Markowski Adam, Migdał Paweł, Zygmunt Adrianna, Zaremba-Czogalla Magdalena, Gubernator Jerzy
Department of Lipids and Liposomes, Faculty of Biotechnology, University of Wroclaw, Joliot-Curie 14a, 50-383 Wroclaw, Poland.
Ludwik Hirszfeld Institute of Immunology and Experimental Therapy, Polish Academy of Science, Weigla 12, 53-114 Wrocław, Poland.
Materials (Basel). 2021 Aug 29;14(17):4917. doi: 10.3390/ma14174917.
Among all the types of cancer, Pancreatic Ductal Adenocarcinoma remains one of the deadliest and hardest to fight and there is a critical unmet need for new drugs and therapies for its treatment. Naturally derived compounds, such as pentacyclic triterpenoids, have gathered attention because of their high cytotoxic potential towards pancreatic cancer cells, with a wide biological activity spectrum, with ursolic acid (UA) being one of the most interesting. However, due to its minimal water solubility, it is necessary to prepare a nanocarrier vehicle to aid in the delivery of this compound. Poly(lactic--glycolic acid) or PLGA polymeric nanocarriers are an essential tool for ursolic acid delivery and can overcome the lack in its biological activity observed after incorporating within liposomes. We prepared UA-PLGA nanoparticles with a PEG modification, to achieve a long circulation time, by using a nanoprecipitation method and subsequently performed an MTT cytotoxicity assay towards AsPC-1 and BxPC-3 cells, with TEM visualization of the nanoparticles and their cellular uptake. We established repeatable preparation procedures of the nanoparticles and achieved biologically active nanocarriers with an IC50 below 30 µM, with an appropriate size for intravenous dosage (around 140 nm), high sample homogeneity (below 0.2) and reasonable encapsulation efficiency (up to 50%). These results represent the first steps in the development of potentially effective PDAC therapies based on novel biologically active and promising triterpenoids.
在所有类型的癌症中,胰腺导管腺癌仍然是最致命且最难治疗的癌症之一,对于其治疗的新药和疗法存在迫切未满足的需求。天然衍生的化合物,如五环三萜类化合物,因其对胰腺癌细胞具有高细胞毒性潜力、广泛的生物活性谱而受到关注,其中熊果酸(UA)是最受关注的化合物之一。然而,由于其水溶性极低,有必要制备一种纳米载体来辅助该化合物的递送。聚乳酸-乙醇酸共聚物(PLGA)纳米载体是熊果酸递送的重要工具,并且可以克服其包封于脂质体后观察到的生物活性不足的问题。我们通过纳米沉淀法制备了具有聚乙二醇(PEG)修饰的UA-PLGA纳米颗粒,以实现较长的循环时间,随后对AsPC-1和BxPC-3细胞进行了MTT细胞毒性测定,并通过透射电子显微镜(TEM)观察了纳米颗粒及其细胞摄取情况。我们建立了纳米颗粒可重复的制备程序,并获得了生物活性纳米载体,其半数抑制浓度(IC50)低于30 μM,具有适合静脉给药的尺寸(约140 nm)、高样品均一性(低于0.2)和合理的包封效率(高达50%)。这些结果代表了基于新型生物活性且有前景的三萜类化合物开发潜在有效胰腺癌疗法的第一步。