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1.
Proc Natl Acad Sci U S A ; 119(33): e2121040119, 2022 08 16.
Article in English | MEDLINE | ID: mdl-35943986

ABSTRACT

Regulation of firing rate homeostasis constitutes a fundamental property of central neural circuits. While intracellular Ca2+ has long been hypothesized to be a feedback control signal, the molecular machinery enabling a network-wide homeostatic response remains largely unknown. We show that deletion of insulin-like growth factor-1 receptor (IGF-1R) limits firing rate homeostasis in response to inactivity, without altering the distribution of baseline firing rates. The deficient firing rate homeostatic response was due to disruption of both postsynaptic and intrinsic plasticity. At the cellular level, we detected a fraction of IGF-1Rs in mitochondria, colocalized with the mitochondrial calcium uniporter complex (MCUc). IGF-1R deletion suppressed transcription of the MCUc members and burst-evoked mitochondrial Ca2+ (mitoCa2+) by weakening mitochondria-to-cytosol Ca2+ coupling. Overexpression of either mitochondria-targeted IGF-1R or MCUc in IGF-1R-deficient neurons was sufficient to rescue the deficits in burst-to-mitoCa2+ coupling and firing rate homeostasis. Our findings indicate that mitochondrial IGF-1R is a key regulator of the integrated homeostatic response by tuning the reliability of burst transfer by MCUc. Based on these results, we propose that MCUc acts as a homeostatic Ca2+ sensor. Faulty activation of MCUc may drive dysregulation of firing rate homeostasis in aging and in brain disorders associated with aberrant IGF-1R/MCUc signaling.


Subject(s)
Calcium Channels , Calcium , Receptor, IGF Type 1 , Animals , Calcium/metabolism , Calcium Channels/genetics , Calcium Channels/metabolism , Gene Deletion , Homeostasis , Mice , Neuronal Plasticity , Receptor, IGF Type 1/genetics , Receptor, IGF Type 1/metabolism , Reproducibility of Results
2.
Cell Rep ; 38(3): 110268, 2022 01 18.
Article in English | MEDLINE | ID: mdl-35045289

ABSTRACT

Dysregulated homeostasis of neural activity has been hypothesized to drive Alzheimer's disease (AD) pathogenesis. AD begins with a decades-long presymptomatic phase, but whether homeostatic mechanisms already begin failing during this silent phase is unknown. We show that before the onset of memory decline and sleep disturbances, familial AD (fAD) model mice display no deficits in CA1 mean firing rate (MFR) during active wakefulness. However, homeostatic down-regulation of CA1 MFR is disrupted during non-rapid eye movement (NREM) sleep and general anesthesia in fAD mouse models. The resultant hyperexcitability is attenuated by the mitochondrial dihydroorotate dehydrogenase (DHODH) enzyme inhibitor, which tunes MFR toward lower set-point values. Ex vivo fAD mutations impair downward MFR homeostasis, resulting in pathological MFR set points in response to anesthetic drug and inhibition blockade. Thus, firing rate dyshomeostasis of hippocampal circuits is masked during active wakefulness but surfaces during low-arousal brain states, representing an early failure of the silent disease stage.


Subject(s)
Alzheimer Disease/physiopathology , Neural Pathways/physiopathology , Sleep/physiology , Wakefulness/physiology , Anesthesia, General , Animals , Disease Models, Animal , Mice , Unconsciousness/chemically induced , Unconsciousness/physiopathology
3.
Science ; 374(6566): eaba9584, 2021 Oct 22.
Article in English | MEDLINE | ID: mdl-34672724

ABSTRACT

Social interactions occur in group settings and are mediated by communication signals that are exchanged between individuals, often using vocalizations. The neural representation of group social communication remains largely unexplored. We conducted simultaneous wireless electrophysiological recordings from the frontal cortices of groups of Egyptian fruit bats engaged in both spontaneous and task-induced vocal interactions. We found that the activity of single neurons distinguished between vocalizations produced by self and by others, as well as among specific individuals. Coordinated neural activity among group members exhibited stable bidirectional interbrain correlation patterns specific to spontaneous communicative interactions. Tracking social and spatial arrangements within a group revealed a relationship between social preferences and intra- and interbrain activity patterns. Combined, these findings reveal a dedicated neural repertoire for group social communication within and across the brains of freely communicating groups of bats.


