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1.
J Neurosci ; 39(23): 4404-4421, 2019 06 05.
Artigo em Inglês | MEDLINE | ID: mdl-30886016

RESUMO

Cortical networks are characterized by the origin, destination, and reciprocity of their connections, as well as by the diameter, conduction velocity, and synaptic efficacy of their axons. The network formed by parietal and frontal areas lies at the core of cognitive-motor control because the outflow of parietofrontal signaling is conveyed to the subcortical centers and spinal cord through different parallel pathways, whose orchestration determines, not only when and how movements will be generated, but also the nature of forthcoming actions. Despite intensive studies over the last 50 years, the role of corticocortical connections in motor control and the principles whereby selected cortical networks are recruited by different task demands remain elusive. Furthermore, the synaptic integration of different cortical signals, their modulation by transthalamic loops, and the effects of conduction delays remain challenging questions that must be tackled to understand the dynamical aspects of parietofrontal operations. In this article, we evaluate results from nonhuman primate and selected rodent experiments to offer a viewpoint on how corticocortical systems contribute to learning and producing skilled actions. Addressing this subject is not only of scientific interest but also essential for interpreting the devastating consequences for motor control of lesions at different nodes of this integrated circuit. In humans, the study of corticocortical motor networks is currently based on MRI-related methods, such as resting-state connectivity and diffusion tract-tracing, which both need to be contrasted with histological studies in nonhuman primates.


Assuntos
Atividade Motora/fisiologia , Rede Nervosa/fisiologia , Desempenho Psicomotor/fisiologia , Animais , Atenção/fisiologia , Mapeamento Encefálico , Conectoma , Imagem de Tensor de Difusão , Lobo Frontal/fisiologia , Intenção , Aprendizagem/fisiologia , Córtex Motor/fisiologia , Destreza Motora/fisiologia , Movimento/fisiologia , Condução Nervosa , Lobo Parietal/fisiologia , Primatas/fisiologia , Roedores/fisiologia , Tálamo/fisiologia
2.
J Neurosci ; 39(18): 3514-3528, 2019 05 01.
Artigo em Inglês | MEDLINE | ID: mdl-30804088

RESUMO

Daily life often requires the coordination of our actions with those of another partner. After 50 years (1968-2018) of behavioral neurophysiology of motor control, the neural mechanisms that allow such coordination in primates are unknown. We studied this issue by recording cell activity simultaneously from dorsal premotor cortex (PMd) of two male interacting monkeys trained to coordinate their hand forces to achieve a common goal. We found a population of "joint-action cells" that discharged preferentially when monkeys cooperated in the task. This modulation was predictive in nature, because in most cells neural activity led in time the changes of the "own" and of the "other" behavior. These neurons encoded the joint-performance more accurately than "canonical action-related cells", activated by the action per se, regardless of the individual versus interactive context. A decoding of joint-action was obtained by combining the two brains' activities, using cells with directional properties distinguished from those associated to the "solo" behaviors. Action observation-related activity studied when one monkey observed the consequences of the partner's behavior, i.e., the cursor's motion on the screen, did not sharpen the accuracy of joint-action cells' representation, suggesting that it plays no major role in encoding joint-action. When monkeys performed with a non-interactive partner, such as a computer, joint-action cells' representation of the other (non-cooperative) behavior was significantly degraded. These findings provide evidence of how premotor neurons integrate the time-varying representation of the self-action with that of a co-actor, thus offering a neural substrate for successful visuomotor coordination between individuals.SIGNIFICANCE STATEMENT The neural bases of intersubject motor coordination were studied by recording cell activity simultaneously from the frontal cortex of two interacting monkeys, trained to coordinate their hand forces to achieve a common goal. We found a new class of cells, preferentially active when the monkeys cooperated, rather than when the same action was performed individually. These "joint-action neurons" offered a neural representation of joint-behaviors by far more accurate than that provided by the "canonical action-related cells", modulated by the action per se regardless of the individual/interactive context. A neural representation of joint-performance was obtained by combining the activity recorded from the two brains. Our findings offer the first evidence concerning neural mechanisms subtending interactive visuomotor coordination between co-acting agents.


