| Literature DB >> 30973820 |
Nicolas J Lehrbach1,2, Gary Ruvkun1,2.
Abstract
Unfolded protein responses (UPRs) safeguard cellular function during proteotoxic stress and aging. In a previous paper (Lehrbach and Ruvkun, 2016) we showed that the ER-associated SKN-1A/Nrf1 transcription factor activates proteasome subunit expression in response to proteasome dysfunction, but it was not established whether SKN-1A/Nrf1 adjusts proteasome capacity in response to other proteotoxic insults. Here, we reveal that misfolded endogenous proteins and the human amyloid beta peptide trigger activation of proteasome subunit expression by SKN-1A/Nrf1. SKN-1A activation is protective against age-dependent defects caused by accumulation of misfolded and aggregation-prone proteins. In a C. elegans Alzheimer's disease model, SKN-1A/Nrf1 slows accumulation of the amyloid beta peptide and delays adult-onset cellular dysfunction. Our results indicate that SKN-1A surveys cellular protein folding and adjusts proteasome capacity to meet the demands of protein quality control pathways, revealing a new arm of the cytosolic UPR. This regulatory axis is critical for healthy aging and may be a target for therapeutic modulation of human aging and age-related disease.Entities:
Keywords: C. elegans; NFE2L1; SKN-1; UPR; aging; cell biology; genetics; genomics; proteasome; protein quality control
Year: 2019 PMID: 30973820 PMCID: PMC6459674 DOI: 10.7554/eLife.44425
Source DB: PubMed Journal: Elife ISSN: 2050-084X Impact factor: 8.140
Protesome subunit mutants.
| genotype | allele effect | Viability at 20ºC | Viability | growth on | |
| wild type | + | Yes | Yes | + | |
| G82R | Yes | No (Ste) | lost | Lva | |
| C90Y | Yes | Yes | lost | Lva | |
| G93E | Yes | Yes | lost | Lva | |
| D97N | Yes | ND | lost | Lva | |
| S180L | Yes | Yes | lost | Lva | |
| M48K | Yes | No (Emb/Lva) | lost | Lva | |
| 3'UTR | Yes | Yes | lost | Lva | |
| promoter* | Yes | Yes | lost* | +* | |
| I302N, P328S | Yes | Yes | lost | Lva | |
| E278K | Yes | No (Ste) | lost | Lva | |
| S519F | Yes | No (Ste) | lost | Lva | |
| G431E | Yes | No (Ste) | lost | Lva | |
| T76I | Yes | No (Emb/Lva) | lost | Lva | |
| G73R | Yes | No (Ste) | lost | Lva | |
| A88V | Yes | No (Ste) | lost | Lva | |
| G357STOP | Yes | No (Emb/Lva) | lost | Lva | |
| G114E | Yes | No (Ste) | lost | Lva | |
| K130STOP | Yes | No (Ste) | lost | Lva | |
| Frameshift | Yes | ND | lost | Lva | |
| Q298STOP | Yes | ND | lost | Lva | |
| E108K | Yes | No (Ste) | lost | Lva |
ND: Not determined.
* Lehrbach and Ruvkun, 2016.
Figure 1—figure supplement 1.Proteasome subunit mutations that activate SKN-1A.
(a) Fluorescence images showing rpt-3p::gfp activation in proteasome subunit mutant strains. Scale bar shows 100 μm. (c) Images showing larval lethality of proteasome subunit mutants on skn-1(RNAi) but not control RNAi. Scale bar shows 1 mm.
Figure 1—figure supplement 2.Fertility defects of proteasome subunit mutant strains.
Sterility of proteasome subunit mutants raised at (a) 20°C and (b) 25°C. At 20°C n = 20–60; at 25°C n = 10. All animals contain the mgIs72 rpt-3p::gfp integrated transgene.
Figure 1.Misfolded proteins activate SKN-1A.
