15 research outputs found
A saposin-lipoprotein nanoparticle system for membrane proteins.
A limiting factor in membrane protein research is the ability to solubilize and stabilize such proteins. Detergents are used most often for solubilizing membrane proteins, but they are associated with protein instability and poor compatibility with structural and biophysical studies. Here we present a saposin-lipoprotein nanoparticle system, Salipro, which allows for the reconstitution of membrane proteins in a lipid environment that is stabilized by a scaffold of saposin proteins. We demonstrate the applicability of the method on two purified membrane protein complexes as well as by the direct solubilization and nanoparticle incorporation of a viral membrane protein complex from the virus membrane. Our approach facilitated high-resolution structural studies of the bacterial peptide transporter PeptTSo2 by single-particle cryo-electron microscopy (cryo-EM) and allowed us to stabilize the HIV envelope glycoprotein in a functional state
Parallel Structural Evolution of Mitochondrial Ribosomes and OXPHOS Complexes
The five macromolecular complexes that jointly mediate oxidative
phosphorylation (OXPHOS) in mitochondria consist of many more subunits than
those of bacteria, yet, it remains unclear by which evolutionary mechanism(s)
these novel subunits were recruited. Even less well understood is the
structural evolution of mitochondrial ribosomes (mitoribosomes): while it was
long thought that their exceptionally high protein content would physically
compensate for their uniquely low amount of ribosomal RNA (rRNA), this
hypothesis has been refuted by structural studies. Here, we present a cryo-
electron microscopy structure of the 73S mitoribosome from Neurospora crassa,
together with genomic and proteomic analyses of mitoribosome composition
across the eukaryotic domain. Surprisingly, our findings reveal that both
structurally and compositionally, mitoribosomes have evolved very similarly to
mitochondrial OXPHOS complexes via two distinct phases: A constructive phase
that mainly acted early in eukaryote evolution, resulting in the recruitment
of altogether approximately 75 novel subunits, and a reductive phase that
acted during metazoan evolution, resulting in gradual length-reduction of
mitochondrially encoded rRNAs and OXPHOS proteins. Both phases can be well
explained by the accumulation of (slightly) deleterious mutations and
deletions, respectively, in mitochondrially encoded rRNAs and OXPHOS proteins.
We argue that the main role of the newly recruited (nuclear encoded)
ribosomal- and OXPHOS proteins is to provide structural compensation to the
mutationally destabilized mitochondrially encoded components. While the newly
recruited proteins probably provide a selective advantage owing to their
compensatory nature, and while their presence may have opened evolutionary
pathways toward novel mitochondrion-specific functions, we emphasize that the
initial events that resulted in their recruitment was nonadaptive in nature.
Our framework is supported by population genetic studies, and it can explain
the complete structural evolution of mitochondrial ribosomes and OXPHOS
complexes, as well as many observed functions of individual proteins
SecM-Stalled Ribosomes Adopt an Altered Geometry at the Peptidyl Transferase Center
A structure of a ribosome stalled during translation of the SecM peptide provides insight into the mechanism by which the large subunit active site is inactivated
DirectMX – One-Step Reconstitution of Membrane Proteins From Crude Cell Membranes Into Salipro Nanoparticles
Integral membrane proteins (IMPs) are central to many physiological processes and represent ∼60% of current drug targets. An intricate interplay with the lipid molecules in the cell membrane is known to influence the stability, structure and function of IMPs. Detergents are commonly used to solubilize and extract IMPs from cell membranes. However, due to the loss of the lipid environment, IMPs usually tend to be unstable and lose function in the continuous presence of detergent. To overcome this problem, various technologies have been developed, including protein engineering by mutagenesis to improve IMP stability, as well as methods to reconstitute IMPs into detergent-free entities, such as nanodiscs based on apolipoprotein A or its membrane scaffold protein (MSP) derivatives, amphipols, and styrene-maleic acid copolymer-lipid particles (SMALPs). Although significant progress has been made in this field, working with inherently unstable human IMP targets (e.g., GPCRs, ion channels and transporters) remains a challenging task. Here, we present a novel methodology, termed DirectMX (for direct membrane extraction), taking advantage of the saposin-lipoprotein (Salipro) nanoparticle technology to reconstitute fragile IMPs directly from human crude cell membranes. We demonstrate the applicability of the DirectMX methodology by the reconstitution of a human solute carrier transporter and a wild-type GPCR belonging to the human chemokine receptor (CKR) family. We envision that DirectMX bears the potential to enable studies of IMPs that so far remained inaccessible to other solubilization, stabilization or reconstitution methods.QC 20211008</p
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A saposin-lipoprotein nanoparticle system for membrane proteins.
A limiting factor in membrane protein research is the ability to solubilize and stabilize such proteins. Detergents are used most often for solubilizing membrane proteins, but they are associated with protein instability and poor compatibility with structural and biophysical studies. Here we present a saposin-lipoprotein nanoparticle system, Salipro, which allows for the reconstitution of membrane proteins in a lipid environment that is stabilized by a scaffold of saposin proteins. We demonstrate the applicability of the method on two purified membrane protein complexes as well as by the direct solubilization and nanoparticle incorporation of a viral membrane protein complex from the virus membrane. Our approach facilitated high-resolution structural studies of the bacterial peptide transporter PeptTSo2 by single-particle cryo-electron microscopy (cryo-EM) and allowed us to stabilize the HIV envelope glycoprotein in a functional state
Multivalence and spot heterogeneity in microarray-based measurement of binding constants.
Item does not contain fulltextMicroarray technology is increasingly used for a miniaturised and parallel measurement of binding constants. In microarray experiments heterogeneous functionalization of surfaces with capture molecules is a problem commonly encountered. For multivalent ligands, especially, however, binding is strongly affected by receptor density. Here we show that high-resolution imaging of microarrays followed by image segmentation and separate analysis of bright and dark parts provides valuable information about ligand binding. Binding titrations were conducted with monovalent and bivalent fluorescent ligand peptides for the model receptor vancomycin. Microarrays were scanned with a confocal microscope and inhomogeneous spots were evaluated either as a whole or after segmentation into bright and dark areas. Whereas the binding constant for the monovalent ligand was hardly affected by spot heterogeneity, for the bivalent ligand affinity was higher for the parts of the spots with a greater density of receptors. This information was lost if the spots were analysed as a whole. These results reveal that imaging resolution may be a key factor in miniaturised binding assays, emphasising the importance of high-resolution images and image segmentation for new techniques, for example SPR imaging