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1.
Sci Adv ; 10(19): eadk7283, 2024 May 10.
Artículo en Inglés | MEDLINE | ID: mdl-38728392

RESUMEN

Cyanobacterial CO2 concentrating mechanisms (CCMs) sequester a globally consequential proportion of carbon into the biosphere. Proteinaceous microcompartments, called carboxysomes, play a critical role in CCM function, housing two enzymes to enhance CO2 fixation: carbonic anhydrase (CA) and Rubisco. Despite its importance, our current understanding of the carboxysomal CAs found in α-cyanobacteria, CsoSCA, remains limited, particularly regarding the regulation of its activity. Here, we present a structural and biochemical study of CsoSCA from the cyanobacterium Cyanobium sp. PCC7001. Our results show that the Cyanobium CsoSCA is allosterically activated by the Rubisco substrate ribulose-1,5-bisphosphate and forms a hexameric trimer of dimers. Comprehensive phylogenetic and mutational analyses are consistent with this regulation appearing exclusively in cyanobacterial α-carboxysome CAs. These findings clarify the biologically relevant oligomeric state of α-carboxysomal CAs and advance our understanding of the regulation of photosynthesis in this globally dominant lineage.


Asunto(s)
Anhidrasas Carbónicas , Cianobacterias , Ribulosa-Bifosfato Carboxilasa , Ribulosa-Bifosfato Carboxilasa/metabolismo , Ribulosa-Bifosfato Carboxilasa/química , Ribulosa-Bifosfato Carboxilasa/genética , Anhidrasas Carbónicas/metabolismo , Anhidrasas Carbónicas/genética , Anhidrasas Carbónicas/química , Cianobacterias/metabolismo , Cianobacterias/genética , Cianobacterias/enzimología , Regulación Alostérica , Filogenia , Ribulosafosfatos/metabolismo , Modelos Moleculares , Multimerización de Proteína , Dióxido de Carbono/metabolismo , Especificidad por Sustrato , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Proteínas Bacterianas/química
2.
Plant J ; 118(4): 940-952, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38321620

RESUMEN

The introduction of the carboxysome-based CO2 concentrating mechanism (CCM) into crop plants has been modelled to significantly increase crop yields. This projection serves as motivation for pursuing this strategy to contribute to global food security. The successful implementation of this engineering challenge is reliant upon the transfer of a microcompartment that encapsulates cyanobacterial Rubisco, known as the carboxysome, alongside active bicarbonate transporters. To date, significant progress has been achieved with respect to understanding various aspects of the cyanobacterial CCM, and more recently, different components of the carboxysome have been successfully introduced into plant chloroplasts. In this Perspective piece, we summarise recent findings and offer new research avenues that will accelerate research in this field to ultimately and successfully introduce the carboxysome into crop plants for increased crop yields.


Asunto(s)
Dióxido de Carbono , Cloroplastos , Productos Agrícolas , Ribulosa-Bifosfato Carboxilasa , Dióxido de Carbono/metabolismo , Cloroplastos/metabolismo , Productos Agrícolas/genética , Productos Agrícolas/metabolismo , Ribulosa-Bifosfato Carboxilasa/metabolismo , Ribulosa-Bifosfato Carboxilasa/genética , Fotosíntesis/fisiología , Cianobacterias/metabolismo , Cianobacterias/fisiología , Cianobacterias/genética , Plantas Modificadas Genéticamente
4.
Trends Biochem Sci ; 48(10): 832-834, 2023 10.
Artículo en Inglés | MEDLINE | ID: mdl-37487910

RESUMEN

Synthetically reconstructed carboxysomes form the basis of CO2-concentrating mechanisms (CCMs) that could enhance the photosynthetic efficiency of crops and improve yield. Recently, Chen et al. revealed another step toward the reconstruction of bacterial carboxysomes in plants, reporting the formation of almost-complete carboxysomes in the chloroplast of Nicotiana tabacum.


Asunto(s)
Cianobacterias , Dióxido de Carbono , Ribulosa-Bifosfato Carboxilasa , Orgánulos , Cloroplastos
5.
Photosynth Res ; 156(2): 265-277, 2023 May.
Artículo en Inglés | MEDLINE | ID: mdl-36892800

RESUMEN

Carboxysomes are bacterial microcompartments, whose structural features enable the encapsulated Rubisco holoenzyme to operate in a high-CO2 environment. Consequently, Rubiscos housed within these compartments possess higher catalytic turnover rates relative to their plant counterparts. This particular enzymatic property has made the carboxysome, along with associated transporters, an attractive prospect to incorporate into plant chloroplasts to increase future crop yields. To date, two carboxysome types have been characterized, the α-type that has fewer shell components and the ß-type that houses a faster Rubisco. While research is underway to construct a native carboxysome in planta, work investigating the internal arrangement of carboxysomes has identified conserved Rubisco amino acid residues between the two carboxysome types which could be engineered to produce a new, hybrid carboxysome. In theory, this hybrid carboxysome would benefit from the simpler α-carboxysome shell architecture while simultaneously exploiting the higher Rubisco turnover rates in ß-carboxysomes. Here, we demonstrate in an Escherichia coli expression system, that the Thermosynechococcus elongatus Form IB Rubisco can be imperfectly incorporated into simplified Cyanobium α-carboxysome-like structures. While encapsulation of non-native cargo can be achieved, T. elongatus Form IB Rubisco does not interact with the Cyanobium carbonic anhydrase, a core requirement for proper carboxysome functionality. Together, these results suggest a way forward to hybrid carboxysome formation.


