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铁-没食子酸肽纳米颗粒作为一种具有协同增强活性氧作用的细胞递送通用平台

Iron-Gallic Acid Peptide Nanoparticles as a Versatile Platform for Cellular Delivery with Synergistic ROS Enhancement Effect.

作者信息

Shen Faqian, Lin Yi, Höhn Miriam, Luo Xianjin, Döblinger Markus, Wagner Ernst, Lächelt Ulrich

机构信息

Pharmaceutical Biotechnology, Department of Pharmacy, Center for NanoScience (CeNS), LMU Munich, 81377 Munich, Germany.

Department of Chemistry, LMU Munich, 81377 Munich, Germany.

出版信息

Pharmaceutics. 2023 Jun 21;15(7):1789. doi: 10.3390/pharmaceutics15071789.

Abstract

Cytosolic delivery of peptides is of great interest owing to their biological functions, which could be utilized for therapeutic applications. However, their susceptibility to enzymatic degradation and multiple cellular barriers generally hinders their clinical application. Integration into nanoparticles, which can enhance the stability and membrane permeability of bioactive peptides, is a promising strategy to overcome extracellular and intracellular obstacles. Herein, we present a versatile platform for the cellular delivery of various cargo peptides by integration into metallo-peptidic coordination nanoparticles. Both termini of cargo peptides were conjugated with gallic acid (GA) to assemble GA-modified peptides into nanostructures upon coordination of Fe(III). Initial pre-complexation of Fe(III) by poly-(vinylpolypyrrolidon) (PVP) as a template favored the formation of nanoparticles, which are able to deliver the peptides into cells efficiently. Iron-gallic acid peptide nanoparticles (IGPNs) are stable in water and are supposed to generate reactive oxygen species (ROS) from endogenous HO in cells via the Fenton reaction. The strategy was successfully applied to an exemplary set of peptide sequences varying in length (1-7 amino acids) and charge (negative, neutral, positive). To confirm the capability of transporting bioactive cargos into cells, pro-apoptotic peptides were integrated into IGPNs, which demonstrated potent killing of human cervix carcinoma HeLa and murine neuroblastoma N2a cells at a 10 µM peptide concentration via the complementary mechanisms of peptide-triggered apoptosis and Fe(III)-mediated ROS generation. This study demonstrates the establishment of IGPNs as a novel and versatile platform for the assembly of peptides into nanoparticles, which can be used for cellular delivery of bioactive peptides combined with intrinsic ROS generation.

摘要

由于其生物学功能,肽的胞质递送备受关注,其可用于治疗应用。然而,它们易受酶降解以及多种细胞屏障的影响,这通常阻碍了它们的临床应用。整合到纳米颗粒中可以增强生物活性肽的稳定性和膜通透性,这是克服细胞外和细胞内障碍的一种有前途的策略。在此,我们展示了一个通用平台,通过将各种负载肽整合到金属肽配位纳米颗粒中来实现细胞递送。负载肽的两端都与没食子酸(GA)共轭,以便在Fe(III)配位时将GA修饰的肽组装成纳米结构。聚(乙烯基聚吡咯烷酮)(PVP)作为模板对Fe(III)进行初步预络合有利于纳米颗粒的形成,这些纳米颗粒能够有效地将肽递送至细胞中。铁 - 没食子酸肽纳米颗粒(IGPNs)在水中稳定,并且应该通过芬顿反应从细胞内源性HO产生活性氧(ROS)。该策略已成功应用于一组长度(1 - 7个氨基酸)和电荷(负、中性、正)不同的示例性肽序列。为了证实将生物活性负载转运到细胞中的能力,将促凋亡肽整合到IGPNs中,其在10 μM肽浓度下通过肽触发的凋亡和Fe(III)介导的ROS产生的互补机制,对人宫颈癌HeLa细胞和小鼠神经母细胞瘤N2a细胞表现出强效杀伤作用。本研究证明了IGPNs作为一种新型通用平台的建立,该平台可将肽组装成纳米颗粒,可用于生物活性肽的细胞递送并伴有内源性ROS产生。

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