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Decreased Microglia in Pax2 Mutant Mice Leads to Impaired Learning and Memory
Na Lv1,2,3, Ying Wang1,3, Yongfeng Liu1
1Department of Neurology, Shanxi Provincial People's Hospital, The Fifth Clinical Medical College of Shanxi Medical University, Taiyuan 030012, China.
Abstract:
Impaired learning and memory ability is one of the characteristics of a variety of neurological diseases, and its molecular mechanisms are complex and diverse and are regulated by a variety of factors. It is generally believed that synaptic plasticity plays an important role in the process of learning and memory. The protein encoded by the Pax2 gene is a transcription factor involved in neuron migration and cell fate determination during neural development. Mice knocked out of BDNF in the Pax2 lineage-derived interneuron precursor exhibited learning disabilities and severe cognitive impairment. In this study, Pax2 heterozygous gene (Pax2+/- mice) deletion mice were used as the research objects and behavioral tests were used to observe the effect of Pax2 gene deletion on learning and memory ability; morphological and molecular biological methods were used to observe the effect of Pax2 gene deletion on the neural structure. Single-cell transcriptome sequencing was used to observe the cell subtypes and differentially expressed genes (DEGs) and signaling pathways affected by Pax2 gene deletion and the possible molecular mechanisms. The results showed that Pax2+/- mice had impaired learning and memory ability, abnormal synaptic structure, and significantly reduced number of microglia clusters, and DEGs were associated with pro-inflammatory chemokines. Finally, we speculate that Pax2 gene deletion may lead to abnormal chemokines and chemokine receptors by affecting microglia.
Insights
Pax2 gene deletion in mice impairs learning and memory. This is linked to abnormal synaptic structures and altered microglia activity, suggesting a role for Pax2 in neurological health.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Impaired learning and memory are hallmarks of neurological diseases, with complex molecular mechanisms.
- Synaptic plasticity is crucial for learning and memory processes.
- The Pax2 gene encodes a transcription factor vital for neural development, including neuron migration and cell fate.
Purpose of the Study:
- To investigate the impact of Pax2 gene deletion on learning and memory abilities in mice.
- To analyze the effects of Pax2 deletion on neural structure and molecular mechanisms.
- To identify cell subtypes and molecular pathways affected by Pax2 gene deletion using single-cell transcriptome sequencing.
Main Methods:
- Behavioral tests to assess learning and memory in Pax2 heterozygous (Pax2+/-) mice.
- Morphological and molecular biological analyses of neural structures.
- Single-cell transcriptome sequencing to identify differentially expressed genes (DEGs) and affected signaling pathways.
Main Results:
- Pax2+/- mice exhibited impaired learning and memory abilities.
- Abnormal synaptic structures were observed in Pax2+/- mice.
- A significant reduction in microglia clusters and DEGs associated with pro-inflammatory chemokines were identified.
Conclusions:
- Pax2 gene deletion leads to deficits in learning and memory.
- The study suggests Pax2 plays a role in maintaining normal synaptic structure.
- Pax2 deletion may disrupt chemokine signaling by affecting microglia, contributing to cognitive impairment.

