|
|
Claus Cursiefen, Lu Chen, Leonardo P. Borges, David Jackson, Jingtai Cao, Czeslaw Radziejewski, Patricia A. D’Amore, M. Reza Dana, Stanley J. Wiegand, J. Wayne Streilein
J Clin Invest. 2004;
113(7):1040
doi:10.1172/JCI20465
Abstract |
Full text
| PDF

L
ymphangiogenesis, an important initial step in tumor metastasis and transplant sensitization, is mediated by the action of VEGF-C and -D on VEGFR3. In contrast, VEGF-A binds VEGFR1 and VEGFR2 and is an essential hemangiogenic factor. We re-evaluated the potential role of VEGF-A in lymphangiogenesis using a novel model in which both lymphangiogenesis and hemangiogenesis are induced in the normally avascular cornea. Administration of VEGF Trap, a receptor-based fusion protein that binds and neutralizes VEGF-A but not VEGF-C or -D, completely inhibited both hemangiogenesis and the outgrowth of LYVE-1+ lymphatic vessels following injury. Furthermore, both lymphangiogenesis and hemangiogenesis were significantly reduced in mice transgenic for VEGF-A164/164 or VEGF-A188/188 (each of which expresses only one of the three principle VEGF-A isoforms). Because VEGF-A is chemotactic for macrophages and we demonstrate here that macrophages in inflamed corneas release lymphangiogenic VEGF-C/VEGF-D, we evaluated the possibility that macrophage recruitment plays a role in VEGF-A–mediated lymphangiogenesis. Either systemic depletion of all bone marrow–derived cells (by irradiation) or local depletion of macrophages in the cornea (using clodronate liposomes) prior to injury significantly inhibited both hemangiogenesis and lymphangiogenesis. We conclude that VEGF-A recruitment of monocytes/macrophages plays a crucial role in inducing inflammatory neovascularization by supplying/amplifying signals essential for pathological hemangiogenesis and lymphangiogenesis.
Citation information
This citation data is accumulated from CrossRef, which receives citation information from participating publishers, including this journal.
Not all publishers participate in CrossRef, so this information is not comprehensive.
Additionally, data may not reflect the most current citations to this article,
and the data may differ from citation information available from other sources
(for example, Google Scholar, Web of Science, and Scopus).
Total citations by year
in CrossRef
Citations to this article
in CrossRef
(62)
| Title and authors |
Publication |
Year |
Role of COX-2 in lymphangiogenesis and restoration of lymphatic flow in secondary lymphedema
Shinya Kashiwagi, Kanako Hosono, Tatsunori Suzuki, Akira Takeda, Eiju Uchinuma, Masataka Majima
|
Lab Invest
|
2011 |
The Unusual Circulation of the Newt Heart after Ventricular Injury and Its Implications for Regeneration
Yukihisa Miyachi
|
Anatomy Research International
|
2011 |
An important role of lymphatic vessel activation in limiting acute inflammation
R. Huggenberger, S. S. Siddiqui, D. Brander, S. Ullmann, K. Zimmermann, M. Antsiferova, S. Werner, K. Alitalo, M. Detmar
|
Blood
|
2011 |
Increased Lymphangiogenesis and Hemangiogenesis in Infant Cornea
Don Yuen, Rose Leu, Anna Sadovnikova, Lu Chen
|
Lymphatic Research and Biology
|
2011 |
Lymphatic vessels and related factors in adenoid cystic carcinoma of the salivary gland
Gentaro Fujita, Sunao Sato, Mitsunobu Kishino, So-ichi Iwai, Mitsuhiro Nakazawa, Satoru Toyosawa, Yoshiaki Yura, Yuzo Ogawa
|
Mod Pathol
|
2011 |
Thrombospondin 1 inhibits inflammatory lymphangiogenesis by CD36 ligation on monocytes
C. Cursiefen, K. Maruyama, F. Bock, D. Saban, Z. Sadrai, J. Lawler, R. Dana, S. Masli
|
Journal of Experimental Medicine
|
2011 |
Mouse corneal lymphangiogenesis model
Renhai Cao, Sharon Lim, Hong Ji, Yin Zhang, Yunlong Yang, Jennifer Honek, Eva-Maria Hedlund, Yihai Cao
|
Nat Protoc
|
2011 |
The Human Cutaneous Squamous Cell Carcinoma Microenvironment Is Characterized by Increased Lymphatic Density and Enhanced Expression of Macrophage-Derived VEGF-C
Dariush Moussai, Hiroshi Mitsui, Julia S Pettersen, Katherine C Pierson, Kejal R Shah, Mayte Suárez-Fariñas, Irma R Cardinale, Mark J Bluth, James G Krueger, John A Carucci
|
J Investig Dermatol
|
2010 |
Blood vessel endothelial VEGFR-2 delays lymphangiogenesis: an endogenous trapping mechanism links lymph- and angiogenesis
S. Nakao, S. Zandi, Y. Hata, S. Kawahara, R. Arita, A. Schering, D. Sun, M. I. Melhorn, Y. Ito, N. Lara-Castillo, T. Ishibashi, A. Hafezi-Moghadam
|
Blood
|
2010 |
Netrin-4 induces lymphangiogenesis in vivo.
Frederic Larrieu-Lahargue, Alana L Welm, Kirk R Thomas, Dean Y Li
|
Blood
|
2010 |
|