Assuntos
Córtex Motor/fisiologia , Neurônios/fisiologia , Desempenho Psicomotor/fisiologia , Animais , Comportamento Animal , Comportamento Cooperativo , Macaca mulatta , Masculino , Modelos Neurológicos , Atividade Motora
3.
Neuroimage ; 221: 117201, 2020 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-32739552

RESUMO

Diffusion-weighted magnetic resonance imaging (DW-MRI) tractography is a non-invasive tool to probe neural connections and the structure of the white matter. It has been applied successfully in studies of neurological disorders and normal connectivity. Recent work has revealed that tractography produces a high incidence of false-positive connections, often from "bottleneck" white matter configurations. The rich literature in histological connectivity analysis studies in the macaque monkey enables quantitative evaluation of the performance of tractography algorithms. In this study, we use the intricate connections of frontal, cingulate, and parietal areas, well established by the anatomical literature, to derive a symmetrical histological connectivity matrix composed of 59 cortical areas. We evaluate the performance of fifteen diffusion tractography algorithms, including global, deterministic, and probabilistic state-of-the-art methods for the connectivity predictions of 1711 distinct pairs of areas, among which 680 are reported connected by the literature. The diffusion connectivity analysis was performed on a different ex-vivo macaque brain, acquired using multi-shell DW-MRI protocol, at high spatial and angular resolutions. Across all tested algorithms, the true-positive and true-negative connections were dominant over false-positive and false-negative connections, respectively. Moreover, three-quarters of streamlines had endpoints location in agreement with histological data, on average. Furthermore, probabilistic streamline tractography algorithms show the best performances in predicting which areas are connected. Altogether, we propose a method for quantitative evaluation of tractography algorithms, which aims at improving the sensitivity and the specificity of diffusion-based connectivity analysis. Overall, those results confirm the usefulness of tractography in predicting connectivity, although errors are produced. Many of the errors result from bottleneck white matter configurations near the cortical grey matter and should be the target of future implementation of methods.


Assuntos
Córtex Cerebral/anatomia & histologia , Imagem de Tensor de Difusão , Técnicas Histológicas , Rede Nervosa/anatomia & histologia , Técnicas de Rastreamento Neuroanatômico , Substância Branca/anatomia & histologia , Animais , Córtex Cerebral/diagnóstico por imagem , Imagem de Tensor de Difusão/normas , Técnicas Histológicas/normas , Macaca mulatta , Masculino , Rede Nervosa/diagnóstico por imagem , Técnicas de Rastreamento Neuroanatômico/normas , Substância Branca/diagnóstico por imagem
4.
Cereb Cortex ; 29(2): 716-731, 2019 02 01.
Artigo em Inglês | MEDLINE | ID: mdl-29373634

RESUMO

Encoding hand position by the cerebral cortex is essential not only for the neural representation of the body image but also for different actions based on eye-hand coordination. These include reaching for visual objects as well as complex movement sequences, such as tea-making, tool use, and object construction, among many others. All these functions depend on a continuous refreshing of the hand position representation, relying on both predictive signaling and afferent information. The hand position influence on neural activity in the parietofrontal system, together with eye position signals, are the basic elements of an eye-hand matrix from which all the above functions can emerge and could be regarded as key features of a network with several entry points, command nodes and outflow pathways, as confirmed by the discovery of a direct parietospinal projection for the control of hand action. The integrity of this system is crucial for daily life, as testified by the consequences of cortical lesions, spanning from severe paralysis to complex forms of apraxia. In this review, I will sketch my personal understanding of the scientific and conceptual trajectory of a line of investigation with many unexpected influences on cortical function and disease, from motor behavior to cognition.


