Extracellular Silica Nanomatrices Promote In Vitro Maturation of Anti‐tumor Dendritic Cells via Activation of Focal Adhesion Kinase

Author:

Tam Sze Wah12,Cheung Allen Ka Loon1,Qin Ping12,Zhang Shiqing34,Huang Zhifeng56ORCID,Yung Ken Kin Lam7

Affiliation:

1. Department of Biology Hong Kong Baptist University Kowloon Hong Kong SAR China

2. Golden Meditech Center for NeuroRegeneration Sciences Hong Kong Baptist University Kowloon Hong Kong SAR China

3. State Key Laboratory of Bioactive Molecules and Druggability Assessment Jinan University Guangzhou 510632 China

4. JNU‐HKUST Joint Laboratory for Neuroscience and Innovative Drug Research College of Pharmacy Jinan University Guangzhou 510632 China

5. Department of Chemistry The Chinese University of Hong Kong (CUHK) Shatin, N.T. Hong Kong SAR China

6. Shenzhen Research Institute of CUHK No. 10, 2nd Yuexing Road, Nanshan Shenzhen Guangdong 518057 China

7. Department of Science and Environmental Studies the Education University of Hong Kong N.T. Hong Kong SAR China

Abstract

AbstractThe efficacy of dendritic cell (DC)‐based cancer vaccines is critically determined by the functionalities of in vitro maturated DCs. The maturation of DCs typically relies on chemicals that are cytotoxic or hinder the ability of DCs to efficiently activate the antigen‐specific cytotoxic T‐lymphocytes (CTLs) against tumors. Herein, the maturation chemicals are replaced with extracellular silica nanomatrices, fabricated by glancing angle deposition, to promote in vitro maturation of murine bone marrow‐derived DCs (mBMDCs). The extracellular nanomatrices composed of silica nanozigzags (NZs) enable the generation of mature mBMDCs with upregulated levels of co‐stimulatory molecules, C‐C chemokine receptor type‐7, X‐C motif chemokine recetpor‐1, DC‐specific ICAM‐3 grabbing nonintegrin, and enhanced endocytic capacity. The in vitro maturation is partially governed by focal adhesion kinase (FAK) that is mechanically activated in the curved cell adhesions formed at the DC‐NZ interfaces. The NZ‐maturated mBMDCs can prime the antigen‐specific CTLs into programmed cell death protein‐1 (PD‐1)lowCD44high memory phenotypes in vitro and suppress the growth of tumors in vivo. Meanwhile, the NZ‐mediated beneficial effects are also observed in human monocyte‐derived DCs. This work demonstrates that the silica NZs promote the anti‐tumor capacity of in vitro maturated DCs via the mechanoactivation of FAK, supporting the potential of silica NZs being a promising biomaterial for cancer immunotherapy.

Funder

Basic and Applied Basic Research Foundation of Guangdong Province

Hong Kong Baptist University

Chinese University of Hong Kong

Publisher

Wiley

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