calcitonin gene-related peptide (CGRP) were found on a few striated muscle fibers in the rat esophagus, implying that these muscle fibers are triply innervated. In this study, we examined the localization and origin of CGRP-nerve endings in striated muscles to consider their possible roles in the esophagus regarding triple innervation. METHODS: Wholemounts of the rat esophagus were immunolabeled to detect CGRP-nerve endings in striated muscles. Also, retrograde tracing was performed by injecting Fast Blue (FB) into the esophagus, and cryostat sections of the medulla oblongata, nodose ganglion (NG), and the tenth thoracic (T10) dorsal root ganglion (DRG) were immunostained to identify the origin of the CGRP-nerve endings. RESULTS: CGRP-fine, varicose nerve endings were localized in motor endplates on a few esophageal striated muscle fibers (4 %), most of which received nitric oxide (NO) synthase nerve terminals, and most of the CGRP nerve endings were SP- and transient receptor potential vanilloid member 1 (TRPV1)-positive. Retrograde tracing showed many FB-labeled CGRP-neurons positive for SP and TRPV1 in the NG and T10 DGR. CONCLUSIONS: This study suggests that the CGRP-varicose nerve endings containing SP and TRPV1 in motor endplates are sensory, and a few esophageal striated muscle fibers are triply innervated. The nerve endings may detect acetylcholine-derived acetic acid from the vagal motor nerve endings and NO from esophageal intrinsic nerve terminals in the motor endplates to regulate esophageal motility.


Calcitonin Gene-Related Peptide , Esophagus , Nodose Ganglion , Sensory Receptor Cells , Animals , Calcitonin Gene-Related Peptide/metabolism , Calcitonin Gene-Related Peptide/analysis , Esophagus/innervation , Esophagus/metabolism , Male , Sensory Receptor Cells/metabolism , Nodose Ganglion/metabolism , Motor Endplate/metabolism , Rats , Ganglia, Spinal/metabolism , Medulla Oblongata/metabolism , Substance P/metabolism , Muscle, Striated/innervation , Muscle, Striated/metabolism , Vagus Nerve/metabolism , Rats, Wistar , Rats, Sprague-Dawley , Muscle Fibers, Skeletal/metabolism , TRPV Cation Channels/metabolism , Amidines
12.
Sci Adv ; 10(17): eadj9581, 2024 Apr 26.
Article En | MEDLINE | ID: mdl-38669335

The supraspinal descending pain modulatory system (DPMS) shapes pain perception via monoaminergic modulation of sensory information in the spinal cord. However, the role and synaptic mechanisms of descending noradrenergic signaling remain unclear. Here, we establish that noradrenergic neurons of the locus coeruleus (LC) are essential for supraspinal opioid antinociception. While much previous work has emphasized the role of descending serotonergic pathways, we find that opioid antinociception is primarily driven by excitatory output from the ventrolateral periaqueductal gray (vlPAG) to the LC. Furthermore, we identify a previously unknown opioid-sensitive inhibitory input from the rostroventromedial medulla (RVM), the suppression of which disinhibits LC neurons to drive spinal noradrenergic antinociception. We describe pain-related activity throughout this circuit and report the presence of prominent bifurcating outputs from the vlPAG to the LC and the RVM. Our findings substantially revise current models of the DPMS and establish a supraspinal antinociceptive pathway that may contribute to multiple forms of descending pain modulation.


Analgesics, Opioid , Locus Coeruleus , Medulla Oblongata , Pain , Periaqueductal Gray , Locus Coeruleus/metabolism , Locus Coeruleus/drug effects , Periaqueductal Gray/metabolism , Periaqueductal Gray/drug effects , Animals , Medulla Oblongata/metabolism , Medulla Oblongata/drug effects , Pain/drug therapy , Pain/metabolism , Analgesics, Opioid/pharmacology , Male , Adrenergic Neurons/metabolism , Adrenergic Neurons/drug effects , Mice , Neural Pathways/drug effects
13.
Brain Nerve ; 76(3): 239-247, 2024 Mar.
Article Ja | MEDLINE | ID: mdl-38514105

Based on a recent review by Krohn et al, the respiratory center and its regulatory mechanisms are described. Although the respiratory control centers in the medulla and pons ensure rhythmic respiration, maintaining and regulating respiration involves a complex network of peripheral chemoreceptors, vagal nerves, and central chemoreceptors. This review discusses the pathophysiology of respiratory disorders in neuromuscular diseases and evaluation and treatment methods based on the anatomy of the respiratory network.


