Ilaria Palmisano
Neuroscience · The Ohio State University
Publications
44
Citations
1,543
Est. group size
—
Recurring co-author estimate
Active years
26
Publishing since 2001
Ilaria Palmisano studies why nerve cells lose the ability to regenerate after injury, focusing on the molecular and genetic (epigenetic) switches that control this process in the peripheral and central nervous system. Her work examines factors such as chromatin organization, histone-modifying enzymes, immune cells, diet-related signaling, and circadian rhythms as regulators of nerve repair, with implications for conditions like spinal cord injury, aging, and Alzheimer's disease.
Publication output has fluctuated over the past decade, with a notable peak in 2023 and continued steady activity through 2024-2026, averaging under 4 papers per year over the last five years.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- CITED2 is a druggable epigenetic switch coupling neuronal maturation to regenerative decline
EMBO Molecular Medicine · 2026
- Author Correction: CITED2 is a druggable epigenetic switch coupling neuronal maturation to regenerative decline
EMBO Molecular Medicine · 2026
- Dietary-dependent sensitization of neuronal leptin signaling promotes neural repair after injury via cAMP and gene transcription
Neuron · 2025
- Author Correction: Macrophages excite muscle spindles with glutamate to bolster locomotion
Nature · 2025
- Histone deacetylase‐3 regulates the expression of the amyloid precursor protein and its inhibition promotes neuroregenerative pathways in Alzheimer's disease models
The FASEB Journal · 2024
- Macrophages excite muscle spindles with glutamate to bolster locomotion
Nature · 2024
- Three-dimensional chromatin mapping of sensory neurons reveals that promoter–enhancer looping is required for axonal regeneration
Proceedings of the National Academy of Sciences · 2024
- Soluble CD27 is an intrathecal biomarker of T-cell-mediated lesion activity in multiple sclerosis
Journal of Neuroinflammation · 2024
- Three-dimensional chromatin mapping of sensory neurons reveals that cohesin-dependent genomic domains are required for axonal regeneration
bioRxiv (Cold Spring Harbor Laboratory) · 2024
- The circadian clock time tunes axonal regeneration
Cell Metabolism · 2023
- Epigenomic Profiling of Dorsal Root Ganglia upon Regenerative and Non-regenerative Axonal Injury
Methods in molecular biology · 2023
- HDAC3 inhibition increases the expression levels of the Amyloid Precursor Protein
Alzheimer s & Dementia · 2023
- Soluble CD27 is an intrathecal biomarker of T-cell-mediated lesion activity in multiple sclerosis
Research Square · 2023
- Leptin Signalling Promotes Axonal Regeneration in the Peripheral and Central Nervous System
Research Square · 2023
- Leptin Signalling Promotes Axonal Regeneration in the Peripheral and Central Nervous System
SSRN Electronic Journal · 2023
- bioRxiv (Cold Spring Harbor Laboratory)×5
- Research Square×3
- Nature Cell Biology×2
- Science Translational Medicine×2
- Nature×2
- Jae Cheon Ryu
Neuroscience · The Ohio State University
- Sung Ok Yoon
Neuroscience · The Ohio State University
- Andrea Tedeschi
Neuroscience · The Ohio State University
- Giles W. Plant
Neuroscience · The Ohio State University
- Angela R. Filous
Neuroscience · The Ohio State University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
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