Synthetic aptamer mechanoreceptors enable cell-specific force sensing and temporal control via DNA circuits

T Tao Xu S Soumya Sethi C Christoph Drees A Andreas Walther (Life-Like Materials and Systems, University of Mainz, Duesbergweg 10-14, 55128 Mainz, Germany)

Abstract

Abstract Cells interpret mechanical cues from their microenvironment with spatiotemporal precision to guide adaptive behaviors. However, engineering synthetic mechanosensing systems with both cell-specificity and programmability remains challenging, especially when targeting ubiquitous classical mechanoreceptors. Here, we introduce an all-DNA mechanosensing platform based on aptamers that transmit force through noncanonical surface receptors. Aptamer–receptor recognition acts as a molecular gate for force transduction, enabling the design of mechanoprobes with cell-type selectivity. These probes interpret diverse mechanical inputs via distinct mechanisms, including actomyosin-driven contractility and membrane ruffling during macropinocytosis. By integrating aptamer mechanoprobes with upstream DNA reaction networks, we achieve reversible and temporally programmable mechanoresponses. This modular, all-nucleic-acid system offers a general framework for constructing tunable mechanotransduction circuits. It expands the design space for synthetic mechanobiology and provides opportunities for autonomous, multi-layered mechanical–biochemical regulation in tissue engineering, morphogenesis, and dynamic cell programming.

Article Details

Volume / Issue Vol. 17, Issue 1
Published March 15, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (4)

T

Tao Xu

S

Soumya Sethi

C

Christoph Drees

A

Andreas Walther

Life-Like Materials and Systems, University of Mainz, Duesbergweg 10-14, 55128 Mainz, Germany