Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 7.693
Filter
1.
Nat Commun ; 15(1): 4791, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38839754

ABSTRACT

The planum temporale (PT), a key language area, is specialized in the left hemisphere in prelinguistic infants and considered as a marker of the pre-wired language-ready brain. However, studies have reported a similar structural PT left-asymmetry not only in various adult non-human primates, but also in newborn baboons. Its shared functional links with language are not fully understood. Here we demonstrate using previously obtained MRI data that early detection of PT left-asymmetry among 27 newborn baboons (Papio anubis, age range of 4 days to 2 months) predicts the future development of right-hand preference for communicative gestures but not for non-communicative actions. Specifically, only newborns with a larger left-than-right PT were more likely to develop a right-handed communication once juvenile, a contralateral brain-gesture link which is maintained in a group of 70 mature baboons. This finding suggests that early PT asymmetry may be a common inherited prewiring of the primate brain for the ontogeny of ancient lateralised properties shared between monkey gesture and human language.


Subject(s)
Animals, Newborn , Functional Laterality , Gestures , Magnetic Resonance Imaging , Animals , Functional Laterality/physiology , Female , Male , Papio anubis , Temporal Lobe/physiology , Temporal Lobe/diagnostic imaging , Language
2.
Physiol Rep ; 12(11): e16084, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38850124

ABSTRACT

Hypertension disproportionately affects African Americans and is a risk factor for Alzheimer's disease (AD). We investigated the relationship of blood pressure (BP) with medial temporal lobe (MTL) dynamic network flexibility (a novel AD biomarker) and cognitive generalization in older African Americans. In a cross-sectional study, 37 normotensive (systolic BP <130 mmHg, 82.5% F, 64.4 ± 4.9 years; 14.3 ± 2.1 years of education) versus 79 hypertensive (systolic BP ≥130 mmHg, 79.5% F, 66.8 ± 4.1 years; 14.0 ± 0.2 years of education) participants were enrolled. All participants completed a 10-min resting-state functional magnetic resonance imaging scan to assess MTL dynamic network flexibility and two generalization tasks to assess cognition. Anthropometrics and aerobic fitness (via 6-min walk test) were also determined. There was no difference in BMI (29.7 ± 6.4 vs. 31.9 ± 6.3 kg/m2, p = 0.083) or aerobic fitness (15.5 ± 2.6 vs. 15.1 ± 2.6 mL/kg/min; p = 0.445) between normotensive and hypertensive groups. However, normotensive participants had higher MTL dynamic network flexibility compared to hypertensive participants (0.42 ± 0.23 vs. 0.32 ± 0.25 mL, p = 0.040), and this was associated with higher mean arterial blood pressure (r = -0.21, p = 0.036). Therefore, hypertensive older African Americans demonstrated lower MTL dynamic network flexibility compared to their normotensive counterparts independent of BMI and aerobic fitness. Further studies are required to determine how blood pressure mediates AD risk in African Americans.


Subject(s)
Black or African American , Hypertension , Magnetic Resonance Imaging , Temporal Lobe , Humans , Male , Female , Aged , Hypertension/physiopathology , Hypertension/ethnology , Middle Aged , Temporal Lobe/diagnostic imaging , Temporal Lobe/physiopathology , Temporal Lobe/physiology , Cross-Sectional Studies , Blood Pressure/physiology , Nerve Net/diagnostic imaging , Nerve Net/physiopathology , Cognition/physiology
3.
Cereb Cortex ; 34(6)2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38858838

ABSTRACT

We revisited the anatomo-functional characteristics of the basal temporal language area (BTLA), first described by Lüders et al. (1986), using electrical cortical stimulation (ECS) in the context of Japanese language and semantic networks. We recruited 11 patients with focal epilepsy who underwent chronic subdural electrode implantation and ECS mapping with multiple language tasks for presurgical evaluation. A semiquantitative language function density map delineated the anatomo-functional characteristics of the BTLA (66 electrodes, mean 3.8 cm from the temporal tip). The ECS-induced impairment probability was higher in the following tasks, listed in a descending order: spoken-word picture matching, picture naming, Kanji word reading, paragraph reading, spoken-verbal command, and Kana word reading. The anterior fusiform gyrus (FG), adjacent anterior inferior temporal gyrus (ITG), and the anterior end where FG and ITG fuse, were characterized by stimulation-induced impairment during visual and auditory tasks requiring verbal output or not, whereas the middle FG was characterized mainly by visual input. The parahippocampal gyrus was the least impaired of the three gyri in the basal temporal area. We propose that the BTLA has a functional gradient, with the anterior part involved in amodal semantic processing and the posterior part, especially the middle FG in unimodal semantic processing.


