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1.
BMC Plant Biol ; 24(1): 513, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38849759

ABSTRACT

BACKGROUND: The phosphorylation of the Light-Harvesting Complex of photosystem II (LHCII) driven by STATE TRANSITION 7 (STN7) kinase is a part of one of the crucial regulatory mechanisms of photosynthetic light reactions operating in fluctuating environmental conditions, light in particular. There are evidenced that STN7 can also be activated without light as well as in dark-chilling conditions. However, the biochemical mechanism standing behind this complex metabolic pathway has not been deciphered yet. RESULTS: In this work, we showed that dark-chilling induces light-independent LHCII phosphorylation in runner bean (Phaseolus coccineus L.). In dark-chilling conditions, we registered an increased reduction of the PQ pool which led to activation of STN7 kinase, subsequent LHCII phosphorylation, and possible LHCII relocation inside the thylakoid membrane. We also presented the formation of a complex composed of phosphorylated LHCII and photosystem I typically formed upon light-induced phosphorylation. Moreover, we indicated that the observed steps were preceded by the activation of the oxidative pentose phosphate pathway (OPPP) enzymes and starch accumulation. CONCLUSIONS: Our results suggest a direct connection between photosynthetic complexes reorganization and dark-chilling-induced activation of the thioredoxin system. The proposed possible pathway starts from the activation of OPPP enzymes and further NADPH-dependent thioredoxin reductase C (NTRC) activation. In the next steps, NTRC simultaneously activates ADP-glucose pyrophosphorylase and thylakoid membrane-located NAD(P)H dehydrogenase-like complex. These results in starch synthesis and electron transfer to the plastoquinone (PQ) pool, respectively. Reduced PQ pool activates STN7 kinase which phosphorylates LHCII. In this work, we present a new perspective on the mechanisms involving photosynthetic complexes while efficiently operating in the darkness. Although we describe the studied pathway in detail, taking into account also the time course of the following steps, the biological significance of this phenomenon remains puzzling.


Subject(s)
Light , Phaseolus , Phaseolus/physiology , Phaseolus/metabolism , Phaseolus/enzymology , Phosphorylation , Thylakoids/metabolism , Photosystem I Protein Complex/metabolism , Cold Temperature , Light-Harvesting Protein Complexes/metabolism , Photosystem II Protein Complex/metabolism , Plant Proteins/metabolism , Starch/metabolism , Pentose Phosphate Pathway/physiology , Enzyme Activation , Photosynthesis/physiology , Stress, Physiological , Protein Serine-Threonine Kinases/metabolism
2.
Nat Commun ; 15(1): 4999, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38866834

ABSTRACT

Cryptophytes are ancestral photosynthetic organisms evolved from red algae through secondary endosymbiosis. They have developed alloxanthin-chlorophyll a/c2-binding proteins (ACPs) as light-harvesting complexes (LHCs). The distinctive properties of cryptophytes contribute to efficient oxygenic photosynthesis and underscore the evolutionary relationships of red-lineage plastids. Here we present the cryo-electron microscopy structure of the Photosystem II (PSII)-ACPII supercomplex from the cryptophyte Chroomonas placoidea. The structure includes a PSII dimer and twelve ACPII monomers forming four linear trimers. These trimers structurally resemble red algae LHCs and cryptophyte ACPI trimers that associate with Photosystem I (PSI), suggesting their close evolutionary links. We also determine a Chl a-binding subunit, Psb-γ, essential for stabilizing PSII-ACPII association. Furthermore, computational calculation provides insights into the excitation energy transfer pathways. Our study lays a solid structural foundation for understanding the light-energy capture and transfer in cryptophyte PSII-ACPII, evolutionary variations in PSII-LHCII, and the origin of red-lineage LHCIIs.


