State-dependent motion of a genetically encoded fluorescent biosensor
Abstract
Genetically encoded biosensors can measure biochemical properties such as small-molecule concentrations with single-cell resolution, even in vivo. Despite their utility, these sensors are “black boxes”: Very little is known about the structures of their low- and high-fluorescence states or what features are required to transition between them. We used LiLac, a lactate biosensor with a quantitative fluorescence-lifetime readout, as a model system to address these questions. X-ray crystal structures and engineered high-affinity metal bridges demonstrate that LiLac exhibits a large interdomain twist motion that pulls the fluorescent protein away from a “sealed,” high-lifetime state in the absence of lactate to a “cracked,” low-lifetime state in its presence. Understanding the structures and dynamics of LiLac will help to think about and engineer other fluorescent biosensors.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (8)
Paul C. Rosen
Department of Neurobiology, Harvard Medical School
Samantha M. Horwitz
Department of Chemistry, Emory University
Daniel J. Brooks
Department of Neurobiology, Harvard Medical School
Erica Kim
Department of Neurobiology, Harvard Medical School
Joseph A. Ambarian
Department of Chemistry, Emory University
Lidia Waidmann
Department of Chemistry, Emory University
Katherine M. Davis
Department of Chemistry
Gary Yellen
Department of Neurobiology, Harvard Medical School