Polyamine-Based Nanostructures Share Polyamine Transport Mechanisms with Native Polyamines and Their Analogues: Significance for Polyamine-Targeted Therapy

被引:8
作者
Holbert, Cassandra E. [1 ]
Foley, Jackson R. [1 ]
Yu, Ao [2 ]
Stewart, Tracy Murray [1 ]
Phanstiel, Otto [3 ]
Oupicky, David [2 ]
Casero, Robert A. [1 ]
机构
[1] Sidney Kimmel Comprehens Canc Ctr, Baltimore, MD 21231 USA
[2] Univ Nebraska, Dept Pharmaceut Sci, Drug Delivery & Nanomed, Canc Ctr, Omaha, NE 68105 USA
[3] Univ Cent Florida, Dept Med Educ, Orlando, FL 32827 USA
基金
美国国家卫生研究院;
关键词
polyamine; polyamine analogue; drug transport; cancer therapy; nanoparticle; polyamine transport; drug delivery system; nanopolyamine; ALPHA-DIFLUOROMETHYLORNITHINE; CANCER CELLS; IN-VITRO; PHASE-I; METABOLISM; GROWTH; DELIVERY; NANOPARTICLES; INHIBITION; SYSTEM;
D O I
10.3390/medsci10030044
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Polyamines are small polycationic alkylamines involved in many fundamental cellular processes, including cell proliferation, survival, and protection from oxidative stress. Polyamine homeostasis is tightly regulated through coordinated biosynthesis, catabolism, and transport. Due to their continual proliferation, cancer cells maintain elevated intracellular polyamine pools. Both polyamine metabolism and transport are commonly dysregulated in cancer, and as such, polyamine analogues are a promising strategy for exploiting the increased polyamine requirement of cancer cells. One potential polyamine analogue resistance mechanism is the downregulation of the poorly defined polyamine transport system. Recent advances in nanomedicine have produced nanostructures with polyamine analogue-based backbones (nanopolyamines). Similar nanostructures with non-polyamine backbones have been shown to be transported by endocytosis. As these polyamine-based nanoparticles could be a method for polyamine analogue delivery that bypasses polyamine transport, we designed the current studies to determine the efficacy of polyamine-based nanoparticles in cells lacking intact polyamine transport. Utilizing polyamine transport-deficient derivatives of lung adenocarcinoma lines, we demonstrated that cells unable to transport natural polyamines were also resistant to nanopolyamine-induced cytotoxicity. This resistance was a result of transport-deficient cells being incapable of importing and accumulating nanopolyamines. Pharmacological modulation of polyamine transport confirmed these results in polyamine transport competent cells. These studies provide additional insight into the polyamine transport pathway and suggest that receptor-mediated endocytosis is a likely mechanism of transport for higher-order polyamines, polyamine analogues and the nanopolyamines.
引用
收藏
页数:16
相关论文
共 57 条
[1]   Polyamine Blocking Therapy Decreases Survival of Tumor-Infiltrating Immunosuppressive Myeloid Cells and Enhances the Antitumor Efficacy of PD-1 Blockade [J].
Alexander, Eric T. ;
Mariner, Kelsey ;
Donnelly, Julia ;
Phanstiel, Otto ;
Gilmour, Susan K. .
MOLECULAR CANCER THERAPEUTICS, 2020, 19 (10) :2012-2022
[2]   Cellular uptake of nanoparticles: journey inside the cell [J].
Behzadi, Shahed ;
Serpooshan, Vahid ;
Tao, Wei ;
Hamaly, Majd A. ;
Alkawareek, Mahmoud Y. ;
Dreaden, Erik C. ;
Brown, Dennis ;
Alkilany, Alaaldin M. ;
Farokhzad, Omid C. ;
Mahmoudi, Morteza .
CHEMICAL SOCIETY REVIEWS, 2017, 46 (14) :4218-4244
[3]   Glypican-1 is a vehicle for polyamine uptake in mammalian cells -: A pivotal role for nitrosothiol-derived nitric oxide [J].
Belting, M ;
Mani, K ;
Jönsson, M ;
Cheng, F ;
Sandgren, S ;
Jonsson, S ;
Ding, K ;
Delcros, JG ;
Fransson, LÅ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (47) :47181-47189
[4]   Synthesis and evaluation of hydroxylated polyamine analogues as antiproliferatives [J].
Bergeron, RJ ;
Müller, R ;
Bussenius, J ;
McManis, JS ;
Merriman, RL ;
Smith, RE ;
Yao, H ;
Weimar, WR .
JOURNAL OF MEDICINAL CHEMISTRY, 2000, 43 (02) :224-235
[5]   REGULATION OF POLYAMINE TRANSPORT IN CHINESE HAMSTER OVARY CELLS [J].
BYERS, TL ;
PEGG, AE .
JOURNAL OF CELLULAR PHYSIOLOGY, 1990, 143 (03) :460-467
[6]   Terminally alkylated polyamine analogues as chemotherapeutic agents [J].
Casero, RA ;
Woster, PM .
JOURNAL OF MEDICINAL CHEMISTRY, 2001, 44 (01) :1-26
[7]   Polyamine metabolism and cancer: treatments, challenges and opportunities [J].
Casero, Robert A., Jr. ;
Stewart, Tracy Murray ;
Pegg, Anthony E. .
NATURE REVIEWS CANCER, 2018, 18 (11) :681-695
[8]   Unusual central nervous system toxicity in a phase I study of N(1)N(11)diethylnorspermine in patients with advanced malignancy [J].
Creaven, PJ ;
Perez, R ;
Pendyala, L ;
Meropol, NJ ;
Loewen, G ;
Levine, E ;
Berghorn, E ;
Raghavan, D .
INVESTIGATIONAL NEW DRUGS, 1997, 15 (03) :227-234
[9]   Synthesis of Bisethylnorspermine Lipid Prodrug as Gene Delivery Vector Targeting Polyamine Metabolism in Breast Cancer [J].
Dong, Yanmei ;
Zhu, Yu ;
Li, Jing ;
Zhou, Qing-Hui ;
Wu, Chao ;
Oupicky, David .
MOLECULAR PHARMACEUTICS, 2012, 9 (06) :1654-1664
[10]   The polyamine analog PG11047 potentiates the antitumor activity of cisplatin and bevacizumab in preclinical models of lung and prostate cancer [J].
Dredge, K. ;
Kink, J. A. ;
Johnson, R. M. ;
Bytheway, I. ;
Marton, L. J. .
CANCER CHEMOTHERAPY AND PHARMACOLOGY, 2009, 65 (01) :191-195