Subject(s)
Cryoelectron Microscopy , Cryptophyta , Light-Harvesting Protein Complexes , Photosystem II Protein Complex , Photosystem II Protein Complex/metabolism , Photosystem II Protein Complex/chemistry , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry , Cryptophyta/metabolism , Photosynthesis , Models, Molecular , Energy Transfer , Photosystem I Protein Complex/metabolism , Photosystem I Protein Complex/chemistry , Chlorophyll A/metabolism , Chlorophyll A/chemistry
3.
Biochim Biophys Acta Bioenerg ; 1865(3): 149050, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38806091

ABSTRACT

Purple phototrophic bacteria possess light-harvesting 1 and reaction center (LH1-RC) core complexes that play a key role in converting solar energy to chemical energy. High-resolution structures of LH1-RC and RC complexes have been intensively studied and have yielded critical insight into the architecture and interactions of their proteins, pigments, and cofactors. Nevertheless, a detailed picture of the structure and assembly of LH1-only complexes is lacking due to the intimate association between LH1 and the RC. To study the intrinsic properties and structure of an LH1-only complex, a genetic system was constructed to express the Thermochromatium (Tch.) tepidum LH1 complex heterologously in a modified Rhodospirillum rubrum mutant strain. The heterologously expressed Tch. tepidum LH1 complex was isolated in a pure form free of the RC and exhibited the characteristic absorption properties of Tch. tepidum. Cryo-EM structures of the LH1-only complexes revealed a closed circular ring consisting of either 14 or 15 αß-subunits, making it the smallest completely closed LH1 complex discovered thus far. Surprisingly, the Tch. tepidum LH1-only complex displayed even higher thermostability than that of the native LH1-RC complex. These results reveal previously unsuspected plasticity of the LH1 complex, provide new insights into the structure and assembly of the LH1-RC complex, and show how molecular genetics can be exploited to study membrane proteins from phototrophic organisms whose genetic manipulation is not yet possible.


Subject(s)
Chromatiaceae , Light-Harvesting Protein Complexes , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/genetics , Chromatiaceae/metabolism , Chromatiaceae/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Rhodospirillum rubrum/genetics , Rhodospirillum rubrum/metabolism
4.
J Am Chem Soc ; 146(21): 14905-14914, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38759103

ABSTRACT

The ability to harvest light effectively in a changing environment is necessary to ensure efficient photosynthesis and crop growth. One mechanism, known as qE, protects photosystem II (PSII) and regulates electron transfer through the harmless dissipation of excess absorbed photons as heat. This process involves reversible clustering of the major light-harvesting complexes of PSII (LHCII) in the thylakoid membrane and relies upon the ΔpH gradient and the allosteric modulator protein PsbS. To date, the exact role of PsbS in the qE mechanism has remained elusive. Here, we show that PsbS induces hydrophobic mismatch in the thylakoid membrane through dynamic rearrangement of lipids around LHCII leading to observed membrane thinning. We found that upon illumination, the thylakoid membrane reversibly shrinks from around 4.3 to 3.2 nm, without PsbS, this response is eliminated. Furthermore, we show that the lipid digalactosyldiacylglycerol (DGDG) is repelled from the LHCII-PsbS complex due to an increase in both the pKa of lumenal residues and in the dipole moment of LHCII, which allows for further conformational change and clustering in the membrane. Our results suggest a mechanistic role for PsbS as a facilitator of a hydrophobic mismatch-mediated phase transition between LHCII-PsbS and its environment. This could act as the driving force to sort LHCII into photoprotective nanodomains in the thylakoid membrane. This work shows an example of the key role of the hydrophobic mismatch process in regulating membrane protein function in plants.


