Integrative transcriptomic and genomic analyses unveil the IFI16 variants and expression as MASLD progression markers.

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Tác giả: Yang-Hyun Baek, Jin-Han Cho, Gi-Bok Choi, Sang-Young Han, Jin-Sook Jeong, Doyoon Kim, Jang Hyun Kim, JungMo Kim, Sung-Wook Lee, Yeon-Su Lee, Yong Sun Lee, Gaeul Park, Jong Hoon Park, Young-Hoon Roh, Rho Hyun Seong, Masaud Shah, Hyun Goo Woo, Kyung Hyun Yoo

Ngôn ngữ: eng

Ký hiệu phân loại:

Thông tin xuất bản: United States : Hepatology (Baltimore, Md.) , 2025

Mô tả vật lý:

Bộ sưu tập: NCBI

ID: 154044

 BACKGROUND AND AIMS: Metabolic dysfunction-associated steatotic liver disease (MASLD) encompasses a broad and continuous spectrum of liver diseases ranging from fatty liver to steatohepatitis. The intricate interactions of genetic, epigenetic, and environmental factors in the development and progression of MASLD remain elusive. Here, we aimed to achieve an integrative understanding of the genomic and transcriptomic alterations throughout the progression of MASLD. APPROACH AND RESULTS: RNA-Seq profiling (n = 146) and whole-exome sequencing (n = 132) of MASLD liver tissue samples identified 3 transcriptomic subtypes (G1-G3) of MASLD, which were characterized by stepwise pathological and molecular progression of the disease. Macrophage-driven inflammatory activities were identified as a key feature for differentiating these subtypes. This subtype-discriminating macrophage interplay was significantly associated with both the expression and genetic variation of the dsDNA sensor IFI16 (rs6940, A>
 T, T779S), establishing it as a fundamental molecular factor in MASLD progression. The in vitro dsDNA-IFI16 binding experiments and structural modeling revealed that the IFI16 variant exhibited increased stability and stronger dsDNA binding affinity compared to the wild-type. Further downstream investigation suggested that the IFI16 variant exacerbated DNA sensing-mediated inflammatory signals through mitochondrial dysfunction-related signaling of the IFI16-PYCARD-CASP1 pathway. CONCLUSIONS: This study unveils a comprehensive understanding of MASLD progression through transcriptomic classification, highlighting the crucial roles of IFI16 variants. Targeting the IFI16-PYCARD-CASP1 pathway may pave the way for the development of novel diagnostics and therapeutics for MASLD.
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