A Soft Microrobot for Single‐Cell Transport, Spheroid Assembly, and Dual‐Mode Drug Screening

P Philipp Harder (Microrobotic Bioengineering Lab (MRBL) School of Computation Information and Technology Department of Electrical Engineering Technical University of Munich (TUM) Hans‐Piloty‐Straße 1 85748 Garching Germany) N Nergishan İyisan (Microrobotic Bioengineering Lab (MRBL) School of Computation Information and Technology Department of Electrical Engineering Technical University of Munich (TUM) Hans‐Piloty‐Straße 1 85748 Garching Germany) Y Yukun Wang (MOE Key Laboratory of Macromolecular Synthesis and Functionalization Department of Polymer Science and Engineering Zhejiang University Hangzhou Zhejiang Province P. R. China) B Berna Özkale (Microrobotic Bioengineering Lab Department of Electrical Engineering TUM School of Computation, Information and Technology Technical University of Munich Garching Germany)

Abstract

Abstract Physiologically relevant 3D cellular in vitro systems have enabled disease modeling and drug screening, yet these approaches remain hindered by stochastic self‐assembly, structural heterogeneity, and limited diffusion. While hydrogel scaffolds, 3D bioprinting, and microfluidic platforms have improved spatial organization and environmental control in such systems, these approaches often lack real‐time adaptability. This work introduces a soft and untethered hydrogel microrobot enabling targeted single‐cell delivery, spheroid self‐assembly, photothermal actuation, and sensing. The microrobot is composed of an alginate hydrogel network carrying gold nanorods for plasmonic heating and Rhodamine B for real‐time temperature sensing. Microfluidic encapsulation is used to fabricate uniform spherical microrobots. Microrobot locomotion is achieved through thermophoretic convection, allowing precise manipulation within 3D workspaces in an externally controlled manner. The microrobots facilitate single‐cell pick‐up and spheroid formation through carefully designed surface coatings. The microrobots simultaneously function as localized heaters, modulating the cell microenvironment via photothermal actuation, and as sensors, providing real‐time feedback on local changes in temperature. Combining photothermal stimulation with chemotherapeutic testing reduces the invasive behavior of fibrosarcoma cells in proof‐of‐concept studies, demonstrating the system's capability to function as a drug screening tool.

Article Details

Volume / Issue Vol. 38, Issue 18
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (4)

P

Philipp Harder

Microrobotic Bioengineering Lab (MRBL) School of Computation Information and Technology Department of Electrical Engineering Technical University of Munich (TUM) Hans‐Piloty‐Straße 1 85748 Garching Germany

N

Nergishan İyisan

Microrobotic Bioengineering Lab (MRBL) School of Computation Information and Technology Department of Electrical Engineering Technical University of Munich (TUM) Hans‐Piloty‐Straße 1 85748 Garching Germany

Y

Yukun Wang

MOE Key Laboratory of Macromolecular Synthesis and Functionalization Department of Polymer Science and Engineering Zhejiang University Hangzhou Zhejiang Province P. R. China

B

Berna Özkale

Microrobotic Bioengineering Lab Department of Electrical Engineering TUM School of Computation, Information and Technology Technical University of Munich Garching Germany