Abstract
Background
B-cell precursor acute lymphoblastic leukemia (B-ALL) is amongst the leading causes of childhood cancer-related mortality. Its most common chromosomal aberration is the ETV6-RUNX1 fusion gene, with ~25 % of ETV6-RUNX1 patients also carrying PAX5 alterations.
Methods
We have recreated this mutation background by inter-crossing Etv6-RUNX1 (Etv6RUNX1-SB) and Pax5+/− mice and performed an in vivo analysis to find driver genes using Sleeping Beauty transposon-mediated mutagenesis and also exome sequencing.
Results
Combination of Etv6-RUNX1 and Pax5+/− alleles generated a transplantable B220 + CD19+ B-ALL with a significant disease incidence. RNA-seq analysis showed a gene expression pattern consistent with arrest at the pre-B stage. Analysis of the transposon common insertion sites identified genes involved in B-cell development (Zfp423) and the JAK/STAT signaling pathway (Jak1, Stat5 and Il2rb), while exome sequencing revealed somatic hotspot mutations in Jak1 and Jak3 at residues analogous to those mutated in human leukemias, and also mutation of Trp53.
Conclusions
Powerful synergies exists in our model suggesting STAT pathway activation and mutation of Trp53 are potent drivers of B-ALL in the context of Etv6-RUNX1;Pax5+/−.
Electronic supplementary material
The online version of this article (doi:10.1186/s12885-015-1586-1) contains supplementary material, which is available to authorized users.
Keywords: ETV6-RUNX1, Pax5, JAK/STAT, Trp53, Leukemia, B-cell precursor, Insertional mutagenesis
Background
B-cell precursor acute lymphoblastic leukemia (B-ALL) is the most common childhood tumor [1]. The most common chromosomal rearrangement in B-ALL is the t(12;21)(p13;q22) translocation generating the ETV6-RUNX1 fusion gene [2]. This fusion is necessary but insufficient for the development of B-ALL, as monozygotic twin studies, and the detection of the ETV6-RUNX1 fusion in fetal blood spots from patients who do not go on to develop B-ALL have shown [3, 4].
PAX5, a guardian of B-cell identity and function, is somatically mutated in ~40 % of cases of childhood B-ALL [5]. Moreover, the most common recurrent focal deletion region in ETV6-RUNX1+ tumors involves PAX5 (9p13.2; 25 %) and these deletions are thought to be early events in leukemogenesis [6]. Previously, we generated a knock-in mouse model of ETV6-RUNX1 ALL, in which expression of the fusion gene is driven from the endogenous Etv6 promoter, and is linked to expression of the Sleeping Beauty (SB) transposase allowing the identification of transposon gene mutations that co-operate with Etv6-RUNX1 in leukemia development [7]. Given that PAX5 heterozygosity is a frequent event in ETV6-RUNX1 patients [5], we bred these mice onto a background of Pax5 heterozygosity and performed a SB transposon-mediated mutagenesis screen to explore the profile of co-operating drivers. We coupled this approach with targeted exome sequencing of tumors to find additional mutations, and in particular hotspot mutation events.
Methods
Mouse strains
Generation and genotyping of Etv6-RUNX1, T2Onc [7] and Pax5 [8] mice has been described previously. For secondary bone marrow transplants of tumors, 6–12 week old SCID mice were inoculated with 3.5-5 × 105 bone marrow or spleen cells by tail vein injection. Animal studies were approved by the Home Office UK. Flow cytometric analysis of CD antigen expression was performed on single-cell suspensions from spleen or bone marrow as described previously [7].
Identification and analysis of genes affected by SB mutagenesis
Isolation of the transposon insertion sites and Gaussian kernel convolution statistical methods to identify common insertion sites (CISs) have been described previously [7]. Whole transcriptome sequencing (RNA-seq) was performed on splenic RNA using the mRNA Seq Sample Prep Kit (Illumina, San Diego, CA) to create libraries that were sequenced on the Illumina platform. HTSeq-counts (HTSeq framework; v0.54p5) were used as input to edgeR (v3.4.2). Genes with significant differential expression were defined based on an FDR of 5 %. Pathway and gene set enrichment analysis (GSEA) was performed using Ingenuity Pathway Analysis and GSEA (v2.0.14), respectively.
