Skip to main content
Top
Published in: Clinical & Experimental Metastasis 3/2013

01-03-2013 | Research Paper

Tumor location and nature of lymphatic vessels are key determinants of cancer metastasis

Authors: Ramin Shayan, Rachael Inder, Tara Karnezis, Carol Caesar, Karri Paavonen, Mark W. Ashton, G. Bruce Mann, G. Ian Taylor, Marc G. Achen, Steven A. Stacker

Published in: Clinical & Experimental Metastasis | Issue 3/2013

Login to get access

Abstract

Tumor metastasis to lymph nodes is a key indicator of patient survival, and is enhanced by the neo-lymphatics induced by tumor-secreted VEGF-C or VEGF-D, acting via VEGFR-3 signalling. These targets constitute important avenues for anti-metastatic treatment. Despite this new understanding, clinical observations linking metastasis with tumor depth or location suggest that lymphangiogenic growth factors are not the sole determinants of metastasis. Here we explored the influence of tumor proximity to lymphatics capable of responding to growth factors on nodal metastasis in a murine VEGF-D over-expression tumor model. We found that primary tumor location profoundly influenced VEGF-D-mediated lymph node metastasis: 89 % of tumors associated with the flank skin metastasised, in contrast with only 19 % of tumors located more deeply on the body wall (p < 0.01). Lymphatics in metastatic tumors arose from small lymphatics, and displayed distinct molecular and morphological profiles compared with those found in normal lymphatics. Smaller lymphatic subtypes were more abundant in skin (2.5-fold, p < 0.01) than in body wall, providing a richer source of lymphatics for VEGF-D+ skin tumors, a phenomenon also confirmed in human samples. This study shows that the proximity of a VEGF-D+ primary tumor to small lymphatics is an important determinant of metastasis. These observations may explain why tumor location relative to the lymphatic network is prognostically important for some human cancers.
Appendix
Available only for authorised users
Literature
1.
go back to reference Markovic SN, Erickson LA, Rao RD et al (2007) Malignant melanoma in the 21st century, part 2: staging, prognosis, and treatment. Mayo Clin Proc 82:490–513PubMedCrossRef Markovic SN, Erickson LA, Rao RD et al (2007) Malignant melanoma in the 21st century, part 2: staging, prognosis, and treatment. Mayo Clin Proc 82:490–513PubMedCrossRef
2.
go back to reference DeVita VT, Hellman S, Rosenberg A (2001) Cancer, principles and practice of oncology, 6th edn. Lippincott, Williams and Wilkins, Philadelphia, PA DeVita VT, Hellman S, Rosenberg A (2001) Cancer, principles and practice of oncology, 6th edn. Lippincott, Williams and Wilkins, Philadelphia, PA
3.
go back to reference Mandriota SJ, Jussila L, Jeltsch M et al (2001) Vascular endothelial growth factor-C-mediated lymphangiogenesis promotes tumour metastasis. EMBO J 20:672–682PubMedCrossRef Mandriota SJ, Jussila L, Jeltsch M et al (2001) Vascular endothelial growth factor-C-mediated lymphangiogenesis promotes tumour metastasis. EMBO J 20:672–682PubMedCrossRef
4.
go back to reference Skobe M, Hawighorst T, Jackson DG et al (2001) Induction of tumor lymphangiogenesis by VEGF-C promotes breast cancer metastasis. Nat Med 7:192–198PubMedCrossRef Skobe M, Hawighorst T, Jackson DG et al (2001) Induction of tumor lymphangiogenesis by VEGF-C promotes breast cancer metastasis. Nat Med 7:192–198PubMedCrossRef
5.
