"Swarms" of cyborg cockroaches with cameras and miniature medical injectors could deliver supervised emergency care to people trapped in collapsed buildings, caves or other places too dangerous for rescuers to reach. The "Paraborgs" developed by University of Queensland bioroboti
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"Swarms" of cyborg cockroaches with cameras and miniature medical injectors could deliver supervised emergency care to people trapped in collapsed buildings, caves or other places too dangerous for rescuers to reach. The "Paraborgs" developed by University of Queensland biorobotics researchers, working with biomedical engineers at the University of New South Wales (UNSW), move cyborg insects of the future beyond searching for survivors to actively assisting them. The research is published in the journal Advanced Science.
UQ biorobotics engineer Dr. Thang Vo-Doan said their research transforms the cyborg insect from a mobile sensor into a tiny rescue platform, while critical medical decisions remain under human control.
"Cyborg insects have been designed for 'search and explore' missions for the past couple of decades," Vo-Doan said. "We wanted to take the next step. Once they find someone, can they actually help?"
The researchers equipped North Queensland giant burrowing cockroaches (Macropanesthia rhinoceros) with lightweight electronics and either cameras for visual feedback or remotely activated auto-injection systems custom-made for the species.
"Augmenting their natural biomechanics could allow these cyborg insects to deliver timely emergency assistance when direct access to people trapped in narrow, debris-filled spaces isn't possible," Vo-Doan said.
In proof-of-concept testing at UQ's School of Mechanical and Mining Engineering, the paraborgs achieved 95% success with close-range injection—positioned within 15 centimeters (6 inches) of the target.
The complete navigation-and-injection task succeeded in 72% of trials.
Ph.D. candidate Hai Nhan Le said accurate positioning of the paraborgs was one of the key engineering challenges.
"The cyborg insect has to navigate to the target, position itself accurately and remain stable enough to perform the injection," Le said.
"A lot of people might not like the sight of a giant cockroach scurrying toward them, but if you're trapped in rubble or stuck in a cave and need help, it could make a real difference between life and death."
Director of the UNSW Medical Robotics Lab Associate Professor Thanh Nho Do said the paraborg technology could extend the reach of emergency medicine.
"From a biomedical perspective, the opportunity is to bring treatment to a patient when the patient cannot yet be brought to treatment," Do said.
"The long-term goal is targeted, human-supervised intervention in places conventional medical technologies cannot access."
Vo-Doan said the research demonstrates the UQ Biorobotics Lab's ability to adapt cyborg technology across different insect platforms.
The team has previously demonstrated cyborg beetles capable of controlled climbing, while the larger cockroaches provide greater capacity to carry specialized rescue and medical equipment.
"Rather than building one robot to do everything, we can harness the natural strengths of different insects and equip them for different missions," Vo-Doan said.
The cockroaches, like the team's previous cyborg insect models, are anesthetized during electrode and microchip fitting and live for as long as other cockroaches once the harnesses are removed.
Superintendent Tim Hassiotis, manager of natural disaster and humanitarian at Fire and Rescue NSW, said the technology could extend the reach of rescue teams.
"If cyborg insects can safely enter spaces we can't, locate casualties and ultimately help deliver emergency care, they could become another valuable tool in the future of urban search and rescue," Hassiotis said.
Vo-Doan said the longer-term vision was to deploy swarms of specialized cyborg insects, with individuals performing complementary roles.
"Some could carry cameras and environmental sensors, while others could carry specialized emergency or medical equipment," he said.
"The vision is not to replace first responders, but to give them another way to see, reach and potentially help people when direct access is impossible.
"Hopefully, within the next 5–10 years, we could see cyborg insect rescue teams deployed to help people in real emergencies, provided we have the resources to accelerate the research and field testing."
H. Nhan Le et al, Paraborg: Paramedic Cyborg Insects for In Situ Emergency Drug‐Delivery, Advanced Science (2026). DOI: 10.1002/advs.76973 Journal information: Advanced Science
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Cyborg giant burrowing cockroaches equipped with cameras or remotely activated injectors were tested as
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