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Archives of Biochemistry and Biophysics|March 9, 2005
Gap junction channels reconstituted in two closely apposed lipid bilayersAlfonsina Ramundo-Orlando, Annalucia Serafino, Antonio VillaloboBioelectromagnetics|June 16, 2004
Effects of 2.45 GHz microwave fields on liposomes entrapping glycoenzyme ascorbate oxidase: evidence for oligosaccharide side chain involvementAlfonsina Ramundo-Orlando, Micaela Liberti, Giuseppe Mossa, et al.Journal of Biological Physics|July 18, 2013
The influence of millimeter waves on the physical properties of large and giant unilamellar vesiclesKatia Cosentino, Amerigo Beneduci, Alfonsina Ramundo-Orlando, et al.Biochimica Et Biophysica Acta|January 27, 2005
Permeability changes of connexin32 hemi channels reconstituted in liposomes induced by extremely low frequency, low amplitude magnetic fieldsAlfonsina Ramundo-Orlando, Annalucia Serafino, Rosangela Schiavo, et al.Radiation Research|September 25, 2012
Permeability changes of cationic liposomes loaded with carbonic anhydrase induced by millimeter waves radiationLoreto Di Donato, Maria Cataldo, Pasquale Stano, et al.Biochimica Et Biophysica Acta|April 21, 2009
The response of giant phospholipid vesicles to millimeter waves radiationAlfonsina Ramundo-Orlando, Giovanni Longo, Mauro Cappelli, et al.Biochimica Et Biophysica Acta|April 8, 2014
Induced movements of giant vesicles by millimeter wave radiationMartina Albini, Simone Dinarelli, Francesco Pennella, et al.Bioelectromagnetics|July 11, 2007
Permeability changes induced by 130 GHz pulsed radiation on cationic liposomes loaded with carbonic anhydraseAlfonsina Ramundo-Orlando, Gian Piero Gallerano, Pasquale Stano, et al.Drug Delivery and Translational Research|September 12, 2018
Movement of giant lipid vesicles induced by millimeter wave radiation change when they contain magnetic nanoparticlesMartina Albini, Massimo Salvi, Emiliano Altamura, et al.Scientific Reports|June 20, 2018
Extremely High Frequency Electromagnetic Fields Facilitate Electrical Signal Propagation by Increasing Transmembrane Potassium Efflux in an Artificial Axon ModelSimona D'Agostino, Chiara Della Monica, Eleonora Palizzi, et al.Pageof 1