STEM

Remembering Trilobites: A 270 Million Year Saga

One of the most successful dynasties in all of Earth’s history is one not filled with serrated teeth, scales, or towering giant reptiles, but with unassuming little sea-bugs.

Trilobites are one of the most well-known groups of animals in the fossil record. This is because of their huge diversity, longevity, and because their shells are made of minerals, making them easily fossilized. They lived for 270 million years, a timescale far beyond our comprehension, and over 22,000 species are known. Today, we’ll be talking about the long history of these animals, what led to their slow downfall, and the many things that we learn from them to help us.

Rise and Fall of a Dynasty

Trilobites diversified in the Cambrian Period, as depicted in this reconstruction with various other Cambrian animals.

Image credit: Holly Sullivan, CC BY 4.0

Trilobites first appeared in the Cambrian Explosion over 538 million years ago, one of the most influential events in Earth’s history [1]. This is the time in the fossil record when complex animal life kickstarted its diversity, and large-scale ecosystems spread across the oceans.

During the Cambrian, trilobites were mostly benthic (living on the bottom of the seabed), but in the following time periods, they diversified into many other niches. Their shells developed elaborate structures like horns, rays, ribs, and other fascinating patterns. Some swam freely in the open ocean, and some even became planktonic [1]. There were so many variations that this blog would be unreasonably long if we discussed many of them in detail.

Unfortunately, their diversity became limited during the latter half of their time on Earth due to several large geologic events, such as a major ice age. The nail in the coffin came from the Permian Mass Extinction, also known as the Great Dying. This was the most catastrophic extinction event in prehistory, and they were unfortunate enough to be a part of it [1]. And so, the age of the Trilobites finally came to an end. However, their legacy remains in their fossils, and they still help us today.

Mummified Time Capsules

Trilobites were so common in the time periods that they lived in that they are used by geologists as Index Fossils. If geologists are surveying a rock formation and they find a trilobite fossil, they can immediately know that the rock formation is dated to one of the periods that trilobites lived in, saving a lot of time [2].

Bug-Eyed Cameras

The eyes of trilobites are very unique and some of the most studied of any extinct animal. Their eyes, like other parts of their bodies, were made of minerals, which allowed them to be exceptionally well-preserved as fossils.

The Compound Eye of a Trilobite, made of many individual calcite lenses.

Image credit: RealGatba, CC BY-SA 4.0

One species had eyes that were remarkably well-suited for viewing objects at close and far distances at the same time [3]. A paper published in Nature Communications in 2022 detailed how the eyes of trilobites were used to design a bifocal lens capable of recording depth-of-field from a range of centimeters all the way up to kilometers, an extraordinary feat of biotechnology. It’s quite probable that trilobites will help advance the future of imaging systems [3].

Warnings from the Dead

The fact that such an enormous and successful group of animals vanished from the face of the Earth reminds us to be mindful of both our own longevity and how quickly things can turn in our lives. Even in death, these little spiky sea Roomba’s teach us to be grateful for every day we have and to leave a legacy for the next generation to remember.

Life in complete darkness: Project Hail Mary's Erid

Project Hail Mary is one of the most amazing sci-fi stories in recent years. A novel created by Andy Weir, later adapted into a groundbreaking film, it tells the story of a confused yet inspirationally brave space-faring astronaut named Ryland Grace, who tries to save the solar system from a star-eating alien microbe. Along the way, he meets another species of alien, an Eridian named Rocky, also trying to save his own planet Erid from the same microbe. Together, they bond like best friends and eventually save eachother’s solar systems. This is one of my favorite stories of all time; it’s as heartwarming as inspiring, and the worldbuilding is incredible. However, I did wish that the ecology of Rocky’s homeworld, Erid, was explored more deeply, especially since the basic conditions of the planet, as well as deep descriptions of the Eridians themselves, were already established. This gives us a lot of room for some exciting speculation, so that’s what we’ll be exploring today.

Erid is a huge rocky planet, similar to this real exoplanet 55 Cancri E.

