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Campion, D.

Publications and source records attributed to Campion, D..

2 recordsLinked to original sources

Penetrance estimation of SORL1 loss-of-function variants using a family-based strategy adjusted on APOE genotypes suggest a non-monogenic inheritance

For complex disorders, estimating the age-related penetrance associated with rare variants of strong effect is essential before a putative use for genetic counseling or disease prevention. However, rarity and co-occurrence with other risk factors make such estimations difficult. In the context of Alzheimer disease, we present a survival model to estimate the penetrance of SORL1 rare (allele frequency< 1%) Loss-of-Function variants (LoF) while accounting for APOE-{varepsilon}4, the main risk factor (allele frequency[~] 14% in Caucasians). We developed an efficient strategy to compute penetrance estimates accounting for both common and rare genetic variants based on available penetrance curves associated with common risk factors and using incomplete pedigree data to quantify the additional risk conferred by rare variants. Our model combines: (i) a baseline for non-carriers of SORL1 LoF variants, stratified by APOE genotypes derived from the Rotterdam study and (ii) an age-dependent proportional hazard effect for SORL1 LoF variants estimated from pedigrees with a proband carrying such a variant. We embed this model into an Expectation-Maximisation algorithm to accommodate for missing genotypes. Confidence intervals were computed by bootstraps. To correct for ascertainment bias, proband phenotypes were omitted. We obtained penetrance curves associated with SORL1 LoF variants at the digenic level. By age 70, we estimate a 100% penetrance of SORL1 LoF variants only among APOE-{varepsilon}4{varepsilon}4 carriers, while penetrance is 56%[40% - 72%] among {varepsilon}4 heterozygous carriers and 37%[26% - 51%] among {varepsilon}4 non-carriers. We conclude that rare SORL1 LoF variants should not be used for genetic counseling regardless of the APOE status.

genetics

Impaired SorLA maturation and trafficking as a new mechanism for SORL1 missense variants in Alzheimer disease

The SorLA protein, encoded by the SORL1 gene, is a major player in Alzheimers disease (AD) pathophysiology. Functional and genetic studies demonstrated that SorLA deficiency results in increased production of A{beta} peptides, and thus a higher risk of AD. A large number of SORL1 missense variants have been identified in AD patients, but their functional consequences remain largely undefined. Here, we identified a new pathophysiological mechanism, by which rare SORL1 missense variants identified in AD patients result in altered maturation and trafficking of the SorLA protein. An initial screening, based on the overexpression of 71 SorLA variants in HEK293 cells, revealed that 15 of them (S114R, R332W, G543E, S564G, S577P, R654W, R729W, D806N, Y934C, D1535N, D1545E, P1654L, Y1816C, W1862C, P1914S) induced a maturation and trafficking-deficient phenotype. Three of these variations (R332W, S577P, and R654W) and two maturation-competent variations (S124R and N371T) were further studied in details in CRISPR/Cas9-modified hiPSCs. When expressed at endogenous levels, the R332W, S577P, and R654W SorLA variants also showed a maturation defective profile. We further demonstrated that these variants were largely retained in the endoplasmic reticulum, resulting in a reduction in the delivery of SorLA mature protein to the plasma membrane and to the endosomal system. Importantly, expression of the R332W and R654W variants in hiPSCs was associated with a clear increase of A{beta} secretion, demonstrating a loss-of-function effect of these SorLA variants regarding this ultimate readout, and a direct link with AD pathophysiology. Furthermore, structural analysis of the impact of missense variations on SorLA protein indicated that impaired cellular trafficking of SorLA protein could be due to subtle variations of the protein 3D structure resulting from changes in the interatomic interactions.

cell biology