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1.
PLoS Biol ; 21(2): e3002013, 2023 02.
Artigo em Inglês | MEDLINE | ID: mdl-36802356

RESUMO

Substantial progress in the field of neuroscience has been made from anaesthetized preparations. Ketamine is one of the most used drugs in electrophysiology studies, but how ketamine affects neuronal responses is poorly understood. Here, we used in vivo electrophysiology and computational modelling to study how the auditory cortex of bats responds to vocalisations under anaesthesia and in wakefulness. In wakefulness, acoustic context increases neuronal discrimination of natural sounds. Neuron models predicted that ketamine affects the contextual discrimination of sounds regardless of the type of context heard by the animals (echolocation or communication sounds). However, empirical evidence showed that the predicted effect of ketamine occurs only if the acoustic context consists of low-pitched sounds (e.g., communication calls in bats). Using the empirical data, we updated the naïve models to show that differential effects of ketamine on cortical responses can be mediated by unbalanced changes in the firing rate of feedforward inputs to cortex, and changes in the depression of thalamo-cortical synaptic receptors. Combined, our findings obtained in vivo and in silico reveal the effects and mechanisms by which ketamine affects cortical responses to vocalisations.


Assuntos
Anestesia , Córtex Auditivo , Quirópteros , Ketamina , Animais , Córtex Auditivo/fisiologia , Estimulação Acústica , Ketamina/farmacologia , Quirópteros/fisiologia , Neurônios/fisiologia , Percepção Auditiva/fisiologia
2.
PLoS Biol ; 18(11): e3000831, 2020 11.
Artigo em Inglês | MEDLINE | ID: mdl-33170833

RESUMO

Echolocating bats rely upon spectral interference patterns in echoes to reconstruct fine details of a reflecting object's shape. However, the acoustic modulations required to do this are extremely brief, raising questions about how their auditory cortex encodes and processes such rapid and fine spectrotemporal details. Here, we tested the hypothesis that biosonar target shape representation in the primary auditory cortex (A1) is more reliably encoded by changes in spike timing (latency) than spike rates and that latency is sufficiently precise to support a synchronization-based ensemble representation of this critical auditory object feature space. To test this, we measured how the spatiotemporal activation patterns of A1 changed when naturalistic spectral notches were inserted into echo mimic stimuli. Neurons tuned to notch frequencies were predicted to exhibit longer latencies and lower mean firing rates due to lower signal amplitudes at their preferred frequencies, and both were found to occur. Comparative analyses confirmed that significantly more information was recoverable from changes in spike times relative to concurrent changes in spike rates. With this data, we reconstructed spatiotemporal activation maps of A1 and estimated the level of emerging neuronal spike synchrony between cortical neurons tuned to different frequencies. The results support existing computational models, indicating that spectral interference patterns may be efficiently encoded by a cascading tonotopic sequence of neural synchronization patterns within an ensemble of network activity that relates to the physical features of the reflecting object surface.


Assuntos
Córtex Auditivo/fisiologia , Percepção Auditiva/fisiologia , Ecolocação/fisiologia , Estimulação Acústica/métodos , Animais , Mapeamento Encefálico/métodos , Quirópteros/fisiologia , Neurônios/fisiologia , Tempo de Reação/fisiologia
3.
Sci Rep ; 10(1): 7332, 2020 04 30.
Artigo em Inglês | MEDLINE | ID: mdl-32355293

RESUMO

Communication sounds are ubiquitous in the animal kingdom, where they play a role in advertising physiological states and/or socio-contextual scenarios. Human screams, for example, are typically uttered in fearful contexts and they have a distinctive feature termed as "roughness", which depicts amplitude fluctuations at rates from 30-150 Hz. In this article, we report that the occurrence of fast acoustic periodicities in harsh sounding vocalizations is not unique to humans. A roughness-like structure is also present in vocalizations emitted by bats (species Carollia perspicillata) in distressful contexts. We report that 47.7% of distress calls produced by bats carry amplitude fluctuations at rates ~1.7 kHz (>10 times faster than temporal modulations found in human screams). In bats, rough-like vocalizations entrain brain potentials and are more effective in accelerating the bats' heart rate than slow amplitude modulated sounds. Our results are consistent with a putative role of fast amplitude modulations (roughness in humans) for grabbing the listeners attention in situations in which the emitter is in distressful, potentially dangerous, contexts.


