Extracellular vesicles (EVs): A promising therapeutic tool in the heart tissue regeneration

IF 5 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY BioFactors Pub Date : 2023-12-22 DOI:10.1002/biof.2025
Francesca Diomede, Simone Guarnieri, Paola Lanuti, Fani Konstantinidou, Valentina Gatta, Thangavelu Soundara Rajan, Sante D. Pierdomenico, Oriana Trubiani, Guya Diletta Marconi, Jacopo Pizzicannella
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Abstract

Mesenchymal stem cells (MSCs) treatment has been widely explored as a therapy for myocardial infarction, peripheral ischemic vascular diseases, dilated cardiomyopathy, and pulmonary hypertension. Latest in vitro studies suggest that MSCs can differentiate into contractile cardiomyocytes. One of the best-characterized MSCs products are MSCs-derived extracellular vesicles (EVs). EVs are crucial paracrine effectors of MSCs. Based on previous works, paracrine effects of MSCs play a primary role in the regenerative ability. Hence, in the current paper, we focused our attention on an alternative approach, exploiting products derived from human dental pulp stem cells (hDPSCs) rather than MSCs themselves, which may denote a cost-effective and safer approach. The focus has been on EVs and the bioactive molecules they contain to evaluate their ability to influence the differentiation process toward cardiomyogenic lineage. The expression of GATA4, ACTC1, CX43, and Nkx2.5 was evaluated using Immunofluorescence, real time-PCR, and Western blotting analyses. Furthermore, the expression profiling analysis of the microRNA hsa-miR-200c-3p, targeting the GATA4 gene, was studied. The hsa-miR-200c-3p was found significantly down-regulated in both c-hDPSCs + EVs-hDPSCs and c-hDPSCs + EVs-HL-1 compared to untreated c-hDPSCs underlying a possible epigenetic mechanism behind the prevalent up-regulation of its targeted GATA4 gene. The aim of the present work was to develop an in vitro model of hDPSCs able to differentiate into cardiomyocytes in order to investigate the role of EVs derived from hDPSCs and derived from HL-1 cardiomyocyte cell line in modulating the differentiation process toward cardiomyogenic lineage.

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细胞外囊泡(EVs):心脏组织再生领域前景广阔的治疗工具。
间充质干细胞(MSCs)治疗作为心肌梗死、外周缺血性血管疾病、扩张型心肌病和肺动脉高压的一种疗法已被广泛探讨。最新的体外研究表明,间充质干细胞可分化为具有收缩能力的心肌细胞。细胞外小泡(EVs)是间充质干细胞特征最明显的产物之一。EVs是间充质干细胞的重要旁分泌效应物质。根据以往的研究,间充质干细胞的旁分泌效应在再生能力中起着主要作用。因此,在本文中,我们将注意力集中在另一种方法上,即利用从人牙髓干细胞(hDPSCs)而非间充质干细胞本身提取的产品,这可能是一种具有成本效益且更安全的方法。研究的重点是EVs及其所含的生物活性分子,以评估它们影响向心肌生成系分化过程的能力。通过免疫荧光、实时定量PCR和Western印迹分析评估了GATA4、ACTC1、CX43和Nkx2.5的表达。此外,还研究了靶向 GATA4 基因的 microRNA hsa-miR-200c-3p 的表达谱分析。结果发现,与未处理的 c-hDPSCs 相比,hsa-miR-200c-3p 在 c-hDPSCs + EVs-hDPSCs 和 c-hDPSCs + EVs-HL-1 中均明显下调,这可能是其靶向 GATA4 基因普遍上调背后的表观遗传学机制。本研究的目的是开发一种能分化成心肌细胞的 hDPSCs 体外模型,以研究从 hDPSCs 和 HL-1 心肌细胞系中提取的 EVs 在调节向心肌细胞系分化过程中的作用。
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来源期刊
BioFactors
BioFactors 生物-内分泌学与代谢
CiteScore
11.50
自引率
3.30%
发文量
96
审稿时长
6-12 weeks
期刊介绍: BioFactors, a journal of the International Union of Biochemistry and Molecular Biology, is devoted to the rapid publication of highly significant original research articles and reviews in experimental biology in health and disease. The word “biofactors” refers to the many compounds that regulate biological functions. Biological factors comprise many molecules produced or modified by living organisms, and present in many essential systems like the blood, the nervous or immunological systems. A non-exhaustive list of biological factors includes neurotransmitters, cytokines, chemokines, hormones, coagulation factors, transcription factors, signaling molecules, receptor ligands and many more. In the group of biofactors we can accommodate several classical molecules not synthetized in the body such as vitamins, micronutrients or essential trace elements. In keeping with this unified view of biochemistry, BioFactors publishes research dealing with the identification of new substances and the elucidation of their functions at the biophysical, biochemical, cellular and human level as well as studies revealing novel functions of already known biofactors. The journal encourages the submission of studies that use biochemistry, biophysics, cell and molecular biology and/or cell signaling approaches.
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