Subject(s)
Hydrophobic and Hydrophilic Interactions , Light-Harvesting Protein Complexes , Photosynthesis , Photosystem II Protein Complex , Thylakoids , Thylakoids/metabolism , Thylakoids/chemistry , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry , Photosystem II Protein Complex/metabolism , Photosystem II Protein Complex/chemistry , Galactolipids/metabolism , Galactolipids/chemistry , Light
5.
J Phys Chem Lett ; 15(22): 5838-5847, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38788163

ABSTRACT

The light-harvesting complexes (LHCs) of diatoms, specifically fucoxanthin-Chl a/c binding proteins (FCPs), exhibit structural and functional diversity, as highlighted by recent structural studies of photosystem II-FCP (PSII-FCPII) supercomplexes from different diatom species. The excitation dynamics of PSII-FCPII supercomplexes isolated from the diatom Thalassiosira pseudonana was explored using time-resolved fluorescence spectroscopy and two-dimensional electronic spectroscopy at room temperature and 77 K. Energy transfer between FCPII and PSII occurred remarkably fast (<5 ps), emphasizing the efficiency of FCPII as a light-harvesting antenna. The presence of long-wavelength chlorophylls may further help concentrate excitations in the core complex and increase the efficiency of light harvesting. Structure-based calculations reveal remarkably strong excitonic couplings between chlorophylls in the FCP antenna and between FCP and the PSII core antenna that are the basis for the rapid energy transfer.


Subject(s)
Diatoms , Energy Transfer , Light-Harvesting Protein Complexes , Photosystem II Protein Complex , Photosystem II Protein Complex/chemistry , Photosystem II Protein Complex/metabolism , Diatoms/chemistry , Diatoms/metabolism , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/metabolism , Spectrometry, Fluorescence , Chlorophyll/chemistry
6.
J Phys Chem B ; 128(21): 5201-5217, 2024 May 30.
Article in English | MEDLINE | ID: mdl-38756003

ABSTRACT

In this study, the site energy fluctuations, energy transfer dynamics, and some spectroscopic properties of the minor light-harvesting complex CP24 in a membrane environment were determined. For this purpose, a 3 µs-long classical molecular dynamics simulation was performed for the CP24 complex. Furthermore, using the density functional tight binding/molecular mechanics molecular dynamics (DFTB/MM MD) approach, we performed excited state calculations for the chlorophyll a and chlorophyll b molecules in the complex starting from five different positions of the MD trajectory. During the extended simulations, we observed variations in the site energies of the different sets as a result of the fluctuating protein environment. In particular, a water coordination to Chl-b 608 occurred only after about 1 µs in the simulations, demonstrating dynamic changes in the environment of this pigment. From the classical and the DFTB/MM MD simulations, spectral densities and the (time-dependent) Hamiltonian of the complex were determined. Based on these results, three independent strongly coupled chlorophyll clusters were revealed within the complex. In addition, absorption and fluorescence spectra were determined together with the exciton relaxation dynamics, which reasonably well agrees with experimental time scales.


Subject(s)
Chlorophyll , Light-Harvesting Protein Complexes , Molecular Dynamics Simulation , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/metabolism , Chlorophyll/chemistry , Energy Transfer , Chlorophyll A/chemistry , Density Functional Theory , Spectrometry, Fluorescence
7.
J Photochem Photobiol B ; 256: 112941, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38763078

ABSTRACT

Plants have a protective mechanism called non-photochemical quenching to prevent damage caused by excessive sunlight. A critical component of this mechanism is energy-dependent quenching (qE). In Chlamydomonas reinhardtii, the protein expression called light-harvesting complex stress-related protein 3 (LHCSR3) is crucial for the qE mechanism. LHCSR3 expression is observed in various conditions that result in photooxidation, such as exposure to high light or nutrient deprivation, where the amount of captured light surpasses the maximum photosynthetic capacity. Although the role of LHCSR3 has been extensively studied under high light (HL) conditions, its function during nutrient starvation remains unclear. In this study, we demonstrate that LHCSR3 expression can occur under light intensities below saturation without triggering qE, particularly when nutrients are limited. To investigate this, we cultivated C. reinhardtii cells under osmotic stress, which replicates conditions of nutrient scarcity. Furthermore, we examined the photosynthetic membrane complexes of wild-type (WT) and npq4 mutant strains grown under osmotic stress. Our analysis revealed that LHCSR3 expression might modify the interaction between the photosystem II core and its peripheral light-harvesting complex II antennae. This alteration could potentially impede the transfer of excitation energy from the antenna to the reaction center.