Assuntos
Córtex Cerebral/fisiologia , Cognição/fisiologia , Mãos/fisiologia , Movimento/fisiologia , Desempenho Psicomotor/fisiologia , Animais , Humanos , Estimulação Luminosa/métodos
5.
J Neurosci ; 36(16): 4614-23, 2016 Apr 20.
Artigo em Inglês | MEDLINE | ID: mdl-27098702

RESUMO

The time course of neural variability was studied in three nodes of the parieto-frontal system: the dorsal premotor cortex (PMd, area 6), primary motor cortex (MI, area 4), and posterior parietal cortex (PPC, area 5) while monkeys made either direct reaches to visual targets or changed reach direction in response to an unexpected change of target location. These areas are crucial nodes in the distributed control of reaching and their lesion impairs trajectory formation and correction under different circumstances. During unperturbed reaches, neural variability declined before the onset of hand movement in both frontal and parietal cortex. When the original motor intention suddenly changed, neural variability displayed a complex and area-specific modulation because the perturbation of the motor state was signaled earlier in PMd than in MI and PPC. The comparison of perturbed versus unperturbed reaches revealed that, in the time between the onset of correction signal and trajectory change, identical hand movements were associated with different, therefore context-dependent, patterns of neural variability induced by the instruction to change hand movement direction. In PMd, neural variability was higher before the initiation of hand reach than before its correction, thus providing a neural underpinning to the phenomenon that it takes less time to correct than to initiate hand movement. Furthermore, neural variability was an excellent predictor of slow and fast reach corrections because it was lower during the latter than the former. We conclude that the analysis of neural variability can be an important tool for the study of complex forms of motor cognition. SIGNIFICANCE STATEMENT: No single study has been performed on neural variability during update of motor intention across monkey premotor, motor, and posterior parietal cortex. In perturbed reaches, target location changed unexpectedly during reaction time and the correction of hand trajectory required updating the original motor plan. Comparing unperturbed versus perturbed reaches revealed that neural variability displayed a complex context- and area-dependent pattern of modulation because, before trajectory correction, similar initial hand movements were associated with different patterns of variability depending on the instruction signal, and therefore on the future hand path and final destination. Furthermore, neural variability predicted both slow and fast hand movement corrections, also offering a neural underpinning to the phenomenon that it takes less time to correct than to initiate hand movement.


Assuntos
Intenção , Córtex Motor/fisiologia , Neurônios/fisiologia , Lobo Parietal/fisiologia , Desempenho Psicomotor/fisiologia , Tempo de Reação/fisiologia , Animais , Macaca mulatta , Masculino
6.
J Neurosci ; 35(31): 10899-910, 2015 Aug 05.
Artigo em Inglês | MEDLINE | ID: mdl-26245955

RESUMO

Major achievements of primate evolution are skilled hand-object interaction and tool use, both in part dependent on parietal cortex expansion. We recorded spiking activity from macaque inferior parietal cortex during directional manipulation of an isometric tool, which required the application of hand forces to control a cursor's motion on a screen. In areas PFG/PF, the activity of ∼ 70% neurons was modulated by the hand force necessary to implement the desired target motion, reflecting an inverse model, rather than by the intended motion of the visual cursor (forward model). The population vector matched the direction and amplitude of the instantaneous force increments over time. When exposed to a new force condition, that obliged the monkey to change the force output to successfully bring the cursor to the final target, the activity of a consistent subpopulation of neurons changed in an orderly fashion and, at the end of a "Wash-out" session, retained memory of the new learned association, at the service of predictive control of force. Our findings suggest that areas PFG/PF represent a crucial node of the distributed control of hand force, by encoding instantaneous force variations and serving as a memory reservoir of hand dynamics required for object manipulation and tool use. This is coherent with previous studies in humans showing the following: (1) impaired adaptation to a new force field under TMS parietal perturbation; (2) defective control of direction of hand force after parietal lesion; and (3) fMRI activation of parietal cortex during object manipulation requiring control of fine hand forces. SIGNIFICANCE STATEMENT: Skilled object manipulation and tool use are major achievements of primate evolution, both largely dependent on posterior parietal cortex (PPC) expansion. Neurophysiological and fMRI studies in macaque and humans had documented a crucial role of PPC in encoding the hand kinematics underlying these functions, leaving to premotor and motor areas the role of specifying the underlying hand forces. We recorded spiking activity from macaque PPC during manipulation of an isometric tool and found that population activity is not only modulated by the dynamic hand force and its change over time, but also retains memory of the exerted force, as a reservoir to guide of future hand action. This suggests parallel parietal encoding of hand dynamics and kinematics during object manipulation.


