Morphological Features Influence the Drug Loading and Delivery Efficacy of Photoactivatable Gold Nanocarriers for Antitumor Photo/Chemotherapy

纳米载体 材料科学 药物输送 纳米技术 体内 药品 胶体金 纳米颗粒 药理学 医学 生物 生物技术
作者
Maryam Iftikhar,Qianting Zhang,Rashda Abbasi,Shumaila Sarwar,Syeda Zunaira Bukhari,Mubashar Rehman,Irshad Hussain,Fatih Mehmet Emen,Irfanullah Khan,Ruibing An,Jian Dong,Ayesha Ihsan,Muhammad Rizwan Younis
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (1): 547-559
标识
DOI:10.1021/acsami.4c17186
摘要

Photoactivatable gold nanocarriers are transforming antitumor therapies by leveraging their distinctive physicochemical properties, enabling targeted drug delivery and enhanced therapeutic efficacy in cancer treatment. This study systematically investigates how surface topography and morphology of gold nanocarriers influence drug loading capacity, light-to-heat conversion efficiency, and overall therapeutic performance in photo/chemotherapy. We synthesized four distinct morphologies of gold nanoparticles: porous gold nanocups (PAuNCs), porous gold nanospheres (PAuNSs), solid gold nanocups (SAuNCs), and solid gold nanospheres (SAuNSs). By examining these morphologies, we isolated the effects of surface roughness, porosity, and inner cavity structures on the critical therapeutic parameters. Our findings reveal that PAuNCs exhibit superior drug loading capabilities due to their enhanced surface area and porosity, facilitating greater interaction with therapeutic agents. Whereas, dissolution kinetic modeling confirmed that porosity contributes to improve diffusion-controlled drug release. In vitro studies on HepG2 cancer cells demonstrated that PAuNCs markedly improved cellular uptake, resulting in a dramatic reduction in cell viability to 3% and a notable increase in apoptosis (60.45%). Under near-infrared (NIR) irradiation, PAuNCs effectively induced localized hyperthermia (46.7 °C) and significantly inhibited tumor growth in an in vivo HepG2 tumor mice model compared with alternative nanogold morphologies. This research underscores the critical role of surface roughness, porosity, morphology, and cavitation in optimizing drug delivery and enhancing therapeutic outcomes of photoactivatable gold nanocarriers for collaborative photochemotherapy.
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