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Updated: Mar 17, 2026

Next Generation Sequencing for the Detection of Actionable Mutations in Solid and Liquid Tumors
Published on: September 20, 2016
Understanding the Significance of Mutations in Tumor Suppressor Genes Identified Using Next-Generation Sequencing: A
1Oncology Division, Wake Forest Medical School, Winston-Salem, N.C., USA.
Abstract:
Next-generation sequencing (NGS) of tumors has been heralded as a promising tool to identify 'actionable' abnormalities susceptible to therapies targeting these mutated genes. Inhibiting the oncoprotein expressed from a single dominant mutated gene (oncogene) forms the basis for the success of most of the targeted gene therapies approved in the last several years. The well over 20 FDA-approved kinase inhibitors for cancer treatment are examples [Janne et al.: Nat Rev Drug Discov 2009;8: 709-723]. These and other similar agents in development might prove effective therapies for tumors originating from tissues other than those for which these drugs are currently approved. Finding such mutations in tumors of patients through NGS is being aggressively pursued by patients and their oncologists. For identified mutated tumor suppressor genes (TSG) the challenge is really the opposite. Rather than inhibiting the action of an oncoprotein, targeting would involve restoring the activity of the wild-type (WT) TSG function [Knudson: Proc Natl Acad Sci USA 1971;249: 912-915]. Here, a case is reported that illustrates the implications of a mutated TSG (BRIP1) identified by NGS as potentially actionable. In such cases, measuring allelic mutation frequency potentially allows for the identification of tumors where the loss of heterozygosity of a TSG exists. Without substantial loss of expression of the WT TSG product, it would seem very unlikely that 'replacing' a WT TSG product that is not a lost product would be a useful therapy.
Insights
Next-generation sequencing (NGS) identifies actionable tumor mutations. Restoring wild-type tumor suppressor gene (TSG) function is challenging, especially when the wild-type product is not lost.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Next-generation sequencing (NGS) aids in identifying tumor-specific mutations for targeted therapies.
- Targeted cancer therapies often focus on inhibiting oncogenic proteins.
- Restoring wild-type tumor suppressor gene (TSG) function presents a different therapeutic challenge.
Observation:
- A case study highlights the implications of a mutated BRIP1 TSG identified via NGS.
- Measuring allelic mutation frequency can indicate loss of heterozygosity in TSGs.
- Loss of heterozygosity suggests a significant loss of wild-type TSG expression.
Findings:
- Targeting mutated TSGs requires restoring wild-type function, unlike inhibiting oncogenes.
- The presence of wild-type TSG expression complicates therapeutic strategies.
- BRIP1 mutations identified by NGS can be actionable, but therapeutic success depends on the loss of heterozygosity.
Implications:
- Therapeutic strategies for TSG mutations should consider the extent of wild-type gene expression.
- Restoring function is unlikely to be effective if the wild-type gene product is not significantly diminished.
- NGS plays a crucial role in personalized cancer medicine by identifying complex genetic alterations.
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