An Investigation of the Neural Mechanisms of Interval Timing Behaviour

An Investigation of the Neural Mechanisms of Interval Timing Behaviour

Author: Lourdes Valencia Torres

Publisher:

Published: 2012

Total Pages:

ISBN-13:

DOWNLOAD EBOOK

Timing behaviour plays an important role in the daily living of individuals from a great variety of species. For example, organisms must be able to discriminate between the durations of relevant events (temporal discrimination) and to regulate their own behaviour in time (temporal differentiation). The processes that allow animals to adjust their behaviour to the temporal regularities of the environment have been studied using different procedures which model the relationship between time and behaviour. A taxonomy of timing based on the subject's location in time with respect to the signalled duration has been proposed. When an organism judges the duration of an elapsed interval the timing is retrospective (e.g. interval bisection); when it responds during an elapsing duration the timing is immediate (e.g. fixed-interval peak procedure); and finally when it chooses between future delayed outcomes the timing is prospective (e.g. inter-temporal choice schedules). It has been proposed that the cortico-striato-thalamo-cortical (CSTC) circuits play a special role in interval timing and inter-temporal choice behaviour. This thesis examined whether performance of timing tasks by rats induces neuronal activation within the prefrontal cortex and corpus striatum, as revealed by Fos expression, and explored a new approach to analyzing performance in an inter-temporal choice schedule. Chapter 1 describes the literature which forms the background of the project. It reviews interval timing and inter-temporal choice methodology and theory, the neurobiological substrates underlying both kinds of behaviour, and finally Fos expression, as a marker of neuronal activation. Chapters 2-4 present experiments that examined whether, in intact rats, performance of different interval timing tasks was associated with neuronal activation in the dorsal striatum and prefrontal cortex, as revealed by expression of the Fos protein, the product of the immediate-early gene c-fos (Experiments 1-3). Chapters 5-7 present experiments focused on some behavioural and neurobiological aspects of inter-temporal choice behaviour. One purpose of these experiments was to develop an abbreviated approach to estimate the rate of delay discounting (K) and reinforcer size sensitivity parameter (Q) based on the Multiplicative Hyperbolic Model of inter-temporal choice (MHM), using the adjusting-delay schedule. Additionally a novel way of quantifying transitional behaviour in the adjusting-delay schedule was presented based on analysis of the power spectrum of cyclical changes in the adjusting delay, dB (Experiment 4). This approach was used to analyze data obtained from rats performing on the adjusting-delay schedule under methodological manipulations (Experiment 5) and neurobiological interventions (Experiment 6). Experiment 1 (Chapter 2) investigated whether, in intact rats, performance on the discrete-trials temporal discrimination task was associated with neuronal activation in the prefrontal cortex and corpus striatum, as revealed by enhanced Fos expression in these areas. Performance on temporal and light-intensity discrimination tasks was well described by a two-parameter logistic equation. The rats trained under the timing task showed increased Fos expression in the orbital prefrontal cortex (OPFC) and the nucleus accumbens (Acb) compared to the rats trained under the light-intensity discrimination task, indicating a substantial activation of these areas during the timing task. However, there was no evidence for involvement of the dorsal striatum in the performance of this task. Experiment 2 (Chapter 3) examined whether performance on an interval-bisection task in the range of milliseconds showed increased Fos expression in the prefrontal cortex and corpus striatum compared to performance under a light-intensity bisection task. Performance on both bisection tasks conformed to the conventional logistic psychometric function. The rats trained under the timing task showed increased Fos expression in the OPFC, infralimbic and prelimbic cortex and Acb compared to the rats trained under the light-intensity bisection task. The results provided no evidence for an involvement of the dorsal striatum in the performance of this task. Experiment 3 (Chapter 4) investigated whether performance on the fixed-interval peak procedure (FIPP) was associated with increased neuronal activity in the prefrontal cortex and corpus striatum, as revealed by Fos expression. The results showed that response rate during peak trials was characterized by a 'Gaussian plus ramp' function, with maximal responding (peak rate) occurring around the time of the reinforcement in the FI trials (peak time). Consistent with the results of Experiments 1 and 2, the concentration of Fos-positive neurones in the OPFC was greater in rats exposed to FIPP than in rats exposed to a VI schedule. However, the results did not provide any evidence for a specific involvement of the dorsal or ventral striatum in FIPP performance. In Experiment 4 (Chapter 5), rats made repeated choices on an adjusting-delay schedule. Indifference delays, calculated from adjusting delays in the last 10 sessions, were shorter when the sizes of reinforcers were 14 and 25 μl of a 0.6 M sucrose solution than when they were 25 and 100 μl of the same solution. The ratio of the indifference delays (d50) was significantly smaller than that predicted on the basis of an assumed linear relation between reinforcer size and instantaneous reinforcer value. Estimates of K and Q fell within the values reported previously. Adjusting delays in successive blocks of trials were analysed using the Fourier transform. The power spectra obtained from individual rats had a dominant frequency that corresponded to a period of oscillation of the adjusting delay between 30 and 100 trial blocks. Power in the dominant frequency band declined with extended training. Experiment 5 (Chapter 6) examined the pattern of oscillation of dB in an adjusting-delay schedule using the power spectrum analysis. The step-size in which the delay to the larger reinforcer (dB) increased or decreased was tested across two conditions. In Condition 1, dB increased or decreased (according to the rats' choice) by 20% from block n to block n+1. In Condition 2, the step size was 10%. The power spectrum analysis showed that the period of oscillation of the dominant frequency of the spectrum was significantly longer under Condition 2 than under Condition 1. There was a consistent trend for the power of oscillation to be higher in the initial segment of the experiment in both conditions. Experiment 6 (Chapter 7) examined the effect of excitotoxic lesion of the core of the nucleus accumbens (AcbC) on K and Q in an adjusting delay schedule using the same protocol as Experiment 4. The effect of the lesion on the power spectrum parameters was also examined. The AcbC-lesioned group showed significantly lower values of d50 than the sham-lesioned group. The ratio of the indifference delays seen in both groups was substantially less than the value predicted on the basis of an assumed linear relation between reinforcer size and instantaneous reinforcer value. K was higher in the lesioned group than in the sham-lesioned group; Q was not affected by the AcbC lesion. Neither the spectral power within the dominant frequency band nor the period corresponding to the dominant frequency differed significantly between groups. The final chapter (Chapter 8) summarizes the findings of the experiments, and discusses their implications for the putative role of the prefrontal cortex, and ventral and dorsal striatum in interval timing and inter-temporal choice, and for theoretical models of these behaviours. The role of the dorsal striatum is questioned, while a possible role of the Acb in temporal processing is proposed.


