Knockout cancer by nano-delivered immunotherapy using perfusion-aided scaffold-based tumor-on-a-chip.

Q1 Pharmacology, Toxicology and Pharmaceutics Nanotheranostics Pub Date : 2024-03-31 eCollection Date: 2024-01-01 DOI:10.7150/ntno.87818
Pooja Suryavanshi, Dhananjay Bodas
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Abstract

Cancer is a multifactorial disease produced by mutations in the oncogenes and tumor suppressor genes, which result in uncontrolled cell proliferation and resistance to cell death. Cancer progresses due to the escape of altered cells from immune monitoring, which is facilitated by the tumor's mutual interaction with its microenvironment. Understanding the mechanisms involved in immune surveillance evasion and the significance of the tumor microenvironment might thus aid in developing improved therapies. Although in vivo models are commonly utilized, they could be better for time, cost, and ethical concerns. As a result, it is critical to replicate an in vivo model and recreate the cellular and tissue-level functionalities. A 3D cell culture, which gives a 3D architecture similar to that found in vivo, is an appropriate model. Furthermore, numerous cell types can be cocultured, establishing cellular interactions between TME and tumor cells. Moreover, microfluidics perfusion can provide precision flow rates, thus simulating tissue/organ function. Immunotherapy can be used with the perfused 3D cell culture technique to help develop successful therapeutics. Immunotherapy employing nano delivery can target the spot and silence the responsible genes, ensuring treatment effectiveness while minimizing adverse effects. This study focuses on the importance of 3D cell culture in understanding the pathophysiology of 3D tumors and TME, the function of TME in drug resistance, tumor progression, and the development of advanced anticancer therapies for high-throughput drug screening.

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利用基于灌注辅助支架的肿瘤芯片,通过纳米免疫疗法敲除癌症。
癌症是一种多因素疾病,由致癌基因和抑癌基因的突变导致细胞增殖失控和细胞死亡抵抗力下降。由于肿瘤与其微环境的相互影响,改变的细胞逃脱了免疫监视,从而导致癌症进展。因此,了解逃避免疫监视所涉及的机制以及肿瘤微环境的重要性可能有助于开发出更好的疗法。虽然体内模型是常用的方法,但由于时间、成本和伦理方面的考虑,它们可能会更好。因此,复制体内模型并再现细胞和组织级功能至关重要。三维细胞培养可提供与体内相似的三维结构,是一种合适的模型。此外,多种类型的细胞可以共培养,从而建立 TME 和肿瘤细胞之间的细胞相互作用。此外,微流控灌流技术可提供精确的流速,从而模拟组织/器官功能。免疫疗法可与灌注三维细胞培养技术结合使用,帮助开发成功的疗法。采用纳米给药的免疫疗法可针对病灶,抑制致病基因,确保治疗效果,同时将不良反应降至最低。这项研究的重点是三维细胞培养在了解三维肿瘤和三维肿瘤组织的病理生理学、三维肿瘤组织在耐药性和肿瘤进展中的功能以及开发先进的抗癌疗法以进行高通量药物筛选方面的重要性。
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来源期刊
Nanotheranostics
Nanotheranostics Pharmacology, Toxicology and Pharmaceutics-Pharmacology, Toxicology and Pharmaceutics (miscellaneous)
CiteScore
10.40
自引率
0.00%
发文量
37
审稿时长
12 weeks
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