Image credit: https://commons.wikimedia.org/wiki/File:Earth_and_Super-Earth.jpg

That’s no moon…

Erid is described by the author in his supplementary document as a high-gravity rocky planet (around 2 G’s of surface gravity) with a very thick atmosphere of 28 times the pressure of Earth’s, primarily made of Ammonia. Despite the surface temperature being over 200 degrees Celsius (Around 400 degrees Fahrenheit), hotter than an oven, liquid water still exists in abundance on the surface due to the thick atmosphere causing enormous amounts of pressure that keeps it in a liquid state. Erid also has a strong magnetic field for a rocky planet, over 25 times stronger than Earth’s. Combined with the atmosphere, this prevents any kind of radiation coming from space from reaching the surface, and so the entire surface of the planet is shrouded in pitch-black darkness. This gives us the framework for our speculative ecosystem. We’ll start from the base of the food-web and work our way up.

How could life exist in total darkness?

First of all, life needs energy to survive, no matter what kind of form it’s in. On Earth, most of surface life’s energy comes from the Sun, in the form of heat and solar radiation. However, we just established that there is no sunlight on the surface of Erid, so where does the energy for the creatures come from? Well, as you go high up into the atmosphere, the air gets thinner, and there is a lot more solar energy. Andy Weir’s document detailing Eridian biology describes “airborne microbes that live in the higher parts of the atmosphere. They absorb sunlight and consume the gasses in the air to multiply.” These microbes live high in the clouds and provide fuel for larger airborne animals that then die and come down to the surface. This makes up the foundation for the surface ecosystem energy cycle, and is similar to how the deep ocean food web exists on Earth.

Alien not-plants

On Earth, the bulk of producers (creatures that provide sustenance for many other animals) on land are plants. Unfortunately, photosynthesis is impossible on the surface of Erid since there’s no sunlight. So, all producers will have to rely on the energy from the falling atmospheric organic matter instead. A good example of plant-like creatures that do this on Earth are crinoids. These stationary animals use frond-like appendages to sweep up passing organic matter to feed on. A lot of species on Erid would probably use a similar strategy due to the abundant atmospheric life. These crinoid-like aliens could grow to large sizes, rivalling trees on Earth, their tentacles sweeping through the air like palm fronds. However, at some point, the high surface gravity of Erid would make it hard to keep bodily circulation going at huge sizes, so they might not reach the size level of Earth’s biggest trees.

Sessile marine deep-sea animals like Crinoids are good examples of what “vegetation” could look like on Erid.
Image credit: https://commons.wikimedia.org/wiki/File%3AExpl5406.jpg

Why is everyone turning into crabs?

Now we’re getting to the fun part: actually moving animals. The possibilities here are almost endless, and this blog would be unbelievably long if we explored all of them. So, we’ll focus on a couple of body plans and behaviors that some of the more common animals might have.

Eridians like Rocky are radially symmetric, meaning their body is symmetrical on more sides than 2. A lot of other animals on Erid would likely share this symmetry due to shared ancestry. The crab-like Eridian body plan is also very versatile, and could potentially fill many niches. So it’s probable that many of the other species on Erid would look somewhat similar to Rocky’s. Even on Earth, many lineages have independently evolved crab-like bodies; it’s an entire phenomenon called “Carcinization”. The Eridian forms could have extremely diverse niches, anything from small arboreal species with developed climbing limbs to large browsers that use long limbs to grab xeno-crinoid fronds from high up. Large predators could resemble massive, eyeless coconut crabs, with huge claws that work like nutcrackers.

Despite these Porcelain Crabs (Porcellanidae) looking like run-of-the-mill crabs, they are not closely related to true crabs (Brachyura). The armored body and pinchy claws are just too versatile for a lineage to pass up!

Image credit: https://commons.wikimedia.org/wiki/File:South_eastern_Pacific_species_of_Petrolisthes,_Allopetrolisthes,_and_Liopetrolisthes_(Porcellanidae).jpg

Apex Species

Finally, at the top of the Eridian food chain, we have the apex species. Andy Weir, in his document, has said that the Eridians (Rocky’s species specifically) are the “apex predators of the land ecology.” Due to their technological prowess, this is pretty understandable. However, I do wonder what place the Eridians had on the food chain before their rise to civilization. Their relatively small hands aren’t very suited for bringing down large prey, so they probably ate smaller prey items that they could easily process with their hands before they developed tools. It’s a remarkably similar history to our own: humans aren’t exactly suited to tackle a large antelope with our bare hands, and before we harnessed the mighty rock, we definitely weren’t at the top of the food chain. It’s yet another connection that allows us to relate to the Eridians like Rocky.

