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Updated: Feb 19, 2026

Microdissection of Mouse Brain into Functionally and Anatomically Different Regions
Published on: February 15, 2021
Neuromeric Organization of the Microbat Brain: Conserved and Distinct Regional Features
F Lucero-Arteaga1,2, A Abrego-Alvarez2, M Clauzure1,3
1Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Buenos Aires, Argentina.
Abstract:
Myotis myotis and Tadarida brasiliensis are both microbat species belonging to the Vespertilionidae and Molossidae families, respectively. Our goal is to determine if the 85-million-year evolutionary divergence between microbats and the Muridae family (mice and rats) has led to significant regional variations in the brain. However, the 34-million-year split between M. myotis and T. brasiliensis serves as in-group control to contextualize the larger divergence with rodents. Using the prosomeric framework, main brain derivatives from each neuromeric partition were compared between these two microbats and with rodents. We found that although the fundamental neuromeric organization is conserved across microbats (M. myotis and T. brasiliensis) and rodents (rats, mice, and gerbils), there are significant regional differences within distinct derivatives such that microbats exhibit smaller corpus callosum, isocortex, optic chiasm, and cerebellum when compared to rodents. On the other hand, the overall pattern of tyrosine hydroxylase (TH)-positive processes and tracts in the basal plate of the diencephalon-midbrain-rostral hindbrain in both bats is similar to that found in rodents and primates. However, a key difference was found in the medial habenula (MHb). Although M. myotis showed selective TH expression in the MHb, this was absent in T. brasiliensis. Collectively, these findings suggest that the 85-million-year evolutionary divergence between bats and rodents has led to notable regional variations in brain anatomy, even though their basic modular plan remained the same.
Insights
Evolutionary divergence led to brain variations between bats and rodents. Despite conserved organization, bats have smaller brain regions like the corpus callosum and cerebellum compared to rodents.
Area of Science:
- Comparative neuroanatomy
- Evolutionary biology
- Mammalian brain evolution
Background:
- Bats (Microchiroptera) and rodents (Muridae) diverged ~85 million years ago.
- Understanding brain regional variations aids in studying mammalian evolution.
- The study uses two microbat species, Myotis myotis and Tadarida brasiliensis, as representatives of bat evolution.
Purpose of the Study:
- To investigate if the evolutionary divergence between bats and rodents resulted in significant regional brain variations.
- To compare brain structures between two microbat species and rodents using the prosomeric framework.
- To identify specific brain regions that show divergence due to evolutionary history.
Main Methods:
- Comparative analysis of brain derivatives from neuromeric partitions.
- Utilized the prosomeric framework for brain region identification.
- Examined tyrosine hydroxylase (TH)-positive processes and tracts in specific brain areas.
Main Results:
- Conserved fundamental neuromeric organization across bats and rodents.
- Bats exhibit smaller corpus callosum, isocortex, optic chiasm, and cerebellum compared to rodents.
- Tyrosine hydroxylase (TH) expression patterns in the basal plate were similar, but medial habenula (MHb) showed differential TH expression between bat species.
Conclusions:
- The 85-million-year evolutionary split between bats and rodents has caused notable regional brain anatomical differences.
- Despite regional variations, the basic modular brain plan remains conserved.
- Differential TH expression in the medial habenula (MHb) highlights specific evolutionary adaptations within bats.
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