ArticleCell communication and signaling : CCS2024
Investigating the therapeutic effects and mechanisms of Carthamus tinctorius L.-derived nanovesicles in atherosclerosis treatment.
Article in Cell communication and signaling : CCS, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 18 papers, 1 of them a synthesis that pooled it.
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Who cites it
18 citing papers in PubMed, 1 synthesis or guideline pooled it, 14 citations in OpenAlex.
- Systematic review of Chinese medicine for the treatment of atherosclerosis.Frontiers in cardiovascular medicine · 2025Pooled it
- Mechanisms and Translational Potential of Plant-Derived Extracellular Vesicles in Cardiovascular Disease.Cells · 2026Review
- Isolation, Characterization, and Anti-Inflammatory Effects ofFoods (Basel, Switzerland) · 2026Article
- Plant-derived extracellular vesicles as emerging cardioprotective agents for cardiovascular diseases.Journal of nanobiotechnology · 2026Review
- PhytosRNA therapeutics: Cross-kingdom communication and translational potential of Chinese herbal medicine-derived small RNAs.Plant cell reports · 2026Review
- Solanum nigrum L.-derived nanovesicles as novel nanotherapeutics suppressing prostate cancer progression via senescence-based antitumor activity.Bioresources and bioprocessing · 2026Article
- Plant-Derived Vesicle-like Nanoparticles for Cancer Therapy: From Drug Delivery to Combined Immunotherapy.Antioxidants (Basel, Switzerland) · 2026Review
- Article
- A Novel Weight Loss Mechanism of Hydroxysafflor Yellow A in Obese Mice: Involvement of Immune Inflammation via Prkcd, Btk, and Vav1 Genes in Adipose Tissue.Current pharmaceutical biotechnology · 2026Article
- Plant-Derived Exosome-Like Nanoparticles: Mechanisms of Cross-Kingdom Regulation and Perspectives as Natural Drug Carriers for Disease Treatment.International journal of nanomedicine · 2026Review
- Research progress on targeting autophagy pathways with medicinal plants and their active metabolites for the treatment of heart failure.Frontiers in pharmacology · 2026Review
- Nanodelivery of Bioactive Natural Products: A Targeted Therapeutic Breakthrough for Atherosclerosis.Pharmaceutics · 2025Review
- The potential of plant-derived vesicles in treating periodontitis and associated systemic diseases: current advances and future directions.Journal of nanobiotechnology · 2025Review
- A New Perspective on Regenerative Medicine: Plant-Derived Extracellular Vesicles.Biomolecules · 2025Review
- Dendrobium officinale-derived nanovesicles: a natural therapy for comprehensive regulation of angiogenesis, inflammation, and tissue repair to enhance skin wound healing.Bioresources and bioprocessing · 2025Article
- Advancements in Plant-Derived sRNAs Therapeutics: Classification, Delivery Strategies, and Therapeutic Applications.International journal of molecular sciences · 2025Review
- From Garden to Clinic: Plant‑Derived Exosome‑Like Nanovesicles for Precision Oxidative Stress Therapy.International journal of nanomedicine · 2025Review
- Molecular mechanisms underlyingFrontiers in pharmacology · 2025Article
Corrections and comments
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Authors and funding
6 authors at 5 institutions in 1 country.
Funding
Abstract
backgroundCarthamus tinctorius L., a traditional herbal medicine used for atherosclerosis (AS), lacks a clear understanding of its therapeutic mechanisms. This study aimed to investigate the therapeutic effects and mechanisms of Carthamus tinctorius L.-derived nanovesicles (CDNVs) in AS treatment.
methodsCDNVs were isolated and characterized using improved isolation methods. Transmission electron microscopy, nanoparticle tracking analysis, and protein analysis confirmed their morphology, size, and protein composition. Small RNA sequencing was performed to identify the miRNA profile of CDNVs, and bioinformatics analysis was used to determine their potential biological roles. In vivo biodistribution and toxicity studies were conducted in mice to assess the stability and safety of orally administered CDNVs. The anti-atherosclerotic effects of CDNVs were evaluated in ApoE-/- mice through plaque burden analysis. The protective effects of CDNVs on ox-LDL-treated endothelial cells were assessed through proliferation, apoptosis, reactive oxygen species activation, and monocyte adhesion assays. miRNA and mRNA sequencing of CDNV-treated endothelial cells were performed to explore their regulatory effects and potential target genes.
resultsCDNVs were successfully isolated and purified from Carthamus tinctorius L. tissue lysates. They exhibited a saucer-shaped or cup-shaped morphology, with an average particle size of 142.6 ± 0.7 nm, and expressed EV markers CD63 and TSG101. CDNVs contained proteins, small RNAs, and metabolites, including the therapeutic compound HSYA. Small RNA sequencing identified 95 miRNAs, with 10 common miRNAs accounting for 72.63% of the total miRNAs. These miRNAs targeted genes involved in cell adhesion, apoptosis, and cell proliferation, suggesting their relevance in cardiovascular disease. Orally administered CDNVs were stable in the gastrointestinal tract, absorbed into the bloodstream, and accumulated in the liver, lungs, heart, and aorta. They significantly reduced the burden of atherosclerotic plaques in ApoE-/- mice and exhibited superior effects compared to HSYA. In vitro studies demonstrated that CDNVs were taken up by HUVECs, promoted proliferation, attenuated ox-LDL-induced apoptosis and ROS activation, and reduced monocyte adhesion. CDNV treatment resulted in significant changes in miRNA and mRNA expression profiles of HUVECs, with enrichment in inflammation-related genes. CXCL12 was identified as a potential direct target of miR166a-3p.
conclusionCDNVs isolated from Carthamus tinctorius L. tissue lysates represent a promising oral therapeutic option for cardiovascular diseases. The delivery of miRNAs by CDNVs regulates inflammation-related genes, including CXCL12, in HUVECs, suggesting their potential role in modulating endothelial inflammation. These findings provide valuable insights into the therapeutic potential of CDNVs and their miRNAs in cardiovascular disease.
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Registered trials
Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.