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Proliferation and Differentiation of Murine Myeloid Precursor 32D/G-CSF-R Cells
Published on: February 21, 2018
Myeloid KIF13B suppresses the STT3A/CTSD/THBS1 axis to prevent MASH
Kaikai Lu1, Xianqin Shen1, Ziyang Guo2
1Institute of Cardiovascular Sciences, State Key Laboratory of Vascular Homeostasis and Remodeling, School of Basic Medical Sciences, Peking University, Beijing, China.
Background And Aims:
Metabolic dysfunction-associated steatotic liver disease (MASLD) is a critical pathological stage that can progress to liver fibrosis and hepatocellular carcinoma, and its development is closely associated with dysregulation of the hepatic immune microenvironment, in which macrophages make a crucial contribution. However, the precise mechanisms mediated by macrophages underlying the pathogenesis of this disease remain incompletely understood.
Approach And Results:
In the present study, we demonstrate that under MASLD conditions, KIF13B expression is markedly downregulated in monocyte-derived macrophages, and deletion of myeloid-derived Kif13b predisposes mice to diet-induced MASLD. Mechanistically, Kif13b deficiency impairs proteasome-dependent degradation of the glycosyltransferase STT3A in macrophages, thereby enhancing cathepsin D (CTSD) glycosylation and secretion to promote lipid accumulation and inflammatory responses in livers. Further analyses reveal that the detrimental effects of CTSD depend on its interaction with the hepatocyte membrane protein Thrombospondin 1 (THBS1). In addition, we identify the transcription factor ZNF384 as a potential upstream regulator of KIF13B gene through directly binding to its promoter for the transcriptional activation, which expression is also significantly downregulated in the context of MASLD.
Conclusions:
Collectively, our study establishes a novel regulatory axis, ZNF384/KIF13B/STT3A/CTSD/THBS1, essential for macrophage-hepatocyte crosstalk during MASLD progression and provides potential therapeutic targets for the treatment of MASLD.
Insights
This study reveals a new pathway involving ZNF384, KIF13B, STT3A, CTSD, and THBS1 that drives metabolic dysfunction-associated steatotic liver disease (MASLD) progression. Targeting this axis offers potential therapeutic strategies for MASLD.
Area of Science:
- Hepatology
- Immunology
- Molecular Biology
Background:
- Metabolic dysfunction-associated steatotic liver disease (MASLD) can advance to severe liver conditions like fibrosis and cancer.
- Macrophage dysregulation in the liver's immune microenvironment is implicated in MASLD pathogenesis.
- The specific roles of macrophages in MASLD development require further elucidation.
Purpose of the Study:
- To investigate the role of KIF13B in macrophage function during MASLD.
- To identify molecular mechanisms linking macrophages to MASLD progression.
- To uncover novel regulatory pathways and potential therapeutic targets for MASLD.
Main Methods:
- Analyzing KIF13B expression in macrophages from MASLD patients and mice.
- Investigating the impact of myeloid Kif13b deletion on diet-induced MASLD in mice.
- Elucidating the molecular interactions involving KIF13B, STT3A, CTSD, and THBS1 using proteasome degradation assays and protein interaction studies.
- Identifying upstream regulators of KIF13B through promoter binding analysis.
Main Results:
- KIF13B expression is downregulated in macrophages during MASLD.
- Loss of myeloid Kif13b exacerbates diet-induced MASLD in mice.
- Kif13b deficiency impairs STT3A degradation, increasing CTSD secretion and promoting liver lipid accumulation and inflammation.
- CTSD interacts with THBS1 on hepatocytes, contributing to MASLD.
- ZNF384 acts as a transcriptional activator for KIF13B, with its expression also reduced in MASLD.
Conclusions:
- A novel regulatory axis (ZNF384/KIF13B/STT3A/CTSD/THBS1) is identified, crucial for macrophage-hepatocyte communication in MASLD.
- This axis plays a significant role in MASLD progression.
- The identified pathway presents potential therapeutic targets for MASLD treatment.
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