Advanced approaches in lung cancer therapy–Exploring the unique role of Multiwalled Carbon Nanotubes

Pushpendra Kumar Khangar , Vivek Daniel
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Abstract

Hypothesis

This paper hypothesizes that Multiwalled Carbon Nanotubes (MWCNTs) can serve as effective nanocarriers for anticancer drug delivery in lung cancer therapy. Their high surface area, biocompatibility, and adaptable surface chemistry make them promising candidates for enhancing drug delivery efficiency. MWCNTs offer the potential to enable targeted transport of anticancer drugs directly to lung cancer cells, reducing systemic toxicity through controlled and prolonged drug release while also improving drug clearance mechanisms. However, despite these advantages, the study acknowledges significant concerns regarding toxicity, biocompatibility, and long-term safety. Addressing these challenges is crucial for the successful clinical translation of MWCNT-based drug delivery systems.

Experiments (review-based analysis)

Although this study does not conduct direct experiments, it reviews existing research and experimental findings on the incorporation of anticancer drugs into Multiwalled Carbon Nanotubes (MWCNTs), which involves efficient loading and release methods that ensure drug stability and retention within the nanocarrier system. These approaches enhance the controlled delivery of therapeutic agents, preventing premature degradation and maximizing efficacy. MWCNTs play a crucial role in drug delivery by improving circulation, enabling controlled release, and minimizing systemic toxicity. Additionally, surface modifications of MWCNTs contribute to better drug delivery efficiency by enhancing solubility and targeting capabilities. However, concerns regarding safety and biocompatibility remain critical. Preclinical studies have been conducted to evaluate the toxicity, biodegradability, and inflammatory response associated with MWCNTs. Surface modifications have been explored as a strategy to mitigate adverse effects, improve cellular compatibility, and enhance the overall feasibility of MWCNT-based drug delivery systems for lung cancer therapy.

Findings

MWCNT-based drug delivery demonstrates significant potential in improving lung cancer treatment by enabling targeted drug transport to cancer cells, thereby enhancing therapeutic efficacy. The controlled release of drugs from MWCNTs helps minimize systemic toxicity, ultimately improving patient safety and treatment outcomes. However, several challenges and limitations must be addressed before clinical implementation. Toxicity remains a primary concern, as MWCNTs may trigger inflammatory responses or accumulate in tissues, leading to potential long-term adverse effects. Additionally, the biocompatibility and overall safety of these nanocarriers require further validation through rigorous preclinical testing. Looking ahead, extensive research is essential to develop clinically viable MWCNT-based drug delivery systems. Further advancements in surface modifications and biodegradability enhancements are necessary to reduce toxicity and enhance clinical safety, paving the way for the successful integration of MWCNTs in lung cancer nanomedicine.
肺癌治疗的新方法——探索多壁碳纳米管的独特作用
本文假设多壁碳纳米管(MWCNTs)可作为肺癌治疗中有效的抗癌药物递送纳米载体。它们的高表面积,生物相容性和适应性表面化学使它们成为提高药物传递效率的有希望的候选者。MWCNTs有可能实现抗癌药物直接靶向转运到肺癌细胞,通过控制和延长药物释放降低全身毒性,同时改善药物清除机制。然而,尽管有这些优点,该研究承认在毒性、生物相容性和长期安全性方面存在重大问题。解决这些挑战对于基于mwcnts的给药系统的成功临床转化至关重要。实验(基于综述的分析)虽然本研究没有进行直接实验,但它回顾了关于将抗癌药物纳入多壁碳纳米管(MWCNTs)的现有研究和实验结果,其中涉及有效的加载和释放方法,以确保药物在纳米载体系统中的稳定性和保留。这些方法加强了治疗药物的控制递送,防止过早降解并最大限度地提高疗效。MWCNTs通过改善循环、实现控制释放和最小化全身毒性,在药物递送中发挥关键作用。此外,MWCNTs的表面修饰通过增强溶解度和靶向能力,有助于提高药物递送效率。然而,对安全性和生物相容性的担忧仍然至关重要。临床前研究评估了与MWCNTs相关的毒性、生物降解性和炎症反应。表面修饰作为一种减轻不良反应、改善细胞相容性和增强基于mwcnts的肺癌治疗药物传递系统整体可行性的策略已被探索。基于smwcnt的药物递送在改善肺癌治疗方面显示出巨大的潜力,它使靶向药物转运到癌细胞,从而提高治疗效果。MWCNTs药物的可控释放有助于最大限度地减少全身毒性,最终提高患者安全性和治疗效果。然而,在临床实施之前,必须解决一些挑战和限制。毒性仍然是一个主要问题,因为MWCNTs可能引发炎症反应或在组织中积累,导致潜在的长期不良反应。此外,这些纳米载体的生物相容性和整体安全性需要通过严格的临床前测试进一步验证。展望未来,广泛的研究对于开发临床可行的基于mwcnts的给药系统至关重要。为了降低毒性和提高临床安全性,有必要在表面修饰和生物降解性方面取得进一步进展,为MWCNTs在肺癌纳米药物中的成功整合铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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