Subject(s)
Chiroptera/physiology , Echolocation , Frontal Lobe/physiology , Social Behavior , Vocalization, Animal , Animals , Chiroptera/psychology , Diencephalon/physiology , Female , Male , Social Interaction
4.
J Neurosci ; 40(19): 3694-3706, 2020 05 06.
Article in English | MEDLINE | ID: mdl-32277041

ABSTRACT

Persistent alterations in neuronal activity elicit homeostatic plastic changes in synaptic transmission and/or intrinsic excitability. However, it is unknown whether these homeostatic processes operate in concert or at different temporal scales to maintain network activity around a set-point value. Here we show that chronic neuronal hyperactivity, induced by M-channel inhibition, triggered intrinsic and synaptic homeostatic plasticity at different timescales in cultured hippocampal pyramidal neurons from mice of either sex. Homeostatic changes of intrinsic excitability occurred at a fast timescale (1-4 h) and depended on ongoing spiking activity. This fast intrinsic adaptation included plastic changes in the threshold current and a distal relocation of FGF14, a protein physically bridging Nav1.6 and Kv7.2 channels along the axon initial segment. In contrast, synaptic adaptations occurred at a slower timescale (∼2 d) and involved decreases in miniature EPSC amplitude. To examine how these temporally distinct homeostatic responses influenced hippocampal network activity, we quantified the rate of spontaneous spiking measured by multielectrode arrays at extended timescales. M-Channel blockade triggered slow homeostatic renormalization of the mean firing rate (MFR), concomitantly accompanied by a slow synaptic adaptation. Thus, the fast intrinsic adaptation of excitatory neurons is not sufficient to account for the homeostatic normalization of the MFR. In striking contrast, homeostatic adaptations of intrinsic excitability and spontaneous MFR failed in hippocampal GABAergic inhibitory neurons, which remained hyperexcitable following chronic M-channel blockage. Our results indicate that a single perturbation such as M-channel inhibition triggers multiple homeostatic mechanisms that operate at different timescales to maintain network mean firing rate.SIGNIFICANCE STATEMENT Persistent alterations in synaptic input elicit homeostatic plastic changes in neuronal activity. Here we show that chronic neuronal hyperexcitability, induced by M-type potassium channel inhibition, triggered intrinsic and synaptic homeostatic plasticity at different timescales in hippocampal excitatory neurons. The data indicate that the fast adaptation of intrinsic excitability depends on ongoing spiking activity but is not sufficient to provide homeostasis of the mean firing rate. Our results show that a single perturbation such as M-channel inhibition can trigger multiple homeostatic processes that operate at different timescales to maintain network mean firing rate.


Subject(s)
Hippocampus/physiology , Homeostasis/physiology , Neuronal Plasticity/physiology , Pyramidal Cells/physiology , Synaptic Transmission/physiology , Animals , Female , Male , Mice , Mice, Inbred BALB C , Potassium Channels/metabolism
5.
Neuron ; 102(5): 1009-1024.e8, 2019 06 05.
Article in English | MEDLINE | ID: mdl-31047779

ABSTRACT

Maintaining average activity within a set-point range constitutes a fundamental property of central neural circuits. However, whether and how activity set points are regulated remains unknown. Integrating genome-scale metabolic modeling and experimental study of neuronal homeostasis, we identified mitochondrial dihydroorotate dehydrogenase (DHODH) as a regulator of activity set points in hippocampal networks. The DHODH inhibitor teriflunomide stably suppressed mean firing rates via synaptic and intrinsic excitability mechanisms by modulating mitochondrial Ca2+ buffering and spare respiratory capacity. Bi-directional activity perturbations under DHODH blockade triggered firing rate compensation, while stabilizing firing to the lower level, indicating a change in the firing rate set point. In vivo, teriflunomide decreased CA3-CA1 synaptic transmission and CA1 mean firing rate and attenuated susceptibility to seizures, even in the intractable Dravet syndrome epilepsy model. Our results uncover mitochondria as a key regulator of activity set points, demonstrate the differential regulation of set points and compensatory mechanisms, and propose a new strategy to treat epilepsy.


