Skip to content
Tech News
← Back to articles

Ctenophores: Wonders of Biology

read original get Underwater Bioluminescence Viewing Kit (National Geographic) → more articles
Why This Matters

Ctenophores, or comb jellies, are reshaping our understanding of early animal evolution and the origins of complex traits like nervous systems and bioluminescence. This matters to science and biotech because insights into how such fundamental biological systems first evolved can inform research in neuroscience, genetics, and evolutionary biology more broadly.

Key Takeaways
Worth a Look

Underwater Bioluminescence Viewing Kit (National Geographic) — For anyone fascinated by comb jellies and their glowing biology, this kit lets you culture and observe bioluminescent organisms at home, offering a hands-on window into the same light-producing chemistry scientists study in ctenophores. It's a fun, educational way to connect with the wonder described in the article without needing a research vessel.“

See Underwater Bioluminescence Viewing Kit (National Geographic) on Amazon → Affiliate link — we may earn a commission on purchases, at no extra cost to you. Product picked by AI based on this article; it is not a tested recommendation.

Around 700 million years ago, a group of organisms resembling little more than glowing, gelatinous blobs split off from the rest of the animals, forming possibly the earliest branching animal lineage. Nearly 200 species of ctenophores, commonly known as comb jellies (but unrelated to jellyfish), live today in environments ranging from the cold depths of the sea to warm coastal surface waters. Their magic isn’t just in their persistence or iridescence; it’s in their DNA.

Over the past decade, ctenophores have helped answer long-standing questions about fundamental biology, from how early nervous systems evolved to the origins of the mesmerizing phenomenon of bioluminescence.

Having access to closely related species across such variable environments “lets you ask questions about how certain things evolved,” such as adaptation to high pressure or light-sensing genes, said Steven Haddock, a marine biologist who studies ctenophores at the Monterey Bay Aquarium Research Institute.

“That’s one of the reasons why we work with ctenophores,” said Pawel Burkhardt, an evolutionary biologist at the University of Bergen who studies the origins and evolution of neurons and nervous systems. “They’re very exciting to work with, and they’re also extremely beautiful organisms.”

For more than a century, scientists thought that sponges, or porifera, were the first to branch off — the sister group to all other animals. But over the past two decades, evidence has emerged that ctenophores were earlier. In 2023 — after years of a “ping-pong game” between labs debating which group came first, Burkhardt said — a landmark paper analyzing chromosome organization found that ctenophores, not sponges, are the sister group, though this is yet to be fully settled.