PEER-REVIEWED PUBLICATION

2026

Kirigami-Inspired Deployable Microneedle Robot With Enhanced Conformability for Targeted Oral Drug Delivery

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Zhou K, Sun R, Zuo Y, et al.

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Imperial College London, University of Oxford

RESEARCH SUMMARY
This study developed KiriBot, a kirigami-inspired deployable microneedle robot designed for localized oral drug delivery within the gastrointestinal tract. The multilayer system combines a biodegradable drug-loaded PLGA microneedle layer, a dissolvable PVA/chitosan adhesive layer, and a detachable magnetically responsive NdFeB-PDMS actuation layer. Kirigami patterning increased patch-scale flexibility and conformability while allowing the microneedles themselves to remain sufficiently stiff for tissue penetration. Material optimization showed that high-molecular-weight PLGA provided greater resistance to microneedle compression than lower-molecular-weight formulations. Rhodamine 6G-loaded microneedles exhibited concentration-dependent release behavior, with apparent release half-lives of approximately 15, 25, and 35 days for 1%, 2%, and 5% loading, respectively. Although increasing drug loading increased compressive stiffness, the 2% formulation was selected as a balance between controlled release, mechanical robustness, and flexibility. Weight-assisted testing in an agarose tissue phantom showed that approximately 20 g of applied load was sufficient for complete microneedle insertion, and magnetic-force measurements indicated that this insertion-force threshold could be generated at a magnet-target separation of approximately 8.5 mm under the experimental setup. The kirigami magnetic layer achieved better conformity to curved surfaces than a non-kirigami design, supported by finite element simulations. In vitro experiments demonstrated capsule dissolution, patch unfolding, magnetic positioning, microneedle insertion, and magnetic-layer detachment. Ex vivo porcine intestine testing confirmed tissue attachment and microneedle penetration, including visible perforations and histological penetration tracks. The complete KiriBot device did not significantly reduce cardiac fibroblast viability compared with untreated controls over three days. Overall, the study establishes a proof-of-concept magnetically controlled microneedle platform that combines structural conformability, localized tissue anchoring, and sustained drug-release capability for future gastrointestinal drug delivery applications.
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CELLSCALE INSTRUMENT USED

UniVert

A CellScale UniVert mechanical testing system was used for two quantitative mechanical measurements in the KiriBot study. First, the UniVert characterized the compressive mechanical properties of PLGA 504 microneedle patches containing 1%, 2%, or 5% w/w rhodamine 6G. Each test specimen contained four microneedle tips and was positioned on the lower compression platen with the tips facing the upper platen. The upper platen advanced at 1 mm/s while force and displacement were continuously recorded using a 4.5 N load cell at 5 Hz. These measurements showed that compressive force increased with rhodamine 6G concentration, with the 5% formulation exhibiting the greatest stiffness. The mechanical results contributed to selection of the 2% formulation as a balance between robustness, flexibility, and controlled drug release. Second, the UniVert was used to quantify magnetic attraction force between the kirigami actuation layer and the permanent magnet. A kirigami magnetic layer containing 50% w/w NdFeB particles was attached to the upper compression platen and the permanent magnet was fixed to the lower platen. Beginning at a 40 mm separation, the magnetic layer was moved toward the magnet at 1 mm/s while attraction force was recorded with the 4.5 N load cell at 5 Hz. The resulting force-distance relationship was compared with the microneedle insertion-force requirement established separately using weight-assisted agarose testing and showed that the necessary force for complete insertion could be achieved at a magnet-target distance of approximately 8.5 mm. The UniVert was therefore used both to characterize drug-loaded microneedle compression mechanics and to quantify the magnetic actuation force available for microneedle deployment.
AUTHORS

Kun Zhou, Rujie Sun, Yuyang Zuo, David J. Peeler, Jonathan Yeow, Ruoxiao Xie, Junliang Lin, Yiming Ma, Yue Shao, Yuanxiong Cao, Zhengkun Chen, Molly M. Stevens.

PUBLICATION DETAILS
JOURNAL

Small

YEAR

2026

INSTITUTIONS

Imperial College London, University of Oxford

COUNTRIES

United Kingdom

INSTRUMENT USED

UniVert

TESTING METHODS

Compression Testing

RESEARCH APPLICATIONS

Drug Screening & Drug Delivery MechanicsPolymers and Elastomers TestingSoft Robotics Materials

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