The above-described protocol was used to record local field potential signals and single units from multiple brain areas simultaneously in mice, with daily recordings conducted in the same mice from p20 to p60. Reported here are representative electrophysiological recordings from two mice and post-experiment histology demonstrating the final recording locations.
Surgical implantation of the micro-drive into p20 mice
A micro-drive (Figure 1) was constructed (Figure 2) and surgically implanted into a p20 mouse, as described above. Immediately following the surgery, the mouse was attached to the counterbalance system (Figure 2G-I) and allowed to recover. Once the mouse was fully mobile, the micro-drive was plugged into an in vivo electrophysiology recording system. The cables connecting the micro-drive to the recording equipment were suspended above the mouse. Electrophysiological recordings (32 kHz) were obtained across all the channels for 1 h while the mouse behaved naturally in its home cage. Following the recording, the mouse was unplugged from the recording system, reattached to the counterbalance system, and returned to the vivarium with free access to water and chow.
Daily recording of neural activity
Electrophysiological recordings were obtained daily for several weeks to enable the chronic monitoring of the same brain region across the critical developmental windows of p20-p60. Sample raw local field potentials (LFP) from across the chronic recordings are shown in Figure 3A,C. Isolated single units were simultaneously obtained from multiple tetrodes (Figure 3B). Units with similar waveforms were identified across multiple days (Figure 3B, middle and right), but due to the potential drift of the recording electrode, it was not possible to definitively claim that the same unit was being identified across days. In a separate mouse implanted at p20 and recorded daily for several weeks, neural activity was examined on a tetrode targeting dorsal area CA1. Large-amplitude ripples and well-isolated single units were identified on each day of the recording (Figure 4).These data indicate that stable, high-quality in vivo electrophysiological recordings could be from the same mouse across early development.
Histological confirmation of the recording sites and the developmental impact of chronic implantation
Following the final recording day, the mouse was thoroughly anesthetized via isoflurane anesthesia followed by a lethal injection of pentobarbital sodium, and a current was passed through the electrode tips to produce small lesions at the recording sites. Post-experiment histological sectioning of the mouse brain allowed the visualization of the final recording sites (Figure 5A,B). In a separate cohort, three male and three female mice were surgically implanted at p20 as described above. Equal numbers of littermates were left unimplanted and maintained in identical housing conditions. The mice were sacrificed at p62 (6 weeks post-surgery for the implanted cohort). The skulls were carefully cleaned, and external measurements were taken of the bregma-to-lambda distance (Figure 5C, top left) and external maximal skull width at lambda (Figure 5C, top right). An incision was made along the midline of the skull, and one-half of the skull was removed to excise the brain for mass measurement (Figure 5C, bottom right). The height of the skull cavity at bregma was measured from the intact skull half (Figure 5C, bottom left). No measure was significantly different between the implanted and unimplanted cohorts (Wilcoxon rank-sum test), indicating that long-term implantation, starting at p20, has no gross impact on the natural development of the skull or brain volume.

Figure 1: Micro-drive components. Three-dimensional renderings of the (A) micro-drive body, (B) cannula, (C) cone, (D) lid, (E) screw attachments, and (F) tetrode-advancing screw. The critical features of each component are indicated. Measurement details can be extracted from the model files available at https://github.com/Brad-E-Pfeiffer/JuvenileMouseMicroDrive/. Please click here to view a larger version of this figure.

Figure 2: Micro-drive construction. (A) Side and (B) top view of the tetrode-advancing screw with the top and bottom screw attachments connected. (C) Side and (D) top view of the micro-drive with the body and cannula attached and the large polyimide tubing running through each cannula hole and trimmed to the bottom of the cannula. (E) Side view of the micro-drive with the screws and small polyimide tubing in place. The tops of the small polyimide tubes are trimmed immediately prior to tetrode loading. (F) Completed micro-drive attached to the stereotaxic apparatus. The protective cone that would normally surround the micro-drive has been removed for visualization purposes. Note that some of the screw attachments were printed in a black resin for this micro-drive. (G) Counterbalance support system. (H)Side and (I) top view of a mouse cage with the counterbalance support system attached. Please click here to view a larger version of this figure.

Figure 3: Representative electrophysiological recordings. A p20 mouse was implanted with a micro-drive as described above. Starting on p21 and every day thereafter for 2 weeks, the mouse was attached to the recording apparatus, and neural activity was recorded for at least 1 h. (A) Raw local field potential (LFP) recordings from the bilateral (L = left; R = right) anterior cingulate cortex (ACC), hippocampal area CA3 (CA3), and hippocampal area CA1 (CA1). The data were collected every day; for clarity, only data from odd days are displayed. All traces were taken during periods of immobility in the home cage. Scale bar: 1 mV, 2 s. (B) Representative single units isolated from hippocampal area CA3 (left) and CA1 (right) for the recordings in panel A. All the raw waveforms on each electrode are shown in black; the average is in red. Scale bar: 50 µV, 0.2 ms. (C) Representative raw LFP traces for every 10th day until the final recording day at p60 for a second mouse implanted at p20. The data were collected every day; for clarity, only data from every 10th day are displayed. All the traces were taken during periods of immobility in the home cage. Scale bar: 1 mV, 2 s. Please click here to view a larger version of this figure.

Figure 4. Stability of the chronic recordings. A p20 mouse was implanted with a micro-drive, as described above. Starting on p21 and thereafter for 4 weeks, the mouse was attached to the recording apparatus, and neural activity was recorded for at least 1 h. Shown are data from the tetrodes targeting dorsal hippocampal CA1. (A) Raw (top) and ripple-filtered (bottom) LFP for identified ripple events at p21, p30, and p40. To identify ripple events, the raw LFP was band-pass filtered between 125 Hz and 300 Hz, and the ripple events were identified as transient increases in the ripple-band power greater than 3 standard deviations above the mean. The start and end of each ripple were defined as the point when the ripple band power returned to the mean. The identified ripples are shown in red. Scale bar: 100 ms, top-to-bottom: 1,000 µV, 140 µV, 1,800 µV, 180 µV, 9,000 µV, 1,200 µV, 10,000 µV, 1,000 µV. (B) A representative single unit from each day from the CA1-targeted tetrode for the recordings in panel A. All raw waveforms on each electrode are shown in black; the average is in red. Scale bar 0.2 ms, top-to-bottom: 50 µV, 100 µV, 100 µV. (C) Autocorrelogram of all spikes for single units in panel B. These data demonstrate stable electrode placement within the hippocampal pyramidal layer across several weeks. Please click here to view a larger version of this figure.

Figure 5: Representative histology and impact on skull development. A p20 mouse was implanted with a micro-drive, as described above. Following the final recording day on p60, electrolytic lesions were produced at the recording sites, and the brain was perfused with 4% paraformaldehyde. To identify the recording sites, 50 µm sections were produced. (A) Lesions in CA1 and CA3 of the hippocampus. The arrowhead denotes the CA3 recording site; the double-arrowhead denotes the CA1 recording site. Scale bar: 0.5 mm. (B) Lesions in the bilateral ACC. The arrowheads denote the ACC recording sites. Scale bar: 0.5 mm. (C) Skull size and brain mass measurements of p62 mice implanted with a micro-drive at p20 (gray) and unimplanted littermates (white). The p-value of the Wilcoxon rank-sum test is reported for each measurement. Please click here to view a larger version of this figure.