Related Experiment Video
Updated: Jun 17, 2026

Fluorescence-Based Measurements of Phosphatidylserine/Phosphatidylinositol 4-Phosphate Exchange Between Membranes
Published on: March 14, 2021
A Thr/Ser-centered phosphate-binding triad of phosphate-binding protein SphX from Synechocystis
Yiping Lu1,2, Chongyang Wang1,2, Keke Zhang1,2
1Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Key Laboratory of Biofuels, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, China.
None:
Coordinating phosphate acquisition with overall nutritional status is critical for cyanobacterial survival in oligotrophic environments, yet the molecular basis for substrate selectivity in phosphate-binding proteins (PBPs) remains incompletely understood. Here we reveal two evolutionarily distinct PBP architectures in Synechocystis sp. PCC 6803 through integrative structural and biochemical analyses. High-resolution crystal structures (1.76-1.9 Å) of PstS1 and SphX bound to inorganic phosphate (Pi) demonstrate that D-type PBPs utilize a conserved aspartate-mediated low-barrier hydrogen bond (LBHB) for high-affinity Pi binding (nanomolar Kd), whereas S-type SphX employs a previously uncharacterized Asp-Arg-Thr catalytic triad with reduced affinity (micromolar Kd). Despite forming comparable hydrogen bonding networks (14 versus 15 bonds), SphX exhibits 26-fold lower Pi affinity due to threonine-mediated proton acceptance replacing the LBHB mechanism. Systematic mutagenesis confirms the functional importance of each triad residue and indicates partial compensation by neighboring residues. Phylogenetic analysis demonstrates that these architectural variants are conserved across cyanobacterial lineages, representing adaptive solutions to diverse nutrient-limited environments. Our findings establish a mechanistic framework for understanding PBP functional diversification and provide molecular insights relevant to optimizing cyanobacterial productivity in biotechnology applications.
Related Concept Videos
Photosystem I
Both these photosystems work in concert. An excited electron from PSII is relayed to PSI via an electron transport chain in the thylakoid membrane of the chloroplast, which is comprised of the carrier molecule plastoquinone, the dual-protein cytochrome complex, and plastocyanin. As electrons move between PSII and PSI, they lose energy and must be re-energized...
ATP Synthase: Structure
Electron Transport Chain: Complex III and IV
The Photochemical Reaction Center
Septins
Phosphorylation
During phosphorylation, protein kinases transfer the terminal phosphate group of ATP to specific amino acid side chains of substrate proteins. Serine, threonine, and tyrosine are the most commonly...

