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RAS internal tandem duplication disrupts GTPase-activating protein (GAP) binding to activate oncogenic signaling
Andrew C Nelson1, Thomas J Turbyville2, Srisathiyanarayanan Dharmaiah2
1Department of Laboratory Medicine & Pathology, University of Minnesota, Minneapolis, Minnesota, USA nels2055@umn.edu dhirendra.simanshu@nih.gov emil-lou@umn.edu.
Abstract:
The oncogene RAS is one of the most widely studied proteins in cancer biology, and mutant active RAS is a driver in many types of solid tumors and hematological malignancies. Yet the biological effects of different RAS mutations and the tissue-specific clinical implications are complex and nuanced. Here, we identified an internal tandem duplication (ITD) in the switch II domain of NRAS from a patient with extremely aggressive colorectal carcinoma. Results of whole-exome DNA sequencing of primary and metastatic tumors indicated that this mutation was present in all analyzed metastases and excluded the presence of any other clear oncogenic driver mutations. Biochemical analysis revealed increased interaction of the RAS ITD with Raf proto-oncogene Ser/Thr kinase (RAF), leading to increased phosphorylation of downstream MAPK/ERK kinase (MEK)/extracellular signal-regulated kinase (ERK). The ITD prevented interaction with neurofibromin 1 (NF1)-GTPase-activating protein (GAP), providing a mechanism for sustained activity of the RAS ITD protein. We present the first crystal structures of NRAS and KRAS ITD at 1.65-1.75 Å resolution, respectively, providing insight into the physical interactions of this class of RAS variants with its regulatory and effector proteins. Our in-depth bedside-to-bench analysis uncovers the molecular mechanism underlying a case of highly aggressive colorectal cancer and illustrates the importance of robust biochemical and biophysical approaches in the implementation of individualized medicine.
Insights
A novel NRAS internal tandem duplication (ITD) mutation drives aggressive colorectal cancer by stabilizing RAS signaling. This discovery highlights the importance of advanced structural biology for personalized cancer medicine.
Area of Science:
- Molecular Biology
- Cancer Genetics
- Structural Biology
Background:
- The oncogene RAS (Rat sarcoma virus) is a critical driver in numerous cancers.
- Mutant RAS proteins are implicated in solid tumors and hematological malignancies.
- Understanding specific RAS mutations and their tissue-specific effects is complex.
Purpose of the Study:
- To investigate the molecular mechanism of an aggressive colorectal carcinoma.
- To identify and characterize a novel NRAS mutation.
- To elucidate the structural and functional consequences of the identified mutation.
Main Methods:
- Whole-exome DNA sequencing of primary and metastatic tumors.
- Biochemical analyses of protein interactions (RAS-RAF, RAS-NF1).
- Crystal structure determination of NRAS and KRAS ITD variants.
Main Results:
- Identified an internal tandem duplication (ITD) in the NRAS switch II domain in a patient with aggressive colorectal cancer.
- The NRAS ITD mutation increased interaction with RAF, enhancing downstream MAPK/ERK signaling.
- The ITD impaired interaction with NF1-GTPase-activating protein (GAP), leading to sustained RAS activity.
- Determined the first crystal structures of NRAS and KRAS ITD, revealing physical interaction insights.
Conclusions:
- The NRAS ITD mutation provides a molecular mechanism for highly aggressive colorectal cancer.
- Structural insights into RAS ITD variants explain their aberrant signaling.
- This study underscores the value of integrated biochemical and biophysical approaches for precision medicine.
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