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    updated on 20 August, 2026

Biofabrication for Clinical Translation: From Advanced Technologies to Patient-Relevant Models

 
   17 Sept. clessidra che gira 16:00 - 17:30
ROOM 17
energy
HEALTH & NANOMEDICINE
12 MICRO & NANOFABRICATION
MICRO & NANOFABRICATION
TT.VIII - Technical Parallel Track Sessions
Biofabrication for Clinical Translation: From Advanced Technologies to Patient-Relevant Models
Co-organised with University of Magna Graecia
Chair: Michele CONTI, University of Pavia

Advanced biofabrication is rapidly transforming the development of physiologically relevant models for tissue engineering, disease modelling and regenerative medicine. This session welcomes contributions on innovative biofabrication strategies, with particular emphasis on clinical translation.
The session will address studies integrating patient-specific features, clinician-driven design, comparison with native tissues, and validation under physiologically and pathologically relevant conditions. 

The symposium is part of FE.I
TT.VIII.F.1
FE.I.16.1
Introductive Keynote
Carmine GENTILE
University of  Sydney & Harvard Medical School
Towards advanced bioinks for cardiac tissue engineering
GENTILE Carmine  
TT.VIII.F.2
FE.I.16.2
Amirhossein ELAHI - CV
Department of Molecular Medicine, Centre for Health Technologies, University of Pavia
Development of Tunable Alginate–Gelatin Bioinks for 3D Bioprinted Triple-Negative Breast Cancer Models
Amirhossein Elahi  
TT.VIII.F.3
FE.I.16.3
Federico DI TOLLA - CV
Department of Mechanical and Aerospace Engineering, Sapienza University of Rome
GelMA Microgels as a Novel Platform to Promote Pathophysiological Vascularization in Cardiac Organoids
DI TOLLA Federico  
TT.VIII.F.4
FE.I.16.4
Teresa BARRA - CV
Department of Biology, University of Naples Federico II
Perfusion-Driven Vessel Organization in 3D Bioprinted Constructs Using bEnd.3 Endothelial Cells
BARRA Teresa  
TT.VIII.F.5
FE.I.16.5
Luana DI LISA - CV
Department of Chemistry "G. Ciamician", University of Bologna
GelMA-Alginate Interpenetrating Polymeric Network (IPN) for a 3D Bioprinted Liver Model to Study Plasticizer Toxicity
DI LISA Luana  
 

 

 
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