植黑素结合间充质干细胞及其在成骨不全中的潜在作用

Tehseen Fatima Ali , Tabinda Hasan
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引用次数: 23

摘要

成骨不全症顾名思义,是一种以骨矿化和发育不完善为特征的骨骼疾病。关键的缺陷在于成骨-类骨循环,导致钙化不足,从而导致骨骼脆弱。成骨不全患者易发生骨折。迄今为止,许多生长激素/合成类似物已用于治疗成骨不全症患者,它们确实提供了暂时的缓解,但并非没有许多不想要的副作用。这些治疗提供的干预主要是在症状水平上,具有暂时的疼痛缓解和一定程度的可用类骨矿化;但这种疾病的根本原因仍未得到重视。这种治疗方式不能促进间充质干细胞成骨分化和解决类骨的根本缺陷。本文提出了一种在细胞水平上治疗成骨不全的独特且迄今尚未实施的方法,即应用天然来源的“褐藻分离的褐藻单宁”,它通过增加碱性磷酸酶活性、钙化矿化和总蛋白和胶原蛋白合成来促进间质干细胞分化。这种天然提取物,当与间充质干细胞直接结合时,将促进细胞分化为健康的骨形成细胞。这种方式将从本质上加强骨骼,并且没有常规药物治疗药物的不良反应。
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Phlorotannin-incorporated mesenchymal stem cells and their promising role in osteogenesis imperfecta

Osteogenesis imperfecta as the name suggests, is a bone disorder characterised by imperfect bone mineralisation and development. The key defect lies in the osteoblast–osteoid cycle, leading to insufficient calcification and consequently weak bones. Osteogenesis imperfecta patients are prone to fractures. Till date, numerous growth hormone/synthetic analogues have been used therapeutically in osteogenesis imperfecta patients and they do provide temporary relief, but not without numerous unwanted side effects. The intervention offered by such treatments is mainly at the symptomatic level, with temporary pain relief and some degree of mineralisation of available osteoids; but the root cause of the disease remains unattended. Such treatment modalities fail to promote mesenchymal stem cell osteogenic differentiation and tackle the fundamental deficiency of osteoids. This paper suggests a unique and hitherto unimplemented approach for treatment of osteogenesis imperfecta at the cellular level through application of a natural source, ‘Brown algae isolated phlorotannins’, which promote mesenchymal stem cell differentiation by increasing alkaline phosphatase activity, calcific mineralisation and total protein and collagen synthesis. This natural extract, when integrated directly with mesenchymal stem cells, will boost cellular differentiation into healthy bone-forming cells. The modality will strengthen the bone intrinsically and without the adverse reactions of routine pharmacotherapeutic agents.

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Contents Editorial Board Editorial Board Contents Reprogramming of adult stem/progenitor cells into iPSCs without reprogramming factors
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