Closing Remarks

All in all, the Eridian ecosystem is one that anyone could speculate on for hours and hours. What weird alien creatures do you think could live on this fictional planet? Comment down below!

Cyborg Scuba Roaches: The Future of Aquatic Robotics?

Imagine being trapped under the rubble of a collapsed building after a flash flood, with wet concrete, wood, and all kinds of debris blocking every direction, with only tiny gaps in between the mountain of jagged objects leading to the outside world. 

You cry out for help, hoping for anyone to find you. Eventually, you finally see something climb inside the rubble for you, and it's a... cyborg cockroach with a scuba suit?

Unbeknownst to you, this rescue insect could potentially be your saving grace.

Researchers in Singapore have published a study detailing how they have developed diving suits for cyborg cockroaches for potential use in search-and-rescue missions that involve tight, water-filled spaces that humans cannot access, as well as other precise aquatic applications like pipe inspection. 

It sounds like something from the video game Half-Life 2, and it’s quite interesting when you break it down.

Cyborg insect technology has been a key point of scientific research for many years now; as opposed to traditional robot machinery, insects don't need huge batteries and are very flexible. 

However, there is one caveat that limits their potential use cases: Most insects only breathe air with a complex respiratory system, which we'll talk about soon, and this has limited many of their potential applications for exploration in aquatic or semi-aquatic environments... until now.

The species of cockroach specifically used for the design in this study was the Madagascar Hissing Cockroach, a.k.a. Gromphadorhina portentosa

This insect breathes through a system of spiracles, which are essentially holes on its body that allow air to directly interact with the insect's tissues, on the sides of its thorax, divided into the prothoracic (front thoracic segment) and mesothoracic (back thoracic segment) spiracles. 

In order to be used as an aquatic exploration biological robot, it needed to be fitted with some specialized hardware that allowed it to operate underwater. And the researchers of this study have done just that.

How were the roaches turned into cyborgs?

G. portentosa individuals used in this study were fitted with a backpack unit that had wireless communication and the ability to control the roaches' movements via pulses of electrical signals, essentially making them RC roaches.

In addition to the backpack, they were given a flexible resin diving suit that enclosed their abdomen with a 3D-printed oxygen generator inside it. This oxygen generator used a manganese dioxide catalyst to speed up the decomposition of liquid hydrogen peroxide. 

The resulting decomposition reaction released oxygen, which was then supplied to the roaches through silicone tubes that were attached to the roaches' spiracles. The tubes had to be designed differently for both the prothoracic and mesothoracic spiracles because of their anatomical differences. However, when the design was put to use, the roaches were able to remain active underwater for up to a whopping three hours.

How useful is this?

During the testing phase, the cyborg scuba roaches were able to squeeze through tiny gaps two centimeters tall while underwater and make it to the other side. This makes an interesting case for future aquatic exploration using cyborg insects.

Thoughts and retrospective:

The concept of cyborgs actually being real is pretty mind-boggling, especially ones that could potentially be used to save many lives. 

Questions to consider: 

  • What is the ethical dilemma of using a living creature as a robot against its will? 

  • Is the cockroach aware that it's being controlled? 

  • Will this technology eventually evolve to be used for more complex organisms, potentially even humans? 

The implications of these are pretty existential and a little scary. 

As of now, these cyborg scuba roaches are without a doubt a technological and biological breakthrough, one that has given an unassuming little bug a big responsibility.

Share your thoughts in the comments!

Image credit: Adapted from Fan Z., Kai K., Song K., et al., Underwater Suit-Wearing Cyborg Insect Capable of Hours-Long Diving and Terra-Aqua Travel, Nature Communications (2026), licensed under CC BY 4.0.

Original Article: https://www.nature.com/articles/s41467-026-74235-1

License: https://creativecommons.org/licenses/by/4.0/