Functional and Neural Mechanisms of Interval Timing

Functional and Neural Mechanisms of Interval Timing

Author: Warren H. Meck

Publisher: CRC Press

Published: 2003-03-24

Total Pages: 600

ISBN-13: 0203009576

DOWNLOAD EBOOK

Understanding temporal integration by the brain is expected to be among the premier topics to unite systems, cellular, computational, and cognitive neuroscience over the next decade. The phenomenon has been studied in humans and animals, yet until now, there has been no publication to successfully bring together the latest information gathered from


Timing and Time Perception: Procedures, Measures, & Applications

Timing and Time Perception: Procedures, Measures, & Applications

Author:

Publisher: BRILL

Published: 2018-04-10

Total Pages: 372

ISBN-13: 9004280200

DOWNLOAD EBOOK

Timing and Time Perception: Procedures, Measures, and Applications is a one-of-a-kind, collective effort to present the most utilized and known methods on timing and time perception. Specifically, it covers methods and analysis on circadian timing, synchrony perception, reaction/response time, time estimation, and alternative methods for clinical/developmental research. The book includes experimental protocols, programming code, and sample results and the content ranges from very introductory to more advanced so as to cover the needs of both junior and senior researchers. We hope that this will be the first step in future efforts to document experimental methods and analysis both in a theoretical and in a practical manner. Contributors are: Patricia V. Agostino, Rocío Alcalá-Quintana, Fuat Balcı, Karin Bausenhart, Richard Block, Ivana L. Bussi, Carlos S. Caldart, Mariagrazia Capizzi, Xiaoqin Chen, Ángel Correa, Massimiliano Di Luca, Céline Z. Duval, Mark T. Elliott, Dagmar Fraser, David Freestone, Miguel A. García-Pérez, Anne Giersch, Simon Grondin, Nori Jacoby, Florian Klapproth, Franziska Kopp, Maria Kostaki, Laurence Lalanne, Giovanna Mioni, Trevor B. Penney, Patrick E. Poncelet, Patrick Simen, Ryan Stables, Rolf Ulrich, Argiro Vatakis, Dominic Ward, Alan M. Wing, Kieran Yarrow, and Dan Zakay.


