PO.TB04.03 · 肿瘤生物学
宫颈癌的体外血管化微肿瘤模型
An in-vitro vascularized micro-tumor model of cervical cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
宫颈癌是一项重大的全球健康负担,位居全球女性最常见癌症的第四位,每年约有660,000例新发病例,其中大多数发生在低收入和中等收入国家。尽管有预防性筛查和HPV疫苗接种,宫颈癌仍是癌症相关死亡的主要原因,尤其是在晚期或复发性疾病中。目前的标准治疗方法依赖于以顺铂为基础的化疗与放疗的联合。然而,治疗耐药和疾病复发仍构成重大挑战,凸显了对改进治疗策略和更具预测性的临床前模型的迫切需求。目前,多达95%在临床前试验中显示前景的药物由于疗效不佳和肿瘤耐药而未能获得FDA批准。这些高失败率可归因于忽视肿瘤微环境的非生理性测试条件,以及无法预测人体内药物诱导的药理学反应的不良模型系统。为解决宫颈癌研究中的这些缺陷并可靠预测拟用于人类的药物疗效,我们发明了一种名为血管化微肿瘤(VMT)的新型器官芯片平台。VMT微流控装置允许微血管的从头形成,这些微血管与癌细胞及相关基质共培养。关键在于,微血管能够将营养物质、药物和免疫细胞以生理方式递送至复杂的3D肿瘤微环境中,因而构成了生理性疾病建模和药物筛选方法的强大工具。在此,我们展示了基于充分表征的商用肿瘤细胞系建立宫颈癌VMT模型,并证明其对以顺铂为基础的标准化疗和放疗的治疗反应。
查看英文原文 English abstract
Cervical cancer is a significant global health burden, ranking as the fourth most common cancer in women worldwide, with approximately 660,000 new cases each year, the majority of which occur in low- and middle-income countries. Despite the availability of preventive screening and HPV vaccination, cervical cancer remains a leading cause of cancer-related deaths, particularly in cases of advanced or recurrent disease. Current standard of care treatment approaches rely on a combination of cisplatin-based chemotherapy and radiotherapy. However, treatment resistance and disease recurrence continue to pose major challenges, underscoring the critical need for improved therapeutic strategies and more predictive preclinical models.
Currently, up to 95% of drugs that show promise in preclinical trials fail to receive FDA approval due to poor efficacy and tumor resistance. These high failure rates can be attributed to unphysiological testing conditions neglecting the tumor microenvironment, as well as poor model systems failing to predict drug-induced pharmacological responses in the human body. To address these shortcomings in cervical cancer research and reliably predict the efficacy of drugs intended for human use, we have invented a novel organ-on-a-chip platform called the vascularized micro-tumor (VMT). The VMT microfluidic device allows for the de novo formation of micro-vessels, which are cocultured with cancer cells and associated stroma. Critically, the micro-vessels enable the physiological delivery of nutrients, drugs and immune cells into the complex 3D tumor microenvironment and hence constitute a powerful tool for physiological disease modeling and drug screening approaches. Here, we present the establishment of a cervical cancer VMT model based on well-characterized, commercially available tumor cell lines and demonstrate treatment responses to standard of care cisplatin-based chemotherapy and radiotherapy.
利益披露 Disclosure
D. Gaebler, None..
C. C. W. Hughes, None..
S. J. Hachey, None.