Exome sequencing and bait design
Spleen (‘tumor’) and tail (‘normal’) genomic DNA were extracted using the Gentra Puregene Cell Kit (Qiagen). Exon-coding sequences of genes previously found to be involved in cancer were captured using custom-designed baits (Additional file 1) and sequenced on an Illumina platform. For each tumor-normal pair, MuTect (v1.14) was used to identify somatic SNVs, which were annotated using the Variant Effect Predictor tool (Ensembl v74). The Jak1, Jak3 and Trp53 mutations were validated by capillary sequencing.
Results and discussion
To perform the SB transposon-mediated mutagenesis screen we intercrossed Pax5 (Pax5+/−) mice with transposon-carrying T2Onc mice and the resulting offspring were intercrossed with transposase-carrying Etv6-RUNX1 (Etv6+/RUNX1-SB) mice (Methods). The resulting genotypes in which transposition would occur were Etv6+/RUNX1-SB, T2Onc+/Tg, Pax5+/− (hereafter referred to as ER, Onc, Pax) and Etv6+/RUNX1-SB, T2Onc+/Tg mice (hereafter referred to as ER, Onc). Importantly we found that ER, Onc, Pax mice showed a significant increase in the proportion of B-cell precursor (BCP)-ALL cases when compared to ER, Onc mice wildtype for Pax5 (41/159 (26 %) versus 1/37 (3 %); p < 0.005 using a 2-tailed Fisher’s exact test), with 27/41 (66 %) of these cases being B220+ CD19+ (Fig. 1). Additional immunophenotyping of these B220+ CD19+ cells from ER, Onc, Pax mice confirmed their ontogenic arrest at the pre-B stage (consistent with Hardy fraction C’/D and ETV6-RUNX1+ patient leukemic cells; Fig. 1d). Importantly, the leukemias with an almost pure population of B220 + CD19+ cells were also transplantable in SCID mice (with recipients developing B-ALL within 11–55 days; Fig. 1e). RNA-seq analysis performed on 20 B-ALL cases and 6 age-matched control cases (ER, Onc, Pax mice that never developed disease) revealed that 14/34 (41 %) differentially expressed genes were components of canonical B cell development pathways (p = 1.26 × 10−6; Ingenuity Pathway Analysis), while GSEA revealed a significant enrichment for genes up-regulated in early B-cell development, specifically the pre-B stage (Additional file 2: Figure S1). Perturbation of B-cell homeostasis, in particular a maturation arrest at the pro-/pre-B stage, is a hallmark of human B-ALL [9]. Thus, our mouse model and the human disease show significant similarities, both in terms of differentially expressed genes and the stage of B-cell arrest. Interestingly we did not find that Pax5 heterozygosity accelerated leukemia development (Fig. 1a), suggesting its sole contribution to B-ALL development in our model is at the level of the induction of maturation arrest. This is in contrast to an additional cross we performed in which Etv6+/RUNX1-SB mice were bred to an Ink4a-deficient background resulting in a significantly decreased latency to leukemogenesis (p = 0.0012 using a Log-rank test; Additional file 3: Figure S2), which is in agreement with reports that INK4A inactivation is associated with an aggressive clinical course in ETV6-RUNX1+ B-ALL [10].
To define common transposon insertion sites (CISs), loci in the genome that have increased clustering of transposon insertion events and hence may contain candidate driver genes, tumor DNAs from the 20 mice that developed B220+ CD19+ B-ALL with a tumour cell fraction >60 % were analysed using 454-based ligand-mediated PCR sequencing [7]. Six statistically significant CISs were identified: Jak1, Stat5b, Zfp423, Il2rb, Cblb and Foxp1 (Fig. 2a). Four of these 6 genes (Zfp423, Cblb, Stat5b and Foxp1) have well-characterised roles in regulating B-cell maturation. Analysis of the RNA-seq data generated from the tumor collection confirmed that insertions in Zfp423, Jak1 and Stat5b resulted in significantly increased expression of these genes (Fig. 2a). Increased ZNF423 expression has been reported in BCP-ALL (revealing a strong association with ETV6-RUNX1+ cases) and elevated expression of this gene has been linked to a B-cell differentiation block [11]. Activation of the JAK/STAT signaling pathway is a frequent theme in hematological malignancies. In fact, increased expression of activated STAT5 is correlated with poor prognosis in ALL patients, and haploinsufficiency of Pax5 or Ebf1 synergize with constitutively expressed STAT5 to induce B-ALL [12]. Somatic mutations of CBL/CBLB in B-ALL typically involve small deletions affecting the intron/exon boundaries of exon 8, leading to skipping of this exon and the abolition of E3 ligase function; the transposon insertions in Cblb were in intron 8 and thus are likely to function via a similar mechanism [13]. Mutation of CBL is an alternative route to activate the RAS pathway [13], and mutations in RAS have been reported in hyperdiploidy BCP-ALL and ETV6-RUNX1+ cases [14]. Thus, our Etv6-RUNX1; Pax5+/− mouse model has several cardinal genetic features associated with B-ALL.
