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Singh, P. J.

Publications and source records attributed to Singh, P. J..

2 recordsLinked to original sources

Rab11-exosome biogenesis regulators mediate Aβ-induced intercellular propagation of endolysosomal trafficking defects and neurodegeneration

Alzheimer's Disease (AD) is characterised by two histopathological hallmarks, intracellular tau-containing neurofibrillary tangles and extracellular amyloid plaques containing {beta}-amyloid (A{beta}), a specific cleavage product of Amyloid Precursor Protein (APP). Initiation of A{beta}-induced neuronal pathology, however, has been postulated to involve intracellular events affecting endolysosomal trafficking that can propagate between cells. Recent studies in non-neuronal Drosophila secondary cells (SCs) have revealed that A{beta} interferes with APP-regulated protein aggregation events, which package signalling molecules into insoluble dense-core granules (DCGs) during normal regulated secretion, inducing endolysosomal defects that are transferred to other cells. Here, using SCs, we show that knockdown of the gene encoding accessory ESCRT-III protein Chmp5, which selectively regulates the formation of intraluminal vesicles (ILVs) inside SC DCG compartments that are subsequently released as Rab11-exosomes, inhibits propagation of A{beta}-induced endolysosomal trafficking defects. Furthermore, knocking down Chmp5 or other accessory ESCRT-III genes also suppresses A{beta}-induced, neurodegeneration-dependent morphological defects in the Drosophila eye. We conclude that genes controlling the Rab11-exosome biogenesis pathway play a key role in both A{beta}-induced endolysosomal trafficking defects associated with aberrant regulated secretion and cellular events leading to neurodegeneration. Our findings indicate these processes are linked and may suggest new target pathways for future development of AD therapeutics.

neuroscience↗

APP and β-amyloid modulate protein aggregation and dissociation from recycling endosomal and exosomal membranes

Secretory proteins frequently aggregate into non-soluble dense-core granules (DCGs) in recycling endosome-like compartments prior to release. By contrast, aberrantly processed A{beta}-peptides derived from Amyloid Precursor Protein (APP) form pathological amyloidogenic aggregations in late-stage Alzheimers Disease (AD) after secretion. By examining living Drosophila prostate-like secondary cells, we show both APP and A{beta}-peptides affect normal DCG biogenesis. These cells generate DCGs and secreted nanovesicles called Rab11-exosomes within enlarged recycling endosomes. The fly APP homologue, APP-like (APPL), associates with Rab11-exosomes and the compartmental limiting membrane, from where its extracellular domain controls protein aggregation. Proteolytic release of this membrane-associated domain permits aggregates to coalesce into a large central DCG. Mutant A{beta}-peptide expression, like Appl loss-of-function, disrupts this assembly step and compartment motility, and increases lysosomal targeting, mirroring pathological events reported in early-stage AD. Our data therefore reveal a physiological role for APP in membrane-dependent protein aggregation, which when disrupted, rapidly triggers AD-relevant intracellular pathologies.

cell biology↗