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1.
J Neurosci ; 44(17)2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38438258

ABSTRACT

Acetylcholine (ACh) is released from basal forebrain cholinergic neurons in response to salient stimuli and engages brain states supporting attention and memory. These high ACh states are associated with theta oscillations, which synchronize neuronal ensembles. Theta oscillations in the basolateral amygdala (BLA) in both humans and rodents have been shown to underlie emotional memory, yet their mechanism remains unclear. Here, using brain slice electrophysiology in male and female mice, we show large ACh stimuli evoke prolonged theta oscillations in BLA local field potentials that depend upon M3 muscarinic receptor activation of cholecystokinin (CCK) interneurons (INs) without the need for external glutamate signaling. Somatostatin (SOM) INs inhibit CCK INs and are themselves inhibited by ACh, providing a functional SOM→CCK IN circuit connection gating BLA theta. Parvalbumin (PV) INs, which can drive BLA oscillations in baseline states, are not involved in the generation of ACh-induced theta, highlighting that ACh induces a cellular switch in the control of BLA oscillatory activity and establishes an internally BLA-driven theta oscillation through CCK INs. Theta activity is more readily evoked in BLA over the cortex or hippocampus, suggesting preferential activation of the BLA during high ACh states. These data reveal a SOM→CCK IN circuit in the BLA that gates internal theta oscillations and suggest a mechanism by which salient stimuli acting through ACh switch the BLA into a network state enabling emotional memory.


Subject(s)
Acetylcholine , Cholecystokinin , Mice, Inbred C57BL , Theta Rhythm , Theta Rhythm/drug effects , Theta Rhythm/physiology , Animals , Male , Mice , Female , Acetylcholine/pharmacology , Acetylcholine/metabolism , Cholecystokinin/pharmacology , Cholecystokinin/metabolism , Interneurons/physiology , Interneurons/drug effects , Somatostatin/metabolism , Somatostatin/pharmacology , Amygdala/physiology , Amygdala/drug effects , Basolateral Nuclear Complex/physiology , Basolateral Nuclear Complex/drug effects , Nerve Net/physiology , Nerve Net/drug effects , Receptor, Muscarinic M3/physiology , Receptor, Muscarinic M3/metabolism , Parvalbumins/metabolism
2.
J Neurosci ; 43(5): 722-735, 2023 02 01.
Article in English | MEDLINE | ID: mdl-36535767

ABSTRACT

The amygdalar anterior basolateral nucleus (BLa) plays a vital role in emotional behaviors. This region receives dense cholinergic projections from basal forebrain which are critical in regulating neuronal activity in BLa. Cholinergic signaling in BLa has also been shown to modulate afferent glutamatergic inputs to this region. However, these studies, which have used cholinergic agonists or prolonged optogenetic stimulation of cholinergic fibers, may not reflect the effect of physiological acetylcholine release in the BLa. To better understand these effects of acetylcholine, we have used electrophysiology and optogenetics in male and female mouse brain slices to examine cholinergic regulation of afferent BLa input from cortex and midline thalamic nuclei. Phasic ACh release evoked by single pulse stimulation of cholinergic terminals had a biphasic effect on transmission at cortical input, producing rapid nicotinic receptor-mediated facilitation followed by slower mAChR-mediated depression. In contrast, at this same input, sustained ACh elevation through application of the cholinesterase inhibitor physostigmine suppressed glutamatergic transmission through mAChRs only. This suppression was not observed at midline thalamic nuclei inputs to BLa. In agreement with this pathway specificity, the mAChR agonist, muscarine more potently suppressed transmission at inputs from prelimbic cortex than thalamus. Muscarinic inhibition at prelimbic cortex input required presynaptic M4 mAChRs, while at thalamic input it depended on M3 mAChR-mediated stimulation of retrograde endocannabinoid signaling. Muscarinic inhibition at both pathways was frequency-dependent, allowing only high-frequency activity to pass. These findings demonstrate complex cholinergic regulation of afferent input to BLa that is pathway-specific and frequency-dependent.SIGNIFICANCE STATEMENT Cholinergic modulation of the basolateral amygdala regulates formation of emotional memories, but the underlying mechanisms are not well understood. Here, we show, using mouse brain slices, that ACh differentially regulates afferent transmission to the BLa from cortex and midline thalamic nuclei. Fast, phasic ACh release from a single optical stimulation biphasically regulates glutamatergic transmission at cortical inputs through nicotinic and muscarinic receptors, suggesting that cholinergic neuromodulation can serve precise, computational roles in the BLa. In contrast, sustained ACh elevation regulates cortical input through muscarinic receptors only. This muscarinic regulation is pathway-specific with cortical input inhibited more strongly than midline thalamic nuclei input. Specific targeting of these cholinergic receptors may thus provide a therapeutic strategy to bias amygdalar processing and regulate emotional memory.