Subject(s)
Chlamydomonas reinhardtii , Light-Harvesting Protein Complexes , Osmotic Pressure , Photosystem II Protein Complex , Chlamydomonas reinhardtii/metabolism , Chlamydomonas reinhardtii/genetics , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/genetics , Photosystem II Protein Complex/metabolism , Photosystem II Protein Complex/genetics , Photosynthesis/radiation effects , Light , Chlorophyll/metabolism
8.
Nat Commun ; 15(1): 4437, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38789432

ABSTRACT

Photosynthetic organisms have evolved an essential energy-dependent quenching (qE) mechanism to avoid any lethal damages caused by high light. While the triggering mechanism of qE has been well addressed, candidates for quenchers are often debated. This lack of understanding is because of the tremendous difficulty in measuring intact cells using transient absorption techniques. Here, we have conducted femtosecond pump-probe measurements to characterize this photophysical reaction using micro-sized cell fractions of the green alga Chlamydomonas reinhardtii that retain physiological qE function. Combined with kinetic modeling, we have demonstrated the presence of an ultrafast excitation energy transfer (EET) pathway from Chlorophyll a (Chl a) Qy to a carotenoid (car) S1 state, therefore proposing that this carotenoid, likely lutein1, is the quencher. This work has provided an easy-to-prepare qE active thylakoid membrane system for advanced spectroscopic studies and demonstrated that the energy dissipation pathway of qE is evolutionarily conserved from green algae to land plants.


Subject(s)
Carotenoids , Chlamydomonas reinhardtii , Energy Transfer , Chlamydomonas reinhardtii/metabolism , Carotenoids/metabolism , Carotenoids/chemistry , Thylakoids/metabolism , Photosynthesis , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/genetics , Chlorophyll A/metabolism , Chlorophyll A/chemistry , Light , Kinetics , Chlorophyll/metabolism , Chlamydomonas/metabolism
9.
Nat Commun ; 15(1): 4535, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38806516

ABSTRACT

Cryptophyte algae are an evolutionarily distinct and ecologically important group of photosynthetic unicellular eukaryotes. Photosystem II (PSII) of cryptophyte algae associates with alloxanthin chlorophyll a/c-binding proteins (ACPs) to act as the peripheral light-harvesting system, whose supramolecular organization is unknown. Here, we purify the PSII-ACPII supercomplex from a cryptophyte alga Chroomonas placoidea (C. placoidea), and analyze its structure at a resolution of 2.47 Å using cryo-electron microscopy. This structure reveals a dimeric organization of PSII-ACPII containing two PSII core monomers flanked by six symmetrically arranged ACPII subunits. The PSII core is conserved whereas the organization of ACPII subunits exhibits a distinct pattern, different from those observed so far in PSII of other algae and higher plants. Furthermore, we find a Chl a-binding antenna subunit, CCPII-S, which mediates interaction of ACPII with the PSII core. These results provide a structural basis for the assembly of antennas within the supercomplex and possible excitation energy transfer pathways in cryptophyte algal PSII, shedding light on the diversity of supramolecular organization of photosynthetic machinery.


Subject(s)
Cryoelectron Microscopy , Cryptophyta , Photosystem II Protein Complex , Photosystem II Protein Complex/metabolism , Photosystem II Protein Complex/chemistry , Cryptophyta/metabolism , Chlorophyll/metabolism , Chlorophyll Binding Proteins/metabolism , Chlorophyll Binding Proteins/chemistry , Protein Multimerization , Chlorophyll A/metabolism , Chlorophyll A/chemistry , Models, Molecular , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry
10.
Int J Mol Sci ; 25(10)2024 May 07.
Article in English | MEDLINE | ID: mdl-38791114

