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Villefranc JA
,
Nicoli S
,
Bentley K
,
Jeltsch M
,
Zarkada G
,
Moore JC
, et al.
.
A truncation allele in vascular endothelial growth factor c reveals distinct modes of signaling during lymphatic and vascular development.
Development. 2013;140(7):1497-506.
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Villefranc 2013
(7.86 MB)
Veikkola T
,
Lohela M
,
Ikenberg K
,
Mäkinen T
,
Korff T
,
Saaristo A
, et al.
.
Intrinsic versus microenvironmental regulation of lymphatic endothelial cell phenotype and function
. FASEB J [Internet]. 2003;17(14):2006 - 13.
http://view.ncbi.nlm.nih.gov/pubmed/14597670
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Tanja Veikkola et al., FASEB Journal 2006
(598.77 KB)
Veikkola T
,
Jussila L
,
Makinen T
,
Karpanen T
,
Jeltsch M
,
Petrova TV
, et al.
.
Signalling via vascular endothelial growth factor receptor-3 is sufficient for lymphangiogenesis in transgenic mice
. EMBO J [Internet]. 2001;20(6):1223 - 31.
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Tanja Veikkola et al., EMBO Journal 2001
(491.14 KB)
T
Tvorogov D
,
Anisimov A
,
Zheng W
,
Leppänen V-M
,
Tammela T
,
Laurinavicius S
, et al.
.
Effective suppression of vascular network formation by combination of antibodies blocking VEGFR ligand binding and receptor dimerization
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Denis Tvorogov et al., Cancer Cell 2010
(1.3 MB)
Denis Tvorogov et al., Cancer Cell 2010, supplement
(828.69 KB)
Tammela T
,
He Y
,
Lyytikkä J
,
Jeltsch M
,
Markkanen J
,
Pajusola K
, et al.
.
Distinct architecture of lymphatic vessels induced by chimeric vascular endothelial growth factor-C/vascular endothelial growth factor heparin-binding domain fusion proteins
. Circ Res [Internet]. 2007;100(10):1468 - 75.
http://view.ncbi.nlm.nih.gov/pubmed/17478733
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Tuomas Tammela et al., Circulation Research 2007
(1.1 MB)
S
Schaupper MV
,
Jeltsch M
,
Rohringer S
,
Redl H
,
Holnthoner W
.
Lymphatic Vessels in Regenerative Medicine and Tissue Engineering
. Tissue Engineering Part B [Internet]. 2016;22(5):1-13.
http://online.liebertpub.com/doi/10.1089/ten.TEB.2016.0034
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Schaupper et al. Tissue Engineering Part B. Review (postprint manuscript = accepted version after peer review).
(697.3 KB)
Saharinen P
,
Jeltsch M
,
Santoyo MM
,
Leppänen V-M
,
Alitalo K
.
The TIE Receptor Family
. In:
Wheeler DL
,
Yarden Y
. Receptor Tyrosine Kinases: Family and Subfamilies [Internet]. Springer International Publishing; 2015. pp. 743-775.
https://link.springer.com/content/pdf/10.1007%2F978-3-319-11888-8_16.pdf
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Saharinen P
,
Helotera H
,
Miettinen J
,
Norrmen C
,
D'Amico G
,
Jeltsch M
, et al.
.
Claudin-like protein 24 interacts with the VEGFR-2 and VEGFR-3 pathways and regulates lymphatic vessel development
. Genes Dev [Internet]. 2010;24(9):875 - 80.
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Pipsa Saharinen et al., Genes & Development 2010
(1.2 MB)
Pipsa Saharinen et al., Genes & Development 2010, supplement
(9.15 MB)
Saaristo A
,
Veikkola T
,
Enholm B
,
Hytönen M
,
Arola J
,
Pajusola K
, et al.
.
Adenoviral VEGF-C overexpression induces blood vessel enlargement, tortuosity, and leakiness but no sprouting angiogenesis in the skin or mucous membranes
. FASEB J [Internet]. 2002;16(9):1041 - 9.
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Anne Saaristo et al., FASEB Journal 2002
(966.08 KB)
R
M Roukens G
,
Peterson-Maduro J
,
Padberg Y
,
Jeltsch M
,
Leppänen V-M
,
Bos FL
, et al.
.
Functional Dissection of the CCBE1 Protein: A Crucial Requirement for the Collagen Repeat Domain.
Circ Res [Internet]. 2015;116(10):1660-1669.
http://circres.ahajournals.org/content/116/10/1660.long
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Rauniyar K
,
Jha SK
,
Jeltsch M
.
Biology of Vascular Endothelial Growth Factor C in the Morphogenesis of Lymphatic Vessels
. Frontiers in Biotechnology and Bioengineering [Internet]. 2018;6.
https://www.frontiersin.org/articles/10.3389/fbioe.2018.00007/full
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Rauniyar et al. - Biology of Vascular Endothelial Growth Factor C in the Morphogenesis of Lymphatic Vessels
(4.42 MB)
Rauniyar K
,
Akhondzadeh S
,
Gąciarz A
,
Künnapuu J
,
Jeltsch M
.