go back to reference Stacker SA, Caesar C, Baldwin ME et al (2001) VEGF-D promotes the metastatic spread of tumor cells via the lymphatics. Nat Med 7:186–191PubMedCrossRef Stacker SA, Caesar C, Baldwin ME et al (2001) VEGF-D promotes the metastatic spread of tumor cells via the lymphatics. Nat Med 7:186–191PubMedCrossRef
6.
go back to reference Nagy JA, Vasile E, Feng D et al (2002) Vascular permeability factor/vascular endothelial growth factor induces lymphangiogenesis as well as angiogenesis. J Exp Med 196:1497–1506PubMedCrossRef Nagy JA, Vasile E, Feng D et al (2002) Vascular permeability factor/vascular endothelial growth factor induces lymphangiogenesis as well as angiogenesis. J Exp Med 196:1497–1506PubMedCrossRef
7.
go back to reference Schietroma C, Cianfarani F, Lacal PM et al (2003) Vascular endothelial growth factor-C expression correlates with lymph node localization of human melanoma metastases. Cancer 98:789–797PubMedCrossRef Schietroma C, Cianfarani F, Lacal PM et al (2003) Vascular endothelial growth factor-C expression correlates with lymph node localization of human melanoma metastases. Cancer 98:789–797PubMedCrossRef
8.
go back to reference White JD, Hewett PW, Kosuge D et al (2002) Vascular endothelial growth factor-D expression is an independent prognostic marker for survival in colorectal carcinoma. Cancer Res 62:1669–1675PubMed White JD, Hewett PW, Kosuge D et al (2002) Vascular endothelial growth factor-D expression is an independent prognostic marker for survival in colorectal carcinoma. Cancer Res 62:1669–1675PubMed
9.
go back to reference Stacker SA, Williams RA, Achen MG (2004) Lymphangiogenic growth factors as markers of tumor metastasis. APMIS 112:539–549PubMedCrossRef Stacker SA, Williams RA, Achen MG (2004) Lymphangiogenic growth factors as markers of tumor metastasis. APMIS 112:539–549PubMedCrossRef
10.
go back to reference Caunt M, Mak J, Liang WC et al (2008) Blocking neuropilin-2 function inhibits tumor cell metastasis. Cancer Cell 13:331–342PubMedCrossRef Caunt M, Mak J, Liang WC et al (2008) Blocking neuropilin-2 function inhibits tumor cell metastasis. Cancer Cell 13:331–342PubMedCrossRef
11.
go back to reference Achen MG, Mann GB, Stacker SA (2006) Targeting lymphangiogenesis to prevent tumour metastasis. Br J Cancer 94:1355–1360PubMedCrossRef Achen MG, Mann GB, Stacker SA (2006) Targeting lymphangiogenesis to prevent tumour metastasis. Br J Cancer 94:1355–1360PubMedCrossRef
12.
go back to reference Achen MG, McColl BK, Stacker SA (2005) Focus on lymphangiogenesis in tumor metastasis. Cancer Cell 7:121–127PubMedCrossRef Achen MG, McColl BK, Stacker SA (2005) Focus on lymphangiogenesis in tumor metastasis. Cancer Cell 7:121–127PubMedCrossRef
13.
go back to reference Shayan R, Achen MG, Stacker SA (2006) Lymphatic vessels in cancer metastasis: bridging the gaps. Carcinogenesis 27:1729–1738PubMedCrossRef Shayan R, Achen MG, Stacker SA (2006) Lymphatic vessels in cancer metastasis: bridging the gaps. Carcinogenesis 27:1729–1738PubMedCrossRef
14.
go back to reference Goydos JS, Gorski DH (2003) Vascular endothelial growth factor C mRNA expression correlates with stage of progression in patients with melanoma. Clin Cancer Res 9:5962–5967PubMed Goydos JS, Gorski DH (2003) Vascular endothelial growth factor C mRNA expression correlates with stage of progression in patients with melanoma. Clin Cancer Res 9:5962–5967PubMed
15.