ABSTRACT

Photosynthesis, as the primary source of energy for all life forms, plays a crucial role in maintaining the global balance of energy, entropy, and enthalpy in living organisms. Among its various building blocks, photosystem I (PSI) is responsible for light-driven electron transfer, crucial for generating cellular reducing power. PSI acts as a light-driven plastocyanin-ferredoxin oxidoreductase and is situated in the thylakoid membranes of cyanobacteria and the chloroplasts of eukaryotic photosynthetic organisms. Comprehending the structure and function of the photosynthetic machinery is essential for understanding its mode of action. New insights are offered into the structure and function of PSI and its associated light-harvesting proteins, with a specific focus on the remarkable structural conservation of the core complex and high plasticity of the peripheral light-harvesting complexes.


Subject(s)
Photosynthesis , Photosystem I Protein Complex , Photosystem I Protein Complex/metabolism , Photosynthesis/physiology , Light-Harvesting Protein Complexes/metabolism , Cyanobacteria/metabolism , Models, Molecular , Electron Transport
11.
Commun Biol ; 7(1): 560, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734819

ABSTRACT

Photosynthetic cryptophytes are eukaryotic algae that utilize membrane-embedded chlorophyll a/c binding proteins (CACs) and lumen-localized phycobiliproteins (PBPs) as their light-harvesting antennae. Cryptophytes go through logarithmic and stationary growth phases, and may adjust their light-harvesting capability according to their particular growth state. How cryptophytes change the type/arrangement of the photosynthetic antenna proteins to regulate their light-harvesting remains unknown. Here we solve four structures of cryptophyte photosystem I (PSI) bound with CACs that show the rearrangement of CACs at different growth phases. We identify a cryptophyte-unique protein, PsaQ, which harbors two chlorophyll molecules. PsaQ specifically binds to the lumenal region of PSI during logarithmic growth phase and may assist the association of PBPs with photosystems and energy transfer from PBPs to photosystems.


Subject(s)
Cryptophyta , Photosystem I Protein Complex , Photosystem I Protein Complex/metabolism , Cryptophyta/metabolism , Cryptophyta/genetics , Light-Harvesting Protein Complexes/metabolism , Chlorophyll/metabolism , Chlorophyll Binding Proteins/metabolism , Chlorophyll Binding Proteins/genetics , Photosynthesis , Phycobiliproteins/metabolism , Phycobiliproteins/genetics
12.
Photochem Photobiol Sci ; 23(5): 871-879, 2024 May.
Article in English | MEDLINE | ID: mdl-38564166

ABSTRACT

Exchange of B800 bacteriochlorophyll (BChl) a in light-harvesting complex 2 (LH2) is promising for a better understanding of the mechanism on intracomplex excitation energy transfer of this protein. Structural and spectroscopic properties of LH2 lacking B800 BChl a (B800-depleted LH2), which is an important intermediate protein in the B800 exchange, will be useful to tackle the energy transfer mechanism in LH2 by the B800 exchange strategy. In this study, we report a unique spectral change of B800-depleted LH2, in which the Qy absorption band of B800 BChl a is automatically recovered under neutral pH conditions. This spectral change was facilitated by factors for destabilization of LH2, namely, a detergent, lauryl dimethylamine N-oxide, and an increase in temperature. Spectral analyses in the preparation of an LH2 variant denoted as B800-recovered LH2 indicated that most BChl a that was released by decomposition of part of B800-depleted LH2 was a source of the production of B800-recovered LH2. Characterization of purified B800-recovered LH2 demonstrated that its spectroscopic and structural features was quite similar to those of native LH2. The current results indicate that the recovery of the B800 Qy band of B800-depleted LH2 originates from the combination of decomposition of part of B800-depleted LH2 and in situ reconstitution of BChl a into the B800 binding pockets of residual B800-depleted LH2, resulting in the formation of stable B800-recovered LH2.


