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Published on: April 12, 2020
Delineation of Subregions in the Early Postnatal Human Cerebellum for Design-Based Stereologic Studies
Anna Fichtl1, Andreas Büttner2, Patrick R Hof3
1Chair of Neuroanatomy, Faculty of Medicine, Institute of Anatomy, Ludwig-Maximilians-Universität München, Munich, Germany.
Insights
The early human cerebellum is plastic but identifying specific subregions is challenging. Researchers recommend studying the entire cerebellar cortex for reproducible results in stereologic research.
Area of Science:
- Neuroscience
- Developmental Biology
- Anatomy
Background:
- The early postnatal human cerebellum (<1 year) exhibits high plasticity, making it sensitive to environmental factors.
- Previous stereologic studies on the cerebellum lacked subregion specificity, unlike studies on adult cerebellums.
Purpose of the Study:
- To determine if key cerebellar fissures can be identified in early postnatal human cerebellums.
- To assess the feasibility of delineating functionally relevant subregions based on these fissures for stereologic studies.
Main Methods:
- Utilized a combined macroscopic and microscopic approach.
- Examined 20 human post mortem cerebellar halves from infants aged 1 day to 11 months.
Main Results:
- The superior posterior, horizontal, and posterolateral fissures were reliably identified.
- The primary and ansoparamedian fissures could not be consistently identified.
- Subregion delineation is feasible for crus I and the flocculus.
Conclusions:
- Reliable identification of all fissures is not possible in the early postnatal cerebellum.
- Subregion-specific stereologic studies are feasible for crus I and the flocculus.
- For guaranteed reproducibility, defining the entire cerebellar cortex as the region of interest is recommended for early postnatal stereologic studies.
Abstract:
Recent design-based stereologic studies have shown that the early postnatal (<1 year of age) human cerebellum is characterized by very high plasticity and may thus be very sensitive to external and internal influences during the first year of life. A potential weakness of these studies is that they were not separately performed on functionally relevant subregions of the cerebellum, as was the case in a few design-based stereologic studies on the adult human cerebellum. The aim of the present study was to assess whether it is possible to identify unequivocally the primary, superior posterior, horizontal, ansoparamedian, and posterolateral fissures in the early postnatal human cerebellum, based on which functionally relevant subregions could be delineated. This was tested in 20 human post mortem cerebellar halves from subjects aged between 1 day and 11 months by means of a combined macroscopic and microscopic approach. We found that the superior posterior, horizontal, and posterolateral fissures can be reliably identified on all of the specimens. However, reliable and reproducible identification of the primary and ansoparamedian fissures was not possible. Accordingly, it appears feasible to perform subregion-specific investigations in the early postnatal human cerebellum when the identification of subregions is restricted to crus I (bordered by the superior posterior and horizontal fissures) and the flocculus (bordered by the posterolateral fissure). As such, it is recommended to define the entire cerebellar cortex as the region of interest in design-based stereologic studies on the early postnatal human cerebellum to guarantee reproducibility of results.
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