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Rimon, O.

Publications and source records attributed to Rimon, O..

2 recordsLinked to original sources

Targeted protein editing with an antibody-based system

The chemical modification of proteins is one of the major mechanisms used to regulate the properties and functions of these macromolecules in the cell. It is therefore of great interest to develop tools to exploit this type of modifications for applications in molecular biology, medicine and biotechnology. Here we present a method of using antibodies to perform post-translational covalent modifications of endogenous proteins in complex environments by exploiting proximity-driven chemistry. The method is based on the ability of antibodies to hold a weakly reactive group close to its intended site of reaction by binding the target protein on a nearby epitope. We characterise this approach by modifying the green fluorescent protein in increasingly complex environments, and illustrate its applicability by targeting the disease-associated protein beta-2 microglobulin.

biochemistry↗

A Kinetic Map of the Influence of Biomimetic Lipid Membrane Models on Aβ42 Aggregation

The aggregation of the amyloid {beta} peptide (A{beta}) is one of the major molecular hallmarks of Alzheimers disease. Although A{beta} deposits have been mostly observed extracellularly, various studies have reported the presence of also intracellular A{beta} assemblies. Because these intracellular A{beta} aggregates might play a role in the onset and progression of Alzheimers disease, it is important to investigate their possible origins at different locations of the cell along the secretory pathway of the amyloid precursor protein (APP), from which A{beta} is derived by proteolytic cleavage. Since lipid bilayers have been shown to promote the aggregation of A{beta}, in this study we measure the effects of the lipid membrane composition on the in vitro aggregation kinetics of the 42-residue form of A{beta} (A{beta}42). By using small unilamellar vesicles modelling cellular membranes at different locations, including the inner and outer leaflets of the plasma membrane, late endosomes, the endoplasmic reticulum (ER), and the Golgi apparatus, we show that A{beta}42 aggregation is inhibited by the ER and Golgi membranes. These results provide a preliminary map of the possible effects of the membrane composition in different cellular locations on A{beta} aggregation, and suggest the presence of an evolutionary optimization of lipid composition to prevent the intracellular aggregation of A{beta}.

biophysics↗