Molecular modifications to mitigate oxidative stress and improve red blood cell storability.

IF 3.2 3区 医学 Q2 PHYSIOLOGY
Frontiers in Physiology Pub Date : 2024-10-30 eCollection Date: 2024-01-01 DOI:10.3389/fphys.2024.1499308
Alkmini T Anastasiadi, Konstantinos Stamoulis, Anastasios G Kriebardis, Vassilis L Tzounakas
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引用次数: 0

Abstract

The development of red blood cell (RBC) storage lesion during hypothermic storage has long posed challenges for blood transfusion efficacy. These alterations are primarily driven by oxidative stress, concern both structural and biochemical aspects of RBCs, and affect their interactions with the recipient's tissues post-transfusion. Efforts to counteract these effects focus on improving the antioxidant capacity within stored RBCs, reducing oxygen exposure, and scavenging harmful molecules that accumulate during storage. Various supplements, such as ascorbic acid, N-acetylcysteine, polyphenolic compounds, and specific metabolites have shown the potential to improve RBC quality by reducing oxidative lesions and lysis phenomena, and enhancing antioxidant, energy, or proteostasis networks. Accordingly, anaerobic storage has emerged as a promising strategy, demonstrating improved RBC storability and recovery in both animal models and preliminary human studies. Finally, targeted scavenging of harmful storage-related phenotypes and molecules, like removal signals, oxidized proteins, and extracellular hemoglobin, while not so studied, also has the potential to benefit both the unit and the patient in need. Omics technologies have aided a lot in these endeavors by revealing biomarkers of superior storability and, thus, potential novel supplementation strategies. Nonetheless, while the so far examined storage modifications show significant promise, there are not many post-transfusion studies (either in vitro, in animal models, or humans) to evaluate RBC efficacy in the transfusion setting. Looking ahead, the future of blood storage and transfusion will likely depend on the optimization of these interventions to extend the shelf-life and quality of stored RBCs, as well as their therapeutic outcome.

减轻氧化应激和提高红细胞储存能力的分子改造。
长期以来,红细胞(RBC)在低温储存过程中发生的储存病变一直是输血疗效面临的挑战。这些变化主要是由氧化应激引起的,涉及红细胞的结构和生化两方面,并影响其在输血后与受血者组织的相互作用。抵消这些影响的方法主要是提高储存红细胞的抗氧化能力、减少氧气暴露和清除储存过程中积累的有害分子。抗坏血酸、N-乙酰半胱氨酸、多酚化合物和特定代谢物等各种补充剂已显示出通过减少氧化损伤和裂解现象以及增强抗氧化、能量或蛋白稳态网络来改善红细胞质量的潜力。因此,无氧贮存已成为一种很有前景的策略,在动物模型和初步人体研究中都证明了无氧贮存可提高红细胞的贮存能力和恢复能力。最后,有针对性地清除与储存有关的有害表型和分子,如清除信号、氧化蛋白质和细胞外血红蛋白,虽然研究不多,但也有可能使单位和有需要的患者受益。Omics 技术为这些研究提供了很大的帮助,它揭示了优质贮存的生物标志物,因此也揭示了潜在的新型补充策略。尽管如此,尽管迄今为止所研究的储存改良方法显示出巨大的前景,但用于评估输血环境中红细胞功效的输血后研究(无论是体外研究、动物模型研究还是人体研究)并不多。展望未来,血液储存和输血的未来可能将取决于这些干预措施的优化,以延长储存的红细胞的保质期和质量,并提高其治疗效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.50
自引率
5.00%
发文量
2608
审稿时长
14 weeks
期刊介绍: Frontiers in Physiology is a leading journal in its field, publishing rigorously peer-reviewed research on the physiology of living systems, from the subcellular and molecular domains to the intact organism, and its interaction with the environment. Field Chief Editor George E. Billman at the Ohio State University Columbus is supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide.
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