Surgical Protocol for a Large, Resealable Cranial Window Enabling Longitudinal, Multi-Modal Electrophysiology Recordings of Mouse Default Mode Network.
Tommi Kiiso, Paula Partanen, Keyrstin Jacobs, Bendegúz Varga, Satu Palva, Matias Palva, Eero Castrén, Raz Balin
Journal of visualized experiments : JoVE May 29, 2026 DOI: 10.3791/70337 (opens in new tab) via PubMed
Summary
AI-generated from the abstractA new surgical protocol creates a large, durable, resealable cranial window in mice that preserves the dura mater, enabling stable, long-term recordings from over 1,000 electrodes. This technique allows simultaneous surface and deep brain recordings from the default mode network over several weeks, offering a platform to study network-wide brain dynamics and evaluate chronic effects of treatments for disorders like major depressive disorder.
Study at a glance
| Characteristics | Methodological paper Longitudinal Peer reviewed |
|---|---|
| Population | Mice |
| Duration | Several weeks |
| Key finding | A novel two-phase surgical protocol creates a large, durable, resealable cranial window in mice that preserves the dura mater, enabling simultaneous, repeated, longitudinal recordings from over 1,000 electrodes from the default mode network. |
Abstract
The default mode network (DMN) is a central, large-scale brain network implicated in a range of cognitive functions and neuropsychiatric disorders, such as major depressive disorder (MDD). Studying the DMN's complex dynamics in animal models provides invaluable insights into its function in both healthy and pathological states. However, performing stable, long-term, large-scale electrophysiological recordings from the multiple deep and distributed nodes of the DMN in awake, behaving mice remains a significant challenge. Here, a novel two-phase surgical protocol is presented to create a large (4 mm × 7.6 mm), durable, and resealable cranial window in mice. The procedure is designed to preserve the integrity of the dura mater, which is paramount for long-term brain health and recording stability. This window enables simultaneous, repeated, longitudinal recordings from over 1,000 electrodes by combining surface-level micro-electrocorticography (µECoG) with two high-density intracranial electrode probes, providing unprecedented access to the DMN. This technique provides a robust platform for multi-modal, multi-scale interrogation of network-wide electrophysiological dynamics over several weeks, opening new avenues for investigating the neuroplastic changes underlying the pathophysiology of brain disorders and for evaluating the chronic effects of novel therapeutics.