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Cytokine-regulated GADD45G induces differentiation and lineage selection in hematopoietic stem cells
(2014)
The balance of self-renewal and differentiation in long-term repopulating hematopoietic stem cells (LT-HSC) must be strictly controlled to maintain blood homeostasis and to prevent leukemogenesis. Hematopoietic cytokines can induce differentiation in LT-HSCs; however, the molecular mechanism orchestrating this delicate balance requires further elucidation. We identified the tumor suppressor GADD45G as an instructor of LT-HSC differentiation under the control of differentiation-promoting cytokine receptor signaling. GADD45G immediately induces and accelerates differentiation in LT-HSCs and overrides the self-renewal program by specifically activating MAP3K4-mediated MAPK p38. Conversely, the absence of GADD45G enhances the self-renewal potential of LT-HSCs. Videomicroscopy-based tracking of single LT-HSCs revealed that, once GADD45G is expressed, the development of LT-HSCs into lineage-committed progeny occurred within 36 hr and uncovered a selective lineage choice with a severe reduction in megakaryocytic-erythroid cells. Here, we report an unrecognized role of GADD45G as a central molecular linker of extrinsic cytokine differentiation and lineage choice control in hematopoiesis.
Natural killer (NK) cells are a noteworthy lymphocyte subset in cancer adoptive cell therapy. NK cells initiate innate immune responses against infections and malignancies with natural cytotoxicity, which is independent of foreign antigen recognition. Based on these substantive features, genetically modifying NK cells is among the prime goals in immunotherapy but is currently difficult to achieve. Recently, we reported a fully human CAR19 construct (huCAR19) with remarkable function in gene-modified T-cells. Here, we show efficient and stable gene delivery of huCAR19 to primary human NK cells using lentiviral vectors with transduction efficiencies comparable to those achieved with NK cell lines. These huCAR19 NK cells display specific and potent cytotoxic activity against target cells. To improve homing of NK cells to the bone marrow, we augmented huCAR19 NK cells with the human CXCR4 gene, resulting in transgenically augmented CAR NK cells (TRACKs). Compared to conventional CAR NK cells, TRACKs exhibit enhanced migration capacity in response to recombinant SDF-1 or bone marrow stromal cells while retaining functional and cytolytic activity against target cells. Based on these promising findings, TRACKs may become a novel candidate for immunotherapeutic strategies in clinical applications.
Hematopoietic stem cells (HSCs) have the unique abilities of life-long self-renewal and multi-lineage differentiation. They are routinely used in BM or stem cell transplantations to reconstitute the blood system of patients suffering from malignant or monogenic blood disorders. For an adequate production of each blood cell lineage in homeostasis and under stress conditions, the fate choice of HSCs to either self-renew or to differentiate must be strictly controlled. The incomplete understanding of the molecular mechanisms that control this balance makes it still impossible to maintain or expand undifferentiated HSCs in culture for advanced regenerative medical purposes.
The aim of this thesis was the identification and molecular characterisation of mechanisms that control the decision of HSCs to self-renew or to differentiate, and how they are connected to extrinsic cytokine signaling control. Prior to this thesis, a screening for genes upregulated under self-renewal promoting thrombopoietin (TPO) signaling via the transcription factors STAT5A/B in HSCs was conducted, and Growth arrest and DNA damage inducible 45 gamma (Gadd45g) was one of the regulated genes. GADD45G was described as stress sensor, DNA-damage response and tumor suppressor gene, that is epigenetically silenced in many solid tumors and leukemia. Furthermore, Gadd45g is upregulated in aged HSCs with impaired multi-lineage reconstitution abilities, and it is induced by differentiation promoting cytokines in GM-committed cells. However, the function of GADD45G in LT-HSCs was unknown. All these points warrant further investigation to unravel the function of GADD45G on early cell fate decisions of HSCs in hematopoiesis.