(a, b) Fluorescence images showing rpt-3p::gfp expression in various unc-54 mutants. (c) Temperature dependent paralysis and rpt-3p::gfp effects of unc-54 alleles. (d) Fluorescence images showing rpt-3p::gfp induction in unc-54(mg519) and unc-54(e1301) requires skn-1a. (e) Quantification of rpt-3p::gfp expression in various unc-54 mutants. (f) Fluorescence images showing Aβ expression in muscle increases rpt-3p::gfp fluorescence in wild type but not in skn-1a mutant animals. (g) Quantification of Aβ-induced activation of rpt-3p::gfp in various mutant backgrounds. Panels e and g: ****p<0.0001; ***p<0.001; ns p>0.05. (one-way ANOVA with Tukey’s multiple comparison test), P-value compared to wild type unless otherwise indicated.
(a) Fluorescence images showing rpt-3p::gfp activation in proteasome subunit mutant strains. Scale bar shows 100 μm. (c) Images showing larval lethality of proteasome subunit mutants on skn-1(RNAi) but not control RNAi. Scale bar shows 1 mm.
Sterility of proteasome subunit mutants raised at (a) 20°C and (b) 25°C. At 20°C n = 20–60; at 25°C n = 10. All animals contain the mgIs72 rpt-3p::gfp integrated transgene.
Percentage of adult animals paralyzed at 20°C and 25°C. n > 100 for each strain and condition.
Fluorescence images showing accumulation of SKN-1A[∆DBD]::GFP in muscle cells of unc-54(e1301) and unc-54(mg519) animals. Scale bar shows 10 μm.
(a) Quantification of rpt-3p::gfp expression in hsf-1(sy441) and wild type animals at (a) 20°C. ns p>0.05 (Welch’s t-test) (b) Quantification of rpt-3p::gfp expression 24 hr after upshift to 25°C. rpt-3p::gfp expression is increased in hsf-1(sy441) mutants in a skn-1a-dependent manner. ****p<0.0001; ns p>0.05 (one-way ANOVA with Tukey’s multiple comparisons test). (c) Fluorescence images showing increased rpt-3p::gfp expression in wild type, hsf-1(sy441) and hsf-1(sy441); skn-1a(mg570) double mutant animals 24 hr after upshift to 25°C. Scale bar shows 100 μm.
Figure 1—figure supplement 3.Temperature sensitive paralysis of unc-54 mutants.
Percentage of adult animals paralyzed at 20°C and 25°C. n > 100 for each strain and condition.
Figure 1—figure supplement 4.unc-54ts mutants activate SKN-1A.
Fluorescence images showing accumulation of SKN-1A[∆DBD]::GFP in muscle cells of unc-54(e1301) and unc-54(mg519) animals. Scale bar shows 10 μm.
Figure 1—figure supplement 5.Increased expression of rpt-3p::gfp in hsf-1 mutants.
(a) Quantification of rpt-3p::gfp expression in hsf-1(sy441) and wild type animals at (a) 20°C. ns p>0.05 (Welch’s t-test) (b) Quantification of rpt-3p::gfp expression 24 hr after upshift to 25°C. rpt-3p::gfp expression is increased in hsf-1(sy441) mutants in a skn-1a-dependent manner. ****p<0.0001; ns p>0.05 (one-way ANOVA with Tukey’s multiple comparisons test). (c) Fluorescence images showing increased rpt-3p::gfp expression in wild type, hsf-1(sy441) and hsf-1(sy441); skn-1a(mg570) double mutant animals 24 hr after upshift to 25°C. Scale bar shows 100 μm.
Figure 2.Proteasome impairment in muscle causes cell autonomous activation of SKN-1A.
(a) Fluorescence images showing rpt-3p::gfp expression in animals expressing a dominant negative proteasome subunit in the muscle (myo-3p::pbs-5[T65A]). (b) Quantification of rpt-3p::gfp expression in animals expressing a mutant proteasome subunit in the muscle. ***p<0.001 (Welch’s t-test). (c) Comparison of locomotor rate between wild type and myo-3p::pbs-5[T65A] transgenic animals. (d) Comparison of locomotor rate between wild type and skn-1a mutant animals carrying the myo-3p::pbs-5[T65A] transgene on day 1 of adulthood.
Figure 3.Proteasome function is not impaired in animals expressing misfolded proteins.
