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Dead wolf spider legs become handy grippers

"This area of soft robotics is a lot of fun because we get to use previously untapped types of actuation and materials," Daniel Preston says. "The spider falls into this line of inquiry. It's something that hasn't been used before but has a lot of potential." (Credit: Getty Images)

Mechanical engineers are repurposing deceased spiders as mechanical grippers that can blend into natural environments while picking up objects, like other insects, that outweigh them.

Why? “It happens to be the case that the spider, after it’s deceased, is the perfect architecture for small scale, naturally derived grippers,” says Daniel Preston, an assistant professor of mechanical engineering at Rice University.

A new study in Advanced Science outlines the process Preston and lead author Faye Yap used to harness a spider’s physiology in a first step toward a new area of research they call “necrobotics.”

Preston’s lab specializes in soft robotic systems that often use nontraditional materials, as opposed to hard plastics, metals, and electronics.

“We use all kinds of interesting new materials like hydrogels and elastomers that can be actuated by things like chemical reactions, pneumatics, and light,” he says. “We even have some recent work on textiles and wearables.

“This area of soft robotics is a lot of fun because we get to use previously untapped types of actuation and materials,” Preston says. “The spider falls into this line of inquiry. It’s something that hasn’t been used before but has a lot of potential.”

Spider gripper hydraulics

Unlike people and other mammals that move their limbs by synchronizing opposing muscles, spiders use hydraulics. A chamber near their heads contracts to send blood to limbs, forcing them to extend. When the pressure is relieved, the legs contract.

The cadavers Preston’s lab pressed into service were wolf spiders, and testing showed they were reliably able to lift more than 130% of their own body weight, and sometimes much more. The researchers had the grippers manipulate a circuit board, move objects, and even lift another spider.

The researchers note smaller spiders can carry heavier loads in comparison to their size. Conversely, the larger the spider, the smaller the load it can carry in comparison to its own body weight. Future research will likely involve testing this concept with spiders smaller than the wolf spider, Preston says.

The project began shortly after Preston established his lab in Rice’s mechanical engineering department in 2019, Lap says.

“We were moving stuff around in the lab and we noticed a curled up spider at the edge of the hallway,” she says. “We were really curious as to why spiders curl up after they die.”

The experiments may sound like the stuff of nightmares, but they don’t qualify as reanimation.

A quick search found the answer: “Spiders do not have antagonistic muscle pairs, like biceps and triceps in humans,” Yap says. “They only have flexor muscles, which allow their legs to curl in, and they extend them outward by hydraulic pressure. When they die, they lose the ability to actively pressurize their bodies. That’s why they curl up.

“At the time, we were thinking, ‘Oh, this is super interesting.’ We wanted to find a way to leverage this mechanism,” she says.

Internal valves in the spiders’ hydraulic chamber, or prosoma, allow them to control each leg individually, and that will also be the subject of future research, Preston says. “The dead spider isn’t controlling these valves,” he says. “They’re all open. That worked out in our favor in this study, because it allowed us to control all the legs at the same time.”

Setting up a spider gripper was fairly simple. Yap tapped into the prosoma chamber with a needle, attaching it with a dab of superglue. The other end of the needle was connected to one of the lab’s test rigs or a handheld syringe, which delivered a minute amount of air to activate the legs almost instantly.

The lab ran one ex-spider through 1,000 open-close cycles to see how well its limbs held up, and found it to be fairly robust. “It starts to experience some wear and tear as we get close to 1,000 cycles,” Preston says. “We think that’s related to issues with dehydration of the joints. We think we can overcome that by applying polymeric coatings.”

Cool stunt to useful tech

Preston says a few necrobotic applications have occurred to him. “There are a lot of pick-and-place tasks we could look into, repetitive tasks like sorting or moving objects around at these small scales, and maybe even things like assembly of microelectronics,” he says.

“Another application could be deploying it to capture smaller insects in nature, because it’s inherently camouflaged,” Yap adds.

“Also, the spiders themselves are biodegradable,” Preston says. “So we’re not introducing a big waste stream, which can be a problem with more traditional components.”