Assuntos
Acústica , Quirópteros/fisiologia , Vocalização Animal/fisiologia , Estimulação Acústica , Animais , Percepção Auditiva , Comportamento Animal , Ecolocação , Eletrocardiografia , Eletrodos , Feminino , Frequência Cardíaca , Masculino , Som
4.
Brain Struct Funct ; 224(8): 2907-2924, 2019 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-31456067

RESUMO

Empirical evidence suggests that, in the auditory cortex (AC), the phase relationship between spikes and local-field potentials (LFPs) plays an important role in the processing of auditory stimuli. Nevertheless, unlike the case of other sensory systems, it remains largely unexplored in the auditory modality whether the properties of the cortical columnar microcircuit shape the dynamics of spike-LFP coherence in a layer-specific manner. In this study, we directly tackle this issue by addressing whether spike-LFP and LFP-stimulus phase synchronization are spatially distributed in the AC during sensory processing, by performing laminar recordings in the cortex of awake short-tailed bats (Carollia perspicillata) while animals listened to conspecific distress vocalizations. We show that, in the AC, spike-LFP and LFP-stimulus synchrony depend significantly on cortical depth, and that sensory stimulation alters the spatial and spectral patterns of spike-LFP phase-locking. We argue that such laminar distribution of coherence could have functional implications for the representation of naturalistic auditory stimuli at a cortical level.


Assuntos
Córtex Auditivo/fisiologia , Percepção Auditiva/fisiologia , Ondas Encefálicas , Quirópteros/fisiologia , Neurônios/fisiologia , Estimulação Acústica , Potenciais de Ação , Animais , Sincronização Cortical , Ritmo Delta , Masculino , Ritmo Teta , Vocalização Animal
5.
eNeuro ; 4(6)2017.
Artigo em Inglês | MEDLINE | ID: mdl-29242823

RESUMO

For the purpose of orientation, echolocating bats emit highly repetitive and spatially directed sonar calls. Echoes arising from call reflections are used to create an acoustic image of the environment. The inferior colliculus (IC) represents an important auditory stage for initial processing of echolocation signals. The present study addresses the following questions: (1) how does the temporal context of an echolocation sequence mimicking an approach flight of an animal affect neuronal processing of distance information to echo delays? (2) how does the IC process complex echolocation sequences containing echo information from multiple objects (multiobject sequence)? Here, we conducted neurophysiological recordings from the IC of ketamine-anaesthetized bats of the species Carollia perspicillata and compared the results from the IC with the ones from the auditory cortex (AC). Neuronal responses to an echolocation sequence was suppressed when compared to the responses to temporally isolated and randomized segments of the sequence. The neuronal suppression was weaker in the IC than in the AC. In contrast to the cortex, the time course of the acoustic events is reflected by IC activity. In the IC, suppression sharpens the neuronal tuning to specific call-echo elements and increases the signal-to-noise ratio in the units' responses. When presenting multiple-object sequences, despite collicular suppression, the neurons responded to each object-specific echo. The latter allows parallel processing of multiple echolocation streams at the IC level. Altogether, our data suggests that temporally-precise neuronal responses in the IC could allow fast and parallel processing of multiple acoustic streams.


Assuntos
Quirópteros/fisiologia , Ecolocação/fisiologia , Colículos Inferiores/fisiologia , Neurônios/fisiologia , Estimulação Acústica/métodos , Potenciais de Ação , Animais , Córtex Auditivo/fisiologia , Feminino , Microeletrodos , Orientação/fisiologia , Percepção do Tempo/fisiologia
6.
Artigo em Inglês | MEDLINE | ID: mdl-26785850

RESUMO

During echolocation, bats estimate distance to avoid obstacles and capture moving prey. The primary distance cue is the delay between the bat's emitted echolocation pulse and the return of an echo. In the bat's auditory system, echo delay-tuned neurons that only respond to pulse-echo pairs having a specific echo delay serve target distance calculation. Accurate prey localization should benefit from the spike precision in such neurons. Here we show that delay-tuned neurons in the inferior colliculus of the mustached bat respond with higher temporal precision, shorter latency and shorter response duration than those of the auditory cortex. Based on these characteristics, we suggest that collicular neurons are best suited for a fast and accurate response that could lead to fast behavioral reactions while cortical neurons, with coarser temporal precision and longer latencies and response durations could be more appropriate for integrating acoustic information over time. The latter could be important for the formation of biosonar images.


