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Barber, M.

Publications and source records attributed to Barber, M..

2 recordsLinked to original sources

Glucocerebrosidase rescues alpha-synuclein from amyloid formation

Aggregation of the protein -synuclein (Syn) Into amyloid fibrils is associated with Parkinsons disease (PD), a process accelerated by lipids. Recently, the lysosomal protein glucocerebrosidase (GCase) has been identified as a major risk factor in both genetic and sporadic PD. Here, we use solution state NMR to reveal that GCase directly inhibits lipid induced Syn amyloidogenesis. Structurally, we show that the mechanism for this requires competition between lipids and GCase for Syn, binding the N and C termini respectively. The affinity of GCase for the C-terminus of Syn is such that not only does it inhibit lipid induced amyloid formation, but also it destabilizes mature Syn amyloid fibrils. These results reveal a competitive molecular \"tug-of-war\" for Syn termini by GCase and lipid, providing a mechanistic link between the clinically observed links between changes in GCase abundance and Parkinsons disease.

biophysics

MTA proteins act redundantly within the NuRD complex to ensure fidelity of ES cell lineage commitment

Multiprotein chromatin remodelling complexes show remarkable conservation of function amongst metazoans, even though components present in invertebrates are often present as multiple paralogous proteins in vertebrate complexes. In some cases these paralogues specify distinct biochemical and/or functional activities in vertebrate cells. Here we set out to define the biochemical and functional diversity encoded by one such group of proteins within the mammalian Nucleosome Remodelling and Deacetylation (NuRD) complex: Mta1, Mta2 and Mta3. We find that, in contrast to what has been described in somatic cells, MTA proteins are not mutually exclusive within ES cell NuRD and, despite subtle differences in chromatin binding and biochemical interactions, serve largely redundant functions. Nevertheless, ES cells lacking all three MTA proteins represent a complete NuRD null and are viable, allowing us to identify a previously undetected function for NuRD in maintaining differentiation trajectory during early stages of lineage commitment.

developmental biology