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Published on: June 27, 2020
Mitf regulates gene expression networks implicated in B cell homeostasis, germinal center responses, and tolerance
Abhimanyu Amarnani1,2,3, Maria Lopez-Ocasio1,4, Ramile Dilshat5
1Program in Molecular and Cellular Biology, School of Graduate Studies, State University of New York (SUNY) Downstate Health Sciences University, Brooklyn, NY, United States.
Introduction:
The microphthalmia transcription factor Mitf has been shown to regulate B cell activation and tolerance. However, the underlying B cell-specific mechanisms responsible, and those that distinguish Mitf from closely related Mitf/TFE (MiT) transcription factors Tfe3, Tfeb, and Tfec, remain obscure.
Methods:
Two complementary mouse models of Mitf and MiT deficiency were used: the Mitfmi-vga9/mi-vga9 systemic loss-of-function mutation, and B-cell specific MiT family inactivation via transgenic expression of a trans-dominant negative (TDN) protein (TDN-B). These models were employed to identify MiT family candidate target genes and pathways.
Results:
Both models displayed spontaneous splenomegaly coincident with elevated plasma cell numbers, autoantibody titers, and proteinuria. These abnormalities appeared dependent on T helper cells, but independent of other non-B cell intrinsic effects of systemic Mitf inactivation. MiT inactivation in B cells augmented aspects of lupus-like autoimmune disease on the C57BL/6-Faslpr/lpr background. In both models, RNAseq of ex vivo resting B cells showed transcriptional upregulation of genes that control cell cycle, germinal center responses, and plasma cell differentiation. Among the genes strongly upregulated in both models were Socs6, Isp53 (Baiap1), S1pR2, and IgG2b/c. Mitf null B cells, but not TDN-B cells, showed evidence of type I interferon dysregulation.
Discussion:
These studies clarify Mitf's role as 1) a key regulator of a B cell intrinsic germinal center program that influences self-tolerance through novel target genes, and 2) a regulator of systemic inflammatory processes that can impact the B cell microenvironment. This distinction of Mitf's function from that of related MiT transcription factors advances our understanding of B cell regulation and autoimmunity.
Insights
The microphthalmia transcription factor (Mitf) regulates B cell tolerance and autoimmunity. Mitf deficiency in B cells leads to splenomegaly, autoantibodies, and lupus-like disease, highlighting its critical role.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- The microphthalmia transcription factor (Mitf) is known to influence B cell activation and tolerance.
- However, the specific B cell mechanisms and distinctions from related MiT factors (Tfe3, Tfeb, Tfec) are not well understood.
Purpose of the Study:
- To elucidate the B cell-specific functions of Mitf and related MiT transcription factors.
- To identify novel target genes and pathways regulated by Mitf in B cells.
Main Methods:
- Utilized two mouse models: Mitf systemic loss-of-function and B-cell specific MiT family inactivation.
- Employed RNA sequencing (RNAseq) on ex vivo resting B cells to analyze transcriptional changes.
Main Results:
- Both models exhibited splenomegaly, increased plasma cells, autoantibodies, and proteinuria.
- MiT inactivation in B cells exacerbated lupus-like autoimmune disease.
- RNAseq revealed upregulation of genes involved in cell cycle, germinal center responses, and plasma cell differentiation, including Socs6, Isp53, S1pR2, and IgG2b/c.
Conclusions:
- Mitf is a key regulator of B cell intrinsic germinal center programs influencing self-tolerance via novel target genes.
- Mitf also regulates systemic inflammation impacting the B cell microenvironment, distinct from other MiT factors.
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