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Genetic insight into lung neuroendocrine tumors: Notch and Wnt signaling pathways as potential targets
Giulia Pecora1,2, Camilla Mancini1,3, Rossella Mazzilli1
1Unit of Endocrinology, Department of Clinical and Molecular Medicine, Sapienza University of Rome, AOU Sant'Andrea, ENETS Center of Excellence, Rome, Italy.
Background:
The molecular landscape of lung neuroendocrine neoplasms is still poorly characterized, making it difficult to develop a molecular classification and personalized therapeutic approaches. Significant clinical heterogeneity of these malignancies has been highlighted among poorly differentiated histotypes and within the subgroup of well-differentiated neuroendocrine tumors (NET). Currently, the main prognostic factors of lung NET include stage, histotype, grade, peripheral location, and demographic parameters. To gain deeper insights into the genomic underpinnings of lung NETs, we conducted a pilot investigation to uncover potential genetic mutations and copy number variations (CNVs) implicated in their pathogenesis.
Methods:
Formalin-fixed, paraffin-embedded intraoperative tumor biopsies and matched peripheral blood mononuclear cell samples were collected from six consecutive patients with lung NETs. The whole exome sequencing (WES) was performed to profile germline and somatic mutations, identify novel genetic alterations, and detect CNVs. Clinical and pathological data were systematically documented at diagnosis and during follow-up.
Results:
The WES analysis identified a subset of mutations shared between germline and somatic; some were of particular clinical interest as they were associated with tumor proliferation and potential therapeutic targets such as the genes KDM5C, ATR, COL7A1, NOTCH4, PTPRS, SMO, SPEN, SPTA1, TAF1. These mutations were predominantly linked to chromatin remodeling and were involved in critical oncogenic pathways such as Notch and Wnt signaling.
Conclusions:
This pilot study highlights the potential role of NGS analysis on solid biopsy in the assessment of the mutational profile of lung NET. A comparison of germline and somatic mutations is critical to identifying putative tumor driver mutations. In perspective, the enrichment of a subpopulation of cancer cells in the blood, with one or more specific mutations, is information of enormous clinical relevance, either for prognosis or therapeutic decisions. Translational studies on large prospective series are required to establish the role of liquid biopsy in lung NET.
Insights
This pilot study used whole exome sequencing to analyze lung neuroendocrine tumors (NETs), identifying shared germline and somatic mutations in genes like KDM5C and ATR. These findings offer insights into NET pathogenesis and potential therapeutic targets.
Area of Science:
- Oncology
- Genomics
- Molecular Pathology
Background:
- Lung neuroendocrine neoplasms (NENs) lack a defined molecular classification, hindering personalized treatment.
- Clinical heterogeneity exists within NENs, impacting prognosis.
- Current prognostic factors for lung neuroendocrine tumors (NETs) include stage, histotype, grade, location, and demographics.
Purpose of the Study:
- To investigate the genomic underpinnings of lung NETs.
- To uncover potential genetic mutations and copy number variations (CNVs) in lung NET pathogenesis.
- To explore the utility of next-generation sequencing (NGS) for assessing lung NET mutational profiles.
Main Methods:
- Whole exome sequencing (WES) of tumor biopsies and matched peripheral blood mononuclear cells from six lung NET patients.
- Profiling of germline and somatic mutations and detection of CNVs.
- Systematic documentation of clinical and pathological data.
Main Results:
- Identified shared germline and somatic mutations, including those in KDM5C, ATR, COL7A1, NOTCH4, PTPRS, SMO, SPEN, SPTA1, and TAF1.
- Detected mutations linked to chromatin remodeling and oncogenic pathways (Notch, Wnt signaling).
- Highlighted mutations associated with tumor proliferation and potential therapeutic targets.
Conclusions:
- NGS analysis of solid biopsies is valuable for assessing lung NET mutational profiles.
- Comparing germline and somatic mutations is crucial for identifying tumor driver mutations.
- Liquid biopsy may offer significant prognostic and therapeutic information for lung NETs, warranting further translational studies.
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