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Published on: September 17, 2019
Targeting the neonatal fc receptor for antigen delivery using engineered fc fragments
Wentao Mi1, Sylvia Wanjie, Su-Tang Lo
1Department of Immunology, University of Texas Southwestern Medical Center, Dallas, TX 75390-9093, USA.
Insights
Engineered Fc fragments targeting the neonatal Fc receptor (FcRn) improve antigen delivery to antigen-presenting cells (APCs). However, higher FcRn affinity reduces in vivo persistence, impacting T cell responses.
Area of Science:
- Immunology
- Molecular Biology
- Biotechnology
Background:
- Optimizing antigen (Ag) delivery to antigen-presenting cells (APCs) is crucial for inducing immunity or tolerance.
- The neonatal Fc receptor (FcRn), located in the endosomal system of APCs, is a potential target for engineered Ag delivery systems.
- Fc fragment binding characteristics influence Ag persistence in vivo, offering a means to modulate this property.
Purpose of the Study:
- To investigate the role of FcRn in Ag delivery using engineered Fc-Fc fragment-epitope fusions.
- To evaluate how FcRn binding affinity impacts Ag delivery efficiency and in vivo persistence.
- To dissect the contributions of FcRn and Fcgamma receptors (FcgammaRs) in Ag delivery.
Main Methods:
- Generation of recombinant Fc (mouse IgG1-derived) fusions with a myelin basic protein epitope.
- Creation of aglycosylated Fc-MBP fusions to differentiate FcRn and FcgammaR roles.
- In vitro assessment of FcRn binding affinity at varying pH (6.0-7.4).
- In vivo evaluation of Ag delivery, persistence, and T cell responses in mice.
Main Results:
- Engineered Fc fragments with increased FcRn affinity at pH 6.0-7.4 enhanced Ag delivery to FcRn-expressing APCs in vitro.
- Higher FcRn affinity at near-neutral pH led to decreased in vivo Ag persistence.
- A trade-off was observed between FcRn targeting efficiency and in vivo half-life, particularly for fusions binding both FcRn and FcgammaRs.
Conclusions:
- FcRn-mediated Ag delivery can be modulated by Fc fragment binding affinity.
- Optimizing FcRn interactions is key for effective Ag delivery, but balancing affinity is necessary to maintain in vivo persistence for robust T cell responses.
Abstract:
The development of approaches for Ag delivery to the appropriate subcellular compartments of APCs and the optimization of Ag persistence are both of central relevance for the induction of protective immunity or tolerance. The expression of the neonatal Fc receptor, FcRn, in APCs and its localization to the endosomal system suggest that it might serve as a target for Ag delivery using engineered Fc fragment-epitope fusions. The impact of FcRn binding characteristics of an Fc fragment on in vivo persistence allows this property to also be modulated. We have therefore generated recombinant Fc (mouse IgG1-derived) fusions containing the N-terminal epitope of myelin basic protein that is associated with experimental autoimmune encephalomyelitis in H-2(u) mice. The Fc fragments have distinct binding properties for FcRn that result in differences in intracellular trafficking and in vivo half-lives, allowing the impact of these characteristics on CD4(+) T cell responses to be evaluated. To dissect the relative roles of FcRn and the "classical" FcgammaRs in Ag delivery, analogous aglycosylated Fc-MBP fusions have been generated. We show that engineered Fc fragments with increased affinities for FcRn at pH 6.0-7.4 are more effective in delivering Ag to FcRn-expressing APCs in vitro relative to their lower affinity counterparts. However, higher affinity of the FcRn-Fc interaction at near neutral pH results in decreased in vivo persistence. The trade-off between improved FcRn targeting efficiency and lower half-life becomes apparent during analyses of T cell proliferative responses in mice, particularly when Fc-MBP fusions with both FcRn and FcgammaR binding activity are used.