go back to reference Nakamura Y, Yasuoka H, Tsujimoto M et al (2005) Lymph vessel density correlates with nodal status, VEGF-C expression, and prognosis in breast cancer. Breast Cancer Res Treat 91:125–132PubMedCrossRef Nakamura Y, Yasuoka H, Tsujimoto M et al (2005) Lymph vessel density correlates with nodal status, VEGF-C expression, and prognosis in breast cancer. Breast Cancer Res Treat 91:125–132PubMedCrossRef
17.
go back to reference Stacker SA, Achen MG, Jussila L et al (2002) Lymphangiogenesis and cancer metastasis. Nat Rev Cancer 2:573–583PubMedCrossRef Stacker SA, Achen MG, Jussila L et al (2002) Lymphangiogenesis and cancer metastasis. Nat Rev Cancer 2:573–583PubMedCrossRef
18.
go back to reference Alitalo K, Tammela T, Petrova TV (2005) Lymphangiogenesis in development and human disease. Nature (Lond) 438:946–953CrossRef Alitalo K, Tammela T, Petrova TV (2005) Lymphangiogenesis in development and human disease. Nature (Lond) 438:946–953CrossRef
19.
go back to reference Achen MG, Stacker SA (2008) Molecular control of lymphatic metastasis. Ann NY Acad Sci 1131:225–234PubMedCrossRef Achen MG, Stacker SA (2008) Molecular control of lymphatic metastasis. Ann NY Acad Sci 1131:225–234PubMedCrossRef
20.
go back to reference Debinski W, Slagle-Webb B, Achen MG et al (2001) VEGF-D is an X-linked/AP-1 regulated putative onco-angiogen in human glioblastoma multiforme. Mol Med 7:598–608PubMed Debinski W, Slagle-Webb B, Achen MG et al (2001) VEGF-D is an X-linked/AP-1 regulated putative onco-angiogen in human glioblastoma multiforme. Mol Med 7:598–608PubMed
21.
go back to reference Cunningham JE, Juri AL, Oman L et al (2006) Is risk of axillary lymph node metastasis associated with proximity of breast cancer to the skin? Breast Cancer Res Treat 100:319–328PubMedCrossRef Cunningham JE, Juri AL, Oman L et al (2006) Is risk of axillary lymph node metastasis associated with proximity of breast cancer to the skin? Breast Cancer Res Treat 100:319–328PubMedCrossRef
22.
go back to reference Onogawa S, Kitadai Y, Tanaka S et al (2004) Expression of VEGF-C and VEGF-D at the invasive edge correlates with lymph node metastasis and prognosis of patients with colorectal carcinoma. Cancer Sci 95:32–39PubMedCrossRef Onogawa S, Kitadai Y, Tanaka S et al (2004) Expression of VEGF-C and VEGF-D at the invasive edge correlates with lymph node metastasis and prognosis of patients with colorectal carcinoma. Cancer Sci 95:32–39PubMedCrossRef
23.
go back to reference Bevacqua SJ, Welch DR, Diez de Pinos SM et al (1990) Quantitation of human melanoma, carcinoma and sarcoma tumor cell adhesion to lymphatic endothelium. Lymphology 23:4–14PubMed Bevacqua SJ, Welch DR, Diez de Pinos SM et al (1990) Quantitation of human melanoma, carcinoma and sarcoma tumor cell adhesion to lymphatic endothelium. Lymphology 23:4–14PubMed
24.
go back to reference Padera TP, Kadambi A, di Tomaso E et al (2002) Lymphatic metastasis in the absence of functional intratumor lymphatics. Science 296:1883–1886PubMedCrossRef Padera TP, Kadambi A, di Tomaso E et al (2002) Lymphatic metastasis in the absence of functional intratumor lymphatics. Science 296:1883–1886PubMedCrossRef
25.
go back to reference Smith KJ, Jones PF, Burke DA et al (2011) Lymphatic vessel distribution in the mucosa and submucosa and potential implications for T1 colorectal tumors. Dis Colon Rectum 54:35–40PubMedCrossRef Smith KJ, Jones PF, Burke DA et al (2011) Lymphatic vessel distribution in the mucosa and submucosa and potential implications for T1 colorectal tumors. Dis Colon Rectum 54:35–40PubMedCrossRef
26.
