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Updated: Jul 6, 2026

MicroRNA-based Regulation of Picornavirus Tropism
Published on: February 6, 2017
Low-dose tolerance is mediated by the microfold cell ligand, reovirus protein sigma1
Agnieszka Rynda1, Massimo Maddaloni, Dagmara Mierzejewska
1Veterinary Molecular Biology, Montana State University, Bozeman, MT 59718, USA.
Abstract:
Mucosal tolerance induction generally requires multiple or large Ag doses. Because microfold (M) cells have been implicated as being important for mucosal tolerance induction and because reovirus attachment protein sigma1 (psigma1) is capable of binding M cells, we postulated that targeting a model Ag to M cells via psigma1 could induce a state of unresponsiveness. Accordingly, a genetic fusion between OVA and the M cell ligand, reovirus psigma1, termed OVA-psigma1, was developed to enhance tolerogen uptake. When applied nasally, not parenterally, as little as a single dose of OVA-psigma1 failed to induce OVA-specific Abs even in the presence of adjuvant. Moreover, the mice remained unresponsive to peripheral OVA challenge, unlike mice given multiple nasal OVA doses that rendered them responsive to OVA. The observed unresponsiveness to OVA-psigma1 could be adoptively transferred using cervical lymph node CD4(+) T cells, which failed to undergo proliferative or delayed-type hypersensitivity responses in recipients. To discern the cytokines responsible as a mechanism for this unresponsiveness, restimulation assays revealed increased production of regulatory cytokines, IL-4, IL-10, and TGF-beta1, with greatly reduced IL-17 and IFN-gamma. The induced IL-10 was derived predominantly from FoxP3(+)CD25(+)CD4(+) T cells. No FoxP3(+)CD25(+)CD4(+) T cells were induced in OVA-psigma1-dosed IL-10-deficient (IL-10(-/-)) mice, and despite showing increased TGF-beta1 synthesis, these mice were responsive to OVA. These data demonstrate the feasibility of using psigma1 as a mucosal delivery platform specifically for low-dose tolerance induction.
Insights
Targeting antigens to M cells using reovirus sigma1 (psigma1) protein via a single nasal dose successfully induced antigen-specific immune tolerance. This approach offers a novel strategy for low-dose mucosal tolerance induction.
Area of Science:
- Immunology
- Vaccinology
- Molecular Biology
Background:
- Mucosal tolerance induction typically necessitates repeated or high antigen (Ag) doses.
- Microfold (M) cells are crucial for mucosal tolerance, and reovirus attachment protein sigma1 (psigma1) binds to M cells.
Purpose of the Study:
- To investigate if targeting a model Ag to M cells using psigma1 could induce immune unresponsiveness.
- To develop a genetic fusion of ovalbumin (OVA) and psigma1 (OVA-psigma1) for enhanced tolerogen uptake.
Main Methods:
- A genetic fusion (OVA-psigma1) was created to target OVA to M cells.
- Mice received a single nasal dose of OVA-psigma1.
- Immune responses to OVA challenge and cytokine profiles were analyzed.
- Adoptive transfer of T cells was performed to assess tolerance mechanisms.
Main Results:
- A single nasal dose of OVA-psigma1 induced unresponsiveness to OVA, even with adjuvant.
- Nasal OVA-psigma1 rendered mice unresponsive to peripheral OVA challenge.
- Unresponsiveness was transferable via CD4(+) T cells, characterized by suppressed proliferation and delayed-type hypersensitivity.
- Restimulation revealed increased regulatory cytokines (IL-4, IL-10, TGF-beta1) and decreased inflammatory cytokines (IL-17, IFN-gamma).
- IL-10 was predominantly produced by FoxP3(+)CD25(+)CD4(+) T cells, and IL-10 deficiency abrogated tolerance.
Conclusions:
- The study demonstrates the feasibility of using psigma1 as a mucosal delivery platform for low-dose tolerance induction.
- Targeting M cells with psigma1 is an effective strategy for inducing antigen-specific immune tolerance.
- This approach bypasses the need for multiple or high antigen doses for mucosal tolerance.
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