Assuntos
Percepção Auditiva/fisiologia , Quirópteros/fisiologia , Ecolocação/fisiologia , Colículos Inferiores/citologia , Neurônios/fisiologia , Estimulação Acústica , Acústica , Potenciais de Ação/fisiologia , Animais , Córtex Auditivo/fisiologia , Vias Auditivas/fisiologia , Tempo de Reação/fisiologia , Detecção de Sinal Psicológico , Estatísticas não Paramétricas
7.
Artigo em Inglês | MEDLINE | ID: mdl-25726017

RESUMO

It has been reported previously that in the inferior colliculus of the bat Molossus molossus, neuronal duration tuning is ambiguous because the tuning type of the neurons dramatically changes with the sound level. In the present study, duration tuning was examined in the auditory cortex of M. molossus to describe if it is as ambiguous as the collicular tuning. From a population of 174 cortical 104 (60 %) neurons did not show duration selectivity (all-pass). Around 5 % (9 units) responded preferentially to stimuli having longer durations showing long-pass duration response functions, 35 (20 %) responded to a narrow range of stimulus durations showing band-pass duration response functions, 24 (14 %) responded most strongly to short stimulus durations showing short-pass duration response functions and two neurons (1 %) responded best to two different stimulus durations showing a two-peaked duration-response function. The majority of neurons showing short- (16 out of 24) and band-pass (24 out 35) selectivity displayed "O-shaped" duration response areas. In contrast to the inferior colliculus, duration tuning in the auditory cortex of M. molossus appears level tolerant. That is, the type of duration selectivity and the stimulus duration eliciting the maximum response were unaffected by changing sound level.


Assuntos
Córtex Auditivo/citologia , Percepção Auditiva/fisiologia , Quirópteros/fisiologia , Células Receptoras Sensoriais/fisiologia , Estimulação Acústica , Potenciais de Ação/fisiologia , Animais , Córtex Auditivo/fisiologia , Mapeamento Encefálico , Quirópteros/anatomia & histologia , Psicoacústica , Tempo de Reação/fisiologia , Fatores de Tempo
8.
Hear Res ; 309: 36-43, 2014 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-24269749

RESUMO

In the auditory system, tuning to sound level appears in the form of non-monotonic response-level functions that depict the response of a neuron to changing sound levels. Neurons with non-monotonic response-level functions respond best to a particular sound pressure level (defined as "best level" or level evoking the maximum response). We performed a comparative study on the location and basic functional organization of the auditory cortex in the gleaning bat, Macrotus waterhousii, and the aerial-hawking bat, Molossus molossus. Here, we describe the response-level function of cortical units in these two species. In the auditory cortices of M. waterhousii and M. molossus, the characteristic frequency of the units increased from caudal to rostral. In M. waterhousii, there was an even distribution of characteristic frequencies while in M. molossus there was an overrepresentation of frequencies present within echolocation pulses. In both species, most of the units showed best levels in a narrow range, without an evident topography in the amplitopic organization, as described in other species. During flight, bats decrease the intensity of their emitted pulses when they approach a prey item or an obstacle resulting in maintenance of perceived echo intensity. Narrow level tuning likely contributes to the extraction of echo amplitudes facilitating echo-intensity compensation. For aerial-hawking bats, like M. molossus, receiving echoes within the optimal sensitivity range can help the bats to sustain consistent analysis of successive echoes without distortions of perception caused by changes in amplitude.


Assuntos
Córtex Auditivo/fisiologia , Percepção Auditiva , Comportamento Animal , Quirópteros/fisiologia , Quirópteros/psicologia , Ecolocação , Estimulação Acústica , Animais , Vias Auditivas/fisiologia , Mapeamento Encefálico/métodos , Eletroencefalografia , Feminino , Voo Animal , Masculino , Comportamento Predatório , Pressão , Som
9.
Nat Commun ; 4: 2587, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24107903

RESUMO

Echolocating bats use the time from biosonar pulse emission to the arrival of echo (defined as echo delay) to calculate the space depth of targets. In the dorsal auditory cortex of several species, neurons that encode increasing echo delays are organized rostrocaudally in a topographic arrangement defined as chronotopy. Precise chronotopy could be important for precise target-distance computations. Here we show that in the cortex of three echolocating bat species (Pteronotus quadridens, Pteronotus parnellii and Carollia perspicillata), chronotopy is not precise but blurry. In all three species, neurons throughout the chronotopic map are driven by short echo delays that indicate the presence of close targets and the robustness of map organization depends on the parameter of the receptive field used to characterize neuronal tuning. The timing of cortical responses (latency and duration) provides a binding code that could be important for assembling acoustic scenes using echo delay information from objects with different space depths.