go back to reference Scavelli C, Weber E, Agliano M et al (2004) Lymphatics at the crossroads of angiogenesis and lymphangiogenesis. J Anat 204:433–449PubMedCrossRef Scavelli C, Weber E, Agliano M et al (2004) Lymphatics at the crossroads of angiogenesis and lymphangiogenesis. J Anat 204:433–449PubMedCrossRef
27.
go back to reference Van der Auwera I, Cao Y, Tille JC et al (2006) First international consensus on the methodology of lymphangiogenesis quantification in solid human tumours. Br J Cancer 95:1611–1625PubMedCrossRef Van der Auwera I, Cao Y, Tille JC et al (2006) First international consensus on the methodology of lymphangiogenesis quantification in solid human tumours. Br J Cancer 95:1611–1625PubMedCrossRef
28.
go back to reference Pepper MS, Skobe M (2003) Lymphatic endothelium: morphological, molecular and functional properties. J Cell Biol 163:209–213PubMedCrossRef Pepper MS, Skobe M (2003) Lymphatic endothelium: morphological, molecular and functional properties. J Cell Biol 163:209–213PubMedCrossRef
29.
go back to reference Makinen T, Adams RH, Bailey J et al (2005) PDZ interaction site in ephrinB2 is required for the remodeling of lymphatic vasculature. Genes Dev 19:397–410PubMedCrossRef Makinen T, Adams RH, Bailey J et al (2005) PDZ interaction site in ephrinB2 is required for the remodeling of lymphatic vasculature. Genes Dev 19:397–410PubMedCrossRef
30.
go back to reference Baldwin ME, Stacker SA, Achen MG (2002) Molecular control of lymphangiogenesis. BioEssays 24:1030–1040PubMedCrossRef Baldwin ME, Stacker SA, Achen MG (2002) Molecular control of lymphangiogenesis. BioEssays 24:1030–1040PubMedCrossRef
31.
go back to reference Adams RH, Alitalo K (2007) Molecular regulation of angiogenesis and lymphangiogenesis. Nat Rev Mol Cell Biol 8:464–478PubMedCrossRef Adams RH, Alitalo K (2007) Molecular regulation of angiogenesis and lymphangiogenesis. Nat Rev Mol Cell Biol 8:464–478PubMedCrossRef
32.
go back to reference Tammela T, Saaristo A, Holopainen T et al (2007) Therapeutic differentiation and maturation of lymphatic vessels after lymph node dissection and transplantation. Nat Med 13:1458–1466PubMedCrossRef Tammela T, Saaristo A, Holopainen T et al (2007) Therapeutic differentiation and maturation of lymphatic vessels after lymph node dissection and transplantation. Nat Med 13:1458–1466PubMedCrossRef
33.
go back to reference Karnezis T, Shayan R, Caesar C et al (2012) VEGF-D promotes tumor metastasis by regulating prostaglandins produced by the collecting lymphatic endothelium. Cancer Cell 21:181–195PubMedCrossRef Karnezis T, Shayan R, Caesar C et al (2012) VEGF-D promotes tumor metastasis by regulating prostaglandins produced by the collecting lymphatic endothelium. Cancer Cell 21:181–195PubMedCrossRef
34.
go back to reference Azzali G (2007) Tumor cell transendothelial passage in the absorbing lymphatic vessel of transgenic adenocarcinoma mouse prostate. Am J Pathol 170:334–346PubMedCrossRef Azzali G (2007) Tumor cell transendothelial passage in the absorbing lymphatic vessel of transgenic adenocarcinoma mouse prostate. Am J Pathol 170:334–346PubMedCrossRef
35.
go back to reference He Y, Rajantie I, Pajusola K et al (2005) Vascular endothelial cell growth factor receptor 3-mediated activation of lymphatic endothelium is crucial for tumor cell entry and spread via lymphatic vessels. Cancer Res 65:4739–4746PubMedCrossRef He Y, Rajantie I, Pajusola K et al (2005) Vascular endothelial cell growth factor receptor 3-mediated activation of lymphatic endothelium is crucial for tumor cell entry and spread via lymphatic vessels. Cancer Res 65:4739–4746PubMedCrossRef
