Gene therapy with p53 and a fragment of thrombospondin I inhibits human breast cancer in vivo

被引:24
|
作者
Xu, M [1 ]
Kumar, D [1 ]
Stass, SA [1 ]
Mixson, AJ [1 ]
机构
[1] Univ Maryland, Dept Pathol, Baltimore, MD 21201 USA
关键词
p53; gene therapy; MDA-MB-435; systemic; angiogenesis;
D O I
10.1006/mgme.1997.2654
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
We recently reported that a p53 encoding plasmid (BAP-p53) complexed to liposomes administered intravenously markedly attenuates the growth of a malignant human breast tumor. We now have found that systemically delivered liposomes complexed to a plasmid expressing an established antiangiogenic peptide of thrombospondin I (BAP-TSPf) decreased the growth of MDA-MB-435 tumors compared to controls in nude mice. Compared to BAP-p53, the BAP-TSPf group had a similar antitumor efficacy. More importantly, liposomes complexed with BAP-TSPf and BAP-p53 synergistically decreased the growth of MDA-MB-435 tumors when compared to either BAP-p53 or BAP-TSPf alone. Furthermore, we also determined that the combination therapy of p53 and TSPf inhibited endothelial cells in vitro more than either p53 or TSPf alone, There was also a significant decrease of the blood vessel density in the combination p53 and TSPf treatment group compared to the control groups. These results suggest that liposomes complexed to a tumor suppressor and anti-angiogenic genes may be effective in treating metastatic tumors. (C) 1998 Academic Press.
引用
收藏
页码:103 / 109
页数:7
相关论文
共 50 条
  • [31] TRIM3 inhibits P53 signaling in breast cancer cells
    Wang, Xinxing
    Zhang, Yujie
    Pei, Xinhong
    Guo, Guangcheng
    Xue, Bingjian
    Duan, Xin
    Dou, Dongwei
    CANCER CELL INTERNATIONAL, 2020, 20 (01)
  • [32] P53, Apoptosis, and Breast Cancer
    Barnes, Diana M.
    Camplejohn, Richard S.
    JOURNAL OF MAMMARY GLAND BIOLOGY AND NEOPLASIA, 1996, 1 (02) : 163 - 175
  • [33] The p53 pathway in breast cancer
    Gasco, M
    Shami, S
    Crook, T
    BREAST CANCER RESEARCH, 2002, 4 (02) : 70 - 76
  • [34] Mutational analysis of human p53 gene in human gliomas by Cleavase® fragment length polymorphism
    Uehara, H
    Kawano, H
    Kataoka, H
    Sameshima, T
    Moriyama, T
    Nakano, S
    Wakisaka, S
    NEUROPATHOLOGY, 1999, 19 (03) : 267 - 272
  • [35] The p53 pathway in breast cancer
    Milena Gasco
    Shukri Shami
    Tim Crook
    Breast Cancer Research, 4
  • [36] TRIM3 inhibits P53 signaling in breast cancer cells
    Xinxing Wang
    Yujie Zhang
    Xinhong Pei
    Guangcheng Guo
    Bingjian Xue
    Xin Duan
    Dongwei Dou
    Cancer Cell International, 20
  • [37] P53 gene polymorphisms and breast cancer risk in Arab women
    Alawadi, Shafika
    Ghabreau, Lina
    Alsaleh, Mervat
    Abdulaziz, Zainab
    Rafeek, Mohamed
    Akil, Nizar
    Alkhalaf, Moussa
    MEDICAL ONCOLOGY, 2011, 28 (03) : 709 - 715
  • [38] THE P53 TUMOR-SUPPRESSOR GENE IN BREAST-CANCER
    ELLEDGE, RM
    ALLRED, DC
    BREAST CANCER RESEARCH AND TREATMENT, 1994, 32 (01) : 39 - 47
  • [39] Mutations in p53, p53 protein overexpression and breast cancer survival
    Rossner, Pavel, Jr.
    Gammon, Marilie D.
    Zhang, Yu-Jing
    Terry, Mary Beth
    Hibshoosh, Hanina
    Memeo, Lorenzo
    Mansukhani, Mahesh
    Long, Chang-Min
    Garbowski, Gail
    Agrawal, Meenakshi
    Kalra, Tara S.
    Gaudet, Mia M.
    Teitelbaum, Susan L.
    Neugut, Alfred I.
    Santella, Regina M.
    JOURNAL OF CELLULAR AND MOLECULAR MEDICINE, 2009, 13 (9B) : 3847 - 3857
  • [40] Systemic p53 gene therapy in combination with radiation results in human tumor regression
    Xu, L
    Pirollo, KF
    Rait, A
    Murray, AL
    Chang, EH
    TUMOR TARGETING, 1999, 4 (02): : 92 - 104