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Updated: Sep 19, 2026

Navigating MARRVEL, a Web-Based Tool that Integrates Human Genomics and Model Organism Genetics Information
Published on: August 15, 2019
Identification of Two Novel Compound Heterozygous ADAMTS17 Variants Associated With Weill-Marchesani Syndrome 4
Wen-Jing Ku1, Yi-Feng Xu2, Shun-Tao Jiao2
1Beijing Meihe Eye Clinic; Beijing Future Children's Hospital, Beijing, China.
Purpose:
Weill-Marchesani syndrome 4 (WMS4) is frequently underdiagnosed when standard exome sequencing fails to detect noncoding pathogenic variants. We aimed to identify the genetic cause in a patient with suspected WMS4 and to characterize the splicing-altering mechanism of a deep intronic variant in ADAMTS17.
Materials And Methods:
Whole-exome sequencing combined with whole-genome sequencing was conducted in the proband, who presented with ocular and skeletal manifestations of WMS4. A minigene splicing assay was applied to verify the splicing abnormality caused by the deep intronic variant.
Results:
The patient showed high myopia, brachydactyly, accelerated growth velocity, and advanced bone age. Two novel compound heterozygous variants in ADAMTS17, c.1655G>A and c.450+38C>A, were identified. The deep intronic variant c.450+38C>A was confirmed by minigene assay to disrupt normal pre-messenger RNA splicing by inducing retention of a 35-base pair intronic segment, leading to a frameshift and premature termination (p.G152Lfs*23).
Conclusions:
This study broadens the mutational spectrum of ADAMTS17. Whole-genome sequencing combined with functional splicing validation is essential for resolving molecularly undiagnosed cases of WMS4, particularly when deep intronic variants are suspected, and supports clinical genetic testing and genetic counseling of hereditary connective tissue disorders.
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