Subject(s)
Bacteriochlorophyll A , Light-Harvesting Protein Complexes , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/metabolism , Hydrogen-Ion Concentration , Bacteriochlorophyll A/chemistry , Bacteriochlorophyll A/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Temperature , Dimethylamines/chemistry , Energy Transfer
13.
Photosynth Res ; 160(2-3): 77-86, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38619701

ABSTRACT

In this work, we applied Stark fluorescence spectroscopy to an iron-stressed cyanobacterial membrane to reveal key insights about the electronic structures and excited state dynamics of the two important pigment-protein complexes, IsiA and PSII, both of which prevail simultaneously within the membrane during iron deficiency and whose fluorescence spectra are highly overlapped and hence often hardly resolved by conventional fluorescence spectroscopy. Thanks to the ability of Stark fluorescence spectroscopy, the fluorescence signatures of the two complexes could be plausibly recognized and disentangled. The systematic analysis of the SF spectra, carried out by employing standard Liptay formalism with a realistic spectral deconvolution protocol, revealed that the IsiA in an intact membrane retains almost identical excited state electronic structures and dynamics as compared to the isolated IsiA we reported in our earlier study. Moreover, the analysis uncovered that the excited state of the PSII subunit of the intact membrane possesses a significantly large CT character. The observed notably large magnitude of the excited state CT character may signify the supplementary role of PSII in regulative energy dissipation during iron deficiency.


Subject(s)
Photosystem II Protein Complex , Spectrometry, Fluorescence , Spectrometry, Fluorescence/methods , Photosystem II Protein Complex/metabolism , Cyanobacteria/metabolism , Iron/metabolism , Iron Deficiencies , Bacterial Proteins/metabolism , Cell Membrane/metabolism , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry
15.
Photosynth Res ; 160(2-3): 87-96, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38625595

ABSTRACT

The primary photochemical reaction of photosynthesis in green sulfur bacteria occurs in the homodimer PscA core proteins by a special chlorophyll pair. The light induced excited state of the special pair producing P840+ is rapidly reduced by electron transfer from one of the two PscC subunits. Molecular dynamics (MD) simulations are combined with bioinformatic tools herein to provide structural and dynamic insight into the complex between the two PscA core proteins and the two PscC subunits. The microscopic dynamic model involves extensive sampling at atomic resolution and at a cumulative time-scale of 22µs and reveals well defined protein-protein interactions. The membrane complex is composed of the two PscA and the two PscC subunits and macroscopic connections are revealed within a putative electron transfer pathway from the PscC subunit to the special pair P840 located within the PscA subunits. Our results provide a structural basis for understanding the electron transport to the homodimer RC of the green sulfur bacteria. The MD based approach can provide the basis to further probe the PscA-PscC complex dynamics and observe electron transfer therein at the quantum level. Furthermore, the transmembrane helices of the different PscC subunits exert distinct dynamics in the complex.


Subject(s)
Bacterial Proteins , Chlorobi , Molecular Dynamics Simulation , Electron Transport , Chlorobi/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Protein Subunits/metabolism , Protein Subunits/chemistry , Photosynthesis , Chlorophyll/metabolism , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry
16.
Phys Chem Chem Phys ; 26(22): 15856-15867, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38546236

