A Photonastic Prototissue Capable of Photo‐Mechano‐Chemical Transduction

A Agostino Galanti (Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy) B Beatrice Rosetti (Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy) S Stefano Valente (Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy) N Nicoletta Braidotti (Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy) M Maria Sbacchi (Department of Chemical and Pharmaceutical Sciences INSTM UdR Trieste University of Trieste via Licio Giorgieri 1 Trieste 34127 Italy) S Silvia Todros (Department of Industrial Engineering Università degli Studi di Padova Padova 35131 Italy) P Piero Pavan (Department of Industrial Engineering Università degli Studi di Padova Padova 35131 Italy) P Pierangelo Gobbo (Department of Chemical and Pharmaceutical Sciences, University of Trieste, Via L. Giorgieri 1, Trieste 34127, Italy)

Abstract

Abstract Despite recent significant advances in the controlled assembly of protocell units into complex 3D architectures, the development of prototissues capable of mimicking the sophisticated energy transduction processes fundamental to living tissues remains a critical unmet challenge in bottom‐up synthetic biology. Here a synthetic approach is described to start addressing this challenge and report the bottom‐up chemical construction of a photonastic prototissue endowed with photo‐mechano‐chemical transduction capabilities. For this, novel protocells enclosing photothermal transducing proto‐organelles based on gold nanoparticles and a thermoresponsive polymeric proto‐cortex are developed. These advanced protocell units are assembled into prototissues capable of light‐induced reversible contractions and complex motions, which can be exploited to reversibly switch off a coordinated internalized enzyme metabolism by blocking the access of small substrate molecules. Overall, the work provides a synthetic pathway to constructing prototissues with sophisticated energy transduction mechanisms, enabling the rational design of emergent behaviors in synthetic materials and addressing critical challenges in bottom‐up synthetic biology and bioinspired materials engineering.

Article Details

Volume / Issue Vol. 37, Issue 40
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

A

Agostino Galanti

Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy

B

Beatrice Rosetti

Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy

S

Stefano Valente

Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy

N

Nicoletta Braidotti

Department of Chemical and Pharmaceutical Sciences Università degli Studi di Trieste Via L. Giorgieri, 1 Trieste 34127 Italy

M

Maria Sbacchi

Department of Chemical and Pharmaceutical Sciences INSTM UdR Trieste University of Trieste via Licio Giorgieri 1 Trieste 34127 Italy

S

Silvia Todros

Department of Industrial Engineering Università degli Studi di Padova Padova 35131 Italy

P

Piero Pavan

Department of Industrial Engineering Università degli Studi di Padova Padova 35131 Italy

P

Pierangelo Gobbo

Department of Chemical and Pharmaceutical Sciences, University of Trieste, Via L. Giorgieri 1, Trieste 34127, Italy