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Calcified Tissue International, ISSN 1432-0827, 2014, Volume 61, Issue 1, pp. 22 - 25
Journal Article
Nature (London), ISSN 1476-4687, 2018, Volume 561, Issue 7723, pp. 396 - 400
Transected axons fail to regrow across anatomically complete spinal cord injuries (SCI) in adults. Diverse molecules can partially facilitate or attenuate axon... 
LOCAL-DELIVERY | CELLS | RECOVERY | SCAR FORMATION | NEURITE OUTGROWTH | GLIAL SCAR | MULTIDISCIPLINARY SCIENCES | SYNAPSE FORMATION | REACTIVE ASTROCYTES | CONDUCTION | CENTRAL-NERVOUS-SYSTEM | Hydrogels | Spinal Cord Regeneration | Stromal Cells - pathology | Nerve Regeneration - physiology | Astrocytes - pathology | Rats, Inbred Lew | Electrophysiology | Male | Axons - physiology | Recovery of Function | Spinal Cord Injuries - pathology | Fibroblast Growth Factors - metabolism | Glial Cell Line-Derived Neurotrophic Factor - metabolism | Female | Spinal Cord Injuries - therapy | Mice, Inbred C57BL | Proteoglycans - metabolism | Rats | Epidermal Growth Factor - metabolism | Animals | Neuroglia - metabolism | Spinal Cord Injuries - rehabilitation | Cicatrix - pathology | Mice | Spinal Cord Injuries - physiopathology | Laminin - metabolism | Spinal cord injuries | Genetic aspects | Adults | Health aspects | Conduction | Fibroblast growth factor | Animal models | Spinal cord | Circuit design | Recovery of function | Nervous system | Insulin-like growth factors | Spinal cord injury | Neuronal-glial interactions | Biomaterials | Biomedical materials | Epidermal growth factor | Rodents | Reinstatement | Fibroblasts | Biocompatibility | Lesions | Growth factors | Controlled release | Injuries | Fibroblast growth factor 2 | Neurons | Axonogenesis | Osteopontin | Regrowth | Insulin | Substrates | Regeneration | Axons | Functional morphology | Rehabilitation
Journal Article
Nature (London), ISSN 1476-4687, 2018, Volume 563, Issue 7729, pp. 65 - 71
Spinal cord injury leads to severe locomotor deficits or even complete leg paralysis. Here we introduce targeted spinal cord stimulation neurotechnologies that... 
EPIDURAL ELECTRICAL-STIMULATION | RECOVERY | EXCITABILITY | MULTIDISCIPLINARY SCIENCES | RANDOMIZED CLINICAL-TRIAL | CIRCUIT REORGANIZATION | MOTOR FUNCTION | NEUROMODULATION | LOCOMOTION | ACTIVITY-BASED THERAPY | PLASTICITY | Humans | Male | Muscle, Skeletal - innervation | Paralysis - rehabilitation | Walking - physiology | Activities of Daily Living | Computer Simulation | Electromyography | Spinal Cord - cytology | Epidural Space | Motor Neurons - physiology | Leg - physiology | Spinal Cord Injuries - surgery | Muscle, Skeletal - physiology | Electric Stimulation Therapy | Leg - innervation | Biomedical Technology | Muscle, Skeletal - physiopathology | Spinal Cord - physiology | Paralysis - physiopathology | Spinal Cord Injuries - rehabilitation | Spinal Cord - physiopathology | Spinal Cord Injuries - physiopathology | Leg - physiopathology | Locomotion - physiology | Paralysis - surgery | Walking | Care and treatment | Spinal cord injuries | Health aspects | Legs | Spinal cord | Nuclear magnetic resonance--NMR | Medical imaging | Activities of daily living | Neurons | Muscles | Pulse generators | Clinical trials | Stimulation | Spinal cord injury | Adaptive control | Electrodes | Ecological effects | Brain research | Simulation | Paralysis | Rehabilitation | Injuries | Life Sciences | Neurons and Cognition | Neurobiology
Journal Article
Molecular neurobiology, ISSN 1559-1182, 2015, Volume 53, Issue 5, pp. 3063 - 3075
Journal Article
Nature neuroscience, ISSN 1546-1726, 2019, Volume 22, Issue 3, pp. 421 - 435
The clearance of damaged myelin sheaths is critical to ensure functional recovery from neural injury. Here we show a previously unidentified role for... 
