Tag

Lhcii

All articles tagged with #lhcii

In Situ Structures Reveal a Lipid-Driven PSII–LHCII Skeleton Shaping Plant Thylakoids
science1 month ago

In Situ Structures Reveal a Lipid-Driven PSII–LHCII Skeleton Shaping Plant Thylakoids

A rice chloroplast in situ cryo-EM study resolves a large PSII–LHCII supercomplex (C2S2M2L4) with four previously unobserved LHCII trimers, plus diverse PSII–LHCII dimers and PSI–LHCI–LHCII/PSI–LHCI complexes. The results reveal a native lipid network that stabilizes interfaces and suggests PSII–LHCII supercomplexes form a tessellated scaffold that shapes thylakoid curvature, grana stacking, and inter-m membrane organization. Energy-transfer calculations show trapping lifetimes matching in vivo measurements, indicating functional relevance and dynamic antenna size regulation via L-LHCII. TL and TS dimers appear more architectural than energy-transfer mediators, while higher-order assemblies likely drive grana morphology. This in situ architecture provides a molecular framework for understanding plant photosynthetic efficiency in its native membrane context.

"Quantum Breakthrough: Unveiling a Switch to Control Photosynthesis"
science3 years ago

"Quantum Breakthrough: Unveiling a Switch to Control Photosynthesis"

Researchers have discovered a quantum switch in the light-harvesting complex II (LHCII) that regulates photosynthesis. By combining cryo-electron microscopy (cryo-EM) studies with energy transfer calculations, they identified the photosynthetic pigment quantum switch that controls intermolecular energy transfer. The switch is activated by a conformational change in LHCII upon acidification, leading to the quenching of excess light energy. This discovery provides insights into the atomic-level dynamic structural changes in LHCII and could potentially enhance photosynthetic efficiency.

Unveiling Allosteric Regulation in LHCII: Cryo-EM Sheds Light on Energy Dissipation
science3 years ago

Unveiling Allosteric Regulation in LHCII: Cryo-EM Sheds Light on Energy Dissipation

Cryo-EM structures of the major light-harvesting complex II (LHCII) in photo-active and photo-protecting states have been determined, revealing the allosteric regulation of light harvesting and excess energy dissipation in photosynthesis. The structures provide insights into the mechanisms of non-photochemical quenching and photoprotection in plants, highlighting the role of pH sensing and the PsbS protein. The data availability includes cryo-EM maps and structure models deposited in the Electron Microscopy Data Bank and Protein Data Bank, respectively. Understanding these regulatory processes could lead to improvements in plant photosynthesis and crop productivity.