Li Hongliang, Lei Weiyan, Wu Jianong, Li Shenghui, Zhou Guoqiang, Liu Dandan, Yang Xinjian, Wang Shuxiang, Li Zhenhua, Zhang Jinchao
College of Chemistry & Environmental Science, Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of Ministry of Education, Chemical Biology Key Laboratory of Hebei Province, Hebei University, Baoding, 071002, China.
J Mater Chem B. 2018 May 14;6(18):2747-2757. doi: 10.1039/c8tb00637g. Epub 2018 Apr 19.
A novel upconverting nanotheranostic agent, UCNP-CA-FDU/NO, activated by both hypoxia (internal stimuli) and NIR irradiation (external stimuli) was designed and synthesized for simultaneous imaging and chemotherapy of solid tumours. The devised theranostic agent consists of an active drug, floxuridine (FDU), upconverting nanoparticles (UCNP: NaYF:Yb/Tm, multifunctional carriers for upconverting 980 nm NIR light to 365 nm UV light and tumour-targeted drug delivery), (E)-o-hydroxycinnamic acid (CA, a UV-photo trigger and a fluorescence dye precursor), and a 4-nitrobenzyl group (a hypoxic trigger). In addition, FDU was modified by CA, and CA was modified by the 4-nitrobenzyl group; moreover, CA was conjugated to UCNPs by covalent bonds to form a novel UCNP-CA-FDU/NO platform. In normal cells, the platform is "locked", whereas in tumour cells, hypoxia combined with NIR illumination (980 nm) "unlocks" the platform, based on a series of reactions including the reduction of UCNP-CA-FDU/NO catalyzed by over-expression of nitroreductase (NTR), 1,6-rearrangement-elimination, the photo-isomerization of UCNP-CA-FDU caused by absorption of NIR irradiation and emission at 365 nm of UCNP-CA-FDU/NO, and intramolecular esterification, which initiate the fluorescent dye in conjugation with UCNP (UCNP-CM) formation and FDU release with high spatio-temporal control. The amounts of FDU and UCNP-CM released can be accurately tuned by controlling the NIR illumination time. UCNP-CA-FDU/NO showed excellent selectivity for hypoxic cells, exhibited high cytotoxicity against cancer cells and almost no cytotoxicity to normal cells, presented significant inhibition of tumour growth in vivo, and displayed sensitive detection of the hypoxic status and the amount of FDU released. The excellent properties of UCNP-CA-FDU/NO endow it with great potential applications for precise imaging of tumour cells and personalized solid tumour treatment.
一种新型的上转换纳米诊疗剂UCNP-CA-FDU/NO被设计并合成出来,它可由缺氧(内部刺激)和近红外辐射(外部刺激)共同激活,用于实体肿瘤的同步成像和化疗。所设计的诊疗剂由活性药物氟尿苷(FDU)、上转换纳米颗粒(UCNP:NaYF:Yb/Tm,用于将980nm近红外光上转换为365nm紫外光以及肿瘤靶向药物递送的多功能载体)、(E)-邻羟基肉桂酸(CA,一种紫外光触发剂和荧光染料前体)以及4-硝基苄基(一种缺氧触发剂)组成。此外,FDU用CA进行了修饰,CA用4-硝基苄基进行了修饰;而且,CA通过共价键与UCNP共轭形成了一个新型的UCNP-CA-FDU/NO平台。在正常细胞中,该平台处于“锁定”状态,而在肿瘤细胞中,缺氧与近红外光照(980nm)相结合会基于一系列反应“解锁”该平台,这些反应包括由硝基还原酶(NTR)过表达催化的UCNP-CA-FDU/NO的还原、1,6-重排消除、UCNP-CA-FDU对近红外辐射的吸收及在365nm处的发射所引起的光异构化以及分子内酯化,这些反应启动了与UCNP共轭的荧光染料(UCNP-CM)的形成以及具有高时空控制的FDU释放。通过控制近红外光照时间可以精确调节释放的FDU和UCNP-CM的量。UCNP-CA-FDU/NO对缺氧细胞表现出优异的选择性,对癌细胞具有高细胞毒性而对正常细胞几乎没有细胞毒性,在体内对肿瘤生长呈现出显著抑制作用,并且对缺氧状态和释放的FDU量表现出灵敏检测。UCNP-CA-FDU/NO的优异特性使其在肿瘤细胞的精确成像和个性化实体肿瘤治疗方面具有巨大的潜在应用价值。