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Kauzlaric, A.

Publications and source records attributed to Kauzlaric, A..

2 recordsLinked to original sources

Multiomic profiling of human and canine soft-tissue sarcomas reveals extensive molecular homology across species and identifies clinically relevant subgroups

Soft-tissue sarcoma (STS) are rare and heterogeneous mesenchymal tumours with over 100 recognized human subtypes. Despite advances in cytogenetic and molecular characterization, diagnostic precision and therapeutic options remain limited for most subtypes. Spontaneously occurring canine STS could represent valuable translational models, due to their higher incidence and clinical similarity to human counterparts. However, molecular cross-species comparisons of specific subtypes are largely missing. Here, we performed a tissue-resolved, cross-species analysis of tumour and matched adjacent normal tissue (NT) in human and canine fibrosarcoma (FSA) and myxofibrosarcoma (MFS) by laser-capture microdissection of FFPE specimens combined with RNAseq and LC-MS/MS. Multimodal profiling revealed FSA and MFS to represent a molecular continuum rather than distinct entities in both species, resulted in identification of clinically relevant subgroups based on immune activation, proliferative activity and copy number alterations, and identified a novel canine STS subtype associated with a gene fusion. Moreover, our analyses revealed cross-species conserved transcriptomic and proteomic alterations distinguishing tumour from NT, including pathways linked to extracellular matrix remodelling, immune modulation, and cell proliferation. These data establish the first comprehensive molecular comparison of canine and human FSA and MFS, highlight the translational relevance of canine models, and identify candidate biomarkers for diagnostic refinement and development of targeted therapeutic modalities.

cancer biology↗

Tumor-educated Gr1+CD11b+ cells instigate breast cancer metastasis by twisting cancer cells plasticity via OSM/IL6-JAK signaling

Cancer cell plasticity contributes to tumor therapy resistance and metastasis formation, which represent the main causes of cancer-related death for most cancers, including breast cancer. The tumor microenvironment drives cancer cell plasticity and metastasis and, thus, unravelling the underlying cues may provide novel effective strategies to manage metastatic disease. Here, we show that stem cell antigen-1 positive (Sca-1+) murine breast cancer cells enriched during tumor progression and metastasis have higher in vitro cancer stem cell-like properties, enhanced in vivo metastatic ability, and initiate primary tumors rich in Gr1highCD11b+Ly6Clow cells. In turn, tumor-educated Gr1+CD11b+ (Tu-Gr1+CD11b+) cells rapidly and transiently convert low metastatic 4T1-Sca-1- cells into highly metastatic 4T1-Sca-1+ cells via secreted OSM and IL6. Moreover, chemotherapy- resistant and highly metastatic 4T1-derived cells maintain high Sca-1+ frequency through cell autonomous IL6 production. Inhibition of OSM, IL6 or JAK suppressed Tu-Gr1+CD11b+-induced Sca-1+ population enrichment in vitro, while JAK inhibition abrogated metastasis of chemotherapy-enriched Sca-1+ cells in vivo. Importantly, Tu-Gr1+CD11b+ cells invoked a gene signature in tumor cells predicting shorter OS and RFS in breast cancer patients. Collectively, our data identified OSM/IL6-JAK as a clinically relevant paracrine/autocrine axis instigating breast cancer cell plasticity triggering metastasis.

cancer biology↗