Your browser doesn't support javascript.
loading
: 20 | 50 | 100
1 - 20 de 5.116
1.
Elife ; 132024 May 15.
Article En | MEDLINE | ID: mdl-38748470

Acetylcholine is widely believed to modulate the release of dopamine in the striatum of mammals. Experiments in brain slices clearly show that synchronous activation of striatal cholinergic interneurons is sufficient to drive dopamine release via axo-axonal stimulation of nicotinic acetylcholine receptors. However, evidence for this mechanism in vivo has been less forthcoming. Mohebi, Collins and Berke recently reported that, in awake behaving rats, optogenetic activation of striatal cholinergic interneurons with blue light readily evokes dopamine release measured with the red fluorescent sensor RdLight1 (Mohebi et al., 2023). Here, we show that blue light alone alters the fluorescent properties of RdLight1 in a manner that may be misconstrued as phasic dopamine release, and that this artefactual photoactivation can account for the effects attributed to cholinergic interneurons. Our findings indicate that measurements of dopamine using the red-shifted fluorescent sensor RdLight1 should be interpreted with caution when combined with optogenetics. In light of this and other publications that did not observe large acetylcholine-evoked dopamine transients in vivo, the conditions under which such release occurs in behaving animals remain unknown.


Cholinergic Neurons , Dopamine , Interneurons , Optogenetics , Dopamine/metabolism , Animals , Interneurons/metabolism , Interneurons/physiology , Cholinergic Neurons/metabolism , Cholinergic Neurons/physiology , Rats , Optogenetics/methods , Motivation , Nucleus Accumbens/metabolism , Nucleus Accumbens/physiology , Acetylcholine/metabolism
2.
Nat Commun ; 15(1): 4013, 2024 May 13.
Article En | MEDLINE | ID: mdl-38740778

Elucidating the neural basis of fear allows for more effective treatments for maladaptive fear often observed in psychiatric disorders. Although the basal forebrain (BF) has an essential role in fear learning, its function in fear expression and the underlying neuronal and circuit substrates are much less understood. Here we report that BF glutamatergic neurons are robustly activated by social stimulus following social fear conditioning in male mice. And cell-type-specific inhibition of those excitatory neurons largely reduces social fear expression. At the circuit level, BF glutamatergic neurons make functional contacts with the lateral habenula (LHb) neurons and these connections are potentiated in conditioned mice. Moreover, optogenetic inhibition of BF-LHb glutamatergic pathway significantly reduces social fear responses. These data unravel an important function of the BF in fear expression via its glutamatergic projection onto the LHb, and suggest that selective targeting BF-LHb excitatory circuitry could alleviate maladaptive fear in relevant disorders.


Basal Forebrain , Fear , Habenula , Neurons , Animals , Habenula/physiology , Male , Fear/physiology , Basal Forebrain/physiology , Basal Forebrain/metabolism , Mice , Neurons/physiology , Neurons/metabolism , Optogenetics , Mice, Inbred C57BL , Social Behavior , Behavior, Animal/physiology , Neural Pathways/physiology , Glutamic Acid/metabolism , Conditioning, Classical/physiology
3.
Biotechnol J ; 19(5): e2400023, 2024 May.
Article En | MEDLINE | ID: mdl-38719589

The discovery of antibiotics has noticeably promoted the development of human civilization; however, antibiotic resistance in bacteria caused by abusing and overusing greatly challenges human health and food safety. Considering the worsening situation, it is an urgent demand to develop emerging nontraditional technologies or methods to address this issue. With the expanding of synthetic biology, optogenetics exhibits a tempting prospect for precisely regulating gene expression in many fields. Consequently, it is attractive to employ optogenetics to reduce the risk of antibiotic resistance. Here, a blue light-controllable gene expression system was established in Escherichia coli based on a photosensitive DNA-binding protein (EL222). Further, this strategy was successfully applied to repress the expression of ß-lactamase gene (bla) using blue light illumination, resulting a dramatic reduction of ampicillin resistance in engineered E. coli. Moreover, blue light was utilized to induce the expression of the mechanosensitive channel of large conductance (MscL), triumphantly leading to the increase of streptomycin susceptibility in engineered E. coli. Finally, the increased susceptibility of ampicillin and streptomycin was simultaneously induced by blue light in the same E. coli cell, revealing the excellent potential of this strategy in controlling multidrug-resistant (MDR) bacteria. As a proof of concept, our work demonstrates that light can be used as an alternative tool to prolong the use period of common antibiotics without developing new antibiotics. And this novel strategy based on optogenetics shows a promising foreground to combat antibiotic resistance in the future.