Assuntos
Força da Mão/fisiologia , Neurônios/fisiologia , Lobo Parietal/fisiologia , Desempenho Psicomotor/fisiologia , Animais , Mapeamento Encefálico , Eletroencefalografia , Mãos/fisiologia , Macaca mulatta , Masculino , Movimento/fisiologia
7.
J Neurosci ; 33(36): 14501-11, 2013 Sep 04.
Artigo em Inglês | MEDLINE | ID: mdl-24005301

RESUMO

Three macaque monkeys and 13 healthy human volunteers underwent diffusion tensor MRI with a 3 Tesla scanner for diffusion tract tracing (DTT) reconstruction of callosal bundles from different areas. In six macaque monkeys and three human subjects, the length of fiber tracts was obtained from histological data and combined with information on the distribution of axon diameter, so as to estimate callosal conduction delays from different areas. The results showed that in monkeys, the spectrum of tract lengths obtained with DTT closely matches that estimated from histological reconstruction of axons labeled with an anterogradely transported tracer. For each sector of the callosum, we obtained very similar conduction delays regardless of whether conduction distance was obtained from tractography or from histological analysis of labeled axons. This direct validation of DTT measurements by histological methods in monkeys was a prerequisite for the computation of the callosal conduction distances and delays in humans, which we had previously obtained by extrapolating the length of callosal axons from that of the monkey, proportionally to the brain volumes in the two species. For this analysis, we used the distribution of axon diameters from four different sectors of the corpus callosum. As in monkeys, in humans the shortest callosal conduction delays were those of motor, somatosensory, and premotor areas; the longer ones were those of temporal, parietal, and visual areas. These results provide the first histological validation of anatomical data about connection length in the primate brain based on DTT imaging.


Assuntos
Axônios/fisiologia , Corpo Caloso/fisiologia , Condução Nervosa , Adulto , Animais , Axônios/ultraestrutura , Corpo Caloso/citologia , Imagem de Tensor de Difusão , Feminino , Humanos , Macaca mulatta , Masculino , Rede Nervosa/citologia , Rede Nervosa/fisiologia
8.
Cereb Cortex ; 23(11): 2644-56, 2013 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-22918983

RESUMO

The parietal mechanisms for online control of hand trajectory were studied by combining single-cell recording and reversible inactivation of superior parietal area 5 (PE/PEc; SPL) of monkeys while these made reaches and saccades to visual targets, when the target position changed unexpectedly. Neural activity was modulated by hand position, speed, and movement direction, and by pre- and/or postsaccadic signals. After bilateral muscimol injection, an increase in the hand reaction- and movement-time toward both the first and second targets was observed. This caused an increase in the time necessary for the trajectory correction, and therefore an elongation of the hand-path toward the first target location. Furthermore, hand trajectories were different in shape than control ones. An elongation of the eye reaction time to both first and second targets was also observed, which could partially explain the deficit of planning and correction of hand movement. These results identify the superior parietal lobule as a crucial node in the online control of hand and eye movement and highlight the role of the eye impairment in the emergence of the reaching disorder so far regarded as the hallmark of optic ataxia.


Assuntos
Ataxia/fisiopatologia , Mãos/fisiopatologia , Movimento , Lobo Parietal/fisiopatologia , Desempenho Psicomotor/fisiologia , Movimentos Sacádicos , Animais , Modelos Animais de Doenças , Macaca mulatta , Masculino
9.
Curr Biol ; 34(2): 444-450.e5, 2024 01 22.
Artigo em Inglês | MEDLINE | ID: mdl-38176416