Subject(s)
Acetylcholine , Basolateral Nuclear Complex , Mice , Animals , Male , Female , Acetylcholine/metabolism , Basolateral Nuclear Complex/metabolism , Receptors, Cholinergic/metabolism , Thalamus/physiology , Cholinergic Agents/pharmacology , Receptors, Muscarinic/metabolism , Synaptic Transmission/physiology
3.
Neurosci Lett ; 779: 136624, 2022 05 14.
Article in English | MEDLINE | ID: mdl-35413389

ABSTRACT

The cholinergic innervation of the neocortex, hippocampus, and basolateral amygdala is critical for higher cognitive functions, including attention and memory. One action of ACh in the hippocampus is the potentiation of NMDA receptor (NMDAR) currents in pyramidal neurons (PNs) by M1 muscarinic receptors (M1Rs). The increase in these currents enhances long-term potentiation (LTP), an important mechanism for memory formation. Ultrastructural observations in the hippocampus revealed that M1Rs and NMDARs were colocalized in hippocampal PN dendrites, consistent with electrophysiological studies demonstrating M1R-NMDAR interactions. Similar to the hippocampus, activation of M1Rs have been shown to be critical for mnemonic functions in the anterior basolateral nucleus of the amygdala (BLa). In the present study dual-labeling immunoelectron microscopy was used to determine if there was colocalization of M1Rs and NMDARs in neurons of the mouse BLa. We found extensive colocalization of these receptors in dendrites and spines of BLa PNs, and most of the M1Rs were membrane-associated where they could be activated by released acetylcholine. These results suggest that M1Rs in BLa PNs could be targeted by M1R positive allosteric modulators (PAMs), resulting in amelioration of memory impairments in neuropsychiatric disorders, such as Alzheimer's disease, by potentiating NMDAR currents in the amygdala.


Subject(s)
Basolateral Nuclear Complex , Acetylcholine , Animals , Basolateral Nuclear Complex/metabolism , Cholinergic Agents , Dendrites/metabolism , Mice , Pyramidal Cells/metabolism , Receptor, Muscarinic M1/metabolism , Receptors, N-Methyl-D-Aspartate
4.
Neurosci Lett ; 745: 135503, 2021 02 06.
Article in English | MEDLINE | ID: mdl-33352287

ABSTRACT

Studies in rodents have shown that interactions between cholecystokinin (CCK) and the endogenous cannabinoid system in the basolateral nuclear complex of the amygdala (BNC) modulate anxiety-like behavior and fear learning/expression. One of the main cell types implicated is a CCK-immunoreactive (CCK+) basket cell that innervates the somata of pyramidal projection neurons (PNs) and expresses the type 1 cannabinoid receptor (CB1R) in its axon terminals. Although numerous studies have elucidated the anatomy and physiology of these CCK+/CB1R + interneurons in rodents, it has not been determined if they exist in primates. The present investigation used immunohistochemical techniques in the monkey to answer this question. It was found that the monkey BNC, as in rodents, has a very high density of CB1R + axons, including CB1R + axon terminals that form basket-like plexuses contacting somata of PNs. These axons, as well as axons in the neuropil, exhibit extensive colocalization of CCK and CB1R. These findings suggest that the same synaptic mechanisms involved in CCK-CB1R interactions in rodents may also apply to primates, and that therapies that target the cannabinoid system in the BNC may be useful for treating fear and anxiety in human patients.


Subject(s)
Axons/metabolism , Basolateral Nuclear Complex/metabolism , Cholecystokinin/metabolism , Presynaptic Terminals/metabolism , Receptor, Cannabinoid, CB1/biosynthesis , Animals , Axons/chemistry , Basolateral Nuclear Complex/chemistry , Cholecystokinin/analysis , Female , Gene Expression , Macaca mulatta , Male , Presynaptic Terminals/chemistry , Receptor, Cannabinoid, CB1/analysis , Receptor, Cannabinoid, CB1/genetics
5.
Neuroscience ; 455: 113-127, 2021 02 10.
Article in English | MEDLINE | ID: mdl-33359654

ABSTRACT

Inhibitory circuits in the basolateral nuclear complex of the amygdala (BNC) critical for controlling the acquisition, expression, and extinction of emotional responses are mediated by GABAergic interneurons (INs). Studies in rodents have demonstrated that separate IN subpopulations, identified by their expression of calcium-binding proteins and neuropeptides, play discrete roles in the intrinsic circuitry of the BNC. Far less is known about IN subpopulations in primates. In order to fill in this gap in our understanding of primate INs, the present investigation used dual-labeling immunohistochemistry for IN markers to identify subpopulations expressing cholecystokinin (CCK), calbindin (CB), calretinin (CR), and somatostatin (SOM) in somata and axon terminals in the monkey BNC. In general, colocalization patterns seen in somata and axon terminals were similar. It was found that there was virtually no colocalization of CB and CR, the two calcium-binding proteins investigated. Three subtypes of CCK-immunoreactive (CCK+) INs were identified on the basis of their expression of CR or CB: (1) CCK+/CR+; (2) CCK+/CB+); and (3) CCK+/CR-/CB-. Almost no colocalization of CCK with SOM was observed, but there was extensive colocalization of SOM and CB. CCK+, CR+, and CCK+/CR+ double-labeled axon terminals were seen surrounding pyramidal cell somata in basket-like plexuses, as well as in the neuropil. CB+, SOM+, and CB+/SOM+ terminals did not form baskets, suggesting that these IN subpopulations are mainly dendrite-targeting neurons. In general, the IN subpopulations in the monkey are not dissimilar to those seen in rodents but, unlike rodents, CB+ INs in the monkey are not basket cells.


