Growth-adaptive spring electronics for long-term, same-neuron mapping in the developing rat brain
Lee, A. J.; Sheng, H.; Marin-Llobet, A.; Wang, Z.; Lee, J.; Liu, R.; Zhang, X.; Hsiao, E.; Baek, J.; Aljovic, A.; Liu, D.; He, Y.; Lu, N.; Liu, J.
Show abstract
Neural activity reorganizes profoundly after birth, transitioning from highly synchronous population events to sparse, decorrelated firing in the mature brain. Although inhibitory maturation and shifts in excitation-inhibition balance have been implicated in this process, how individual neurons implement the transition remains unclear because rapid brain growth has prevented long-term, same-neuron mapping. Here, we introduce growth-adaptive spring electronics that provide depth-wise compliance during tissue expansion, maintaining a stable electrode-tissue interface over weeks of neonatal development. We developed a vision-language model-assisted spike processing pipeline for the developing brain that probabilistically matches units across days using high-density waveform spatial footprints, despite developmental changes in the neonatal brain. Together, these innovations enable spike-resolved mapping of the same neurons in rat visual cortex and medial prefrontal cortex from postnatal day 10 to 45. Using population coupling to quantify each neurons coordination with local population activity, we show that developmental decorrelation is driven primarily by a distinct subset of neurons that progressively shifts from strong to weak coupling during postnatal weeks 3 to 5, whereas other neurons remain stably weakly or strongly coupled throughout development. These results resolve population-level desynchronization into identifiable neuron-specific trajectories. This framework enables direct tests in neurodevelopmental disorder models, including schizophrenia and autism, of whether altered maturation reflects global circuit imbalance or selective disruption and mistiming of specific developmental programs.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Acquisition of non-olfactory encoding improves odour discrimination in olfactory cortex 98%
- Functional maps of the primate cortex revealed by through-skull wide-field optical imaging 98%
- Ascertaining cells' synaptic connections and RNA expression simultaneously with massively barcoded rabies virus libraries 98%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.