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Lange, K. I.

Publications and source records attributed to Lange, K. I..

2 recordsLinked to original sources

Interpreting TMEM67 missense variants of uncertain significance (VUS) in an animal model

PurposeBetter methods are required to interpret the pathogenicity of disease-associated variants of uncertain significance (VUS), which cannot be actioned clinically. In this study, we explore the use of a tractable animal model (Caenorhabditis elegans) for in vivo interpretation of missense VUS alleles of TMEM67, a cilia gene associated with ciliopathies. MethodsCRISPR/Cas9 gene editing was used to generate homozygous knock-in C. elegans worm strains carrying TMEM67 patient variants engineered into the orthologous gene (mks-3). Quantitative phenotypic assays of sensory cilia structure and function measured if the variants affect mks-3 gene function. Results from worms were validated by a genetic complementation assay in a human TMEM67 knock-out hTERT-RPE1 cell line that tests a TMEM67 signaling function. ResultsAssays in C. elegans accurately distinguished between known benign (Asp359Glu, Thr360Ala) and known pathogenic (Glu361Ter, Gln376Pro) variants. Analysis of eight missense VUS generated evidence that three are benign (Cys173Arg, Thr176Ile, Gly979Arg) and five are pathogenic (Cys170Tyr, His782Arg, Gly786Glu, His790Arg, Ser961Tyr). ConclusionEfficient genome editing and quantitative functional assays in C. elegans make it a tractable in vivo animal model that allows rapid, cost-effective interpretation of ciliopathy-associated missense VUS alleles.

genetics

Interpreting the pathogenicity of Joubert Syndrome missense variants in Caenorhabditis elegans

Ciliopathies are inherited disorders caused by cilia defects. Variants in ciliopathy genes are frequently pleiotropic and represent excellent case studies for interrogating genotype-phenotype correlation. We have employed Caenorhabditis elegans and gene editing to characterise two pathogenic biallelic missense variants (P74S, G155S) in B9D2/mksr-2 associated with Joubert Syndrome (JBTS). B9D2 functions within the MKS module at the transition zone (TZ) ciliary subcompartment, and regulates the ciliums molecular composition and signaling function. Quantitative assays of cilium/TZ structure and function, together with knock-in reporters, confirm both variant alleles are pathogenic. G155S causes a more severe overall phenotype and disrupts endogenous MKSR-2 organisation at the TZ. Recapitulation of the patient biallelic genotype shows that heterozygous worms phenocopy worms homozygous for P74S. This study also reveals a close functional association between the B9 complex and TMEM216/MKS-2. These data establish C. elegans as a paradigm for interpreting JBTS mutations, and provide insight into MKS module organisation.

genetics