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首页> 外文期刊>Frontiers in Bioengineering and Biotechnology >Acoustic Radiation or Cavitation Forces From Therapeutic Ultrasound Generate Prostaglandins and Increase Mesenchymal Stromal Cell Homing to Murine Muscle
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Acoustic Radiation or Cavitation Forces From Therapeutic Ultrasound Generate Prostaglandins and Increase Mesenchymal Stromal Cell Homing to Murine Muscle

机译:来自治疗超声的声学辐射或空化力产生前列腺素,并增加间充质基质细胞归巢到鼠肌肉

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摘要

Nonablative ultrasound (US)-based techniques to improve targeted tropism of systemically-infused cell therapies, particularly mesenchymal stromal cell (MSC), have gained attention in recent years. Mechanotransduction following targeted US sonications have been shown to modulate tissue microenvironments by upregulating cytokines, chemokines, and trophic factors in addition to vascular cell adhesion molecules (CAM) that are necessary to promote tropism of MSC. While numerous US treatment parameters have demonstrated increased MSC homing, it remains unclear how the different mechanical US forces (i.e., acoustic radiation forces [ARF] or cavitation forces) influence tissue microenvironments. This study sonicated murine muscle tissue with pulsed focused ultrasound (pFUS) at 0.5 MHz or 1.15 MHz each over a range of US intensities. Following sonication, tissue was assayed for the prostaglandins (PG) PGH2 and PGE2 as indicators of microenvironmental changes that would support MSC tropism. PGH2 and PGE2 levels were correlated to physical pFUS parameters and acoustic emissions measured by hydrophone. While ARF (pFUS with absence of cavitation signatures) was sufficient to increase PGH2 and PGE2, nonlinear curve fitting revealed a frequency-independent relationship between prostaglandin production and mechanical index (MI), which accounts for increased cavitation probabilities of lower frequencies. The prostaglandin data suggested molecular changes in muscle would be particularly sensitive to cavitation. Therefore, low-intensity pulsed ultrasound (LIPUS) at 1 MHz was administered with low ARF (MI = 0.2) in combination with intravenous (IV) infusions of microbubble (MB) contrast agents. This combination upregulated prostaglandins and CAM without ultrasound-mediated microbubble destruction and ultimately promoted tropism of IV-infused MSC. This study revealed that accentuating nondestructive MB cavitation by US using parameters similar to diagnostic US contrast imaging increased MSC homing. Such approaches are particularly attractive to overcome clinical translation barriers of many still-experimental US parameters used in previous stem cell tropism studies.
机译:近年来,非布解超声(美国)基于系统注入的细胞疗法,特别是间充质基质细胞(MSC)的靶向性的靶向的技术。在靶向美国的超声处理后机机制通过促进血管细胞粘附分子(凸轮)来调节组织显微环境,这是促进MSC的热衷所需的血管细胞粘附分子(凸轮)。虽然许多美国治疗参数已经证明了MSC归巢的增加,但它仍然不明确不同机械美国力量(即声学辐射力[ARF]或空化力)影响组织微环境。本研究将鼠肌肉组织超声处理,在0.5MHz或1.15MHz的脉冲聚焦超声(PFU),每次在一系列美国强度范围内。松开后,将组织用于前列腺素(PG)PGH2和PGE2作为将MSC Trophist的微环境变化的指标进行测定。 PGH2和PGE2水平与通过水听器测量的物理PFU参数和声发射相关。虽然ARF(具有缺陷签名的PFU)足以增加PGH2和PGE2,但非线性曲线拟合揭示了前列腺素生产和机械指数(MI)之间的频率无关的关系,这考虑了较低频率的空化概率。前列腺素数据建议肌肉的分子变化对空化特别敏感。因此,在1MHz的低强度脉冲超声(LIPUS)与低ARF(MI = 0.2)施用,与微泡(MB)造影剂的静脉内(IV)输注组合。这种组合上调的前列腺素和凸轮没有超声介导的微泡破坏,最终促进了IV-Infused MSC的热衷。本研究表明,我们使用类似于诊断美国对比度成像的参数来诱惑非破坏性的MB空曲线增加MSC归巢。这种方法特别吸引人克服先前干细胞覆革主义研究中使用的许多静止实验性美国参数的临床翻译障碍。

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