Anti-Bacterial Agents , Escherichia coli , Light , Escherichia coli/genetics , Escherichia coli/drug effects , Escherichia coli/metabolism , Anti-Bacterial Agents/pharmacology , Optogenetics/methods , Gene Expression Regulation, Bacterial/drug effects , Ampicillin/pharmacology , beta-Lactamases/genetics , beta-Lactamases/metabolism , Drug Resistance, Bacterial/genetics , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Streptomycin/pharmacology , Blue Light
4.
Proc Natl Acad Sci U S A ; 121(20): e2319641121, 2024 May 14.
Article En | MEDLINE | ID: mdl-38709918

One of the largest sex differences in brain neurochemistry is the expression of the neuropeptide arginine vasopressin (AVP) within the vertebrate brain, with males having more AVP cells in the bed nucleus of the stria terminalis (BNST) than females. Despite the long-standing implication of AVP in social and anxiety-like behaviors, the circuitry underlying AVP's control of these behaviors is still not well defined. Using optogenetic approaches, we show that inhibiting AVP BNST cells reduces social investigation in males, but not in females, whereas stimulating these cells increases social investigation in both sexes, but more so in males. These cells may facilitate male social investigation through their projections to the lateral septum (LS), an area with the highest density of sexually differentiated AVP innervation in the brain, as optogenetic stimulation of BNST AVP → LS increased social investigation and anxiety-like behavior in males but not in females; the same stimulation also caused a biphasic response of LS cells ex vivo. Blocking the vasopressin 1a receptor (V1aR) in the LS eliminated all these responses. Together, these findings establish a sexually differentiated role for BNST AVP cells in the control of social investigation and anxiety-like behavior, likely mediated by their projections to the LS.


Anxiety , Arginine Vasopressin , Receptors, Vasopressin , Septal Nuclei , Social Behavior , Animals , Male , Female , Anxiety/metabolism , Mice , Septal Nuclei/metabolism , Septal Nuclei/physiology , Arginine Vasopressin/metabolism , Receptors, Vasopressin/metabolism , Receptors, Vasopressin/genetics , Sex Characteristics , Optogenetics , Behavior, Animal/physiology , Vasopressins/metabolism , Mice, Inbred C57BL , Neurons/metabolism , Neurons/physiology
5.
Open Biol ; 14(4): 240001, 2024 Apr.
Article En | MEDLINE | ID: mdl-38653331

Autophagy is a double-edged sword for cells; it can lead to both cell survival and death. Calcium (Ca2+) signalling plays a crucial role in regulating various cellular behaviours, including cell migration, proliferation and death. In this study, we investigated the effects of modulating cytosolic Ca2+ levels on autophagy using chemical and optogenetic methods. Our findings revealed that ionomycin and thapsigargin induce Ca2+ influx to promote autophagy, whereas the Ca2+ chelator BAPTA-AM induces Ca2+ depletion and inhibits autophagy. Furthermore, the optogenetic platform allows the manipulation of illumination parameters, including density, frequency, duty cycle and duration, to create different patterns of Ca2+ oscillations. We used the optogenetic tool Ca2+-translocating channelrhodopsin, which is activated and opened by 470 nm blue light to induce Ca2+ influx. These results demonstrated that high-frequency Ca2+ oscillations induce autophagy. In addition, autophagy induction may involve Ca2+-activated adenosine monophosphate (AMP)-activated protein kinases. In conclusion, high-frequency optogenetic Ca2+ oscillations led to cell death mediated by AMP-activated protein kinase-induced autophagy.