36.
go back to reference Hoshida T, Isaka N, Hagendoorn J et al (2006) Imaging steps of lymphatic metastasis reveals that vascular endothelial growth factor-C increases metastasis by increasing delivery of cancer cells to lymph nodes: therapeutic implications. Cancer Res 66:8065–8075PubMedCrossRef Hoshida T, Isaka N, Hagendoorn J et al (2006) Imaging steps of lymphatic metastasis reveals that vascular endothelial growth factor-C increases metastasis by increasing delivery of cancer cells to lymph nodes: therapeutic implications. Cancer Res 66:8065–8075PubMedCrossRef
37.
go back to reference Shayan R, Karnezis T, Tsantikos E et al (2007) A system for quantifying the patterning of the lymphatic vasculature. Growth Factors 25:417–425PubMedCrossRef Shayan R, Karnezis T, Tsantikos E et al (2007) A system for quantifying the patterning of the lymphatic vasculature. Growth Factors 25:417–425PubMedCrossRef
38.
go back to reference Achen MG, Jeltsch M, Kukk E et al (1998) Vascular endothelial growth factor D (VEGF-D) is a ligand for the tyrosine kinases VEGF receptor 2 (Flk1) and VEGF receptor 3 (Flt4). Proc Natl Acad Sci USA 95:548–553PubMedCrossRef Achen MG, Jeltsch M, Kukk E et al (1998) Vascular endothelial growth factor D (VEGF-D) is a ligand for the tyrosine kinases VEGF receptor 2 (Flk1) and VEGF receptor 3 (Flt4). Proc Natl Acad Sci USA 95:548–553PubMedCrossRef
39.
go back to reference Stacker SA, Stenvers K, Caesar C et al (1999) Biosynthesis of vascular endothelial growth factor-D involves proteolytic processing which generates non-covalent homodimers. J Biol Chem 274:32127–32136PubMedCrossRef Stacker SA, Stenvers K, Caesar C et al (1999) Biosynthesis of vascular endothelial growth factor-D involves proteolytic processing which generates non-covalent homodimers. J Biol Chem 274:32127–32136PubMedCrossRef
40.
go back to reference Saaristo A, Tammela T, Farkkila A et al (2006) Vascular endothelial growth factor-C accelerates diabetic wound healing. Am J Pathol 169:1080–1087PubMedCrossRef Saaristo A, Tammela T, Farkkila A et al (2006) Vascular endothelial growth factor-C accelerates diabetic wound healing. Am J Pathol 169:1080–1087PubMedCrossRef
41.
go back to reference Muthuchamy M, Gashev A, Boswell N et al (2003) Molecular and functional analyses of the contractile apparatus in lymphatic muscle. FASEB J 17:920–922PubMed Muthuchamy M, Gashev A, Boswell N et al (2003) Molecular and functional analyses of the contractile apparatus in lymphatic muscle. FASEB J 17:920–922PubMed
42.
go back to reference Karpanen T, Egeblad M, Karkkainen MJ et al (2001) Vascular endothelial growth factor C promotes tumor lymphangiogenesis and intralymphatic tumor growth. Cancer Res 61:1786–1790PubMed Karpanen T, Egeblad M, Karkkainen MJ et al (2001) Vascular endothelial growth factor C promotes tumor lymphangiogenesis and intralymphatic tumor growth. Cancer Res 61:1786–1790PubMed
43.
go back to reference Wirzenius M, Tammela T, Uutela M et al (2007) Distinct vascular endothelial growth factor signals for lymphatic vessel enlargement and sprouting. J Exp Med 204:1431–1440PubMedCrossRef Wirzenius M, Tammela T, Uutela M et al (2007) Distinct vascular endothelial growth factor signals for lymphatic vessel enlargement and sprouting. J Exp Med 204:1431–1440PubMedCrossRef
44.
