Advancing neurocomputing with engineered neuronal networks and high-content electrophysiology

Date & Time

June 25, 2026 | 16:00 CEST
7:00 PDT | 10:00 EDT | 15:00 BST

Tags
Biocomputing
Neuronal Cell Cultures
MaxOne
MaxLab Live

Webinar Hightlights

  • Engineering modular connectivity in cultured cortical networks using microfluidic devices
  • How network architecture shapes neural dynamics and the computations a network can support
  • Harnessing high-dimensional neuronal dynamics for neurocomputing applications
  • Closed-loop reservoir computing with living neuronal networks
  • Why HD-MEAs are uniquely suited for large-scale, bidirectional neurocomputing interfaces
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The webinar covered

  • Engineering modular connectivity in cultured cortical networks using microfluidic devices
  • The relationship between network architecture, neural dynamics, and computational capacity
  • Autonomous temporal pattern generation through closed-loop reservoir computing
  • How living neuronal networks can serve as functional reservoirs for neurocomputing
  • The role of HD-MEAs in enabling high-resolution, bidirectional interfacing at scale
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Agenda

June 25, 2026 | 16:00 CEST

Closed-loop reservoir computing with engineered neuronal networks on HD-MEAs

Prof. Dr. Hideaki Yamamoto

Abstract

Cultured neuronal networks offer a unique platform for constructively investigating cortical computation: by engineering their structure, one can probe how network architecture shapes the dynamics of the network and the computations it can support. In this talk, I will describe our work on engineering modular connectivity of cultured cortical networks with microfluidic devices (Murota et al., Adv Mater Technol 2025) and on harnessing their high-dimensional dynamics for autonomous temporal pattern generation within a closed-loop reservoir computing framework (Sono et al., PNAS 2026). These experiments are made possible by the unique combination of spatial scale, sub-millisecond temporal resolution, and bidirectional interfacing offered by high-density microelectrode arrays (HD-MEAs).

Abstract

Speakers

Prof. Dr. Hideaki Yamamoto

Research Institute of Electrical Communication (RIEC), Tohoku University, Sendai, Japan

Biography

Hideaki Yamamoto is a Professor at the Research Institute of Electrical Communication (RIEC), Tohoku University, Sendai, Japan. He obtained a Ph.D. degree in engineering from Waseda University, Japan, in 2009. He was a JSPS Research Fellow at Tokyo University of Agriculture and Technology, and an Assistant Professor at Waseda University, before joining Tohoku University in 2014. In 2020, he was appointed Associate Professor at the RIEC and was promoted to Professor in 2026. His research interests include the use of engineered neuronal cultures as a model system for understanding brain computation, as well as their applications to brain-inspired computing and biomedicine.

Abstract

Hosts

Dr. Marie Obien

CCO | MaxWell Biosystems (Switzerland)

Biography

Marie Obien is the Chief Commercial Officer (CCO) and a founding member of MaxWell Biosystems. Marie leads the company’s global commercial strategy, sales, business development, marketing, product management, channel partnerships, and customer success. A specialist in electrophysiology, Marie brings strong expertise in microelectrode arrays and complementary techniques, including the gold-standard patch-clamp method. She is the lead author of the most frequently cited review on MEA technology and has played a key role in shaping its adoption in neuroscience and drug discovery. Marie earned her PhD in Electrical Engineering from the Nara Institute of Science and Technology, Japan, and received neuroscience training as a postdoctoral researcher at RIKEN. She also completed the Global Innovation Program in Silicon Valley, focusing on business development and entrepreneurial leadership.

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