Subject(s)
Basolateral Nuclear Complex , Interneurons , Animals , Basolateral Nuclear Complex/metabolism , Calbindin 2 , Calbindins , Female , Interneurons/metabolism , Macaca mulatta , Male , Parvalbumins/metabolism , S100 Calcium Binding Protein G/metabolism
7.
Handb Behav Neurosci ; 26: 161-212, 2020.
Article in English | MEDLINE | ID: mdl-34671230
8.
J Comp Neurol ; 528(5): 772-786, 2020 04 01.
Article in English | MEDLINE | ID: mdl-31600841

ABSTRACT

Nonpyramidal GABAergic interneurons in the basolateral nuclear complex (BNC) of the amygdala are critical for the regulation of emotion. Remarkably, there have been no Golgi studies of these neurons in nonhuman primates. Therefore, in the present study we investigated the morphology of nonpyramidal neurons (NPNs) in the BNC of the baboon and monkey using the Golgi technique. NPNs were scattered throughout all nuclei of the BNC and had aspiny or spine-sparse dendrites. NPNs were morphologically heterogeneous and could be divided into small, medium, large, and giant types based on the size of their somata. NPNs could be further divided on the basis of their somatodendritic morphology into four types: multipolar, bitufted, bipolar, and irregular. NPN axons, when stained, formed dense local arborizations that overlapped their dendritic fields to varying extents. These axons always exhibited varying numbers of varicosities representing axon terminals. Three specialized NPN subtypes were recognized because of their unique anatomical features: axo-axonic cells, neurogliaform cells, and giant cells. The axons of axo-axonic cells formed "axonal cartridges," with clustered varicosities that contacted the axon initial segments of pyramidal neurons (PNs). Neurogliaform cells had small somata and numerous short dendrites that formed a dense dendritic arborization; they also exhibited a very dense axonal arborization that overlapped the dendritic field. Giant cells had very large irregular somata and long, thick dendrites; their distal dendrites often branched extensively and had long appendages. In general, the NPNs of the baboon and monkey BNC, including the specialized subtypes, were similar to those of rodents.


Subject(s)
Basolateral Nuclear Complex/cytology , GABAergic Neurons/cytology , Macaca fascicularis/anatomy & histology , Papio/anatomy & histology , Staining and Labeling/methods , Animals , Male
9.
Brain Res ; 1722: 146349, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31348911

ABSTRACT

Although it is known that acetylcholine acting through M1 muscarinic receptors (M1Rs) is essential for memory consolidation in the anterior basolateral nucleus of the amygdala (BLa), virtually nothing is known about the circuits involved. In the hippocampus M1R activation facilitates long-term potentiation (LTP) by potentiating NMDA glutamate receptor (NMDAR) currents. The majority of NMDAR+ profiles in the BLa are spines. Since about half of dendritic spines of BLa pyramidal neurons (PNs) receiving glutamatergic inputs are M1R-immunoreactive (M1R+) it is possible that the role of M1Rs in BLa mnemonic functions also involves potentiation of NMDAR currents in spines. However, the finding that only about half of BLa spines are M1R+ suggests that this proposed mechanism may only apply to a subset of glutamatergic inputs. As a first step in the identification of differential glutamatergic inputs to M1R+ spines in the BLa, the present electron microscopic study used antibodies to two different vesicular glutamate transporter proteins (VGluTs) to label two different subsets of glutamatergic inputs to M1R+ spines. These inputs are largely complimentary with VGluT1+ inputs arising mainly from cortical structures and the basolateral nucleus, and VGluT2+ inputs arising mainly from the thalamus. It was found that about one-half of the spines that were postsynaptic to VGluT1+ or VGluT2+ terminals were M1R+. In addition, a subset of the VGluT1+ or VGluT2+ axon terminals were M1R+, including those that synapsed with M1R+ spines. These results suggest that acetylcholine can modulate glutamatergic inputs to BLa spines by presynaptic as well as postsynaptic M1R-mediated mechanisms.


