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Optimizing endothelial cell functionalization for cell therapy of vascular proliferative disease using a direct contact co-culture system

机译:使用直接接触共培养系统优化内皮细胞功能化以治疗血管增生性疾病

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摘要

Increased susceptibility to thrombosis, neoatherosclerosis, and restenosis due to incomplete regrowth of the protective endothelial layer remains a critical limitation of the interventional strategies currently used clinically to relieve atherosclerotic obstruction. Rapid recovery of endothelium holds promise for both preventing the thrombotic events and reducing post-angioplasty restenosis, providing the rationale for developing cell delivery strategies for accelerating arterial reendothelialization. The successful translation of experimental cell therapies into clinically viable treatment modalities for restoring vascular endothelium critically depends on identifying strategies for enhancing the functionality of endothelial cells (EC) derived from high cardiovascular risk patients, the target group for the majority of angioplasty procedures. Enhancing EC-associated nitric oxide (NO) synthesis by inducing overexpression of NO synthase (NOS) has shown promise as a way of increasing paracrine activity and restoring function of EC. In the present study, we developed a direct contact co-culture approach compatible with highly labile effectors, such as NO, and applied it for determining the effect of EC functionalization via NOS gene transfer on the growth of co-cultured arterial smooth muscle cells (A10 cell line) exhibiting the defining characteristics of neointimal cells. Bovine aortic endothelial cells magnetically transduced with inducible NOS-encoding adenovirus (Ad) formulated in zinc oleate-based magnetic nanoparticles (MNP[iNOSAd]) strongly suppressed growth of proliferating A10 and attenuated the stimulatory effect of a potent mitogen, platelet-derived growth factor (PDGF-BB), whereas EC functionalization with free iNOSAd or MNP formulated with a different isoform of the enzyme, endothelial NOS, was associated with lower levels of NO synthesis and less pronounced antiproliferative activity toward co-cultured A10 cells. These results show feasibility of applying magnetically facilitated gene transfer to potentiate therapeutically relevant effects of EC for targeted cell therapy of restenosis. The direct contact co-culture methodology provides a sensitive and reliable tool with potential utility for a variety of biomedical applications.
机译:由于保护性内皮层的不完全再生引起的对血栓形成,新动脉粥样硬化和再狭窄的敏感性增加仍然是目前临床上用于缓解动脉粥样硬化阻塞的干预策略的关键限制。内皮的快速恢复有望防止血栓形成事件并减少血管成形术后的再狭窄,为开发加速动脉再内皮化的细胞递送策略提供了理论依据。成功地将实验性细胞疗法转化为可恢复血管内皮的临床可行治疗方式,关键取决于确定增强心血管高危患者(大多数血管成形术的目标人群)的内皮细胞(EC)功能的策略。通过诱导NO合酶(NOS)的过表达来增强EC相关的一氧化氮(NO)的合成已显示出有望作为增加旁分泌活性和恢复EC功能的一种方法。在本研究中,我们开发了一种与高度不稳定的效应子(如NO)兼容的直接接触共培养方法,并将其用于确定通过NOS基因转移EC功能化对共培养的动脉平滑肌细胞生长的影响( A10细胞系)具有新内膜细胞的定义特征。用油酸锌基磁性纳米粒子(MNP [iNOSAd])配制的可诱导性NOS编码腺病毒(Ad)磁转导的牛主动脉内皮细胞强烈抑制增殖性A10的生长,并减弱了有力促分裂原(血小板衍生的生长因子)的刺激作用(PDGF-BB),而用游离iNOSAd或MNP配制的EC功能化与酶的不同同种型(内皮NOS)相关,则NO合成水平较低,并且对共培养的A10细胞的抗增殖活性较弱。这些结果显示了应用磁性促进的基因转移以增强EC对再狭窄的靶向细胞治疗的治疗相关作用的可行性。直接接触共培养方法学为各种生物医学应用提供了一种敏感而可靠的工具,具有潜在的实用性。

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