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PMID: 9705957 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Angiostatin-mediated suppression of cancer metastases by primary neoplasms engineered to produce granulocyte/macrophage colony-stimulating factor.

The Journal of experimental medicine ·Vol. 188 ·No. 4 ·1998-08-17 ·Pages 755-63

Dong Z, Yoneda J, Kumar R, Fidler IJ

Abstract

We determined whether tumor cells consistently generating granulocyte/macrophage colony- stimulating factor (GM-CSF) can recruit and activate macrophages to generate angiostatin and, hence, inhibit the growth of distant metastasis. Two murine melanoma lines, B16-F10 (syngeneic to C57BL/6 mice) and K-1735 (syngeneic to C3H/HeN mice), were engineered to produce GM-CSF. High GM-CSF (>1 ng/10(6) cells)- and low GM-CSF (<10 pg/10(6) cells)-producing clones were identified. Parental, low, and high GM-CSF-producing cells were injected subcutaneously into syngeneic and into nude mice. Parental and low-producing cells produced rapidly growing tumors, whereas the high-producing cells produced slow-growing tumors. Macrophage density inversely correlated with tumorigenicity and directly correlated with steady state levels of macrophage metalloelastase (MME) mRNA. B16 and K-1735 subcutaneous (s.c.) tumors producing high levels of GM-CSF significantly suppressed lung metastasis of 3LL, UV-2237 fibrosarcoma, K-1735 M2, and B16-F10 cells, but parental or low-producing tumors did not. The level of angiostatin in the serum directly correlated with the production of GM-CSF by the s.c. tumors. Macrophages incubated with medium conditioned by GM-CSF- producing B16 or K-1735 cells had higher MME activity and generated fourfold more angiostatin than control counterparts. These data provide direct evidence that GM-CSF released from a primary tumor can upregulate angiostatin production and suppress growth of metastases.