Subject(s)
Basolateral Nuclear Complex/ultrastructure , Neurons/ultrastructure , Receptor, Muscarinic M1/analysis , Vesicular Glutamate Transport Protein 1/analysis , Vesicular Glutamate Transport Protein 2/analysis , Animals , Dendritic Spines/metabolism , Dendritic Spines/ultrastructure , Male , Mice , Neurons/metabolism , Presynaptic Terminals/metabolism , Presynaptic Terminals/ultrastructure
10.
J Comp Neurol ; 527(16): 2694-2702, 2019 11 01.
Article in English | MEDLINE | ID: mdl-30980540

ABSTRACT

Several distinct subpopulations of interneurons (INs) in the amygdalar basolateral nuclear complex (BNC) of the rat can be recognized on the basis of their expression of calcium-binding proteins and neuropeptides, including parvalbumin (PV), somatostatin (SOM), calretinin (CR), and cholecystokinin (CCK). In the rat BNC CCK is expressed in two separate IN subpopulations, termed large (CCKL ) and small (CCKS ). These subpopulations exhibit distinct connections indicative of discrete functional roles in the circuitry of the BNC. Although there have been several studies of PV+, SOM+, and CR+ INs in the primate BNC, there is almost no information regarding CCK+ INs in these species. Therefore, in the present study the distribution and morphology of CCK+ INs and their axon terminals in the BNC of the monkey was investigated. CCK immunoreactivity in the BNC was observed in somata and proximal dendrites of nonpyramidal neurons, as well as in axon terminals. A moderate density of CCK+ INs was found in all nuclei of the BNC. CCK+ INs in the BNC were morphologically heterogeneous, with both small and large varieties observed. All CCK+ somata gave rise to 2-4 dendrites that branched sparingly and were aspiny. CCK+ axon terminals in the BNC were found both in the neuropil and forming pericellular baskets contacting somata of pyramidal cells. In addition, many CCK+ neurons were contacted by multiple CCK+ terminals, indicative of the existence of a CCK interneuronal network. These data indicate that the morphology of CCK+ INs in the monkey is very similar to that of the rat.


Subject(s)
Basolateral Nuclear Complex/cytology , Basolateral Nuclear Complex/metabolism , Cholecystokinin/metabolism , Neurons/cytology , Neurons/metabolism , Animals , Immunohistochemistry , Macaca mulatta , Male
11.
Brain Struct Funct ; 223(3): 1133-1148, 2018 Apr.
Article in English | MEDLINE | ID: mdl-29094304

ABSTRACT

Perineuronal nets (PNNs) are specialized condensations of extracellular matrix that ensheath particular neuronal subpopulations in the brain and spinal cord. PNNs regulate synaptic plasticity, including the encoding of fear memories by the amygdala. The present immunohistochemical investigation studied PNN structure and distribution, as well as the neurochemistry of their ensheathed neurons, in the rat amygdala using monoclonal antibody VC1.1, which recognizes a glucuronic acid 3-sulfate glycan associated with PNNs in the cerebral cortex. VC1.1+ PNNs surrounded the cell bodies and dendrites of a subset of nonpyramidal neurons in cortex-like portions of the amygdala (basolateral amygdalar complex, cortical nuclei, nucleus of the lateral olfactory tract, and amygdalohippocampal region). There was also significant neuropilar VC1.1 immunoreactivity, whose density varied in different amygdalar nuclei. Cell counts in the basolateral nucleus revealed that virtually all neurons ensheathed by VC1.1+ PNNs were parvalbumin-positive (PV+) interneurons, and these VC1.1+/PV+ cells constituted 60% of all PV+ interneurons, including all of the larger PV+ neurons. Approximately 70% of VC1.1+ neurons were calbindin-positive (CB+), and these VC1.1+/CB+ cells constituted about 40% of all CB+ neurons. Colocalization of VC1.1 with Vicia villosa agglutinin (VVA) binding, which stains terminal N-acetylgalactosamines, revealed that VC1.1+ PNNs were largely a subset of VVA+ PNNs. This investigation provides baseline data regarding PNNs in the rat which should be useful for future studies of their function in this species.


Subject(s)
Amygdala/cytology , Antibodies, Monoclonal/metabolism , Calbindins/metabolism , Glucuronates/immunology , Interneurons/metabolism , Parvalbumins/metabolism , Acetylgalactosamine/metabolism , Animals , Antibody Specificity , CD57 Antigens/metabolism , Conotoxins/metabolism , Extracellular Matrix/metabolism , Glucuronates/metabolism , Male , Rats , Rats, Sprague-Dawley , S100 Calcium Binding Protein G
12.
Neuroscience ; 357: 349-362, 2017 08 15.
Article in English | MEDLINE | ID: mdl-28629847

