Diving Cyborg Cockroaches

At Last! Top Asian Universities Make Diving Suit For Cyborg Cockroaches

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Researchers from Nanyang Technological University (NTU) Singapore and Japan’s Waseda University have built a flexible diving suit for cyborg cockroaches that allows the insects to survive and move underwater and in low-oxygen environments for up to three hours. (Main Image: non-expert, unrelated artist’s impression of the inevitable consequences of this unholy affront to nature and god).

The study, published in Nature Communications, could expand the use of cyborg insects in search-and-rescue missions, particularly in disaster zones where flooded rubble, puddles or partially submerged spaces block access for conventional robots.

Turning Land Insects Into Amphibious Cyborgs

1_NTU Prof Hirotaka Sato holding the cyborg insect with the new diving suit
Prof Hirotaka Sato (with team) holding the cyborg insect with the new diving suit.

Cyborg insects are living insects fitted with electronic controllers that guide their movement. Because they rely on the insect’s own muscles to move, they require far less power than small artificial robots, which need onboard batteries to drive motors and other components.

The limitation is that cyborg insects still depend on their natural respiratory system. Cockroaches breathe through small openings called spiracles, which allow air to enter the tracheal system for gas exchange. When submerged, they cannot take in oxygen from water.

The new 3D-printed suit addresses this by generating oxygen and delivering it directly to the insect’s breathing holes, effectively turning a land-based cyborg insect into an amphibious one capable of operating across both dry and wet terrain.

At Last! Top Asian Universities Make Diving Suit For Search-And-Rescue Cockroaches
Humor distorts nothing and only false gods are laughed off their earthly pedestals.

Professor Hirotaka Sato from NTU Singapore’s School of Mechanical and Aerospace Engineering led the study.

“Our new insect diving suit works like the oxygen tank used by human divers. It generates oxygen and delivers it directly to the insect’s breathing holes, allowing the cyborg cockroach to survive and move in underwater or low-oxygen environments,” Professor Sato explained.

“This is important because real disaster sites can be challenging after heavy rain or flooding, blocking access routes in the rubble, drains and narrow gaps. By expanding the operating parameters of our cyborg insects to include underwater travel, we believe that they can enhance search and rescue efforts.”

How The Suit Works

Infographic - Diving Suit for Cyborg Roach V2b
Infographic: Diving Suit for Cyborg Roach.

The underwater suit consists of three parts: an oxygen-generation tank, a flexible shell and four silicone oxygen-supply tubes. Together, they form a compact, self-contained system that keeps water out while delivering oxygen directly to the cockroach’s spiracles.

The oxygen-generation tank was 3D-printed using PMMA-type resin, a transparent plastic-like material. Inside the tank, the researchers placed a sponge deposited with manganese dioxide, which acts as a catalyst.

To start the oxygen supply, the team injected a small amount of diluted hydrogen peroxide into the tank. The opening was then sealed with ultraviolet adhesive to prevent liquid leakage.

Inside the tank, the manganese dioxide slowly breaks down the hydrogen peroxide and releases oxygen. The oxygen is then channelled through the flexible shell and silicone tubes to the cockroach’s spiracles, allowing it to breathe underwater.

The tubes are attached to the insect’s thoracic spiracles and can be removed later without pain or harm, according to the researchers.

Testing In Simulated Disaster Conditions

The researchers tested their suit on the Madagascar hissing cockroach, a species commonly used in cyborg insect research because of its size, robustness and the lack of wings.

In tests, the scientists built plastic tubes that simulated various environments, such as flooded tunnels filled with carbon dioxide to replicate a low-oxygen environment. With the suit on, the cyborg insects were able to remain active and move underwater for up to three hours.

Professor Shinjiro Umezu from Waseda University’s School of Creative Science and Engineering described the engineering challenge involved.

“The key engineering challenge was to build a system that was small, light and flexible enough for the insect to wear, while still producing enough oxygen for long-duration underwater movement,” Professor Umezu outlined.

“Our approach combines a soft waterproof shell with a simple yet reliable chemical oxygen generator. This allows the insect to retain its natural mobility while being protected from an environment that it cannot normally survive in.”

A Decade Of Cyborg Insect Research

NatureComms_graphics_cyborg insect
Nature Communications infographic.

The work builds on more than a decade of cyborg insect research at NTU, where Professor Sato has developed cyborg insects for applications across land, sea and air.

His cyborg insects have been deployed in actual search and rescue operations, including Operation Lionheart for the 7.7 magnitude earthquake in Myanmar on 28 March 2025. They are now being further developed for public infrastructure inspection.

What Comes Next

Further work is underway to test the cyborg insect diving suit in simulated disaster environments, improve its durability and integrate sensors and navigation systems for field use.

Beyond search and rescue, the findings suggest possible uses in inspecting flooded pipes, drains, tunnels and other hard-to-reach infrastructure.

The team indicated the diving suit concept could potentially be adapted for other terrestrial cyborg insects, including other cockroach species, locusts and beetles. These insects share similar body structures and respiratory systems, where oxygen enters through paired spiracles and is distributed through internal networks of air tubes.

The research was supported by the Singapore Ministry of Education and Waseda University’s Top Global University Project. The team confirmed that none of the insects were harmed and all were treated in line with research guidelines.

The innovation has a patent filed through NTUitive, the university’s innovation and enterprise company.

The paper titled “Underwater Suit-Wearing Cyborg Insect Capable of Hours-Long Diving and Terra-Aqua Travel” was published in Nature Communications. DOI: 10.1038/s41467-026-74235-1

Last Updated on June 29, 2026 by Nick Ross

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One Response

  1. rick June 30, 2026