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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)
E
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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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)
K
Jha SK
,
Rauniyar K
,
Chronowska E
,
Mattonet K
,
Maina EW
,
Koistinen H
, ym.
.
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)
V
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)