Recombinant Peptides as Biomarkers for Tumor Response to Molecular Targeted Therapy

被引:16
|
作者
Passarella, Ralph J. [1 ]
Zhou, Li [1 ]
Phillips, John G. [1 ]
Wu, Hongmei [1 ]
Hallahan, Dennis E. [1 ,2 ]
Diaz, Roberto [1 ]
机构
[1] Vanderbilt Univ, Med Ctr, Dept Radiat Oncol, Nashville, TN USA
[2] Washington Univ, Sch Med, Dept Radiat Oncol, Mallinckrodt Inst Radiol,Siteman Canc Ctr, St Louis, MO USA
关键词
BLOOD-VESSELS; DRUG-DELIVERY; VASCULAR ENDOTHELIUM; TYROSINE KINASE; BREAST-CANCER; PHAGE DISPLAY; GROWTH-FACTOR; P-SELECTIN; MODEL; ANGIOGENESIS;
D O I
10.1158/1078-0432.CCR-09-0945
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: Phage display technology can be used to identify peptide sequences that bind rapidly and specifically to tumors responding to sunitinib therapy. These pepticles may help to address problems with current methods of assessing tumor response to therapy that can be slow and have limited usage. Experimental Design: The peptide of interest was isolated after four rounds of biopanning in MDA-MB-231 and MCF-7 xenografted tumors. The binding location of the peptide was investigated with immunohistochemistry. Its in vivo ability to bind to breast tumors responding to therapy was determined by treating nude mice, xenografted with various tumor cell lines, with sunitinib and using near IR imaging to assess the ability of the peptide conjugated to Alexafluor-750 to bind tumors. Results: EGEVGLG was the dominant sequence isolated from biopanning. This peptide showed increased binding relative to control groups in two cancer cell lines (MDA-MB-435 and MCF-7 human breast) responding to sunitinib treatment, whereas no elevated binding occurred in vitro when samples were incubated with tumor cells that are unresponsive to sunitinib treatment (1316 melanoma and BxPC3 pancreatic). Mice xenografted with tumors that are responsive to sunitinib therapy showed increased peptide binding when compared with untreated control. Mice bearing tumors unresponsive to sunitinib therapy showed no increased peptide binding between treated and untreated groups. Conclusion: The use of recombinant peptides to assess the pharmacodynamic response of cancer holds promise in minimizing the duration of ineffective treatment regimens in patients, potentially providing a more rapid and less invasive assessment of cancer response to systemic therapy. (Clin Cancer Res 2009;15(20):6421-9)
引用
收藏
页码:6421 / 6429
页数:9
相关论文
共 50 条
  • [31] Tumor angiogenesis and molecular targets for therapy
    Cao, Yihai
    FRONTIERS IN BIOSCIENCE-LANDMARK, 2009, 14 : 3962 - 3973
  • [32] Splice Variants of the RTK Family: Their Role in Tumour Progression and Response to Targeted Therapy
    Abou-Faycal, Cherine
    Hatat, Anne-Sophie
    Gazzeri, Sylvie
    Eymin, Beatrice
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2017, 18 (02)
  • [33] Molecular targeted therapy of glioblastoma
    Le Rhun, Emilie
    Preusser, Matthias
    Roth, Patrick
    Reardon, David A.
    van den Bent, Martin
    Wen, Patrick
    Reifenberger, Guido
    Weller, Michael
    CANCER TREATMENT REVIEWS, 2019, 80
  • [34] A Targeted Molecular Localization Imaging Method Applied to Tumor Microvasculature
    Zhao, Feifei
    Unnikrishnan, Sunil
    Herbst, Elizabeth B.
    Klibanov, Alexander L.
    Mauldin, F. William, Jr.
    Hossack, John A.
    INVESTIGATIVE RADIOLOGY, 2021, 56 (04) : 197 - 206
  • [35] Research progress of nanomaterial drug delivery in tumor targeted therapy
    Zhang, Peng
    Ye, Guihua
    Xie, Guofeng
    Lv, Jie
    Zeng, Xianhai
    Jiang, Wei
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2023, 11
  • [36] Exploiting the tumor microenvironment in the development of targeted cancer gene therapy
    Dougherty, G. J.
    Dougherty, S. T.
    CANCER GENE THERAPY, 2009, 16 (03) : 279 - 290
  • [37] The role of RhoC in malignant tumor invasion, metastasis and targeted therapy
    Guan, Xue
    Chen, Shuo
    Zhao, Yang
    HISTOLOGY AND HISTOPATHOLOGY, 2018, 33 (03) : 255 - 260
  • [38] Targeted Therapy and Immunosuppression in the Tumor Microenvironment
    Allegrezza, Michael J.
    Conejo-Garcia, Jose R.
    TRENDS IN CANCER, 2017, 3 (01): : 19 - 27
  • [39] Tumor-targeted Photodynamic Therapy
    Shirasu, Naoto
    Nam, Sung Ouk
    Kuroki, Masahide
    ANTICANCER RESEARCH, 2013, 33 (07) : 2823 - 2831
  • [40] Vascular targeted photodynamic therapy: A review of the efforts towards molecular targeting of tumor vasculature
    Mashayekhi, Vida
    Op 't Hooga, Charlotte
    Oliveira, Sabrina
    JOURNAL OF PORPHYRINS AND PHTHALOCYANINES, 2019, 23 (11-12) : 1229 - 1240