Neuromuscular Diseases , Respiratory Insufficiency , Humans , Respiration , Neuromuscular Diseases/complications , Respiratory Insufficiency/etiology , Medulla Oblongata , Pons
14.
Science ; 383(6687): eadi8081, 2024 Mar 08.
Article En | MEDLINE | ID: mdl-38452069

Phonation critically depends on precise controls of laryngeal muscles in coordination with ongoing respiration. However, the neural mechanisms governing these processes remain unclear. We identified excitatory vocalization-specific laryngeal premotor neurons located in the retroambiguus nucleus (RAmVOC) in adult mice as being both necessary and sufficient for driving vocal cord closure and eliciting mouse ultrasonic vocalizations (USVs). The duration of RAmVOC activation can determine the lengths of both USV syllables and concurrent expiration periods, with the impact of RAmVOC activation depending on respiration phases. RAmVOC neurons receive inhibition from the preBötzinger complex, and inspiration needs override RAmVOC-mediated vocal cord closure. Ablating inhibitory synapses in RAmVOC neurons compromised this inspiration gating of laryngeal adduction, resulting in discoordination of vocalization with respiration. Our study reveals the circuits for vocal production and vocal-respiratory coordination.


Brain Stem , Phonation , Respiration , Vocal Cords , Animals , Male , Mice , Brain Stem/physiology , Medulla Oblongata/physiology , Neurons/physiology , Phonation/physiology , Vocal Cords/innervation , Vocal Cords/physiology , Mice, Inbred C57BL , Female , Proto-Oncogene Proteins c-fos/genetics
15.
Acta Neurochir (Wien) ; 166(1): 139, 2024 Mar 15.
Article En | MEDLINE | ID: mdl-38488893

Neurovascular compression of the rostral ventrolateral medulla (RVLM) has been described as a possible cause of refractory essential hypertension. We present the case of a patient affected by episodes of severe paroxysmal hypertension, some episodes associated with vago-glossopharyngeal neuralgia. Classical secondary forms of hypertension were excluded. Imaging revealed a neurovascular conflict between the posterior inferior cerebellar artery (PICA) and the ventrolateral medulla at the level of the root entry zone of the ninth and tenth cranial nerves (CN IX-X REZ). A MVD of a conflict between the PICA and the RVLM and adjacent CN IX-X REZ was performed, resulting in reduction of the frequency and severity of the episodes. Brain MRI should be performed in cases of paroxysmal hypertension. MVD can be considered in selected patients.


Glossopharyngeal Nerve Diseases , Hypertension , Humans , Medulla Oblongata/diagnostic imaging , Hypertension/complications , Vagus Nerve , Pressure
16.
Cell Rep ; 43(3): 113884, 2024 Mar 26.
Article En | MEDLINE | ID: mdl-38458194

Primate hands house an array of mechanoreceptors and proprioceptors, which are essential for tactile and kinematic information crucial for daily motor action. While the regulation of these somatosensory signals is essential for hand movements, the specific central nervous system (CNS) location and mechanism remain unclear. Our study demonstrates the attenuation of somatosensory signals in the cuneate nucleus during voluntary movement, suggesting significant modulation at this initial relay station in the CNS. The attenuation is comparable to the cerebral cortex but more pronounced than in the spinal cord, indicating the cuneate nuclei's role in somatosensory perception modulation during movement. Moreover, our findings suggest that the descending motor tract may regulate somatosensory transmission in the cuneate nucleus, enhancing relevant signals and suppressing unnecessary ones for the regulation of movement. This process of recurrent somatosensory modulation between cortical and subcortical areas could be a basic mechanism for modulating somatosensory signals to achieve active perception.


