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The Genetics of Tuberous Sclerosis Complex and Related mTORopathies: Current Understanding and Future Directions
Alice Man1, Matteo Di Scipio1, Shan Grewal1
1Michael G. DeGroote School of Medicine, McMaster University, Hamilton, ON L8S 4L8, Canada.
Abstract:
The mechanistic target of rapamycin (mTOR) pathway serves as a master regulator of cell growth, proliferation, and survival. Upregulation of the mTOR pathway has been shown to cause malformations of cortical development, medically refractory epilepsies, and neurodevelopmental disorders, collectively described as mTORopathies. Tuberous sclerosis complex (TSC) serves as the prototypical mTORopathy. Characterized by the development of benign tumors in multiple organs, pathogenic variants in TSC1 or TSC2 disrupt the TSC protein complex, a negative regulator of the mTOR pathway. Variants in critical domains of the TSC complex, especially in the catalytic TSC2 subunit, correlate with increased disease severity. Variants in less crucial exons and non-coding regions, as well as those undetectable with conventional testing, may lead to milder phenotypes. Despite the assumption of complete penetrance, expressivity varies within families, and certain variants delay disease onset with milder neurological effects. Understanding these genotype-phenotype correlations is crucial for effective clinical management. Notably, 15% of patients have no mutation identified by conventional genetic testing, with the majority of cases postulated to be caused by somatic TSC1/TSC2 variants which present complex diagnostic challenges. Advancements in genetic testing, prenatal screening, and precision medicine hold promise for changing the diagnostic and treatment paradigm for TSC and related mTORopathies. Herein, we explore the genetic and molecular mechanisms of TSC and other mTORopathies, emphasizing contemporary genetic methods in understanding and diagnosing the condition.
Insights
The mechanistic target of rapamycin (mTOR) pathway regulates cell growth. Dysregulation causes mTORpathies like Tuberous Sclerosis Complex (TSC), linked to TSC1/TSC2 gene variants, impacting disease severity and diagnosis.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- The mechanistic target of rapamycin (mTOR) pathway is crucial for cell growth, proliferation, and survival.
- Upregulation of the mTOR pathway leads to mTORpathies, including malformations of cortical development, refractory epilepsies, and neurodevelopmental disorders.
- Tuberous Sclerosis Complex (TSC) is a primary example of an mTORpathies, characterized by benign tumors due to pathogenic variants in TSC1 or TSC2 genes.
Purpose of the Study:
- To explore the genetic and molecular mechanisms underlying TSC and other mTORpathies.
- To emphasize contemporary genetic methods for understanding and diagnosing these conditions.
- To highlight genotype-phenotype correlations for improved clinical management.
Main Methods:
- Review of genetic and molecular mechanisms of TSC and mTORpathies.
- Analysis of genotype-phenotype correlations in affected individuals.
- Discussion of advancements in genetic testing, prenatal screening, and precision medicine.
Main Results:
- Pathogenic variants in TSC1 or TSC2 disrupt the mTOR pathway, with severity correlating to variant location, especially in TSC2.
- Milder phenotypes can result from variants in less critical regions or those missed by conventional testing.
- Approximately 15% of TSC cases lack identifiable mutations via conventional testing, often due to somatic variants.
Conclusions:
- Understanding genotype-phenotype correlations is vital for managing TSC and mTORpathies.
- Somatic TSC1/TSC2 variants pose diagnostic challenges.
- Advancements in genetic technologies offer improved diagnostic and therapeutic strategies for mTORpathies.
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