Subject(s)
Brain Mapping , Language , Temporal Lobe , Adolescent , Adult , Female , Humans , Male , Middle Aged , Young Adult , East Asian People , Electric Stimulation , Epilepsies, Partial/physiopathology , Epilepsies, Partial/surgery , Japan , Magnetic Resonance Imaging , Temporal Lobe/physiology
4.
Proc Natl Acad Sci U S A ; 121(23): e2320489121, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38805278

ABSTRACT

Neural oscillations reflect fluctuations in excitability, which biases the percept of ambiguous sensory input. Why this bias occurs is still not fully understood. We hypothesized that neural populations representing likely events are more sensitive, and thereby become active on earlier oscillatory phases, when the ensemble itself is less excitable. Perception of ambiguous input presented during less-excitable phases should therefore be biased toward frequent or predictable stimuli that have lower activation thresholds. Here, we show such a frequency bias in spoken word recognition using psychophysics, magnetoencephalography (MEG), and computational modelling. With MEG, we found a double dissociation, where the phase of oscillations in the superior temporal gyrus and medial temporal gyrus biased word-identification behavior based on phoneme and lexical frequencies, respectively. This finding was reproduced in a computational model. These results demonstrate that oscillations provide a temporal ordering of neural activity based on the sensitivity of separable neural populations.


Subject(s)
Language , Magnetoencephalography , Speech Perception , Humans , Speech Perception/physiology , Male , Female , Adult , Temporal Lobe/physiology , Young Adult , Models, Neurological
5.
Nature ; 629(8013): 861-868, 2024 May.
Article in English | MEDLINE | ID: mdl-38750353

ABSTRACT

A central assumption of neuroscience is that long-term memories are represented by the same brain areas that encode sensory stimuli1. Neurons in inferotemporal (IT) cortex represent the sensory percept of visual objects using a distributed axis code2-4. Whether and how the same IT neural population represents the long-term memory of visual objects remains unclear. Here we examined how familiar faces are encoded in the IT anterior medial face patch (AM), perirhinal face patch (PR) and temporal pole face patch (TP). In AM and PR we observed that the encoding axis for familiar faces is rotated relative to that for unfamiliar faces at long latency; in TP this memory-related rotation was much weaker. Contrary to previous claims, the relative response magnitude to familiar versus unfamiliar faces was not a stable indicator of familiarity in any patch5-11. The mechanism underlying the memory-related axis change is likely intrinsic to IT cortex, because inactivation of PR did not affect axis change dynamics in AM. Overall, our results suggest that memories of familiar faces are represented in AM and perirhinal cortex by a distinct long-latency code, explaining how the same cell population can encode both the percept and memory of faces.


Subject(s)
Facial Recognition , Memory, Long-Term , Recognition, Psychology , Temporal Lobe , Animals , Face , Facial Recognition/physiology , Macaca mulatta/physiology , Memory, Long-Term/physiology , Neurons/physiology , Perirhinal Cortex/physiology , Perirhinal Cortex/cytology , Photic Stimulation , Recognition, Psychology/physiology , Temporal Lobe/anatomy & histology , Temporal Lobe/cytology , Temporal Lobe/physiology , Rotation
6.
Neuroimage ; 294: 120649, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38759354

