Live imaging of intra-lysosome pH in cell lines and primary neuronal culture using a novel genetically encoded biosensor

Autor(en): Ponsford, Amy H.
Ryan, Thomas A.
Raimondi, Andrea
Cocucci, Emanuele
Wycislo, Susanne A.
Froehlich, Florian 
Swan, Laura E.
Stagi, Massimiliano
Stichwörter: ACIDIFICATION; ATPASE; Cell Biology; CHLOROQUINE; DENDRITIC CELLS; DISEASE; fluorescence microscopy; lysosomes; MITOCHONDRIAL-FUNCTION; MTOR protein; MTORC1; pH; PROTEIN; RECEPTOR; TRPM2; V-type ATPase
Erscheinungsdatum: 2021
Herausgeber: TAYLOR & FRANCIS INC
Journal: AUTOPHAGY
Volumen: 17
Ausgabe: 6
Startseite: 1500
Seitenende: 1518
Zusammenfassung: 
Disorders of lysosomal physiology have increasingly been found to underlie the pathology of a rapidly growing cast of neurodevelopmental disorders and sporadic diseases of aging. One cardinal aspect of lysosomal (dys)function is lysosomal acidification in which defects trigger lysosomal stress signaling and defects in proteolytic capacity. We have developed a genetically encoded ratiometric probe to measure lysosomal pH coupled with a purification tag to efficiently purify lysosomes for both proteomic andin vitroevaluation of their function. Using our probe, we showed that lysosomal pH is remarkably stable over a period of days in a variety of cell types. Additionally, this probe can be used to determine that lysosomal stress signalingviaTFEB is uncoupled from gross changes in lysosomal pH. Finally, we demonstrated that while overexpression of ARL8B GTPase causes striking alkalinization of peripheral lysosomes in HEK293 T cells, peripheral lysosomesper seare no less acidic than juxtanuclear lysosomes in our cell lines.
ISSN: 15548627
DOI: 10.1080/15548627.2020.1771858

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