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具有高效热转换性能的生物相容性纳米簇用于系统传递磁热疗。

Biocompatible Nanoclusters with High Heating Efficiency for Systemically Delivered Magnetic Hyperthermia.

机构信息

Department of Pharmaceutical Sciences, College of Pharmacy , Oregon State University , Portland , Oregon 97201 , United States.

Department of Pharmaceutics, College of Pharmacy , Najran University , Najran , Kingdom of Saudia Arabia.

出版信息

ACS Nano. 2019 Jun 25;13(6):6383-6395. doi: 10.1021/acsnano.8b06542. Epub 2019 May 17.

Abstract

Despite its promising therapeutic potential, nanoparticle-mediated magnetic hyperthermia is currently limited to the treatment of localized and relatively accessible cancer tumors because the required therapeutic temperatures above 40 °C can only be achieved by direct intratumoral injection of conventional iron oxide nanoparticles. To realize the true potential of magnetic hyperthermia for cancer treatment, there is an unmet need for nanoparticles with high heating capacity that can efficiently accumulate at tumor sites following systemic administration and generate desirable intratumoral temperatures upon exposure to an alternating magnetic field (AMF). Although there have been many attempts to develop the desired nanoparticles, reported animal studies reveal the challenges associated with reaching therapeutically relevant intratumoral temperatures following systemic administration at clinically relevant doses. Therefore, we developed efficient magnetic nanoclusters with enhanced heating efficiency for systemically delivered magnetic hyperthermia that are composed of cobalt- and manganese-doped, hexagon-shaped iron oxide nanoparticles (CoMn-IONP) encapsulated in biocompatible PEG-PCL (poly(ethylene glycol)- b-poly(ε-caprolactone))-based nanocarriers. Animal studies validated that the developed nanoclusters are nontoxic, efficiently accumulate in ovarian cancer tumors following a single intravenous injection, and elevate intratumoral temperature up to 44 °C upon exposure to safe and tolerable AMF. Moreover, the obtained results confirmed the efficiency of the nanoclusters to generate the required intratumoral temperature after repeated injections and demonstrated that nanocluster-mediated magnetic hyperthermia significantly inhibits cancer growth. In summary, this nanoplatform is a milestone in the development of systemically delivered magnetic hyperthermia for the treatment of cancer tumors that are difficult to access for intratumoral injection.

摘要

尽管纳米颗粒介导的磁热疗具有广阔的治疗前景,但目前仅局限于治疗局部且相对可接近的癌症肿瘤,因为只有通过直接向肿瘤内注射常规氧化铁纳米颗粒才能达到 40°C 以上的治疗温度。为了实现磁热疗治疗癌症的真正潜力,需要开发具有高热容量的纳米颗粒,这些纳米颗粒可以在全身给药后高效地聚集在肿瘤部位,并在暴露于交变磁场(AMF)时产生理想的肿瘤内温度。尽管已经有许多尝试来开发所需的纳米颗粒,但已报道的动物研究揭示了在临床相关剂量下全身给药后达到治疗相关肿瘤内温度所面临的挑战。因此,我们开发了高效的磁性纳米团簇,用于全身递送磁热疗,这些纳米团簇由钴和锰掺杂的六边形氧化铁纳米颗粒(CoMn-IONP)封装在生物相容性的 PEG-PCL(聚(乙二醇)-b-聚(ε-己内酯))纳米载体中。动物研究证实,所开发的纳米团簇具有低毒性,在单次静脉注射后可高效地聚集在卵巢癌肿瘤中,并在暴露于安全且耐受的 AMF 时可将肿瘤内温度升高至 44°C。此外,所获得的结果证实了纳米团簇在重复注射后产生所需肿瘤内温度的效率,并表明纳米团簇介导的磁热疗可显著抑制癌症生长。总之,该纳米平台是开发用于治疗难以进行肿瘤内注射的癌症肿瘤的全身递送磁热疗的一个里程碑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/acb7/6645784/3ff78c21f6ef/nihms-1038036-f0002.jpg

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