RESUMO
BACKGROUND: Effective dissemination of scientific results depends on competent peer reviewers. Participating as a reviewer is important for academic advancement, although no formal training in peer review has existed in the movement disorders field. OBJECTIVES: To report the design, implementation, and outcomes of a Peer Reviewing Education and Mentoring Program. METHODS: We enrolled 10 participants in a 1-year mentored program with didactic training followed by two peer reviews with feedback from a senior mentor. Outcomes measures were an objective skills assessment and subjective questionnaire. RESULTS: Participants were diverse in gender, age, and background. All participants were deemed competent reviewers by their mentors upon completion. Objective skills improved after didactic training and self-assessment increased significantly after program completion (19.5 [12-25] to 29 [25-30], P < 0.001). CONCLUSIONS: This dedicated program helped participants gain competence and confidence in the peer review process. We plan to continue the program while improving educational methods and assessments. © 2022 International Parkinson and Movement Disorder Society.
Assuntos
Tutoria , Transtornos dos Movimentos , Humanos , Mentores , Grupo AssociadoRESUMO
Cochlear implants stimulate the auditory nerve with amplitude-modulated (AM) electric pulse trains. Pulse rates >2,000 pulses per second (pps) have been hypothesized to enhance transmission of temporal information. Recent studies, however, have shown that higher pulse rates impair phase locking to sinusoidal AM in the auditory cortex and impair perceptual modulation detection. Here, we investigated the effects of high pulse rates on the temporal acuity of transmission of pulse trains to the auditory cortex. In anesthetized guinea pigs, signal-detection analysis was used to measure the thresholds for detection of gaps in pulse trains at rates of 254, 1,017, and 4,069 pps and in acoustic noise. Gap-detection thresholds decreased by an order of magnitude with increases in pulse rate from 254 to 4,069 pps. Such a pulse-rate dependence would likely influence speech reception through clinical speech processors. To elucidate the neural mechanisms of gap detection, we measured recovery from forward masking after a 196.6-ms pulse train. Recovery from masking was faster at higher carrier pulse rates and masking increased linearly with current level. We fit the data with a dual-exponential recovery function, consistent with a peripheral and a more central process. High-rate pulse trains evoked less central masking, possibly due to adaptation of the response in the auditory nerve. Neither gap detection nor forward masking varied with cortical depth, indicating that these processes are likely subcortical. These results indicate that gap detection and modulation detection are mediated by two separate neural mechanisms.
Assuntos
Córtex Auditivo/fisiologia , Percepção Auditiva/fisiologia , Implantes Cocleares , Estimulação Acústica , Potenciais de Ação , Análise de Variância , Animais , Nervo Coclear/fisiologia , Estimulação Elétrica , Feminino , Cobaias , Modelos Lineares , Masculino , Microeletrodos , Mascaramento Perceptivo/fisiologia , Detecção de Sinal Psicológico/fisiologia , Fatores de TempoRESUMO
Cochlear implant listeners receive auditory stimulation through amplitude-modulated electric pulse trains. Auditory nerve studies in animals demonstrate qualitatively different patterns of firing elicited by low versus high pulse rates, suggesting that stimulus pulse rate might influence the transmission of temporal information through the auditory pathway. We tested in awake guinea pigs the temporal acuity of auditory cortical neurons for gaps in cochlear implant pulse trains. Consistent with results using anesthetized conditions, temporal acuity improved with increasing pulse rates. Unlike the anesthetized condition, however, cortical neurons responded in the awake state to multiple distinct features of the gap-containing pulse trains, with the dominant features varying with stimulus pulse rate. Responses to the onset of the trailing pulse train (Trail-ON) provided the most sensitive gap detection at 1,017 and 4,069 pulse-per-second (pps) rates, particularly for short (25 ms) leading pulse trains. In contrast, under conditions of 254 pps rate and long (200 ms) leading pulse trains, a sizeable fraction of units demonstrated greater temporal acuity in the form of robust responses to the offsets of the leading pulse train (Lead-OFF). Finally, TONIC responses exhibited decrements in firing rate during gaps, but were rarely the most sensitive feature. Unlike results from anesthetized conditions, temporal acuity of the most sensitive units was nearly as sharp for brief as for long leading bursts. The differences in stimulus coding across pulse rates likely originate from pulse rate-dependent variations in adaptation in the auditory nerve. Two marked differences from responses to acoustic stimulation were: first, Trail-ON responses to 4,069 pps trains encoded substantially shorter gaps than have been observed with acoustic stimuli; and second, the Lead-OFF gap coding seen for <15 ms gaps in 254 pps stimuli is not seen in responses to sounds. The current results may help to explain why moderate pulse rates around 1,000 pps are favored by many cochlear implant listeners.