Interestingly an Etv6+/RUNX1-SB, T2Onc+/+, Pax5+/− mouse (TAPJ23.1a), in which transposition was not occuring, developed transplantable B-ALL (Fig. 1e), suggesting a contribution of background somatic mutations to tumor development leading us to investigate the somatic mutation landscape by targeted exome sequencing of 404 established cancer genes and candidate B-ALL drivers in 17 B220 + CD19+ B-ALL cases (Fig. 2b; Additional file 1). Strikingly the most commonly mutated genes were Jak3 (6/17 mice, 35 %), Trp53 (4/17 mice, 23 %) and Jak1 (2/17 mice, 11 %) with the missense mutations in Jak1/3 predominantly located in the pseudokinase domain (Fig. 2d). This domain has been demonstrated to exert an important negative regulatory function on the kinase domain [15] with many of the amino acid changes we identified falling into positions of JAK1/3 reported as being mutated in human leukemias, and shown to confer gain-of-function or transforming activity (Fig. 2e) [16–18]. Somatic mutations in JAK1 and JAK3 and have been reported in adult B-ALL [19] and high-risk/poor prognosis pediatric B-ALL [20], respectively. The variant allele frequency of Jak1/3 mutations was around 25 % suggesting that cells with these mutations represent a major clonal fraction (Fig. 2c). Recurrent somatic mutations in Jak1/3 have recently been reported in B-ALL tumors from Pax5+/- mice [PMID: 25855603], suggesting that the synergy with Jak mutations in our model is a result of the knockout allele for Pax5 rather than the presence of the Etv6-RUNX1 allele. We also observed somatic Trp53 mutations in our mouse tumors with copy number and/or sequence alterations of p53 being an independent risk predictor of inferior outcome/high risk of treatment failure in B-ALL patients [21, 22].
Conclusions
Collectively, our findings support a model in which multiple small defects in a network of factors that regulate B-cell maturation (such as Pax5, Cblb, Zfp423, Foxp1, and Stat5b) together with activation/inactivation of oncogenes/tumor suppressor genes (such as the JAK/STAT signaling pathway and p53) cooperate with Etv6-RUNX1; Pax5+/− to result in the development B-ALL. Our transplantable B-ALL tumors represent a novel tool for assessing potential therapeutic intervention strategies in cases of high risk/poor outcome B-ALL.
Acknowledgements
The authors wish to thank the staff of the Research Support Facility at the Wellcome Trust Sanger Institute for looking after the mice.
L.v.d.W., K.W., A.G.R., C.D.R.-E., and D.J.A. were supported by Cancer Research UK and the Wellcome Trust (WT098051). C.D.R.-E. was also supported by the Consejo Nacional de Ciencia y Tecnología of Mexico. B.J.H. and G.G. were supported by Medical Research Council UK and Cancer Research UK.
Additional files
Footnotes
Louise van der Weyden and George Giotopoulos contributed equally to this work.
Competing interests
The authors declare that they have no competing interests.
Authors’ contributions
LvdW, GG, BJHP and DJA designed research; LvdW, GG, HO, CDR-E and HK performed research; LvdW, GG, KW, AGR, BJHP and DJA analysed data; LvdW and DJA wrote the paper; and all authors critically reviewed and edited the paper. All authors read and approved the final manuscript.
Contributor Information
Louise van der Weyden, Email: lvdw@sanger.ac.uk.
George Giotopoulos, Email: gg320@cam.ac.uk.
Kim Wong, Email: kw10@sanger.ac.uk.
Alistair G. Rust, Email: ar12@sanger.ac.uk
Carla Daniela Robles-Espinoza, Email: cdre@sanger.ac.uk.
Hikari Osaki, Email: ho265@cam.ac.uk.
