Low glutaminase and glycolysis correlate with a high transdifferentiation efficiency in mouse cortex

Author:

Li Yuan1,Yang Tingting12,Cheng Yingying1,Hou Jinfei13,Liu Zhaoming1,Zhao Yu1,Chen Shiyu12,Qin Zhaohui12,Wang Chenchen13,Song Weining12,Ge Haofei14,Li Changpeng1,Liang Lining1,Guo Lin1,Sun Hao1,Wu Lin‐Ping12,Zheng Hui1245ORCID

Affiliation:

1. Guangdong Provincial Key Laboratory of Stem Cell and Regenerative Medicine, GIBH‐CUHK Joint Research Laboratory on Stem Cell and Regenerative Medicine, Centre for Regenerative Medicine and Health Hong Kong Institute of Science & Innovation, Guangzhou Institutes of Biomedicine and Health, Chinese Academy of Sciences Guangzhou China

2. University of Chinese Academy of Sciences Beijing China

3. Department of Plastic Surgery The First Affiliated Hospital, Zhejiang University School of Medicine Hangzhou China

4. Joint School of Life Sciences Guangzhou Medical University Guangzhou China

5. Institutes for Stem Cell and Regeneration Chinese Academy of Sciences Beijing China

Abstract

AbstractBoth exogenous transcriptional factors and chemical‐defined medium can transdifferentiate astrocytes into functional neurons. However, the regional preference for such transdifferentiation has not been fully studied. A previously reported 5C medium was infused into the mouse cortex and striatum to determine the regional preference for transdifferentiation from astrocytes to neurons. The numbers of NeuN+GFAP+EdU+ cells (intermediates) and NeuN+EdU+ cells (end products) were determined by immunofluorescence to explore the regional preference of transdifferentiation. In addition, to optimize the delivery of the transdifferentiation medium, three key growth factors, insulin, bFGF and transferrin, were loaded onto chitosan nanoparticles, mixed with gelatin methacryloyl and tested in animals with motor cortex injury. A higher transdifferentiation efficiency was identified in the mouse cortex. Differences in cellular respiration and the balance between glutaminase (Gls) and glutamine synthetase were confirmed to be key regulators. In addition, the sustained drug release system induced transdifferentiation of cortex astrocytes both in vivo and in vitro, and partially facilitated the behaviour recovery of mice with motor cortex injury. We also applied this method in pigs and obtained consistent results. In summary, low Gls and glycolysis can be used to predict high transdifferentiation efficiency, which may be useful to identify better indications for the current transdifferentiation system. In addition, the current drug delivery system has the potential to treat diseases related to cortex injuries.

Funder

Chinese Academy of Sciences

National Natural Science Foundation of China

Science and Technology Planning Project of Guangdong Province

Publisher

Wiley

Subject

Cell Biology,General Medicine

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1. Progress of reprogramming astrocytes into neuron;Molecular and Cellular Neuroscience;2024-09

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