AMP-Activated Protein Kinases , Autophagy , Calcium , Optogenetics , AMP-Activated Protein Kinases/metabolism , Calcium/metabolism , Calcium Signaling , Enzyme Activation , Ionomycin/pharmacology , Optogenetics/methods , Thapsigargin/pharmacology
6.
Nature ; 629(8011): 450-457, 2024 May.
Article En | MEDLINE | ID: mdl-38658753

Three-dimensional organoid culture technologies have revolutionized cancer research by allowing for more realistic and scalable reproductions of both tumour and microenvironmental structures1-3. This has enabled better modelling of low-complexity cancer cell behaviours that occur over relatively short periods of time4. However, available organoid systems do not capture the intricate evolutionary process of cancer development in terms of tissue architecture, cell diversity, homeostasis and lifespan. As a consequence, oncogenesis and tumour formation studies are not possible in vitro and instead require the extensive use of animal models, which provide limited spatiotemporal resolution of cellular dynamics and come at a considerable cost in terms of resources and animal lives. Here we developed topobiologically complex mini-colons that are able to undergo tumorigenesis ex vivo by integrating microfabrication, optogenetic and tissue engineering approaches. With this system, tumorigenic transformation can be spatiotemporally controlled by directing oncogenic activation through blue-light exposure, and emergent colon tumours can be tracked in real-time at the single-cell resolution for several weeks without breaking the culture. These induced mini-colons display rich intratumoural and intertumoural diversity and recapitulate key pathophysiological hallmarks displayed by colorectal tumours in vivo. By fine-tuning cell-intrinsic and cell-extrinsic parameters, mini-colons can be used to identify tumorigenic determinants and pharmacological opportunities. As a whole, our study paves the way for cancer initiation research outside living organisms.


Carcinogenesis , Colon , Colorectal Neoplasms , Organoids , Organoids/pathology , Organoids/cytology , Animals , Colorectal Neoplasms/pathology , Carcinogenesis/pathology , Mice , Colon/pathology , Colon/cytology , Humans , Female , Optogenetics , Single-Cell Analysis , Tissue Engineering/methods , Cell Transformation, Neoplastic/pathology , Male , Light , Spatio-Temporal Analysis , Time Factors , Tumor Microenvironment
7.
Neurobiol Learn Mem ; 211: 107925, 2024 May.
Article En | MEDLINE | ID: mdl-38579895

Our previous studies found that the central amygdala (CeA) modulates cerebellum-dependent eyeblink conditioning (EBC) using muscimol inactivation. We also found that CeA inactivation decreases cerebellar neuronal activity during the conditional stimulus (CS) from the start of training. Based on these findings, we hypothesized that the CeA facilitates CS input to the cerebellum. The current study tested the CS facilitation hypothesis using optogenetic inhibition with archaerhodopsin (Arch) and excitation with channelrhodopsin (ChR2) of the CeA during EBC in male rats. Optogenetic manipulations were administered during the 400 ms tone CS or during a 400 ms pre-CS period. As predicted by the CS facilitation hypothesis CeA inhibition during the CS impaired EBC and CeA excitation during the CS facilitated EBC. Unexpectedly, CeA inhibition just prior to the CS also impaired EBC, while CeA excitation during the pre-CS pathway did not facilitate EBC. The results suggest that the CeA contributes to CS facilitation and vigilance during the pre-CS period. These putative functions of the CeA may be mediated through separate output pathways from the CeA to the cerebellum.


Central Amygdaloid Nucleus , Cerebellum , Conditioning, Eyelid , Optogenetics , Animals , Male , Cerebellum/physiology , Cerebellum/drug effects , Central Amygdaloid Nucleus/physiology , Central Amygdaloid Nucleus/drug effects , Conditioning, Eyelid/physiology , Conditioning, Eyelid/drug effects , Rats , Rats, Long-Evans , Conditioning, Classical/physiology , Conditioning, Classical/drug effects
8.
PLoS Biol ; 22(4): e3002591, 2024 Apr.
Article En | MEDLINE | ID: mdl-38652732

Lysosomes are degradation centers of cells and intracellular hubs of signal transduction, nutrient sensing, and autophagy regulation. Dysfunction of lysosomes contributes to a variety of diseases, such as lysosomal storage diseases (LSDs) and neurodegeneration, but the mechanisms are not well understood. Altering lysosomal activity and examining its impact on the occurrence and development of disease is an important strategy for studying lysosome-related diseases. However, methods to dynamically regulate lysosomal function in living cells or animals are still lacking. Here, we constructed lysosome-localized optogenetic actuators, named lyso-NpHR3.0, lyso-ArchT, and lyso-ChR2, to achieve optogenetic manipulation of lysosomes. These new actuators enable light-dependent control of lysosomal membrane potential, pH, hydrolase activity, degradation, and Ca2+ dynamics in living cells. Notably, lyso-ChR2 activation induces autophagy through the mTOR pathway, promotes Aß clearance in an autophagy-dependent manner in cellular models, and alleviates Aß-induced paralysis in the Caenorhabditis elegans model of Alzheimer's disease. Our lysosomal optogenetic actuators supplement the optogenetic toolbox and provide a method to dynamically regulate lysosomal physiology and function in living cells and animals.