(a) Fluorescence micrographs showing impairment of UB(G76V)::GFP degradation in various genotypes. Arrows indicate UB(G76V)::GFP accumulation in muscle cells. (b) Comparison of UB(G76V)::GFP stabilization in muscles of animals carrying various SKN-1A-activating transgenes or mutations. *The skn-1a mutation used in the pbs-5[T65A] strain is mg674, which is an identical CRISPR-induced lesion to mg570. All animals were examined for UB(G76V)::GFP stabilization in the muscle at the L4 stage. We note that animals lacking SKN-1A show a defect in basal proteasome function, causing accumulation of UB(G76V)::GFP. This basal effect is limited to the intestine, and so we were still able to detect muscle-specific effects.
Fluorescence images showing rpt-3p::gfp and rpl-28p::ub(G76V)::gfp transgenic animals raised on plates supplemented with different concentrations of bortezomib, or DMSO control. rpt-3p::gfp is not induced by 2 ng/ml bortezomib, is weakly induced by 4 ng/ml bortezomib, and more strongly induced by 40 ng/ml bortezomib. In wild type animals, only exposure to 40 ng/ml bortezomib causes increased levels of UB(G76V)::GFP accumulation. In skn-1a(mg570) mutant animals, exposure to 2 or 4 ng/ml causes increased accumulation of UB(G76V)::GFP. Scale bar shows 100 μm.
Figure 3—figure supplement 1.Comparison of rpt-3p::gfp activation and UB(G76V)::GFP accumulation in animals exposed to low doses of bortezomib.
Fluorescence images showing rpt-3p::gfp and rpl-28p::ub(G76V)::gfp transgenic animals raised on plates supplemented with different concentrations of bortezomib, or DMSO control. rpt-3p::gfp is not induced by 2 ng/ml bortezomib, is weakly induced by 4 ng/ml bortezomib, and more strongly induced by 40 ng/ml bortezomib. In wild type animals, only exposure to 40 ng/ml bortezomib causes increased levels of UB(G76V)::GFP accumulation. In skn-1a(mg570) mutant animals, exposure to 2 or 4 ng/ml causes increased accumulation of UB(G76V)::GFP. Scale bar shows 100 μm.
Figure 4.SKN-1A ameliorates age-dependent toxicity of misfolded proteins.
Analysis of locomotion of (a) wild type and skn-1a(mg570) mutant animals, (b) unc-54(mg519) and unc-54(mg519); skn-1a(mg570) double mutant animals and (c) unc-54(e1301) and unc-54(e1301); skn-1a(mg570) double mutant animals during aging. (d) Age-dependent paralysis of wild type and skn-1a(mg570) mutant Aβ expressing animals. Panels b, c, d: ****p<0.0001; ***p<0.001; **p<0.01; *p<0.05; ns p>0.05 indicates P-value compared to the skn-1a(+) control at each time point (two-way ANOVA with Dunnett’s multiple comparisons test). (e) increased paralysis of Aβ expressing with defective SKN-1A activation. (f) reduced paralysis of Aβ expressing animals with increased SKN-1A levels. Panels e and f: ****p<0.0001 compared to wild type (one-way ANOVA with Tukey’s multiple comparisons test). (g) Fluorescence images showing increased accumulation of Aβ::GFP in day two adults in skn-1a(mg570) as compared to wild type. (h) Quantification of Aβ::GFP puncta in wild type and skn-1a(mg570). ****p<0.0001 (Welch’s t-test).
Quantification of rpt-3p::gfp expression in (a) unc-54(mg519) and (b) unc-54(e1301) animals on day 1 and day 5 of adulthood. ns p>0.05 (Welch’s t-test).
(a) Analysis of locomotion of (a) unc-54(mg519) and unc-54(mg519); skn-1a(mg570) double mutant animals and (b) unc-54(e1301) and unc-54(e1301); skn-1a(mg570) double mutant animals on day 1 of adulthood. ***p<0.001, **p<0.01 (Welch’s t-test).
Figure 4—figure supplement 1.Activation of rpt-3p::gfp in unc-54ts mutants is not increased during aging.