Subject(s)
Calcium/metabolism , Crotonates/pharmacology , Epilepsies, Myoclonic/metabolism , Hippocampus/drug effects , Mitochondria/drug effects , Oxidoreductases Acting on CH-CH Group Donors/antagonists & inhibitors , Seizures/metabolism , Synapses/drug effects , Synaptic Transmission/drug effects , Toluidines/pharmacology , Animals , CA1 Region, Hippocampal/drug effects , CA1 Region, Hippocampal/metabolism , CA3 Region, Hippocampal/drug effects , CA3 Region, Hippocampal/metabolism , Dihydroorotate Dehydrogenase , Disease Models, Animal , Disease Susceptibility , Gene Knockdown Techniques , Hippocampus/metabolism , Homeostasis , Hydroxybutyrates , Mice , Mitochondria/metabolism , Nitriles , Oxidoreductases Acting on CH-CH Group Donors/genetics , Synapses/metabolism , Synaptic Transmission/genetics
6.
Nat Neurosci ; 21(4): 463-473, 2018 04.
Article in English | MEDLINE | ID: mdl-29403035

ABSTRACT

During recent years, the preclinical stage of Alzheimer's disease (AD) has become a major focus of research. Continued failures in clinical trials and the realization that early intervention may offer better therapeutic outcome triggered a conceptual shift from late-stage AD pathology to early-stage pathophysiology. While much effort has been directed at understanding the factors initiating AD, little is known about the principle basis underlying the disease progression at its early stages. In this Perspective, we suggest a hypothesis to explain the transition from 'silent' signatures of aberrant neural circuit activity to clinically evident memory impairments. Namely, we propose that failures in firing homeostasis and imbalance between firing stability and synaptic plasticity in cortico-hippocampal circuits represent the driving force of early disease progression. We analyze the main types of possible homeostatic failures and provide the essential conceptual framework for examining the causal link between dysregulation of firing homeostasis, aberrant neural circuit activity and memory-related plasticity impairments associated with early AD.


Subject(s)
Action Potentials/physiology , Alzheimer Disease/pathology , Brain/pathology , Homeostasis/physiology , Neuronal Plasticity/physiology , Neurons/physiology , Alzheimer Disease/complications , Animals , Disease Models, Animal , Humans
7.
PLoS Comput Biol ; 11(11): e1004598, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26544551

ABSTRACT

G protein-gated K+ channels (GIRK; Kir3), activated by Gßγ subunits derived from Gi/o proteins, regulate heartbeat and neuronal excitability and plasticity. Both neurotransmitter-evoked (Ievoked) and neurotransmitter-independent basal (Ibasal) GIRK activities are physiologically important, but mechanisms of Ibasal and its relation to Ievoked are unclear. We have previously shown for heterologously expressed neuronal GIRK1/2, and now show for native GIRK in hippocampal neurons, that Ibasal and Ievoked are interrelated: the extent of activation by neurotransmitter (activation index, Ra) is inversely related to Ibasal. To unveil the underlying mechanisms, we have developed a quantitative model of GIRK1/2 function. We characterized single-channel and macroscopic GIRK1/2 currents, and surface densities of GIRK1/2 and Gßγ expressed in Xenopus oocytes. Based on experimental results, we constructed a mathematical model of GIRK1/2 activity under steady-state conditions before and after activation by neurotransmitter. Our model accurately recapitulates Ibasal and Ievoked in Xenopus oocytes, HEK293 cells and hippocampal neurons; correctly predicts the dose-dependent activation of GIRK1/2 by coexpressed Gßγ and fully accounts for the inverse Ibasal-Ra correlation. Modeling indicates that, under all conditions and at different channel expression levels, between 3 and 4 Gßγ dimers are available for each GIRK1/2 channel. In contrast, available Gαi/o decreases from ~2 to less than one Gα per channel as GIRK1/2's density increases. The persistent Gßγ/channel (but not Gα/channel) ratio support a strong association of GIRK1/2 with Gßγ, consistent with recruitment to the cell surface of Gßγ, but not Gα, by GIRK1/2. Our analysis suggests a maximal stoichiometry of 4 Gßγ but only 2 Gαi/o per one GIRK1/2 channel. The unique, unequal association of GIRK1/2 with G protein subunits, and the cooperative nature of GIRK gating by Gßγ, underlie the complex pattern of basal and agonist-evoked activities and allow GIRK1/2 to act as a sensitive bidirectional detector of both Gßγ and Gα.


