The gene disrupted in Marinesco-Sjogren syndrome encodes SIL1, an HSPA5 cochaperone
NATURE GENETICS
Authors: Anttonen, AK; Mahjneh, I; Hamalainen, RH; Lagier-Tourenne, C; Kopra, O; Waris, L; Anttonen, M; Joensuu, T; Kalimo, H; Paetau, A; Tranebjaerg, L; Chaigne, D; Koenig, M; Eeg-Olofsson, O; Udd, B; Somer, M; Somer, H; Lehesjoki, AE
Abstract
We identified the gene underlying Marinesco-Sjogren syndrome, which is characterized by cerebellar ataxia, progressive myopathy and cataracts. We identified four disease-associated, predicted loss-of-function mutations in SIL1, which encodes a nucleotide exchange factor for the heat-shock protein 70 (HSP70) chaperone HSPA5. These data, together with the similar spatial and temporal patterns of tissue expression of Sil1 and Hspa5, suggest that disturbed SIL1-HSPA5 interaction and protein folding is the primary pathology in Marinesco-Sjogren syndrome.
Novel SIL1 mutations and exclusion of functional candidate genes in Marinesco-Sjogren syndrome
EUROPEAN JOURNAL OF HUMAN GENETICS
Authors: Anttonen, Anna-Kaisa; Siintola, Eija; Tranebjaerg, Lisbeth; Iwata, Nobue K.; Bijlsma, Emilia K.; Meguro, Hiroyuki; Ichikawa, Yaeko; Goto, Jun; Kopra, Outi; Lehesjoki, Anna-Elina
Abstract
Marinesco-Sjogren syndrome (MSS) is a rare autosomal recessively inherited neurodegenerative disorder characterized by cerebellar ataxia, cataracts, mental retardation, and progressive myopathy. Recently, mutations in the SIL1 gene, which encodes an endoplasmic reticulum (ER) resident cochaperone, were identified as a major cause of MSS. We here report four novel mutations in SIL1, including the first missense substitution p.Leu457Pro described in MSS. In addition, we excluded three functional candidate genes, HSPA5, HYOU1, and AARS, as causative genes in SIL1 mutation-negative patients. To understand the mechanisms of disturbed SIL1 function, we studied the subcellular localization of the missense mutant Leu457Pro protein in COS-1 cells. Moreover, we studied a mutant protein lacking the putative C-terminal ER retrieval signal. In contrast to the wild-type protein's localization to ER and Golgi apparatus, both mutant proteins formed aggregates within the ER depending on the expression level. These data imply that aggregation of mutant proteins may contribute to MSS pathogenesis. The genetic background of a subgroup of patients with MSS remains uncovered.