ABSTRACT

Chlorosomes, the photosynthetic antenna complexes of green sulfur bacteria, are paradigms for light-harvesting elements in artificial designs, owing to their efficient energy transfer without protein participation. We combined magic angle spinning (MAS) NMR, optical spectroscopy and cryogenic electron microscopy (cryo-EM) to characterize the structure of chlorosomes from a bchQ mutant of Chlorobaculum tepidum. The chlorosomes of this mutant have a more uniform composition of bacteriochlorophyll (BChl) with a predominant homolog, [8Ethyl, 12Ethyl] BChl c, compared to the wild type (WT). Nearly complete 13C chemical shift assignments were obtained from well-resolved homonuclear 13C-13C RFDR data. For proton assignments heteronuclear 13C-1H (hCH) data sets were collected at 1.2 GHz spinning at 60 kHz. The CHHC experiments revealed intermolecular correlations between 132/31, 132/32, and 121/31, with distance constraints of less than 5 Å. These constraints indicate the syn-anti parallel stacking motif for the aggregates. Fourier transform cryo-EM data reveal an axial repeat of 1.49 nm for the helical tubular aggregates, perpendicular to the inter-tube separation of 2.1 nm. This axial repeat is different from WT and is in line with BChl syn-anti stacks running essentially parallel to the tube axis. Such a packing mode is in agreement with the signature of the Qy band in circular dichroism (CD). Combining the experimental data with computational insight suggests that the packing for the light-harvesting function is similar between WT and bchQ, while the chirality within the chlorosomes is modestly but detectably affected by the reduced compositional heterogeneity in bchQ.


Subject(s)
Bacteriochlorophylls , Chlorobi , Chlorobi/genetics , Chlorobi/metabolism , Bacteriochlorophylls/chemistry , Mutation , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/genetics , Cryoelectron Microscopy , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism
17.
Nat Commun ; 15(1): 2392, 2024 Mar 16.
Article in English | MEDLINE | ID: mdl-38493166

ABSTRACT

Symbiodinium are the photosynthetic endosymbionts for corals and play a vital role in supplying their coral hosts with photosynthetic products, forming the nutritional foundation for high-yield coral reef ecosystems. Here, we determine the cryo-electron microscopy structure of Symbiodinium photosystem I (PSI) supercomplex with a PSI core composed of 13 subunits including 2 previously unidentified subunits, PsaT and PsaU, as well as 13 peridinin-Chl a/c-binding light-harvesting antenna proteins (AcpPCIs). The PSI-AcpPCI supercomplex exhibits distinctive structural features compared to their red lineage counterparts, including extended termini of PsaD/E/I/J/L/M/R and AcpPCI-1/3/5/7/8/11 subunits, conformational changes in the surface loops of PsaA and PsaB subunits, facilitating the association between the PSI core and peripheral antennae. Structural analysis and computational calculation of excitation energy transfer rates unravel specific pigment networks in Symbiodinium PSI-AcpPCI for efficient excitation energy transfer. Overall, this study provides a structural basis for deciphering the mechanisms governing light harvesting and energy transfer in Symbiodinium PSI-AcpPCI supercomplexes adapted to their symbiotic ecosystem, as well as insights into the evolutionary diversity of PSI-LHCI among various photosynthetic organisms.


Subject(s)
Light-Harvesting Protein Complexes , Photosystem I Protein Complex , Photosystem I Protein Complex/metabolism , Light-Harvesting Protein Complexes/metabolism , Ecosystem , Cryoelectron Microscopy , Photosynthesis
18.
Photosynth Res ; 159(2-3): 303-320, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38466456

ABSTRACT

Photosystem II (PSII) is one of the main pigment-protein complexes of photosynthesis which is highly sensitive to unfavorable environmental factors. The heterogeneity of PSII properties is essential for the resistance of autotrophic organisms to stress factors. Assessment of the PSII heterogeneity may be used in environmental monitoring for on-line detection of contamination of the environment. We propose an approach to assess PSII oxygen-evolving complex and light-harvesting antenna heterogeneity that is based on mathematical modeling of the shape of chlorophyll a fluorescence rise of 3-(3,4-dichlorophenyl)-1,1-dimethylurea-treated samples. The hierarchy of characteristic times of the processes considered in the model makes it possible to reduce the model to a system of three ordinary differential equations. The analytic solution of the reduced three-state model is expressed as a sum of two exponential functions, and it exactly reproduces the solution of the complete system within the time range from microseconds to hundreds of milliseconds. The combination of several such models for reaction centers with different properties made it possible to use it as an instrument to study PSII heterogeneity. PSII heterogeneity was studied for Chlamydomonas at different intensities of actinic light, for Scenedesmus under short-term heating, and for Chlorella grown in nitrate-enriched and nitrate-depleted media.