Amyloid beta-Peptides , Autophagy , Caenorhabditis elegans , Lysosomes , Optogenetics , Lysosomes/metabolism , Autophagy/physiology , Optogenetics/methods , Animals , Caenorhabditis elegans/metabolism , Caenorhabditis elegans/physiology , Amyloid beta-Peptides/metabolism , Humans , Alzheimer Disease/metabolism , Alzheimer Disease/genetics , Calcium/metabolism , TOR Serine-Threonine Kinases/metabolism , Hydrogen-Ion Concentration , HEK293 Cells , HeLa Cells
9.
Sci Signal ; 17(833): eabn8003, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38652763

Inflammasomes are multiprotein platforms that control caspase-1 activation, which process the inactive precursor forms of the inflammatory cytokines IL-1ß and IL-18, leading to an inflammatory type of programmed cell death called pyroptosis. Studying inflammasome-driven processes, such as pyroptosis-induced cell swelling, under controlled conditions remains challenging because the signals that activate pyroptosis also stimulate other signaling pathways. We designed an optogenetic approach using a photo-oligomerizable inflammasome core adapter protein, apoptosis-associated speck-like containing a caspase recruitment domain (ASC), to temporally and quantitatively manipulate inflammasome activation. We demonstrated that inducing the light-sensitive oligomerization of ASC was sufficient to recapitulate the classical features of inflammasomes within minutes. This system showed that there were two phases of cell swelling during pyroptosis. This approach offers avenues for biophysical investigations into the intricate nature of cellular volume control and plasma membrane rupture during cell death.


CARD Signaling Adaptor Proteins , Inflammasomes , Optogenetics , Pyroptosis , Inflammasomes/metabolism , Optogenetics/methods , Animals , Humans , CARD Signaling Adaptor Proteins/metabolism , CARD Signaling Adaptor Proteins/genetics , Mice , Caspase 1/metabolism , Caspase 1/genetics , Interleukin-1beta/metabolism , Interleukin-1beta/genetics
10.
Cell Rep ; 43(4): 113986, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38598336

Layer 5 neurons of the neocortex receive their principal inputs from layer 2/3 neurons. We seek to identify the nature and extent of the plasticity of these projections with motor learning. Using optogenetic and viral intersectional tools to selectively stimulate distinct neuronal subsets in rat primary motor cortex, we simultaneously record from pairs of corticospinal neurons associated with distinct features of motor output control: distal forelimb vs. proximal forelimb. Activation of Channelrhodopsin2-expressing layer 2/3 afferents onto layer 5 in untrained animals produces greater monosynaptic excitation of neurons controlling the proximal forelimb. Following skilled grasp training, layer 2/3 inputs onto corticospinal neurons controlling the distal forelimb associated with skilled grasping become significantly stronger. Moreover, peak excitatory response amplitude nearly doubles while latency shortens, and excitatory-to-inhibitory latencies become significantly prolonged. These findings demonstrate distinct, highly segregated, and cell-specific plasticity of layer 2/3 projections during skilled grasp motor learning.


Forelimb , Motor Cortex , Neuronal Plasticity , Animals , Forelimb/physiology , Neuronal Plasticity/physiology , Motor Cortex/physiology , Motor Cortex/cytology , Rats , Learning/physiology , Hand Strength/physiology , Neurons/physiology , Male , Pyramidal Tracts/physiology , Motor Skills/physiology , Female , Optogenetics , Rats, Long-Evans
11.
Cell Rep ; 43(4): 114097, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38613783