Brian J. Huntly, Email: bjph2@cam.ac.uk
David J. Adams, Phone: +44-1223-834-244, Email: da1@sanger.ac.uk
References
- 1.Mullighan CG. Molecular genetics of B-precursor acute lymphoblastic leukemia. J Clin Invest. 2012;122:3407–3415. doi: 10.1172/JCI61203. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 2.Shurtleff SA, Buijs A, Behm FG, Rubnitz JE, Raimondi SC, Hancock ML, Chan GC, Pui CH, Grosveld G, Downing JR. TEL/AML1 fusion resulting from a cryptic t(12;21) is the most common genetic lesion in pediatric ALL and defines a subgroup of patients with an excellent prognosis. Leukemia. 1995;9:1985–1989. [PubMed] [Google Scholar]
- 3.Ford AM, Bennett CA, Price CM, Bruin MC, Van Wering ER, Greaves M. Fetal origins of the TEL-AML1 fusion gene in identical twins with leukemia. Proc Natl Acad Sci U S A. 1998;95:4584–4588. doi: 10.1073/pnas.95.8.4584. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 4.Greaves MF, Maia AT, Wiemels JL, Ford AM. Leukemia in twins: lessons in natural history. Blood. 2003;102:2321–2333. doi: 10.1182/blood-2002-12-3817. [DOI] [PubMed] [Google Scholar]
- 5.Mullighan CG, Goorha S, Radtke I, Miller CB, Coustan-Smith E, Dalton JD, Girtman K, Mathew S, Ma J, Pounds SB, Su X, Pui C-H, Relling MV, Evans WE, Shurtleff SA, Downing JR. Genome-wide analysis of genetic alterations in acute lymphoblastic leukaemia. Nature. 2007;446:758–764. doi: 10.1038/nature05690. [DOI] [PubMed] [Google Scholar]
- 6.Lilljebjörn H, Soneson C, Andersson A, Heldrup J, Behrendtz M, Kawamata N, Ogawa S, Koeffler HP, Mitelman F, Johansson B, Fontes M, Fioretos T. The correlation pattern of acquired copy number changes in 164 ETV6/RUNX1-positive childhood acute lymphoblastic leukemias. Hum Mol Genet. 2010;19:3150–3158. doi: 10.1093/hmg/ddq224. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 7.Van der Weyden L, Giotopoulos G, Rust AG, Matheson LS, van Delft FW, Kong J, Corcoran AE, Greaves MF, Mullighan CG, Huntly BJ, Adams DJ. Modeling the evolution of ETV6-RUNX1-induced B-cell precursor acute lymphoblastic leukemia in mice. Blood. 2011;118:1041–1051. doi: 10.1182/blood-2011-02-338848. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 8.Urbánek P, Wang ZQ, Fetka I, Wagner EF, Busslinger M. Complete block of early B cell differentiation and altered patterning of the posterior midbrain in mice lacking Pax5/BSAP. Cell. 1994;79:901–912. doi: 10.1016/0092-8674(94)90079-5. [DOI] [PubMed] [Google Scholar]
- 9.Zhou Y, You MJ, Young KH, Lin P, Lu G, Medeiros LJ, Bueso-Ramos CE. Advances in the molecular pathobiology of B-lymphoblastic leukemia. Hum Pathol. 2012;43:1347–1362. doi: 10.1016/j.humpath.2012.02.004. [DOI] [PubMed] [Google Scholar]
- 10.Papadhimitriou SI, Polychronopoulou S, Tsakiridou AA, Androutsos G, Paterakis GS, Athanassiadou F. p16 inactivation associated with aggressive clinical course and fatal outcome in TEL/AML1-positive acute lymphoblastic leukemia. J Pediatr Hematol Oncol. 2005;27:675–677. doi: 10.1097/01.mph.0000193472.22117.26. [DOI] [PubMed] [Google Scholar]
- 11.Harder L, Eschenburg G, Zech A, Kriebitzsch N, Otto B, Streichert T, Behlich A-S, Dierck K, Klingler B, Hansen A, Stanulla M, Zimmermann M, Kremmer E, Stocking C, Horstmann MA. Aberrant ZNF423 impedes B cell differentiation and is linked to adverse outcome of ETV6-RUNX1 negative B precursor acute lymphoblastic leukemia. J Exp Med. 2013;210:2289–2304. doi: 10.1084/jem.20130497. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 12.Heltemes-Harris LM, Willette MJL, Ramsey LB, Qiu YH, Neeley ES, Zhang N, Thomas DA, Koeuth T, Baechler EC, Kornblau SM, Farrar MA. Ebf1 or Pax5 haploinsufficiency synergizes with STAT5 activation to initiate acute lymphoblastic leukemia. J Exp Med. 2011;208:1135–1149. doi: 10.1084/jem.20101947. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 13.Nicholson L, Knight T, Matheson E, Minto L, Case M, Sanichar M, Bomken S, Vormoor J, Hall A, Irving J. Casitas B lymphoma mutations in childhood acute lymphoblastic leukemia. Gene Chromosome Canc. 2012;51:250–256. doi: 10.1002/gcc.20949. [DOI] [PubMed] [Google Scholar]
