基于纳米/微球水凝胶的3D打印核/壳支架用于骨肉瘤抗癌输送和骨再生

IF 4.9 3区 医学 Q1 PHARMACOLOGY & PHARMACY Journal of Drug Delivery Science and Technology Pub Date : 2025-04-01 Epub Date: 2025-02-17 DOI:10.1016/j.jddst.2025.106720
Paniz Ranjbaran , Mehdi Esfandyari-Manesh , Alaleh Yourdkhani , Mohammad Hossein Ghahremani , Rassoul Dinarvand
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摘要

骨肉瘤是最常见的一种骨癌。目前的治疗方法包括手术、化疗和放射治疗。骨缺损、肿瘤的再形成或术后残留的肿瘤细胞是骨肉瘤治疗的主要挑战。支架可以用来克服骨缺损问题。在本研究中,我们旨在制造一种具有避免肿瘤复发和促进骨再生能力的双层支架,为骨肉瘤的治疗带来新的思路。首先,将甲氨蝶呤包裹在负载量为13.5%的PLGA微球中。然后,采用同轴挤压3D打印机通过定制的双层核壳喷嘴制造支架。植入支架采用明胶甲基丙烯醇(GelMA)水凝胶(外层含有甲氨蝶呤微球)用于抗癌药物递送,GelMA/海藻酸盐水凝胶(内层含有纳米羟基磷灰石和纳米二氧化硅)用于骨再生。支架外层在20天内迅速降解,在给药和抑制肿瘤细胞生长方面发挥了很大的作用。纳米二氧化硅含量为4%的内层在60天内降解率约为50%,机械强度最高,为225 kPa。在成骨性能方面,ALP酶活性在3周内显著提高。同时,RUNX2、OPN、COL1A1成骨标志物显著升高。除了肿瘤部位的药物递送外,这种双层支架还可以作为药物递送后健康骨细胞放置的平台。
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3D printed core/shell scaffold based on nano/microspheric hydrogel for osteosarcoma anticancer delivery and bone regeneration
One of the most common types of bone cancer is osteosarcoma. Currently a combination of therapies including surgery, chemotherapy, and radiation therapy is used. Bone defects, re-formation of the tumor, or remaining tumor cells after the surgery are the main challenges of osteosarcoma treatments. Scaffolds can be used to overcome the bone defects problem. In this study, we aim to fabricate a bilayer scaffold with the capacity of avoiding tumor recurrence and stimulating bone regeneration which brings a novel idea for osteosarcoma treatments. First, methotrexate was encapsulated in PLGA microspheres with 13.5 % loading capacity. Then, coaxial extrusion-based 3D printer via a customized bilayer core-shell nozzle was employed to fabricate the scaffold. The implanted scaffold was printed by using gelatin methacrylol (GelMA) hydrogel containing methotrexate microspheres in the outer layer for anticancer drug delivery, and GelMA/alginate hydrogel containing nanohydroxyapatite and nanosilica in the inner layer for bone regeneration. The outer layer of the scaffold had rapidly degraded within 20 days and it played a great role in drug delivery and inhibiting the tumor cells’ growth. The inner layer with 4 % nanosilica had slow degradation rate at about 50 % in 60 days and it showed the highest mechanical strength with 225 kPa. Regarding osteogenesis property, ALP enzyme activity was increased considerably within 3 weeks. Also, significant increase in osteogenesis markers of RUNX2, OPN, and COL1A1 was observed. In addition to drug delivery at the tumor site, this bilayer scaffold could be a platform for the placement of healthy bone cells after drug delivery.
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来源期刊
CiteScore
8.00
自引率
8.00%
发文量
879
审稿时长
94 days
期刊介绍: The Journal of Drug Delivery Science and Technology is an international journal devoted to drug delivery and pharmaceutical technology. The journal covers all innovative aspects of all pharmaceutical dosage forms and the most advanced research on controlled release, bioavailability and drug absorption, nanomedicines, gene delivery, tissue engineering, etc. Hot topics, related to manufacturing processes and quality control, are also welcomed.
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