The rodent medial prefrontal cortex (mPFC) is functionally organized across the dorsoventral axis, where dorsal and ventral subregions promote and suppress fear, respectively. As the ventral-most subregion, the dorsal peduncular cortex (DP) is hypothesized to function in fear suppression. However, this role has not been explicitly tested. Here, we demonstrate that the DP paradoxically functions as a fear-encoding brain region and plays a minimal role in fear suppression. By using multimodal analyses, we demonstrate that DP neurons exhibit fear-learning-related plasticity and acquire cue-associated activity across learning and memory retrieval and that DP neurons activated by fear memory acquisition are preferentially reactivated upon fear memory retrieval. Further, optogenetic activation and silencing of DP fear-related neural ensembles drive the promotion and suppression of freezing, respectively. Overall, our results suggest that the DP plays a role in fear memory encoding. Moreover, our findings redefine our understanding of the functional organization of the rodent mPFC.


Fear , Memory , Prefrontal Cortex , Animals , Fear/physiology , Memory/physiology , Mice , Prefrontal Cortex/physiology , Male , Mice, Inbred C57BL , Neurons/physiology , Optogenetics
12.
Nat Commun ; 15(1): 3141, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38653975

Brightness illusions are a powerful tool in studying vision, yet their neural correlates are poorly understood. Based on a human paradigm, we presented illusory drifting gratings to mice. Primary visual cortex (V1) neurons responded to illusory gratings, matching their direction selectivity for real gratings, and they tracked the spatial phase offset between illusory and real gratings. Illusion responses were delayed compared to real gratings, in line with the theory that processing illusions requires feedback from higher visual areas (HVAs). We provide support for this theory by showing a reduced V1 response to illusions, but not real gratings, following HVAs optogenetic inhibition. Finally, we used the pupil response (PR) as an indirect perceptual report and showed that the mouse PR matches the human PR to perceived luminance changes. Our findings resolve debates over whether V1 neurons are involved in processing illusions and highlight the involvement of feedback from HVAs.


Neurons , Optogenetics , Photic Stimulation , Primary Visual Cortex , Animals , Neurons/physiology , Primary Visual Cortex/physiology , Mice , Male , Humans , Female , Visual Perception/physiology , Illusions/physiology , Optical Illusions/physiology , Mice, Inbred C57BL , Pupil/physiology , Visual Cortex/physiology , Visual Cortex/cytology
13.
J Neural Eng ; 21(3)2024 May 03.
Article En | MEDLINE | ID: mdl-38653250

Objective.This paper aims to bridge the gap between neurophysiology and automatic control methodologies by redefining the Wilson-Cowan (WC) model as a control-oriented linear parameter-varying (LPV) system. A novel approach is presented that allows for the application of a control strategy to modulate and track neural activity.Approach.The WC model is redefined as a control-oriented LPV system in this study. The LPV modelling framework is leveraged to design an LPV controller, which is used to regulate and manipulate neural dynamics.Main results.Promising outcomes, in understanding and controlling neural processes through the synergistic combination of control-oriented modelling and estimation, are obtained in this study. An LPV controller demonstrates to be effective in regulating neural activity.Significance.The presented methodology effectively induces neural patterns, taking into account optogenetic actuation. The combination of control strategies with neurophysiology provides valuable insights into neural dynamics. The proposed approach opens up new possibilities for using control techniques to study and influence brain functions, which can have key implications in neuroscience and medicine. By means of a model-based controller which accounts for non-linearities, noise and uncertainty, neural signals can be induced on brain structures.


Models, Neurological , Optogenetics , Optogenetics/methods , Neurons/physiology , Humans , Brain/physiology , Animals , Linear Models , Computer Simulation , Action Potentials/physiology
14.
Nat Neurosci ; 27(5): 940-951, 2024 May.
Article En | MEDLINE | ID: mdl-38565684

Supervised learning depends on instructive signals that shape the output of neural circuits to support learned changes in behavior. Climbing fiber (CF) inputs to the cerebellar cortex represent one of the strongest candidates in the vertebrate brain for conveying neural instructive signals. However, recent studies have shown that Purkinje cell stimulation can also drive cerebellar learning and the relative importance of these two neuron types in providing instructive signals for cerebellum-dependent behaviors remains unresolved. In the present study we used cell-type-specific perturbations of various cerebellar circuit elements to systematically evaluate their contributions to delay eyeblink conditioning in mice. Our findings reveal that, although optogenetic stimulation of either CFs or Purkinje cells can drive learning under some conditions, even subtle reductions in CF signaling completely block learning to natural stimuli. We conclude that CFs and corresponding Purkinje cell complex spike events provide essential instructive signals for associative cerebellar learning.