ABSTRACT

Neurobehavioral studies have provided evidence for the effectiveness of anodal tDCS on language production, by stimulation of the left Inferior Frontal Gyrus (IFG) or of left Temporo-Parietal Junction (TPJ). However, tDCS is currently not used in clinical practice outside of trials, because behavioral effects have been inconsistent and underlying neural effects unclear. Here, we propose to elucidate the neural correlates of verb and noun learning and to determine if they can be modulated with anodal high-definition (HD) tDCS stimulation. Thirty-six neurotypical participants were randomly allocated to anodal HD-tDCS over either the left IFG, the left TPJ, or sham stimulation. On day one, participants performed a naming task (pre-test). On day two, participants underwent a new-word learning task with rare nouns and verbs concurrently to HD-tDCS for 20 min. The third day consisted of a post-test of naming performance. EEG was recorded at rest and during naming on each day. Verb learning was significantly facilitated by left IFG stimulation. HD-tDCS over the left IFG enhanced functional connectivity between the left IFG and TPJ and this correlated with improved learning. HD-tDCS over the left TPJ enabled stronger local activation of the stimulated area (as indexed by greater alpha and beta-band power decrease) during naming, but this did not translate into better learning. Thus, tDCS can induce local activation or modulation of network interactions. Only the enhancement of network interactions, but not the increase in local activation, leads to robust improvement of word learning. This emphasizes the need to develop new neuromodulation methods influencing network interactions. Our study suggests that this may be achieved through behavioral activation of one area and concomitant activation of another area with HD-tDCS.


Subject(s)
Transcranial Direct Current Stimulation , Humans , Transcranial Direct Current Stimulation/methods , Female , Male , Adult , Young Adult , Electroencephalography/methods , Prefrontal Cortex/physiology , Parietal Lobe/physiology , Verbal Learning/physiology , Temporal Lobe/physiology , Learning/physiology
7.
Cereb Cortex ; 34(13): 84-93, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38696598

ABSTRACT

Multimodal integration is crucial for human interaction, in particular for social communication, which relies on integrating information from various sensory modalities. Recently a third visual pathway specialized in social perception was proposed, which includes the right superior temporal sulcus (STS) playing a key role in processing socially relevant cues and high-level social perception. Importantly, it has also recently been proposed that the left STS contributes to audiovisual integration of speech processing. In this article, we propose that brain areas along the right STS that support multimodal integration for social perception and cognition can be considered homologs to those in the left, language-dominant hemisphere, sustaining multimodal integration of speech and semantic concepts fundamental for social communication. Emphasizing the significance of the left STS in multimodal integration and associated processes such as multimodal attention to socially relevant stimuli, we underscore its potential relevance in comprehending neurodevelopmental conditions characterized by challenges in social communication such as autism spectrum disorder (ASD). Further research into this left lateral processing stream holds the promise of enhancing our understanding of social communication in both typical development and ASD, which may lead to more effective interventions that could improve the quality of life for individuals with atypical neurodevelopment.


Subject(s)
Social Cognition , Speech Perception , Temporal Lobe , Humans , Temporal Lobe/physiology , Temporal Lobe/physiopathology , Speech Perception/physiology , Social Perception , Autistic Disorder/physiopathology , Autistic Disorder/psychology , Functional Laterality/physiology
8.
Curr Biol ; 34(9): R340-R343, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38714159

ABSTRACT

The posterior cerebellum is emerging as a key structure for social cognition. A new study causally demonstrates its early involvement during emotion perception and functional connectivity with the posterior superior temporal sulcus, a cortical hub of the social brain.


Subject(s)
Cerebellum , Social Perception , Humans , Cerebellum/physiology , Emotions/physiology , Social Cognition , Temporal Lobe/physiology
9.
Cortex ; 175: 54-65, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38704919

ABSTRACT

The dorsal attention network (DAN) is a network of brain regions essential for attentional orienting, which includes the lateral intraparietal area (LIP) and frontal eye field (FEF). Recently, the putative human dorsal posterior infero-temporal area (phPITd) has been identified as a new node of the DAN. However, its functional relationship with other areas of the DAN and its specific role in visual attention remained unclear. In this study, we analyzed a large publicly available neuroimaging dataset to investigate the intrinsic functional connectivities (FCs) of the phPITd with other brain areas. The results showed that the intrinsic FCs of the phPITd with the areas of the visual network and the DAN were significantly stronger than those with the ventral attention network (VAN) areas and areas of other networks. We further conducted individual difference analyses with a sample size of 295 participants and a series of attentional tasks to investigate which attentional components each phPITd-based DAN edge predicts. Our findings revealed that the intrinsic FC of the left phPITd with the LIPv could predict individual ability in attentional orienting, but not in alerting, executive control, and distractor suppression. Our results not only provide direct evidence of the phPITd's functional relationship with the LIPv, but also offer a comprehensive understanding of its specific role in visual attention.