Subject(s)
G Protein-Coupled Inwardly-Rectifying Potassium Channels/metabolism , GTP-Binding Protein alpha Subunits/metabolism , GTP-Binding Protein beta Subunits/metabolism , Models, Biological , Animals , Computational Biology , Female , G Protein-Coupled Inwardly-Rectifying Potassium Channels/chemistry , GTP-Binding Protein alpha Subunits/chemistry , GTP-Binding Protein beta Subunits/chemistry , HEK293 Cells , Humans , Oocytes/metabolism , Xenopus laevis
8.
Proc Natl Acad Sci U S A ; 112(25): E3291-9, 2015 Jun 23.
Article in English | MEDLINE | ID: mdl-26056260

ABSTRACT

Stabilization of neuronal activity by homeostatic control systems is fundamental for proper functioning of neural circuits. Failure in neuronal homeostasis has been hypothesized to underlie common pathophysiological mechanisms in a variety of brain disorders. However, the key molecules regulating homeostasis in central mammalian neural circuits remain obscure. Here, we show that selective inactivation of GABAB, but not GABA(A), receptors impairs firing rate homeostasis by disrupting synaptic homeostatic plasticity in hippocampal networks. Pharmacological GABA(B) receptor (GABA(B)R) blockade or genetic deletion of the GB(1a) receptor subunit disrupts homeostatic regulation of synaptic vesicle release. GABA(B)Rs mediate adaptive presynaptic enhancement to neuronal inactivity by two principle mechanisms: First, neuronal silencing promotes syntaxin-1 switch from a closed to an open conformation to accelerate soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) complex assembly, and second, it boosts spike-evoked presynaptic calcium flux. In both cases, neuronal inactivity removes tonic block imposed by the presynaptic, GB(1a)-containing receptors on syntaxin-1 opening and calcium entry to enhance probability of vesicle fusion. We identified the GB(1a) intracellular domain essential for the presynaptic homeostatic response by tuning intermolecular interactions among the receptor, syntaxin-1, and the Ca(V)2.2 channel. The presynaptic adaptations were accompanied by scaling of excitatory quantal amplitude via the postsynaptic, GB(1b)-containing receptors. Thus, GABA(B)Rs sense chronic perturbations in GABA levels and transduce it to homeostatic changes in synaptic strength. Our results reveal a novel role for GABA(B)R as a key regulator of population firing stability and propose that disruption of homeostatic synaptic plasticity may underlie seizure's persistence in the absence of functional GABA(B)Rs.