Assuntos
Córtex Auditivo/fisiologia , Quirópteros/fisiologia , Ecolocação/fisiologia , Percepção Espacial/fisiologia , Estimulação Acústica , Potenciais de Ação , Animais , Percepção Auditiva/fisiologia , Mapeamento Encefálico , Feminino , Masculino , Microeletrodos , Neurônios/citologia , Neurônios/fisiologia , Tempo de Reação , Especificidade da Espécie
10.
J Acoust Soc Am ; 133(1): 570-8, 2013 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-23297928

RESUMO

Delay tuning was studied in the auditory cortex of Pteronotus quadridens. All the 136 delay-tuned units that were studied responded strongly to heteroharmonic pulse-echo pairs presented at specific delays. In the heteroharmonic pairs, the first sonar call harmonic marks the timing of pulse emission while one of the higher harmonics (second or third) indicates the timing of the echo. Delay-tuned units are organized chronotopically along a rostrocaudal axis according to their characteristic delay. There is no obvious indication of multiple cortical axes specialized in the processing of different harmonic combinations of pulse and echo. Results of this study serve for a straight comparison of cortical delay-tuning between P. quadridens and the well-studied mustached bat, Pteronotus parnellii. These two species stem from the most recent and most basal nodes in the Pteronotus lineage, respectively. P. quadridens and P. parnellii use comparable heteroharmonic target-range computation strategies even though they do not use biosonar calls of a similar design. P. quadridens uses short constant-frequency (CF)/frequency-modulated (FM) echolocation calls, while P. parnellii uses long CF/FM calls. The ability to perform "heteroharmonic" target-range computations might be an ancestral neuronal specialization of the genus Pteronotus that was subjected to positive Darwinian selection in the evolution.


Assuntos
Córtex Auditivo/fisiologia , Evolução Biológica , Quirópteros/fisiologia , Ecolocação , Estimulação Acústica , Animais , Audiometria de Tons Puros , Vias Auditivas/fisiologia , Limiar Auditivo , Mapeamento Encefálico/métodos , Quirópteros/classificação , Eletroencefalografia , Potenciais Evocados Auditivos , Filogenia , Tempo de Reação , Espectrografia do Som , Especificidade da Espécie , Fatores de Tempo
11.
J Neurophysiol ; 106(6): 3119-28, 2011 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-21917994

RESUMO

We studied duration tuning in neurons of the inferior colliculus (IC) of the mustached bat. Duration-tuned neurons in the IC of the mustached bat fall into three main types: short (16 of 136), band (34 of 136), and long (29 of 136) pass. The remaining 51 neurons showed no selectivity for the duration of sounds. The distribution of best durations was double peaked with maxima around 3 and 17 ms, which correlate with the duration of the short frequency-modulated (FM) and the long constant-frequency (CF) signals emitted by Pteronotus parnellii. Since there are no individual neurons with a double-peaked duration response profile, both types of temporal processing seem to be well segregated in the IC. Most short- and band-pass units with best frequency in the CF2 range responded to best durations > 9 ms (66%, 18 of 27 units). However, there is no evidence for a bias toward longer durations as there is for neurons tuned to the frequency range of the FM component of the third harmonic, where 83% (10 of 12 neurons) showed best durations longer than 9 ms. In most duration-tuned neurons, response areas as a function of stimulus duration and intensity showed either V or U shape, with duration tuning retained across the range of sound levels tested. Duration tuning was affected by changes in sound pressure level in only six neurons. In all duration-tuned neurons, latencies measured at the best duration were longer than best durations, suggesting that behavioral decisions based on analysis of the duration of the pulses would not be expected to be complete until well after the stimulus has occurred.


Assuntos
Percepção Auditiva/fisiologia , Quirópteros/anatomia & histologia , Ecolocação/fisiologia , Colículos Inferiores/citologia , Neurônios/fisiologia , Estimulação Acústica/métodos , Potenciais de Ação , Animais , Vias Auditivas/fisiologia , Quirópteros/fisiologia , Feminino , Masculino , Neurônios/classificação , Técnicas de Patch-Clamp , Psicoacústica , Tempo de Reação/fisiologia , Fatores de Tempo
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