Bioactive VEGF-C from E. coli
. Scientific Reports [Internet]. 2022;12(1).
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Rauniyar et al. - 2022 - Bioactive VEGF-C from E. coli
(4.19 MB)
Rauniyar K
,
Bokharaie H
,
Jeltsch M
.
Expansion and collapse of VEGF diversity in major clades of the animal kingdom
. Angiogenesis [Internet]. 2023;26(3):437 - 461.
https://link.springer.com/10.1007/s10456-023-09874-9
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Rauniyar et al. - 2023 - Expansion and collapse of VEGF diversity in major clades of the animal kingdom
(3.59 MB)
Rauniyar K
.
VEGF-C: The evolutionary origin, activation, and potential as a drug target
[Internet]. [Helsinki. Finland]: University of Helsinki; 2023.
http://hdl.handle.net/10138/357923
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Rauniyar - 2023 - VEGF-C: The evolutionary origin, activation, and potential as a drug target
(3.09 MB)
P
Pepper MS
,
Mandriota SJ
,
Jeltsch M
,
Kumar V
,
Alitalo K
.
Vascular endothelial growth factor (VEGF)-C synergizes with basic fibroblast growth factor and VEGF in the induction of angiogenesis in vitro and alters endothelial cell extracellular proteolytic activity
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Michael Pepper et al., Journal of Cellular Physiology 1998
(689.97 KB)
Panara V
,
Varaliová Z
,
Wilting J
,
Koltowska K
,
Jeltsch M
.
The relationship between the secondary vascular system and the lymphatic vascular system in fish
. Biological Reviews [Internet]. 2024;.
https://onlinelibrary.wiley.com/doi/10.1111/brv.13114
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Panara et al. - 2024 - The relationship between the secondary vascular system and the lymphatics vascular system in fish
(3.51 MB)
O
Olofsson B
,
Jeltsch M
,
Eriksson U
,
Alitalo K
.
Current biology of VEGF-B and VEGF-C
. Curr Opin Biotechnol [Internet]. 1999;10(6):528 - 35.
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Birgitta Olofsson et al., Current Opinion in Biotechnology 1999
(577.33 KB)
Olofsson B
,
Korpelainen E
,
Pepper MS
,
Mandriota SJ
,
Aase K
,
Kumar V
, et al.
.
Vascular endothelial growth factor B (VEGF-B) binds to VEGF receptor-1 and regulates plasminogen activator activity in endothelial cells
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Birgitta Olofsson et al., PNAS 1998
(470.59 KB)
Oh SJ
,
Jeltsch MM
,
Birkenhäger R
,
McCarthy JE
,
Weich HA
,
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, et al.
.
VEGF and VEGF-C: specific induction of angiogenesis and lymphangiogenesis in the differentiated avian chorioallantoic membrane
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Su-Ja Oh et al., Developmental Biology 1997
(3.28 MB)
M
Mukenge S
,
Jha SK
,
Catena M
,
Manara E
,
Leppänen V‐M
,
Lenti E
, et al.
.
Investigation on the role of biallelic variants in VEGF‐C found in a patient affected by Milroy‐like lymphedema
. Molecular Genetics & Genomic Medicine [Internet]. 2020;00:e1389.
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Mukenge et al. 2020
(1.06 MB)
Mattonet K
,
Wilting J
,
Jeltsch M
.
The genetic causes of primary lymphedema.
In:
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,
Schuchhardt C
. Erkrankungen des Lymphgefäßsystems. 6th ed. Cologne: Viavital Verlag; 2015. pp. 210-229.
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Mattonet et al. 2015: The genetic causes of primary lymphedema. [English]
(3.8 MB)
Mattonet et al. 2015: The genetic causes of primary lymphedema. [German]
(676.52 KB)
Mattonet K
,
Jeltsch M
.
Heterogeneity of the origin of the lymphatic system. [German].
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Mattonet & Jeltsch 2015: Heterogeneity of the origin of the lymphatic system.
(3.58 MB)
Mattonet & Jeltsch 2015: Über die heterogene Herkunft des Lymphgefäßsystems.
(288.77 KB)
Mandriota SJ
,
Jussila L
,
Jeltsch M
,
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,
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,
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, et al.
.
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Stefano Mandriota et al., EMBO Journal 2001
(736.96 KB)
L
López-Cerdá S
,
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,
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,
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,
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, et al.
.
Study of the Synergistic Immunomodulatory and Antifibrotic Effects of Dual-Loaded Budesonide and Serpine1 siRNA Lipid–Polymer Nanoparticles Targeting Macrophage Dysregulation in Tendinopathy
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López-Cerdá et al. - 2024 - Study of the Synergistic Immunomodulatory and Antifibrotic Effects of Dual-Loaded Budesonide [...]
(7.06 MB)
Li X
,
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,
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,
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,
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.
Reevaluation of the role of VEGF-B suggests a restricted role in the revascularization of the ischemic myocardium
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Xuri Li et al., Arteriosclerosis, Thrombosis, and Vascular Biology 2008
(738.26 KB)
Xuri Li et al., Arteriosclerosis, Thrombosis, and Vascular Biology 2008, data supplement
(1012.6 KB)
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