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An in situ slow-releasing H2S donor depot with long-term therapeutic effects for treating ischemic diseases
期刊文章

An in situ slow-releasing H2S donor depot with long-term therapeutic effects for treating ischemic diseases

M.-H. Hsieh, H.-W. Tsai, K.-J. Lin, Z.-Y. Wu, H.-Y. Hu, Y. Chang, H.-J. Wei 和 H.-W. Sung
Materials Science and Engineering C, 卷.104
2019
Web of Science ID: WOS:000487569300110

摘要

Critical limb ischemia Drug delivery H<sub>2</sub>S donor Oxidative stress Therapeutic angiogenesis Allyl Compounds Animals Antioxidants Apoptosis Cardiotonic Agents Cell Line Delayed-Action Preparations Human Umbilical Vein Endothelial Cells Humans Hydrogen Sulfide Mice Myocardial Ischemia Myocytes, Cardiac NF-E2-Related Factor 2 Oxidative Stress Sulfides Cell death Disease control Drug delivery Histology Oxidative stress Sulfur compounds Targeted drug delivery Tissue Transcription allyl compound antioxidant cardiotonic agent diallyl trisulfide hydrogen sulfide sulfide transcription factor Nrf2 Critical limb ischemia H2S donor Intracellular production Intramuscular injections Microparticle systems Poly(D , L-lactic-co-glycolic acid) Therapeutic angiogenesis Therapeutic efficacy animal apoptosis cardiac muscle cell cell line delayed release formulation drug effect heart muscle ischemia human metabolism mouse oxidative stress pharmacology umbilical vein endothelial cell Controlled drug delivery
Therapeutic angiogenesis is essential for rescuing necrotic tissues in cases of ischemic disease. The exogenous hydrogen sulfide (H2S) donor, diallyl trisulfide (DATS), has been investigated as a therapeutic agent that promotes angiogenesis. However, the short half-life of generated H2S limits its therapeutic efficacy. In an attempt to overcome this difficulty, a poly(D,L-lactic-co-glycolic acid) microparticle system that contains DATS (DATS@MPs) is prepared as an in situ depot for the controlled release of H2S, providing slow release and long-term effectiveness. The results of in vitro investigations indicate that the slow-released DATS from the DATS@MPs depot yields a longer intracellular production of H2S than that from a free DATS depot. The intracellular generation of H2S favors the translocation of the transcription factor, Nrf2, from the cytosol to nuclei, potentially upregulating the gene expressions of antioxidant enzymes, ultimately increasing cellular resistance to oxidative stress. Intramuscular injection of the slow-releasing H2S donor depot DATS@MPs in an ischemic limb that is experimentally generated in a mouse model promotes therapeutic angiogenesis and protects cells from apoptosis and tissues from necrosis, ultimately salvaging the limb. These analytical results reveal that DATS@MPs is potentially useful in H2S-based therapy for treating ischemic diseases. © 2019 Elsevier B.V.

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85069603021&doi=10.1016%2fj.msec.2019.109954&partnerID=40&md5=ba9e78144ed6c32eb1b8681de50da408檢視

相關連結

InCites亮點

本研究成果之相關指標(擷取自 InCites Benchmarking & Analytics)

合作類型
機構合作
引用書目主題
1 Clinical & Life Sciences
1.127 Molecular & Cell Biology - Pharmacology
1.127.1913 Hydrogen Sulfide Signaling
Web Of Science研究領域
Materials Science, Biomaterials
ESI研究領域
Materials Science

聯合國永續發展目標(SDGs)

此研究成果有助於達成以下目標:

#3 Good Health and Well-Being

來源:來自InCites的SDGs

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