Platform

  • Search
  • Seminars
  • Conferences
  • Jobs

Resources

  • Submit Content
  • About Us

© 2025 World Wide

Open knowledge for all • Started with World Wide Neuro • A 501(c)(3) Non-Profit Organization

Analytics consent required

World Wide relies on analytics signals to operate securely and keep research services available. Accept to continue, or leave the site.

Review the Privacy Policy for details about analytics processing.

World Wide
SeminarsConferencesWorkshopsCoursesJobsMapsFeedLibrary
Back to SeminarsBack
Seminar✓ Recording AvailableNeuroscience

NMC4 Short Talk: Resilience through diversity: Loss of neuronal heterogeneity in epileptogenic human tissue impairs network resilience to sudden changes in synchrony

Scott Rich

Postdoctoral Researcher

Kremibl Brain Institute

Schedule
Wednesday, December 1, 2021

Showing your local timezone

Schedule

Wednesday, December 1, 2021

3:00 AM America/New_York

Watch recording
Host: Neuromatch 4

Watch the seminar

Your browser does not support the video tag.

Recording provided by the organiser.

Event Information

Domain

Neuroscience

Original Event

View source

Host

Neuromatch 4

Duration

15 minutes

Abstract

A myriad of pathological changes associated with epilepsy, including the loss of specific cell types, improper expression of individual ion channels, and synaptic sprouting, can be recast as decreases in cell and circuit heterogeneity. In recent experimental work, we demonstrated that biophysical diversity is a key characteristic of human cortical pyramidal cells, and past theoretical work has shown that neuronal heterogeneity improves a neural circuit’s ability to encode information. Viewed alongside the fact that seizure is an information-poor brain state, these findings motivate the hypothesis that epileptogenesis can be recontextualized as a process where reduction in cellular heterogeneity renders neural circuits less resilient to seizure onset. By comparing whole-cell patch clamp recordings from layer 5 (L5) human cortical pyramidal neurons from epileptogenic and non-epileptogenic tissue, we present the first direct experimental evidence that a significant reduction in neural heterogeneity accompanies epilepsy. We directly implement experimentally-obtained heterogeneity levels in cortical excitatory-inhibitory (E-I) stochastic spiking network models. Low heterogeneity networks display unique dynamics typified by a sudden transition into a hyper-active and synchronous state paralleling ictogenesis. Mean-field analysis reveals a distinct mathematical structure in these networks distinguished by multi-stability. Furthermore, the mathematically characterized linearizing effect of heterogeneity on input-output response functions explains the counter-intuitive experimentally observed reduction in single-cell excitability in epileptogenic neurons. This joint experimental, computational, and mathematical study showcases that decreased neuronal heterogeneity exists in epileptogenic human cortical tissue, that this difference yields dynamical changes in neural networks paralleling ictogenesis, and that there is a fundamental explanation for these dynamics based in mathematically characterized effects of heterogeneity. These interdisciplinary results provide convincing evidence that biophysical diversity imbues neural circuits with resilience to seizure and a new lens through which to view epilepsy, the most common serious neurological disorder in the world, that could reveal new targets for clinical treatment.

Topics

biophysical diversitycortical pyramidal cellsepilepsyexcitatory-inhibitory networksheterogeneityictogenesismean-field analysisneural circuitsneural networksneuronal heterogeneitypatch clamp recordingsseizure onsetsingle-cell excitability

About the Speaker

Scott Rich

Postdoctoral Researcher

Kremibl Brain Institute

Contact & Resources

Personal Website

scottrich.mystrikingly.com

@richcompneuro

Follow on Twitter/X

twitter.com/richcompneuro

Related Seminars

Seminar60%

Knight ADRC Seminar

neuro

Jan 20, 2025
Washington University in St. Louis, Neurology
Seminar60%

TBD

neuro

Jan 20, 2025
King's College London
Seminar60%

Guiding Visual Attention in Dynamic Scenes

neuro

Jan 20, 2025
Haifa U
January 2026
Full calendar →