Asunto(s)
Anhidrasas Carbónicas , Cianobacterias , Ribulosa-Bifosfato Carboxilasa/metabolismo , Orgánulos/metabolismo , Cloroplastos/metabolismo , Cianobacterias/metabolismo , Anhidrasas Carbónicas/metabolismo , Dióxido de Carbono/metabolismo , Proteínas Bacterianas/metabolismo
6.
J Exp Bot ; 72(18): 6164-6174, 2021 09 30.
Artículo en Inglés | MEDLINE | ID: mdl-34059899

RESUMEN

C-TERMINALLY ENCODED PEPTIDEs (CEPs) control diverse responses in plants including root development, root system architecture, nitrogen demand signalling, and nutrient allocation that influences yield, and there is evidence that different ligands impart different phenotypic responses. Thus, there is a need for a simple method that identifies bona fide CEP hormone-receptor pairings in vivo and examines whether different CEP family peptides bind the same receptor. We used formaldehyde or photoactivation to cross-link fluorescently tagged group 1 or group 2 CEPs to receptors in semi-purified Medicago truncatula or Arabidopsis thaliana leaf vascular tissues to verify that COMPACT ROOT ARCHITECTURE 2 (CRA2) is the Medicago CEP receptor, and to investigate whether sequence diversity within the CEP family influences receptor binding. Formaldehyde cross-linked the fluorescein isothiocyanate (FITC)-tagged Medicago group 1 CEP (MtCEP1) to wild-type Medicago or Arabidopsis vascular tissue cells, but not to the CEP receptor mutants, cra2 or cepr1. Binding competition showed that unlabelled MtCEP1 displaces FITC-MtCEP1 from CRA2. In contrast, the group 2 CEP, FITC-AtCEP14, bound to vascular tissue independently of CEPR1 or CRA2, and AtCEP14 did not complete with FITC-MtCEP1 to bind CEP receptors. The binding of a photoactivatable FITC-MtCEP1 to the periphery of Medicago vascular cells suggested that CRA2 localizes to the plasma membrane. We separated and visualized a fluorescent 105 kDa protein corresponding to the photo-cross-linked FITC-MtCEP1-CRA2 complex using SDS-PAGE. Mass spectrometry identified CRA2-specific peptides in this protein band. The results indicate that FITC-MtCEP1 binds to CRA2, MtCRA2 and AtCEPR1 are functionally equivalent, and the binding specificities of group 1 and group 2 CEPs are distinct. Using formaldehyde or photoactivated cross-linking of biologically active, fluorescently tagged ligands may find wider utility by identifying CEP-CEP receptor pairings in diverse plants.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Medicago truncatula , Reguladores del Crecimiento de las Plantas , Arabidopsis/genética , Proteínas de Plantas , Raíces de Plantas , Receptores de Péptidos
7.
Proc Natl Acad Sci U S A ; 118(18)2021 05 04.
Artículo en Inglés | MEDLINE | ID: mdl-33931502

RESUMEN

Membraneless organelles containing the enzyme ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) are a common feature of organisms utilizing CO2 concentrating mechanisms to enhance photosynthetic carbon acquisition. In cyanobacteria and proteobacteria, the Rubisco condensate is encapsulated in a proteinaceous shell, collectively termed a carboxysome, while some algae and hornworts have evolved Rubisco condensates known as pyrenoids. In both cases, CO2 fixation is enhanced compared with the free enzyme. Previous mathematical models have attributed the improved function of carboxysomes to the generation of elevated CO2 within the organelle via a colocalized carbonic anhydrase (CA) and inwardly diffusing HCO3-, which have accumulated in the cytoplasm via dedicated transporters. Here, we present a concept in which we consider the net of two protons produced in every Rubisco carboxylase reaction. We evaluate this in a reaction-diffusion compartment model to investigate functional advantages these protons may provide Rubisco condensates and carboxysomes, prior to the evolution of HCO3- accumulation. Our model highlights that diffusional resistance to reaction species within a condensate allows Rubisco-derived protons to drive the conversion of HCO3- to CO2 via colocalized CA, enhancing both condensate [CO2] and Rubisco rate. Protonation of Rubisco substrate (RuBP) and product (phosphoglycerate) plays an important role in modulating internal pH and CO2 generation. Application of the model to putative evolutionary ancestors, prior to contemporary cellular HCO3- accumulation, revealed photosynthetic enhancements along a logical sequence of advancements, via Rubisco condensation, to fully formed carboxysomes. Our model suggests that evolution of Rubisco condensation could be favored under low CO2 and low light environments.


Asunto(s)
Ciclo del Carbono/genética , Dióxido de Carbono/metabolismo , Fotosíntesis/genética , Ribulosa-Bifosfato Carboxilasa/química , Synechococcus/genética , Carbono/química , Carbono/metabolismo , Dióxido de Carbono/química , Anhidrasas Carbónicas , Orgánulos/metabolismo , Proteobacteria/química , Proteobacteria/metabolismo , Protones , Ribulosa-Bifosfato Carboxilasa/metabolismo , Synechococcus/química , Synechococcus/metabolismo
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