TRANsCre-DIONE transdifferentiates scar-forming reactive astrocytes into functional motor neurons

In spinal cord injury (SCI), the scar-forming reactive astrocytes with upregulated glial fibrillary acidic protein (GFAP) proliferate aberrantly near the injury site, representing a potential cellular source for transdifferentiation into neurons to replenish dead neurons. However, the conventional use of GFAP promoter to target reactive astrocytes has two inherent problems: inadvertent conversion of normal astrocytes and low efficiency due to progressive weakening of promoter activity during transdifferentiation. Here, we present TRANsCre-DIONE, a dual-promoter split-Cre system combining GFAP and Lcn2 regulatory elements with Cre-dependent Neurog2 expression under the EF1α promoter, enabling selective targeting of scar-forming reactive astrocytes. This approach achieved 87% conversion efficiency and 96% specificity in vivo. After SCI, TRANsCre-DIONE caused transdifferentiation into Isl1-positive and ChAT-positive motor neurons, reduced astrogliosis, enhanced regeneration in surrounding cells, and a significant motor recovery. These findings suggest that TRANsCre-DIONE enables efficient and selective astrocyte-to-neuron conversion and represents a promising strategy for SCI repair.

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Publication Details

Journal
Experimental & Molecular Medicine
Published
2026-09-11
DOI
https://doi.org/10.1038/s12276-026-01815-y
Primary Topic
Nerve injury and regeneration
Type
article
Field-Weighted Citation Impact
0.00

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article

TRANsCre-DIONE transdifferentiates scar-forming reactive astrocytes into functional motor neurons

Doo‐Wan Cho, Junsung Woo, Young‐Su Yang, In‐Young Hwang et al.
Experimental & Molecular Medicine
Nerve injury and regeneration
article

TRANsCre-DIONE transdifferentiates scar-forming reactive astrocytes into functional motor neurons

Doo‐Wan Cho, Junsung Woo, Young‐Su Yang, In‐Young Hwang, Heeyoung An, Hye-Lan Lee, Jaekwang Lee, C. Justin Lee, Hye Yeong Lee, Jinpyo Hong, Mingu Park, Jung Moo Lee, SunYeong Choi, Su-Cheol Han, Yoon Ha
article en

Abstract

In spinal cord injury (SCI), the scar-forming reactive astrocytes with upregulated glial fibrillary acidic protein (GFAP) proliferate aberrantly near the injury site, representing a potential cellular source for transdifferentiation into neurons to replenish dead neurons. However, the conventional use of GFAP promoter to target reactive astrocytes has two inherent problems: inadvertent conversion of normal astrocytes and low efficiency due to progressive weakening of promoter activity during transdifferentiation. Here, we present TRANsCre-DIONE, a dual-promoter split-Cre system combining GFAP and Lcn2 regulatory elements with Cre-dependent Neurog2 expression under the EF1α promoter, enabling selective targeting of scar-forming reactive astrocytes. This approach achieved 87% conversion efficiency and 96% specificity in vivo. After SCI, TRANsCre-DIONE caused transdifferentiation into Isl1-positive and ChAT-positive motor neurons, reduced astrogliosis, enhanced regeneration in surrounding cells, and a significant motor recovery. These findings suggest that TRANsCre-DIONE enables efficient and selective astrocyte-to-neuron conversion and represents a promising strategy for SCI repair.

Experimental & Molecular Medicine
Hallym University (KR), Yonsei University (KR), Korea Institute of Toxicology (KR), Institute for Basic Science (KR), National Institute of Animal Science (KR), Yonsei University Health System (KR), Ulsan National Institute of Science and Technology (KR), Korea Institute of Science and Technology (KR), Korea Research Institute of Bioscience and Biotechnology (KR), Jeonbuk National University (KR)
Institute for Basic Science
Openalex Percentile: Top 17%
Nerve injury and regeneration
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