4.7 Article

Neurod4 converts endogenous neural stem cells to neurons with synaptic formation after spinal cord injury

Related references

Note: Only part of the references are listed.
Review Neurosciences

bHLH transcription factors in neural development, disease, and reprogramming

Daniel J. Dennis et al.

BRAIN RESEARCH (2019)

Review Biochemistry & Molecular Biology

Excitatory and Inhibitory Neuronal Circuits in the Spinal Cord and Their Role in the Control of Motor Neuron Function and Degeneration

Uri Nimrod Ramirez-Jarquin et al.

ACS CHEMICAL NEUROSCIENCE (2018)

Review Neurosciences

The Neuroplastic and Therapeutic Potential of Spinal Interneurons in the Injured Spinal Cord

Lyandysha V. Zholudeva et al.

TRENDS IN NEUROSCIENCES (2018)

Article Biochemistry & Molecular Biology

NeuroD1 reprograms chromatin and transcription factor landscapes to induce the neuronal program

Abhijeet Pataskar et al.

EMBO JOURNAL (2016)

Review Developmental Biology

Making sense out of spinal cord somatosensory development

Helen C. Lai et al.

DEVELOPMENT (2016)

Review Developmental Biology

Direct neuronal reprogramming: learning from and for development

Giacomo Masserdotti et al.

DEVELOPMENT (2016)

Article Neurosciences

Temporal Response of Endogenous Neural Progenitor Cells Following Injury to the Adult Rat Spinal Cord

Yilin Mao et al.

FRONTIERS IN CELLULAR NEUROSCIENCE (2016)

Article Cell & Tissue Engineering

Transcriptional Mechanisms of Proneural Factors and REST in Regulating Neuronal Reprogramming of Astrocytes

Giacomo Masserdotti et al.

CELL STEM CELL (2015)

Article Clinical Neurology

Role of Endogenous Neural Stem Cells in Spinal Cord Injury and Repair

Moa Stenudd et al.

JAMA NEUROLOGY (2015)

Article Biochemistry & Molecular Biology

Hierarchical Mechanisms for Direct Reprogramming of Fibroblasts to Neurons

Orly L. Wapinski et al.

Article Cell & Tissue Engineering

Interferon-β Delivery Via Human Neural Stem Cell Abates Glial Scar Formation in Spinal Cord Injury

Yusuke Nishimura et al.

CELL TRANSPLANTATION (2013)

Article Developmental Biology

ASCL1 reprograms mouse Muller glia into neurogenic retinal progenitors

Julia Pollak et al.

DEVELOPMENT (2013)

Article Developmental Biology

Spinal cord regeneration in Xenopus tadpoles proceeds through activation of Sox2-positive cells

Marcia Gaete et al.

NEURAL DEVELOPMENT (2012)

Article Multidisciplinary Sciences

Hoxb1 Controls Anteroposterior Identity of Vestibular Projection Neurons

Yiju Chen et al.

PLoS One (2012)

Review Cell & Tissue Engineering

Endogenous Proliferation after Spinal Cord Injury in Animal Models

Ashley McDonough et al.

STEM CELLS INTERNATIONAL (2012)

Article Multidisciplinary Sciences

Ascl1/Mash1 Is a Novel Target of Gli2 during Gli2-Induced Neurogenesis in P19 EC Cells

Anastassia Voronova et al.

PLOS ONE (2011)

Article Cell & Tissue Engineering

Origin of New Glial Cells in Intact and Injured Adult Spinal Cord

Fanie Barnabe-Heider et al.

CELL STEM CELL (2010)

Article Developmental Biology

Ascl1 is required for oligodendrocyte development in the spinal cord

Michiya Sugimori et al.

DEVELOPMENT (2008)

Review Biochemistry & Molecular Biology

Lymphocytic choriomeningitis infection of the central nervous system

Silvia S. Kang et al.

FRONTIERS IN BIOSCIENCE-LANDMARK (2008)

Article Biochemistry & Molecular Biology

Spinal cord injury reveals multilineage differentiation of ependymal cells

Konstantinos Meletis et al.

PLOS BIOLOGY (2008)

Article Biochemistry & Molecular Biology

Neurogenin and NeuroD direct transcriptional targets and their regulatory enhancers

Seongjin Seo et al.

EMBO JOURNAL (2007)

Article Biochemistry & Molecular Biology

Transgenic labeling of the corticospinal tract for monitoring axonal responses to spinal cord injury

FM Bareyre et al.

NATURE MEDICINE (2005)

Article Neurosciences

Proprioceptor pathway development is dependent on MATH1

NA Bermingham et al.

NEURON (2001)