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Updated: Aug 8, 2025

Isolation of Human Primary Valve Cells for In vitro Disease Modeling
Published on: April 16, 2021
Sam68 promotes osteogenic differentiation of aortic valvular interstitial cells by TNF-α/STAT3/autophagy axis
Xing Liu1, Qiang Zheng1, Kan Wang1
1Department of Cardiovascular Surgery, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, 1277 Jiefang Avenue, Wuhan, Hubei, 430022, People's Republic of China.
Abstract:
Calcified aortic valve disease (CAVD) is a major non-rheumatic heart valve disease in the world, with a high mortality rate and without suitable pharmaceutical therapy due to its complex mechanisms. Src-associated in mitosis 68-KD (Sam68), an RNA binding protein, has been reported as a signaling adaptor in numerous signaling pathways (Huot in Mol Cell Biol, 29(7), 1933-1943, 2009), particularly in inflammatory signaling pathways. The effects of Sam68 on the osteogenic differentiation process of hVICs and its regulation on signal transducer and activator of transcription 3 (STAT3) signaling pathway have been investigated in this study. Human aortic valve samples detection found that Sam68 expression was up-regulated in human calcific aortic valves. We used tumor necrosis factor α (TNF-α) as an activator for osteogenic differentiation in vitro and the result indicated that Sam68 was highly expressed after TNF-α stimulation. Overexpression of Sam68 promoted osteogenic differentiation of hVICs while Sam68 knockdown reversed this effect. Sam68 interaction with STAT3 was predicted by using String database and was verified in this study. Sam68 knockdown reduced phosphorylation of STAT3 activated by TNF-α and the downstream gene expression, which further influenced autophagy flux in hVICs. STAT3 knockdown alleviated the osteogenic differentiation and calcium deposition promoted by Sam68 overexpression. In conclusion, Sam68 interacts with STAT3 and participates in its phosphorylation to promote osteogenic differentiation of hVICs to induce valve calcification. Thus, Sam68 may be a new therapeutic target for CAVD. Regulatory of Sam68 in TNF-α/STAT3/Autophagy Axis in promoting osteogenesis of hVICs.
Insights
Src-associated in mitosis 68-KD (Sam68) promotes calcific aortic valve disease (CAVD) by enhancing osteogenic differentiation of human valve cells via the TNF-α/STAT3 pathway. Targeting Sam68 offers a potential therapeutic strategy for CAVD.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Biochemistry
Background:
- Calcified aortic valve disease (CAVD) is a prevalent, high-mortality condition lacking effective pharmaceutical treatments due to complex underlying mechanisms.
- Src-associated in mitosis 68-KD (Sam68), an RNA-binding protein, acts as a signaling adaptor in various pathways, including inflammation.
Purpose of the Study:
- To investigate the role of Sam68 in the osteogenic differentiation of human aortic valve interstitial cells (hVICs).
- To elucidate Sam68's regulation of the signal transducer and activator of transcription 3 (STAT3) signaling pathway in the context of CAVD.
Main Methods:
- Analysis of Sam68 expression in human calcific aortic valves.
- In vitro osteogenic differentiation of hVICs stimulated with tumor necrosis factor-α (TNF-α).
- Overexpression and knockdown studies of Sam68 and STAT3, alongside assessment of STAT3 phosphorylation and autophagy flux.
Main Results:
- Sam68 expression is upregulated in human CAVD and significantly increased upon TNF-α stimulation.
- Sam68 overexpression promotes hVIC osteogenic differentiation and calcium deposition; Sam68 knockdown reverses these effects.
- Sam68 interacts with STAT3, reducing TNF-α-induced STAT3 phosphorylation and influencing autophagy; STAT3 knockdown mitigates Sam68-induced osteogenesis.
Conclusions:
- Sam68 interacts with STAT3, promoting its phosphorylation and driving osteogenic differentiation of hVICs, thereby contributing to valve calcification.
- Sam68's regulation of the TNF-α/STAT3/Autophagy axis is critical for hVIC osteogenesis.
- Sam68 represents a potential novel therapeutic target for managing CAVD.
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