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Published on: November 2, 2018
Cytoskeleton protein 4.1R regulates B-cell fate by modulating the canonical NF-κB pathway
Taotao Liang1, Yuying Guo2, Mengjia Li1
1School of Life Sciences, Zhengzhou University, Zhengzhou, China.
Insights
Protein 4.1R regulates B-cell fate by inhibiting the canonical nuclear factor (NF-κB) pathway. This impacts class switch recombination (CSR) and plasma cell differentiation (PCD), crucial for immune responses.
Area of Science:
- Immunology
- Cell Biology
Background:
- B cells differentiate into memory cells via class switch recombination (CSR) or plasma cells (PCD) for immunoglobulin secretion.
- Protein 4.1R is an adaptor protein involved in cell events, but its role in B-cell fate is unknown.
Purpose of the Study:
- To investigate the role of Protein 4.1R in regulating B-cell fate, specifically CSR and PCD.
- To elucidate the molecular mechanisms by which 4.1R influences these differentiation pathways.
Main Methods:
- Primary B cells were stimulated in vitro with lipopolysaccharide and interleukin-4.
- Expression levels of key proteins and B-cell populations (IgG1+, CD138+) were analyzed in 4.1R-deficient and wild-type cells.
- Canonical and non-canonical nuclear factor (NF-κB) pathways were assessed.
Main Results:
- 4.1R deficiency augmented CSR-related gene expression, increasing IgG1+ B cells but reducing immunoglobulin secretion.
- 4.1R deficiency decreased Blimp-1 expression, down-regulating plasma cell differentiation (PCD).
- 4.1R regulates canonical NF-κB to promote CSR and inhibit PCD, with its absence leading to over-activation of NF-κB and potential apoptosis.
Conclusions:
- Protein 4.1R acts as a critical regulator of B-cell fate.
- 4.1R inhibits the canonical NF-κB signaling pathway, thereby controlling the balance between CSR and PCD.
- Targeting 4.1R may offer therapeutic strategies for immune modulation.
Abstract:
During the immune response, B cells can enter the memory pathway, which is characterized by class switch recombination (CSR), or they may undergo plasma cell differentiation (PCD) to secrete immunoglobulin. Both of these processes occur in activated B cells, which are reported to relate to membrane-association proteins and adaptors. Protein 4.1R acts as an adaptor, linking membrane proteins to the cytoskeleton, and is involved in many cell events such as cell activation and differentiation, and cytokine secretion. However, the effect of 4.1R on regulating B-cell fate is unclear. Here, we show an important association between B-cell fate and 4.1R. In vitro, primary B cells were stimulated with lipopolysaccharide combined with interleukin-4; results showed that 4.1R-deficient (4.1R-/- ) cells compared with wild-type (4.1R+/+ ) B cells augmented expression of activation-induced cytidine deaminase and germline, resulting in increased IgG1+ B cells, whereas the secretion of IgG1 and IgM was reduced, and CD138+ B cells were also decreased. Throughout the process, 4.1R regulated canonical nuclear factor (NF-κB) rather than non-canonical NF-κB to promote the expression of CSR complex components, leading to up-regulation of B-cell CSR. In contrast, 4.1R-deficient B cells showed reduced expression of Blimp-1, which caused B cells to down-regulate PCD. Furthermore, over-activation of canonical NF-κB may induce apoptosis signaling to cause PCD apoptosis to reduce PCD number. In summary, our results suggest that 4.1R acts as a B-cell fate regulator by inhibiting the canonical NF-κB signaling pathway.
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