Subject(s)
Attention , Brain Mapping , Magnetic Resonance Imaging , Temporal Lobe , Visual Perception , Humans , Attention/physiology , Male , Female , Adult , Temporal Lobe/physiology , Temporal Lobe/diagnostic imaging , Young Adult , Magnetic Resonance Imaging/methods , Visual Perception/physiology , Orientation/physiology , Parietal Lobe/physiology , Parietal Lobe/diagnostic imaging , Nerve Net/physiology , Nerve Net/diagnostic imaging
10.
Cereb Cortex ; 34(5)2024 May 02.
Article in English | MEDLINE | ID: mdl-38741267

ABSTRACT

The role of the left temporoparietal cortex in speech production has been extensively studied during native language processing, proving crucial in controlled lexico-semantic retrieval under varying cognitive demands. Yet, its role in bilinguals, fluent in both native and second languages, remains poorly understood. Here, we employed continuous theta burst stimulation to disrupt neural activity in the left posterior middle-temporal gyrus (pMTG) and angular gyrus (AG) while Italian-Friulian bilinguals performed a cued picture-naming task. The task involved between-language (naming objects in Italian or Friulian) and within-language blocks (naming objects ["knife"] or associated actions ["cut"] in a single language) in which participants could either maintain (non-switch) or change (switch) instructions based on cues. During within-language blocks, cTBS over the pMTG entailed faster naming for high-demanding switch trials, while cTBS to the AG elicited slower latencies in low-demanding non-switch trials. No cTBS effects were observed in the between-language block. Our findings suggest a causal involvement of the left pMTG and AG in lexico-semantic processing across languages, with distinct contributions to controlled vs. "automatic" retrieval, respectively. However, they do not support the existence of shared control mechanisms within and between language(s) production. Altogether, these results inform neurobiological models of semantic control in bilinguals.


Subject(s)
Multilingualism , Parietal Lobe , Speech , Temporal Lobe , Transcranial Magnetic Stimulation , Humans , Male , Temporal Lobe/physiology , Female , Young Adult , Adult , Parietal Lobe/physiology , Speech/physiology , Cues
12.
PLoS One ; 19(5): e0302375, 2024.
Article in English | MEDLINE | ID: mdl-38701103

ABSTRACT

There are numerous reports of enhanced or emerged visual arts abilities in patients with semantic impairment. These reports led to the theory that a loss of function on the language side of the brain can result in changes of ability to draw and/or to paint. Further, the left posterior middle temporal gyrus (l-pMTG) has been revealed to contribute to the higher control semantic mechanisms with objects recognition and integration of visual information, within a widely distributed network of the left hemisphere. Nevertheless, the theory has not been fully studied in neural bases. The aim of this study is to examine role of the l-pMTG on shape recognition and its reconstruction within drawing behavior, by using a combining method of the repetitive transcranial magnetic stimulation (rTMS) and functional near-infrared spectroscopy (fNIRS). Eighteen healthy participants received a low frequency inhibitory rTMS to their l-pMTG during the drawing task of the Benton Visual Retention Test (BVRT). There was a significant decrease of the mean accuracy of reproductions in the Complex designs of the BVRT, compared to the Simple and Medium designs. The fNIRS data showed strong negative correlations with the results of the BVRT. Though our hypothesis had a contradiction that rTMS would have inhibited the brain activity in the stimulated site, the results suggest that shape recognition and its reconstruction such as the BVRT require neural activations of the l-TL as well as that of the l-pMTG.


