肺癌治疗的双模态方法:体外和计算机。混合纳米复合材料协同化疗的评价。

IF 4.1 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Omar Alnasra, Fawwaz I Khalili, Lama Hamadneh, Mohammad Alwahsh, Rana Omar, Amani AlDoridee, Aya Hasan
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引用次数: 0

摘要

本研究探讨了负载三氧化二砷(SC-As)的纳米二氧化硅-半胱氨酸复合物与顺铂(CIS)、紫杉醇(PTX)和阿霉素(DOX)联合治疗肺癌/乳腺癌的治疗潜力。通过综合合成、表征(ATR-FTIR、XRD、SEM、TEM、DLS)和细胞毒性评估,SC-As显示出卓越的效力,其IC₅0值在肺癌(A549)和乳腺癌(MCF-7)细胞系中分别低至7.29±1.40µM和8.60±1.20µM。本研究采用双模态方法,结合计算机计算预测(CompuSyn)和体外实验来评估协同化疗方案,确保治疗结果的可靠验证。计算协同分析和肺癌细胞系的实验验证显示SC-As和CIS之间存在协同相互作用(CI 1)。相反,在A549细胞中观察到PTX和DOX的拮抗作用,尽管H1299细胞与PTX/DOX表现出意想不到的协同相互作用。鉴于H1299细胞是一种更具侵袭性和转移性的肺癌,这些结果表明PTX和DOX联合治疗高恶性肺癌亚型可能具有更高的治疗潜力。这些发现强调了该复合材料作为靶向递送系统的潜力,并强调了将计算预测与经验验证相结合的必要性,以优化组合效果并最小化毒性,为未来的体内和临床研究奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A dual-modal approach to lung cancer treatment: in vitro and in silico. Evaluation of a hybrid nanocomposite for synergistic chemotherapy.

This study investigates the therapeutic potential of a nanosilica-cysteine composite loaded with arsenic trioxide (SC-As) in combination with cisplatin (CIS), paclitaxel (PTX), and doxorubicin (DOX) for lung/breast cancer treatment. Through comprehensive synthesis, characterization (ATR-FTIR, XRD, SEM, TEM, DLS), and cytotoxicity assessments, SC-As demonstrated superior potency with IC₅₀ values as low as 7.29 ± 1.40 µM in lung cancer (A549) and 8.60 ± 1.20 µM in breast cancer (MCF-7) cell lines. This study employs a dual-modal approach, combining in silico computational predictions (CompuSyn) with in vitro experiments to evaluate synergistic chemotherapy regimens, ensuring robust validation of therapeutic outcomes. The computational synergy analysis and the experimental validation in lung cancer cell lines revealed synergistic interactions between SC-As and CIS (CI < 1), enabling significant dose reductions (DRI > 1). Conversely, antagonism was observed with PTX and DOX in A549 cells, though H1299 cells exhibited unanticipated synergistic interactions with PTX/DOX. Given that H1299 cells represent a more aggressive and metastatic form of lung cancer, these results suggest that PTX and DOX combinations may have enhanced therapeutic potential in treating highly malignant lung cancer subtypes. These findings underscore the composite's potential as a targeted delivery system and highlight the necessity of integrating computational predictions with empirical validation to optimize combinatorial efficacy and minimize toxicity, providing a foundation for future in vivo and clinical studies.

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来源期刊
Biometals
Biometals 生物-生化与分子生物学
CiteScore
5.90
自引率
8.60%
发文量
111
审稿时长
3 months
期刊介绍: BioMetals is the only established journal to feature the important role of metal ions in chemistry, biology, biochemistry, environmental science, and medicine. BioMetals is an international, multidisciplinary journal singularly devoted to the rapid publication of the fundamental advances of both basic and applied research in this field. BioMetals offers a forum for innovative research and clinical results on the structure and function of: - metal ions - metal chelates, - siderophores, - metal-containing proteins - biominerals in all biosystems. - BioMetals rapidly publishes original articles and reviews. BioMetals is a journal for metals researchers who practice in medicine, biochemistry, pharmacology, toxicology, microbiology, cell biology, chemistry, and plant physiology who are based academic, industrial and government laboratories.
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