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Sorger, H.

Publications and source records attributed to Sorger, H..

5 recordsLinked to original sources

Targeting the hyperactive STAT3/5 pathway in cutaneous T-cell lymphoma with the multi-kinase nuclear transporter inhibitor IQDMA

Cutaneous T-cell lymphoma (CTCL), particularly its tumor stage mycosis fungoides (MF) subtype, presents considerable therapeutic challenges since current treatment modalities show limited efficacy. This study addresses the unmet need for novel targeted therapies that inhibit the STAT3/5 pathway, which is hyperactive in CTCL. Utilizing a murine model with intradermally grafted malignant T-cell lymphoma cells, we compared the efficacy of the multi-kinase inhibitor IQDMA with the conventional, topical psoralen + UV-A (PUVA) phototherapeutic regimen. Our data show that IQDMA reduced tumor volume by 90.7% (p = 0.0001) and was significantly more effective than PUVA, which reduced the tumor volume by only 46.2% (p = 0.0074). Results of an immunobiological analysis reveal that IQDMA treatment decreased tumor cell infiltration by 29.8% (p = 0.03) and the percentage of Ki67+ cells by 25.3% (p = 0.03), indicating a reduced tumor cell proliferation rate. Moreover, remarkable 40.0% and 45.6% reductions were observed in the total STAT5 (p = 0.047) and STAT3 (p = 0.01) levels of the infiltrating tumor cells upon IQDMA treatment. STAT5 levels are directly correlated with CD3+ tumor cell infiltration, confirming the role of the STAT3/5 pathway in the disease pathogenesis. Intriguingly, while phospho-STAT5 and total STAT5 levels directly correlated in the vehicle-treated group, a negative correlation was observed in the IQDMA-treated group, indicating IQDMA action in blocking STAT5 hyperactivation. IQDMA targets PAK kinase, a nuclear transporter for phospho-STAT5; in turn, we observed a compartmental shift of phospho-STAT5 from the nucleus to the cytoplasm. These key findings establish the properties of IQDMA as a potent targeted therapy for CTCL and offer compelling evidence for its clinical evaluation.

cancer biology↗

Small molecule STAT3/5 inhibitors exhibit therapeutic potential in acute myeloid leukemia and extra-nodal natural killer/T cell lymphoma

The oncogenic transcription factors STAT3, STAT5A and STAT5B are essential to steer hematopoiesis and immunity, but their enhanced expression and activation drives the development or progression of blood cancers. Current therapeutic strategies focus on blocking upstream tyrosine kinases, but frequently occurring resistance often leads to disease relapse, emphasizing the need for more targeted therapies. Here we evaluate JPX-0700 and JPX-0750, which are STAT3/5-specific covalent cysteine binders that lead to growth arrest of acute myeloid leukemia (AML) and natural killer/T cell lymphoma (NKCL) cell lines in vitro and in vivo, as well as reduce cell viability of primary AML blasts ex vivo. Our non-PROTAC small molecular weight degraders selectively reduce STAT3/5 activation and total protein levels, as well as downstream target oncogene expression, exhibiting nanomolar to low micromolar efficacy. We found that both AML and NKCL cells hijack STAT3/5 signaling through either upstream activating mutations in tyrosine kinases, activating gain-of-function mutations in STAT3, mutational loss of negative STAT regulators, or genetic gains in anti-apoptotic, pro-proliferative or epigenetic-modifying STAT3/5 targets. Moreover, we have shown synergistic inhibitory action of JPX-0700 and JPX-0750 upon combinatorial use with approved chemotherapeutics (doxorubicin, daunorubicin, cytarabine), epigenetic enzyme blocker vorinostat, tyrosine kinase inhibitor cabozantinib or BCL-2 inhibitor venetoclax. Importantly, JPX-0700 or JPX-0750 treatment reduced leukemic cell growth in human AML/NKCL xenograft mouse models without adverse side effects. These potent small molecule degraders of STAT3/5 could propel further clinical development for use in AML and NKCL patients.

cancer biology↗

STAT5 Gain-of-Function Variants Promote Precursor T-Cell Receptor Activation to Drive T-Cell Acute Lymphoblastic Leukemia

