Department of Chemistry G. Ciamician, University of Bologna, 40126 Bologna, Italy.
byFlow srl, 40129 Bologna, Italy.
Int J Mol Sci. 2022 Dec 15;23(24):15971. doi: 10.3390/ijms232415971.
Dissolved oxygen (DO) is deeply involved in preserving the life of cellular tissues and human beings due to its key role in cellular metabolism: its alterations may reflect important pathophysiological conditions. DO levels are measured to identify pathological conditions, explain pathophysiological mechanisms, and monitor the efficacy of therapeutic approaches. This is particularly relevant when the measurements are performed in vivo but also in contexts where a variety of biological and synthetic media are used, such as ex vivo organ perfusion. A reliable measurement of medium oxygenation ensures a high-quality process. It is crucial to provide a high-accuracy, real-time method for DO quantification, which could be robust towards different medium compositions and temperatures. In fact, biological fluids and synthetic clinical fluids represent a challenging environment where DO interacts with various compounds and can change continuously and dynamically, and further precaution is needed to obtain reliable results. This study aims to present and discuss the main oxygen detection and quantification methods, focusing on the technical needs for their translation to clinical practice. Firstly, we resumed all the main methodologies and advancements concerning dissolved oxygen determination. After identifying the main groups of all the available techniques for DO sensing based on their mechanisms and applicability, we focused on transferring the most promising approaches to a clinical in vivo/ex vivo setting.
溶解氧(DO)在维持细胞组织和人类生命方面起着至关重要的作用,因为它在细胞代谢中起着关键作用:其变化可能反映出重要的病理生理状况。测量 DO 水平可用于识别病理状况、解释病理生理机制和监测治疗方法的疗效。这在体内测量时尤为重要,但在使用各种生物和合成介质的情况下也是如此,例如离体器官灌注。可靠的介质氧测量可确保高质量的过程。提供一种高精度、实时的 DO 定量方法至关重要,该方法应该能够抵抗不同介质成分和温度的影响。事实上,生物流体和合成临床流体代表了一个具有挑战性的环境,其中 DO 与各种化合物相互作用,并且可以不断动态地变化,因此需要采取进一步的预防措施以获得可靠的结果。本研究旨在介绍和讨论主要的氧气检测和定量方法,重点讨论将这些方法转化为临床实践的技术需求。首先,我们总结了所有关于溶解氧测定的主要方法和进展。在确定了基于机制和适用性的所有可用 DO 传感技术的主要组别后,我们专注于将最有前途的方法转移到临床体内/体外环境中。