Novel application of in vivo microdialysis in a rat Achilles tendon acute injury model

微透析 肌腱 体内 跟腱 医学 炎症 肌肉骨骼损伤 急性损伤 生物医学工程 病理 生物 外科 内科学 生物技术 替代医学
作者
Joseph B. Newton,Courtney A. Nuss,Stephanie N. Weiss,Rebecca L. Betts,Louis J. Soslowsky
出处
期刊:Journal of Applied Physiology [American Physiological Society]
卷期号:136 (1): 43-52
标识
DOI:10.1152/japplphysiol.00720.2023
摘要

Tendon injury and healing involve intricate changes to tissue metabolism, biology, and inflammation. Current techniques often require animal euthanasia or tissue destruction, limiting assessment of dynamic changes in tendon, including treatment response, disease development, rupture risk, and healing progression. Microdialysis, a minimally invasive technique, offers potential for longitudinal assessment, yet it has not been applied to rat tendon models. Therefore, the objective of this study is to adapt a novel application of an in vivo assay, microdialysis, using acute injury as a model for extreme disruption of the tendon homeostasis. We hypothesize that microdialysis will be able to detect measurable differences in the healing responses of acute injury with high specificity and sensitivity. Overall results suggest that microdialysis is a promising in vivo technique for longitudinal assessment for this system with strong correlations between extracellular fluid (ECF) and dialysate concentrations and reasonable recovery rates considering the limitations of this model. Strong positive correlations were found between dialysate and extracellular fluid (ECF) concentration for each target molecule of interest including metabolites, inflammatory mediators, and collagen synthesis and degradation byproducts. These results suggest that microdialysis is capable of detecting changes in tendon healing following acute tendon injury with high specificity and sensitivity. In summary, this is the first study to apply microdialysis to a rat tendon model and assess its efficacy as a direct measurement of tendon metabolism, biology, and inflammation.

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