A scoping review of preclinical intensive care unit-acquired weakness models

被引:0
|
作者
Yu, Qingmei [1 ,2 ]
Song, Jiamei [1 ,2 ]
Yang, Luying [2 ,3 ]
Miao, Yanmei [2 ,3 ]
Xie, Leiyu [3 ]
Ma, Xinglong [3 ]
Xie, Peng [4 ]
Chen, Shaolin [1 ,2 ]
机构
[1] Zunyi Med Univ, Nursing Dept, Affiliated Hosp, Zunyi, Guizhou, Peoples R China
[2] Zunyi Med Univ, Sch Nursing, Zunyi, Guizhou, Peoples R China
[3] Zunyi Med Univ, Peoples Hosp Zunyi City 1, Dept Crit Care Med, Affiliated Hosp 3, Zunyi, Guizhou, Peoples R China
[4] Univ South China, Affiliated Hosp 2, Hengyang Med Sch, Dept Crit Care Med, Hengyang, Hunan, Peoples R China
关键词
intensive care unit-acquired weakness; animal model; muscle weakness; muscle atrophy; scoping review; PROLONGED MECHANICAL VENTILATION; SKELETAL-MUSCLE; RAT MODEL; ACETYLCHOLINE-RECEPTOR; DIAPHRAGM WEAKNESS; SEPSIS; EXPRESSION; DYSFUNCTION; ATROPHY; EXCITABILITY;
D O I
10.3389/fphys.2024.1423567
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Background Animal models focusing on neuromuscular outcomes are crucial for understanding the mechanisms of intensive care unit-acquired weakness (ICU-AW) and exploring potential innovative prevention and treatment strategies. Aim To analyse and evaluate preclinical ICU-AW models. Methods We manually searched five English and four Chinese databases from 1 January 2002, to 1 February 2024, and reviewed related study references. Full-text publications describing animal models of muscle weakness and atrophy in critical illness were included. Detailed information about model types, animal species, sex, age, induction methods, outcome measures, drawbacks and strengths was extracted from each included study. Results A total of 3,451 citations were initially retrieved, with 84 studies included in the final analysis. The most frequently studied animal model included rodents (86.9%), 64.3% of which were male animals. ICU-AW animal models were mostly induced by comprehensive intensive care unit (ICU) interventions (38.1%) and sepsis (51.2%). Most studies focused on limb muscles (66.7%), diaphragm muscles (21.4%) or both (9.5%). Reported outcomes primarily included muscular pathological changes (83.3%), electrophysiological examinations of muscles (57.1%) and animal grip strength (16.6%). However, details such as animal age, mortality data, experimental design, randomisation, blinding, sample size and interventions for the experimental group and/or control group were inadequately reported. Conclusion Many preclinical models are used to study ICU-AW, but the reporting of methodological details is often incomplete. Although current ICU animal models can mimic the characteristics of human ICU-AW, there is no standard model. Future preclinical studies should develop a standard ICU-AW animal model to enhance reproducibility and improve scientific rigor in exploring the mechanisms and potential treatment of ICU-AW.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Predicting early diagnosis of intensive care unit-acquired weakness in septic patients using critical ultrasound and biological markers
    Lei, Ling
    He, Liang
    Zou, Tongjuan
    Qiu, Jun
    Li, Yi
    Zhou, Ran
    Qin, Yao
    Yin, Wanhong
    BMC ANESTHESIOLOGY, 2025, 25 (01):
  • [42] Demons syndrome with pericardial effusion followed by intensive care unit-acquired weakness: A case report and literature review
    Obata, Eri
    Kai, Kentaro
    Aso, Saki
    Tsukamoto, Nao
    Hanaoka, Takuya
    Nabeta, Yusuke
    Kawano, Yasushi
    SAGE OPEN MEDICAL CASE REPORTS, 2022, 10
  • [43] USE OF MUSCULAR ULTRASOUND TO DETECT INTENSIVE CARE UNIT-ACQUIRED WEAKNESS: A SYSTEMATIC REVIEW AND META-ANALYSIS
    Gu, Bin
    Zhou, Yu
    Shi, Rui
    Miao, Shumin
    Pei, Fei
    Yuan, Hao
    Wang, Luhao
    Teboul, Jean-Louis
    Si, Xiang
    Guan, Xiangdong
    Wu, Jianfeng
    SHOCK, 2025, 63 (01): : 19 - 29
  • [44] Intensive care unit acquired weakness
    Hodgson, Carol L.
    Fan, Eddy
    ANAESTHESIA AND INTENSIVE CARE MEDICINE, 2016, 17 (01) : 24 - 26
  • [45] Intensive care unit acquired weakness
    Saxena, Manoj K.
    Hodgson, Carol L.
    ANAESTHESIA AND INTENSIVE CARE MEDICINE, 2012, 13 (04) : 145 - 147
  • [46] A meta-analysis of the association between vasopressor use and intensive care unit-acquired weakness
    Yang, Tao
    Wang, Yan
    Xi, Xiuming
    Yu, Shanshan
    BRAIN AND BEHAVIOR, 2024, 14 (09):
  • [47] Diagnosis of "intensive care unit-acquired weakness" and "critical illness myopathy": Do the diagnostic criteria need to be revised?
    Rodriguez, Belen
    Schefold, Joerg C.
    Z'Graggen, Werner J.
    CLINICAL NEUROPHYSIOLOGY PRACTICE, 2024, 9 : 236 - 241
  • [48] Assessing the Diagnostic Efficacy of Handgrip Dynamometry and Diaphragmatic Ultrasound in Intensive Care Unit-Acquired Weakness
    Zhang, Qian
    Wang, Xiaomei
    Liu, Mingzhe
    Li, Bin
    Zhang, Kun
    Han, Yaqi
    Li, Jiali
    Xin, Yan
    Huo, Yan
    Hu, Zhenjie
    JOURNAL OF MULTIDISCIPLINARY HEALTHCARE, 2024, 17 : 2359 - 2370
  • [49] Dynamics of myosin degradation in intensive care unit-acquired weakness during severe critical illness
    Tobias Wollersheim
    Janine Woehlecke
    Martin Krebs
    Jida Hamati
    Doerte Lodka
    Anja Luther-Schroeder
    Claudia Langhans
    Kurt Haas
    Theresa Radtke
    Christian Kleber
    Claudia Spies
    Siegfried Labeit
    Markus Schuelke
    Simone Spuler
    Joachim Spranger
    Steffen Weber-Carstens
    Jens Fielitz
    Intensive Care Medicine, 2014, 40 : 528 - 538
  • [50] Intensive Care Unit-Acquired Weakness in Patients With COVID-19: Occurrence and Associated Factors
    Schmidt, Debora
    Piva, Taila Cristina
    Glaeser, Sheila Suzana
    Piekala, Daniele Martins
    Berto, Paula Pinheiro
    Friedman, Gilberto
    Sbruzzi, Graciele
    PHYSICAL THERAPY, 2022, 102 (05):