Eye-opening origin story
Humans and other organisms with backbones come equipped with an evolutionary marvel: eyes that function like cameras to provide a finely tuned visual system. Due to its complexity, Charles Darwin described the eye as one of the greatest potential challenges to his theory of natural selection through incremental evolutionary steps.

A notable difference between vertebrate and invertebrate vision is rooted in a unique protein responsible for the specialization of cells that are critical for vision. Mutations in the protein, called the interphotoreceptor retinoid-binding protein, or IRBP, have been known to cause a variety of diseases such as retinitis pigmentosa, but its evolutionary origin has remained elusive with no obvious genetic precursor.
Scientists in the University of California San Diego School of Biological Sciences, have now traced the 500-million-year-old origin of vertebrate IRBP to a bacterial source. Their discovery, using phylogenetic reconstruction methods, was made possible because of the growing number of fully detailed genomes now available. Their analysis of more than 900 genomes across the tree of life revealed that the IRBP integration in vertebrate eyes was not the result of traditional vertical gene transfer, in which an evolutionary advancement is adapted, or “tinkered with” using available genetic material. Rather, the IRBP was acquired, duplicated and integrated through horizontal gene transfer from foreign bacterial genes.

“It’s a massive shift because this is an entirely new piece of genetic material that’s been introduced from bacteria,” said Associate Professor Matt Daugherty, the paper’s senior author. Former UC San Diego undergraduate student Chinmay Kalluraya led the study, and UC San Diego graduate students Alexander Weitzel and Brian Tsu contributed computational expertise. “This study shows that a major innovation that distinguishes vertebrate eyes from all the rest of the eyes out there wasn’t done by molecular tinkering but rather a big leap of genetic innovation.”
Once the key gene that eventually became IRBP was acquired from bacteria, a new door opened in vertebrates that allowed retinoids, molecules in the eye that directly sense light, to be shuttled between cell types to efficiently recycle it for further light sensing. This separation of photoreception, or light sensing, and retinoid recycling provides unique functionality to vertebrates and the way they can see.

“In order to see in different wavelengths, there needs to be enough light around and that’s one of the arguments for why we can see in the dark really well—we have this enzymatic recycling system that many invertebrates don’t seem to have,” said Daugherty, a researcher in the molecular biology department. “Eyes are diverse and complicated, and we’ve gone down this path because of this system.”
With more genomes from more organisms becoming available, the researchers believe that other critical functions and systems will similarly trace their roots to bacteria.
“This reshapes the way that we think about evolution and the way we think about complex structures that seem like they’ve emerged out of nowhere,” said Daugherty.
This article first appeared in UC San Diego Today.
Enjoy reading 91ÑÇÉ«´«Ã½ Today?
Become a member to receive the print edition four times a year and the digital edition monthly.
Learn moreGet the latest from 91ÑÇÉ«´«Ã½ Today
Enter your email address, and we’ll send you a weekly email with recent articles, interviews and more.
Latest in Science
Science highlights or most popular articles

Melissa Moore to speak at 91ÑÇÉ«´«Ã½ 2025
Richard Silverman and Melissa Moore are the featured speakers at the 91ÑÇÉ«´«Ã½ annual meeting to be held April 12-15 in Chicago.

A new kind of stem cell is revolutionizing regenerative medicine
Induced pluripotent stem cells are paving the way for personalized treatments to diabetes, vision loss and more. However, scientists still face hurdles such as strict regulations, scalability, cell longevity and immune rejection.

Engineering the future with synthetic biology
Learn about the 91ÑÇÉ«´«Ã½ 2025 symposium on synthetic biology, featuring applications to better human and environmental health.

Scientists find bacterial ‘Achilles’ heel’ to combat antibiotic resistance
Alejandro Vila, an 91ÑÇÉ«´«Ã½ Breakthroughs speaker, discussed his work on metallo-β-lactamase enzymes and their dependence on zinc.

Host vs. pathogen and the molecular arms race
Learn about the 91ÑÇÉ«´«Ã½ 2025 symposium on host–pathogen interactions, to be held Sunday, April 13 at 1:50 p.m.

Richard Silverman to speak at 91ÑÇÉ«´«Ã½ 2025
Richard Silverman and Melissa Moore are the featured speakers at the 91ÑÇÉ«´«Ã½ annual meeting to be held April 12-15 in Chicago.