Hand , Medulla Oblongata , Animals , Medulla Oblongata/physiology , Spinal Cord/physiology , Touch , Primates , Somatosensory Cortex/physiology , Movement/physiology
17.
CNS Neurosci Ther ; 30(3): e14686, 2024 03.
Article En | MEDLINE | ID: mdl-38516817

OBJECTIVES: The new daily persistent headache (NDPH) is a rare primary headache disorder. However, the underlying mechanisms of NDPH remain incompletely understood. This study aims to apply seed-based analysis to explore the functional connectivity (FC) of brainstem nuclei in patients with NDPH using resting-state functional magnetic resonance imaging (MRI). METHODS: The FC analysis from the region of interest (ROI) to whole brain voxels was used to investigate 29 patients with NDPH and 37 well-matched healthy controls (HCs) with 3.0 Tesla MRI. The 76 nuclei in the brainstem atlas were defined as ROIs. Furthermore, we explored the correlations between FC and patients' clinical characteristics and neuropsychological evaluations. RESULTS: Patients with NDPH exhibited reduced FC in multiple brainstem nuclei compared to HCs (including right inferior medullary reticular formation, right mesencephalic reticular formation, bilateral locus coeruleus, bilateral laterodorsal tegmental nucleus-central gray of the rhombencephalon, median raphe, left medial parabrachial nucleus, periaqueductal gray, and bilateral ventral tegmental area-parabrachial pigmented nucleus complex) and increased FC in periaqueductal gray. No significant correlations were found between the FC of these brain regions and clinical characteristics or neuropsychological evaluations after Bonferroni correction (p > 0.00016). CONCLUSIONS: Our results demonstrated that patients with NDPH have abnormal FC of brainstem nuclei involved in the perception and regulation of pain and emotions.


Brain Stem , Brain , Humans , Brain Stem/diagnostic imaging , Magnetic Resonance Imaging/methods , Medulla Oblongata , Brain Mapping , Headache
18.
Sci Rep ; 14(1): 4069, 2024 02 19.
Article En | MEDLINE | ID: mdl-38374419

We investigated the participation of the nucleus of the tractus solitarius (NTS) in tonic‒clonic seizures and postictal antinociception control mediated by NMDA receptors, the role of NTS GABAergic interneurons and noradrenergic pathways from the locus coeruleus (LC) in these phenomena. The NTS-lateral nucleus reticularis paragigantocellularis (lPGi)-LC pathway was studied by evaluating neural tract tracer deposits in the lPGi. NMDA and GABAergic receptors agonists and antagonists were microinjected into the NTS, followed by pharmacologically induced seizures. The effects of LC neurotoxic lesions caused by DSP-4, followed by NTS-NMDA receptor activation, on both tonic‒clonic seizures and postictal antinociception were also investigated. The NTS is connected to lPGi neurons that send outputs to the LC. Glutamatergic vesicles were found on dendrites and perikarya of GABAergic interneurons in the NTS. Both tonic‒clonic seizures and postictal antinociception are partially dependent on glutamatergic-mediated neurotransmission in the NTS of seizing rats in addition to the integrity of the noradrenergic system since NMDA receptor blockade in the NTS and intrathecal administration of DSP-4 decrease the postictal antinociception. The GABAA receptor activation in the NTS decreases both seizure severity and postictal antinociception. These findings suggest that glutamatergic inputs to NTS-GABAergic interneurons, in addition to ascending and descending noradrenergic pathways from the LC, are critical for the control of both seizures and postictal antinociception.