Association Learning , Optogenetics , Purkinje Cells , Animals , Purkinje Cells/physiology , Mice , Association Learning/physiology , Conditioning, Eyelid/physiology , Male , Mice, Inbred C57BL , Cerebellum/physiology , Cerebellum/cytology , Nerve Fibers/physiology , Mice, Transgenic , Cerebellar Cortex/physiology , Female
15.
Nat Neurosci ; 27(5): 927-939, 2024 May.
Article En | MEDLINE | ID: mdl-38570661

An essential feature of neurons is their ability to centrally integrate information from their dendrites. The activity of astrocytes, in contrast, has been described as mostly uncoordinated across cellular compartments without clear central integration. Here we report conditional integration of calcium signals in astrocytic distal processes at their soma. In the hippocampus of adult mice of both sexes, we found that global astrocytic activity, as recorded with population calcium imaging, reflected past neuronal and behavioral events on a timescale of seconds. Salient past events, indicated by pupil dilations, facilitated the propagation of calcium signals from distal processes to the soma. Centripetal propagation to the soma was reproduced by optogenetic activation of the locus coeruleus, a key regulator of arousal, and reduced by pharmacological inhibition of α1-adrenergic receptors. Together, our results suggest that astrocytes are computational units of the brain that slowly and conditionally integrate calcium signals upon behaviorally relevant events.


Astrocytes , Calcium Signaling , Hippocampus , Locus Coeruleus , Animals , Locus Coeruleus/physiology , Locus Coeruleus/cytology , Astrocytes/physiology , Mice , Hippocampus/physiology , Hippocampus/cytology , Male , Calcium Signaling/physiology , Female , Optogenetics , Mice, Transgenic , Neurons/physiology , Mice, Inbred C57BL , Calcium/metabolism
16.
ACS Nano ; 18(19): 12427-12452, 2024 May 14.
Article En | MEDLINE | ID: mdl-38687909

Light-driven modulation of neuronal activity at high spatial-temporal resolution is becoming of high interest in neuroscience. In addition to optogenetics, nongenetic membrane-targeted nanomachines that alter the electrical state of the neuronal membranes are in demand. Here, we engineered and characterized a photoswitchable conjugated compound (BV-1) that spontaneously partitions into the neuronal membrane and undergoes a charge transfer upon light stimulation. The activity of primary neurons is not affected in the dark, whereas millisecond light pulses of cyan light induce a progressive decrease in membrane resistance and an increase in inward current matched to a progressive depolarization and action potential firing. We found that illumination of BV-1 induces oxidation of membrane phospholipids, which is necessary for the electrophysiological effects and is associated with decreased membrane tension and increased membrane fluidity. Time-resolved atomic force microscopy and molecular dynamics simulations performed on planar lipid bilayers revealed that the underlying mechanism is a light-driven formation of pore-like structures across the plasma membrane. Such a phenomenon decreases membrane resistance and increases permeability to monovalent cations, namely, Na+, mimicking the effects of antifungal polyenes. The same effect on membrane resistance was also observed in nonexcitable cells. When sustained light stimulations are applied, neuronal swelling and death occur. The light-controlled pore-forming properties of BV-1 allow performing "on-demand" light-induced membrane poration to rapidly shift from cell-attached to perforated whole-cell patch-clamp configuration. Administration of BV-1 to ex vivo retinal explants or in vivo primary visual cortex elicited neuronal firing in response to short trains of light stimuli, followed by activity silencing upon prolonged light stimulations. BV-1 represents a versatile molecular nanomachine whose properties can be exploited to induce either photostimulation or space-specific cell death, depending on the pattern and duration of light stimulation.


