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Biology subjects

Schirmacher, P.

Publications and source records attributed to Schirmacher, P..

6 recordsLinked to original sources

Repurposing passenger amplifications as Trojan horses identifies MPZL1 as a potent target for solid cancers

Personalized cancer therapies focus mostly on targeting driver alterations, such as oncogenic point mutations or oncogenic driver events within large somatic copy number alterations. However, these alterations are often not actionable or only present in a small subset of patients. We hypothesized that passenger events, specifically in amplified regions, could be therapeutically exploited by providing actionable molecules on the cell surface, serving as Trojan horses for specific therapy delivery. Applying a multiomics in silico approach, we identified MPZL1 (Myelin protein zero-like 1), a glycosylated cell surface receptor located on chromosome 1q, as a promising candidate, which is amplified in up to 75% of cases in several solid cancers. Notably, immunohistochemistry of a wide range of human cancer tissues (n=2244 samples) as well as normal tissues revealed strong membranous MPZL1 expression in a majority of solid tumors (e.g. 48% of hepatocellular carcinomas or 89% of triple-negative breast cancers), whereas healthy tissues were mostly negative or just faintly positive for MPZL1. Next, we generated a highly specific monoclonal antibody directed to the extracellular domain of human MPZL1 protein and utilized this antibody to produce MPZL1 CAR-T cells. MPZL1 CAR-T cells showed high specificity as well as high sensitivity in targeting a multitude of human cancer cell lines (e.g. liver, breast, and lung cancer) with high MPZL1 expression in vitro. Finally, we demonstrate strong therapeutic efficiency of MPZL1 CAR-T cells not only in different human xenograft tumors in vivo but also in a unique autochthonous liver cancer mouse model. Our work provides a framework to target passenger events within large chromosomal amplifications, reveals MPZL1 as a new trojan horse entry point for therapies of 1q-amplified cancers, and as such opens a new avenue for innovative approaches in anti-cancer drug development.

cancer biology↗

Obesity promotes conserved inflammatory and metabolic transcriptional programs in mouse and human colon tumors

BackgroundThe global prevalence of obesity, an established risk and progression factor for colon cancer, is high and rising. Unfortunately, the mechanisms underlying the obesity-colon cancer association are incompletely understood, and new molecular targets enabling more effective intervention strategies to break the obesity-colon cancer link are urgently needed. ObjectiveThis study integrated RNA sequencing data from mouse and human colon tumor samples, as well as human adipose samples, to rigorously establish obesity-associated transcriptomic signatures conserved between the two species. MethodsWe employed a mouse colon cancer model with colonoscopy-guided orthotopic transplantation of syngeneic Apc-null;KrasG12D/+;Trp53-null;Smad4-null;tdTomato colon tumor organoids. Epithelial cell adhesion molecule (EpCAM)-positive cells from murine tumors, and 193 human colon tumors and 188 human mesenteric adipose tissue samples from the ColoCare cohort underwent transcriptomic analyses. ResultsDiet-induced obesity reduced survival in the mouse model of colon cancer. Integrated transcriptomic analyses of EpCAM-positive murine tumor cells and bulk human tumors revealed obesity-driven enrichment of inflammation and metabolic pathways, including upregulation of genes involved in innate immune sensing (TLR2, MYD88, IRF4) and tumor microenvironment remodeling (MMP9, TGFB1, SERPINE1). Analysis of paired mesenteric visceral adipose tissue and tumor samples from the ColoCare cohort indicated that obesity amplifies inflammatory signaling pathways through unique adipose ligand-tumor receptor interactions. ConclusionsThese results establish obesity-associated adipose tissue dysregulation as a key inter-tissue modulator of biology, with concordant cross-species effects on tumor cell-intrinsic inflammatory and metabolic programs.

cancer biology↗

Integrated combinatorial functional genomics and spatial transcriptomics of tumors decodes genotype to phenotype relationships

Linking the complex genetic changes underlying cancer to relevant disease-phenotypes poses a challenge. Therefore, we present CHOCOLAT-G2P, a scalable approach that integrates multiplex in vivo functional genomics with spatial transcriptomics. By redeploying RNA-templated ligation probes of commercial spatial transcriptomics technology, we streamline mapping composite genetic alterations and transcriptome-wide phenotyping on the same tissue section on a single readout platform. Using this framework, we studied combinatorial effects of 8 perturbations that induce autochthonous mosaic liver tumors sampled from 256 genotypes. Interrogating 324 tumors across six [~]6x6 mm2 sections, we charted phenotypic landscapes of genotypically-defined tumor ecosystems, revealing zonation-associated hepatocellular carcinoma subclasses and associations between tumor subtypes and stromal-as well as immune-cell signatures. Further, we decoded epistasis within compound genotypes uncovering opposing roles of Vegfa and mutant Ctnnb1 to cholangiocarcinoma development. Thus, CHOCOLAT-G2P lays a foundation to decipher how combinations of alterations interact to reprogram tumor cells and their microenvironment within the holistic context of tissue and whole organisms. (https://chocolat-g2p.dkfz.de/).

cancer biology↗

Phosphatidylinositol 4-kinase III alpha governs cytoskeletal organization for invasiveness of liver cancer cells

