光敏剂
材料科学
光动力疗法
发光
能量转移
聚合物
吸收(声学)
纳米技术
癌症治疗
吸光度
光电子学
纳米颗粒
癌症治疗
癌症
光化学
光学
化学
医学
物理
内科学
复合材料
有机化学
分子物理学
作者
Zachary T. Rosenkrans,Jessica C. Hsu,Eduardo Aluicio‐Sarduy,Todd E. Barnhart,Jonathan W. Engle,Weibo Cai
标识
DOI:10.1002/adfm.202302777
摘要
Abstract The therapeutic efficacy of photodynamic therapy is limited by the ability of light to penetrate tissues. Due to this limitation, Cerenkov luminescence (CL) from radionuclides has recently been proposed as an alternative light source in a strategy referred to as Cerenkov radiation‐induced therapy (CRIT). Semiconducting polymer nanoparticles (SPNs) have ideal optical properties, such as large absorption cross‐sections and broad absorbance, which can be utilized to harness the relatively weak CL produced by radionuclides. SPNs can be doped with photosensitizers and have ≈100% energy transfer efficiency by multiple energy transfer mechanisms. Herein, an optimized photosensitizer‐doped SPN is investigated as a nanosystem to harness and amplify CL for cancer theranostics. It is found that semiconducting polymers significantly amplify CL energy transfer efficiency. Bimodal positron emission tomography (PET) and optical imaging studies show high tumor uptake and retention of the optimized SPNs when administered intravenously or intratumorally. Lastly, it is found that photosensitizer‐doped SPNs have excellent potential as a cancer theranostics nanosystem in an in vivo tumor therapy study. This study shows that SPNs are ideally suited to harness and amplify CL for cancer theranostics, which may provide a significant advancement for CRIT that are unabated by tissue penetration limits.
科研通智能强力驱动
Strongly Powered by AbleSci AI