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Multiomics Analysis of TMEM200A as a Pan-Cancer Biomarker
Published on: September 15, 2023
Tumor-specific microsatellite instability: do distinct mechanisms underlie the MSI-L and EMAST phenotypes?
Suzanne E Hile1, Samion Shabashev1, Kristin A Eckert1
1Department of Pathology, Gittlen Cancer Research Foundation, Pennsylvania State University College of Medicine, 500 University Drive, Hershey, PA 17033, USA.
Abstract:
Microsatellite DNA sequences display allele length alterations or microsatellite instability (MSI) in tumor tissues, and MSI is used diagnostically for tumor detection and classification. We discuss the known types of tumor-specific MSI patterns and the relevant mechanisms underlying each pattern. Mutation rates of individual microsatellites vary greatly, and the intrinsic DNA features of motif size, sequence, and length contribute to this variation. MSI is used for detecting mismatch repair (MMR)-deficient tumors, which display an MSI-high phenotype due to genome-wide microsatellite destabilization. Because several pathways maintain microsatellite stability, tumors that have undergone other events associated with moderate genome instability may display diagnostic MSI only at specific di- or tetranucleotide markers. We summarize evidence for such alternative MSI forms (A-MSI) in sporadic cancers, also referred to as MSI-low and EMAST. While the existence of A-MSI is not disputed, there is disagreement about the origin and pathologic significance of this phenomenon. Although ambiguities due to PCR methods may be a source, evidence exists for other mechanisms to explain tumor-specific A-MSI. Some portion of A-MSI tumors may result from random mutational events arising during neoplastic cell evolution. However, this mechanism fails to explain the specificity of A-MSI for di- and tetranucleotide instability. We present evidence supporting the alternative argument that some A-MSI tumors arise by a distinct genetic pathway, and give examples of DNA metabolic pathways that, when altered, may be responsible for instability at specific microsatellite motifs. Finally, we suggest that A-MSI in tumors could be molecular signatures of environmental influences and DNA damage. Importantly, A-MSI occurs in several pre-neoplastic inflammatory states, including inflammatory bowel diseases, consistent with a role of oxidative stress in A-MSI. Understanding the biochemical basis of A-MSI tumor phenotypes will advance the development of new diagnostic tools and positively impact the clinical management of individual cancers.
Insights
Microsatellite instability (MSI) in tumors can indicate mismatch repair deficiency or arise from alternative pathways. Understanding these patterns, including alternative MSI (A-MSI), aids cancer detection and classification.
Area of Science:
- Genetics
- Oncology
- Molecular Biology
Background:
- Microsatellite DNA sequences are prone to length alterations, known as microsatellite instability (MSI), in tumor tissues.
- MSI is a crucial diagnostic marker for tumor detection and classification, particularly for identifying mismatch repair (MMR)-deficient tumors.
- Tumor-specific MSI patterns vary due to intrinsic DNA features and underlying genetic mechanisms.
Purpose of the Study:
- To discuss known tumor-specific MSI patterns and their underlying mechanisms.
- To explore alternative MSI (A-MSI) forms, including MSI-low and EMAST, in sporadic cancers.
- To present evidence for distinct genetic pathways and molecular signatures contributing to A-MSI.
Main Methods:
- Review and synthesis of existing literature on microsatellite instability patterns and mechanisms.
- Analysis of evidence for alternative MSI (A-MSI) in sporadic cancers.
- Examination of potential genetic pathways and molecular factors involved in A-MSI.
Main Results:
- MSI-high phenotype indicates genome-wide microsatellite destabilization in MMR-deficient tumors.
- Alternative MSI (A-MSI) can manifest as instability at specific di- or tetranucleotide markers in tumors with moderate genome instability.
- Evidence suggests A-MSI may arise from distinct genetic pathways, potentially linked to DNA metabolic alterations, environmental influences, or oxidative stress.
Conclusions:
- A-MSI, distinct from MMR deficiency, may represent a separate genetic pathway in tumorigenesis.
- A-MSI could serve as molecular signatures of environmental exposures and DNA damage, particularly in pre-neoplastic inflammatory states.
- Further understanding of A-MSI's biochemical basis is essential for developing novel diagnostic tools and improving cancer management.
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