Quantification of rpt-3p::gfp expression in (a) unc-54(mg519) and (b) unc-54(e1301) animals on day 1 and day 5 of adulthood. ns p>0.05 (Welch’s t-test).
Figure 4—figure supplement 2.The effect of SKN-1A on locomotion of unc-54ts mutants on day 1 of adulthood.
(a) Analysis of locomotion of (a) unc-54(mg519) and unc-54(mg519); skn-1a(mg570) double mutant animals and (b) unc-54(e1301) and unc-54(e1301); skn-1a(mg570) double mutant animals on day 1 of adulthood. ***p<0.001, **p<0.01 (Welch’s t-test).
Figure 5.SKN-1A and PNG-1 control lifespan.
(a–f) Experiments showing that SKN-1A and PNG-1 control lifespan, and that SKN-1A accounts for the effect of skn-1a/c mutations on normal lifespan: (a) The lifespan of skn-1a(mg570) mutant animals is reduced compared to the wild type. (b) The lifespan of skn-1a/c(zu67) mutant animals is not further reduced compared to skn-1a(mg570). (c) The reduced lifespan of skn-1a/c(zu67) mutant animals is rescued by a transgene expressing SKN-1A under control of the rpl-28 promoter. (d) Overexpression of SKN-1A increases lifespan. In five independent rpl-28p::skn-1a::gfp lines we found a 10–20% increase in lifespan compared to the wild type. (e) The lifespan of png-1(ok1654) mutant animals is reduced compared to wild type. (f) Removal of SKN-1A does not further reduce the lifespan of png-1(ok1654) mutant animals. For summary of lifespan statistics see Supplementary file 1 (g) Analysis of vulval degeneration in day 7 adults. ***p<0.001; **p<0.01; ns p>0.05; P-value compared to wild type control is shown unless otherwise indicated (one-way ANOVA with Sidak’s multiple comparisons test).
Figure 6.SKN-1A modulates functional decline during aging by adjusting proteasome capacity to meet demand for degradation of misfolded proteins.
During aging, misfolded proteins eventually accumulate to levels that disrupt cellular function. SKN-1A adjusts proteasome capacity to meet demand for degradation of damaged and misfolded proteins. This modulates the age-dependent accumulation and toxicity of misfolded proteins, thereby altering the rate of functional decline during aging. In animals lacking this pathway (i.e. skn-1a or png-1 mutants), insufficient proteasome capacity leads to a rapid decline and reduced lifespan. Conversely, enhancement of this pathway (by increasing SKN-1A levels or activity) delays the cellular dysfunction caused by misfolded proteins and extends lifespan.
| Reagent type | Designation | Source or reference | Identifiers | Additional |
|---|---|---|---|---|
| Strain, | CGC | OP50 | ||
| Strain, strain background ( | CGC | HT115 | ||
| Strain, strain | CGC | CB1301 | ||
| Strain, strain | CGC | CL2006 | unc-54::Aβ | |
| Strain, strain | CGC | CL2331 | myo-3::gfp::Aβ | |
| Strain, strain | GR2183 | rpt-3::gfp integrated array | ||
| Strain, strain | GR2184 | proteasome mutant | ||
| Strain, strain | GR2197 | |||
| Strain, strain | GR2211 | |||
| Strain, strain | GR2212 | rpl-28::ha::skn-1a::gfp::tbb-2 | ||
| Strain, strain | GR2213 | rpl-28::ha::skn-1a::gfp::tbb-2 | ||
| Strain, strain | GR2215 | Strain, strain | ||
| background ( | GR2221 | rpl-28::skn-1a::GFP::tbb-2 rescues skn-1(zu67) | ||
| Strain, strain | GR2236 | |||
| Strain, strain | GR2245 | |||
| Strain, strain | CGC | GR2246 | ||
| Strain, strain | this study | GR3089 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3090 | rpl-28::ub(G76V)::gfp::tbb-2, myo-3::mcherry marker. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3091 | rpl-28::skn-1a::GFP::tbb-2. | |
| Strain, strain | this study | GR3092 | rpl-28::HA::skn-1a::GFP::tbb-2. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3094 | rpl-28::ub(G76V)::gfp::tbb-2. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3141 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3142 | proteasome mutant. | |
| Strain, strain | this study | GR3143 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3144 | proteasome mutant. Reagent requests: | |