Preston and Yap are aware the experiments may sound to some people like the stuff of nightmares, but they say what they’re doing doesn’t qualify as reanimation.

“Despite looking like it might have come back to life, we’re certain that it’s inanimate, and we’re using it in this case strictly as a material derived from a once-living spider,” Preston says. “It’s providing us with something really useful.”

Graduate students Zhen Liu and Trevor Shimokusu and postdoctoral fellow Anoop Rajappan are coauthors of the paper.

Rice and a NASA Space Technology Graduate Research Opportunity award supported the research.

Source: Rice University

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Warming Arctic nudges wolf spiders to cannibalism

For wolf spiders, fecundity increases with body size. Here, a wolf spider mother with her babies (Credit: Amanda Koltz/Wash. U. in St. Louis)

As female wolf spiders in a warming Arctic grow larger and produce more offspring, increased competition triggers more cannibalism, researchers say.

That in turn reduces the number of young spiders that survive to adulthood.

“Although cannibalism is probably not the best dietary choice for these spiders, our field and experimental data suggest that when there are lots of spiders around, they turn to cannibalism more frequently,” says Amanda Koltz, a postdoctoral fellow in biology at Washington University in St. Louis and first author of the study in the Journal of Animal Ecology.

“It’s likely a reflection of increased competition among the spiders for resources.”

This morbid scenario could already be playing out in some parts of the world—and could have consequences for invertebrate populations more broadly.

A brown wolf spider walks through foliage
Wolf spiders are among the most important predators in the Alaskan Arctic. (Credit: Ashley Asmus/Wash. U. in St. Louis)

Animals such as spiders that regulate their body temperature externally are particularly likely to experience changes as a result of warming. In some areas of the Arctic, biologists have found bigger wolf spiders following years with longer summers. This suggests that as climate change continues to warm up the Arctic, wolf spider body sizes will generally become larger.

At the same time, fecundity—or the number of offspring that females produce—tends to increase as females become larger, so bigger spiders might translate to more spiders in the future. But whether this change actually results in more spiders in the wild remains an important question.

“Space and resources on the tundra are finite,” Koltz says.

Wolf spider diets

For the study, Koltz made observations at two sites in the Alaskan Arctic where the body size of the locally dominant species of wolf spider naturally varies.

She paired this comparative field-based study with a mesocosm experiment where she manipulated the number of wolf spiders in an enclosed space to see how exposure to higher spider densities affects wolf spider diets.

Within the field populations, Koltz discovered that the presence of larger female spiders associated with fewer juvenile spiders. This was unexpected, as larger females produce more offspring. Using stable isotope analysis, she then found that the spiders at the site with larger females had different diets than at the site with smaller females.

The dietary shift was consistent with what a shift toward cannibalism would look like, suggesting that in areas with larger spiders—and higher reproductive rates—spiders cannibalized each other more often. Experimental results further supported this finding.

“Wolf spiders that were experimentally exposed to higher densities underwent a dietary shift similar to that of the field population where females were bigger—and where we would expect competition and cannibalism among wolf spiders to be highest,” Koltz says.

Bigger doesn’t always mean more

Studies have previously shown that wolf spiders from lower latitudes cannibalize each other when experimentally exposed to higher densities. Yet the extent to which this behavior affects natural populations of wolf spiders was not clear.

The results of the new study suggest that cannibalism reduces juvenile survival to regulate wolf spider populations in the wild. However, in the long term, frequent cannibalization may not offer an advantage for individuals, or spider populations.

“Cannibalizing on other spiders of the same species reduces competition by reducing the number of other spiders around,” Koltz says. “But evidence from other studies has shown that wolf spiders that are only fed other wolf spiders don’t live as long as those that eat a more varied diet.”

So even though they reproduce more, bigger spiders may not always lead to more spiders on the landscape.

“This project was based in the Arctic, but the main message is not limited to the Arctic or potentially even to wolf spiders,” Koltz says. “The results from our study are a reminder that changes in invertebrate body size driven by climate change could have widespread ecological consequences, including shifts in intraspecific competition, diet, and population structure.”

Source: Washington University in St. Louis