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Jeltsch, Michael
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2024
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)
López-Cerdá S
,
Molinaro G
,
ParejaTello R
,
Correia A
,
Künig S
,
Steinberger P
, u. a.
.
Study of the Synergistic Immunomodulatory and Antifibrotic Effects of Dual-Loaded Budesonide and Serpine1 siRNA Lipid–Polymer Nanoparticles Targeting Macrophage Dysregulation in Tendinopathy
. ACS Applied Materials & Interfaces [Internet]. 2024;16(15):18643 - 18657.
https://pubs.acs.org/doi/10.1021/acsami.4c02363
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López-Cerdá et al. - 2024 - Study of the Synergistic Immunomodulatory and Antifibrotic Effects of Dual-Loaded Budesonide [...]
(7.06 MB)
2023
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)
2022
Rauniyar K
,
Akhondzadeh S
,
Gąciarz A
,
Künnapuu J
,
Jeltsch M
.
Bioactive VEGF-C from E. coli
. Scientific Reports [Internet]. 2022;12(1).
https://www.nature.com/articles/s41598-022-22960-0
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Rauniyar et al. - 2022 - Bioactive VEGF-C from E. coli
(4.19 MB)
Jeltsch M
,
Alitalo K
.
Lymphatic-to-blood vessel transdifferentiation in zebrafish
. Nature Cardiovascular Research [Internet]. 2022;1(6):539 - 541.
https://rdcu.be/cOjJ0
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2021
Jeltsch M
.
Drug-induced lymphangiogenesis
. In 3. Schweizer Lymphsymposium [Internet]. Juzo; 2021.
https://doi.org/10.5281/zenodo.6034307
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Jeltsch - 2021 - Drug-induced lymphangiogenesis
(1.9 MB)
Koistinen H
,
Künnapuu J
,
Jeltsch M
.
KLK3 in the Regulation of Angiogenesis—Tumorigenic or Not?
. International Journal of Molecular Sciences [Internet]. 2021;22(24):13545.
https://www.mdpi.com/1422-0067/22/24/13545
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Koistinen et al. - 2021 - KLK3 in the Regulation of Angiogenesis—Tumorigenic or Not?
(1.28 MB)
Künnapuu J
,
Jeltsch M
.
Outside in and brakes off for lymphatic growth
. Science Signaling [Internet]. 2021;14(695).
https://www.science.org/doi/10.1126/scisignal.abj5058
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Künnapuu and Jeltsch - 2021 - Outside in and brakes off for lymphatic growth
(268.05 KB)
Künnapuu J
,
Bokharaie H
,
Jeltsch M
.
Proteolytic Cleavages in the VEGF Family: Generating Diversity among Angiogenic VEGFs, Essential for the Activation of Lymphangiogenic VEGFs
. Biology [Internet]. 2021;10(2):167.
https://www.mdpi.com/2079-7737/10/2/167
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Künnapuu et al. - 2021 - Proteolytic Cleavages in the VEGF Family: Generating Diversity among Angiogenic VEGFs, Essential [...]
(3.44 MB)
2020
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.
https://onlinelibrary.wiley.com/doi/abs/10.1002/mgg3.1389
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Mukenge et al. 2020
(1.06 MB)
Gucciardo E
,
Lehti TA
,
Korhonen A
,
Salvén P
,
Lehti K
,
Jeltsch M
, u. a.
.
Lymphatics and the eye. [Finnish]
. Duodecim Lääketieteellinen Aikakauskirja [Internet]. 2020;136(16):1777-1788.
https://www.duodecimlehti.fi/lehti/2020/16/duo15739
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Gucciardo et al. Lymphatics and the Eye (English version).
(3.31 MB)
VEGF-C Protects the Integrity of Bone Marrow Perivascular Niche
. Blood [Internet]. 2020;:accepted - for publication.
https://ashpublications.org/blood/article/doi/10.1182/blood.2020005699/463465/VEGF-C-Protects-the-Integrity-of-Bone-Marrow
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Fang et al. 2020 - VEGF-C protects the integrity of bone marrow perivascular niche
(6 MB)
2019
Jha SK
,
Rauniyar K
,
Chronowska E
,
Mattonet K
,
Maina EW
,
Koistinen H
, u. a.