ABSTRACT

The basolateral amygdala receives a very dense cholinergic innervation from the basal forebrain that is important for memory consolidation. Although behavioral studies have shown that both M1 and M2 muscarinic receptors are critical for these mnemonic functions, there have been very few neuroanatomical and electrophysiological investigations of the localization and function of different types of muscarinic receptors in the amygdala. In the present study we investigated the subcellular localization of M2 muscarinic receptors (M2Rs) in the anterior basolateral nucleus (BLa) of the mouse, including the localization of M2Rs in parvalbumin (PV) immunoreactive interneurons, using double-labeling immunoelectron microscopy. Little if any M2R-immunoreactivity (M2R-ir) was observed in neuronal somata, but the neuropil was densely labeled. Ultrastructural analysis using a pre-embedding immunogold-silver technique (IGS) demonstrated M2R-ir in dendritic shafts, spines, and axon terminals forming asymmetrical (excitatory) or symmetrical (mostly inhibitory) synapses. In addition, about one-quarter of PV+ axon terminals and half of PV+ dendrites, localized using immunoperoxidase, were M2R+ when observed in single thin sections. In all M2R+ neuropilar structures, including those that were PV+, about one-quarter to two-thirds of M2R+ immunoparticles were plasma-membrane-associated, depending on the structure. The expression of M2Rs in PV+ and PV-negative terminals forming symmetrical synapses indicates M2R modulation of inhibitory transmission. Electrophysiological studies in mouse and rat brain slices, including paired recordings from interneurons and pyramidal projection neurons, demonstrated M2R-mediated suppression of GABA release. These findings suggest cell-type-specific functions of M2Rs and shed light on organizing principles of cholinergic modulation in the BLa.


Subject(s)
Axons/metabolism , Basolateral Nuclear Complex/metabolism , Dendrites/metabolism , Receptor, Muscarinic M2/metabolism , Synapses/metabolism , Animals , Axons/ultrastructure , Basolateral Nuclear Complex/ultrastructure , Cell Membrane/metabolism , Cell Membrane/ultrastructure , Dendrites/ultrastructure , Inhibitory Postsynaptic Potentials/physiology , Interneurons/metabolism , Interneurons/ultrastructure , Male , Mice, 129 Strain , Parvalbumins/metabolism , Pyramidal Cells/metabolism , Pyramidal Cells/ultrastructure , Rats, Sprague-Dawley , Synapses/ultrastructure , Tissue Culture Techniques
13.
J Neurosci Res ; 95(3): 797-820, 2017 03.
Article in English | MEDLINE | ID: mdl-26876924

ABSTRACT

The amygdalar nuclear complex and hippocampal/parahippocampal region are key components of the limbic system that play a critical role in emotional learning and memory. This Review discusses what is currently known about the neuroanatomy and neurotransmitters involved in amygdalo-hippocampal interconnections, their functional roles in learning and memory, and their involvement in mnemonic dysfunctions associated with neuropsychiatric and neurological diseases. Tract tracing studies have shown that the interconnections between discrete amygdalar nuclei and distinct layers of individual hippocampal/parahippocampal regions are robust and complex. Although it is well established that glutamatergic pyramidal cells in the amygdala and hippocampal region are the major players mediating interconnections between these regions, recent studies suggest that long-range GABAergic projection neurons are also involved. Whereas neuroanatomical studies indicate that the amygdala only has direct interconnections with the ventral hippocampal region, electrophysiological studies and behavioral studies investigating fear conditioning and extinction, as well as amygdalar modulation of hippocampal-dependent mnemonic functions, suggest that the amygdala interacts with dorsal hippocampal regions via relays in the parahippocampal cortices. Possible pathways for these indirect interconnections, based on evidence from previous tract tracing studies, are discussed in this Review. Finally, memory disorders associated with dysfunction or damage to the amygdala, hippocampal region, and/or their interconnections are discussed in relation to Alzheimer's disease, posttraumatic stress disorder (PTSD), and temporal lobe epilepsy. © 2016 Wiley Periodicals, Inc.


Subject(s)
Amygdala/anatomy & histology , Hippocampus/anatomy & histology , Learning/physiology , Neural Pathways/physiology , Amygdala/physiology , Animals , Hippocampus/physiology , Humans , Neuroanatomy
14.
Brain Res ; 1636: 62-73, 2016 Apr 01.
Article in English | MEDLINE | ID: mdl-26835559

