Nanoscale artificial antigen presenting cells to expand human antigen-specific cytotoxic CD4 T cells for immunotherapy 2258982

S Si-Sim Kang (Johns Hopkins Univ. Sch. of Med) M Muqing Zhang S Shuyi Li (Laboratory of Controllable Nanopharmaceuticals, Chinese Academy of Sciences Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Chinese Academy of Sciences Center for Excellence in Nanoscience, National Center for Nanoscience and Technology) M Maya Zhang (Georgia Tech) M Matthew Huo (Johns Hopkins University) J Joseph Choy D Daniela Trejo-Zambrano (Johns Hopkins University) B Ben Biggs (Johns Hopkins University) R Ran Jin S Sujin Kim E Emily Arial (Johns Hopkins University) M Manasi Vegesna (Johns Hopkins University) S Shweta Singh C Carson Stephenson (Johns Hopkins University) A Ariel Isser (Regeneron) J Jamie Spangler (Johns Hopkins University) J Jonathan Schneck (Johns Hopkins University School of Medicine)

Abstract

Abstract Introduction CD4 T cells play key roles in immune modulation and cancer immunity. Increasing evidence shows they also exhibit cytotoxicity and can be harnessed for cancer immunotherapy. However, methods to reliably expand antigen-specific CD4 T cells remain limited. Here, we developed a nanoscale platform to expand antigen-specific CD4 T cells with cytotoxicity against cognate target cells. Methods We generated nanoscale artificial antigen-presenting cells (aAPCs) composed of iron-dextran nanoparticles conjugated with peptide-MHC II dimers and anti-CD28 antibodies to provide antigen-specific and co-stimulatory signals. HLA-DP4 dimers were loaded with the DP4-restricted tetanus toxoid p30 (947—967) or HSV (283—302). CD4 T cells isolated from healthy donor PBMCs were co-cultured with aAPCs and cytokines for 14 days. Antigen-specific populations were quantified by tetramer staining and analyzed by flow cytometry, bulk RNA-seq, and TCR-seq to assess phenotype, transcriptome, and clonality. Results p30-specific cells expanded 1000-fold and HSV-specific cells expanded 100-fold by day 14. The most robust donor reached over 75% antigen-specific cells within the CD4 compartment. The expanded cells included stem cell memory, central memory, and effector memory subsets and produced TNF-α, IFN-γ, IL-2, granzyme B, and perforin. Functionally, the expanded CD4 T cells exhibited antigen-specific cytotoxicity, killing nearly 90% of cognate targets at a CD4:target ratio of 1. Blocking assays demonstrated that cytotoxicity required HLA-II recognition and granzyme B activity. Transcriptomic profiling revealed a Th1-skewed, NK-like cytotoxic phenotype, while TCR sequencing confirmed antigen-driven clonal selection. Conclusion Together, our data show that nanoscale aAPCs reliably expand functional antigen-specific CD4 T cells from human PBMCs, providing both mechanistic insight into cytotoxic CD4 biology and a translational foundation for antigen-specific cell immunotherapy. Funding Source PhRMA foundation, NIH, Taiwan Government Funding for Study Abroad Topic Categories Technological Innovations in Immunology (TECH)

Article Details

Volume / Issue Vol. 215, Issue Supplement_1
Published August 01, 2026
ISSN 0022-1767
Publisher American Association of Immunologists

Authors (17)

S

Si-Sim Kang

Johns Hopkins Univ. Sch. of Med

M

Muqing Zhang

S

Shuyi Li

Laboratory of Controllable Nanopharmaceuticals, Chinese Academy of Sciences Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Chinese Academy of Sciences Center for Excellence in Nanoscience, National Center for Nanoscience and Technology

M

Maya Zhang

Georgia Tech

M

Matthew Huo

Johns Hopkins University

J

Joseph Choy

D

Daniela Trejo-Zambrano

Johns Hopkins University

B

Ben Biggs

Johns Hopkins University

R

Ran Jin

S

Sujin Kim

E

Emily Arial

Johns Hopkins University

M

Manasi Vegesna

Johns Hopkins University

S

Shweta Singh

C

Carson Stephenson

Johns Hopkins University

A

Ariel Isser

Regeneron

J

Jamie Spangler

Johns Hopkins University

J

Jonathan Schneck

Johns Hopkins University School of Medicine