Extracellular Vesicle Secretion from 3D Culture of Human Adipose-Derived Mesenchymal Stem Cells in Scalable Bioreactors.

IF 3.7 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Shaoyang Ma, Justice Ene, Colton McGarraugh, Shaoxuan Ma, Colin Esmonde, Yuan Liu, Yan Li
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引用次数: 0

Abstract

Human mesenchymal stem cells (hMSCs) and their secreted extracellular vesicles (EVs) are promising therapeutics to treat degenerative or inflammatory diseases such as ischemic stroke and Alzheimer's disease (AD). hMSC-EVs have the coveted ability to contain therapeutically relevant biomaterials; however, EV biogenesis is sensitive to the culture microenvironment in vitro. Recently, the demand for hMSC-EVs has increased dramatically, highlighting the need for scalable bioreactors for large-scale biomanufacturing. In this study, adipose-derived hMSCs were seeded in 2D plates, an ultralow-attachment (ULA) plates as static aggregates, a novel vertical wheel bioreactor (VWBR) as aggregates, and a spinner flask bioreactor (SFB). EV secretion was quantified and compared using ExtraPEG-based ultracentrifugation and nanoparticle tracking analysis. Compared to the 2D group, significantly higher total EV production and cell productivity in the bioreactors were observed, as well as the upregulation of EV biogenesis genes. Furthermore, there was increased EV production in the VWBR compared to the SFB and the static ULA control. Functional assessments demonstrated that EVs, when delivered via culture medium or hydrogel-based systems, significantly attenuated oxidative stress elevation, suppressed proinflammatory cytokine secretion (e.g., TNF-α) and gene expression, and inhibited nuclear factor kappa-light-chain-enhancer of activated B-cell (NF-κB) activation and neurodegenerative markers across in vitro assays. These findings suggest EV-mediated mitigation of oxidative and inflammatory pathways, potentially through modulation of the NF-κB signaling cascade. This study shows the influence of bioreactor types and their microenvironments on EV secretion in hMSCs and their applications in hMSC-EV production and bioengineering.

可扩展生物反应器中人脂肪源间充质干细胞三维培养的细胞外囊泡分泌。
人间充质干细胞(hMSCs)及其分泌的细胞外囊泡(EVs)是治疗退行性或炎症性疾病(如缺血性中风和阿尔茨海默病(AD))的有希望的治疗方法。hmsc - ev具有令人垂涎的包含治疗相关生物材料的能力;然而,体外培养微环境对EV的生物发生非常敏感。最近,对hmsc - ev的需求急剧增加,突出了大规模生物制造对可扩展生物反应器的需求。在这项研究中,脂肪来源的hMSCs分别在二维板、超低附着(ULA)板作为静态聚集体、新型垂直轮式生物反应器(VWBR)作为聚集体和旋转烧瓶生物反应器(SFB)中进行培养。利用基于extrapeg的超离心和纳米颗粒跟踪分析对EV分泌进行定量和比较。与2D组相比,生物反应器中EV总产量和细胞生产率显著提高,EV生物发生基因表达上调。此外,与SFB和静态ULA控制相比,VWBR中的EV产量增加。功能评估表明,在体外实验中,通过培养基或水凝胶系统递送的ev可显著减轻氧化应激升高,抑制促炎细胞因子分泌(如TNF-α)和基因表达,抑制活化b细胞(NF-κB)活化的核因子kappa轻链增强子和神经退行性标志物。这些发现表明ev介导的氧化和炎症途径的缓解,可能通过调节NF-κB信号级联。本研究揭示了不同类型的生物反应器及其微环境对hmsc中EV分泌的影响,以及它们在hMSC-EV生产和生物工程中的应用。
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来源期刊
Bioengineering
Bioengineering Chemical Engineering-Bioengineering
CiteScore
4.00
自引率
8.70%
发文量
661
期刊介绍: Aims Bioengineering (ISSN 2306-5354) provides an advanced forum for the science and technology of bioengineering. It publishes original research papers, comprehensive reviews, communications and case reports. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. All aspects of bioengineering are welcomed from theoretical concepts to education and applications. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. There are, in addition, four key features of this Journal: ● We are introducing a new concept in scientific and technical publications “The Translational Case Report in Bioengineering”. It is a descriptive explanatory analysis of a transformative or translational event. Understanding that the goal of bioengineering scholarship is to advance towards a transformative or clinical solution to an identified transformative/clinical need, the translational case report is used to explore causation in order to find underlying principles that may guide other similar transformative/translational undertakings. ● Manuscripts regarding research proposals and research ideas will be particularly welcomed. ● Electronic files and software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. ● We also accept manuscripts communicating to a broader audience with regard to research projects financed with public funds. Scope ● Bionics and biological cybernetics: implantology; bio–abio interfaces ● Bioelectronics: wearable electronics; implantable electronics; “more than Moore” electronics; bioelectronics devices ● Bioprocess and biosystems engineering and applications: bioprocess design; biocatalysis; bioseparation and bioreactors; bioinformatics; bioenergy; etc. ● Biomolecular, cellular and tissue engineering and applications: tissue engineering; chromosome engineering; embryo engineering; cellular, molecular and synthetic biology; metabolic engineering; bio-nanotechnology; micro/nano technologies; genetic engineering; transgenic technology ● Biomedical engineering and applications: biomechatronics; biomedical electronics; biomechanics; biomaterials; biomimetics; biomedical diagnostics; biomedical therapy; biomedical devices; sensors and circuits; biomedical imaging and medical information systems; implants and regenerative medicine; neurotechnology; clinical engineering; rehabilitation engineering ● Biochemical engineering and applications: metabolic pathway engineering; modeling and simulation ● Translational bioengineering
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