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Published on: March 24, 2017
RMAD1, a Novel Cell-Penetrating Peptide Derived from ADARB2: Preclinical Insights into Antigen Uptake and T Cell
Chaemin Lim1, Chanho Park2, Ee Chan Song2
1College of Pharmacy, CHA University, 335 Pangyo-ro, Bundang-gu, Seongnam-si, 13488 Gyeonggi-do, Republic of Korea.
Abstract:
The development of effective cancer vaccines remains a major challenge in oncology, largely due to limited antigen delivery and suboptimal T cell priming. Here, we report RMAD1, a novel human-derived cell-penetrating peptide (CPP) originating from the ADARB2 (Adenosine Deaminase RNA Specific B2) protein, identified through an intra-dermal delivery technology (IDDT) platform, and evaluate its potential as a vaccine delivery enhancer. RMAD1 exhibited superior intracellular delivery compared with conventional CPPs and preferential uptake by antigen-presenting cells (APCs), including dendritic cells and macrophages. RMAD1 conjugated vaccines showed enhanced accumulation in draining lymph nodes and facilitated efficient antigen cross-presentation through the MHC class I pathway. In murine E.G7-OVA and TC-1 tumor models, RMAD1 conjugated vaccines induced robust antigen-specific CD8⁺ T cell responses across peripheral blood, lymphoid organs, and tumor tissues. Functional analyses revealed increased IFN-γ and TNF-α production by both CD8⁺ and CD4⁺ T cells, accompanied by a reduction in Foxp3⁺CD25⁺ regulatory T cells. In addition, RMAD1 conjugation promoted epitope spreading and established durable immunological memory, resulting in protection against tumor rechallenge. Therapeutic efficacy was further demonstrated in a TC-1 lung metastasis model, where RMAD1-based vaccination significantly reduced metastatic burden. Importantly, RMAD1-vaccinated mice exhibited therapeutic efficacy comparable to cisplatin treatment, while demonstrating a favorable safety profile. Together, these findings position RMAD1 as a next-generation CPP platform that outperforms existing peptides in enhancing antigen delivery and anti-tumor immunity, offering a promising strategy for advancing cancer vaccine development.
Insights
A novel cell-penetrating peptide (CPP), RMAD1, enhances cancer vaccine delivery and T cell responses. RMAD1-conjugated vaccines show improved anti-tumor immunity and therapeutic efficacy, offering a promising new strategy for cancer vaccine development.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Developing effective cancer vaccines is hindered by poor antigen delivery and T cell activation.
- Current strategies often struggle with suboptimal immune responses against tumors.
Purpose of the Study:
- To evaluate RMAD1, a novel human-derived cell-penetrating peptide (CPP), as a vaccine delivery enhancer for cancer immunotherapy.
- To assess RMAD1's ability to improve antigen delivery, T cell priming, and anti-tumor efficacy.
Main Methods:
- RMAD1 was identified using an intra-dermal delivery technology (IDDT) platform.
- RMAD1 conjugation to tumor antigens was tested in murine E.G7-OVA and TC-1 tumor models.
- Immune responses, including T cell activation, cytokine production, and tumor burden, were analyzed.
Main Results:
- RMAD1 demonstrated superior intracellular delivery and preferential uptake by antigen-presenting cells (APCs).
- RMAD1-conjugated vaccines enhanced T cell responses (CD8+ and CD4+), reduced regulatory T cells, and promoted epitope spreading.
- Vaccination with RMAD1 conjugates significantly reduced tumor burden and metastasis, showing comparable efficacy to cisplatin with a better safety profile.
Conclusions:
- RMAD1 is a potent next-generation CPP for cancer vaccine development, outperforming conventional peptides.
- RMAD1 enhances antigen delivery and boosts anti-tumor immunity, representing a promising therapeutic strategy.
- This peptide platform offers a novel approach to improving cancer vaccine efficacy and patient outcomes.

