Zhang Yifei, Ning Rende, Wang Wei, Zhou Yejin, Chen Yao
Department of Human Anatomy, West China School of Basic Medicine & Forensic Medicine, Sichuan University, Chengdu, China.
Department of Orthopaedics, The Third Affiliated Hospital of Anhui Medical University, Hefei, China.
Front Bioeng Biotechnol. 2022 Mar 9;10:844540. doi: 10.3389/fbioe.2022.844540. eCollection 2022.
Osteosarcomas commonly develop in the metaphysis of the long diaphysis, resulting in pronounced malignancy and high rates of early pulmonary metastasis. At present, osteosarcoma patients exhibit relatively poor survival rates owing these metastases and to the emergence of tumor chemoresistance. As such, there is an urgent need to identify other approaches to treating affected patients. Herein, we synthesized FeO@PDA nanocomposites that exhibited excellent biocompatibility and low toxicity in human and animal model systems. The resultant nanoparticles were able to improve T2 magnetic resonance imaging and to enhance the signal-to-noise ratio associated with osteosarcoma tumors in animal models. Moreover, we were able to successfully leverage these FeO@PDA particles as a photothermal agent capable of significantly inhibiting the growth of tumors and preventing their metastasis to the lung compartment. Together, these results highlight a novel therapeutic platform that has the potential to guide both the more effective diagnosis and treatment of osteosarcoma patients in clinical applications.
骨肉瘤通常发生在长骨干骺端,导致明显的恶性程度和较高的早期肺转移率。目前,由于这些转移以及肿瘤化疗耐药性的出现,骨肉瘤患者的生存率相对较低。因此,迫切需要确定其他治疗受影响患者的方法。在此,我们合成了FeO@PDA纳米复合材料,该材料在人和动物模型系统中表现出优异的生物相容性和低毒性。所得纳米颗粒能够改善T2磁共振成像,并提高动物模型中骨肉瘤肿瘤的信噪比。此外,我们能够成功地将这些FeO@PDA颗粒用作光热剂,能够显著抑制肿瘤生长并防止其转移到肺部。总之,这些结果突出了一个新的治疗平台,该平台有可能在临床应用中指导更有效的骨肉瘤患者诊断和治疗。