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Biology subjects

Liu, T. W.

Publications and source records attributed to Liu, T. W..

2 recordsLinked to original sources

Intratumoral administration of mRNA-1273 vaccine delays melanoma growth in mice

BackgroundImmunotherapies are advantageous for treating cancers; however, their efficacy is limited in unresponsive hosts with "cold" tumor microenvironments. This limitation primarily stems from the lack of infiltrating CD8+ T cells, which are major effectors of the anti-cancer immune response. Here, we demonstrate the effects of intratumoral (IT) injections of the COVID-19 mRNA vaccine on the impairment of tumor growth in mice. MethodsEstablished B16F10 subcutaneous tumor models in wild type mice were used to evaluate the tumor response from IT administration of mRNA-1273. We compared treatment outcomes, immune composition, and transcriptomic effects from mRNA-1273 using survival studies, intravital imaging, flow cytometry, single-cell RNA sequencing, and abscopal studies. The ability of mRNA-1273 to enhance immune checkpoint therapy response was also evaluated. ResultsTumor growth and survival studies following a single IT injection of the COVID-19 mRNA-1273 vaccine showed significant tumor suppression and prolonged survival in tumor-bearing mice. mRNA-1273 treatment resulted in a significant increase in CD8+ T cell infiltration into the tumor microenvironment, as observed using intravital imaging and flow cytometry. Further tumor growth suppression was achieved using additional mRNA-1273 treatments. Combination administration of mRNA-1273 with immune checkpoint therapies demonstrated enhanced effects, further delaying tumor growth and improving the survival time of tumor-bearing mice. ConclusionIT injection of mRNA-1273 significantly reduced tumor growth and enhanced CD8+ T cells in the tumor microenvironment. Tumor suppression was further enhanced following multiple injections of mRNA-1273 or when combined with immune checkpoint therapies. This study demonstrates that mRNA vaccines may be used as adjuvants for immunotherapies. What is already known on this topicO_LIMost cancer patients develop adequate antibody response to vaccination with mRNA-1273 and produce spike-specific T cell responses. However, it is unclear if the mRNA-1273 vaccine can be used to elicit anti-tumor T cell responses. C_LI What this study addsO_LIIntratumoral injection of mRNA-1273 significantly delayed melanoma growth. C_LIO_LITreatment with mRNA-1273 significantly increased CD8+ T cell infiltration into the tumor microenvironment. C_LIO_LIEnhanced effects of combination mRNA-1273 and immune checkpoint therapy in anti-tumor immunity. C_LI How this study might affect research, practice, or policyO_LImRNA vaccine may be an effective adjuvant with immune checkpoint therapy. C_LI

immunology↗

Group A Streptococcal Collagen-like Protein 1 Restricts Tumor Growth in Murine Pancreatic Adenocarcinoma and Inhibits Cancer-Promoting Neutrophil Extracellular Traps

Pancreatic ductal adenocarcinoma (PDAC) is a lethal cancer associated with an immunosuppressive environment. Neutrophil extracellular traps (NETs) were initially described in the context of infection but have more recently been implicated in contributing to the tolerogenic immune response in PDAC. Thus, NETs are an attractive target for new therapeutic strategies. Group A Streptococcus (GAS) has developed defensive strategies to inhibit NETs. In the present work, we propose utilizing intra-tumoral GAS injection to stimulate anti-tumor activity by inhibiting cancer-promoting NETs. Injection of three different M-type GAS strains reduced subcutaneous pancreatic tumor volume compared to control in two different murine PDAC models. Limitation of tumor growth was dependent on streptococcal collagen-like protein 1 (Scl1), as isogenic mutant strain devoid of Scl1 did not reduce tumor size. We further show that Scl1 plays a role in localizing GAS to the tumor site, thereby limiting the systemic spread of bacteria and off-target effects. While mice did elicit a humoral immune response to GAS antigens, tested sera were negative toward Scl1 antigen following intra-tumoral treatment with Scl1-expressing GAS. M1 GAS inhibited NET formation when co-cultured with neutrophils while Scl1-devoid mutant strain did not. Recombinant Scl1 protein inhibited NETs ex vivo in a dose-dependent manner by suppressing myeloperoxidase activity. Altogether, we demonstrate that intra-tumoral GAS injections reduce PDAC growth, which is facilitated by Scl1, in part through inhibition of cancer promoting NETs. This work offers a novel strategy by which NETs can be targeted through Scl1 protein and potentiates its use as a cancer therapeutic.

cancer biology↗