RESUMO

The appreciation of music is a universal trait of humankind.1,2,3 Evidence supporting this notion includes the ubiquity of music across cultures4,5,6,7 and the natural predisposition toward music that humans display early in development.8,9,10 Are we musical animals because of species-specific predispositions? This question cannot be answered by relying on cross-cultural or developmental studies alone, as these cannot rule out enculturation.11 Instead, it calls for cross-species experiments testing whether homologous neural mechanisms underlying music perception are present in non-human primates. We present music to two rhesus monkeys, reared without musical exposure, while recording electroencephalography (EEG) and pupillometry. Monkeys exhibit higher engagement and neural encoding of expectations based on the previously seeded musical context when passively listening to real music as opposed to shuffled controls. We then compare human and monkey neural responses to the same stimuli and find a species-dependent contribution of two fundamental musical features-pitch and timing12-in generating expectations: while timing- and pitch-based expectations13 are similarly weighted in humans, monkeys rely on timing rather than pitch. Together, these results shed light on the phylogeny of music perception. They highlight monkeys' capacity for processing temporal structures beyond plain acoustic processing, and they identify a species-dependent contribution of time- and pitch-related features to the neural encoding of musical expectations.


Assuntos
Música , Animais , Percepção da Altura Sonora/fisiologia , Motivação , Eletroencefalografia/métodos , Primatas , Estimulação Acústica , Percepção Auditiva/fisiologia
10.
Brain Struct Funct ; 228(1): 145-167, 2023 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-35451642

RESUMO

Traditional and new disciplines converge in suggesting that the parietal lobe underwent a considerable expansion during human evolution. Through the study of endocasts and shape analysis, paleoneurology has shown an increased globularity of the braincase and bulging of the parietal region in modern humans, as compared to other human species, including Neandertals. Cortical complexity increased in both the superior and inferior parietal lobules. Emerging fields bridging archaeology and neuroscience supply further evidence of the involvement of the parietal cortex in human-specific behaviors related to visuospatial capacity, technological integration, self-awareness, numerosity, mathematical reasoning and language. Here, we complement these inferences on the parietal lobe evolution, with results from more classical neuroscience disciplines, such as behavioral neurophysiology, functional neuroimaging, and brain lesions; and apply these to define the neural substrates and the role of the parietal lobes in the emergence of functions at the core of material culture, such as tool-making, tool use and constructional abilities.


Assuntos
Antropologia Cultural , Evolução Biológica , Lobo Parietal , Humanos , Lobo Parietal/anatomia & histologia , Lobo Parietal/fisiologia , Crânio/anatomia & histologia
11.
Neuron ; 111(23): 3871-3884.e14, 2023 Dec 06.
Artigo em Inglês | MEDLINE | ID: mdl-37725980

RESUMO

Primates make decisions visually by shifting their view from one object to the next, comparing values between objects, and choosing the best reward, even before acting. Here, we show that when monkeys make value-guided choices, amygdala neurons encode their decisions in an abstract, purely internal representation defined by the monkey's current view but not by specific object or reward properties. Across amygdala subdivisions, recorded activity patterns evolved gradually from an object-specific value code to a transient, object-independent code in which currently viewed and last-viewed objects competed to reflect the emerging view-based choice. Using neural-network modeling, we identified a sequence of computations by which amygdala neurons implemented view-based decision making and eventually recovered the chosen object's identity when the monkeys acted on their choice. These findings reveal a neural mechanism in the amygdala that derives object choices from abstract, view-based computations, suggesting an efficient solution for decision problems with many objects.


Assuntos
Tonsila do Cerebelo , Comportamento de Escolha , Animais , Comportamento de Escolha/fisiologia , Macaca mulatta/fisiologia , Tonsila do Cerebelo/fisiologia , Recompensa , Neurônios/fisiologia , Tomada de Decisões/fisiologia
12.
J Neurosci ; 31(2): 742-52, 2011 Jan 12.
Artigo em Inglês | MEDLINE | ID: mdl-21228183

