Mitochondrial proteolytic stress induced by loss of mortalin function is rescued by Parkin and PINK1
L F Burbulla1, J C Fitzgerald1, K Stegen2
11] German Center for Neurodegenerative Diseases, Tübingen, Germany [2] Department of Neurodegenerative Diseases and Hertie-Institute for Clinical Brain Research, University of Tübingen, Tübingen, Germany.
Abstract:
The mitochondrial chaperone mortalin was implicated in Parkinson's disease (PD) because of its reduced levels in the brains of PD patients and disease-associated rare genetic variants that failed to rescue impaired mitochondrial integrity in cellular knockdown models. To uncover the molecular mechanisms underlying mortalin-related neurodegeneration, we dissected the cellular surveillance mechanisms related to mitochondrial quality control, defined the effects of reduced mortalin function at the molecular and cellular levels and investigated the functional interaction of mortalin with Parkin and PINK1, two PD-related proteins involved in mitochondrial homeostasis. We found that reduced mortalin function leads to: (1) activation of the mitochondrial unfolded protein response (UPR(mt)), (2) increased susceptibility towards intramitochondrial proteolytic stress, (3) increased autophagic degradation of fragmented mitochondria and (4) reduced mitochondrial mass in human cells in vitro and ex vivo. These alterations caused increased vulnerability toward apoptotic cell death. Proteotoxic perturbations induced by either partial loss of mortalin or chemical induction were rescued by complementation with native mortalin, but not disease-associated mortalin variants, and were independent of the integrity of autophagic pathways. However, Parkin and PINK1 rescued loss of mortalin phenotypes via increased lysosomal-mediated mitochondrial clearance and required intact autophagic machinery. Our results on loss of mortalin function reveal a direct link between impaired mitochondrial proteostasis, UPR(mt) and PD and show that effective removal of dysfunctional mitochondria via either genetic (PINK1 and Parkin overexpression) or pharmacological intervention (rapamycin) may compensate mitochondrial phenotypes.
Insights
Reduced mortalin function in Parkinson's disease (PD) activates mitochondrial stress responses and apoptosis. Restoring mortalin or enhancing mitochondrial clearance pathways may offer therapeutic benefits for PD.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Mortalin, a mitochondrial chaperone, is linked to Parkinson's disease (PD) due to reduced brain levels and disease-associated variants.
- Impaired mitochondrial integrity and function are hallmarks of neurodegenerative diseases like PD.
Purpose of the Study:
- Investigate molecular mechanisms of mortalin-related neurodegeneration in PD.
- Define cellular effects of reduced mortalin function.
- Explore mortalin's interaction with PD-related proteins Parkin and PINK1.
Main Methods:
- Dissected cellular surveillance mechanisms for mitochondrial quality control.
- Assessed molecular and cellular effects of reduced mortalin function.
- Studied mortalin interaction with Parkin and PINK1 in human cells (in vitro and ex vivo).
Main Results:
- Reduced mortalin function activated the mitochondrial unfolded protein response (UPR(mt)).
- This led to increased susceptibility to proteolytic stress, autophagic degradation of mitochondria, and reduced mitochondrial mass.
- Parkin and PINK1 rescued mortalin loss phenotypes via lysosomal clearance, requiring intact autophagy.
Conclusions:
- Loss of mortalin function directly links impaired mitochondrial proteostasis and UPR(mt) to PD pathogenesis.
- Enhancing mitochondrial clearance through genetic (PINK1, Parkin) or pharmacological (rapamycin) means may compensate for mitochondrial dysfunction in PD.
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