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Author

O. Kosmider

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Aug 2026

Low-frequency CDKN1B variants in pituitary testing: a diagnostic pitfall.

Low variant allele frequency (VAF) variants identified during germline testing may represent constitutional mosaicism or acquired somatic events restricted to hematopoietic cells. Although clonal hematopoiesis of indeterminate potential (CHIP) has emerged as an important source of interpretative pitfalls in hereditary cancer testing, its potential impact on the interpretation of CDKN1B variants has not been specifically emphasized. We aimed to determine whether low-VAF CDKN1B variants detected during routine germline testing for pituitary adenoma predisposition may represent clonal hematopoiesis rather than true constitutional alterations. We analyzed patients referred for routine genetic investigation of pituitary adenoma predisposition in whom low-frequency CDKN1B variants were identified in blood-derived DNA. Additional analyses were performed, including assessment of variant distribution in non-hematopoietic tissues, tumor DNA analysis, and investigation of CHIP-associated genes. Three unrelated patients carrying truncating CDKN1B variants were identified, with blood-derived VAFs ranging from 4% to 6%. Clinical presentations included two gonadotroph macroadenomas diagnosed later than age 70 years and one prolactin-secreting macroadenoma diagnosed before age 35. CDKN1B variants were absent in buccal swab DNA and from available pituitary tumor DNA. Additional pathogenic variants affecting CHIP-associated genes were identified in two individuals. Collectively, these findings supported a leukocyte-restricted origin of the CDKN1B variants and suggested CHIP as the most likely explanation. Low-frequency CDKN1B variants detected during blood-based germline testing should not automatically be interpreted as constitutional mosaicism or inherited endocrine tumor predisposition. Integration of tissue-specific analyses and consideration of CHIP-related findings are essential to avoid inappropriate genetic counseling, unnecessary familial investigations, and misleading surveillance recommendations.

A. Chansavang, C. Friedrich, Emmanuelle Kuhn et al. · 0 citations
Open access Aug 2026

Non-genetic remodeling drives leukemia propagation and reveals actionable vulnerabilities in acute myeloid leukemia.

Acute myeloid leukemia (AML) persistence and relapse are sustained by leukemia-propagating cells, yet the molecular programs supporting their expansion during disease evolution remain incompletely understood. Using serial patient-derived xenotransplantation, we establish a longitudinal model in which leukemia-initiating capacity progressively increases. Integrated single-cell transcriptomics and multi-omics profiling reveal a predominantly non-genetic trajectory that follows a conserved pattern across models and is associated with coordinated changes across epigenetic, transcriptional, and proteomic layers. Ribosome profiling and rRNA 2'-O-methylation analyses further support a stage-specific increase in translational activity with ribosome remodeling in advanced xenografts. A pharmacological screen of 3,247 compounds uncovers a limited set of vulnerabilities that consistently emerge during disease progression, including CRBN-dependent degradation of GSPT1 (CC-885) and IAP antagonism (AZD5582). In vivo validation shows that both agents markedly reduce leukemic burden, impair leukemia propagation, and enhance cytarabine activity in patient-derived xenograft (PDX) models. Together, these findings show that leukemic propagation is driven by a non-genetic remodeling program, providing a framework to prioritize and test stage-specific therapeutic strategies in AML.

Clément Larrue, Paolo Angelino, Sarah Mouche et al. · 0 citations

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