In vivo imaging reveals mitophagy independence in the maintenance of axonal mitochondria during normal aging.
Xu CaoHaiqiong WangZhao WangQingyao WangShuang ZhangYuanping DengYanshan FangPublished in: Aging cell (2017)
Mitophagy is thought to be a critical mitochondrial quality control mechanism in neurons and has been extensively studied in neurological disorders such as Parkinson's disease. However, little is known about how mitochondria are maintained in the lengthy neuronal axons in the context of physiological aging. Here, we utilized the unique Drosophila wing nerve model and in vivo imaging to rigorously profile changes in axonal mitochondria during aging. We revealed that mitochondria became fragmented and accumulated in aged axons. However, lack of Pink1 or Parkin did not lead to the accumulation of axonal mitochondria or axonal degeneration. Further, unlike in in vitro cultured neurons, we found that mitophagy rarely occurred in intact axons in vivo, even in aged animals. Furthermore, blocking overall mitophagy by knockdown of the core autophagy genes Atg12 or Atg17 had little effect on the turnover of axonal mitochondria or axonal integrity, suggesting that mitophagy is not required for axonal maintenance; this is regardless of whether the mitophagy is PINK1-Parkin dependent or independent. In contrast, downregulation of mitochondrial fission-fusion genes caused age-dependent axonal degeneration. Moreover, Opa1 expression in the fly head was significantly decreased with age, which may underlie the accumulation of fragmented mitochondria in aged axons. Finally, we showed that adult-onset, neuronal downregulation of the fission-fusion, but not mitophagy genes, dramatically accelerated features of aging. We propose that axonal mitochondria are maintained independently of mitophagy and that mitophagy-independent mechanisms such as fission-fusion may be central to the maintenance of axonal mitochondria and neural integrity during normal aging.
Keyphrases
- spinal cord injury
- cell death
- optic nerve
- endoplasmic reticulum
- reactive oxygen species
- nlrp inflammasome
- spinal cord
- high resolution
- oxidative stress
- signaling pathway
- poor prognosis
- cell proliferation
- quality control
- magnetic resonance
- multidrug resistant
- magnetic resonance imaging
- optical coherence tomography
- cerebral ischemia
- endothelial cells
- bone mineral density
- body composition
- photodynamic therapy
- postmenopausal women
- peripheral nerve