ABSTRACT

Modulatory interactions of opioids and norepinephrine (NE) in the anterior subdivision of the basolateral nucleus of the amygdala (BLa) are critical for the consolidation of memories of emotionally arousing experiences. Although there have been several studies of the noradrenergic system in the amygdalar basolateral nuclear complex (BLC), little is known about the chemical neuroanatomy of opioid systems in this region. To address this knowledge gap the present study first examined the distribution of met-enkephalin-like immunoreactivity (ENK-ir) in the BLC at the light microscopic level, and then utilized dual-labeling immunocytochemistry combined with electron microscopy to investigate the extent of convergence of NE and ENK terminals onto common structures in the BLa. Antibodies to ENK and the norepinephrine transporter (NET) were used in these studies. Light microscopic examination revealed that a subpopulation of small nonpyramidal neurons expressed ENK-ir in all nuclei of the BLC. In addition, the somata of some pyramidal cells exhibited light to moderate ENK-ir. ENK+ axon terminals were also observed. Ultrastructural analysis confined to the BLa revealed that most ENK+ axon terminals formed asymmetrical synapses that mainly contacted spines and shafts of thin dendrites. ENK+ terminals forming symmetrical synapses mainly contacted dendritic shafts. Approximately 20% of NET+ terminals contacted a structure that was also contacted by an ENK+ terminal and 6% of NET+ terminals contacted an ENK+ terminal. These findings suggest that ENK and NE terminals in the BLa may interact by targeting common dendrites and by direct interactions between the two types of terminals.


Subject(s)
Axons/metabolism , Axons/ultrastructure , Basolateral Nuclear Complex/metabolism , Basolateral Nuclear Complex/ultrastructure , Enkephalins/metabolism , Norepinephrine Plasma Membrane Transport Proteins/metabolism , Animals , Dendrites/metabolism , Dendrites/ultrastructure , Male , Microscopy, Immunoelectron , Norepinephrine Plasma Membrane Transport Proteins/ultrastructure , Rats , Rats, Sprague-Dawley
15.
J Comp Neurol ; 524(12): 2400-17, 2016 08 15.
Article in English | MEDLINE | ID: mdl-26779591

ABSTRACT

Activation of M2 muscarinic receptors (M2Rs) in the rat anterior basolateral nucleus (BLa) is critical for the consolidation of memories of emotionally arousing events. The present investigation used immunocytochemistry at the electron microscopic level to determine which structures in the BLa express M2Rs. In addition, dual localization of M2R and the vesicular acetylcholine transporter protein (VAChT), a marker for cholinergic axons, was performed to determine whether M2R is an autoreceptor in cholinergic axons innervating the BLa. M2R immunoreactivity (M2R-ir) was absent from the perikarya of pyramidal neurons, with the exception of the Golgi complex, but was dense in the proximal dendrites and axon initial segments emanating from these neurons. Most perikarya of nonpyramidal neurons were also M2R-negative. About 95% of dendritic shafts and 60% of dendritic spines were M2 immunoreactive (M2R(+) ). Some M2R(+) dendrites had spines, suggesting that they belonged to pyramidal cells, whereas others had morphological features typical of nonpyramidal neurons. M2R-ir was also seen in axon terminals, most of which formed asymmetrical synapses. The main targets of M2R(+) terminals forming asymmetrical (putative excitatory) synapses were dendritic spines, most of which were M2R(+) . The main targets of M2R(+) terminals forming symmetrical (putative inhibitory or neuromodulatory) synapses were unlabeled perikarya and M2R(+) dendritic shafts. M2R-ir was also seen in VAChT(+) cholinergic terminals, indicating a possible autoreceptor role. These findings suggest that M2R-mediated mechanisms in the BLa are very complex, involving postsynaptic effects in dendrites as well as regulating release of glutamate, γ-aminobutyric acid, and acetylcholine from presynaptic axon terminals. J. Comp. Neurol. 524:2400-2417, 2016. © 2016 Wiley Periodicals, Inc.


Subject(s)
Basolateral Nuclear Complex/ultrastructure , Cholinergic Neurons/ultrastructure , Dendrites/ultrastructure , Presynaptic Terminals/ultrastructure , Receptor, Muscarinic M2/ultrastructure , Animals , Basolateral Nuclear Complex/metabolism , Cholinergic Neurons/metabolism , Dendrites/metabolism , Male , Presynaptic Terminals/metabolism , Rats , Rats, Sprague-Dawley , Receptor, Muscarinic M2/biosynthesis
16.
J Alzheimers Dis ; 50(2): 335-52, 2016.
Article in English | MEDLINE | ID: mdl-26682679

ABSTRACT

Retinoids, which are vitamin A derivatives, interact through retinoic acid receptors (RARs) and retinoid X receptors (RXRs) and have profound effects on several physiological and pathological processes in the brain. The presence of retinoic acid signaling is extensively detected in the adult central nervous system, including the amygdala, cortex, hypothalamus, hippocampus, and other brain areas. Retinoids are primarily involved in neural patterning, differentiation, and axon outgrowth. Retinoids also play a key role in the preservation of the differentiated state of adult neurons. Impairment in retinoic acid signaling can result in neurodegeneration and progression of Alzheimer's disease (AD). Recent studies demonstrated severe deficiencies in spatial learning and memory in mice during retinoic acid (vitamin A) deprivation indicating its significance in preserving memory function. Defective cholinergic neurotransmission plays an important role in cognitive deficits in AD. All-trans retinoic acid is known to enhance the expression and activity of choline acetyltransferase in neuronal cell lines. Activation of RAR and RXR is also known to impede the pathogenesis of AD in mice by inhibiting accumulation of amyloids. In addition, retinoids have been shown to inhibit the expression of chemokines and pro-inflammatory cytokines in microglia and astrocytes, which are activated in AD. In this review article, we have described the chemistry and molecular signaling mechanisms of natural and synthetic retinoids and current understandings of their therapeutic potentials in prevention of AD pathology.


