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磁性纳米颗粒热疗诱导微囊化大肠杆菌中胞嘧啶脱氨酶表达用于酶-前药疗法。

Magnetic nanoparticle hyperthermia induced cytosine deaminase expression in microencapsulated E. coli for enzyme-prodrug therapy.

作者信息

Nemani Krishnamurthy V, Ennis Riley C, Griswold Karl E, Gimi Barjor

机构信息

Department of Radiology, Geisel School of Medicine at Dartmouth, Hanover, NH, USA.

Dartmouth College, Hanover, NH, USA.

出版信息

J Biotechnol. 2015 Jun 10;203:32-40. doi: 10.1016/j.jbiotec.2015.03.008. Epub 2015 Mar 25.

Abstract

Engineered bacterial cells that are designed to express therapeutic enzymes under the transcriptional control of remotely inducible promoters can mediate the de novo conversion of non-toxic prodrugs to their cytotoxic forms. In situ cellular expression of enzymes provides increased stability and control of enzyme activity as compared to isolated enzymes. We have engineered Escherichia coli (E. coli), designed to express cytosine deaminase at elevated temperatures, under the transcriptional control of thermo-regulatory λpL-cI857 promoter cassette which provides a thermal switch to trigger enzyme synthesis. Enhanced cytosine deaminase expression was observed in cultures incubated at 42°C as compared to 30°C, and enzyme expression was further substantiated by spectrophotometric assays indicating enhanced conversion of 5-fluorocytosine to 5-fluorouracil. The engineered cells were subsequently co-encapsulated with magnetic iron oxide nanoparticles in immunoprotective alginate microcapsules, and cytosine deaminase expression was triggered remotely by alternating magnetic field-induced hyperthermia. The combination of 5-fluorocytosine with AMF-activated microcapsules demonstrated tumor cell cytotoxicity comparable to direct treatment with 5-fluorouracil chemotherapy. Such enzyme-prodrug therapy, based on engineered and immunoisolated E. coli, may ultimately yield an improved therapeutic index relative to monotherapy, as AMF mediated hyperthermia might be expected to pre-sensitize tumors to chemotherapy under appropriate conditions.

摘要

经过工程改造的细菌细胞,旨在在远程诱导型启动子的转录控制下表达治疗性酶,可介导无毒前药向其细胞毒性形式的从头转化。与分离的酶相比,酶的原位细胞表达提供了更高的稳定性和对酶活性的控制。我们对大肠杆菌进行了工程改造,设计使其在高温下表达胞嘧啶脱氨酶,该过程受热调节λpL-cI857启动子盒的转录控制,该启动子盒提供了一个热开关来触发酶的合成。与30°C孵育的培养物相比,在42°C孵育的培养物中观察到胞嘧啶脱氨酶表达增强,并且通过分光光度法测定进一步证实了酶表达,表明5-氟胞嘧啶向5-氟尿嘧啶的转化率提高。随后将工程改造的细胞与磁性氧化铁纳米颗粒共同封装在免疫保护性藻酸盐微胶囊中,并通过交变磁场诱导的热疗远程触发胞嘧啶脱氨酶的表达。5-氟胞嘧啶与AMF激活的微胶囊的组合显示出与5-氟尿嘧啶化疗直接治疗相当的肿瘤细胞毒性。这种基于工程改造和免疫隔离的大肠杆菌的酶-前药疗法,相对于单一疗法最终可能产生更高的治疗指数,因为在适当条件下,AMF介导的热疗可能会使肿瘤对化疗预先敏感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e998/4417421/cb32a3768edb/nihms675294f1.jpg

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