Subject(s)
Spectroscopy, Near-Infrared , Temporal Lobe , Transcranial Magnetic Stimulation , Humans , Transcranial Magnetic Stimulation/methods , Temporal Lobe/physiology , Temporal Lobe/diagnostic imaging , Spectroscopy, Near-Infrared/methods , Male , Female , Adult , Young Adult , Pattern Recognition, Visual/physiology , Brain Mapping/methods
13.
Neuropsychologia ; 199: 108902, 2024 Jul 04.
Article in English | MEDLINE | ID: mdl-38723890

ABSTRACT

The necessity of the human hippocampus and surrounding medial temporal lobe structures to semantic memory remains contentious. Impaired semantic memory following hippocampal lesions could arise either due to partially intertwined episodic memories and/or retrograde/anterograde effects. In this study, we tested amnesic individuals with lesions in hippocampus and surrounding medial temporal lobe (n = 7) and age-matched controls (n = 14) on their ability to precisely recall the dates of famous public events that occurred either before (i.e., pre-lifetime) or after participants' birth date (lifetime). We show that deficits in dating precision are greatest for recent lifetime events, consistent with the notion that recent event memory may be particularly intertwined with episodic memory. At the same time, individuals with medial temporal lobe lesions showed more subtle impairments in their ability to date pre-birth and remote lifetime events precisely. Together, these findings suggest that the hippocampus and surrounding medial temporal lobe structures are important for representational precision of semantic memories regardless of their remoteness.


Subject(s)
Hippocampus , Mental Recall , Humans , Hippocampus/physiology , Male , Female , Middle Aged , Mental Recall/physiology , Aged , Memory, Episodic , Temporal Lobe/physiology , Temporal Lobe/physiopathology , Adult , Neuropsychological Tests , Amnesia/physiopathology
14.
J Neurosci ; 44(22)2024 May 29.
Article in English | MEDLINE | ID: mdl-38627090

ABSTRACT

Humans have the remarkable ability to vividly retrieve sensory details of past events. According to the theory of sensory reinstatement, during remembering, brain regions specialized for processing specific sensory stimuli are reactivated to support content-specific retrieval. Recently, several studies have emphasized transformations in the spatial organization of these reinstated activity patterns. Specifically, studies of scene stimuli suggest a clear anterior shift in the location of retrieval activations compared with the activity observed during perception. However, it is not clear that such transformations occur universally, with inconsistent evidence for other important stimulus categories, particularly faces. One challenge in addressing this question is the careful delineation of face-selective cortices, which are interdigitated with other selective regions, in configurations that spatially differ across individuals. Therefore, we conducted a multisession neuroimaging study to first carefully map individual participants' (nine males and seven females) face-selective regions within ventral temporal cortex (VTC), followed by a second session to examine the activity patterns within these regions during face memory encoding and retrieval. While face-selective regions were expectedly engaged during face perception at encoding, memory retrieval engagement exhibited a more selective and constricted reinstatement pattern within these regions, but did not show any consistent direction of spatial transformation (e.g., anteriorization). We also report on unique human intracranial recordings from VTC under the same experimental conditions. These findings highlight the importance of considering the complex configuration of category-selective cortex in elucidating principles shaping the neural transformations that occur from perception to memory.


Subject(s)
Brain Mapping , Facial Recognition , Magnetic Resonance Imaging , Temporal Lobe , Humans , Male , Female , Temporal Lobe/physiology , Temporal Lobe/diagnostic imaging , Adult , Facial Recognition/physiology , Young Adult , Memory/physiology , Photic Stimulation/methods , Mental Recall/physiology
15.
Nature ; 629(8011): 393-401, 2024 May.
Article in English | MEDLINE | ID: mdl-38632400