The expression of Gadd45g was stimulated by hematopoietic cytokines TPO, IL3 and IL6 both in HSCs and MPPs, making GADD45G an interesting target to focus on. To simulate the cytokine-induced expression GADD45G was lentivirally transduced in HSCs. Surprisingly, GADD45G did not induce cell cycle arrest or cell death in hematopoietic cells neither in vitro nor in vivo, as reported in many cell lines. Instead GADD45G revealed an enhanced and markedly accelerated differentiation of HSCs into mainly myelomonocytic cells, similar as observed for IL3 and IL6 containing cultures. Also in vivo, GADD45G rapidly initiates the differentiation program in HSCs at the expense of self-renewal and long-term engraftment, as shown by serial HSC transplantation experiments. Along the same line, HSCs from Gadd45g-knock out mice exhibited an increased self-renewal. In vitro, Gadd45g-/- progenitors showed higher and prolonged colony formation potential and slower expansion after cytokine stimulation. The loss of Gadd45g increased HSC self-renewal and improved repopulation in secondary recipients, determined by serial competitive transplantations. Taken together, GADD45G could be identified as molecular link between differentiation-promoting cytokine signaling and rapid differentiation induction in murine LT-HSCs.
As presented in this thesis the differentiation induction of GADD45G was mediated by the activation of the cascade of MAP3K4 – MKK6 –p38 MAPK. Small molecule inhibition of p38, but not JNK, blocked the GADD45G-induced differentiation. GADD45G binds to MAP3K4 and releases its auto-inhibitory loop by a change in confirmation, initiating this cascade. Phosphoflow cytometry demonstrated the activation of p38 and a downstream kinase MK2 by GADD45G expression in MPPs. Furthermore, the expression of constitutive active MAP3K4 and MKK6 were able to phenocopy GADD45G-induced differentiation, which could be blocked by p38 inhibition.
The other two family members GADD45A and B also induced accelerated differentiation in LT-HSCs. Interestingly, only GADD45G suppressed the differentiation into megakaryocyte and erythrocyte (Mek/E) lineage cells suggesting a role of GADD45G in lineage choice. Long-term time-lapse microscopy-based cell tracking of single LT-HSCs and their progeny revealed that, once GADD45G is expressed, the development of LT-HSCs into granulocyte-macrophage-committed progeny occurred within 36 hours, and uncovered a selective lineage choice with a severe reduction in Mek/E cells. Furthermore, no megakaryocytic-erythroid progenitors (MEPs) could develop from HSPCs in BM 2 weeks after transplantation suggesting a very early selection against Mek/E cell fates. In line with these findings, GADD45G-transduced MEPs could not expand or form colonies in vitro, demonstrating that the differentiation program induced by GADD45G is not compatible with Mek/E lineage fate. Gene expression profiling of HSCs indicated that GADD45G promotes myelomonocytic differentiation programs over programs for self-renewal or megakaryo-/ erythropoiesis. The here identified differentiation induction potential of GADD45G is so strong that the expression of GADD45G in primary acute myeloid leukemia (AML) cells inhibited their expansion accompanied by enhanced differentiation and increased apoptosis.
The here presented work shows that IL3 and IL6 induce a differentiation program in HSCs via GADD45G and p38 closing the link of extrinsic cytokine signaling and differentiation induction. Since the loss of Gadd45g increased the self-renewal and slowed HSC differentiation, this may be utilized, i.e. by p38 inhibition, to ex vivo maintain and expand HSCs by preventing cytokine-induced differentiation. Furthermore, Re-expression of GADD45G may overcome the differentiation block in leukemia to eliminate these cells by driving them into terminal differentiation and apoptosis.
Haematopoietic stem cells (HSCs) require the right composition of microRNAs (miR) for proper life-long balanced blood regeneration. Here we show a regulatory circuit that prevents excessive HSC self-renewal by upregulation of miR-193b upon self-renewal promoting thrombopoietin (TPO)-MPL-STAT5 signalling. In turn, miR-193b restricts cytokine signalling, by targeting the receptor tyrosine kinase c-KIT. We generated a miR-193b knockout mouse model to unravel the physiological function of miR-193b in haematopoiesis. MiR-193b−/− mice show a selective gradual enrichment of functional HSCs, which are fully competent in multilineage blood reconstitution upon transplantation. The absence of miR-193b causes an accelerated expansion of HSCs, without altering cell cycle or survival, but by decelerating differentiation. Conversely, ectopic miR-193b expression restricts long-term repopulating HSC expansion and blood reconstitution. MiR-193b-deficient haematopoietic stem and progenitor cells exhibit increased basal and cytokine-induced STAT5 and AKT signalling. This STAT5-induced microRNA provides a negative feedback for excessive signalling to restrict uncontrolled HSC expansion.
