RAF1 deficiency causes a lethal syndrome that underscores RTK signaling during embryogenesis
Samantha Wong1,2, Yu Xuan Tan1, Abigail Yi Ting Loh1,3
1Institute of Molecular and Cellular Biology, A*STAR, Singapore, Singapore.
Abstract:
Somatic and germline gain-of-function point mutations in RAF, one of the first oncogenes to be discovered in humans, delineate a group of tumor-prone syndromes known as the RASopathies. In this study, we document the first human phenotype resulting from the germline loss-of-function of the proto-oncogene RAF1 (a.k.a. CRAF). In a consanguineous family, we uncovered a homozygous p.Thr543Met variant segregating with a neonatal lethal syndrome with cutaneous, craniofacial, cardiac, and limb anomalies. Structure-based prediction and functional tests using human knock-in cells showed that threonine 543 is essential to: (i) ensure RAF1's stability and phosphorylation, (ii) maintain its kinase activity toward substrates of the MAPK pathway, and (iii) protect from stress-induced apoptosis mediated by ASK1. In Xenopus embryos, mutant RAF1T543M failed to phenocopy the effects of normal and overactive FGF/MAPK signaling, confirming its hypomorphic activity. Collectively, our data disclose the genetic and molecular etiology of a novel lethal syndrome with progeroid features, highlighting the importance of RTK signaling for human development and homeostasis.
Insights
Loss-of-function mutations in the RAF1 proto-oncogene cause a lethal neonatal syndrome with progeroid features. This study identifies a novel genetic cause impacting RAF1 stability and MAPK signaling in human development.
Area of Science:
- Genetics
- Molecular Biology
- Developmental Biology
Background:
- Gain-of-function mutations in RAF oncogenes cause RASopathies.
- The role of RAF1 loss-of-function in human disease is largely unknown.
Purpose of the Study:
- To identify the genetic and molecular basis of a novel lethal neonatal syndrome.
- To investigate the functional consequences of a RAF1 loss-of-function variant.
Main Methods:
- Whole-exome sequencing in a consanguineous family.
- Structure-based prediction and functional assays in human knock-in cells.
- Xenopus embryo developmental assays.
Main Results:
- A homozygous RAF1 p.Thr543Met variant segregated with a lethal neonatal syndrome.
- The RAF1 T543M variant impairs RAF1 stability, phosphorylation, and kinase activity.
- Mutant RAF1 failed to rescue signaling defects in Xenopus embryos, indicating hypomorphic activity.
Conclusions:
- Germline loss-of-function of RAF1 causes a novel lethal syndrome with progeroid features.
- Threonine 543 is critical for RAF1 function, stability, and MAPK pathway signaling.
- This study highlights the essential role of RAF1 in human development and homeostasis.
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