‘Light-mills’ are optically driven microstructures that can exchange orbital angular momentum with light and thus rotate around a central axis with a controlled applied torque. Although many studies have explored the employment of light momentum for torque generation, only a few convincing applications in cellular and molecular biology have been demonstrated. Here, we design a 3D chiral structure that can be selectively coupled to a target nanometric flagellar motor in a live E. coli cell, functioning as an external, tunable torque clamp. We optimize our 3D microstructures for torque conversion efficiency and mechanical stability, and propose a calibration protocol that enables absolute quantification of the torque generated by the flagellar motor during rotation in both its natural and reverse directions. Our results demonstrate that microfabricated light-mills expand the optical toolbox for biomechanical study of individual rotary motors by enabling controlled torque application and measurement at the nanoscale. (Figure presented.)
An optically driven microstructure for torque measurement in rotary molecular motors / Donini, G., Bianchi, S., Pellicciotta, N., Frangipane, G., Cannarsa, M.C., Bagal, O.S., Di Leonardo, R.. - In: MICROSYSTEMS & NANOENGINEERING. - ISSN 2055-7434. - 12:1(2026). [10.1038/s41378-026-01185-5]
An optically driven microstructure for torque measurement in rotary molecular motors
Donini, Giacomo;Bianchi, Silvio;Pellicciotta, Nicola;Frangipane, Giacomo;Cannarsa, Maria Cristina;Bagal, Ojus Satish;Di Leonardo, RobertoUltimo
2026
Abstract
‘Light-mills’ are optically driven microstructures that can exchange orbital angular momentum with light and thus rotate around a central axis with a controlled applied torque. Although many studies have explored the employment of light momentum for torque generation, only a few convincing applications in cellular and molecular biology have been demonstrated. Here, we design a 3D chiral structure that can be selectively coupled to a target nanometric flagellar motor in a live E. coli cell, functioning as an external, tunable torque clamp. We optimize our 3D microstructures for torque conversion efficiency and mechanical stability, and propose a calibration protocol that enables absolute quantification of the torque generated by the flagellar motor during rotation in both its natural and reverse directions. Our results demonstrate that microfabricated light-mills expand the optical toolbox for biomechanical study of individual rotary motors by enabling controlled torque application and measurement at the nanoscale. (Figure presented.)I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


