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Packer, A.

Publications and source records attributed to Packer, A..

3 recordsLinked to original sources

All-optical interrogation of excitability during seizure propagation reveals high local inhibition amidst baseline excitability

Seizures are classically described as an epiphenomenon of hyperexcitability and hypersynchronicity across brain regions. However, this view is insufficient to explain the complex, dynamic evolution of focal-onset seizures in the brain. Recent studies have proposed mechanisms involving an evolution of excitability driven specifically by a spatiotemporally progressing seizure wavefront. These mechanisms attempt to align the abnormal propagation of neural activity with well-known neurobiological parameters, such as excitation-inhibition balance and neuronal connectivity patterns. We describe a direct test of these mechanisms by performing real-time, in vivo investigations of excitability in the acutely epileptic state and during seizure propagation. We used all-optical interrogation to test single-neuronal and local-circuit excitability in the epileptic brain. We demonstrate a surprising paradox during the acutely epileptic state, wherein the brain becomes susceptible to large synchronous inputs, yet single-cell excitability is largely maintained at baseline levels. At a finer scale, excitability of neurons at the single-cell level is related to their distance from the seizure wavefront. Local circuit excitability is increased in the distal penumbra but, crucially, we find inhibition in close proximity to the seizure wavefront. This is in contrast with previously suggested notions of widespread inhibition outside the direct area of action during a focal-onset seizure. These experimental results provide the first direct, in vivo evidence for the precise spatial scale over which single-cell excitability dynamics evolve during seizure propagation, providing support for local inhibitory restraint of seizure propagation.

neuroscience↗

All-optical interrogation of neural circuits in behaving mice

Recent advances combining two-photon calcium imaging and two-photon optogenetics with digital holography now allow us to read and write neural activity in vivo at cellular resolution with millisecond temporal precision. Such "all-optical" techniques enable experimenters to probe the impact of functionally defined neurons on neural circuit function and behavioural output with new levels of precision. This protocol describes the experimental strategy and workflow for successful completion of typical all-optical interrogation experiments in awake, behaving head-fixed mice. We describe modular procedures for the setup and calibration of an all-optical system, the preparation of an indicator and opsin-expressing and task-performing animal, the characterization of functional and photostimulation responses and the design and implementation of an all-optical experiment. We discuss optimizations for efficiently selecting and targeting neuronal ensembles for photostimulation sequences, as well as generating photostimulation response maps from the imaging data that can be used to examine the impact of photostimulation on the local circuit. We demonstrate the utility of this strategy using all-optical experiments in three different brain areas - barrel cortex, visual cortex and hippocampus - using different experimental setups. This approach can in principle be adapted to any brain area for all-optical interrogation experiments to probe functional connectivity in neural circuits and for investigating the relationship between neural circuit activity and behaviour.

neuroscience↗

Pathfinder: A gamified measure to integrate general cognitive ability into the biological, medical and behavioural sciences

Genome-wide association (GWA) studies have uncovered DNA variants associated with individual differences in general cognitive ability (g), but these are far from capturing heritability estimates obtained from twin studies. A major barrier to finding more of this missing heritability is assessment - the use of diverse measures across GWA studies as well as time and cost of assessment. In a series of four studies, we created a 15-minute (40-item), online, gamified measure of g that is highly reliable (alpha = .78; two-week test-retest reliability = .88), psychometrically valid and scalable; we called this new measure Pathfinder. In a fifth study, we administered this measure to 4,751 young adults from the Twins Early Development Study. This novel g measure, which also yields reliable verbal and nonverbal scores, correlated substantially with standard measures of g collected at previous ages (r ranging from .42 at age 7 to .57 at age 16). Pathfinder showed substantial twin heritability (.57, 95% CIs = .43, .68) and SNP heritability (.37, 95% CIs = .04, .70). A polygenic score computed from GWA studies of five cognitive and educational traits accounted for 12% of the variation in g, the strongest DNA-based prediction of g to date. Widespread use of this engaging new measure will advance research not only in genomics but throughout the biological, medical, and behavioural sciences.

genetics↗