Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

A network of coiled-coil and actin-like proteins controls the cellular organization of magnetosome organelles in deep-branching magnetotactic bacteria

View through CrossRef
Abstract Magnetotactic Bacteria (MTB) are a diverse group of microorganisms that use magnetosomes, organelles composed of magnetite or greigite, to navigate along geomagnetic fields. While MTB span several phyla and exhibit diverse phenotypes, magnetosome formation has been mechanistically studied in only two species of Alphaproteobacteria . Here, we use Desulfovibrio magneticus RS-1 to uncover the mechanisms behind tooth-shaped magnetosome assembly in deep-branching MTB. Our findings show that magnetic particles in RS-1 initially form randomly within the cell before localizing to the positive cell curvature. Genetic and proteomic analyses indicate that early biomineralization involves membrane-associated proteins found in all MTB, while later stages depend on coiled-coil (Mad20, 23, 25, and 26) and actin-like (MamK and Mad28) proteins, most of which are unique to deep-branching MTB. These findings suggest that while biomineralization originates from a common ancestor, magnetosome chain organization has distinct evolutionarily origins among different MTB lineages.
Title: A network of coiled-coil and actin-like proteins controls the cellular organization of magnetosome organelles in deep-branching magnetotactic bacteria
Description:
Abstract Magnetotactic Bacteria (MTB) are a diverse group of microorganisms that use magnetosomes, organelles composed of magnetite or greigite, to navigate along geomagnetic fields.
While MTB span several phyla and exhibit diverse phenotypes, magnetosome formation has been mechanistically studied in only two species of Alphaproteobacteria .
Here, we use Desulfovibrio magneticus RS-1 to uncover the mechanisms behind tooth-shaped magnetosome assembly in deep-branching MTB.
Our findings show that magnetic particles in RS-1 initially form randomly within the cell before localizing to the positive cell curvature.
Genetic and proteomic analyses indicate that early biomineralization involves membrane-associated proteins found in all MTB, while later stages depend on coiled-coil (Mad20, 23, 25, and 26) and actin-like (MamK and Mad28) proteins, most of which are unique to deep-branching MTB.
These findings suggest that while biomineralization originates from a common ancestor, magnetosome chain organization has distinct evolutionarily origins among different MTB lineages.

Related Results

14-3-3 Negatively Regulates Actin Filament Formation in the Deep Branching EukaryoteGiardia lamblia
14-3-3 Negatively Regulates Actin Filament Formation in the Deep Branching EukaryoteGiardia lamblia
AbstractThe phosphoserine/phosphothreonine-binding protein 14-3-3 is known to regulate actin, this function has been previously attributed to sequestration of phosphorylated cofili...
Identification of Actin Filament Interactors in Giardia lamblia
Identification of Actin Filament Interactors in Giardia lamblia
Abstract The deep-branching protozoan parasite Giardia lamblia is the causative agent of the intestinal disea...
Detection and Characterization of Magnetosome Chains In Magnetotactic Bacteria
Detection and Characterization of Magnetosome Chains In Magnetotactic Bacteria
Abstract Aim Magnetotactic bacteria are gram-negative, prokaryotic organisms which align themselves according to the Earth’s ge...
Interaction between distinct actin pools controls activity-dependent actin dynamics in the dendritic spine
Interaction between distinct actin pools controls activity-dependent actin dynamics in the dendritic spine
Abstract Actin cytoskeleton is composed of functionally distinct pools of filamentous (F)-actin defined by their regulatory machinery and dynamic...
Coiled Coil Peptide Tiles (CCPTs): Multivalent Peptide Macrocycles for Expanding the Coiled Coil Assembly Toolkit
Coiled Coil Peptide Tiles (CCPTs): Multivalent Peptide Macrocycles for Expanding the Coiled Coil Assembly Toolkit
As one of the most well-understood protein folds, coiled coils represent an attractive assembly directing motif for engineering modular and responsive bionanomaterials. Here, we ex...
Cracked actin filaments as mechanosensitive receptors
Cracked actin filaments as mechanosensitive receptors
ABSTRACT Actin filament networks are exposed to mechanical stimuli, but the effect of strain on actin filament structure has not been well-established in molecular ...
Novel regulation and function of the actin bundling protein Fascin
Novel regulation and function of the actin bundling protein Fascin
<p>The parallel actin filament bundling protein Fascin is a critical protein in both disease and development. Overexpression of Fascin is linked to increased aggressiveness i...
Actin visualization at a glance
Actin visualization at a glance
ABSTRACT Actin functions in a multitude of cellular processes owing to its ability to polymerize into filaments, which can be further organized into higher-order str...

Back to Top