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Ilaria Palmisano

The Ohio State University · US
Area of research
Cellular and Molecular Neuroscience · Molecular Biology
Research interest
Research focused on Regeneration (biology) and Neuroscience, with related work in Cell biology, Spinal cord injury, NADPH oxidase. Notable publications include 'Reactive oxygen species regulate axonal regeneration through the release of exosomal NADPH oxidase 2 complexes into injured axons', 'Cbp-dependent histone acetylation mediates axon regeneration induced by environmental enrichment in rodent spinal cord injury models', and 'Epigenomic signatures underpin the axonal regenerative ability of dorsal root ganglia sensory neurons'.
h-index
citations
861
works
9
NIH funding
primary concept
email

Recent publications

Three-dimensional chromatin mapping of sensory neurons reveals that promoter–enhancer looping is required for axonal regeneration
Proceedings of the National Academy of Sciences 2024cited by 11position: firstdoi
The circadian clock time tunes axonal regeneration
Cell Metabolism 2023cited by 20position: middledoi
Reversible CD8 T cell–neuron cross-talk causes aging-dependent neuronal regenerative decline
Science 2022cited by 109position: middledoi
Enriched conditioning expands the regenerative ability of sensory neurons after spinal cord injury via neuronal intrinsic redox signaling
Nature Communications 2020cited by 69position: middledoi
Cbp-dependent histone acetylation mediates axon regeneration induced by environmental enrichment in rodent spinal cord injury models
Science Translational Medicine 2019cited by 132position: middledoi
Epigenomic signatures underpin the axonal regenerative ability of dorsal root ganglia sensory neurons
Nature Neuroscience 2019cited by 115position: firstdoi
PP4‐dependent HDAC3 dephosphorylation discriminates between axonal regeneration and regenerative failure
The EMBO Journal 2019cited by 52position: middledoi
Reactive oxygen species regulate axonal regeneration through the release of exosomal NADPH oxidase 2 complexes into injured axons
Nature Cell Biology 2018cited by 328position: middledoi
Publisher Correction: Reactive oxygen species regulate axonal regeneration through the release of exosomal NADPH oxidase 2 complexes into injured axons
Nature Cell Biology 2018cited by 25position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Simone Di Giovanni · Imperial College Healthcare NHS Trust9 papers (2018–2024)Francesco De Virgiliis · University of Tübingen8 papers (2018–2024)Matt C. Danzi · University of Miami8 papers (2018–2023)Guiping Kong · University of Tübingen7 papers (2018–2024)John L. Bixby · Sylvester Comprehensive Cancer Center7 papers (2018–2022)Vance Lemmon · University of Miami7 papers (2018–2022)Thomas H. Hutson · Wyss Center for Bio and Neuroengineering6 papers (2018–2023)Arnau Hervera · University of Tübingen5 papers (2018–2019)José Antonio del Rı́o · Universitat de Barcelona3 papers (2018–2019) · 3 papers (2022–2024) · 3 papers (2019–2019)Ajay M. Shah · Abasyn University3 papers (2018–2020)Célio X.C. Santos · British Heart Foundation2 papers (2018–2018)Thomas Carroll · Case Western Reserve University2 papers (2018–2018)Elisabeth Serger · Imperial College London2 papers (2019–2023)Alexander Kapustin · AstraZeneca (United Kingdom)2 papers (2018–2018) · 2 papers (2018–2018) · 2 papers (2023–2024)Radhika Puttagunta · University of Tübingen2 papers (2019–2022) · 2 papers (2018–2018)