Integration of Spiking Neural Networks for Understanding Interval Timing

Integration of Spiking Neural Networks for Understanding Interval Timing

Author: Nicholas Lusk

Publisher:

Published: 2022

Total Pages: 0

ISBN-13:

DOWNLOAD EBOOK

The ability to perceive the passage of time in the seconds-to-minutes range is a vital and ubiquitous characteristic of life. This ability allows organisms to make behavioral changes based on the temporal contingencies between stimuli and the potential rewards they predict. While the psychophysical manifestations of time perception have been well-characterized, many aspects of its underlying biology are still poorly understood. A major contributor to this is limitations of current in vivo techniques that do not allow for proper assessment of the di signaling over micro-, meso- and macroscopic spatial scales. Alternatively, the integration of biologically inspired artificial neural networks (ANNs) based on the dynamics and cyto-architecture of brain regions associated with time perception can help mitigate these limitations and, in conjunction, provide a powerful tool for progressing research in the field. To this end, this chapter aims to: (1) provide insight into the biological complexity of interval timing, (2) outline limitations in our ability to accurately assess these neural mechanisms in vivo, and (3) demonstrate potential application of ANNs for better understanding the biological underpinnings of temporal processing.


Interval Timing and Time-Based Decision Making

Interval Timing and Time-Based Decision Making

Author: Warren H. Meck

Publisher: Frontiers Media SA

Published: 2012-05-01

Total Pages: 480

ISBN-13: 288919034X

DOWNLOAD EBOOK

The perception of time is crucial for everyday activities from the sleep–wake cycle to playing and appreciating music, verbal communication, to the determination of the value of a particular behavior. With regard to the last point, making decisions is heavily influenced by the duration of the various options, the duration of the expected delays for receiving the options, and the time constraints for making a choice. Recent advances suggest that the brain represents time in a distributed manner and reflects time as a result of temporal changes in network states and/or by the coincidence detection of the phase of different neural populations. Moreover, intrinsic oscillatory properties of neural circuits could determine timed motor responses. This Research Topic, partly an emergence of a Satellite EBBS meeting sponsored by the COST-Action TIMELY, will discuss how time in the physical world is reconstructed, distorted and modified in brain networks by emotion, learning and neuropathology. This Research Topic on Timing contains up-to-date reviews regarding the relationship between time and decision-making with respect to the underlying psychological and physiological mechanisms responsible for anticipation and evaluation processes.


Spike Timing

Spike Timing

Author: Patricia M. DiLorenzo

Publisher: CRC Press

Published: 2013-05-02

Total Pages: 425

ISBN-13: 1439838151

DOWNLOAD EBOOK

Neuronal communication forms the basis for all behavior, from the smallest movement to our grandest thought processes. Among the many mechanisms that support these functions, spike timing is among the most powerful and—until recently—perhaps the least studied. In the last two decades, however, the study of spike timing has exploded. The heightened interest is due to several factors. These include the development of physiological tools for measuring the activity of neural ensembles and analytical tools for assessing and characterizing spike timing. These advances are coupled with a growing appreciation of spike timing’s theoretical importance for the design principles of the brain. Spike Timing: Mechanisms and Function examines the function of spike timing in sensory, motor, and integrative processes, providing readers with a broad perspective on how spike timing is produced and used by the nervous system. It brings together the work and ideas of leaders in the field to address current thinking as well as future possibilities. The first section of the book describes the foundation for quantitative analysis and theory. It examines the information contained in spike timing, how it can be quantified, and how neural systems can extract it. The second section explores how input-output relationships are reflected in spike timing across a range of sensory systems. Drawing together multiple perspectives, including theoretical and computational studies as well as experimental studies in a range of model systems, the book provides a firm background for investigators to consider spike timing as it applies to their own work. It also offers a glimpse of future advances related to mechanisms of spike timing and its role in neural function, such as the development of novel computational technologies.


