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Published on: January 31, 2020
Transcriptomic profiling of autoimmune hepatitis identifies TRAT1 as an in vitro negative regulator of NK cell
Jiapeng Gao1,2, Lixia Huo1, Jianfeng Zhong3
1First Affiliated Hospital, Huzhou Normal University, Huzhou, China.
Background:
T cell receptor-associated transmembrane adaptor 1 (TRAT1) is a well-characterized regulator of T-cell signaling, yet its functional roles in innate lymphocytes remain largely undefined. This study aimed to identify autoimmune hepatitis (AIH)-associated immune targets and perform an exploratory functional characterization of TRAT1 in NK-cell models.
Methods:
We performed transcriptomic analysis on liver tissues from AIH patients and disease controls to prioritize candidate genes. Public datasets and a Concanavalin A (ConA)-induced acute immune-mediated hepatitis murine model were used for contextualization and experimental support for Trat1 expression and immune cell dynamics. The functional role of TRAT1 in NK cells was assessed using NK92-MI cells and primary human NK cells with siRNA-mediated TRAT1 knockdown (KD). TRAT1 expression kinetics and cytotoxicity were examined in both systems, whereas proliferation, effector molecule production, surface receptor expression, calcium flux, and mitogen-activated protein kinase (MAPK) signaling were further analyzed in NK92-MI cells.
Results:
TRAT1 was prioritized as an AIH-enriched immune-related candidate gene in this discovery cohort. In the ConA-induced acute immune-mediated hepatitis model, Trat1 expression was selectively elevated in sorted hepatic NK-cell-enriched populations. In vitro, TRAT1 mRNA expression transiently increased in both NK92-MI and primary human NK cells upon activation; its knockdown subsequently enhanced their cytotoxicity against target cells. In NK92-MI cells, TRAT1 deficiency led to enhanced proliferation and elevated production of Interferon-gamma (IFN-γ), Tumor necrosis factor-alpha (TNF-α), Granzyme B (GZMB), and perforin. TRAT1 deficiency also selectively upregulated activating receptors NCR1 (NKp46) and NCR2 (NKp44) while downregulating NKG2D. Mechanistically, TRAT1 KD was associated with increased Ca²+influx, phospholipase C gamma 2 (PLCγ2) phosphorylation, and the phosphorylation of ERK1/2 and p38.
Conclusion:
Through an exploratory transcriptomic discovery approach, this study suggests that TRAT1 acts as an in vitro candidate negative modulator of NK-cell effector functions, potentially involving calcium and MAPK signaling in NK92-MI cells. These data support TRAT1 as a candidate mechanistic lead for future validation in larger clinical cohorts and lineage-specific in vivo models.