Subject(s)
Alzheimer Disease/metabolism , Brain/metabolism , Retinoid X Receptors/metabolism , Retinoids/metabolism , Signal Transduction/physiology , Tretinoin/metabolism , Animals , Humans , Mice , Neurons/metabolism
17.
J Comp Neurol ; 521(8): 1743-59, 2013 Jun 01.
Article in English | MEDLINE | ID: mdl-23559406

ABSTRACT

Muscarinic neurotransmission in the anterior basolateral amygdalar nucleus (BLa) mediated by the M1 receptor (M1R) is critical for memory consolidation. Although knowledge of the subcellular localization of M1R in the BLa would contribute to an understanding of cholinergic mechanisms involved in mnemonic function, there have been no ultrastructural studies of this receptor in the BLa. In the present investigation, immunocytochemistry at the electron microscopic level was used to determine which structures in the BLa express M1R. The innervation of these structures by cholinergic axons expressing the vesicular acetylcholine transporter (VAChT) was also studied. All perikarya of pyramidal neurons were labeled, and about 90% of dendritic shafts and 60% of dendritic spines were M1R+. Some dendrites had spines suggesting that they belonged to pyramidal cells, whereas others had morphological features typical of interneurons. M1R immunoreactivity (M1R-ir) was also seen in axon terminals, most of which formed asymmetrical synapses. The main targets of M1R+ terminals forming asymmetrical synapses were dendritic spines, most of which were M1R+. The main targets of M1R+ terminals forming symmetrical synapses were M1R+ perikarya and dendritic shafts. About three-quarters of VAChT+ cholinergic terminals formed synapses; the main postsynaptic targets were M1R+ dendritic shafts and spines. In some cases M1R-ir was seen near the postsynaptic membrane of these processes, but in other cases it was found outside of the active zone of VAChT+ synapses. These findings suggest that M1R mechanisms in the BLa are complex, involving postsynaptic effects as well as regulating release of neurotransmitters from presynaptic terminals.


Subject(s)
Amygdala/cytology , Neurons/ultrastructure , Receptor, Muscarinic M1/metabolism , Receptor, Muscarinic M1/ultrastructure , Synapses/ultrastructure , Vesicular Acetylcholine Transport Proteins/metabolism , 3,3'-Diaminobenzidine/metabolism , Amygdala/metabolism , Animals , Dendritic Spines/metabolism , Dendritic Spines/ultrastructure , Male , Microscopy, Immunoelectron , Neurons/metabolism , Presynaptic Terminals/metabolism , Presynaptic Terminals/ultrastructure , Rats , Rats, Sprague-Dawley , Synapses/metabolism , Vesicular Acetylcholine Transport Proteins/ultrastructure
18.
Article in English | MEDLINE | ID: mdl-22837739

ABSTRACT

The hippocampus and amygdala are key structures of the limbic system whose connections include reciprocal interactions with the basal forebrain (BF). The hippocampus receives both cholinergic and GABAergic afferents from the medial septal area of the BF. Hippocampal projections back to the medial septal area arise from non-pyramidal GABAergic neurons that express somatostatin (SOM), calbindin (CB), and neuropeptide Y (NPY). Recent experiments in our lab have demonstrated that the basolateral amygdala, like the hippocampus, receives both cholinergic and GABAergic afferents from the BF. These projections arise from neurons in the substantia innominata (SI) and ventral pallidum (VP). It remained to be determined, however, whether the amygdala has projections back to the BF that arise from GABAergic non-pyramidal neurons. This question was investigated in the present study by combining Fluorogold (FG) retrograde tract tracing with immunohistochemistry for GABAergic non-pyramidal cell markers, including SOM, CB, NPY, parvalbumin, calretinin, and glutamic acid decarboxylase (GAD). FG injections into the BF produced a diffuse array of retrogradely labeled neurons in many nuclei of the amygdala. The great majority of amygdalar FG+ neurons did not express non-pyramidal cell markers. However, a subpopulation of non-pyramidal SOM+ neurons, termed "long-range non-pyramidal neurons" (LRNP neurons), in the external capsule, basolateral amygdala, and cortical and medial amygdalar nuclei were FG+. About one-third of the SOM+ LRNP neurons were CB+ or NPY+, and one-half were GAD+. It remains to be determined if these inhibitory amygdalar projections to the BF, like those from the hippocampus, are important for regulating synchronous oscillations in the amygdalar-BF network.

