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Helke, K. L.

Publications and source records attributed to Helke, K. L..

2 recordsLinked to original sources

MUC4-targeted CAR-T Cells Restrain Chemotherapy-resistant Colorectal Cancer

Colorectal cancer (CRC) is the leading cause of cancer mortality in young adults, with chemoresistance and metastatic progression severely limiting treatment options. MUC4, a membrane-bound mucin normally confined to the apical surface of epithelial cells, becomes aberrantly overexpressed across the tumor cell membrane in CRC and other cancer types, promoting cancer survival, immune evasion, and metastasis. Therefore, MUC4 is a promising candidate for the development of targeted therapies. We detected MUC4 cell surface expression in a panel of human CRC cell lines. We engineered MUC4-specific chimeric antigen receptor (CAR) T cells and evaluated their activity against methotrexate-resistant MUC4-expressing human CRC cell lines HT29-MTX and T84. MUC4 CAR-T cells efficiently eliminated HT29-MTX and T84 cells in vitro and delayed HT29-MTX subcutaneous tumor growth in vivo. Importantly, MUC4 CAR-T cell treatment significantly reduced tumor burden and improved survival in a highly aggressive and lethal CRC model, intraperitoneal HT29-MTX CRC metastatic dissemination in NSG mice. Mouse necropsies revealed no off-target in vivo toxicities associated with MUC4 CAR-T cell therapy. Altogether, our findings establish MUC4 as an important and clinically relevant CAR-T cell target and demonstrate therapeutic efficacy of MUC4 CAR-T cell therapy for invasive CRC, a setting where chemotherapy typically fails. MUC4-targeted CAR-T cell therapy has the potential to fill a critical treatment gap for patients with chemoresistant and invasive CRC and may extend to other MUC4-expressing solid tumors. Statement of PriorityColorectal cancer is increasingly diagnosed in younger individuals, a trend accompanied by a higher prevalence of aggressive and chemotherapy-resistant disease. Despite advances in systemic therapy, outcomes for patients with refractory or metastatic colorectal cancer remain poor, underscoring a critical unmet clinical need. CAR-T cell therapy offers a mechanism to selectively target tumor cells that evade conventional treatments and may thus be particularly valuable in mucinous, chemotherapy-resistant subsets. Developing effective CAR-T strategies for new targets in colorectal carcinoma, such as MUC4, is an urgent priority in this era of rising early-onset disease.

immunology↗

MYC is sufficient to generate mid-life high-grade serous ovarian and uterine serous carcinomas in a p53-R270H mouse model

Genetically engineered mouse models (GEMM) have fundamentally changed how ovarian cancer etiology, early detection, and treatment is understood. However, previous GEMMs of high-grade serous ovarian cancer (HGSOC) have had to utilize genetics rarely or never found in human HGSOC to yield ovarian cancer within the lifespan of a mouse. MYC, an oncogene, is amongst the most amplified genes in HGSOC, but it has not previously been utilized to drive HGSOC GEMMs. We coupled Myc and dominant negative mutant p53-R270H with a fallopian tube epithelium-specific promoter Ovgp1 to generate a new GEMM of HGSOC. Female mice developed lethal cancer at an average of 15.1 months. Histopathological examination of mice revealed HGSOC characteristics including nuclear p53 and nuclear MYC in clusters of cells within the fallopian tube epithelium and ovarian surface epithelium. Unexpectedly, nuclear p53 and MYC clustered cell expression was also identified in the uterine luminal epithelium, possibly from intraepithelial metastasis from the fallopian tube epithelium (FTE). Extracted tumor cells exhibited strong loss of heterozygosity at the p53 locus, leaving the mutant allele. Copy number alterations in these cancer cells were prevalent, disrupting a large fraction of genes. Transcriptome profiles most closely matched human HGSOC and serous endometrial cancer. Taken together, these results demonstrate the Myc and Trp53-R270H transgene was able to recapitulate many phenotypic hallmarks of HGSOC through the utilization of strictly human-mimetic genetic hallmarks of HGSOC. This new mouse model enables further exploration of ovarian cancer pathogenesis, particularly in the 50% of HGSOC which lack homology directed repair mutations. Histological and transcriptomic findings are consistent with the hypothesis that uterine serous cancer may originate from the fallopian tube epithelium.

cancer biology↗