RESUMO

The frontal mechanisms of motor intention were studied in dorsal premotor and motor cortex of monkeys making direct reaches to visual targets and online corrections of hand trajectory, whenever a change of the target's location occurred. This study and our previous one of parietal cortex (Archambault et al., 2009) provide a picture on the evolution of motor intention and online control of movement in the parietofrontal system. In frontal cortex, significant relationships were found between neural activity and hand kinematics (position, speed, and movement direction). When a change of motor intention occurred, the activity typical of the movement to the first target smoothly evolved into that associated with the movement toward the second one, as observed during direct reaches. Under these conditions, parietal cells remained a more accurate predictor of hand trajectory than frontal ones. The time lags of neural activity with hand kinematics showed that motor, premotor, and parietal cortex were activated sequentially. After the first target's presentation and its change of location, the population activity signaled the change of motor plan before the hand moved to the initial target's position. This signaling occurred earlier in premotor than in motor and parietal cortex. Thus, premotor cortex encodes a higher-order command for the correction of motor intention, while parietal cortex seems responsible for estimating the kinematics of the motor periphery, an essential step to allow motor cortex to modify the hand trajectory. This indicates that the parietofrontal system can update an original and not-yet-accomplished motor plan during its execution.


Assuntos
Lobo Frontal/fisiologia , Mãos/fisiologia , Intenção , Movimento , Lobo Parietal/fisiologia , Percepção Visual , Potenciais de Ação , Animais , Fenômenos Biomecânicos , Macaca mulatta , Masculino , Neurônios/fisiologia , Desempenho Psicomotor , Análise de Regressão , Movimentos Sacádicos
13.
Prog Neurobiol ; 210: 102214, 2022 03.
Artigo em Inglês | MEDLINE | ID: mdl-34979174

RESUMO

Studies of neural population dynamics of cell activity from monkey motor areas during reaching show that it mostly represents the generation and timing of motor behavior. We compared neural dynamics in dorsal premotor cortex (PMd) during the performance of a visuomotor task executed individually or cooperatively and during an observation task. In the visuomotor conditions, monkeys applied isometric forces on a joystick to guide a visual cursor in different directions, either alone or jointly with a conspecific. In the observation condition, they observed the cursor's motion guided by the partner. We found that in PMd neural dynamics were widely shared across action execution and observation, with cursor motion directions more accurately discriminated than task types. This suggests that PMd encodes spatial aspects irrespective of specific behavioral demands. Furthermore, our results suggest that largest components of premotor population dynamics, which have previously been suggested to reflect a transformation from planning to movement execution, may rather reflect higher cognitive-motor processes, such as the covert representation of actions and goals shared across tasks that require movement and those that do not.


Assuntos
Córtex Motor , Animais , Humanos , Macaca mulatta , Movimento , Dinâmica Populacional , Desempenho Psicomotor
14.
Cortex ; 149: 123-136, 2022 04.
Artigo em Inglês | MEDLINE | ID: mdl-35219996

RESUMO

A hallmark of human evolution resides in the ability to adapt our actions to those of others. This aptitude optimizes collective behavior, allowing to achieve goals unattainable by acting alone. We have previously shown that macaque monkeys are able to coordinate their actions when engaged in dyadic contexts, therefore they offer a good model to study the roots of joint action. Here, we analyze the behavior of five macaques required to perform visuomotor isometric tasks, either individually or together with a partner. By pre-cueing or not the future action condition (SOLO or TOGETHER) we investigated the existence of a 'We-representation' in monkeys. We found that pre-instructing the action context improves the dyadic performance, thanks to the emergence of an optimal kinematic setting, that facilitates inter-individual motor coordination. Our results offer empirical evidence of a 'We-representation' in macaques, that when evoked provides an overall beneficial effect on joint performance.


Assuntos
Desempenho Psicomotor , Animais , Haplorrinos , Humanos , Desempenho Psicomotor/fisiologia
15.
Prog Neurobiol ; 208: 102186, 2022 01.
Artigo em Inglês | MEDLINE | ID: mdl-34780864

RESUMO

The brain operates through the synaptic interaction of distant neurons within flexible, often heterogeneous, distributed systems. Histological studies have detailed the connections between distant neurons, but their functional characterization deserves further exploration. Studies performed on the corpus callosum in animals and humans are unique in that they capitalize on results obtained from several neuroscience disciplines. Such data inspire a new interpretation of the function of callosal connections and delineate a novel road map, thus paving the way toward a general theory of cortico-cortical connectivity. Here we suggest that callosal axons can drive their post-synaptic targets preferentially when coupled to other inputs endowing the cortical network with a high degree of conditionality. This might depend on several factors, such as their pattern of convergence-divergence, the excitatory and inhibitory operation mode, the range of conduction velocities, the variety of homotopic and heterotopic projections and, finally, the state-dependency of their firing. We propose that, in addition to direct stimulation of post-synaptic targets, callosal axons often play a conditional driving or modulatory role, which depends on task contingencies, as documented by several recent studies.


