Area of research
Cellular and Molecular Neuroscience · Developmental Neuroscience
Research interest
Research interests include Neurogenesis and neuroplasticity mechanisms, Axon Guidance and Neuronal Signaling, Pluripotent Stem Cells Research, and Neuroscience and Neuropharmacology Research.
A framework for neural organoids, assembloids and transplantation studies
If you please, draw me a neuron — linking evolutionary tinkering with human neuron evolution
Protocol to process fresh human cerebral cortex biopsies for patch-clamp recording and immunostaining
Mitochondria metabolism sets the species-specific tempo of neuronal development
Developmental mechanisms underlying the evolution of human cortical circuits
LRRC37B is a human modifier of voltage-gated sodium channels and axon excitability in cortical neurons
Mitochondrial dynamics in postmitotic cells regulate neurogenesis
Cortical Neurogenesis Requires Bcl6-Mediated Transcriptional Repression of Multiple Self-Renewal-Promoting Extrinsic Pathways
Human Pluripotent Stem-Cell-Derived Cortical Neurons Integrate Functionally into the Lesioned Adult Murine Visual Cortex in an Area-Specific Way
Bcl6 promotes neurogenic conversion through transcriptional repression of multiple self-renewal-promoting extrinsic pathways
Hallmarks of Alzheimer’s Disease in Stem-Cell-Derived Human Neurons Transplanted into Mouse Brain
Post-translational Control of the Temporal Dynamics of Transcription Factor Activity Regulates Neurogenesis
Altered neuronal network and rescue in a human MECP2 duplication model
Creating Patient-Specific Neural Cells for the In Vitro Study of Brain Disorders
A BCL6/BCOR/SIRT1 Complex Triggers Neurogenesis and Suppresses Medulloblastoma by Repressing Sonic Hedgehog Signaling
Thinking out of the dish: what to learn about cortical development using pluripotent stem cells
Restoration of Progranulin Expression Rescues Cortical Neuron Generation in an Induced Pluripotent Stem Cell Model of Frontotemporal Dementia
Directed Migration of Cortical Interneurons Depends on the Cell-Autonomous Action of Sip1
Ephrin-A5/EphA4 signalling controls specific afferent targeting to cochlear hair cells
Inhibition of SRGAP2 Function by Its Human-Specific Paralogs Induces Neoteny during Spine Maturation