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1.
Proc Natl Acad Sci U S A ; 108(45): E1080-8, 2011 Nov 08.
Artigo em Inglês | MEDLINE | ID: mdl-21709221

RESUMO

Nervous systems adapt to the prevailing sensory environment, and the consequences of this adaptation can be observed in the responses of single neurons and in perception. Given the variety of timescales underlying events in the natural world, determining the temporal characteristics of adaptation is important to understanding how perception adjusts to its sensory environment. Previous work has shown that neural adaptation can occur on a timescale of milliseconds, but perceptual adaptation has generally been studied over relatively long timescales, typically on the order of seconds. This disparity raises important questions. Can perceptual adaptation be observed at brief, functionally relevant timescales? And if so, how do its properties relate to the rapid adaptation seen in cortical neurons? We address these questions in the context of visual motion processing, a perceptual modality characterized by rapid temporal dynamics. We demonstrate objectively that 25 ms of motion adaptation is sufficient to generate a motion aftereffect, an illusory sensation of movement experienced when a moving stimulus is replaced by a stationary pattern. This rapid adaptation occurs regardless of whether the adapting motion is perceived. In neurophysiological recordings from the middle temporal area of primate visual cortex, we find that brief motion adaptation evokes direction-selective responses to subsequently presented stationary stimuli. A simple model shows that these neural responses can explain the consequences of rapid perceptual adaptation. Overall, we show that the motion aftereffect is not merely an intriguing perceptual illusion, but rather a reflection of rapid neural and perceptual processes that can occur essentially every time we experience motion.


Assuntos
Adaptação Fisiológica , Percepção de Movimento , Neurônios/fisiologia , Humanos , Percepção Visual
2.
J Am Acad Orthop Surg ; 32(11): e523-e532, 2024 Jun 01.
Artigo em Inglês | MEDLINE | ID: mdl-38652882

RESUMO

This review article focuses on the applications of deep learning with neural networks and multimodal neural networks in the orthopaedic domain. By providing practical examples of how artificial intelligence (AI) is being applied successfully in orthopaedic surgery, particularly in the realm of imaging data sets and the integration of clinical data, this study aims to provide orthopaedic surgeons with the necessary tools to not only evaluate existing literature but also to consider AI's potential in their own clinical or research pursuits. We first review standard deep neural networks which can analyze numerical clinical variables, then describe convolutional neural networks which can analyze image data, and then introduce multimodal AI models which analyze various types of different data. Then, we contrast these deep learning techniques with related but more limited techniques such as radiomics, describe how to interpret deep learning studies, and how to initiate such studies at your institution. Ultimately, by empowering orthopaedic surgeons with the knowledge and know-how of deep learning, this review aspires to facilitate the translation of research into clinical practice, thereby enhancing the efficacy and precision of real-world orthopaedic care for patients.


Assuntos
Inteligência Artificial , Aprendizado Profundo , Procedimentos Ortopédicos , Humanos , Procedimentos Ortopédicos/métodos , Redes Neurais de Computação , Ortopedia
3.
J Neurophysiol ; 106(4): 1888-900, 2011 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-21753021

RESUMO

Neurons throughout the visual system have receptive fields with both excitatory and suppressive components. The latter are responsible for a phenomenon known as surround suppression, in which responses decrease as a stimulus is extended beyond a certain size. Previous work has shown that surround suppression in the primary visual cortex depends strongly on stimulus contrast. Such complex center-surround interactions are thought to relate to a variety of functions, although little is known about how they affect responses in the extrastriate visual cortex. We have therefore examined the interaction of center and surround in the middle temporal (MT) area of the macaque (Macaca mulatta) extrastriate cortex by recording neuronal responses to stimuli of different sizes and contrasts. Our findings indicate that surround suppression in MT is highly contrast dependent, with the strongest suppression emerging unexpectedly at intermediate stimulus contrasts. These results can be explained by a simple model that takes into account the nonlinear contrast sensitivity of the neurons that provide input to MT. The model also provides a qualitative link to previous reports of a topographic organization of area MT based on clusters of neurons with differing surround suppression strength. We show that this organization can be detected in the gamma-band local field potentials (LFPs) and that the model parameters can predict the contrast sensitivity of these LFP responses. Overall our results show that surround suppression in area MT is far more common than previously suspected, highlighting the potential functional importance of the accumulation of nonlinearities along the dorsal visual pathway.