Assuntos
Axônios , Corpo Caloso , Animais , Axônios/fisiologia , Encéfalo , Corpo Caloso/fisiologia , Humanos , Vias Neurais/fisiologia , Neurônios
16.
eNeuro ; 8(4)2021.
Artigo em Inglês | MEDLINE | ID: mdl-34039649

RESUMO

In macaque monkeys, dorsal intraparietal areas are involved in several daily visuomotor actions. However, their border and sources of cortical afferents remain loosely defined. Combining retrograde histologic tracing and MRI diffusion-based tractography, we found a complex hodology of the dorsal bank of the intraparietal sulcus (db-IPS), which can be subdivided into a rostral intraparietal area PEip, projecting to the spinal cord, and a caudal medial intraparietal area MIP lacking such projections. Both include an anterior and a posterior sector, emerging from their ipsilateral, gradient-like connectivity profiles. As tractography estimations, we used the cross-sectional area of the white matter bundles connecting each area with other parietal and frontal regions, after selecting regions of interest (ROIs) corresponding to the injection sites of neural tracers. For most connections, we found a significant correlation between the proportions of cells projecting to all sectors of PEip and MIP along the continuum of the db-IPS and tractography. The latter also revealed "false positive" but plausible connections awaiting histologic validation.


Assuntos
Imagem de Difusão por Ressonância Magnética , Substância Branca , Animais , Mapeamento Encefálico , Lobo Frontal , Macaca fascicularis , Vias Neurais/diagnóstico por imagem , Lobo Parietal/diagnóstico por imagem , Substância Branca/diagnóstico por imagem
17.
Eur J Neurosci ; 31(12): 2320-40, 2010 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-20550568

RESUMO

In human and nonhuman primates parietal cortex is formed by a multiplicity of areas. For those of the superior parietal lobule (SPL) there exists a certain homology between man and macaques. As a consequence, optic ataxia, a disturbed visual control of hand reaching, has similar features in man and monkeys. Establishing such correspondence has proven difficult for the areas of the inferior parietal lobule (IPL). This difficulty depends on many factors. First, no physiological information is available in man on the dynamic properties of cells in the IPL. Second, the number of IPL areas identified in the monkey is paradoxically higher than that so far described in man, although this issue will probably be reconsidered in future years, thanks to comparative imaging studies. Third, the consequences of parietal lesions in monkeys do not always match those observed in humans. This is another paradox if one considers that, in certain cases, the functional properties of neurons in the monkey's IPL would predict the presence of behavioral skills, such as construction capacity, that however do not seem to emerge in the wild. Therefore, constructional apraxia, which is well characterized in man, has never been described in monkeys and apes. Finally, only certain aspects, i.e. hand directional hypokinesia and gaze apraxia (Balint's psychic paralysis of gaze), of the multifaceted syndrome hemispatial neglect have been described in monkeys. These similarities, differences and paradoxes, among many others, make the study of the evolution and function of parietal cortex a challenging case.


Assuntos
Evolução Biológica , Lobo Parietal/anatomia & histologia , Lobo Parietal/fisiopatologia , Transtornos da Percepção/fisiopatologia , Animais , Transtornos Cognitivos/patologia , Transtornos Cognitivos/fisiopatologia , Humanos , Transtornos dos Movimentos/patologia , Transtornos dos Movimentos/fisiopatologia , Lobo Parietal/patologia , Lobo Parietal/fisiologia , Transtornos da Percepção/patologia , Desempenho Psicomotor/fisiologia , Síndrome , Campos Visuais
18.
Cereb Cortex ; 19(12): 2848-64, 2009 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-19359349

