Cargando…

Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth

BACKGROUND: Blood vessels in tumors express higher level of aminopeptidase N (APN) than normal tissues. Evidence suggests that the CNGRC motif is an APN ligand which targets tumor vasculature. Increased expression of APN in tumor vascular endothelium, therefore, offers an opportunity for targeted de...

Descripción completa

Detalles Bibliográficos
Autores principales: Jiang, Weiwei, Jin, Guanghui, Ma, Dingyuan, Wang, Feng, Fu, Tong, Chen, Xiao, Chen, Xiwen, Jia, Kunzhi, Marikar, Faiz M. M. T., Hua, Zichun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3349653/
https://www.ncbi.nlm.nih.gov/pubmed/22590653
http://dx.doi.org/10.1371/journal.pone.0037132
_version_ 1782232542662885376
author Jiang, Weiwei
Jin, Guanghui
Ma, Dingyuan
Wang, Feng
Fu, Tong
Chen, Xiao
Chen, Xiwen
Jia, Kunzhi
Marikar, Faiz M. M. T.
Hua, Zichun
author_facet Jiang, Weiwei
Jin, Guanghui
Ma, Dingyuan
Wang, Feng
Fu, Tong
Chen, Xiao
Chen, Xiwen
Jia, Kunzhi
Marikar, Faiz M. M. T.
Hua, Zichun
author_sort Jiang, Weiwei
collection PubMed
description BACKGROUND: Blood vessels in tumors express higher level of aminopeptidase N (APN) than normal tissues. Evidence suggests that the CNGRC motif is an APN ligand which targets tumor vasculature. Increased expression of APN in tumor vascular endothelium, therefore, offers an opportunity for targeted delivery of NGR peptide-linked drugs to tumors. METHODS/PRINCIPAL FINDINGS: To determine whether an additional cyclic CNGRC sequence could improve endothelial cell homing and antitumor effect, human plasminogen kringle 5 (hPK5) was modified genetically to introduce a CNGRC motif (NGR-hPK5) and was subsequently expressed in yeast. The biological activity of NGR-hPK5 was assessed and compared with that of wild-type hPK5, in vitro and in vivo. NGR-hPK5 showed more potent antiangiogenic activity than wild-type hPK5: the former had a stronger inhibitory effect on proliferation, migration and cord formation of vascular endothelial cells, and produced a stronger antiangiogenic response in the CAM assay. To evaluate the tumor-targeting ability, both wild-type hPK5 and NGR-hPK5 were (99 m)Tc-labeled, for tracking biodistribution in the in vivo tumor model. By planar imaging and biodistribution analyses of major organs, NGR-hPK5 was found localized to tumor tissues at a higher level than wild-type hPK5 (approximately 3-fold). Finally, the effects of wild-type hPK5 and NGR-modified hPK5 on tumor growth were investigated in two tumor model systems. NGR modification improved tumor localization and, as a consequence, effectively inhibited the growth of mouse Lewis lung carcinoma (LLC) and human colorectal adenocarcinoma (Colo 205) cells in tumor-bearing mice. CONCLUSIONS/SIGNIFICANCE: These studies indicated that the addition of an APN targeting peptide NGR sequence could improve the ability of hPK5 to inhibit angiogenesis and tumor growth.
format Online
Article
Text
id pubmed-3349653
institution National Center for Biotechnology Information
language English
publishDate 2012
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-33496532012-05-15 Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth Jiang, Weiwei Jin, Guanghui Ma, Dingyuan Wang, Feng Fu, Tong Chen, Xiao Chen, Xiwen Jia, Kunzhi Marikar, Faiz M. M. T. Hua, Zichun PLoS One Research Article BACKGROUND: Blood vessels in tumors express higher level of aminopeptidase N (APN) than normal tissues. Evidence suggests that the CNGRC motif is an APN ligand which targets tumor vasculature. Increased expression of APN in tumor vascular endothelium, therefore, offers an opportunity for targeted delivery of NGR peptide-linked drugs to tumors. METHODS/PRINCIPAL FINDINGS: To determine whether an additional cyclic CNGRC sequence could improve endothelial cell homing and antitumor effect, human plasminogen kringle 5 (hPK5) was modified genetically to introduce a CNGRC motif (NGR-hPK5) and was subsequently expressed in yeast. The biological activity of NGR-hPK5 was assessed and compared with that of wild-type hPK5, in vitro and in vivo. NGR-hPK5 showed more potent antiangiogenic activity than wild-type hPK5: the former had a stronger inhibitory effect on proliferation, migration and cord formation of vascular endothelial cells, and produced a stronger antiangiogenic response in the CAM assay. To evaluate the tumor-targeting ability, both wild-type hPK5 and NGR-hPK5 were (99 m)Tc-labeled, for tracking biodistribution in the in vivo tumor model. By planar imaging and biodistribution analyses of major organs, NGR-hPK5 was found localized to tumor tissues at a higher level than wild-type hPK5 (approximately 3-fold). Finally, the effects of wild-type hPK5 and NGR-modified hPK5 on tumor growth were investigated in two tumor model systems. NGR modification improved tumor localization and, as a consequence, effectively inhibited the growth of mouse Lewis lung carcinoma (LLC) and human colorectal adenocarcinoma (Colo 205) cells in tumor-bearing mice. CONCLUSIONS/SIGNIFICANCE: These studies indicated that the addition of an APN targeting peptide NGR sequence could improve the ability of hPK5 to inhibit angiogenesis and tumor growth. Public Library of Science 2012-05-10 /pmc/articles/PMC3349653/ /pubmed/22590653 http://dx.doi.org/10.1371/journal.pone.0037132 Text en Jiang et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Jiang, Weiwei
Jin, Guanghui
Ma, Dingyuan
Wang, Feng
Fu, Tong
Chen, Xiao
Chen, Xiwen
Jia, Kunzhi
Marikar, Faiz M. M. T.
Hua, Zichun
Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth
title Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth
title_full Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth
title_fullStr Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth
title_full_unstemmed Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth
title_short Modification of Cyclic NGR Tumor Neovasculature-Homing Motif Sequence to Human Plasminogen Kringle 5 Improves Inhibition of Tumor Growth
title_sort modification of cyclic ngr tumor neovasculature-homing motif sequence to human plasminogen kringle 5 improves inhibition of tumor growth
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3349653/
https://www.ncbi.nlm.nih.gov/pubmed/22590653
http://dx.doi.org/10.1371/journal.pone.0037132
work_keys_str_mv AT jiangweiwei modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT jinguanghui modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT madingyuan modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT wangfeng modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT futong modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT chenxiao modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT chenxiwen modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT jiakunzhi modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT marikarfaizmmt modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth
AT huazichun modificationofcyclicngrtumorneovasculaturehomingmotifsequencetohumanplasminogenkringle5improvesinhibitionoftumorgrowth