bioRxiv Science⌕ Search

Biology subjects

Cheng-Boivin, Z.

Publications and source records attributed to Cheng-Boivin, Z..

2 recordsLinked to original sources

Interactors of sacsin DNAJ domain identify function in organellar transport and membrane composition relevant to ARSACS pathogenesis

Autosomal Recessive Spastic Ataxia of the Charlevoix Saguenay (ARSACS) is caused by loss of function mutations in the SACS gene encoding sacsin, a 520kDa protein with multiple functional domains. The goal of this study was to identify client proteins interacting with the J domain, a cochaperone domain interacting with Hsp70 chaperones, to gain insights into sacsins function and its disruption in experimental models of ARSACS. Pull downs from mouse brain identified Rabs and Rab-associated proteins including Rab1b, ARF5 and endophilin B2, involved in organelle trafficking. In cell and mouse models of ARSACS, higher molecular weight species of Rab1b were identified on SDS-PAGE in addition to the normal 25kDa band and Rab1was retained in the soma along with membranous organelles (i.e., ER, Golgi and ATG9 autophagic vesicles). These changes were reversed by expression of the DNAJ domain or the Ubl domain of sacsin and occurred independent of the formation of abnormal bundles of intermediate filaments, a key feature of ARSACS. Although Rab1b was associated with both Golgi and ER in both Sacs+/+ and Sacs-/- cells, expression of the DNAJ domain or the Ubl domain of sacsin increased Rab1b association with ER and restored normal electrophoretic mobility. Finally, subcellular distribution of another membrane protein, neuroplastin, a key receptor for synapse formation and plasticity, also was impaired, pointing to a general problem in Rab-dependent membrane trafficking in the absence of sacsin.

cell biology↗

The J domain of sacsin disrupts intermediate filament assembly

Autosomal Recessive Spastic Ataxia of the Charlevoix Saguenay (ARSACS), is caused by loss of function mutations in the SACS gene, which encodes sacsin, a giant protein of 520 kDa. A key feature of the absence of sacsin in cells is the formation of abnormal bundles of intermediate filaments (IF) including neurofilaments (NF) in neurons and vimentin IF in fibroblasts, suggesting a role of sacsin in IF homeostasis. Sacsin contains a J domain (SacsJ) homologous to Hsp40, that can interact with Hsp70 chaperones. The SacsJ domain resolved NF bundles in cultured Sacs-/- neurons, however, its mechanism is still unclear. Here, we focused on the role of SacsJ in NF assembly. We report that the SacsJ domain directly interacts with NF proteins in vitro to disassemble NFL filaments, and to inhibit their initial assembly, in the absence of Hsp70. We generated a cell-penetrating peptide derived from this domain, SacsJ-myc-TAT, which was efficient in disassembling both vimentin IF and NF in cultured fibroblasts and Sacs+/+ motor neurons as well as NF bundles in cultured Sacs-/- motor neurons. Whereas a normal NF network was restored in Sacs-/- neurons treated with the SacsJ peptide, there was some loss of IF networks in Sacs+/+ fibroblasts or neurons. These results suggest that SacsJ is a key regulator of NF and IF networks in cells, with implications for its therapeutic use.

cell biology↗