Area of research
Molecular Biology · Cancer Research
Research interest
Research interests include Cell biology, Microvesicles, Adipose tissue, Extracellular vesicles, Mesenchymal stem cell, and Extracellular matrix.
Mechanism of action behind the pain-relief effects of extracellular vesicles in microfragmented adipose tissue: an in vitro and in vivo study
Protocol for the isolation and characterization of murine hematopoietic stem and progenitor cell-derived extracellular vesicles
Mechanism of Action Behind the Pain-Relief Effects of Extracellular Vesicles in Microfragmented Adipose Tissue: An In vitro and In vivo Study
A mitochondrial NADPH-cholesterol axis regulates extracellular vesicle biogenesis to support hematopoietic stem cell fate
Link between organic nanovescicles from vegetable kingdom and human cell physiology: intracellular calcium signalling
Adipose-derived stem cell exosomes act as delivery vehicles of microRNAs in a dog model of chronic hepatitis
Playing with Biophysics: How a Symphony of Different Electromagnetic Fields Acts to Reduce the Inflammation in Diabetic Derived Cells
Mitochondrial Metabolism and EV Cargo of Endothelial Cells Is Affected in Presence of EVs Derived from MSCs on Which HIF Is Activated
It takes two to remyelinate: A bioengineered platform to study astrocyte-oligodendrocyte crosstalk and potential therapeutic targets in remyelination
Apple Derived Exosomes Improve Collagen Type I Production and Decrease MMPs during Aging of the Skin through Downregulation of the NF-κB Pathway as Mode of Action
Exosomes Derived from Dental Pulp Stem Cells Show Different Angiogenic and Osteogenic Properties in Relation to the Age of the Donor
Exosomes as Neurological Nanosized Machines
Biomaterials for Regenerative Medicine in Italy: Brief State of the Art of the Principal Research Centers
In Vitro Model for the Evaluation of Innovative Transcatheter Debridement Device (TDD): Pericardium-Based Scaffold and Stem Cells to Reproduce Calcificated Valves
Tissue reconstruction of abdominal wall with butyric acid-based nets: preliminary in vitro test using tissue engineering strategies.