T-cell acute lymphoblastic leukemia (T-ALL) is an aggressive immature T-cell cancer. Hotspot mutations in JAK-STAT pathway members IL7R, JAK1 and JAK3 were analyzed in depth. However, the role of STAT5A or STAT5B mutations promoting their hyperactivation is poorly understood in the context of T-cell cancer initiation and acute leukemia progression. Importantly, the driver mutation STAT5BN642H encodes the most frequent activating STAT5 variant in T-ALL associated with poor prognosis. Here, we show that hyperactive STAT5 promotes early T-cell progenitor (ETP)-ALL-like cancer in mice and upregulated genes involved in T-cell receptor signaling (TCR), even in absence of surface TCR promoting. Importantly, these genes were also overexpressed in human T-ALL and other STAT5-dependent T-cell cancers. Moreover, human T-ALL cells were sensitive to pharmacologic inhibition by dual STAT3/5 degraders or ZAP70 tyrosine kinase blockers. Thus, we define STAT5 target genes in T-ALL that promote pre-TCR signaling mimicry. We propose therapeutic targeting using selective ZAP70 or STAT3/5 inhibitors in a subgroup of T-ALL patients with prominent IL-7R-JAK1/3-STAT5 activity. SignificanceWe provide detailed functional characterizations of hyperactive STAT5A or STAT5B in thymic T-cell development and transformation. We found that hyperactive STAT5 transcribes T-cell-specific kinases or pre-TCR signaling hubs to promote T-ALL. Biomolecular and next-generation-sequencing methods, transgenesis and pharmacologic interference revealed that hyperactive STAT5 is a key oncogenic driver that can be targeted in T-ALL using STAT3/5 or SYK family member tyrosine kinase inhibitors. Conflict of interestThe authors declare no potential conflicts of interest.

cancer biology↗

Human repair-related Schwann cells adopt functions of antigen-presenting cells in vitro

The plastic potential of Schwann cells (SCs) is increasingly recognized to play a role after nerve injury and in diseases of the peripheral nervous system. In addition, reports on the interaction between SCs and immune cells indicate their involvement in inflammatory processes. However, data about the immunocompetence of human SCs are primarily derived from neuropathies and it is currently unknown whether SCs directly regulate an adaptive immune response after nerve injury. Here, we performed a comprehensive analysis of the immunomodulatory capacities of human repair-related SCs (hrSCs), which recapitulate SC response to nerve injury in vitro. We used our previously established protocol for the culture of primary hrSCs from human peripheral nerves and analyzed the transcriptome, secretome, and cell surface proteins for signatures and markers relevant in innate and adaptive immunity, performed phagocytosis assays, and monitored T-cell subset activation in co-cultures with autologous human T-cells. Our findings show that hrSCs are highly phagocytic, which is in line with high MHCII expression. In addition, hrSCs express co-regulatory molecules, such as CD40, CD80, B7H3, CD58, CD86, HVEM, release a plethora of chemoattractants, matrix remodelling proteins and pro- as well as anti-inflammatory cytokines, and upregulate the T-cell inhibiting PD-L1 molecule upon pro-inflammatory stimulation with IFN{gamma}. Furthermore, hrSC contact reduced the number and activation status of allogenic CD4+ and CD8+ T-cells. This study demonstrates that hrSCs possess features and functions typical for professional antigen presenting cells in vitro, and suggest a new role of these cells as negative regulators of T-cell immunity during nerve regeneration. Main pointsO_LIHuman repair-related Schwann cells (hrSC) function as professional antigen presenting cells. C_LIO_LIHrSCs up-regulate PD-L1 upon pro-inflammatory IFN{gamma} stimulation. C_LIO_LIHrSCs hamper CD4+ and CD8+ T-cell activation. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=115 SRC="FIGDIR/small/483322v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@1b5fbb7org.highwire.dtl.DTLVardef@a0de85org.highwire.dtl.DTLVardef@1710ee9org.highwire.dtl.DTLVardef@189e3bc_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Schwann cell plasticity regulates neuroblastic tumor cell differentiation