| Strain, strain | this study | GR3145 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3146 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3147 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3148 | myo-3::H2B::mcherry::SL2::pbs-5[T65A] (pNL47). Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3149 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3150 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3151 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3152 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3153 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3154 | myo-3::H2B::mcherry::SL2::pbs-5[T65A] and Ub(G76V)::gfp. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3155 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3156 | ||
| Strain, strain | this study | GR3157 | ||
| Strain, strain | this study | GR3158 | mg674 causes G2STOP in SKN-1A. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3159 | ||
| Strain, strain | this study | GR3160 | ||
| Strain, strain | this study | GR3161 | ||
| Strain, strain | this study | GR3162 | ||
| Strain, strain | this study | GR3163 | mg674 causes G2STOP | |
| Strain, strain | this study | GR3164 | Reagent requests: see Materials and methods. | |
| Strain, strain | this study | GR3165 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3166 | Reagent requests: | |
| Strain, strain | this study | GR3167 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3168 | skn-1(mg674) mgIs78; mgIs77 animals are very sick, use balancer to maintain. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3169 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3170 | Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3171 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3172 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3173 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3174 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3175 | proteasome mutant. | |
| Strain, strain | this study | GR3176 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3177 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3178 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3179 | proteasome mutant. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3180 | Amyloid beta + rpt-3::gfp. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3181 | Amyloid beta + rpt-3::gfp in | |
| Strain, strain | this study | GR3182 | unc-54::Aβ+Ub(G76V):: | |
| Strain, strain | this study | GR3183 | unc-54::Aβ+Ub(G76V)::gfp. | |
| Strain, strain | this study | GR3184 | unc-54::Aβ in | |
| strain, strain | this study | GR3185 | myo-3::gfp::Aβ in | |
| Strain, strain | this study | GR3186 | unc-54::Aβ in a | |
| Strain, strain | this study | GR3187 | unc-54::Aβ in | |
| Strain, strain | this study | GR3188 | unc-54::Aβ in | |
| Strain, strain | this study | GR3189 | unc-54::Aβ in | |
| Strain, strain | this study | GR3190 | skn-1a overexpression (pNL214), array marked by myo-2::mcherry. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3191 | skn-1a overexpression (pNL214), array marked by myo-2::mcherry. Reagent requests: see Materials and methods | |
| Strain, strain | this study | GR3192 | skn-1a overexpression (pNL214), array marked by | |
| Strain, strain | this study | GR3193 | unc-54::Aβ in | |
| Strain, strain | hsf-1(sy441) I; mgIs72 | this study | GR3291 | rpt-3::gfp, |
| Strain, strain | this study | GR3292 | rpl-28p::skn-1a[∆DBD]:: | |
| Strain, strain | this study | GR3293 | rpl-28p::skn-1a[∆DBD]::gfp, | |
| Strain, strain | this study | GR3294 | rpl-28p::skn-1a[∆DBD]::gfp, | |
| Strain, strain | this study | GR3295 | rpt-3::gfp, | |
| Strain, strain | CGC | EU1 | ||
| Strain, strain | CGC | N2 | ||
| Recombinant | rpl-28::skn-1a::tbb-2 | pNL214 | Reagent requests: see Materials and methods | |
| Recombinant | myo-3::mcherry::his-58:: | this study | pNL47 | Reagent requests: see Materials and methods |
| Recombinant | rpl-28::ub(G76V)::gfp::tbb-2 | this study | pNL121 | Reagent requests: see Materials and methods |
| Chemical | Bortezomib | L C Laboratories | Cat#B1408 | |
| Software, algorithm | ImageJ | NIH | ||
| Software, algorithm | Zen | Zeiss | ||
| Software, algorithm | Ape (A plasmid editor) | M Wayne Davis | ||
| Software, algorithm | Graphpad Prism | Graphpad |