A precision medicine approach to the myelodysplastic syndrome with isolated deletion 5q, 50 years after its discovery
Abstract
Abstract In 1974, Van den Berghe et al described a distinct hematologic disorder associated with acquired, interstitial deletion of part of the long arm of chromosome 5. This condition is now classified as myelodysplastic syndrome (MDS) with isolated deletion 5q, or MDS-del(5q). The common deletion region 5q32-5q33 contains several genes and microRNAs whose expression levels are reduced in hematopoietic cells, consistent with the loss of 1 allele. Haploinsufficiency production of multiple gene transcripts, primarily involving CSNK1A1, RPS14, MIR145, and MIR146A, results in myelodysplastic hematopoiesis. Lenalidomide can selectively suppress the del(5q)-mutant clone by promoting proteasomal degradation of casein kinase 1A1 and inducing mutant stem cell failure. However, lenalidomide is not a curative treatment, as almost all patients relapse. Molecular profiling studies have significantly improved our understanding of MDS-del(5q). Only a minority of patients have interstitial deletion 5q as their sole genetic lesion, a condition that is associated with an indolent clinical course. Most patients have co-occurring somatic mutations in myeloid genes, including DNMT3A, TET2, ASXL1, SF3B1, TP53, RUNX1, and CSNK1A1. These comutations have independent effects on leukemic transformation and survival, so genomic profiling is required for implementing a precision management approach to MDS-del(5q) in a clinical setting. Accurate assessment of the TP53 allelic state is crucial for distinguishing MDS-del(5q) from TP53-mutant MDS, a myeloid malignancy characterized by TP53 multihit state and very aggressive clinical course. Genomic profiling is also critical for therapeutic decision-making in patients with MDS-del(5q), particularly for assessing a patient’s eligibility for allogeneic transplantation, which remains the only curative treatment.
Article Details
Authors (18)
Marco Roncador
Elsa Bernard
2Institut Gustave Roussy, Computational Clinical Oncology Lab, UMR 981, Villejuif, France
Robert Hasserjian
13Massachusetts General Hospital, Department of Pathology, Boston, United States
Jacqueline Boultwood
Chiara Elena
4University of Pavia, Hematology, Pavia, Italy
Anna Gallì
6Department of Molecular Medicine, University of Pavia, Pavia, Italy
Carmelo Gurnari
1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH
Cristina Mecucci
2Laboratory of Molecular Medicine, Centro di Ricerca Emato-Oncologico, Santa Maria della Misericordia Hospital and Department of Medicine and Surgery, University of Perugia, Perugia, Italy
Lucienne Michaux
11Department of Human Genetics, University Hospitals Leuven, and Katholieke Universiteit Leuven, Leuven, Belgium
Moshe Mittelman
9Tel Aviv Sourasky Medical Center, Tel Aviv, Israel
Martina Sarchi
Department of Medicine (Hematology/Oncology), University of Washington
Erica Travaglino
8Pathology Unit, Fondazione IRCCS Policlinico San Matteo, Pavia, Italy
Donal P. McLornan
14Department of Haematology and Stem Cell Transplantation, University College London Hospitals NHS Foundation Trust, London, United Kingdom
Seishi Ogawa
Elli Papaemmanuil
Eva Hellström Lindberg
17Department of Medicine Huddinge, Center for Hematology and Regenerative Medicine, Karolinska University Hospital, Stockholm, Sweden
Luca Malcovati
Mario Cazzola
6Department of Molecular Medicine, University of Pavia, Pavia, Italy