ABSTRACT

Retaining information in working memory is a demanding process that relies on cognitive control to protect memoranda-specific persistent activity from interference1,2. However, how cognitive control regulates working memory storage is unclear. Here we show that interactions of frontal control and hippocampal persistent activity are coordinated by theta-gamma phase-amplitude coupling (TG-PAC). We recorded single neurons in the human medial temporal and frontal lobe while patients maintained multiple items in their working memory. In the hippocampus, TG-PAC was indicative of working memory load and quality. We identified cells that selectively spiked during nonlinear interactions of theta phase and gamma amplitude. The spike timing of these PAC neurons was coordinated with frontal theta activity when cognitive control demand was high. By introducing noise correlations with persistently active neurons in the hippocampus, PAC neurons shaped the geometry of the population code. This led to higher-fidelity representations of working memory content that were associated with improved behaviour. Our results support a multicomponent architecture of working memory1,2, with frontal control managing maintenance of working memory content in storage-related areas3-5. Within this framework, hippocampal TG-PAC integrates cognitive control and working memory storage across brain areas, thereby suggesting a potential mechanism for top-down control over sensory-driven processes.


Subject(s)
Hippocampus , Memory, Short-Term , Neurons , Adult , Female , Humans , Male , Action Potentials , Cognition/physiology , Frontal Lobe/physiology , Frontal Lobe/cytology , Gamma Rhythm/physiology , Hippocampus/physiology , Hippocampus/cytology , Memory, Short-Term/physiology , Neurons/physiology , Temporal Lobe/physiology , Temporal Lobe/cytology , Theta Rhythm/physiology , Middle Aged
16.
J Cogn Neurosci ; 36(7): 1341-1349, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38652111

ABSTRACT

The current longitudinal study (n = 98) utilized a developmental cognitive neuroscience approach to examine whether and how variability in social perception is linked to social behavior in early human development. Cortical responses to processing dynamic faces were investigated using functional near-infrared spectroscopy at 7 months. Individual differences in sociability were measured using the Early Childhood Behavior Questionnaire at 18 months. Confirming previous work with infants and adults, functional near-infrared spectroscopy results show that viewing changing faces recruited superior temporal cortices in 7-month-old infants, adding to the view that this brain system is specialized in social perception from early in ontogeny. Our longitudinal results show that greater engagement of the right superior temporal cortex at 7 months predicts higher levels of sociability at 18 months. This suggests that early variability in social perception is linked to later differences in overtly displayed social behavior, providing novel longitudinal evidence for a social brain-behavior association.


Subject(s)
Social Behavior , Social Perception , Spectroscopy, Near-Infrared , Humans , Male , Infant , Female , Longitudinal Studies , Facial Recognition/physiology , Brain/physiology , Brain/diagnostic imaging , Brain Mapping , Temporal Lobe/physiology , Temporal Lobe/diagnostic imaging , Child Development/physiology , Individuality , Photic Stimulation
17.
PLoS Biol ; 22(4): e3002564, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38557761

ABSTRACT

Behavioral and neuroscience studies in humans and primates have shown that memorability is an intrinsic property of an image that predicts its strength of encoding into and retrieval from memory. While previous work has independently probed when or where this memorability effect may occur in the human brain, a description of its spatiotemporal dynamics is missing. Here, we used representational similarity analysis (RSA) to combine functional magnetic resonance imaging (fMRI) with source-estimated magnetoencephalography (MEG) to simultaneously measure when and where the human cortex is sensitive to differences in image memorability. Results reveal that visual perception of High Memorable images, compared to Low Memorable images, recruits a set of regions of interest (ROIs) distributed throughout the ventral visual cortex: a late memorability response (from around 300 ms) in early visual cortex (EVC), inferior temporal cortex, lateral occipital cortex, fusiform gyrus, and banks of the superior temporal sulcus. Image memorability magnitude results are represented after high-level feature processing in visual regions and reflected in classical memory regions in the medial temporal lobe (MTL). Our results present, to our knowledge, the first unified spatiotemporal account of visual memorability effect across the human cortex, further supporting the levels-of-processing theory of perception and memory.


