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In Vitro Differentiation of Human CD4+FOXP3+ Induced Regulatory T Cells (iTregs) from Naïve CD4+ T Cells Using a TGF-β-containing Protocol
Published on: December 30, 2016
C-terminal cleavage of human Foxp3 at a proprotein convertase motif abrogates its suppressive function
R Elhage1, M Cheraï, B Levacher
1Immunology-Immunopathology-Immunotherapy (I3), Sorbonne Universités, UPMC Univ Paris 06, UMR 7211, UMRS 959, Paris, France; Immunology-Immunopathology-Immunotherapy (I3), CNRS, UMR 7211 and FRE 3632, Paris, France; Immunology-Immunopathology-Immunotherapy (I3), INSERM, UMRS 959, Paris, France.
Abstract:
Foxp3 plays a critical role in the development and function of regulatory T cells (Tregs). Differences in translational and post-translational processing of murine and human Foxp3 have been recently reported. Human Foxp3 exists as four isoforms generated by alternative splicing. Mouse Foxp3 only exists as one isoform, but can be proteolytically cleaved by N-terminal and/or C-terminal proprotein convertase subtilisin/kexins (PCSKs). Here, we show by transcriptome analysis that the proprotein convertases PCSK7, PCSK5 and Furin are present in human CD4(+) T cells with different expression patterns. Notably, after in vitro activation, only PCSK7 and Furin are expressed in Tregs and T effector cells (Teffs), with overexpression of PCSK7 in Tregs compared to Teffs. Human Foxp3 protein displays specific motifs that can be potentially cleaved by convertases. Consequently, we transduced human CD4(+) cells with Foxp3-expressing lentiviral vectors and assessed the generation of proteolytically cleaved Foxp3 forms by Western blot. Three different Foxp3 forms were detected, indicating that human Foxp3 can also be subjected to proteolytic cleavage at the N-terminal and C-terminal ends. These results prompted us to assess the suppressive activity associated with each forms. We observed that full length and N-cleaved Foxp3-transduced CD4(+) T cells similarly suppressed the in vitro proliferation of Teffs. However, the C-cleaved or N&C-cleaved Foxp3 forms afforded almost no suppressive function, indicating a crucial role of the human Foxp3 C-terminal region in Tregs suppressive activity, in marked contrast with the report of a superior suppressive activity for the C-cleaved murine Foxp3 compared to the full length.
Insights
Human Foxp3 undergoes proteolytic cleavage, generating distinct forms. The C-terminal region is crucial for regulatory T cell (Treg) suppressive activity, unlike in mice.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Foxp3 is essential for regulatory T cell (Treg) development and function.
- Human and mouse Foxp3 exhibit differences in post-translational processing.
- Human Foxp3 has four isoforms, while mouse Foxp3 has one but undergoes proteolytic cleavage.
Purpose of the Study:
- To investigate the presence and expression of proprotein convertases (PCSKs) in human T cells.
- To determine if human Foxp3 undergoes proteolytic cleavage.
- To assess the functional impact of different human Foxp3 cleavage forms on Treg suppressive activity.
Main Methods:
- Transcriptome analysis to identify PCSK expression in human CD4(+) T cells.
- Lentiviral transduction of human CD4(+) cells with Foxp3.
- Western blot analysis to detect cleaved Foxp3 forms.
- In vitro proliferation assays to measure Treg suppressive activity.
Main Results:
- PCSK7, PCSK5, and Furin are present in human CD4(+) T cells, with PCSK7 and Furin upregulated in Tregs and T effector cells (Teffs) upon activation.
- Human Foxp3 protein can be proteolytically cleaved at N-terminal and C-terminal ends, yielding three distinct forms.
- Full-length and N-cleaved Foxp3 maintain suppressive activity, while C-cleaved or N&C-cleaved forms lose significant suppressive function.
Conclusions:
- Human Foxp3 is subject to proteolytic cleavage by PCSKs, notably PCSK7 and Furin.
- The C-terminal region of human Foxp3 is critical for its suppressive function in Tregs.
- This contrasts with findings in murine Foxp3, where C-terminal cleavage may enhance suppressive activity.
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