Tumor penetrating peptides for improved drug delivery

被引:338
作者
Ruoslahti, Erkki [1 ,2 ]
机构
[1] Sanford Burnham Prebys Med Discovery Inst, Canc Res Ctr, La Jolla, CA USA
[2] Univ Calif Santa Barbara, Ctr Nanomed, Dept Cell Mol & Dev Biol, Santa Barbara, CA 93106 USA
关键词
CendR pathway; Tumor vasculature; Synaphic targeting; Endocytosis; Integrins; Neuropilins; Cell-penetrating peptides; Nanomedicine; 3D MULTICELLULAR SPHEROIDS; PROSTATE-CANCER TREATMENT; IRGD-MODIFIED LIPOSOMES; IN-VIVO; HOMING PEPTIDE; PHAGE DISPLAY; INTRACELLULAR DELIVERY; DOXORUBICIN DELIVERY; PROAPOPTOTIC PEPTIDE; TISSUE PENETRATION;
D O I
10.1016/j.addr.2016.03.008
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
In vivo screening of phage libraries in tumor-bearing mice has been used to identify peptides that direct phage homing to a tumor. The power of in vivo phage screening is illustrated by the recent discovery of peptides with unique tumor-penetrating properties. These peptides activate an endocytic transport pathway related to but distinct from macropinocytosis. They do so through a complex process that involves binding to a primary, tumor-specific receptor, followed by a proteolytic cleavage, and binding to a second receptor. The second receptor, neuropilin-1 (or neuropilin-2) activates the transport pathway. This trans-tissue pathway, dubbed the C-end Rule (CendR) pathway, mediates the extravasation transport through extravascular tumor tissue of payloads ranging from small molecule drugs to nanoparticles. The CendR technology provides a solution to a major problem in tumor therapy, poor penetration of drugs into tumors. Targeted delivery with tumor-penetrating peptides has been shown to specifically increase the accumulation of drugs, antibodies and nanotherapeutics in experimental tumors in vivo, and in human tumors ex vivo. Remarkably the payload does not have to be coupled to the peptide; the peptide activates a bulk transport system that sweeps along a drug present in the blood. Treatment studies in mice have shown improved anti-tumor efficacy and less damage to normal tissues with drugs ranging from traditional chemotherapeutics to antibodies, and to nanoparticle drugs. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:3 / 12
页数:10
相关论文
共 92 条
[1]   Targeted nanoparticle enhanced proapoptotic peptide as potential therapy for glioblastoma [J].
Agemy, Lilach ;
Friedmann-Morvinski, Dinorah ;
Kotamraju, Venkata Ramana ;
Roth, Lise ;
Sugahara, Kazuki N. ;
Girard, Olivier M. ;
Mattrey, Robert F. ;
Verma, Inder M. ;
Ruoslahti, Erkki .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (42) :17450-17455
[2]   Anticancer effects of gemcitabine are enhanced by co-administered iRGD peptide in murine pancreatic cancer models that overexpressed neuropilin-1 [J].
Akashi, Y. ;
Oda, T. ;
Ohara, Y. ;
Miyamoto, R. ;
Kurokawa, T. ;
Hashimoto, S. ;
Enomoto, T. ;
Yamada, K. ;
Satake, M. ;
Ohkohchi, N. .
BRITISH JOURNAL OF CANCER, 2014, 110 (06) :1481-1487
[3]   De Novo Design of a Tumor-Penetrating Peptide [J].
Alberici, Luca ;
Roth, Lise ;
Sugahara, Kazuki N. ;
Agemy, Lilach ;
Kotamraju, Venkata R. ;
Teesalu, Tambet ;
Bordignon, Claudio ;
Traversari, Catia ;
Rizzardi, Gian-Paolo ;
Ruoslahti, Erkki .
CANCER RESEARCH, 2013, 73 (02) :804-812
[4]   Neuropilins in Tumor Biology [J].
Bagri, Anil ;
Tessier-Lavigne, Marc ;
Watts, Ryan J. .
CLINICAL CANCER RESEARCH, 2009, 15 (06) :1860-1864
[5]   Particle assembly incorporating a VP22-BH3 fusion protein, facilitating intracellular delivery, regulated release, and apoptosis [J].
Brewis, ND ;
Phelan, A ;
Normand, N ;
Choolun, E ;
O'Hare, P .
MOLECULAR THERAPY, 2003, 7 (02) :262-270
[6]   TEM8/ANTXR1 Blockade Inhibits Pathological Angiogenesis and Potentiates Tumoricidal Responses against Multiple Cancer Types [J].
Chaudhary, Amit ;
Hilton, Mary Beth ;
Seaman, Steven ;
Haines, Diana C. ;
Stevenson, Susan ;
Lemotte, Peter K. ;
Tschantz, William R. ;
Zhang, Xiaoyan M. ;
Saha, Saurabh ;
Fleming, Tony ;
St. Croix, Brad .
CANCER CELL, 2012, 21 (02) :212-226
[7]   Application of a Proapoptotic Peptide to Intratumorally Spreading Cancer Therapy [J].
Chen, Renwei ;
Braun, Gary B. ;
Luo, Xiuquan ;
Sugahara, Kazuki N. ;
Teesalu, Tambet ;
Ruoslahti, Erkki .
CANCER RESEARCH, 2013, 73 (04) :1352-1361
[8]   Nucleolin expressed at the cell surface is a marker of endothelial cells in angiogenic blood vessels [J].
Christian, S ;
Pilch, J ;
Akerman, ME ;
Porkka, K ;
Laakkonen, P ;
Ruoslahti, E .
JOURNAL OF CELL BIOLOGY, 2003, 163 (04) :871-878
[9]   Physical nanoscale conduit-mediated communication between tumour cells and the endothelium modulates endothelial phenotype [J].
Connor, Yamicia ;
Tekleab, Sarah ;
Nandakumar, Shyama ;
Walls, Cherelle ;
Tekleab, Yonatan ;
Husain, Amjad ;
Gadish, Or ;
Sabbisetti, Venkata ;
Kaushik, Shelly ;
Sehrawat, Seema ;
Kulkarni, Ashish ;
Dvorak, Harold ;
Zetter, Bruce ;
Edelman, Elazer R. ;
Sengupta, Shiladitya .
NATURE COMMUNICATIONS, 2015, 6
[10]   Dual Targeting of Integrin αvβ3 and Matrix Metalloproteinase-2 for Optical Imaging of Tumors and Chemotherapeutic Delivery [J].
Crisp, Jessica L. ;
Savariar, Elamprakash N. ;
Glasgow, Heather L. ;
Ellies, Lesley G. ;
Whitney, Michael A. ;
Tsien, Roger Y. .
MOLECULAR CANCER THERAPEUTICS, 2014, 13 (06) :1514-1525