Subject(s)
Brain , Visual Perception , Animals , Humans , Visual Perception/physiology , Brain/physiology , Cerebral Cortex/physiology , Temporal Lobe/diagnostic imaging , Temporal Lobe/physiology , Magnetoencephalography/methods , Magnetic Resonance Imaging/methods , Brain Mapping/methods
18.
Nat Commun ; 15(1): 3407, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38649694

ABSTRACT

The perception and neural processing of sensory information are strongly influenced by prior expectations. The integration of prior and sensory information can manifest through distinct underlying mechanisms: focusing on unexpected input, denoted as prediction error (PE) processing, or amplifying anticipated information via sharpened representation. In this study, we employed computational modeling using deep neural networks combined with representational similarity analyses of fMRI data to investigate these two processes during face perception. Participants were cued to see face images, some generated by morphing two faces, leading to ambiguity in face identity. We show that expected faces were identified faster and perception of ambiguous faces was shifted towards priors. Multivariate analyses uncovered evidence for PE processing across and beyond the face-processing hierarchy from the occipital face area (OFA), via the fusiform face area, to the anterior temporal lobe, and suggest sharpened representations in the OFA. Our findings support the proposition that the brain represents faces grounded in prior expectations.


Subject(s)
Brain Mapping , Facial Recognition , Magnetic Resonance Imaging , Humans , Male , Female , Adult , Young Adult , Facial Recognition/physiology , Brain/physiology , Brain/diagnostic imaging , Temporal Lobe/physiology , Temporal Lobe/diagnostic imaging , Face , Photic Stimulation , Neural Networks, Computer , Occipital Lobe/physiology , Occipital Lobe/diagnostic imaging , Pattern Recognition, Visual/physiology , Visual Perception/physiology
19.
Nat Commun ; 15(1): 3347, 2024 Apr 18.
Article in English | MEDLINE | ID: mdl-38637553

ABSTRACT

Neurons in the inferotemporal (IT) cortex respond selectively to complex visual features, implying their role in object perception. However, perception is subjective and cannot be read out from neural responses; thus, bridging the causal gap between neural activity and perception demands independent characterization of perception. Historically, though, the complexity of the perceptual alterations induced by artificial stimulation of IT cortex has rendered them impossible to quantify. To address this old problem, we tasked male macaque monkeys to detect and report optical impulses delivered to their IT cortex. Combining machine learning with high-throughput behavioral optogenetics, we generated complex and highly specific images that were hard for the animal to distinguish from the state of being cortically stimulated. These images, named "perceptograms" for the first time, reveal and depict the contents of the complex hallucinatory percepts induced by local neural perturbation in IT cortex. Furthermore, we found that the nature and magnitude of these hallucinations highly depend on concurrent visual input, stimulation location, and intensity. Objective characterization of stimulation-induced perceptual events opens the door to developing a mechanistic theory of visual perception. Further, it enables us to make better visual prosthetic devices and gain a greater understanding of visual hallucinations in mental disorders.


Subject(s)
Temporal Lobe , Visual Perception , Animals , Male , Humans , Macaca mulatta/physiology , Visual Perception/physiology , Temporal Lobe/physiology , Cerebral Cortex/physiology , Neurons/physiology , Photic Stimulation
20.
Curr Biol ; 34(9): 1844-1852.e3, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38565141

ABSTRACT

The posterior cerebellum is a recently discovered hub of the affective and social brain, with different subsectors contributing to different social functions. However, very little is known about when the posterior cerebellum plays a critical role in social processing. Due to its location and anatomy, it has been difficult to use traditional approaches to directly study the chronometry of the cerebellum. To address this gap in cerebellar knowledge, here we investigated the causal contribution of the posterior cerebellum to social processing using a chronometric transcranial magnetic stimulation (TMS) approach. We show that the posterior cerebellum is recruited at an early stage of emotional processing (starting from 100 ms after stimulus onset), simultaneously with the posterior superior temporal sulcus (pSTS), a key node of the social brain. Moreover, using a condition-and-perturb TMS approach, we found that the recruitment of the pSTS in emotional processing is dependent on cerebellar activation. Our results are the first to shed light on chronometric aspects of cerebellar function and its causal functional connectivity with other nodes of the social brain.


Subject(s)
Cerebellum , Emotions , Transcranial Magnetic Stimulation , Humans , Cerebellum/physiology , Emotions/physiology , Male , Female , Adult , Young Adult , Temporal Lobe/physiology
SELECTION OF CITATIONS
SEARCH DETAIL
...