RESUMO

The parietal mechanisms for the control of hand movement trajectory were studied by recording cell activity in area 5 of monkeys making direct reaches to visual targets and online corrections of movement trajectory, after change of target location in space. The activity of hand-related cells was fitted with a linear model including hand position, movement direction, and speed. The neural activity modulation mostly led, but also followed, hand movement. When a change of hand trajectory occurred, the pattern of activity associated with the movement to the first target evolved into that typical of the movement to the second one, thus following the corresponding variations of the hand kinematics. The visual signal concerning target location in space did not influence the firing activity associated with the direction of hand movement within the first 150 ms after target presentation. This might be the time necessary for the visuo-motor transformation underlying reaching. We conclude that online control of hand trajectory not only resides in the relationships between neural activity and kinematics, but, under specific circumstances, also on the coexistence of signals about ongoing and future hand movement direction.


Assuntos
Mãos/fisiologia , Percepção de Movimento/fisiologia , Movimento/fisiologia , Lobo Parietal/fisiologia , Desempenho Psicomotor/fisiologia , Animais , Retroalimentação Psicológica/fisiologia , Macaca mulatta , Masculino
19.
Handb Clin Neurol ; 151: 499-524, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29519477

RESUMO

Eye-hand coordination lies at the core of our daily actions and interactions with objects and people around us, and is central to understanding how the brain creates internal models of the action space and generates movement within it. Eye-hand coordination remains a very complex and elusive problem, which is further complicated by its distributed representation in the brain. In fact, evolution did not confine such a crucial function to a single area, but rather assigned it to several distributed cortical and subcortical systems, where encoding mechanisms can satisfy multiple demands and the consequences of lesions are less disruptive. We will discuss evidence suggesting that eye-hand coordination is, indeed, an emerging function of internal parietal operations and of their interplay with frontal cortex, where the cortical eye and hand motor output domains reside. Therefore, coordination of eye and hand movements requires an appropriate spatiotemporal activation of the subcortical structures which control the eyes and hand. In this distributed network, information transfer between different cortical areas and with subcortical structures is based on temporally dispersed communication patterns.


Assuntos
Lobo Frontal/fisiologia , Movimento/fisiologia , Vias Neurais/fisiologia , Lobo Parietal/fisiologia , Desempenho Psicomotor/fisiologia , Animais , Lobo Frontal/anatomia & histologia , Humanos , Vias Neurais/anatomia & histologia , Lobo Parietal/anatomia & histologia
20.
eNeuro ; 4(1)2017.
Artigo em Inglês | MEDLINE | ID: mdl-28275714

RESUMO

The statistical structure of intrinsic parietal and parieto-frontal connectivity in monkeys was studied through hierarchical cluster analysis. Based on their inputs, parietal and frontal areas were grouped into different clusters, including a variable number of areas that in most instances occupied contiguous architectonic fields. Connectivity tended to be stronger locally: that is, within areas of the same cluster. Distant frontal and parietal areas were targeted through connections that in most instances were reciprocal and often of different strength. These connections linked parietal and frontal clusters formed by areas sharing basic functional properties. This led to five different medio-laterally oriented pillar domains spanning the entire extent of the parieto-frontal system, in the posterior parietal, anterior parietal, cingulate, frontal, and prefrontal cortex. Different information processing streams could be identified thanks to inter-domain connectivity. These streams encode fast hand reaching and its control, complex visuomotor action spaces, hand grasping, action/intention recognition, oculomotor intention and visual attention, behavioral goals and strategies, and reward and decision value outcome. Most of these streams converge on the cingulate domain, the main hub of the system. All of them are embedded within a larger eye-hand coordination network, from which they can be selectively set in motion by task demands.


Assuntos
Cognição/fisiologia , Simulação por Computador , Lobo Frontal/fisiologia , Modelos Neurológicos , Atividade Motora/fisiologia , Lobo Parietal/fisiologia , Animais , Análise por Conglomerados , Lobo Frontal/anatomia & histologia , Macaca , Vias Neurais/anatomia & histologia , Vias Neurais/fisiologia , Lobo Parietal/anatomia & histologia
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