Chimeric antigen receptor (CAR) T cells are in prime focus of current research in cancer immunotherapy. Facilitating CAR T cell generation is among the top goals. We have recently demonstrated direct in vivo generation of human CD19-CAR T cells by targeting CD8+ cells using lentiviral vectors (LVs). The anti-tumor potency of in vivo generated CAR T cells was assessed in human PBMC-transplanted NSG mice carrying i.v. injected CD19+ Nalm-6 tumor cells. A single injection of CD8-targeted LV delivering CD19-CAR was sufficient to completely eliminate the tumor cells from bone marrow and spleen, whereas control animals contained high levels of CD19+ cells. Tumor elimination was due to in vivo generated CAR+ cells. Notably, these were not only composed of T lymphocytes but also included CAR+ natural killer cells (NK and NKT). This is the first demonstration of tumor elimination by in vivo generated human CAR T cells.
The ability of hematopoietic stem cells (HSCs) to self-renew is a prerequisite for the establishment of definitive hematopoiesis and life-long blood regeneration. Here, we report the single-stranded DNA-binding transcriptional regulator far upstream element (FUSE)-binding protein 1 (FUBP1) as an essential factor of HSC self-renewal. Functional inactivation of FUBP1 in two different mouse models resulted in embryonic lethal anemia at around E15.5 caused by severely diminished HSCs. Fetal and adult HSCs lacking FUBP1 revealed an HSC-intrinsic defect in their maintenance, expansion, and long-term blood reconstitution, but could differentiate into all hematopoietic lineages. FUBP1-deficient adult HSCs exhibit significant transcriptional changes, including upregulation of the cell-cycle inhibitor p21 and the pro-apoptotic Noxa molecule. These changes caused an increase in generation time and death of HSCs as determined by video-microscopy-based tracking. Our data establish FUBP1 and its recognition of single-stranded genomic DNA as an important element in the transcriptional regulation of HSC self-renewal.
Chimeric antigen receptor (CAR) T cells brought substantial benefit to patients with B‐cell malignancies. Notwithstanding, CAR T‐cell manufacturing requires complex procedures impeding the broad supply chain. Here, we provide evidence that human CD19‐CAR T cells can be generated directly in vivo using the lentiviral vector CD8‐LV specifically targeting human CD8+ cells. Administration into mice xenografted with Raji lymphoma cells and human peripheral blood mononuclear cells led to CAR expression solely in CD8+ T cells and efficacious elimination of CD19+ B cells. Further, upon injection of CD8‐LV into mice transplanted with human CD34+ cells, induction of CAR T cells and CD19+ B‐cell depletion was observed in 7 out of 10 treated animals. Notably, three mice showed elevated levels of human cytokines in plasma. Tissue‐invading CAR T cells and complete elimination of the B‐lymphocyte‐rich zones in spleen were indicative of a cytokine release syndrome. Our data demonstrate the feasibility of in vivo reprogramming of human CD8+ CAR T cells active against CD19+ cells, yet with similar adverse effects currently notorious in the clinical practice.
The hallmark of Philadelphia chromosome positive (Ph+) leukemia is the BCR/ABL kinase, which is successfully targeted by selective ATP competitors. However, inhibition of BCR/ABL alone is unable to eradicate Ph+ leukemia. The t(9;22) is a reciprocal translocation which encodes not only for the der22 (Philadelphia chromosome) related BCR/ABL, but also for der9 related ABL/BCR fusion proteins, which can be detected in 65% of patients with chronic myeloid leukemia (CML) and 100% of patients with Ph+ acute lymphatic leukemia (ALL). ABL/BCRs are oncogenes able to influence the lineage commitment of hematopoietic progenitors. Aim of this study was to further disclose the role of p96ABL/BCR for the pathogenesis of Ph+ ALL. The co-expression of p96ABL/BCR enhanced the kinase activity and as a consequence, the transformation potential of p185BCR/ABL. Targeting p96ABL/BCR by RNAi inhibited growth of Ph+ ALL cell lines and Ph+ ALL patient-derived long-term cultures (PD-LTCs). Our in vitro and in vivo stem cell studies further revealed a functional hierarchy of p96ABL/BCR and p185BCR/ABL in hematopoietic stem cells. Co-expression of p96ABL/BCR abolished the capacity of p185BCR/ABL to induce a CML-like disease and led to the induction of ALL. Taken together our here presented data reveal an important role of p96ABL/BCR for the pathogenesis of Ph+ ALL.