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Levy-Adam, F.

Publications and source records attributed to Levy-Adam, F..

3 recordsLinked to original sources

Chaperone isoform and interactome mapping reveals functional diversification of DNAJA2-DNAJA4 complexes via stress-regulated isoforms

The human HSP70 chaperone network maintains cellular proteostasis through a diverse repertoire of HSP70s and co-chaperones. Here we examine alternative isoforms and co-chaperone hetero-complexes as additional sources of network complexity. To that end, we systematically mapped the isoform, tissue-expression, and interaction landscapes of the human HSP70 network, revealing a modular interactome containing known and novel DNAJ-DNAJ interactions. We found both tissue-expression isoform divergence as well as widespread alternative-canonical isoform co-expression, suggesting additional modes of functional diversification. Focusing on the uncharacterized DNAJA2-DNAJA4 hetero-complex, we identified the stress-inducible isoform DNAJA4-CTD-II. DNAJA4-CTD-II formed hetero-complexes with DNAJA2 and DNAJA4, with both interactions enhanced following sodium arsenite stress. Functionally, DNAJA4-CTD-II co-localized with TDP-43 aggregates and significantly suppressed their accumulation in a DNAJA2-dependent manner. Together, our data reveal extensive, uncharted isoform and interaction complexity within the HSP70 network, and uncover isoform-dependent hetero-complex remodeling as a new layer of chaperone network regulation.

systems biology↗

Targeting FUS-ALS aggregation with Proteasome Inhibitors

ALS, Amyotrophic lateral sclerosis, a devastating neurodegenerative disease (ND) with no cure, is often caused by abnormal cytosolic aggregation of RNA-binding proteins, the most well-known of which are TDP-43 and FUS. The proteasome is considered one of the major systems that degrades misfolded, including ND-associated, proteins, thereby acting to reduce aggregation, while inhibition of the proteasome increases aggregation. Unexpectedly, we found that proteasome inhibitor treatment significantly reduced ALS-associated mutant FUS aggregation in cells and in primary neurons. This is in sharp contrast to most other ND-associated aggregating proteins, including Huntingtin and TDP-43, for which proteasome inhibitors enhanced aggregation. We further found that this inhibitory effect is dependent on the transcription factor HSF1, suggesting that the underlying mechanism of this effect is transcriptionally-mediated. Since heat shock treatment did not show any effect on FUS aggregation, we hypothesized that proteasome inhibitors elicit a transcriptional program distinct of that of heat shock, which is protective of FUS aggregation. We identified BAG3, a co-chaperone that cooperates with HSP70 in reducing FUS aggregation, as a significant mediator of this effect. We therefore propose BBB-permeable proteasome inhibitors as a potential therapy specific to ALS-FUS.

molecular biology↗

Cellular proteostasis decline in human senescence

Proteostasis collapse, the diminished ability to maintain protein homeostasis, has been established as a hallmark of nematode aging. However, whether proteostasis collapse occurs in humans has remained unclear. Here we demonstrate that proteostasis decline is intrinsic to human senescence. Using transcriptome-wide characterization of gene expression, splicing and translation, we found a significant deterioration in the transcriptional activation of the heat shock response in stressed senescent cells. Furthermore, phosphorylated HSF1 nuclear localization and distribution were impaired in senescence. Interestingly, alternative splicing regulation was also dampened. Surprisingly, we found a decoupling between different Unfolded Protein Response (UPR) branches in stressed senescent cells. While young cells initiated UPR-related translational and transcriptional regulatory responses, senescent cells showed enhanced translational regulation and ER stress sensing, however they were unable to trigger UPR-related transcriptional responses. This was accompanied by diminished ATF6 nuclear localization in stressed senescent cells. Finally, we revealed a deterioration of proteasome function in senescence following heat stress, which did not recover upon return to normal temperature. Together, our data unraveled a deterioration in the ability to mount dynamic stress transcriptional programs upon human senescence with broad implications on proteostasis control, and connected proteostasis decline to human aging. SignificanceProtein homeostasis (proteostasis), the balance between protein synthesis, folding, and degradation, is thought to deteriorate with age, and the prevalence of protein misfolding diseases, e.g. Alzheimers, Parkinsons etc., with human aging is increased. However, while in worms this phenomenon has been well established, in humans it remained unclear. Here we show that proteostasis is declined in human senescence, i.e. cellular aging. We found that while stress sensing is enhanced in senescent cells, and their response at the level of protein synthesis is intact, they fail to properly activate multiple programs required for stress adaptation at the level of gene transcription. Our findings support the notion that proteostasis decline may have major implications on human aging.

molecular biology↗