Neurons , Neurons/drug effects , Neurons/metabolism , Animals , Cell Membrane/metabolism , Cell Membrane/chemistry , Light , Lipid Bilayers/chemistry , Molecular Dynamics Simulation , Rats , Mice , Optogenetics
17.
J Physiol ; 602(10): 2343-2358, 2024 May.
Article En | MEDLINE | ID: mdl-38654583

Training rodents in a particularly difficult olfactory-discrimination (OD) task results in the acquisition of the ability to perform the task well, termed 'rule learning'. In addition to enhanced intrinsic excitability and synaptic excitation in piriform cortex pyramidal neurons, rule learning results in increased synaptic inhibition across the whole cortical network to the point where it precisely maintains the balance between inhibition and excitation. The mechanism underlying such precise inhibitory enhancement remains to be explored. Here, we use brain slices from transgenic mice (VGAT-ChR2-EYFP), enabling optogenetic stimulation of single GABAergic neurons and recordings of unitary synaptic events in pyramidal neurons. Quantal analysis revealed that learning-induced enhanced inhibition is mediated by increased quantal size of the evoked inhibitory events. Next, we examined the plasticity of synaptic inhibition induced by long-lasting, intrinsically evoked spike firing in post-synaptic neurons. Repetitive depolarizing current pulses from depolarized (-70 mV) or hyperpolarized (-90 mV) membrane potentials induced long-term depression (LTD) and long-term potentiation (LTP) of synaptic inhibition, respectively. We found a profound bidirectional increase in the ability to induce both LTD, mediated by L-type calcium channels, and LTP, mediated by R-type calcium channels after rule learning. Blocking the GABAB receptor reversed the effect of intrinsic stimulation at -90 mV from LTP to LTD. We suggest that learning greatly enhances the ability to modify the strength of synaptic inhibition of principal neurons in both directions. Such plasticity of synaptic plasticity allows fine-tuning of inhibition on each particular neuron, thereby stabilizing the network while maintaining the memory of the rule. KEY POINTS: Olfactory discrimination rule learning results in long-lasting enhancement of synaptic inhibition on piriform cortex pyramidal neurons. Quantal analysis of unitary inhibitory synaptic events, evoked by optogenetic minimal stimulation, revealed that enhanced synaptic inhibition is mediated by increased quantal size. Surprisingly, metaplasticity of synaptic inhibition, induced by intrinsically evoked repetitive spike firing, is increased bidirectionally. The susceptibility to both long-term depression (LTD) and long-term potentiation (LTP) of inhibition is enhanced after learning. LTD of synaptic inhibition is mediated by L-type calcium channels and LTP by R-type calcium channels. LTP is also dependent on activation of GABAB receptors. We suggest that learning-induced changes in the metaplasticity of synaptic inhibition enable the fine-tuning of inhibition on each particular neuron, thereby stabilizing the network while maintaining the memory of the rule.


Mice, Transgenic , Neuronal Plasticity , Pyramidal Cells , Animals , Neuronal Plasticity/physiology , Mice , Pyramidal Cells/physiology , GABAergic Neurons/physiology , Learning/physiology , Long-Term Potentiation/physiology , Male , Synapses/physiology , Optogenetics , Neural Inhibition/physiology , Piriform Cortex/physiology , Mice, Inbred C57BL , Long-Term Synaptic Depression/physiology
18.
Curr Gene Ther ; 24(3): 208-216, 2024.
Article En | MEDLINE | ID: mdl-38676313

Hearing loss is a prevalent sensory impairment significantly affecting communication and quality of life. Traditional approaches for hearing restoration, such as cochlear implants, have limitations in frequency resolution and spatial selectivity. Optogenetics, an emerging field utilizing light-sensitive proteins, offers a promising avenue for addressing these limitations and revolutionizing hearing rehabilitation. This review explores the methods of introducing Channelrhodopsin- 2 (ChR2), a key light-sensitive protein, into cochlear cells to enable optogenetic stimulation. Viral- mediated gene delivery is a widely employed technique in optogenetics. Selecting a suitable viral vector, such as adeno-associated viruses (AAV), is crucial in efficient gene delivery to cochlear cells. The ChR2 gene is inserted into the viral vector through molecular cloning techniques, and the resulting viral vector is introduced into cochlear cells via direct injection or round window membrane delivery. This allows for the expression of ChR2 and subsequent light sensitivity in targeted cells. Alternatively, direct cell transfection offers a non-viral approach for ChR2 delivery. The ChR2 gene is cloned into a plasmid vector, which is then combined with transfection agents like liposomes or nanoparticles. This mixture is applied to cochlear cells, facilitating the entry of the plasmid DNA into the target cells and enabling ChR2 expression. Optogenetic stimulation using ChR2 allows for precise and selective activation of specific neurons in response to light, potentially overcoming the limitations of current auditory prostheses. Moreover, optogenetics has broader implications in understanding the neural circuits involved in auditory processing and behavior. The combination of optogenetics and gene delivery techniques provides a promising avenue for improving hearing restoration strategies, offering the potential for enhanced frequency resolution, spatial selectivity, and improved auditory perception.


