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Author

Paulo Aguiar

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Open access Jul 2026

Closed-loop control of in vitro neuronal activity using reinforcement learning after in silico pre-training

Controlling specific neuronal dynamics with electrical stimulation is critical for therapeutic neuromodulation, yet deriving optimal control policies remains challenging due to the complex and non-stationary nature of biological neuronal networks. While reinforcement learning (RL) offers a powerful closed-loop control framework, its reliance on prolonged stimulus-driven exploration is difficult to reconcile with the physiological limits of living tissue. Here, we demonstrate an in silico-to-in vitro transfer strategy that achieves efficient state-dependent control of network bursting in cultured neurons. The transferred policy outperforms heuristic controls, while maintaining constrained stimulation usage. Concurrent calcium imaging reveals the mechanistic basis of the learned policy: the agent optimizes stimulation spatially and temporally, exploiting local network topology and intrinsic physiological temporal dynamics. These results establish in vitro brain-on-chip cultures as a tractable stepping stone for RL-based neuromodulation and demonstrate that effective control policies can be derived in biophysically calibrated digital twins and transferred directly to living networks.

Eduardo Carvalho, José C. Mateus, Ricardo Pinto et al. · 0 citations
Open access Jul 2026

Low-latency neuromorphic closed-loop control of hippocampal ripples in vivo

It is demonstrated that neuromorphic-triggered optogenetic inhibition significantly alters ripple dynamics and reduces oscillatory energy, establishing a practical and accessible neuromorphic framework for low-latency closed-loop control of fast brain dynamics in vivo.

P. Félix, M. Jurado-Parras, J. Freitas et al. · 0 citations

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