New technique anchors engineered human skin to robotic faces


In a breakthrough that isn’t at all creepy, scientists have devised a method of anchoring living human skin to robots’ faces. The technology could actually have some valuable applications, beyond making Westworld-like scenarios a reality.

Two years ago, Prof. Shoji Takeuchi and colleagues at the University of Tokyo successfully covered a motorized robotic finger with a bioengineered skin made from live human cells.

It was hoped that this proof-of-concept exercise might pave the way not only for more lifelike android-type robots, but also for bots with self-healing, touch-sensitive coverings. The technology could also be used in the testing of cosmetics, and the training of plastic surgeons.

Prof. Shoji Takeuchi's skin-covered robotic finger, which is able to bend without breaking the skin
Prof. Shoji Takeuchi’s skin-covered robotic finger, which is able to bend without breaking the skin

©2022 Takeuchi et al.

While the skin-covered finger was certainly an impressive achievement, the skin wasn’t connected to the underlying digit in any way – it was basically a shrink-to-fit sheath that enveloped the finger. By contrast, natural human skin is connected to the underlying muscle tissue by ligaments.

Among other things, this arrangement allows us to exhibit our various facial expressions. Additionally, by moving along with the underlying tissue, our skin doesn’t impede movement by bunching up. For this same reason, it’s also less likely to be damaged by getting snagged on external objects.

Scientists have previously attempted to connect bioengineered skin to synthetic surfaces, typically via tiny anchors that protrude up from those surfaces. These pokey anchors detract from the skin’s appearance, however, keeping it from looking smooth. They also don’t work well on concave surfaces, where they all point in towards the middle.

With such limitations in mind, Takeuchi and his team recently developed a new skin-anchoring system based on tiny V-shaped perforations made in the synthetic surface.

This diagram illustrates the parallels between natural skin ligaments and the V-shaped perforations
This diagram illustrates the parallels between natural skin ligaments and the V-shaped perforations

©2024 Takeuchi et al. CC-BY-ND

The scientists created a human facial mold that incorporated an array of these perforations, then coated that mold with a gel consisting of collagen and human dermal fibroblasts. The latter are cells which are responsible for producing connective tissue in the skin.

Some of the gel flowed down into the perforations, while the rest stayed on the surface of the mold. After being left to culture for seven days, the gel formed into a covering of human skin that was anchored to the mold via the tissue within the perforations.

In a second experiment, perforations were made in a silicone rubber substrate, to which the gel was subsequently applied and left to culture. The end result was a simplified human-skin face that could be made to smile by moving two rods connected to the substrate.

The skin-covered facial mold (left) and the simplified smiley-face model
The skin-covered facial mold (left) and the simplified smiley-face model

©2024 Takeuchi et al. CC-BY-ND

Needless to say, some work still needs to be done before the technology can be utilized in truly lifelike robots.

“We believe that creating a thicker and more realistic skin can be achieved by incorporating sweat glands, sebaceous glands, pores, blood vessels, fat and nerves,” says Takeuchi. “Of course, movement is also a crucial factor, not just the material, so another important challenge is creating humanlike expressions by integrating sophisticated actuators, or muscles, inside the robot.”

A paper on the research was recently published in the journal Cell Reports Physical Science.

Source: University of Tokyo



Latest articles

spot_imgspot_img

Related articles

Leave a reply

Please enter your comment!
Please enter your name here

spot_imgspot_img