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Proehl, J.

Publications and source records attributed to Proehl, J..

3 recordsLinked to original sources

Murine models for triple-negative breast cancer with differential responsiveness to immunotherapy

Breast cancer is the most common cancer diagnosis in women. Clinical studies with triple-negative breast cancer (TNBC) are encouraging for immunotherapy combined with chemotherapy (anti-PD-1 with paclitaxel and/or carboplatin). However, additional clinical advances may be pursued more rapidly with assistance from preclinical TNBC models including syngeneic mammary tumor cell lines. Here, we report two mammary tumor cell lines that exhibit differential responsiveness to immunotherapy in vivo. Spontaneous mammary tumors from C57BL/6J MMTV-Cre Trp53fl/+ animals were passaged serially in cell culture and in vivo in the mammary fat pad of fully wildtype animals. The resulting lines, MM001i and MM008i, lost Trp53 and formed 1000 mm3 tumors in the mammary fat pad within 21-28 days. Despite originating from the same genetic background, these lines exhibit differential responses to immunotherapy. For anti-PD-1 therapy, MM001i is poorly responsive and MM008i is strongly responsive with near-complete tumor regression. In comparison, both MM001i and MM008i respond rapidly to anti-CTLA-4 therapy. Both models express unique tumor antigens as evidenced by immunity to subsequent engraftments. Primary MM008i tumors exhibit greater T cell infiltration, and CD8-positive T lymphocytes are required for anti-PD-1 responses. These TNBC models are promising for further mechanistic studies and testing future single and combinatorial therapies.

cancer biology↗

Tobacco smoke carcinogens exacerbate APOBEC mutagenesis and carcinogenesis

Mutational processes are thought to act independently and additively. We challenge this view by demonstrating that DNA-adducting agents sensitize the genome to mutagenesis by APOBEC enzymes. A model tobacco carcinogen (NQO) triggers a 100-fold increase in APOBEC3B- catalyzed signature mutations and elevates oral carcinoma levels in vivo. A hallmark of this unidirectional synergy is strand-coordinated pairs of APOBEC signature mutations within 32nt of each other (didyma). Biochemical experiments show that APOBEC3B can catalyze didyma formation, and genetic studies demonstrate requirements for APOBEC3B and functional nucleotide excision repair (XPA in human cells and Rad14 in yeast). Analyses of lung and head & neck cancers show that APOBEC mutagenesis and didyma are elevated in tumors from smokers compared to non-smokers. Additional tumor types with links to DNA-adducting agents also exhibit didyma. These studies support a model in which DNA-adducting carcinogens activate nucleotide excision repair and amplify mutagenesis by APOBEC enzymes in cancer.

cancer biology↗

Human APOBEC3B promotes tumor heterogeneity in vivo including signature mutations and metastases

The antiviral DNA cytosine deaminase APOBEC3B has been implicated as a source of mutation in many different cancers. Despite over 10 years of work, a causal relationship has yet to be established between APOBEC3B and any stage of carcinogenesis. Here we report a murine model that expresses tumor-like levels of human APOBEC3B after Cre-mediated recombination. Animals appear to develop normally with full-body expression of APOBEC3B. However, adult males manifest infertility and older animals of both sexes show accelerated rates of tumorigenesis (mostly lymphomas or hepatocellular carcinomas). Interestingly, primary tumors also show overt heterogeneity, and a subset spreads to secondary sites. Both primary and metastatic tumors exhibit increased frequencies of C-to-T mutations in TC dinucleotide motifs consistent with the established biochemical activity of APOBEC3B. Elevated levels of structural variation and insertion-deletion mutations also accumulate in these tumors. Together, these studies provide the first cause-and-effect demonstration that human APOBEC3B is an oncoprotein capable of causing a wide range of genetic changes and driving tumor formation in vivo.

cancer biology↗