Chen Cheng-Fong, Chu Hui-Chun, Chen Chao-Ming, Cheng Yu-Chi, Tsai Shang-Wen, Chang Ming-Chau, Chen Wei-Ming, Wu Po-Kuei
Department of Orthopaedics & Traumatology, Taipei Veterans General Hospital, Taiwan; Department of Orthopaedics, Therapeutical and Research Center of Musculoskeletal Tumor, Taipei Veterans General Hospital, Taiwan; Orthopaedic Department School of Medicine, National Yang-Ming University, Taiwan.
Department of Orthopaedics, Therapeutical and Research Center of Musculoskeletal Tumor, Taipei Veterans General Hospital, Taiwan; Institute of Clinical Medicine, School of Medicine, National Yang-Ming University, Taipei, Taiwan.
Cryobiology. 2018 Aug;83:34-39. doi: 10.1016/j.cryobiol.2018.06.008. Epub 2018 Jun 25.
Freezing nitrogen ethanol composite (FNEC) showed effective cryoablative ability for bone tumor ex vivo and in vivo comparable to liquid nitrogen (LN). We therefore wished to compare the radiant cooling damage of the surrounding tissue between FNEC and LN. The evaluation of the radiant cooling damage was demonstrated human bone xenograft transplantation (HXT) in a mouse model. Characterizations and quantifications of the damaging effects on morphologic features and apoptosis of the cryoablative surrounding bone tissue, muscle and epidermal layer of skin were compared. The radiant cooled damaging effects including epidermal rupture, hair follicle atrophy, dermis and subcutaneous crystal vacuolation of skin were significantly greater in LN than FNEC. Muscular apoptosis, structural shrinkage and bone cellular apoptosis were supposedly 15%-33% destroying degrees of LN more than FNEC. We concluded that FNEC is an innovative cryogenic material, and it could cause less cryoablative damage to surrounding normal tissue than LN. The findings might support the safety of FNEC being applied in clinical cryoablation therapy.
冷冻氮乙醇复合材料(FNEC)在体外和体内对骨肿瘤均显示出与液氮(LN)相当的有效冷冻消融能力。因此,我们希望比较FNEC和LN对周围组织的辐射冷却损伤。通过在小鼠模型中进行人骨异种移植(HXT)来评估辐射冷却损伤。比较了对冷冻消融周围骨组织、肌肉和皮肤表皮层的形态学特征和细胞凋亡的损伤作用的表征和量化。LN对皮肤的辐射冷却损伤作用,包括表皮破裂、毛囊萎缩、真皮和皮下晶体空泡化,明显大于FNEC。肌肉细胞凋亡、结构收缩和骨细胞凋亡的破坏程度据推测比FNEC多15%-33%。我们得出结论,FNEC是一种创新的低温材料,与LN相比,它对周围正常组织造成的冷冻消融损伤更小。这些发现可能支持FNEC应用于临床冷冻消融治疗的安全性。