Effective encapsulation and biological activity of phosphorylated chemotherapeutics in calcium phosphosilicate nanoparticles for the treatment of pancreatic cancer.

Effective encapsulation and biological activity of phosphorylated chemotherapeutics in calcium phosphosilicate nanoparticles for the treatment of pancreatic cancer.
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DOI:
10.1016/j.nano.2017.06.017
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发表时间:
2017-10
期刊:
Nanomedicine : nanotechnology, biology, and medicine
影响因子:
--
通讯作者:
Adair JH
Adair JH
中科院分区:
其他
文献类型:
--
作者:
Loc WS;Linton SS;Wilczynski ZR;Matters GL;McGovern CO;Abraham T;Fox T;Gigliotti CM;Tang X;Tabakovic A;Martin JA;Clawson GA;Smith JP;Butler PJ;Kester M;Adair JH

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Drug resistant cancers like pancreatic ductal adenocarcinoma (PDAC) are difficult to treat, and nanoparticle drug delivery systems can overcome some of the limitations of conventional systemic chemotherapy. In this study, we demonstrate that FdUMP and dFdCMP, the bioactive, phosphorylated metabolites of the chemotherapy drugs 5-FU and gemcitabine, can be encapsulated into calcium phosphosilicate nanoparticles (CPSNPs). The non-phosphorylated drug analogs were not well encapsulated by CPSNPs, suggesting the phosphate modification is essential for effective encapsulation. In vitro proliferation assays, cell cycle analyses and/or thymidylate synthase inhibition assays verified that CPSNP-encapsulated phospho-drugs retained biological activity. Analysis of orthotopic tumors from mice treated systemically with tumor-targeted FdUMP-CPSNPs confirmed the in vivo up take of these particles by PDAC tumor cells and release of active drug cargos intracellularly. These findings demonstrate a novel methodology to efficiently encapsulate chemotherapeutic agents into the CPSNPs and to effectively deliver them to pancreatic tumor cells. By encapsulating chemotherapeutic agents into nanocarriers, such as calcium phosphosilicate nanoparticles (CPSNPs), metabolic inactivation of pro-drugs, for instance the inactivation of 5-FU by the liver enzyme dihydropyrimidine dehydrogenase (DPD), often can be avoided. Herein we demonstrate that the bioactive metabolite of 5-FU, FdUMP, can be effectively encapsulated into CPSNPs. Once taken up by tumor cells, the mPEG-FdUMP-CPSNPs dissolve in the late endosome to release the FdUMP cargo. In the presence of folate (CH2THF), FdUMP irreversibly binds to and inhibits thymidylate synthase (TS), resulting in a cellular depletion of dTMP, increased DNA damage, and ultimately cell death.
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