Benzylamines , Locus Coeruleus , Receptors, N-Methyl-D-Aspartate , Rats , Animals , Locus Coeruleus/physiology , Receptors, N-Methyl-D-Aspartate/metabolism , Medulla Oblongata/metabolism , Solitary Nucleus/metabolism , Norepinephrine/metabolism , Seizures/metabolism
19.
Nat Commun ; 15(1): 1542, 2024 Feb 20.
Article En | MEDLINE | ID: mdl-38378819

Spinal cord injury disrupts the descending command from the brain and causes a range of motor deficits. Here, we use optogenetic tools to investigate the functional plasticity of the glutamatergic reticulospinal drive of the medullary reticular formation after a lateral thoracic hemisection in female mice. Sites evoking stronger excitatory descending drive in intact conditions are the most impaired after injury, whereas those associated with a weaker drive are potentiated. After lesion, pro- and anti-locomotor activities (that is, initiation/acceleration versus stop/deceleration) are overall preserved. Activating the descending reticulospinal drive improves stepping ability on a flat surface of chronically impaired injured mice, and its priming enhances recovery of skilled locomotion on a horizontal ladder. This study highlights the resilience and capacity for reorganization of the glutamatergic reticulospinal command after injury, along with its suitability as a therapeutical target to promote functional recovery.


Neurons , Spinal Cord Injuries , Mice , Animals , Female , Neurons/physiology , Medulla Oblongata , Reticular Formation , Brain/pathology , Spinal Cord/pathology , Locomotion/physiology
20.
J Physiol ; 602(5): 949-966, 2024 Mar.
Article En | MEDLINE | ID: mdl-38353989

Exposure to stressful stimuli promotes multi-system biological responses to restore homeostasis. Catecholaminergic neurons in the rostral ventrolateral medulla (RVLM) facilitate sympathetic activity and promote physiological adaptations, including glycaemic mobilization and corticosterone release. While it is unclear how brain regions involved in the cognitive appraisal of stress regulate RVLM neural activity, recent studies found that the rodent ventromedial prefrontal cortex (vmPFC) mediates stress appraisal and physiological stress responses. Thus, a vmPFC-RVLM connection could represent a circuit mechanism linking stress appraisal and physiological reactivity. The current study investigated a direct vmPFC-RVLM circuit utilizing genetically encoded anterograde and retrograde tract tracers. Together, these studies found that stress-activated vmPFC neurons project to catecholaminergic neurons throughout the ventrolateral medulla in male and female rats. Next, we utilized optogenetic terminal stimulation to evoke vmPFC synaptic glutamate release in the RVLM. Photostimulating the vmPFC-RVLM circuit during restraint stress suppressed glycaemic stress responses in males, without altering the female response. However, circuit stimulation decreased corticosterone responses to stress in both sexes. Circuit stimulation did not modulate affective behaviour in either sex. Further analysis indicated that circuit stimulation preferentially activated non-catecholaminergic medullary neurons in both sexes. Additionally, vmPFC terminals targeted medullary inhibitory neurons. Thus, both male and female rats have a direct vmPFC projection to the RVLM that reduces endocrine stress responses, likely by recruiting local RVLM inhibitory neurons. Ultimately, the excitatory/inhibitory balance of vmPFC synapses in the RVLM may regulate stress reactivity and stress-related health outcomes. KEY POINTS: Glutamatergic efferents from the ventromedial prefrontal cortex target catecholaminergic neurons throughout the ventrolateral medulla. Partially segregated, stress-activated ventromedial prefrontal cortex populations innervate the rostral and caudal ventrolateral medulla. Stimulating ventromedial prefrontal cortex synapses in the rostral ventrolateral medulla decreases stress-induced glucocorticoid release in males and females. Stimulating ventromedial prefrontal cortex terminals in the rostral ventrolateral medulla preferentially activates non-catecholaminergic neurons. Ventromedial prefrontal cortex terminals target medullary inhibitory neurons.


Corticosterone , Medulla Oblongata , Rats , Male , Female , Animals , Rats, Sprague-Dawley , Medulla Oblongata/physiology , Neurons/physiology , Stress, Physiological
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