19.
Psychoneuroendocrinology ; 36(9): 1312-26, 2011 Oct.
Article in English | MEDLINE | ID: mdl-21481539

ABSTRACT

Activation of corticotrophin releasing factor (CRF) neurons in the paraventricular nucleus of the hypothalamus (PVN) is necessary for establishing the classic endocrine response to stress, while activation of forebrain CRF neurons mediates affective components of the stress response. Previous studies have reported that mRNA for CRF2 receptor (CRFR2) is expressed in the bed nucleus of the stria terminalis (BNST) as well as hypothalamic nuclei, but little is known about the localization and cellular distribution of CRFR2 in these regions. Using immunofluorescence with confocal microscopy, as well as electron microscopy, we demonstrate that in the BNST CRFR2-immunoreactive fibers represent moderate to strong labeling on axons terminals. Dual-immunofluorescence demonstrated that CRFR2-fibers co-localize oxytocin (OT), but not arginine-vasopressin (AVP), and make perisomatic contacts with CRF neurons. Dual-immunofluorescence and single cell RT-PCR demonstrate that in the hypothalamus, CRFR2 immunoreactivity and mRNA are found in OT, but not in CRF or AVP-neurons. Furthermore, CRF neurons of the PVN and BNST express mRNA for the oxytocin receptor, while the majority of OT/CRFR2 neurons in the hypothalamus do not. Finally, using adenoviral-based anterograde tracing of PVN neurons, we show that OT/CRFR2-immunoreactive fibers observed in the BNST originate in the PVN. Our results strongly suggest that CRFR2 located on oxytocinergic neurons and axon terminals might regulate the release of this neuropeptide and hence might be a crucial part of potential feedback loop between the hypothalamic oxytocin system and the forebrain CRF system that could significantly impact affective and social behaviors, in particular during times of stress.


Subject(s)
Affect/physiology , Corticotropin-Releasing Hormone/metabolism , Feedback, Physiological/physiology , Hypothalamus/metabolism , Oxytocin/metabolism , Septal Nuclei/metabolism , Stress, Psychological/metabolism , Affect/drug effects , Animals , Arginine Vasopressin/metabolism , Colchicine/administration & dosage , Colchicine/pharmacology , Feedback, Physiological/drug effects , Homeostasis/drug effects , Homeostasis/physiology , Hypothalamus/drug effects , Hypothalamus/physiology , Injections, Intraventricular , Male , Neuroanatomy , Neurons/metabolism , Rats , Rats, Sprague-Dawley , Receptors, Corticotropin-Releasing Hormone/metabolism , Septal Nuclei/drug effects , Septal Nuclei/physiology , Stress, Psychological/physiopathology
20.
J Comp Neurol ; 519(4): 790-805, 2011 Mar 01.
Article in English | MEDLINE | ID: mdl-21246555

ABSTRACT

The basolateral nucleus of the amygdala receives an extremely dense cholinergic innervation from the basal forebrain that is critical for memory consolidation. Although previous electron microscopic studies determined some of the postsynaptic targets of cholinergic afferents, the majority of postsynaptic structures were dendritic shafts whose neurons of origin were not identified. To make this determination, the present study analyzed the cholinergic innervation of the anterior subdivision of the basolateral amygdalar nucleus (BLa) of the rat using electron microscopic dual-labeling immunocytochemistry. The vesicular acetylcholine transporter (VAChT) was used as a marker for cholinergic terminals; calcium/calmodulin-dependent protein kinase II (CaMK) was used as a marker for pyramidal cells, the principal neurons of the BLa; and parvalbumin (PV) was used as a marker for the predominant interneuronal subpopulation in this nucleus. VAChT(+) terminals were visualized by using diaminobenzidine as a chromogen, whereas CAMK(+) or PV(+) neurons were visualized with Vector very intense purple (VIP) as a chromogen. Quantitative analyses revealed that the great majority of dendritic shafts receiving cholinergic inputs were CAMK(+) , indicating that they were of pyramidal cell origin. In fact, 89% of the postsynaptic targets of cholinergic terminals in the BLa were pyramidal cells, including perikarya (3%), dendritic shafts (47%), and dendritic spines (39%). PV(+) structures, including perikarya and dendrites, constituted 7% of the postsynaptic targets of cholinergic axon terminals. The cholinergic innervation of both pyramidal cells and PV(+) interneurons may constitute an anatomical substrate for the generation of oscillatory activity involved in memory consolidation by the BLa.


Subject(s)
Acetylcholine/metabolism , Amygdala/cytology , Interneurons/metabolism , Interneurons/ultrastructure , Parvalbumins/metabolism , Pyramidal Cells/metabolism , Pyramidal Cells/ultrastructure , Animals , Biomarkers/metabolism , Immunohistochemistry/methods , Male , Microscopy, Immunoelectron/methods , Presynaptic Terminals/metabolism , Presynaptic Terminals/ultrastructure , Rats , Rats, Sprague-Dawley , Vesicular Acetylcholine Transport Proteins/metabolism
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