Subject(s)
Chlorella , Photosystem II Protein Complex , Photosystem II Protein Complex/metabolism , Chlorophyll A , Diuron , Chlorophyll , Chlorella/metabolism , Nitrates , Photosynthesis , Models, Theoretical , Light-Harvesting Protein Complexes/metabolism , Light
19.
Environ Microbiol ; 26(2): e16591, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38387883

ABSTRACT

The ecological success of purple sulfur bacteria (PSB) is linked to their ability to collect near-infrared solar energy by membrane-integrated, pigment-protein photocomplexes. These include a Core complex containing both light-harvesting 1 (LH1) and reaction centre (RC) components (called the LH1-RC photocomplex) present in all PSB and a peripheral light-harvesting complex present in most but not all PSB. In research to explain the unusual absorption properties of the thermophilic purple sulfur bacterium Thermochromatium tepidum, Ca2+ was discovered bound to LH1 polypeptides in its LH1-RC; further work showed that calcium controls both the thermostability and unusual spectrum of the Core complex. Since then, Ca2+ has been found in the LH1-RC photocomplexes of several other PSB, including mesophilic species, but not in the LH1-RC of purple non-sulfur bacteria. Here we focus on four species of PSB-two thermophilic and two mesophilic-and describe how Ca2+ is integrated into and affects their photosynthetic machinery and why this previously overlooked divalent metal is a key nutrient for their ecological success.


Subject(s)
Calcium , Chromatiaceae , Calcium/metabolism , Light-Harvesting Protein Complexes/genetics , Light-Harvesting Protein Complexes/chemistry , Light-Harvesting Protein Complexes/metabolism , Photosynthesis , Peptides/metabolism , Chromatiaceae/genetics , Chromatiaceae/metabolism
20.
Commun Biol ; 7(1): 176, 2024 Feb 12.
Article in English | MEDLINE | ID: mdl-38347078

ABSTRACT

The mesophilic purple sulfur phototrophic bacterium Allochromatium (Alc.) vinosum (bacterial family Chromatiaceae) has been a favored model for studies of bacterial photosynthesis and sulfur metabolism, and its core light-harvesting (LH1) complex has been a focus of numerous studies of photosynthetic light reactions. However, despite intense efforts, no high-resolution structure and thorough biochemical analysis of the Alc. vinosum LH1 complex have been reported. Here we present cryo-EM structures of the Alc. vinosum LH1 complex associated with reaction center (RC) at 2.24 Å resolution. The overall structure of the Alc. vinosum LH1 resembles that of its moderately thermophilic relative Alc. tepidum in that it contains multiple pigment-binding α- and ß-polypeptides. Unexpectedly, however, six Ca ions were identified in the Alc. vinosum LH1 bound to certain α1/ß1- or α1/ß3-polypeptides through a different Ca2+-binding motif from that seen in Alc. tepidum and other Chromatiaceae that contain Ca2+-bound LH1 complexes. Two water molecules were identified as additional Ca2+-coordinating ligands. Based on these results, we reexamined biochemical and spectroscopic properties of the Alc. vinosum LH1-RC. While modest but distinct effects of Ca2+ were detected in the absorption spectrum of the Alc. vinosum LH1 complex, a marked decrease in thermostability of its LH1-RC complex was observed upon removal of Ca2+. The presence of Ca2+ in the photocomplex of Alc. vinosum suggests that Ca2+-binding to LH1 complexes may be a common adaptation in species of Chromatiaceae for conferring spectral and thermal flexibility on this key component of their photosynthetic machinery.


Subject(s)
Chromatiaceae , Light-Harvesting Protein Complexes , Light-Harvesting Protein Complexes/metabolism , Chromatiaceae/chemistry , Chromatiaceae/metabolism , Photosynthesis , Peptides/metabolism
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