PO.TB05.02 · 肿瘤生物学
开发儿童肉瘤斑马鱼替身模型以支持功能性精准肿瘤学
Developing zebrafish avatars for pediatric sarcomas to support functional precision oncology
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
儿童肉瘤,包括横纹肌肉瘤(RMS)和骨肉瘤,在复发或高危疾病中仍与不良结局相关,凸显了对快速功能模型以指导患者特异性治疗决策的需求。斑马鱼患者来源异种移植(zPDX,即“替身”)提供了一个低成本、可扩展的体内平台,可在数天内测试药物反应。作为儿童肉瘤替身模型的基础,我们在引入原代患者样本之前,使用人RMS细胞系(RD,胚胎型;RH30,腺泡型)优化了斑马鱼异种移植。将GFP标记的RD细胞注射到受精后48小时幼鱼的背侧卵黄周围间隙(PVS),产生约60%的幼鱼存活率、注射后1天(dpi)近100%的移植成功率,以及持续至4 dpi的稳定肿瘤,实现了标准化肿瘤大小和短期药物测试的可重复条件。在zPDX实验所需的孵育温度34°C下进行的CellTiter-Glo测定证实,RD细胞在这些条件下保持药物敏感性:更生霉素(DAC)在低纳摩尔浓度(≥10 nM)下显著降低RD活力,而长春新碱(VIN)在2-10 nM时有效。平行的幼鱼毒性测定表明,两种药物在≤200 nM浓度下72小时通常被斑马鱼幼鱼良好耐受,确立了体内测试的实用暴露窗口。作为药物反应评估的概念验证,将GFP+ RD细胞注射到48 hpf幼鱼中,并在用15 nM的VIN和DAC治疗后评估肿瘤负荷(荧光强度)和播散。在此浓度下,与对照相比未观察到统计学显著差异,尽管注意到肿瘤大小和播散减少的趋势。相比之下,当在简单载体(PBS或HBSS + 1-2% FBS)中注射时,RH30细胞在1-2 dpi后无法持续存活,促使我们对注射培养基进行系统优化。在为zPDX描述的培养基指导下,我们开发了一种富含HEPES、谷氨酰胺、MEM-NEAA、B27、烟酰胺、ITS、Y-27632、SB202190、N-乙酰半胱氨酸以及EGF/FGF并降低血清的富集培养基。使用该配方,我们实现了直至4 dpi约100%的肿瘤阳性幼鱼,表明培养基成分,尤其是外源性生长因子,对异种移植的保留至关重要。总之,这些初步数据定义了斑马鱼中RMS异种移植的稳健存活和移植参数,验证了该平台用于快速化疗反应读出的可行性,并建立了一种优化的注射培养基,使得即使是具有挑战性的肉瘤亚型也能在体内持续存活。这些进展为将该平台扩展到原代儿童肉瘤(包括骨肉瘤)以生成用于功能性精准肿瘤学的斑马鱼替身模型奠定了基础。
查看英文原文 English abstract
Pediatric sarcomas, including rhabdomyosarcoma (RMS) and osteosarcoma, remain associated with poor outcomes in relapsed or high-risk disease, highlighting the need for rapid functional models to guide patient-specific therapeutic decisions. Zebrafish patient-derived xenografts (zPDX “avatars”) provide a low-cost, scalable in vivo platform to test drug responses within days. As a foundation for pediatric sarcoma avatars, we optimized zebrafish xenografts using human RMS cell lines (RD, embryonal; RH30, alveolar) prior to introducing primary patient samples. GFP-labeled RD cells injected into the dorsal perivitelline space (PVS) of 48-hours-post-fertilization larvae produced approximately 60% larval survival, nearly 100% engraftment at 1 day postinjection (dpi), and stable tumors through 4 dpi, enabling reproducible conditions for standardized tumor size and short-term drug testing. CellTiter-Glo assays at 34 °C, the incubation temperature required for zPDX experiments, confirmed that RD cells retain drug sensitivity under these conditions: dactinomycin (DAC) significantly reduced RD viability at low nanomolar concentrations (≥10 nM), whereas vincristine (VIN) was effective at 2-10 nM. Parallel larval toxicity assays indicated that both drugs were generally well tolerated by zebrafish larvae at concentrations ≤200 nM for 72 h, establishing a practical exposure window for in vivo testing. As a proof-of-concept for drug response assessment, GFP+ RD cells were injected into 48 hpf larvae and tumor burden (fluorescence intensity) and dissemination were evaluated following treatment with VIN and DAC at 15 nM. At this concentration, no statistically significant differences were observed versus control, although a trend was noted toward reduced tumor size and dissemination. In contrast, RH30 cells did not persist beyond 1-2 dpi when injected in simple carriers (PBS or HBSS + 1-2% FBS), prompting systematic optimization of the injection medium. Guided by media described for zPDX, we developed an enriched medium containing HEPES, glutamine, MEM-NEAA, B27, nicotinamide, ITS, Y-27632, SB202190, N-acetylcysteine, and EGF/FGF with reduced serum. Using this formulation, we achieved approximately 100% tumor-positive larvae up to 4 dpi, indicating that medium composition, particularly exogenous growth factors, are critical for xenograft retention. Together, these preliminary data define robust survival and engraftment parameters for RMS xenografts in zebrafish, validate the feasibility of this platform for rapid chemotherapy response readouts, and establish an optimized injection medium that enables even challenging sarcoma subtypes to persist in vivo. These advances provide the foundation for extending this platform to primary pediatric sarcomas, including osteosarcoma, to generate zebrafish avatars for functional precision oncology.
利益披露 Disclosure
K. Felisbino, None..
J. T. Kinder, None..
C. Williams, None..
A. Gaines, None..
J. Blackburn, None.