Serpin-driven green camouflage and NIR fluorescence in frogs

Biliverdin is one of the few endogenous green pigments in animals, yet its use in camouflage and fluorescence is limited by rapid degradation or excretion. Multiple arboreal frogs have overcome this constraint by evolving biliverdin-binding serpins (BBSs)-proteins that stabilize biliverdin. Here, we show that BBSs have convergently evolved high-affinity biliverdin binding comparable to hormone-receptor interactions and tune biliverdin's spectral properties to produce leaf-like green coloration. We further show that BBSs from independent lineages exhibit distinct spectral properties, including near-infrared fluorescence. Unlike most animal serpins, which are rapidly cleared following proteolytic cleavage, a glassfrog's BBS is naturally cleaved while retaining full biliverdin-binding affinity, revealing an unusual decoupling between serpin proteolysis and ligand binding. Using photoacoustic tomography, we map the distribution of BBS throughout the body, uncovering a mechanism of protein-based camouflage. These findings provide insights into serpin evolution and protein-based coloration while establishing a foundation for amphibian-inspired near-infrared molecular probe design.

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Publication Details

Journal
Science Advances
Published
2026-09-16
DOI
https://doi.org/10.1126/sciadv.aeg5510
Primary Topic
Heme Oxygenase-1 and Carbon Monoxide
Type
article
Field-Weighted Citation Impact
0.00

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article

Serpin-driven green camouflage and NIR fluorescence in frogs

Junjie Yao, Sönke Johnsen, Ravichandran Vignesh, Po‐Han Lin et al.
Science Advances
Heme Oxygenase-1 and Carbon Monoxide
article

Serpin-driven green camouflage and NIR fluorescence in frogs

Junjie Yao, Sönke Johnsen, Ravichandran Vignesh, Po‐Han Lin, Tri Vu, Luca Menozzi, Carlos Taboada, Grace Harvey, William White, Jesse Delia, Erini Galatis
article en

Abstract

Biliverdin is one of the few endogenous green pigments in animals, yet its use in camouflage and fluorescence is limited by rapid degradation or excretion. Multiple arboreal frogs have overcome this constraint by evolving biliverdin-binding serpins (BBSs)-proteins that stabilize biliverdin. Here, we show that BBSs have convergently evolved high-affinity biliverdin binding comparable to hormone-receptor interactions and tune biliverdin's spectral properties to produce leaf-like green coloration. We further show that BBSs from independent lineages exhibit distinct spectral properties, including near-infrared fluorescence. Unlike most animal serpins, which are rapidly cleared following proteolytic cleavage, a glassfrog's BBS is naturally cleaved while retaining full biliverdin-binding affinity, revealing an unusual decoupling between serpin proteolysis and ligand binding. Using photoacoustic tomography, we map the distribution of BBS throughout the body, uncovering a mechanism of protein-based camouflage. These findings provide insights into serpin evolution and protein-based coloration while establishing a foundation for amphibian-inspired near-infrared molecular probe design.

Science AdvancesVol. 12(38)
California Institute of Technology (US), Vassar College (US), American Museum of Natural History (US), Duke University (US), University of Oklahoma (US)
National Science Foundation, David and Lucile Packard Foundation, Arnold and Mabel Beckman Foundation, National Geographic Society, Vanderbilt University, California Institute of Technology, Chan Zuckerberg Initiative, National Institutes of Health
Life in Land
Openalex Percentile: Top 18%
Heme Oxygenase-1 and Carbon Monoxide
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