- 14.Case M, Matheson E, Minto L, Hassan R, Harrison CJ, Bown N, Bailey S, Vormoor J, Hall AG, Irving JAE. Mutation of genes affecting the RAS pathway is common in childhood acute lymphoblastic leukemia. Cancer Res. 2008;68:6803–6809. doi: 10.1158/0008-5472.CAN-08-0101. [DOI] [PubMed] [Google Scholar]
- 15.Saharinen P, Vihinen M, Silvennoinen O. Autoinhibition of Jak2 tyrosine kinase is dependent on specific regions in its pseudokinase domain. Mol Biol Cell. 2003;14:1448–1459. doi: 10.1091/mbc.E02-06-0342. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 16.Sato T, Toki T, Kanezaki R, Xu G, Terui K, Kanegane H, Miura M, Adachi S, Migita M, Morinaga S, Nakano T, Endo M, Kojima S, Kiyoi H, Mano H, Ito E. Functional analysis of JAK3 mutations in transient myeloproliferative disorder and acute megakaryoblastic leukaemia accompanying Down syndrome. Br J Haematol. 2008;141:681–688. doi: 10.1111/j.1365-2141.2008.07081.x. [DOI] [PubMed] [Google Scholar]
- 17.Choi YL, Kaneda R, Wada T, Fujiwara S-I, Soda M, Watanabe H, Kurashina K, Hatanaka H, Enomoto M, Takada S, Yamashita Y, Mano H. Identification of a constitutively active mutant of JAK3 by retroviral expression screening. Leuk Res. 2007;31:203–209. doi: 10.1016/j.leukres.2006.05.006. [DOI] [PubMed] [Google Scholar]
- 18.Staerk J, Kallin A, Demoulin J-B, Vainchenker W, Constantinescu SN. JAK1 and Tyk2 activation by the homologous polycythemia vera JAK2 V617F mutation: cross-talk with IGF1 receptor. J Biol Chem. 2005;280:41893–41899. doi: 10.1074/jbc.C500358200. [DOI] [PubMed] [Google Scholar]
- 19.Flex E, Petrangeli V, Stella L, Chiaretti S, Hornakova T, Knoops L, Ariola C, Fodale V, Clappier E, Paoloni F, Martinelli S, Fragale A, Sanchez M, Tavolaro S, Messina M, Cazzaniga G, Camera A, Pizzolo G, Tornesello A, Vignetti M, Battistini A, Cavé H, Gelb BD, Renauld J-C, Biondi A, Constantinescu SN, Foà R, Tartaglia M. Somatically acquired JAK1 mutations in adult acute lymphoblastic leukemia. J Exp Med. 2008;205:751–758. doi: 10.1084/jem.20072182. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 20.Mullighan CG, Zhang J, Harvey RC, Collins-Underwood JR, Schulman BA, Phillips LA, Tasian SK, Loh ML, Su X, Liu W, Devidas M, Atlas SR, Chen I-M, Clifford RJ, Gerhard DS, Carroll WL, Reaman GH, Smith M, Downing JR, Hunger SP, Willman CL. JAK mutations in high-risk childhood acute lymphoblastic leukemia. Proc Natl Acad Sci U S A. 2009;106:9414–9418. doi: 10.1073/pnas.0811761106. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 21.Hof J, Krentz S, van Schewick C, Körner G, Shalapour S, Rhein P, Karawajew L, Ludwig W-D, Seeger K, Henze G, von Stackelberg A, Hagemeier C, Eckert C, Kirschner-Schwabe R. Mutations and deletions of the TP53 gene predict nonresponse to treatment and poor outcome in first relapse of childhood acute lymphoblastic leukemia. J Clin Oncol Off J Am Soc Clin Oncol. 2011;29:3185–3193. doi: 10.1200/JCO.2011.34.8144. [DOI] [PubMed] [Google Scholar]
- 22.Krentz S, Hof J, Mendioroz A, Vaggopoulou R, Dörge P, Lottaz C, Engelmann JC, Groeneveld TWL, Körner G, Seeger K, Hagemeier C, Henze G, Eckert C, von Stackelberg A, Kirschner-Schwabe R. Prognostic value of genetic alterations in children with first bone marrow relapse of childhood B-cell precursor acute lymphoblastic leukemia. Leukemia. 2013;27:295–304. doi: 10.1038/leu.2012.155. [DOI] [PubMed] [Google Scholar]