Background and AimsHigh expression of phosphatidylinositol 4-kinase III alpha (PI4KIII) correlates with poor survival rates in patients with hepatocellular carcinoma (HCC). In addition, Hepatitis C virus (HCV) infections activate PI4KIII and contribute to HCC progression. We aimed at mechanistically understanding the impact of PI4KIII on the progression of liver cancer and the potential contribution of HCV in this process. MethodsSeveral hepatic cell culture and mouse models were used to study functional importance of PI4KIII on liver pathogenesis. Antibody arrays, gene silencing and PI4KIII specific inhibitor were applied to identify the involved signaling pathways. The contribution of HCV was examined by using HCV infection or overexpression of its nonstructural protein. ResultsHigh PI4KIII expression and/or activity induced cytoskeletal rearrangements via increased-phosphorylation of paxillin and cofilin. This led to morphological alterations and higher migratory and invasive properties of liver cancer cells. We further identified the liver specific lipid kinase phosphatidylinositol 3-kinase C2 domain-containing subunit gamma (PIK3C2{gamma}) working downstream of PI4KIII in regulation of the cytoskeleton. PIK3C2{gamma} generates plasma membrane (PM) phosphatidylinositol 3,4-bisphosphate [PI(3,4)P2]- enriched, invadopodia-like structures which regulate cytoskeletal reorganization by promoting Akt2 phosphorylation. ConclusionsPI4KIII regulates cytoskeleton organization via PIK3C2{gamma}/Akt2/paxillin-cofilin to favor migration and invasion of liver cancer cells. These findings provide mechanistic insight into the contribution of PI4KIII and HCV to progression of liver cancer and identify promising targets for therapeutic intervention. IMPACT AND IMPLICATIONSUnderstanding mechanistically how high PI4KIII expression are associated with poor clinical outcomes of liver cancer is important to develop pharmaceutical interventions. Our study sheds light on the importance of the two lipid kinases PI4KIII and PIK3C2{gamma} as well as the contribution of HCV on liver cancer progression, unraveling the signaling pathway governing this process. This preclinical study contributes to better understanding the complex connection of phospholipids, cytoskeleton and liver cancer and suggests strategies to improve therapeutic outcomes by targeting important signaling molecules. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=161 SRC="FIGDIR/small/541742v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@16ba717org.highwire.dtl.DTLVardef@a6f681org.highwire.dtl.DTLVardef@181c3cdorg.highwire.dtl.DTLVardef@5df6aa_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Spatial modeling reveals nuclear phosphorylation and subcellular shuttling of YAP upon drug-induced liver injury

The Hippo signaling pathway controls cell proliferation and tissue regeneration via its transcriptional effectors yes-associated protein (YAP) and transcriptional coactivator with PDZ-binding motif (TAZ). In this context, the canonical pathway topology is characterized by sequential phosphorylation of kinases in the cytoplasm that define the subcellular localization of YAP and TAZ. However, the molecular mechanisms controlling the nuclear/cytoplasmic shuttling dynamics of both factors under physiological and tissue-damaging conditions are poorly understood. By implementing experimental data, partial differential equation (PDE) modeling, as well as automated image analysis, we demonstrate that nuclear phosphorylation contributes to differences between YAP and TAZ localization in the nucleus and cytoplasm. Treatment of hepatocyte-derived cells with hepatotoxic acetaminophen (APAP) overdose induces a biphasic protein phosphorylation eventually leading to nuclear protein enrichment of YAP but not TAZ. APAP-dependent regulation of nuclear/cytoplasmic YAP shuttling is not an unspecific cellular response but relies on the sequential induction of reactive oxygen species (ROS), RAC-alpha serine/threonine-protein kinase (AKT, synonym: protein kinase B), as well as elevated nuclear interaction between YAP and AKT. Mouse experiments confirm this consecutive sequence of events illustrated by the expression of ROS-, AKT-, and YAP-specific gene signatures upon APAP administration. In summary, our data illustrate the importance of nuclear processes in the regulation of Hippo pathway activity. YAP and TAZ exhibit different shuttling dynamics, which explains distinct cellular responses of both factors under physiological and tissue-damaging conditions. SignificanceWe show that canonical view on the Hippo pathway must be extended by additional regulatory processes in cell nuclei. These processes significantly contribute to the activity of YAP and TAZ under unchallenged conditions (e.g., with cell density as physiological regulator of the Hippo kinase cassette) or under cell damaging conditions (e.g., after administration of APAP overdose). APAP-induced cellular damage activates YAP via distinct molecular processes as part of a cell-protective response.

molecular biology↗

YAP orchestrates heterotypic endothelial cell communication via HGF/c-MET signaling in liver tumorigenesis

Next to cell autonomous mechanisms, the oncogene yes-associated protein (YAP) controls liver tumor initiation and progression via cell extrinsic functions creating a tumor-supporting environment. However, how YAP affects the microenvironment and in particular the vascular niche, which contributes to liver disease and hepatocarcinogenesis, is poorly understood. In this study, histo-morphological and molecular characterization of murine liver endothelial cells (ECs) populations and human single cell data revealed the presence of liver sinusoidal endothelial cells (LSECs) and capillary endothelial cells (CECs) in healthy liver tissue. In YAPS127A-induced tumorigenesis, a gradual replacement of LSECs by CECs was associated with dynamic changes in the expression of genes involved in EC subtype-specific paracrine communication. The formation of new potential communication hubs connecting CECs and LSECs included the hepatocyte growth factor (Hgf)/c-Met signaling pathway. In hepatocytes and tumor cells, YAP/TEA domain transcription factor 4 (TEAD4)-dependent transcriptional induction of osteopontin (Opn) stimulated c-Met expression in ECs with CEC phenotype, which sensitized these cells to the pro-migratory effects of LSEC-derived Hgf. In human HCCs, the presence of a migration-associated tip-cell signature correlated with poor clinical outcome and the loss of LSEC marker gene expression. In addition, the replacement of LSECs by CECs with exclusive c-MET expression in a CEC subpopulation was confirmed at the single cell level. In summary, YAP-dependent changes of the liver vascular niche comprise the formation of heterologous communication hubs (e.g. the HGF/c-Met axis), in which tumor cell-derived factors modify the crosstalk between LSECs and CECs.

cancer biology↗