Javascript must be enabled to continue!
Transmembrane phospholipid distribution revealed by freeze-fracture replica labeling
View through CrossRef
ABSTRACT
We propose the use of membrane splitting by freezefracture for differential phospholipid analysis of protoplasmic and exoplasmic membrane leaflets (halves). Unfixed cells or tissues are quick-frozen, freeze-fractured, and platinum-carbon (Pt/C) shadowed. The Pt/C replicas are then treated with 2.5% sodium dodecyl sulfate (SDS) to solubilize unfractured membranes and to release cytoplasm or contents. While the detergent dissolves unfractured membranes, it would not extract lipids from split membranes, as their apolar domains are stabilized by their Pt/C replicas. After washing, the Pt/C replicas, along with attached protoplasmic and exoplasmic membrane halves, are processed for immunocytochemical labeling of phospholipids with antibody, followed by electron microscopic observation. Here, we present the application of the SDS-digested freeze-fracture replica labeling (SDS-FRL) technique to the transmembrane distribution of a major membrane phospholipid, phosphatidylcholine (PC), in various cell and intracellular membranes. Immunogold labeling revealed that PC is exclusively localized on the exoplasmic membrane halves of the plasma membranes, and the intracellular membranes of various organelles, e.g. nuclei, mitochondria, endoplasmic reticulum, secretory granules, and disc membranes of photoreceptor cells. One exception to this general scheme was the plasma membrane forming the myelin sheath of neurons and the Ca2+-treated erythrocyte membranes. In these cell membranes, roughly equal amounts of immunogold particles for PC were seen on each outer and inner membrane half, implying a symmetrical transmembrane distribution of PC. Initial screening suggests that the SDS-FRL technique allows in situ analysis of the transmembrane distribution of membrane lipids, and at the same time opens up the possibility of labeling membranes such as intracellular membranes not normally accessible to cytochemical labels without the distortion potentially associated with membrane isolation procedures.
The Company of Biologists
Title: Transmembrane phospholipid distribution revealed by freeze-fracture replica labeling
Description:
ABSTRACT
We propose the use of membrane splitting by freezefracture for differential phospholipid analysis of protoplasmic and exoplasmic membrane leaflets (halves).
Unfixed cells or tissues are quick-frozen, freeze-fractured, and platinum-carbon (Pt/C) shadowed.
The Pt/C replicas are then treated with 2.
5% sodium dodecyl sulfate (SDS) to solubilize unfractured membranes and to release cytoplasm or contents.
While the detergent dissolves unfractured membranes, it would not extract lipids from split membranes, as their apolar domains are stabilized by their Pt/C replicas.
After washing, the Pt/C replicas, along with attached protoplasmic and exoplasmic membrane halves, are processed for immunocytochemical labeling of phospholipids with antibody, followed by electron microscopic observation.
Here, we present the application of the SDS-digested freeze-fracture replica labeling (SDS-FRL) technique to the transmembrane distribution of a major membrane phospholipid, phosphatidylcholine (PC), in various cell and intracellular membranes.
Immunogold labeling revealed that PC is exclusively localized on the exoplasmic membrane halves of the plasma membranes, and the intracellular membranes of various organelles, e.
g.
nuclei, mitochondria, endoplasmic reticulum, secretory granules, and disc membranes of photoreceptor cells.
One exception to this general scheme was the plasma membrane forming the myelin sheath of neurons and the Ca2+-treated erythrocyte membranes.
In these cell membranes, roughly equal amounts of immunogold particles for PC were seen on each outer and inner membrane half, implying a symmetrical transmembrane distribution of PC.
Initial screening suggests that the SDS-FRL technique allows in situ analysis of the transmembrane distribution of membrane lipids, and at the same time opens up the possibility of labeling membranes such as intracellular membranes not normally accessible to cytochemical labels without the distortion potentially associated with membrane isolation procedures.
Related Results
Stochastic Propagation of Discrete Fracture Networks
Stochastic Propagation of Discrete Fracture Networks
This reference is for an abstract only. A full paper was not submitted for this conference.
Abstract
Fractures are ubiquitous st...
Sequential Propagation of Multiple Fractures in Horizontal Wells
Sequential Propagation of Multiple Fractures in Horizontal Wells
ABSTRACT:
Simultaneous fracturing and zipper fracturing of horizontal wells has rapidly evolved to the development of unconventional oil and gas. The fracture int...
Fracture Modelling Using Seismic Based Fracture Intensity Volume, a Case Study in Middle East
Fracture Modelling Using Seismic Based Fracture Intensity Volume, a Case Study in Middle East
Abstract
In this paper, a case study in a fractured carbonate reservoir is presented to demonstrate the approach of fracture modeling using fracture intensity vol...
Experimental Investigation on the Effects of Proppant Migration and Placement on the Conductivity in Rough Fractures
Experimental Investigation on the Effects of Proppant Migration and Placement on the Conductivity in Rough Fractures
ABSTRACT
Proppant conductivity was usually measured under static or designed proppant concentration. The ISO 13503-5 standard provides specific experimental proce...
Blunt Chest Trauma and Chylothorax: A Systematic Review
Blunt Chest Trauma and Chylothorax: A Systematic Review
Abstract
Introduction: Although traumatic chylothorax is predominantly associated with penetrating injuries, instances following blunt trauma, as a rare and challenging condition, ...
Quantifying the Sensitivity of Dielectric Dispersion Data to Fracture Properties in Fractured Rocks
Quantifying the Sensitivity of Dielectric Dispersion Data to Fracture Properties in Fractured Rocks
Evaluation of fluid storage and flow capacity of a fractured rock system needs a comprehensive characterization of all the fracture properties. These properties include the fractur...
3791 Rising burden of pelvic fracture: a need for prompt identification to minimise harm
3791 Rising burden of pelvic fracture: a need for prompt identification to minimise harm
Abstract
Introduction
Pelvic fractures are a common fragility fracture, associated with adverse clinical outcome but ofte...
Proppant Transport
Proppant Transport
Novotny, E.J., Member of SPE-AIME, Exxon Production Research Co.
Abstract
A method is presented for predicting:the transport of ...