FIBROTIC SCAR | CLEARANCE | IN-VITRO | PHAGOCYTOSIS | MICROGLIA | REGENERATION | REMYELINATION | CENTRAL-NERVOUS-SYSTEM | SPINAL-CORD-INJURY | EXPRESSION | NEUROSCIENCES | Cell Proliferation | Angiogenesis Inducing Agents | Spinal Cord Injuries - complications | Transcriptome | Microvessels - pathology | Autophagy | Lysosomes - physiology | Spinal Cord Injuries - pathology | Female | Endothelial Cells - physiology | Macrophages - physiology | Encephalomyelitis, Autoimmune, Experimental - physiopathology | Myelin Sheath - physiology | Encephalomyelitis, Autoimmune, Experimental - pathology | Macrophages - pathology | Myelin Sheath - pathology | Endothelial Cells - metabolism | Mice, Inbred C57BL | Inflammation - etiology | Microvessels - physiology | Animals | Encephalomyelitis, Autoimmune, Experimental - complications | Fibrosis | Spinal Cord Injuries - physiopathology | Endothelial Cells - pathology | Inflammation - physiopathology | Development and progression | Care and treatment | Spinal cord injuries | Research | Macrophages | Neurons | Spinal cord | Mesenchyme | Myelin | Opsonization | Immunoglobulin G | Detritus | Recovery of function | Spinal cord injury | Experimental allergic encephalomyelitis | Endothelial cells | Angiogenesis | Sheaths | Demyelination | Lining (process) | Nitric oxide | Infiltration | Microvasculature | Debris | Injuries | Phagocytosis
Journal Article
Scientific reports, ISSN 2045-2322, 2015, Volume 5, Issue 1, p. 13702
Spinal cord injury (SCI) has been implicated in neural cell loss and consequently functional motor and sensory impairment. In this study, we propose an... 
SULFATE PROTEOGLYCANS | PROGENITOR CELLS | NERVE-FIBER GROWTH | ADULT-RAT | DESCENDING PATHWAYS | MULTIDISCIPLINARY SCIENCES | IMPROVES FUNCTIONAL RECOVERY | CORTICOSPINAL TRACT | HORSERADISH-PEROXIDASE | STROMAL CELLS | PROSTAGLANDIN E-2 | Immunohistochemistry | Synaptic Vesicles - metabolism | Male | Glial Fibrillary Acidic Protein - metabolism | Motor Activity | Motor Neurons - pathology | Recovery of Function | Hyperalgesia | Spinal Cord Injuries - pathology | Tissue Scaffolds | Microfilament Proteins - metabolism | Proteomics - methods | Calcitonin Gene-Related Peptide - metabolism | Glucuronic Acid - chemistry | Spinal Cord Injuries - therapy | Disease Models, Animal | Calcium-Binding Proteins - metabolism | Spinal Cord Injuries - metabolism | Axons - metabolism | Rats | Proteome | Hexuronic Acids - chemistry | Nerve Growth Factors - biosynthesis | Motor Neurons - metabolism | Animals | Alginates - chemistry | Spinal Cord Injuries - rehabilitation | Spinal Cord Injuries - physiopathology | Neovascularization, Physiologic | Cluster Analysis | Fibroblast growth factor 2 | Motor neurons | Fibroblast growth factor | Cytokines | Axonogenesis | Alginic acid | Recovery of function | Blood vessels | Inflammation | Choline O-acetyltransferase | Pyramidal tracts | Bioavailability | Spinal cord injury | Motor task performance | Epidermal growth factor | Rodents | Choline | Proteomics | Acetyltransferase | Chondroitin sulfate | Spinal cord injuries | Sulfate | Growth factors | Trophic factors
Journal Article
The Journal of neuroscience, ISSN 1529-2401, 2014, Volume 34, Issue 14, pp. 4822 - 4836
Journal Article