Outcomes of paediatric patients with B-cell acute lymphocytic leukaemia with ABL-class fusion in the pre-tyrosine-kinase inhibitor era: a multicentre, retrospective, cohort study.
Adolescent
Allografts
Child
Child, Preschool
Disease-Free Survival
Female
Follow-Up Studies
Hematopoietic Stem Cell Transplantation
Humans
Infant
Male
Oncogene Proteins, Fusion
/ genetics
Precursor B-Cell Lymphoblastic Leukemia-Lymphoma
/ genetics
Progression-Free Survival
Protein Kinase Inhibitors
Protein-Tyrosine Kinases
/ genetics
Proto-Oncogene Proteins c-abl
/ genetics
Journal
The Lancet. Haematology
ISSN: 2352-3026
Titre abrégé: Lancet Haematol
Pays: England
ID NLM: 101643584
Informations de publication
Date de publication:
Jan 2021
Jan 2021
Historique:
received:
23
07
2020
revised:
28
09
2020
accepted:
29
09
2020
pubmed:
29
12
2020
medline:
5
1
2021
entrez:
28
12
2020
Statut:
ppublish
Résumé
ABL-class fusion genes other than BCR-ABL1 have been identified in approximately 3% of children with newly diagnosed acute lymphocytic leukaemia, and studies suggest that leukaemic cells carrying ABL-class fusions can be targeted successfully by tyrosine-kinase inhibitors. We aimed to establish the baseline characteristics and outcomes of paediatric patients with ABL-class fusion B-cell acute lymphocytic leukaemia in the pre-tyrosine-kinase inhibitor era. This multicentre, retrospective, cohort study included paediatric patients (aged 1-18 years) with newly diagnosed ABL-class fusion (ABL1 fusion-positive, ABL2 fusion-positive, CSF1R fusion-positive, and PDGFRB fusion-positive) B-cell acute lymphocytic leukaemia enrolled in clinical trials of multidrug chemotherapy done between Oct 3, 2000, and Aug 28, 2018, in which tyrosine-kinase inhibitors had not been given as a first-line treatment. Patients from 14 European, North American, and Asia-Pacific study groups of the Ponte di Legno group were included. No patients were excluded, and patients were followed up by individual study groups. Through the Ponte di Legno group, we collected data on the baseline characteristics of patients, including IKZF1, PAX5, and CDKN2A/B deletion status, and whether haematopoietic stem cell transplantation (HSCT) had been done, as well as treatment outcomes, including complete remission, no response, relapse, early death, and treatment-related mortality, response to prednisone, and minimal residual disease (MRD) at end of induction therapy. 5-year event-free survival and 5-year overall survival were estimated by use of Kaplan-Meier methods, and the 5-year cumulative incidence of relapse was calculated by use of a competing risk model. We identified 122 paediatric patients with newly diagnosed ABL-class fusion B-cell acute lymphocytic leukaemia (77 from European study groups, 25 from North American study groups, and 20 from Asia-Pacific study groups). 64 (52%) of 122 patients were PDGFRB fusion-positive, 40 (33%) were ABL1 fusion-positive, ten (8%) were CSF1R fusion-positive, and eight (7%) were ABL2 fusion-positive. In all 122 patients, 5-year event-free survival was 59·1% (95% CI 50·5-69·1), 5-year overall survival was 76·1% (68·6-84·5), and the 5-year cumulative incidence of relapse was 31·0% (95% CI 22·4-40·1). MRD at the end of induction therapy was high (≥10 Children with ABL-class fusion B-cell acute lymphocytic leukaemia have poor outcomes when treated with regimens that do not contain a tyrosine-kinase inhibitor, despite the use of high-risk chemotherapy regimens and frequent HSCT upon first remission. Our findings provide a reference for evaluating the potential benefit of first-line tyrosine-kinase inhibitor treatment in patients with ABL-class fusion B-cell acute lymphocytic leukaemia. The Oncode Institute, Pediatric Cancer Foundation Rotterdam, Dutch Cancer Society, Kika Foundation, Deutsche Krebshilfe, Blood Cancer UK, Associazione Italiana per la Ricerca sul Cancro, Cancer Australia, National Cancer Institute, National Institute of Health, and St Baldrick's Foundation.
