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
Oral drug delivery is widely accessible to patients for the treatment of gastrointestinal diseases such as gastric ulcers. However, the efficacy of orally delivered drugs is often hindered by their short duration of acting and low local drug concentration, due to the dynamic environment of the gastrointestinal tract. Oral microneedle drug delivery systems offer a promising solution for achieving long-term drug release at target sites by inserting microneedles into tissues to prolong drug retention. Yet, their effectiveness is compromised by poor flexibility, which impedes microneedle insertion into rugose tissues. Herein, we introduce a kirigami-inspired deployable microneedle robot (KiriBot) featuring a porous network of cut patterns designed to enhance tissue attachment and facilitate microneedle insertion into the target tissue wall. KiriBot consists of a multilayer foldable microneedle patch that integrates sequential chemical and magnetic actuation to control both microneedle insertion and targeted drug release. Through in vitro and ex vivo evaluation under direct visual observation, we demonstrate that the kirigami design significantly improves flexibility and enables remote magnetic control for targeted microneedle insertion. These proof-of-concept results highlight the potential of KiriBot for localized gastrointestinal drug delivery, while in vivo device localization and magnetic actuation across clinically relevant conditions remain to be established.