Assuntos
Mapeamento Encefálico , Sensibilidades de Contraste/fisiologia , Lobo Occipital/fisiologia , Potenciais de Ação , Animais , Fixação Ocular , Macaca mulatta , Modelos Neurológicos , Percepção de Movimento/fisiologia , Neurônios/classificação , Neurônios/fisiologia , Estimulação Luminosa , Percepção de Tamanho/fisiologia , Córtex Visual/fisiologia , Vias Visuais/fisiologia
4.
J Neurosci ; 29(43): 13702-9, 2009 Oct 28.
Artigo em Inglês | MEDLINE | ID: mdl-19864582

RESUMO

The dorsal pathway of the primate visual cortex is involved in the processing of motion signals that are useful for perception and behavior. Along this pathway, motion information is first measured by the primary visual cortex (V1), which sends specialized projections to extrastriate regions such as the middle temporal area (MT). Previous work with plaid stimuli has shown that most V1 neurons respond to the individual components of moving stimuli, whereas some MT neurons are capable of estimating the global motion of the pattern. In this work, we show that the majority of neurons in the medial superior temporal area (MST), which receives input from MT, have this pattern-selective property. Interestingly, the local field potentials (LFPs) measured simultaneously with the spikes often exhibit properties similar to that of the presumptive feedforward input to each area: in the high-gamma frequency band, the LFPs in MST are as component selective as the spiking outputs of MT, and MT LFPs have plaid responses that are similar to the spiking outputs of V1. In the lower LFP frequency bands (beta and low gamma), component selectivity is very common, and pattern selectivity is almost entirely absent in both MT and MST. Together, these results suggest a surprisingly strong link between the sensory tuning of cortical LFPs and afferent inputs, with important implications for the interpretation of imaging studies and for models of cortical function.


Assuntos
Potenciais de Ação , Percepção de Movimento/fisiologia , Neurônios/fisiologia , Lobo Temporal/fisiologia , Córtex Visual/fisiologia , Vias Visuais/fisiologia , Animais , Macaca mulatta , Microeletrodos , Periodicidade , Estimulação Luminosa
5.
J Neurophysiol ; 103(6): 3123-38, 2010 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-20457860

RESUMO

Neurons in the primate extrastriate cortex are highly selective for complex stimulus features such as faces, objects, and motion patterns. One explanation for this selectivity is that neurons in these areas carry out sophisticated computations on the outputs of lower-level areas such as primary visual cortex (V1), where neuronal selectivity is often modeled in terms of linear spatiotemporal filters. However, it has long been known that such simple V1 models are incomplete because they fail to capture important nonlinearities that can substantially alter neuronal selectivity for specific stimulus features. Thus a key step in understanding the function of higher cortical areas is the development of realistic models of their V1 inputs. We have addressed this issue by constructing a computational model of the V1 neurons that provide the strongest input to extrastriate cortical middle temporal (MT) area. We find that a modest elaboration to the standard model of V1 direction selectivity generates model neurons with strong end-stopping, a property that is also found in the V1 layers that provide input to MT. With this computational feature in place, the seemingly complex properties of MT neurons can be simulated by assuming that they perform a simple nonlinear summation of their inputs. The resulting model, which has a very small number of free parameters, can simulate many of the diverse properties of MT neurons. In particular, we simulate the invariance of MT tuning curves to the orientation and length of tilted bar stimuli, as well as the accompanying temporal dynamics. We also show how this property relates to the continuum from component to pattern selectivity observed when MT neurons are tested with plaids. Finally, we confirm several key predictions of the model by recording from MT neurons in the alert macaque monkey. Overall our results demonstrate that many of the seemingly complex computations carried out by high-level cortical neurons can in principle be understood by examining the properties of their inputs.


Assuntos
Modelos Neurológicos , Percepção de Movimento/fisiologia , Lobo Temporal/fisiologia , Córtex Visual/fisiologia , Animais , Simulação por Computador , Sensibilidades de Contraste/fisiologia , Macaca mulatta , Vias Neurais/fisiologia , Dinâmica não Linear , Orientação/fisiologia , Estimulação Luminosa/métodos , Tempo de Reação/fisiologia , Percepção Espacial/fisiologia , Fatores de Tempo , Campos Visuais/fisiologia
6.
Int J Radiat Oncol Biol Phys ; 104(4): 773-777, 2019 07 15.
Artigo em Inglês | MEDLINE | ID: mdl-30951806

