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Tanshinone IIA impairs platelet function and thrombus formation.

BACKGROUND: Tanshinone IIA (T-IIA) is a fat-soluble active ingredient derived from the traditional Chinese medicine Danshen and possesses cardioprotective property. However, its exact role in platelet function is unknown. OBJECTIVES: This study investigated T-IIA's role in platelet aggregation, granules release, spreading, clot retraction, as well as in vivo hemostasis and thrombus formation. METHODS: Human platelets were treated with different doses of T-IIA (10, 50, and 100 μM) to measure platelet function and activation. In addition, T-IIA was administrated into wild-type mice to evaluate hemostasis and thrombus formation. RESULTS: T-IIA significantly impaired platelet aggregation, adenosine triphosphate secretion, P-selectin expression, and spreading and clot retraction dose dependently without affecting the expression profiles of αIIbβ3 and glycoprotein VI or Ibα. Administration of T-IIA significantly prolonged mice tail bleeding time and inhibited arterial and venous thrombosis. Further analysis showed that T-IIA dose dependently reduced platelet reactive oxygen species generation. Quantitative proteomic and phosphoproteimic assays analyzing T-IIA-treated vs vehicle-treated platelets after stimulation identified dysregulated phosphorylation of several proteins, which were enriched in platelet activation. Among the downregulated phosphoproteins, Rho-associated protein kinase (ROCK)1, integrin β3, and talin1 exhibited the lower fold change of phosphorylation in T-IIA-treated platelets compared with those in vehicle-treated platelets. Consistently, T-IIA treatment inhibited the phosphorylation of ROCK1, p47phox, integrin β3, and talin1 in activated platelets. CONCLUSION: T-IIA impairs platelet function and thrombosis via inhibition of several signaling pathways including ROCK1/p47phox, β3, and talin1, implying that T-IIA may represent a promising therapeutic candidate for treating thrombotic diseases.

Animals

Biosynthesis and regulatory mechanism of tanshinones and phenolic acids in Salvia miltiorrhiza.

Salvia miltiorrhiza, a perennial plant of the genus Salvia in the family Lamiaceae, is one of the most important traditional Chinese medicinal herbs, renowned for its significant economic and medicinal value. Its application in China dates back to 200 BC, where it has been utilized clinically either as a monotherapy or in combination with other herbal medicines for treating cardiovascular and cerebrovascular diseases, as well as various other ailments. The bioactive constituents of S. miltiorrhiza primarily include lipophilic tanshinones and hydrophilic phenolic acids. Over the past decades, the biosynthetic pathways of tanshinones and phenolic acids have been elucidated. Coupled with the sequencing of its genome, substantial progress has been made in deciphering the biosynthesis and regulatory mechanisms of bioactive compounds in S. miltiorrhiza, including tanshinones, phenolic acids, flavonoids, and prenylated quinones. This review summarizes recent advances in the regulatory mechanisms underlying the biosynthesis of phenolic acids and tanshinones in S. miltiorrhiza, focusing on transcriptional regulation, post-translational modifications, and epigenetic regulation. These insights provide a foundation for enhancing the production of bioactive compounds through biotechnological approaches and advancing pharmacological applications.

Salvia miltiorrhiza

DNA methylation controls the expression of tanshinone synthesis genes and the tanshinone accumulation in Salvia miltiorrhiza and Salvia bowleyana.

DNA methylation plays pivotal roles in regulating gene expression and the secondary metabolism in plants. Salvia miltiorrhiza and Salvia bowleyana are traditional Chinese medicinal plants with roots enriched with tanshinone components. However, the regulatory mechanism of DNA methylation on tanshinone production remains elusive. Here, we analyzed 30-day-old hairy roots of S. miltiorrhiza and S. bowleyana using targeted high-performance liquid chromatography analysis and found significantly higher tanshinone content in S. miltiorrhiza. Whole-genome bisulfite sequencing revealed elevated DNA methylation levels in S. miltiorrhiza, potentially due to the upregulation of methylation-related genes, including DOMAINS REARRANGED METHYLTRANSFERASE 1 (DRM1), DECREASE IN DNA METHYLATION 1 (DDM1), CHROMOMETHYLASE 2 (CMT1), and CHROMOMETHYLASE 3 (CMT3), alongside the low expression of the demethylase gene REPRESSOR OF SILENCING 1 (ROS1) in S. miltiorrhiza. Additionally, four genes that are involved in tanshinone biosynthesis, including 1-DEOXY-D-XYLULOSE-5-PHOSPHATE REDUCTASE (DXS1), GERANYLGERANYL DIPHOSPHATE SYNTHASE (GGPPS2), 4-HYDROXY-3-METHYLBUT-2-ENYL PYROPHOSPHATE REDUCTASE (HDR2), and COPALYL PYROPHOSPHATE SYNTHASE (CPS3), showed lower methylation levels in the promoters of DXS1, GGPPS2, and CPS3 and a higher DNA methylation level in the gene body of HDR2 in S. miltiorrhiza, which may lead to their high expression and the accumulation of tanshinones. Consistently, overexpression of the SmCMT3 in S. miltiorrhiza significantly reduced the contents of cryptotanshinone, tanshinone I, and tanshinone IIA. Transcriptomic and methylome analyses confirmed that the expression levels of the tanshinone biosynthesis-related genes, including SmMK, SmCPS1, SmDXS2, and SmAACT1, were correlated with their promoter or gene body DNA methylation levels. Our findings reveal that DNA methylation critically regulates tanshinone biosynthesis in S. miltiorrhiza and S. bowleyana, offering valuable insights for breeding.

Abietanes