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运用美国国立卫生研究院症状科学模型来理解疲劳和线粒体生物能量学。

Using the NIH symptom science model to understand fatigue and mitochondrial bioenergetics.

作者信息

Shen Qiuhua, Mahoney Diane, Peltzer Jill, Rahman Faith, Krueger Kathryn J, Hiebert John B, Pierce Janet D

机构信息

University of Kansas Medical Center, Kansas City, Kansas, 66160, United States of America.

出版信息

J Nurs (Luton). 2020;7. doi: 10.7243/2056-9157-7-2.

Abstract

The symptom of fatigue is prevalent among patients with chronic diseases and conditions such as congestive heart failure and cancer. It has a significant debilitating impact on patients' physical health, quality of life, and well-being. Early detection and appropriate assessment of fatigue is essential for diagnosing, treating, and monitoring disease progression. However, it is often challenging to manage the symptom of fatigue without first investigating the underlying biological mechanisms. In this narrative review, we conceptualize the symptom of fatigue and its relationship with mitochondrial bioenergetics using the National Institute of Health Symptom Science Model (NIH-SSM). In particular, we discuss mental and physical measures to assess fatigue, the importance of adenosine triphosphate (ATP) in cellular and organ functions, and how impaired ATP production contributes to fatigue. Specific methods to measure ATP are described. Recommendations are provided concerning how to integrate biological mechanisms with the symptom of fatigue for future research and clinical practice to help alleviate symptoms and improve patients' quality of life.

摘要

疲劳症状在患有慢性疾病和病症(如充血性心力衰竭和癌症)的患者中很普遍。它对患者的身体健康、生活质量和幸福感有重大的削弱影响。疲劳的早期检测和适当评估对于疾病的诊断、治疗和监测疾病进展至关重要。然而,在没有首先研究潜在生物学机制的情况下,管理疲劳症状往往具有挑战性。在这篇叙述性综述中,我们使用美国国立卫生研究院症状科学模型(NIH-SSM)对疲劳症状及其与线粒体生物能量学的关系进行概念化。特别是,我们讨论了评估疲劳的心理和身体措施、三磷酸腺苷(ATP)在细胞和器官功能中的重要性,以及ATP生成受损如何导致疲劳。描述了测量ATP的具体方法。针对如何将生物学机制与疲劳症状相结合以用于未来研究和临床实践提供了建议,以帮助缓解症状并改善患者的生活质量。

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