Sections du résumé
BACKGROUND
BACKGROUND
ABL-class fusion genes other than BCR-ABL1 have been identified in approximately 3% of children with newly diagnosed acute lymphocytic leukaemia, and studies suggest that leukaemic cells carrying ABL-class fusions can be targeted successfully by tyrosine-kinase inhibitors. We aimed to establish the baseline characteristics and outcomes of paediatric patients with ABL-class fusion B-cell acute lymphocytic leukaemia in the pre-tyrosine-kinase inhibitor era.
METHODS
METHODS
This multicentre, retrospective, cohort study included paediatric patients (aged 1-18 years) with newly diagnosed ABL-class fusion (ABL1 fusion-positive, ABL2 fusion-positive, CSF1R fusion-positive, and PDGFRB fusion-positive) B-cell acute lymphocytic leukaemia enrolled in clinical trials of multidrug chemotherapy done between Oct 3, 2000, and Aug 28, 2018, in which tyrosine-kinase inhibitors had not been given as a first-line treatment. Patients from 14 European, North American, and Asia-Pacific study groups of the Ponte di Legno group were included. No patients were excluded, and patients were followed up by individual study groups. Through the Ponte di Legno group, we collected data on the baseline characteristics of patients, including IKZF1, PAX5, and CDKN2A/B deletion status, and whether haematopoietic stem cell transplantation (HSCT) had been done, as well as treatment outcomes, including complete remission, no response, relapse, early death, and treatment-related mortality, response to prednisone, and minimal residual disease (MRD) at end of induction therapy. 5-year event-free survival and 5-year overall survival were estimated by use of Kaplan-Meier methods, and the 5-year cumulative incidence of relapse was calculated by use of a competing risk model.
FINDINGS
RESULTS
We identified 122 paediatric patients with newly diagnosed ABL-class fusion B-cell acute lymphocytic leukaemia (77 from European study groups, 25 from North American study groups, and 20 from Asia-Pacific study groups). 64 (52%) of 122 patients were PDGFRB fusion-positive, 40 (33%) were ABL1 fusion-positive, ten (8%) were CSF1R fusion-positive, and eight (7%) were ABL2 fusion-positive. In all 122 patients, 5-year event-free survival was 59·1% (95% CI 50·5-69·1), 5-year overall survival was 76·1% (68·6-84·5), and the 5-year cumulative incidence of relapse was 31·0% (95% CI 22·4-40·1). MRD at the end of induction therapy was high (≥10
INTERPRETATION
CONCLUSIONS
Children with ABL-class fusion B-cell acute lymphocytic leukaemia have poor outcomes when treated with regimens that do not contain a tyrosine-kinase inhibitor, despite the use of high-risk chemotherapy regimens and frequent HSCT upon first remission. Our findings provide a reference for evaluating the potential benefit of first-line tyrosine-kinase inhibitor treatment in patients with ABL-class fusion B-cell acute lymphocytic leukaemia.
FUNDING
BACKGROUND
The Oncode Institute, Pediatric Cancer Foundation Rotterdam, Dutch Cancer Society, Kika Foundation, Deutsche Krebshilfe, Blood Cancer UK, Associazione Italiana per la Ricerca sul Cancro, Cancer Australia, National Cancer Institute, National Institute of Health, and St Baldrick's Foundation.
