Search bioRxiv⌕ Search

Biology subjects

Kaufman, J. G. G.

Publications and source records attributed to Kaufman, J. G. G..

3 recordsLinked to original sources

RABGAP1 acts as a sensor to facilitate sorting and processing of amyloid precursor protein

A key hallmark of Alzheimers disease (AD) is the accumulation of extracellular amyloid-{beta} plaques in the brains of patients. Amyloid-{beta} is a 40-42 amino acid peptide produced by the proteolytic processing of amyloid precursor protein (APP) by a series of membrane-bound proteases. APP is a type-I transmembrane protein and thus its trafficking to encounter the proteases represents a rate-limiting step in the progression of AD. Although there has been a focused research effort to understand APP processing, its trafficking itinerary and machinery is incompletely understood. To address this we have performed an unbiased interaction screen for interactors of the cytosolic tail of APP. We identified previously characterised APP binders, as well as novel interactors. We have mapped the binding of APP to multiple new machineries, including RABGAP1. We have demonstrated that RAB-GAP1 partially co-localises with APP and directly interacts with a YENPTY motif in the APP cytosolic tail. Depletion or overexpression of RABGAP1 caused mistrafficking and misprocessing of endogenous APP in both human and rodent neurons. Interestingly, this effect was dependent on the GAP activity of RABGAP1, demonstrating that RABGAP1 affects the trafficking of APP by modulating the RAB activity on endosomal subdomains. This novel trafficking mechanism has implications for other NPXY cargoes and also presents a possible therapeutic avenue to explore.

cell biology↗

Cargo selective vesicle tethering: the structural basis for binding of specific cargo proteins by the Golgi tether component TBC1D23

For accurate membrane traffic it is essential that vesicles and other carriers tether and fuse to only the correct compartment. The TGN-localised golgins golgin-97 and golgin-245 capture transport vesicles arriving from endosomes via the protein TBC1D23 that forms a bridge between the golgins and endosome-derived vesicles. The C-terminal domain of TBC1D23 is responsible for vesicle capture, but how it recognises a specific type of vesicle was unclear. A search for binding partners of the C-terminal domain surprisingly revealed direct binding to carboxypeptidase D (CPD) and syntaxin-16, both known cargo proteins of the captured vesicles. Binding is via a TLY-containing sequence present in both proteins. A crystal structure reveals how this "acidic TLY motif" binds to the C-terminal domain of TBC1D23. An acidic TLY motif is also present in the tails of other endosome-to-Golgi cargo, and these also bind TBC1D23. Structure-guided mutations in the C-terminal domain that disrupt motif binding in vitro also block vesicle capture in vivo. Thus, TBC1D23 attached to golgin-97 and golgin-245 captures vesicles by a previously undescribed mechanism: the recognition of a motif shared by cargo proteins carried by the vesicle. One sentence summaryA class of transport vesicle destined for the Golgi is recognized by a tether binding directly to the cargo it is carrying.

cell biology↗

FCHO controls AP2's critical endocytic roles through a PtdIns4,5P2 membrane-dependent switch

Clathrin-mediated endocytosis (CME) is the main mechanism by which mammalian cells control their cell surface proteome. Proper operation of the pivotal CME cargo-adaptor AP2 requires membrane-localised FCHO. Here, live-cell eTIRF-SIM shows that FCHO marks sites of clathrin- coated pit (CCP) initiation, which mature into uniform sized CCPs comprising a central patch of AP2 and clathrin corralled by an FCHO/Eps15 ring. We dissect the network of interactions between the FCHO interdomain-linker and AP2, which concentrates, orients, tethers and partially destabilizes closed AP2 at the plasma membrane. AP2s subsequent membrane deposition drives its opening, which triggers FCHO displacement through steric competition with PtdIns4,5P2, clathrin, cargo and CME accessory factors. FCHO can now relocate toward a CCPs outer edge to engage and activate further AP2s to drive CCP growth/maturation. 125 character summaryFCHO primes AP2 for CCV incorporation, a process that triggers FCHO release to enable activation/recruitment of further AP2s

cell biology↗