MeSH Terms
Angiostatins Animals Antineoplastic Agents/metabolism Cells, Cultured Granulocyte-Macrophage Colony-Stimulating Factor/biosynthesis Injections, Subcutaneous Lung Neoplasms/metabolism,secondary Macrophages/metabolism Male Melanoma/metabolism,secondary Mice Mice, Inbred C3H Mice, Inbred C57BL Mice, Nude Peptide Fragments/metabolism Plasminogen/metabolism Tumor Cells, Cultured
Chemicals
Antineoplastic Agents Peptide Fragments Granulocyte-Macrophage Colony-Stimulating Factor Angiostatins Plasminogen
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Dong Z
Department of Cell Biology, The University of Texas M.D. Anderson Cancer Center, Houston, Texas 77030, USA. zdong@notes.mdacc.tmc.edu
Yoneda J
Kumar R
Fidler I J
References (36)
36 references, click to expand
  1. Angiostatin induces and sustains dormancy of human primary tumors in mice.
    Nat Med. 1996 Jun;2(6):689-92 PMID: 8640562
  2. The antitumor activity of doxorubicin against drug-resistant murine carcinoma is enhanced by oral administration of a synthetic staurosporine analogue, CGP 41251.
    Oncol Res. 1995;7(9):453-9 PMID: 8835289
  3. Human prostate carcinoma cells express enzymatic activity that converts human plasminogen to the angiogenesis inhibitor, angiostatin.
    Cancer Res. 1996 Nov 1;56(21):4887-90 PMID: 8895739
  4. Predominance of the metastatic phenotype in somatic cell hybrids of the K-1735 murine melanoma.
    Cancer Res. 1991 Dec 1;51(23 Pt 1):6292-8 PMID: 1834329
  5. Angiogenesis: models and modulators.
    Int Rev Cytol. 1995;159:113-60 PMID: 7537724
  6. Therapy of spontaneous lung metastasis of murine renal adenocarcinoma by systemic administration of liposomes containing the macrophage activator CGP 31362.
    Cancer Res. 1991 Jul 15;51(14):3741-7 PMID: 1905975
  7. Patterns and emerging mechanisms of the angiogenic switch during tumorigenesis.
    Cell. 1996 Aug 9;86(3):353-64 PMID: 8756718
  8. Angiogenesis in cancer, vascular, rheumatoid and other disease.
    Nat Med. 1995 Jan;1(1):27-31 PMID: 7584949
  9. The mechanism of cancer-mediated conversion of plasminogen to the angiogenesis inhibitor angiostatin.
    Proc Natl Acad Sci U S A. 1997 Sep 30;94(20):10868-72 PMID: 9380726
  10. Macrophage-derived metalloelastase is responsible for the generation of angiostatin in Lewis lung carcinoma.
    Cell. 1997 Mar 21;88(6):801-10 PMID: 9118223
  11. Concomitant tumor immunity and the resistance to a second tumor challenge.
    Adv Cancer Res. 1983;39:71-120 PMID: 6194674
  12. Active specific immunotherapy of pulmonary metastasis with vaccinia melanoma oncolysate prepared from granulocyte/macrophage-colony-stimulating-factor-gene-encoded vaccinia virus.
    J Cancer Res Clin Oncol. 1996;122(12):716-22 PMID: 8954168
  13. Molecular cloning, chromosomal localization, and bacterial expression of a murine macrophage metalloelastase.
    J Biol Chem. 1992 Mar 5;267(7):4664-71 PMID: 1537850
  14. The inhibition of tumor growth by tumor mass.
    Cancer Res. 1991 Jan 1;51(1):2-4 PMID: 1988084
  15. Tumor angiogenesis: therapeutic implications.
    N Engl J Med. 1971 Nov 18;285(21):1182-6 PMID: 4938153
  16. Organ-specific modulation of steady-state mdr gene expression and drug resistance in murine colon cancer cells.
    J Natl Cancer Inst. 1994 Jun 15;86(12):913-20 PMID: 7910854
  17. Factors in the Production and Growth of tumor Metastases.
    J Med Res. 1913 Jul;28(2):309-332.1 PMID: 19972114
  18. Antiangiogenic therapy of experimental cancer does not induce acquired drug resistance.
    Nature. 1997 Nov 27;390(6658):404-7 PMID: 9389480
  19. Elastases and elastin degradation.
    J Invest Dermatol. 1982 Jul;79 Suppl 1:154s-159s PMID: 7045242
  20. Various rat adult tissues express only one major mRNA species from the glyceraldehyde-3-phosphate-dehydrogenase multigenic family.
    Nucleic Acids Res. 1985 Mar 11;13(5):1431-42 PMID: 2987824
  21. Protein tyrosine kinase inhibitors decrease induction of nitric oxide synthase activity in lipopolysaccharide-responsive and lipopolysaccharide-nonresponsive murine macrophages.
    J Immunol. 1993 Sep 1;151(5):2717-24 PMID: 7689614
  22. Angiostatin: a novel angiogenesis inhibitor that mediates the suppression of metastases by a Lewis lung carcinoma.
    Cell. 1994 Oct 21;79(2):315-28 PMID: 7525077
  23. Cancer gene therapy using tumor cells infected with recombinant vaccinia virus expressing GM-CSF.
    Hum Gene Ther. 1996 Oct 1;7(15):1853-60 PMID: 8894677
  24. Angiostatin-converting enzyme activities of human matrilysin (MMP-7) and gelatinase B/type IV collagenase (MMP-9).
    J Biol Chem. 1997 Nov 14;272(46):28823-5 PMID: 9360944
  25. Angiogenesis inhibition: a review.
    Pharmacol Ther. 1994 Sep;63(3):265-311 PMID: 7530374
  26. Tumors: wounds that do not heal. Similarities between tumor stroma generation and wound healing.
    N Engl J Med. 1986 Dec 25;315(26):1650-9 PMID: 3537791
  27. Murine M phi scavenger receptor: adhesion function and expression.
    Immunol Lett. 1994 Dec;43(1-2):7-14 PMID: 7737692
  28. A recombinant human angiostatin protein inhibits experimental primary and metastatic cancer.
    Cancer Res. 1997 Apr 1;57(7):1329-34 PMID: 9102221
  29. Two competing influences that may explain concomitant tumor resistance.
    Cancer Res. 1993 Jul 15;53(14):3266-9 PMID: 8324737
  30. Relation of vascular proliferation to tumor growth.
    Int Rev Exp Pathol. 1976;16:207-48 PMID: 783062
  31. Resistance of tumor-bearing mice to a second tumor challenge.
    Cancer Res. 1983 Jan;43(1):138-45 PMID: 6847762
  32. Presence of a growth-stimulating factor in serum following primary tumor removal in mice.
    Cancer Res. 1989 Apr 15;49(8):1996-2001 PMID: 2702641
  33. Suppression of tumor growth with recombinant murine angiostatin.
    Biochem Biophys Res Commun. 1997 Jul 30;236(3):651-4 PMID: 9245707
  34. Differential regulation of metalloelastase activity in murine peritoneal macrophages by granulocyte-macrophage colony-stimulating factor and macrophage colony-stimulating factor.
    J Immunol. 1996 Dec 1;157(11):5104-11 PMID: 8943420
  35. The implications of angiogenesis for the biology and therapy of cancer metastasis.
    Cell. 1994 Oct 21;79(2):185-8 PMID: 7525076
  36. Tyrosine phosphorylation of mitogen-activated protein kinases is necessary for activation of murine macrophages by natural and synthetic bacterial products.
    J Exp Med. 1993 Apr 1;177(4):1071-7 PMID: 8384652
Article Info
Journal
The Journal of experimental medicine
Abbr.
J Exp Med
ISSN
0022-1007
Published
1998-08-17
Pages
755-63
Language
English
Region
United States
NLM ID
2985109R
PMCID
PMC2213351
Subset
IM
Grants
NCI NIH HHS · CA16672 · United States
NCI NIH HHS · R35-CA-42107 · United States
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