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Biology subjects

Xie, C. T. Y.

Publications and source records attributed to Xie, C. T. Y..

2 recordsLinked to original sources

PTCHD1 interacts with the SNARE-associated protein SNAPIN in vitro via its first exoplasmic loop

BackgroundPatched domain-containing 1 (PTCHD1) is a susceptibility gene for autism spectrum disorder and intellectual disability. Its function in brain development and neurotransmission remains elusive. Studies have sought to characterize PTCHD1 function by elucidating its neural network of interacting proteins. However, given the current paucity of functional information, many PTCHD1 missense variants in clinical databases are classified as variants of uncertain significance (VUSs), severely limiting the healthcare resources available to patients and families. MethodsA yeast two-hybrid assay was used to identify synaptic PTCHD1-interacting proteins. Candidate binding partners were validated by cloning; transient over-expression in HEK293T cells, followed by co-immunoprecipitation and immunoblotting; and immunocytochemistry in differentiated P19 cells. To evaluate the pathogenicity of clinical missense variants, site-directed mutagenesis was employed, followed by transient over-expression and immunocytochemistry in non-neuronal (HEK293T) and neuronal (Neuro-2A cells) systems. ResultsA novel interaction was identified between the first lumenal loop of PTCHD1 and the SNARE-associated protein SNAPIN, which is implicated in synaptic vesicle exocytosis. Clinically associated missense variants within this region did not disrupt SNAPIN binding, indicating that the pathoetiology of these variants is unrelated to this interaction. However, six of the 12 missense variants tested exhibited pronounced retention within the endoplasmic reticulum, and impaired neuronal and non-neuronal trafficking to the plasma membrane. ConclusionsThese data yield insights regarding the role of PTCHD1 in neurodevelopment and neurotransmission, and suggest a neuropathological mechanism for missense variants. These findings provide a platform for diagnostic assay and VUS interpretation, allowing for clinical re-classification of these variants.

molecular biology↗

Nonsynonymous Mutations in Intellectual Disability and Autism Spectrum Disorder Gene PTCHD1 Disrupt N-Glycosylation and Reduce Protein Stability

PTCHD1 has been implicated in Autism Spectrum Disorders (ASD) and/or intellectual disability, where copy number variant losses or loss-of-function coding mutations segregate with disease in an X-linked recessive fashion. Missense variants of PTCHD1 have also been reported in patients. However, the significance of these mutations remains undetermined since the activities, subcellular localization and regulation of the PTCHD1 protein are currently unknown. This paucity of data concerning PTCHD1 prevents the effective evaluation of sequence variants identified during diagnostic screening. Here, we characterize PTCHD1 protein binding partners, extending previously reported interactions with postsynaptic scaffolding protein, SAP102. Six rare missense variants of PTCHD1 were also identified from patients with neurodevelopmental disorders. After modelling these variants on a hypothetical three-dimensional structure of PTCHD1, based on the solved structure of NPC1, PTCHD1 variants harboring these mutations were assessed for protein stability, post-translational processing and protein trafficking. We show here that wild-type PTCHD1 post-translational modification includes complex N-glycosylation and that specific mutant proteins disrupt normal N-link glycosylation processing. However, regardless of their processing, these mutants still localized to PSD95-containing dendritic processes and remained competent for complexing SAP102.

molecular biology↗