Department of Pediatrics, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, Republic of Korea.
Int J Oncol. 2012 Dec;41(6):2047-56. doi: 10.3892/ijo.2012.1634. Epub 2012 Sep 20.
In vivo leukemia mouse models are usually generated by intraperitoneal (IP) or intravenous (IV) injection of leukemia cells. However, the pattern of leukemia development observed can be inconsistent. This study investigated injection directly into bone marrow [intra-bone marrow transplantation (IBMT)], the natural microenvironment of leukemia. A bioluminescent imaging-based leukemia animal model has been established by direct injection of a bioluminescent leukemia cells (CCRF-CEM/fLuc) into NOD/SCID mouse tibia bone marrow and compared with models established by IP and IV routes. The comparison revealed that a bioluminescent in vivo leukemia model established via IBMT could recapitulate leukemia more faithfully and facilitate improved quantification of leukemia engraftment kinetics with a wider range of bioluminescent intensity than IP or IV. IBMT of bioluminescent leukemic cells allowed quantification of dose-dependent responses to anti-leukemic drugs, thus validating this model as a potential preclinical anti-leukemic drug screening system. IBMT-leukemia cells isolated from peripheral blood of the model mice and then injected into new recipients successfully established a second generation IBMT in vivo model and demonstrated the reproducibility of the model. Bioluminescent imaging-based analysis of this IBMT-leukemia model could provide a means for the comprehensive evaluation of treatment responses with enhanced sensitivity in preclinical studies.
体内白血病小鼠模型通常通过腹腔(IP)或静脉内(IV)注射白血病细胞来建立。然而,观察到的白血病发展模式可能不一致。本研究通过直接注射发光白血病细胞(CCRF-CEM/fLuc)到 NOD/SCID 小鼠胫骨骨髓中,研究了注射到骨髓[骨髓内移植(IBMT)]中的白血病的自然微环境。已经建立了基于生物发光成像的白血病动物模型,并与通过 IP 和 IV 途径建立的模型进行了比较。比较结果表明,通过 IBMT 建立的生物发光体内白血病模型可以更忠实地再现白血病,并通过更广泛的生物发光强度范围来改善白血病植入动力学的定量,优于 IP 或 IV。IBMT 生物发光白血病细胞允许定量测定抗白血病药物的剂量依赖性反应,从而验证了该模型作为潜在的临床前抗白血病药物筛选系统的有效性。从模型小鼠外周血中分离的 IBMT 白血病细胞,然后注入新的受体,成功地建立了第二代 IBMT 体内模型,并证明了该模型的可重复性。这种基于生物发光成像的 IBMT 白血病模型的分析可以提供一种更敏感的综合评价治疗反应的方法,从而增强临床前研究的效果。