Quantitative intravital imaging in zebrafish reveals in vivo dynamics of physiological-stress-induced mitophagy

Mitophagy, the selective recycling of mitochondria through autophagy, is a crucial metabolic process induced by cellular stress, and defects are linked to aging, sarcopenia and neurodegenerative diseases. To therapeutically target mitophagy, the fundamental dynamics and molecular mechanisms must be...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Journal of cell science 2021-02, Vol.134 (4)
Hauptverfasser: Wrighton, Paul J, Shwartz, Arkadi, Heo, Jin-Mi, Quenzer, Eleanor D, LaBella, Kyle A, Harper, J Wade, Goessling, Wolfram
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:Mitophagy, the selective recycling of mitochondria through autophagy, is a crucial metabolic process induced by cellular stress, and defects are linked to aging, sarcopenia and neurodegenerative diseases. To therapeutically target mitophagy, the fundamental dynamics and molecular mechanisms must be fully understood. Here, we generated mitophagy biosensor zebrafish lines expressing mitochondrially targeted, pH-sensitive fluorescent probes, mito-Keima and mito-EGFP-mCherry, and used quantitative intravital imaging to illuminate mitophagy during physiological stresses, namely, embryonic development, fasting and hypoxia. In fasted muscle, volumetric mitolysosome size analyses documented organelle stress response dynamics, and time-lapse imaging revealed that mitochondrial filaments undergo piecemeal fragmentation and recycling rather than the wholesale turnover observed in cultured cells. Hypoxia-inducible factor (Hif) pathway activation through physiological hypoxia or chemical or genetic modulation also provoked mitophagy. Intriguingly, mutation of a single mitophagy receptor ( ) prevented this effect, whereas disruption of other putative hypoxia-associated mitophagy genes [ ( ), , or (Parkin)] had no effect. This imaging study establishes fundamental dynamics of fasting-induced mitophagy and identifies as the master regulator of Hif-induced mitophagy in vertebrate muscle.
ISSN:0021-9533
1477-9137
DOI:10.1242/jcs.256255