Subject(s)
Hippocampus/physiology , Homeostasis , Neurons/metabolism , Receptors, GABA-B/metabolism , Animals , Cells, Cultured , Evoked Potentials , Hippocampus/cytology , Mice , Mice, Inbred BALB C
9.
Elife ; 42015 Jan 03.
Article in English | MEDLINE | ID: mdl-25556699

ABSTRACT

Neuronal circuits' ability to maintain the delicate balance between stability and flexibility in changing environments is critical for normal neuronal functioning. However, to what extent individual neurons and neuronal populations maintain internal firing properties remains largely unknown. In this study, we show that distributions of spontaneous population firing rates and synchrony are subject to accurate homeostatic control following increase of synaptic inhibition in cultured hippocampal networks. Reduction in firing rate triggered synaptic and intrinsic adaptive responses operating as global homeostatic mechanisms to maintain firing macro-stability, without achieving local homeostasis at the single-neuron level. Adaptive mechanisms, while stabilizing population firing properties, reduced short-term facilitation essential for synaptic discrimination of input patterns. Thus, invariant ongoing population dynamics emerge from intrinsically unstable activity patterns of individual neurons and synapses. The observed differences in the precision of homeostatic control at different spatial scales challenge cell-autonomous theory of network homeostasis and suggest the existence of network-wide regulation rules.


Subject(s)
Action Potentials/physiology , Hippocampus/physiology , Nerve Net/physiology , Neurons/physiology , Animals , Calcium/metabolism , Excitatory Postsynaptic Potentials , Homeostasis , Mice, Inbred BALB C , Neural Inhibition/physiology , Receptors, AMPA/metabolism , Receptors, GABA/metabolism , Synapses/physiology , Time Factors
10.
J Physiol ; 592(24): 5373-90, 2014 Dec 15.
Article in English | MEDLINE | ID: mdl-25384780

ABSTRACT

The G-protein coupled inwardly rectifying potassium (GIRK, or Kir3) channels are important mediators of inhibitory neurotransmission via activation of G-protein coupled receptors (GPCRs). GIRK channels are tetramers comprising combinations of subunits (GIRK1-4), activated by direct binding of the Gßγ subunit of Gi/o proteins. Heterologously expressed GIRK1/2 exhibit high, Gßγ-dependent basal currents (Ibasal) and a modest activation by GPCR or coexpressed Gßγ. Inversely, the GIRK2 homotetramers exhibit low Ibasal and strong activation by Gßγ. The high Ibasal of GIRK1 seems to be associated with its unique distal C terminus (G1-dCT), which is not present in the other subunits. We investigated the role of G1-dCT using electrophysiological and fluorescence assays in Xenopus laevis oocytes and protein interaction assays. We show that expression of GIRK1/2 increases the plasma membrane level of coexpressed Gßγ (a phenomenon we term 'Gßγ recruitment') but not of coexpressed Gαi3. All GIRK1-containing channels, but not GIRK2 homomers, recruited Gßγ to the plasma membrane. In biochemical assays, truncation of G1-dCT reduces the binding between the cytosolic parts of GIRK1 and Gßγ, but not Gαi3. Nevertheless, the truncation of G1-dCT does not impair activation by Gßγ. In fluorescently labelled homotetrameric GIRK1 channels and in the heterotetrameric GIRK1/2 channel, the truncation of G1-dCT abolishes Gßγ recruitment and decreases Ibasal. Thus, we conclude that G1-dCT carries an essential role in Gßγ recruitment by GIRK1 and, consequently, in determining its high basal activity. Our results indicate that G1-dCT is a crucial part of a Gßγ anchoring site of GIRK1-containing channels, spatially and functionally distinct from the site of channel activation by Gßγ.


Subject(s)
G Protein-Coupled Inwardly-Rectifying Potassium Channels/metabolism , GTP-Binding Protein beta Subunits/metabolism , GTP-Binding Protein gamma Subunits/metabolism , Amino Acid Sequence , Animals , Cell Membrane/metabolism , G Protein-Coupled Inwardly-Rectifying Potassium Channels/chemistry , G Protein-Coupled Inwardly-Rectifying Potassium Channels/genetics , Ion Channel Gating , Mice , Molecular Sequence Data , Protein Binding , Protein Multimerization , Protein Structure, Tertiary , Protein Subunits/chemistry , Protein Subunits/genetics , Protein Subunits/metabolism , Protein Transport , Xenopus
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