Auditory Perception , Genetic Therapy , Genetic Vectors , Hearing Loss , Optogenetics , Optogenetics/methods , Humans , Genetic Therapy/methods , Auditory Perception/genetics , Genetic Vectors/genetics , Hearing Loss/genetics , Hearing Loss/therapy , Channelrhodopsins/genetics , Dependovirus/genetics , Gene Transfer Techniques , Animals , Cochlear Implants
19.
Int J Biol Sci ; 20(6): 2072-2091, 2024.
Article En | MEDLINE | ID: mdl-38617528

Background: It had been shown that selective cardiac vagal activation holds great potential for heart regeneration. Optogenetics has clinical translation potential as a novel means of modulating targeted neurons. This study aimed to investigate whether cardiac vagal activation via optogenetics could improve heart regenerative repair after myocardial infarction (MI) and to identify the underlying mechanism. Methods: We used an adeno-associated virus (AAV) as the vector to deliver ChR2, a light-sensitive protein, to the left nodose ganglion (LNG). To assess the effects of the cardiac vagus nerve on cardiomyocyte (CM) proliferation and myocardial regeneration in vivo, the light-emitting diode illumination (470 nm) was applied for optogenetic stimulation to perform the gain-of-function experiment and the vagotomy was used as a loss-of-function assay. Finally, sequencing data and molecular biology experiments were analyzed to determine the possible mechanisms by which the cardiac vagus nerve affects myocardial regenerative repair after MI. Results: Absence of cardiac surface vagus nerve after MI was more common in adult hearts with low proliferative capacity, causing a poor prognosis. Gain- and loss-of-function experiments further demonstrated that optogenetic stimulation of the cardiac vagus nerve positively regulated cardiomyocyte (CM) proliferation and myocardial regeneration in vivo. More importantly, optogenetic stimulation attenuated ventricular remodeling and improved cardiac function after MI. Further analysis of sequencing results and flow cytometry revealed that cardiac vagal stimulation activated the IL-10/STAT3 pathway and promoted the polarization of cardiac macrophages to the M2 type, resulting in beneficial cardiac regenerative repair after MI. Conclusions: Targeting the cardiac vagus nerve by optogenetic stimulation induced macrophage M2 polarization by activating the IL-10/STAT3 signaling pathway, which obviously optimized the regenerative microenvironment and then improved cardiac function after MI.


Interleukin-10 , Myocardial Infarction , Adult , Humans , Interleukin-10/genetics , Optogenetics , Myocardial Infarction/therapy , Vagus Nerve , Myocytes, Cardiac
20.
Nat Commun ; 15(1): 3216, 2024 Apr 15.
Article En | MEDLINE | ID: mdl-38622120

Biomolecular condensates, often assembled through phase transition mechanisms, play key roles in organizing diverse cellular activities. The material properties of condensates, ranging from liquid droplets to solid-like glasses or gels, are key features impacting the way resident components associate with one another. However, it remains unclear whether and how different material properties would influence specific cellular functions of condensates. Here, we combine optogenetic control of phase separation with single-molecule mRNA imaging to study relations between phase behaviors and functional performance of condensates. Using light-activated condensation, we show that sequestering target mRNAs into condensates causes translation inhibition. Orthogonal mRNA imaging reveals highly transient nature of interactions between individual mRNAs and condensates. Tuning condensate composition and material property towards more solid-like states leads to stronger translational repression, concomitant with a decrease in molecular mobility. We further demonstrate that ß-actin mRNA sequestration in neurons suppresses spine enlargement during chemically induced long-term potentiation. Our work highlights how the material properties of condensates can modulate functions, a mechanism that may play a role in fine-tuning the output of condensate-driven cellular activities.


Actins , Optogenetics , Humans , Actins/genetics , Biomolecular Condensates , Hypertrophy , Long-Term Potentiation
...