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Functions, Compositions, and Evolution of the Two Types of Carboxysomes: Polyhedral Microcompartments That Facilitate CO2 Fixation in Cyanobacteria and Some Proteobacteria

TLDR
This review presents this review to summarize the knowledge of the structure and function of both types of carboxysome, and casts light on differing evolutionary trajectories which may have led to the differences observed in extant car boxysomes.
Abstract
Cyanobacteria are the globally dominant photoautotrophic lineage. Their success is dependent on a set of adaptations collectively termed the CO2-concentrating mechanism (CCM). The purpose of the CCM is to support effective CO2 fixation by enhancing the chemical conditions in the vicinity of the primary CO2-fixing enzyme, D-ribulose 1,5-bisphosphate carboxylase/oxygenase (RubisCO), to promote the carboxylase reaction and suppress the oxygenase reaction. In cyanobacteria and some proteobacteria, this is achieved by encapsulation of RubisCO within carboxysomes, which are examples of a group of proteinaceous bodies called bacterial microcompartments. Carboxysomes encapsulate the CO2-fixing enzyme within the selectively permeable protein shell and simultaneously encapsulate a carbonic anhydrase enzyme for CO2 supply from a cytoplasmic bicarbonate pool. These bodies appear to have arisen twice and undergone a process of convergent evolution. While the gross structures of all known carboxysomes are ostensibly very similar, with shared gross features such as a selectively permeable shell layer, each type of carboxysome encapsulates a phyletically distinct form of RubisCO enzyme. Furthermore, the specific proteins forming structures such as the protein shell or the inner RubisCO matrix are not identical between carboxysome types. Each type has evolutionarily distinct forms of the same proteins, as well as proteins that are entirely unrelated to one another. In light of recent developments in the study of carboxysome structure and function, we present this review to summarize the knowledge of the structure and function of both types of carboxysome. We also endeavor to cast light on differing evolutionary trajectories which may have led to the differences observed in extant carboxysomes.

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Surface and Interface Control in Nanoparticle Catalysis.

TL;DR: This Review presents the surface and interface control of nanoparticle catalysts in the context of oxygen reduction reaction (ORR), electrochemical CO2 reduction Reaction (CO2 RR), and tandem catalysis in three sections.
Journal ArticleDOI

Diverse Bacterial Microcompartment Organelles

TL;DR: The growing understanding of MCPs is providing a basis for bioengineering of protein-based containers for the production of chemicals/pharmaceuticals and for use as molecular delivery vehicles.
Journal ArticleDOI

Assembly, function and evolution of cyanobacterial carboxysomes.

TL;DR: Alpha and beta carboxysomes are not only distinct units of evolution, but are now emerging as genetic/metabolic modules for synthetic biology; heterologous expression and redesign of both the shell and the enzymatic core have recently been achieved.
Journal ArticleDOI

Carboxysome encapsulation of the CO 2 -fixing enzyme Rubisco in tobacco chloroplasts

TL;DR: This work successfully produces simplified carboxysomes, isometric with those of the source organism Cyanobium, within tobacco chloroplasts, which encapsulate the introduced Rubisco and enable autotrophic growth at elevated CO2.
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Intracellular Ca-carbonate biomineralization is widespread in cyanobacteria

TL;DR: It is discovered that diverse unicellular cyanobacterial taxa form intracellular amorphous Ca-carbonates with at least two different distribution patterns, suggesting the existence of at leastTwo distinct mechanisms of biomineralization.
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