Genetic predisposition to porto-sinusoidal vascular disorder: A functional genomic-based, multigenerational family
Jingxuan Shan1,2, André Megarbane3,4, Aziz Chouchane5,6
1Genetic Intelligence Laboratory , Weill Cornell Medicine-Qatar , Qatar Foundation , Doha , Qatar.
Insights
A rare genetic variant in the FCHSD1 gene causes Porto-sinusoidal vascular disorder (PSVD) by activating the mTOR pathway. This discovery offers new insights into PSVD
Area of Science:
- Genetics
- Molecular Biology
- Hepatology
Background:
- Porto-sinusoidal vascular disorder (PSVD) is a group of liver vascular diseases.
- Causes of PSVD are often unknown, with hereditary cases being rare.
- Understanding genetic factors is key to uncovering PSVD mechanisms.
Purpose of the Study:
- To investigate the genetic basis of PSVD in a multigenerational family.
- To identify molecular mechanisms underlying PSVD pathogenesis.
- To explore the role of FCHSD1 in liver vascular disease.
Main Methods:
- Genome sequencing of affected individuals and healthy controls.
- RNA structural modeling and biochemical analyses of FCHSD1 variants.
- CRISPR/Cas9 gene editing in mice to model the human PSVD phenotype.
Main Results:
- A heterozygous deleterious variant (FCHSD1R183W) was identified in PSVD patients.
- The FCHSD1R183W variant increases mRNA and protein stability, leading to mTOR pathway overactivation.
- Mice with the human FCHSD1 variant exhibited PSVD-like phenotypes, including splenomegaly.
Conclusions:
- Aberrant FCHSD1 function and subsequent mTOR pathway overactivation may cause PSVD.
- This study identifies a novel genetic cause for PSVD.
- FCHSD1 is implicated as a key player in the development of liver vascular disorders.
Background And Aims:
Porto-sinusoidal vascular disorder (PSVD) is a group of liver vascular diseases featuring lesions encompassing the portal venules and sinusoids unaccompanied by cirrhosis, irrespective of the presence/absence of portal hypertension. It can occur secondary to coagulation disorders or insult by toxic agents. However, the cause of PSVD remains unknown in most cases. Hereditary cases of PSVD are exceptionally rare, but they are of particular interest and may unveil genetic alterations and molecular mechanisms associated with the disease.
Approach And Results:
We performed genome sequencing of four patients and two healthy individuals of a large multigenerational Lebanese family with PSVD and identified a heterozygous deleterious variant (c.547C>T, p.R183W) of FCH and double SH3 domains 1 ( FCHSD1 ), an uncharacterized gene, in patients. This variant segregated with the disease, and its pattern of inheritance was suggestive of autosomal dominant with variable expressivity. RNA structural modelling of human FCHSD1 suggests that the C-to-T substitution at position 547, corresponding to FCHSD1R183W , may increase both messenger RNA (mRNA) and protein stability and its interaction with MTOR-associated protein, LST8 homolog, a key protein of the mechanistic target of rapamycin (mTOR pathway). These predictions were substantiated by biochemical analyses, which showed that FCHSD1R183W induced high FCHSD1 mRNA stability, overexpression of FCHSD1 protein, and an increase in mTORC1 activation. This human FCHSD1 variant was introduced into mice through CRISPR/Cas9 genome editing. Nine out of the 15 mice carrying the human FCHSD1R183W variant mimicked the phenotype of human PSVD, including splenomegaly and enlarged portal vein.
Conclusions:
Aberrant FCHSD1 structure and function leads to mTOR pathway overactivation and may cause PSVD.
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