Supplementary Figure 1 from "Comparative analysis of squamate brains unveils multi-level variation in cerebellar architecture associated with locomotor specialization"
<p> </p> <p>Published as part of <a href="https://doi.org/10.1038/s41467-019-13405-w"><strong>Macrì, S <em>et al</em>., 2019, Nature Communications: 10(1):5560</strong></a></p> <p><strong>"Comparative analysis of squamate brains unveils multi-level variation in cerebellar architecture associated with locomotor specialization"</strong> DOI: https://doi.org/10.1038/s41467-019-13405-w</p> <p> </p> <p><strong>Supplementary Fig. 1:</strong> <strong>Definition of 3D anatomical landmarks.</strong> <strong>a</strong>, Position of 3D anatomical landmarks on the whole brain of the lizard <em>Agama agama</em> in dorsal (top left panel), ventral (top right), and lateral (bottom) views. <strong>b</strong>, Position of 3D anatomical landmarks on the isolated cerebellum of <em>Agama agama</em> in pial surface (left panel) and lateral (right) views. <strong>c</strong>, Schematic representation of the whole-brain of <em>Agama agama</em> highlighting the five major regions used for landmarking. <strong>d</strong>, Table showing the definition of 3D anatomical landmarks with associated number (see <strong>a</strong>, <strong>b</strong>) and brain region (see <strong>c</strong>).</p>
ShareScore
36/100
Overall dataset sharing score
Score breakdown
These five areas show where the dataset supports — or may limit — practical reuse.
- Stewardship
- 8
- Harmonization
- 4
- Access
- 16
- Reuse readiness
- 8
- Engagement
- 0