go back to reference Farnsworth RH, Karnezis T, Shayan R et al (2011) A role for bone morphogenic protein-4 in vascular endothelial growth factor-D mediated tumor growth, metastasis and vessel remodelling. Cancer Res 71:6547–6557PubMedCrossRef Farnsworth RH, Karnezis T, Shayan R et al (2011) A role for bone morphogenic protein-4 in vascular endothelial growth factor-D mediated tumor growth, metastasis and vessel remodelling. Cancer Res 71:6547–6557PubMedCrossRef
45.
go back to reference Achen MG, Stacker SA (2012) Vascular endothelial growth factor-D: signalling mechanisms, biology and clinical relevance. Growth Factors 30:283–296 Achen MG, Stacker SA (2012) Vascular endothelial growth factor-D: signalling mechanisms, biology and clinical relevance. Growth Factors 30:283–296
46.
go back to reference Shayan R, Rozen W, Bernard S et al (2008) Perforator dilatation induced by body weight gain is not reversed by subsequent weight loss: implications for perforator flaps. Plast Reconstr Surg 122:1765–1772PubMedCrossRef Shayan R, Rozen W, Bernard S et al (2008) Perforator dilatation induced by body weight gain is not reversed by subsequent weight loss: implications for perforator flaps. Plast Reconstr Surg 122:1765–1772PubMedCrossRef
47.
go back to reference Stadelmann WK, Reintgen DS (1998) Prognosis in malignant melanoma. Hematol Oncol Clin North Am 12:767–796, vi Stadelmann WK, Reintgen DS (1998) Prognosis in malignant melanoma. Hematol Oncol Clin North Am 12:767–796, vi
48.
go back to reference Deutsch A, Lubach D, Nissen S et al (1992) Ultrastructural studies on the invasion of melanomas in initial lymphatics of human skin. J Invest Dermatol 98:64–67PubMedCrossRef Deutsch A, Lubach D, Nissen S et al (1992) Ultrastructural studies on the invasion of melanomas in initial lymphatics of human skin. J Invest Dermatol 98:64–67PubMedCrossRef
49.
go back to reference Gordon EJ, Rao S, Pollard JW et al (2010) Macrophages define dermal lymphatic vessel calibre during development by regulating lymphatic endothelial cell proliferation. Development 137:3899–3910PubMedCrossRef Gordon EJ, Rao S, Pollard JW et al (2010) Macrophages define dermal lymphatic vessel calibre during development by regulating lymphatic endothelial cell proliferation. Development 137:3899–3910PubMedCrossRef
50.
go back to reference Harvey NL, Gordon EJ (2012) Deciphering the roles of macrophages in developmental and inflammation stimulated lymphangiogenesis. Vasc Cell 4:15PubMedCrossRef Harvey NL, Gordon EJ (2012) Deciphering the roles of macrophages in developmental and inflammation stimulated lymphangiogenesis. Vasc Cell 4:15PubMedCrossRef
Metadata
Title
Tumor location and nature of lymphatic vessels are key determinants of cancer metastasis
Authors
Ramin Shayan
Rachael Inder
Tara Karnezis
Carol Caesar
Karri Paavonen
Mark W. Ashton
G. Bruce Mann
G. Ian Taylor
Marc G. Achen
Steven A. Stacker
Publication date
01-03-2013
Publisher
Springer Netherlands
Published in
Clinical & Experimental Metastasis / Issue 3/2013
Print ISSN: 0262-0898
Electronic ISSN: 1573-7276
DOI
https://doi.org/10.1007/s10585-012-9541-x

Other articles of this Issue 3/2013

Clinical & Experimental Metastasis 3/2013 Go to the issue
Webinar | 19-02-2024 | 17:30 (CET)

Keynote webinar | Spotlight on antibody–drug conjugates in cancer

Antibody–drug conjugates (ADCs) are novel agents that have shown promise across multiple tumor types. Explore the current landscape of ADCs in breast and lung cancer with our experts, and gain insights into the mechanism of action, key clinical trials data, existing challenges, and future directions.

Dr. Véronique Diéras
Prof. Fabrice Barlesi
Developed by: Springer Medicine