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Structural basis of energy transfer in Porphyridium purpureum phycobilisome
by
Qin, Song
, Sun, Shan
, Ma, Jianfei
, You, Xin
, Sui, Sen-Fang
, Wang, Xiaoxiao
in
101/28
/ 631/449/1734/2077
/ 631/535/1258/1259
/ Absorption of light
/ Algal Proteins - chemistry
/ Algal Proteins - metabolism
/ Algal Proteins - ultrastructure
/ Amino acids
/ Analysis
/ Carboxyl group
/ Chromophores
/ Conjugation
/ Cryoelectron Microscopy
/ Crystal structure
/ Cyanobacteria
/ Energy
/ Energy levels
/ Energy Transfer
/ Energy transformation
/ Humanities and Social Sciences
/ Hydrogen
/ Hydrogen bonding
/ Hydrogen bonds
/ Microscopy
/ Models, Molecular
/ Morphology
/ multidisciplinary
/ Nitrogen atoms
/ Optical properties
/ Photosynthesis
/ Photosystem II
/ Phycobilins - chemistry
/ Phycobilins - metabolism
/ Phycobilisomes - chemistry
/ Phycobilisomes - metabolism
/ Phycobilisomes - ultrastructure
/ Physiological aspects
/ Porphyridium - chemistry
/ Porphyridium - ultrastructure
/ Protein Conformation
/ Protein Subunits - chemistry
/ Protein Subunits - metabolism
/ Proteins
/ Red algae
/ Rhodophyta - chemistry
/ Rhodophyta - ultrastructure
/ Rings (mathematics)
/ Science
/ Science (multidisciplinary)
/ Structure
2020
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Structural basis of energy transfer in Porphyridium purpureum phycobilisome
by
Qin, Song
, Sun, Shan
, Ma, Jianfei
, You, Xin
, Sui, Sen-Fang
, Wang, Xiaoxiao
in
101/28
/ 631/449/1734/2077
/ 631/535/1258/1259
/ Absorption of light
/ Algal Proteins - chemistry
/ Algal Proteins - metabolism
/ Algal Proteins - ultrastructure
/ Amino acids
/ Analysis
/ Carboxyl group
/ Chromophores
/ Conjugation
/ Cryoelectron Microscopy
/ Crystal structure
/ Cyanobacteria
/ Energy
/ Energy levels
/ Energy Transfer
/ Energy transformation
/ Humanities and Social Sciences
/ Hydrogen
/ Hydrogen bonding
/ Hydrogen bonds
/ Microscopy
/ Models, Molecular
/ Morphology
/ multidisciplinary
/ Nitrogen atoms
/ Optical properties
/ Photosynthesis
/ Photosystem II
/ Phycobilins - chemistry
/ Phycobilins - metabolism
/ Phycobilisomes - chemistry
/ Phycobilisomes - metabolism
/ Phycobilisomes - ultrastructure
/ Physiological aspects
/ Porphyridium - chemistry
/ Porphyridium - ultrastructure
/ Protein Conformation
/ Protein Subunits - chemistry
/ Protein Subunits - metabolism
/ Proteins
/ Red algae
/ Rhodophyta - chemistry
/ Rhodophyta - ultrastructure
/ Rings (mathematics)
/ Science
/ Science (multidisciplinary)
/ Structure
2020
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Structural basis of energy transfer in Porphyridium purpureum phycobilisome
by
Qin, Song
, Sun, Shan
, Ma, Jianfei
, You, Xin
, Sui, Sen-Fang
, Wang, Xiaoxiao
in
101/28
/ 631/449/1734/2077
/ 631/535/1258/1259
/ Absorption of light
/ Algal Proteins - chemistry
/ Algal Proteins - metabolism
/ Algal Proteins - ultrastructure
/ Amino acids
/ Analysis
/ Carboxyl group
/ Chromophores
/ Conjugation
/ Cryoelectron Microscopy
/ Crystal structure
/ Cyanobacteria
/ Energy
/ Energy levels
/ Energy Transfer
/ Energy transformation
/ Humanities and Social Sciences
/ Hydrogen
/ Hydrogen bonding
/ Hydrogen bonds
/ Microscopy
/ Models, Molecular
/ Morphology
/ multidisciplinary
/ Nitrogen atoms
/ Optical properties
/ Photosynthesis
/ Photosystem II
/ Phycobilins - chemistry
/ Phycobilins - metabolism
/ Phycobilisomes - chemistry
/ Phycobilisomes - metabolism
/ Phycobilisomes - ultrastructure
/ Physiological aspects
/ Porphyridium - chemistry
/ Porphyridium - ultrastructure
/ Protein Conformation
/ Protein Subunits - chemistry
/ Protein Subunits - metabolism
/ Proteins
/ Red algae
/ Rhodophyta - chemistry
/ Rhodophyta - ultrastructure
/ Rings (mathematics)
/ Science
/ Science (multidisciplinary)
/ Structure
2020
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Structural basis of energy transfer in Porphyridium purpureum phycobilisome
Journal Article
Structural basis of energy transfer in Porphyridium purpureum phycobilisome
2020
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Overview
Photosynthetic organisms have developed various light-harvesting systems to adapt to their environments
1
. Phycobilisomes are large light-harvesting protein complexes found in cyanobacteria and red algae
2
–
4
, although how the energies of the chromophores within these complexes are modulated by their environment is unclear. Here we report the cryo-electron microscopy structure of a 14.7-megadalton phycobilisome with a hemiellipsoidal shape from the red alga
Porphyridium purpureum
. Within this complex we determine the structures of 706 protein subunits, including 528 phycoerythrin, 72 phycocyanin, 46 allophycocyanin and 60 linker proteins. In addition, 1,598 chromophores are resolved comprising 1,430 phycoerythrobilin, 48 phycourobilin and 120 phycocyanobilin molecules. The markedly improved resolution of our structure compared with that of the phycobilisome of
Griffithsia pacifica
5
enabled us to build an accurate atomic model of the
P. purpureum
phycobilisome system. The model reveals how the linker proteins affect the microenvironment of the chromophores, and suggests that interactions of the aromatic amino acids of the linker proteins with the chromophores may be a key factor in fine-tuning the energy states of the chromophores to ensure the efficient unidirectional transfer of energy.
The cryo-electron microscopy structure of a phycobilisome from the red alga
Porphyridium purpureum
reveals how aromatic interactions between the linker proteins and the chromophores drive a unidirectional transfer of energy.
Publisher
Nature Publishing Group UK,Nature Publishing Group
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