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Published on: February 3, 2017
ALS-FTLD-linked mutations of SQSTM1/p62 disrupt selective autophagy and NFE2L2/NRF2 anti-oxidative stress pathway
Zhiqiang Deng1,2,3, Junghyun Lim1,4, Qian Wang1
1Department of Neurology, The Friedman Brain Institute, Icahn School of Medicine at Mount Sinai, New York, NY, USA.
Abstract:
Macroautophagy (autophagy) is a key catabolic pathway for the maintenance of proteostasis through constant digestion of selective cargoes. The selectivity of autophagy is mediated by autophagy receptors that recognize and recruit cargoes to autophagosomes. SQSTM1/p62 is a prototype autophagy receptor, which is commonly found in protein aggregates associated with major neurodegenerative diseases. While accumulation of SQSTM1 implicates a disturbance of selective autophagy pathway, the pathogenic mechanism that contributes to impaired autophagy degradation remains poorly characterized. Herein we show that amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD)-linked mutations of TBK1 and SQSTM1 disrupt selective autophagy and cause neurotoxicity. Our data demonstrates that proteotoxic stress activates serine/threonine kinase TBK1, which coordinates with autophagy kinase ULK1 to promote concerted phosphorylation of autophagy receptor SQSTM1 at the UBA domain and activation of selective autophagy. In contrast, ALS-FTLD-linked mutations of TBK1 or SQSTM1 reduce SQSTM1 phosphorylation and compromise ubiquitinated cargo binding and clearance. Moreover, disease mutation SQSTM1G427R abolishes phosphorylation of Ser351 and impairs KEAP1-SQSTM1 interaction, thus diminishing NFE2L2/Nrf2-targeted gene expression and increasing TARDBP/TDP-43 associated stress granule formation under oxidative stress. Furthermore, expression of SQSTM1G427R in neurons impairs dendrite morphology and KEAP1-NFE2L2 signaling. Therefore, our results reveal a mechanism whereby pathogenic SQSTM1 mutants inhibit selective autophagy and disrupt NFE2L2 anti-oxidative stress response underlying the neurotoxicity in ALS-FTLD.Abbreviations: ALS: amyotrophic lateral sclerosis; FTLD: frontotemporal lobar degeneration; G3BP1: GTPase-activating protein (SH3 domain) binding protein 1; GSTM1: glutathione S-transferase, mu 1; HMOX/HO-1: Heme oxygenase 1; IP: immunoprecipitation; KEAP1: kelch-like ECH associated protein 1; KI: kinase inactive; KIR: KEAP1 interaction region; KO: knockout; MAP1LC3/LC3: microtubule-associated protein 1 light chain 3; MBP: maltose binding protein; NBR1: NBR1, autophagy cargo receptor; NFE2L2/Nrf2: nuclear factor, erythroid derived 2, like 2; NQO1: NAD(P)H quinone dehydrogenase 1; SQSTM1/p62: sequestosome 1; SOD1: superoxide dismutase 1, soluble; S.S.: serum starvation; TARDBP/TDP-43: TAR DNA binding protein; TBK1: TANK binding kinase 1; UBA: ubiquitin association; ULK1: unc-51 like autophagy activating kinase 1; WT: wild type.
Insights
Mutations in TBK1 and SQSTM1 disrupt selective autophagy, impairing neuroprotective pathways and leading to neurotoxicity in amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD). This study reveals a novel mechanism of disease pathogenesis.
Area of Science:
- Cell Biology
- Neuroscience
- Molecular Biology
Background:
- Macroautophagy (autophagy) maintains proteostasis by degrading cellular components via selective receptors.
- SQSTM1/p62 is a key autophagy receptor implicated in neurodegenerative diseases due to its presence in protein aggregates.
- Pathogenic mechanisms of impaired autophagy in diseases like ALS and FTLD remain poorly understood.
Purpose of the Study:
- To investigate how mutations in TBK1 and SQSTM1 affect selective autophagy and contribute to neurotoxicity.
- To elucidate the role of TBK1-mediated SQSTM1 phosphorylation in regulating autophagy and cellular stress responses.
- To determine the impact of disease-associated SQSTM1 mutations on neuronal function and anti-oxidative pathways.
Main Methods:
- Analysis of TBK1 and SQSTM1 mutations in cellular models of ALS and FTLD.
- Investigated the phosphorylation status of SQSTM1 and its interaction with KEAP1.
- Assessed the impact of mutations on selective autophagy, NFE2L2/Nrf2 signaling, and neuronal morphology.
Main Results:
- ALS- and FTLD-linked mutations in TBK1 and SQSTM1 disrupt selective autophagy by compromising SQSTM1 phosphorylation and cargo binding.
- The SQSTM1 G427R mutation impairs KEAP1-SQSTM1 interaction, reducing NFE2L2/Nrf2-mediated gene expression and increasing TDP-43 stress granules.
- Expression of mutant SQSTM1 in neurons leads to impaired dendrite morphology and compromised KEAP1-NFE2L2 signaling.
Conclusions:
- Pathogenic mutations in SQSTM1 inhibit selective autophagy and disrupt the NFE2L2 anti-oxidative stress response, contributing to neurotoxicity in ALS and FTLD.
- TBK1-mediated phosphorylation of SQSTM1 is crucial for activating selective autophagy and maintaining cellular homeostasis under proteotoxic stress.
- These findings reveal a novel molecular mechanism underlying neurodegeneration in ALS and FTLD linked to impaired autophagy and oxidative stress response.
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