Identifiants
pubmed: 33357483
pii: S2352-3026(20)30353-7
doi: 10.1016/S2352-3026(20)30353-7
pmc: PMC9709453
mid: NIHMS1847699
pii:
doi:
Substances chimiques
Oncogene Proteins, Fusion
0
Protein Kinase Inhibitors
0
ARG tyrosine kinase
EC 2.7.1.-
Protein-Tyrosine Kinases
EC 2.7.10.1
ABL1 protein, human
EC 2.7.10.2
Proto-Oncogene Proteins c-abl
EC 2.7.10.2
Types de publication
Clinical Trial
Journal Article
Multicenter Study
Langues
eng
Sous-ensembles de citation
IM
Pagination
e55-e66Subventions
Organisme : NCI NIH HHS
ID : U24 CA196173
Pays : United States
Organisme : NCI NIH HHS
ID : R35 CA197695
Pays : United States
Organisme : NCI NIH HHS
ID : U10 CA098543
Pays : United States
Organisme : NCI NIH HHS
ID : U10 CA180899
Pays : United States
Organisme : NCI NIH HHS
ID : U10 CA180886
Pays : United States
Organisme : NCI NIH HHS
ID : U10 CA098413
Pays : United States
Organisme : NCI NIH HHS
ID : U24 CA114766
Pays : United States
Commentaires et corrections
Type : CommentIn
Type : ErratumIn
Informations de copyright
Copyright © 2021 Elsevier Ltd. All rights reserved.
Références
Oncotarget. 2017 Jan 17;8(3):4618-4628
pubmed: 27894077
Blood. 2018 Aug 23;132(8):815-824
pubmed: 29997224
Blood. 2019 Oct 17;134(16):1351-1355
pubmed: 31434701
Leukemia. 2014 Apr;28(4):977-9
pubmed: 24186003
J Clin Oncol. 2017 Aug 1;35(22):2527-2534
pubmed: 28535084
Blood. 2014 Mar 13;123(11):1691-8
pubmed: 24366361
Lancet Oncol. 2012 Sep;13(9):936-45
pubmed: 22898679
Blood Adv. 2018 Mar 13;2(5):529-533
pubmed: 29507076
Lancet Haematol. 2018 Dec;5(12):e641-e652
pubmed: 30501871
J Clin Oncol. 2013 Sep 1;31(25):e413-6
pubmed: 23835704
J Clin Oncol. 2018 Aug 1;36(22):2306-2314
pubmed: 29812996
Blood Adv. 2019 Jan 22;3(2):148-157
pubmed: 30651283
Blood Cancer J. 2016 May 13;6:e419
pubmed: 27176795
N Engl J Med. 2009 Jan 29;360(5):470-80
pubmed: 19129520
Haematologica. 2019 Jan;104(1):e13-e16
pubmed: 30213832
JAMA Oncol. 2020 Mar 1;6(3):358-366
pubmed: 31944221
J Clin Oncol. 2018 Apr 20;36(12):1240-1249
pubmed: 29498923
Leukemia. 2014 Jul;28(7):1467-71
pubmed: 24441288
Blood. 2010 Apr 22;115(16):3206-14
pubmed: 20154213
Cancer Cell. 2012 Aug 14;22(2):153-66
pubmed: 22897847
Blood Adv. 2017 Aug 30;1(20):1657-1671
pubmed: 29296813
Haematologica. 2013 Nov;98(11):e146-8
pubmed: 24186319
Lancet Oncol. 2009 Feb;10(2):125-34
pubmed: 19138562
Blood. 2013 Oct 10;122(15):2622-9
pubmed: 23974192
Blood. 2017 Jun 22;129(25):3352-3361
pubmed: 28408464
J Clin Oncol. 2016 Aug 1;34(22):2591-601
pubmed: 27269950
Leukemia. 2004 May;18(5):934-8
pubmed: 15029212
Blood. 2016 May 5;127(18):2214-8
pubmed: 26872634
Haematologica. 2020 Jul;105(7):1887-1894
pubmed: 31601692
Blood. 2015 Jun 25;125(26):3977-87
pubmed: 25999453
Leukemia. 2021 Apr;35(4):1001-1011
pubmed: 32820270
N Engl J Med. 2014 Sep 11;371(11):1005-15
pubmed: 25207766