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Tsai, H.-i.

Publications and source records attributed to Tsai, H.-i..

2 recordsLinked to original sources

TRAF6 modulates PD-L1 expression through YAP1-TFCP2 signaling in melanoma

BackgroundImmunotherapy represented by the programmed death-1 (PD-1)/ligand 1 (PD-L1) monoclonal antibodies has led tumor treatment into a new era. However, the low overall response rate and high incidence of drug resistance largely damage the clinical benefits of existing immune checkpoint therapies. Recent studies correlate the response to PD-1/PD-L1 blockade with PD-L1 expression levels in tumor cells. Hence, identifying molecular targets and pathways controlling PD-L1 protein expression and stability in tumor cells is a major priority. MethodsIn this study, we first performed a Stress and Proteostasis CRISPR interference library-based screening to identify PD-L1 positive modulators. We then used in vitro and in vivo assays to investigate the biological function and mechanism of TRAF6 and its downstream YAP1/TFCP2 signaling in malignant melanoma. ResultsHere, we identified TRAF6 as a critical regulator of PD-L1 in melanoma cells. Suppression of TRAF6 expression down-regulates PD-L1 expression on the membrane surface of melanoma cells. We also found that PD-L1 protein abundance is regulated by YAP1/TFCP2 transcriptional complex. TRAF6 stabilizes YAP1 by K63 poly-ubiquitination modification, subsequently promoting the formation of YAP1/TFCP2 and PD-L1 transcription. Furthermore, inhibition of TRAF6 by Bortezomib enhanced cytolytic activity of CD8+ T cells by reduction of endogenous PD-L1. Notably, Bortezomib enhances anti-tumor immunity to an extent that is comparable to anti-PD-1 mAb therapies with no obvious toxicity. ConclusionsThese findings uncover a novel molecular mechanism for regulating PD-L1 protein abundance by a E3 ligase in cancer cells and reveal the potential of using TRAF6 inhibitors to stimulate internal anti-tumor immunological effect for TRAF6-PD-L1 overexpressing cancers.

cancer biology↗

Engineered small extracellular vesicles as a FGL1/PD-L1 dual-targeting delivery system for alleviating immune rejection

There is an urgent need for developing new immunosuppressive agents due to the toxicity of long-term use of broad immunosuppressive agents post organ transplantation. Comprehensive sample analysis revealed dysregulation of FGL1/LAG-3 and PD-L1/PD-1 immune checkpoints in allogeneic heart transplantation mice and clinical kidney transplant patients. In order to enhance these two immunosuppressive signal axes, we developed a bioengineering strategy to simultaneously display FGL1/PD-L1 (FP) on the surface of small extracellular vesicles (sEVs). Among various cell sources, FP sEVs derived from mesenchymal stem cells (MSCs) not only enriched FGL1/PD-L1 expression but also maintained the immunomodulatory properties of unmodified MSC sEVs. Next, we confirmed that FGL1 and PD-L1 on sEVs were specifically bound to their receptors LAG-3 and PD-1 on target cells. Importantly, FP sEVs significantly inhibited T cell activation and proliferation in vitro and a heart allograft model. Furthermore, FP sEVs encapsulated with low-dose FK506 (FP sEVs@FK506) exerted stronger effects on inhibiting T cell proliferation, reducing CD8+ T cell density and cytokine production in the spleens and heart grafts, inducing regulatory T cells in lymph nodes, and extending graft survival. Taken together, dual-targeting sEVs have the potential to boost the immune inhibitory signalings in synergy and slow down transplant rejection.

bioengineering↗