.
KLK3/PSA and cathepsin D activate VEGF-C and VEGF-D
. eLife [Internet]. 2019;8:e44478.
https://elifesciences.org/articles/44478
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Jha & Rauniyar et al. 2019
(3.84 MB)
Lackner M
,
Schmotz C
,
Jeltsch M
.
The Proteolytic Activation of Vascular Endothelial Growth Factor-C
. Lymphologie in Forschung und Praxis [Internet]. 2019;23(2):88 - 98.
https://doi.org/10.5281/zenodo.3629263
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English version: Lackner et al. 2019
(2.94 MB)
German version: Lackner et al. 2019
(673.37 KB)
2017
Efficient activation of the lymphangiogenic growth factor VEGF-C requires the C-terminal domain of VEGF-C and the N-terminal domain of CCBE1
. Scientific Reports [Internet]. 2017;7(1):4916.
https://www.nature.com/articles/s41598-017-04982-1
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Jeltsch M
.
What you should know about VEGF-C when working with lymphatics [German]
. In Lymphologie 2017 [Internet]. Bad Soden (Frankfurt), Germany; 2017.
https://jeltsch.org/Abstrakt-BadSoden2017
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Extended Abstract (published in Vasomed, 2018)
(226.5 KB)
2016
Factors regulating the substrate specificity of cytosolic phospholipase A2-alpha in vitro
. Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids. 2016;1861(11):1597.
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Batchu et al. - 2016 - Factors regulating the substrate specificity of cy.pdf
(986.25 KB)
From Molecular Genetics and Biology to Effective Treatments of Lymphatic Disorders
[Internet]. 42nd Congress of the European Society of Lymphology. Mulhouse, France; 2016.
http://www.eurolymphology.org/JOURNAL/VOL28-N74-2016/#p=14
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Jeltsch 2016: From Molecular Genetics and Biology to Effective Treatments of Lymphatic Disorders
(683.85 KB)
Functional Importance of a Proteoglycan Co-Receptor in Pathologic Lymphangiogenesis
. Circulation Research [Internet]. 2016;119(2):210-221.
http://circres.ahajournals.org/content/early/2016/05/25/CIRCRESAHA.116.308504
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Johns et al. 2016: Functional Importance of a Proteoglycan Co-Receptor in Pathologic Lymphangiogenesis
(3.69 MB)
Johns et al. 2016: Functional Importance of a Proteoglycan Co-Receptor in Pathologic Lymphangiogenesis: Supplemental Data
(3.3 MB)
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)
2015
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
PubMed
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The genetic causes of primary lymphedema.
In Erkrankungen des Lymphgefäßsystems. 6. Aufl. Cologne: Viavital Verlag; 2015. S. 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)
Heterogeneity of the origin of the lymphatic system. [German].
Lymphologie in Forschung und Praxis [Internet]. 2015;19(2):84-88.
http://www.dglymph.de/fileadmin/global/pdfs/LymphForsch_2-15.pdf
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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)
Lymphangiogenesis in Health and Disease
[Internet]. 41st European Societry of Lymphology (ESL) Congress. Lausanne, Switzerland: European Group of Lymphology; 2015.
http://www.eurolymphology.org/JOURNAL/VOL26-N72-2015/#p=10
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Abstract of the Presentation (Michael Jeltsch)
(75.34 KB)
Substrate efflux propensity is the key determinant of iPLA-β-mediated glycerophospholipid hydrolysised
. Journal of Biological Chemistry [Internet]. 2015;.
http://www.jbc.org/content/early/2015/02/23/jbc.M115.642835.abstract
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J. Biol. Chem.-2015-Batchu-jbc.M115.642835.pdf
(786.13 KB)
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