PubMed Health⌕ Search

PubMed · 7695101

A general method for plasma membrane isolation by colloidal gold density shift.

Abstract

A general method for isolating plasma membranes is described. Vegetative amoebae of Dictyostelium discoideum were allowed to directly adsorb raw colloidal gold of particle diameter 10-20 nm. After quenching the gold surface, the cells were lysed and the lysates were diluted in 60% sucrose and centrifuged through a 65% sucrose cushion to selectively pellet the gold-laden membranes. Three generally applicable exogenous cell surface markers were used to follow the plasma membranes: intercalated [3H]cholesterol, octadecylrhodamine, and the adsorbed gold colloid itself. The isolates routinely contained approximately 60% of these tags, enriched approximately 15-fold with respect to protein. The recovery and degree of enrichment of contaminating markers in the plasma membrane fraction were lysosomes (3% and 1-fold); mitochondria (11% and 3-fold); rough endoplasmic reticulum, as reflected by RNA (3% and 0.7-fold); and DNA (9% and 4-fold). Membrane proteins and lipids were quantitatively solubilized from the gold by detergents. We conclude that this methodology provides an approach to the isolation of plasma membranes which compares favorably to existing techniques with respect to yield, purity, and ease.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

T L Steck, M Lavasa. 1994-11-15. A general method for plasma membrane isolation by colloidal gold density shift.. https://doi.org/10.1006/abio.1994.1544

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Time-resolved transcriptomics of S. cerevisiae and S. pastorianus in response to plasma membrane stresses.

Yeasts are beneficial microorganisms for human society and are utilized for academic and industrial purposes. For academic purposes, S. cerevisiae is a well-investigated model for studying eukaryotic cellular processes. For industrial purposes, S. pastorianus, which has a hybrid genome of S. cerevisiae and S. eubayanus, has been served for lager beer production. During fermentation, S. pastorianus produces ~7% of EtOH, which induces plasma membrane (PM)/cell wall stress in yeast. Therefore, S. pastorianus may experience PM stress and adapt to the self-forming environment during fermentation. However, how yeast adapts to PM stress remains unclear. Here, we investigated the temporal cellular responses of S. cerevisiae and S. pastorianus during adaptation to PM stresses by time-resolved mRNA-seq analysis. Our data showed different transcriptional phenotypes between S. cerevisiae and S. pastorianus during adaptation. The results may reflect the distinct nature of the two yeasts that have evolved in different nutritional environments. The dataset presented here would provide a promising resource for studying the characteristic nature of these differentially domesticated yeasts upon PM stresses.

Cell Membrane↗

Use of SDS micelles to stabilize a ternary intermediate in the reaction of ferrioxamine B and 1,10-phenanthroline.

Spectrophotometric measurements of the reaction of ferrioxamine B (FeHDFB(+)) with 1,10-phenanthroline (phen) reveal the presence of a ternary intermediate complex in both aqueous solution and an aqueous solution of 0.16 M sodium dodecyl sulfate (SDS). The stoichiometry of the intermediate is Fe(H(2)DFB)(phen)(2+) on the basis of a Schwarzenbach analysis of spectrophotometric data obtained at variable pH and phen concentrations. The ternary complex formation constant for the reaction FeHDFB(+) + H(+) + phen right arrow over left arrow Fe(H(2)DFB)(phen)(2+) is log K = 6.96 in aqueous solution and log K = 8.64 in aqueous 0.16 M SDS. The enhanced stability of Fe(H(2)DFB)(phen)(2+) in micellar solution was analyzed in terms of the pseudophase ion-exchange (PPIE) model of micellar reactions. The association constants for the binding of each reactant to the micellar pseudophase were measured by ultrafiltration. According to PPIE model calculations, the enhanced stability of Fe(H(2)DFB)(phen)(2+) in micellar SDS arises from a proximity effect created by the high local concentrations of reactants in the micellar pseudophase. The calculations also indicate that an inhibitory medium or compartmentalization effect is operative since the observed micellar enhancement is much smaller than predicted by the PPIE model. The micellar stabilization of the Fe(H(2)DFB)(phen)(2+) intermediate and the overall conversion of FeHDFB(+) to Fe(phen)(3)(2+) are discussed as a possible model system for siderophore iron release in microbial organisms.

Cell Membrane↗

Lipid modification of the Cu,Zn superoxide dismutase from Mycobacterium tuberculosis.

The leader sequence of Mycobacterium tuberculosis Cu,Zn superoxide dismutase (Cu,ZnSOD) contains a prokaryotic membrane lipoprotein attachment site. In the present study, we have found that the protein, which exhibits detectable SOD activity, is lipid-modified and associated with the bacterial membrane when expressed either in M. tuberculosis or in Escherichia coli. These results provide the first demonstration of lipid modification of a Cu,ZnSOD. An analysis of the sodC genes present in available databases indicates that the same signal for lipid modification is also present in the sodC gene products from other mycobacteria and Gram-positive bacteria and, uniquely, in two distinct sodC gene products from the Gram-negative bacterium Salmonella typhimurium. Evidence is also provided for an up-regulation of M. tuberculosis sodC in response to phagocytosis by human macrophages, suggesting that Cu,ZnSOD is involved in the mechanisms that facilitate mycobacterial intracellular growth.

Cell Membrane↗