RESUMO

PURPOSE: Radiation oncology is often overlooked in US medical school curricula, with few opportunities for most students to learn about the specialty or the value of radiation therapy in cancer care. Tumor boards represent a potential avenue not only to increase students' exposure to radiation oncologists but also to provide a fundamental understanding of the multidisciplinary nature of cancer care and effective collaboration in clinical practice. METHODS AND MATERIALS: In this study, we evaluated a novel radiation oncologist-driven tumor board shadowing experience at 3 medical schools in the United States and Canada. A total of 323 first- and second-year medical students participated, of whom 77.4% completed a follow-up survey assessing the effectiveness of the program as a learning tool. RESULTS: Compared with traditional clinical shadowing, students were more likely to believe that tumor board shadowing provided a similar or better experience in terms of educational content (85%), exposure to a new field (96%), and overall experience (89%). Forty-eight percent of students perceived a greater amount of multidisciplinary collaboration in oncologic care than they thought existed prior to attending. Forty-eight percent of students also felt more competent interacting with oncologists after participating, whereas 21% felt more competent interacting with patients with cancer. Students' perception of increased competence was correlated with the amount of time their assigned physician mentor spent answering their questions after the tumor board (P < .01). Second-year medical students also had a more favorable overall experience than first-year medical students did (P = .04). CONCLUSIONS: Multidisciplinary tumor boards can be used effectively as a unique immersive learning opportunity that can be feasibly implemented to improve knowledge of clinical oncology and multidisciplinary care in medical schools and expose students to physicians in smaller fields such as radiation oncology.


Assuntos
Mentores , Radio-Oncologistas , Radioterapia (Especialidade)/educação , Estudantes de Medicina/psicologia , Visitas de Preceptoria/métodos , Canadá , Competência Clínica , Feminino , Humanos , Comunicação Interdisciplinar , Masculino , Desenvolvimento de Programas , Avaliação de Programas e Projetos de Saúde , Visitas de Preceptoria/organização & administração , Estados Unidos
7.
Cureus ; 10(2): e2238, 2018 Feb 27.
Artigo em Inglês | MEDLINE | ID: mdl-29719740

RESUMO

In this case report, we present the clinical course of a woman with locally advanced mucosal melanoma of the oral cavity. She was initially treated with surgery with adjuvant local radiation of 50 Gy in 20 fractions. She quickly relapsed with an aggressive regional recurrence of the disease on the neck and with numerous pulmonary metastases. Immunotherapy with pembrolizumab was started, with initial good response and reduction in the size of the lesion in the neck. The regression, however, was short-lived, as the mass quickly grew at a remarkable rate and the lung lesions progressed significantly. Palliative local radiation of 24 Gy in three fractions delivered at days zero, seven, and 21 to the neck mass was eventually given with the goal to alleviate symptoms. An immediate tumor regression was observed after the first fraction of radiotherapy. Remarkably, the lung lesions had also started regressing following radiation. We believe this to be a case of abscopal effect witnessed during the delivery of radiotherapy. A review of the recent literature is also presented here.

8.
Cureus ; 10(7): e2985, 2018 Jul 16.
Artigo em Inglês | MEDLINE | ID: mdl-30237946

RESUMO

Background Esophageal cancer treatment requires large radiation fields due to the deep location of the esophagus in the mediastinum and the high incidence of radial spread. There is no optimal radiation technique to ensure appropriate target coverage and minimal dose to all normal structures. Methods Fifteen consecutive cases of locally advanced esophageal cancer treated with radical chemoradiation (CRT) were analyzed. The total prescribed dose was 50.4 Gy in 28 fractions. A total of 60 plans were generated for analysis, including four different methods for each case. Method 1 consisted of a four-field conformal technique; method 2 was a two-plan technique (antero-posterior (AP), postero-anterior (PA), two posterior oblique fields (RPO and LPO)); method 3 was a three-field conformal technique (AP, LPO, RPO); and method 4 was a volumetric modulated arc radiotherapy (VMAT) technique. Dose ratios were calculated using the minimum, maximum, mean, and median doses of methods 2-4 over the dose of method 1. Ratios for the planning target volume (PTV) and to surrounding organs were analyzed. Results The mean PTV dose ratio ranged from 0.994 to 1.048 (SD = 0.01) representing an adequate target coverage for all techniques based on an analysis of variance (ANOVA). For the lungs, method 2 had the lowest lung V20 with a ratio of 0.861 (SD = 0.12), whereas method 3 had the highest with 1.644 (SD = 0.14). For the heart, method 3 had the lowest heart V40 with a mean dose ratio of 0.807 (SD = 0.09), whereas method 2 had the highest with 1.160 (SD = 0.11). For the liver, method 2 had the lowest V30 with a mean ratio of 0.857 (SD = 0.1) whereas method 4 had the highest with 1.672 (SD = 0.48). For the spinal cord, method 3 had the lowest mean dose ratio of 0.559 (SD = 0.09) whereas method 2 had the highest with 1.094 (SD = 0.04). Conclusion The four radiation techniques for esophageal cancer treatment were appropriate for target coverage. Method 2 had the most organ-sparing effect for the lungs and liver, and method 3 for the heart and spinal cord. VMAT did not add any significant sparing. A case-by-case decision should be made based on the patient's comorbidities.

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