The remarkable plasticity of Schwann cells (SCs) enables the acquisition of repair-specific functions essential for peripheral nerve regeneration. We hypothesized that this plastic potential is manifested in stromal SCs found within mostly benign-behaving peripheral neuroblastic tumors. To shed light on the cellular state and impact of stromal SCs, we combined transcriptome and proteome profiling of human ganglioneuromas and neuroblastomas, rich and poor in SC-stroma, respectively, as well as human injured nerve explants, rich in repair SCs. The results revealed a nerve repair-characteristic gene expression signature of stromal SCs. In turn, primary repair SCs had a pro-differentiating and anti-proliferative effect on aggressive neuroblastoma cell lines after direct and trans-well co-culture. Within the pool of secreted stromal/repair SC factors, we identified EGFL8, a matricellular protein with so far undescribed function, to induce neuronal differentiation of neuroblastoma cell lines. This study indicates that human SCs undergo a similar adaptive response in two patho-physiologically distinct situations, peripheral nerve injury and tumor development. This response is mediated by EGFL8 and other SC derived factors, which might be of therapeutic value for neuroblastic tumors and nerve regeneration. SYNOPSIS O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=156 SRC="FIGDIR/small/019422v2_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@14cb89forg.highwire.dtl.DTLVardef@1ecd06aorg.highwire.dtl.DTLVardef@66f08corg.highwire.dtl.DTLVardef@3a9962_HPS_FORMAT_FIGEXP M_FIG C_FIG In order to investigate the nature of stromal Schwann cells in benign peripheral neuroblastic tumors (ganglioneuromas), we compared the cellular state of stromal Schwann cells with repair-associated Schwann cells emerging in peripheral nerves after injury. O_LIStromal Schwann cells in ganglioneuromas and repair Schwann cells in injured nerves share the expression of nerve repair-associated genes. C_LIO_LINeuroblastoma cell lines, derived from high-risk metastatic peripheral neuroblastic tumors (neuroblastomas), respond to primary repair Schwann cells and their secretome with increased neuronal differentiation and reduced proliferation. C_LIO_LIStromal and repair Schwann cells express the matricellular protein EGFL8, which is capable to induce neuronal differentiation of neuroblastoma cell lines in recombinant form. C_LI THE PAPER EXPLAINEDO_ST_ABSProblemC_ST_ABSIn response to peripheral nerve damage, Schwann cells (SCs) are able to transform into specialized repair cells essential for nerve cell regeneration. Our previous studies indicated that this reactive/adaptive potential of human SCs is not restricted to injured nerve cells but also emerges in response to peripheral neuroblastic tumor cells. The usually benign subtypes of peripheral neuroblastic tumors, i.e. ganglioneuroblastomas and ganglioneuromas, contain neuronal differentiating tumor cells and are pervaded by various portions of stromal SCs. Of note, the amount of stromal SCs correlates with a favorable tumor behavior and increased patient survival, whereas aggressive subtypes of peripheral neuroblastic tumors, i.e. neuroblastomas, usually lack stromal SCs and have bad prognosis. This enigma prompted us to investigate the molecular wiring and functional state of stromal SCs versus injury-associated repair SCs and how SC signals could be leveraged as therapeutics. ResultOur study revealed that the cellular state of stromal SCs in ganglioneuromas is in many aspects very similar to human repair SCs in injured nerves as both, stromal SCs and repair SCs, are equipped with distinct nerve repair-associated functions. Hence, we exposed different cell lines, derived from high-risk metastatic neuroblastomas, to primary repair SCs or their secretome. The results demonstrated that repair SCs had a pro-differentiating and anti-proliferative effect of on neuroblastoma cell lines upon direct and/or indirect contact. Searching for secreted anti-tumor factors by transcriptome and proteome analyses identified that the matricellular protein EGFL8 was highly expressed in injured nerves and ganglioneuromas. EGFL8 gene expression in peripheral neuroblastic tumors further correlated with increased patient survival. Indeed, treatment of neuroblastoma cell lines with recombinant EGFL8 promoted neuronal differentiation and present EGFL8 as a novel neuritogen. ImpactThese findings demonstrate that stromal SCs are equipped with the tools to exert nerve repair-associated functions on peripheral neuroblastic tumor cells and the tumor microenvironment. We further show that the pool of secreted stromal/repair SC molecules contains yet uncharacterized factors with a therapeutic potential for aggressive neuroblastomas. We conclude that the inherent plasticity (reactive/adaptive potential) of SCs is responsible for the development of usually benign ganglioneuroblastomas and ganglioneuromas and, thus, is of utmost interest to be exploited in future treatment approaches for aggressive neuroblastoma subtypes.

cancer biology↗