Neurobiology of Interval Timing

Neurobiology of Interval Timing

Author: Hugo Merchant

Publisher: Springer

Published: 2014-10-30

Total Pages: 358

ISBN-13: 149391782X

DOWNLOAD EBOOK

The study of how the brain processes temporal information is becoming one of the most important topics in systems, cellular, computational, and cognitive neuroscience, as well as in the physiological bases of music and language. During the last and current decade, interval timing has been intensively studied in humans and animals using increasingly sophisticated methodological approaches. The present book will bring together the latest information gathered from this exciting area of research, putting special emphasis on the neural underpinnings of time processing in behaving human and non-human primates. Thus, Neurobiology of Interval Timing will integrate for the first time the current knowledge of both animal behavior and human cognition of the passage of time in different behavioral context, including the perception and production of time intervals, as well as rhythmic activities, using different experimental and theoretical frameworks. The book will the composed of chapters written by the leading experts in the fields of psychophysics, functional imaging, system neurophysiology, and musicology. This cutting-edge scientific work will integrate the current knowledge of the neurobiology of timing behavior putting in perspective the current hypothesis of how the brain quantifies the passage of time across a wide variety of critical behaviors.


Time and Behaviour

Time and Behaviour

Author: C.M. Bradshaw

Publisher: Elsevier

Published: 1997-06-18

Total Pages: 589

ISBN-13: 0080543014

DOWNLOAD EBOOK

That time is both a dimension of behaviour and a ubiquitous controlling variable in the lives of all living things has been well recognized for many years. The last decade has seen a burgeoning of interest in the quantitative analysis of timing behaviour, and progress during the last five or six years has been particularly impressive, with the publication of several major new theoretical contributions. There has also been considerable progress in behavioural methodology during the past decade. In the area of reinforcement schedules, for example, the venerable interresponse–time schedule, fixed–interval peak procedure and interval bisection task have been complemented by a 'second generation' of incisive instruments for analyzing timing behaviour. Another area of recent development is the analysis of the neurobiological substrate of timing behaviour. Several research groups are currently studying the involvement of various central neurotransmitter systems in the timing behaviour, and the ability of centrally acting drugs and discrete brain lesions to alter timing processes. Yet another recent development in timing research is the growing dialogue between two fields that have grown up separately, although, superficially at least, they seem to have much in common: the experimental analysis of 'interval timing', traditionally the province of experimental psychology, and behavioural chronobiology. The last few years have seen a growing interest in the comparative properties of the internal 'clocks' that regulate biobehavioural rhythms with time bases in the circadian range or longer, and those that are entailed in timing of intervals in the range of seconds or minutes. All these areas of research, and others, are represented in the chapters that make up this volume. This book will help to promote further interactions among researchers who hail from disparate disciplines, but who share a common interest in the temporal properties of behaviour.


Subjective Time

Subjective Time

Author: Valtteri Arstila

Publisher: MIT Press

Published: 2021-12-14

Total Pages: 687

ISBN-13: 026254475X

DOWNLOAD EBOOK

Interdisciplinary perspectives on the feature of conscious life that scaffolds every act of cognition: subjective time. Our awareness of time and temporal properties is a constant feature of conscious life. Subjective temporality structures and guides every aspect of behavior and cognition, distinguishing memory, perception, and anticipation. This milestone volume brings together research on temporality from leading scholars in philosophy, psychology, and neuroscience, defining a new field of interdisciplinary research. The book's thirty chapters include selections from classic texts by William James and Edmund Husserl and new essays setting them in historical context; contemporary philosophical accounts of lived time; and current empirical studies of psychological time. These last chapters, the larger part of the book, cover such topics as the basic psychophysics of psychological time, its neural foundations, its interaction with the body, and its distortion in illness and altered states of consciousness. Contributors Melissa J. Allman, Holly Andersen, Valtteri Arstila, Yan Bao, Dean V. Buonomano, Niko A. Busch, Barry Dainton, Sylvie Droit-Volet, Christine M. Falter, Thomas Fraps, Shaun Gallagher, Alex O. Holcombe, Edmund Husserl, William James, Piotr Jaśkowski, Jeremie Jozefowiez, Ryota Kanai, Allison N. Kurti, Dan Lloyd, Armando Machado, Matthew S. Matell, Warren H. Meck, James Mensch, Bruno Mölder, Catharine Montgomery, Konstantinos Moutoussis, Peter Naish, Valdas Noreika, Sukhvinder S. Obhi, Ruth Ogden, Alan o'Donoghue, Georgios Papadelis, Ian B. Phillips, Ernst Pöppel, John E. R. Staddon, Dale N. Swanton, Rufin VanRullen, Argiro Vatakis, Till M. Wagner, John Wearden, Marc Wittmann, Agnieszka Wykowska, Kielan Yarrow, Bin Yin, Dan Zahavi