Dual targeting of DR5 and VEGFR2 molecular pathways by multivalent fusion protein significantly suppresses tumor growth and angiogenesis

Alina A Isakova 1, 2
Galina V. Trunova 3
Varvara Khokhlova 3
Margarita L. Shuvalova 2, 4
Diana V. Mazur 1, 2
Nadezhda V Antipova 2
Mikhail I Shakhparonov 2
D. А. Dolgikh 1, 2
M. P. Kirpichnikov 1, 2
Marine E. Gasparian 2, 5
Publication typeJournal Article
Publication date2024-01-01
scimago Q1
wos Q1
SJR1.285
CiteScore10.3
Impact factor8.5
ISSN01418130, 18790003
Biochemistry
Molecular Biology
General Medicine
Structural Biology
Abstract
Destroying tumor vasculature is a relevant therapeutic strategy due to its involvement in tumor progression. However, adaptive resistance to approved antiangiogenic drugs targeting VEGF/VEGFR pathway requires the recruitment of additional targets. In this aspect, targeting TRAIL pathway is promising as it is an important component of the immune system involved in tumor immunosurveillance. For dual targeting of malignant cells and tumor vascular microenvironment, we designed a multivalent fusion protein SRH-DR5-B-iRGD with antiangiogenic VEGFR2-specific peptide SRH at the N-terminus and a tumor-targeting and -penetrating peptide iRGD at the C-terminus of receptor-selective TRAIL variant DR5-B. SRH-DR5-B-iRGD obtained high affinity for DR5, VEGFR2 and αvβ3 integrin in nanomolar range. Fusion of DR5-B with effector peptides accelerated DR5 receptor internalization rate upon ligand binding. Antitumor efficacy was evaluated in vitro in human tumor cell lines and primary patient-derived glioblastoma neurospheres, and in vivo in xenograft mouse model of human glioblastoma. Multivalent binding of SRH-DR5-B-iRGD fusion efficiently stimulated DR5-mediated tumor cell death via caspase-dependent mechanism, suppressed xenograft tumor growth by >80 %, doubled the lifespan of xenograft animals, and inhibited tumor vascularization. Therefore, targeting DR5 and VEGFR2 molecular pathways with SRH-DR5-B-iRGD protein may provide a novel therapeutic approach for treatment of solid tumors.
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Isakova A. A. et al. Dual targeting of DR5 and VEGFR2 molecular pathways by multivalent fusion protein significantly suppresses tumor growth and angiogenesis // International Journal of Biological Macromolecules. 2024. Vol. 255. p. 128096.
GOST all authors (up to 50) Copy
Isakova A. A., Artykov A., Plotnikova E. A., Trunova G. V., Khokhlova V., Панкратов А. А., Shuvalova M. L., Mazur D. V., Antipova N. V., Shakhparonov M. I., Dolgikh D. А., Kirpichnikov M. P., Gasparian M. E., Yagolovich A. V. Dual targeting of DR5 and VEGFR2 molecular pathways by multivalent fusion protein significantly suppresses tumor growth and angiogenesis // International Journal of Biological Macromolecules. 2024. Vol. 255. p. 128096.
RIS |
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RIS Copy
TY - JOUR
DO - 10.1016/j.ijbiomac.2023.128096
UR - https://doi.org/10.1016/j.ijbiomac.2023.128096
TI - Dual targeting of DR5 and VEGFR2 molecular pathways by multivalent fusion protein significantly suppresses tumor growth and angiogenesis
T2 - International Journal of Biological Macromolecules
AU - Isakova, Alina A
AU - Artykov, Artem
AU - Plotnikova, Ekaterina A
AU - Trunova, Galina V.
AU - Khokhlova, Varvara
AU - Панкратов, Андрей Александрович
AU - Shuvalova, Margarita L.
AU - Mazur, Diana V.
AU - Antipova, Nadezhda V
AU - Shakhparonov, Mikhail I
AU - Dolgikh, D. А.
AU - Kirpichnikov, M. P.
AU - Gasparian, Marine E.
AU - Yagolovich, Anne V.
PY - 2024
DA - 2024/01/01
PB - Elsevier
SP - 128096
VL - 255
PMID - 37972835
SN - 0141-8130
SN - 1879-0003
ER -
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Cite this
BibTex (up to 50 authors) Copy
@article{2024_Isakova,
author = {Alina A Isakova and Artem Artykov and Ekaterina A Plotnikova and Galina V. Trunova and Varvara Khokhlova and Андрей Александрович Панкратов and Margarita L. Shuvalova and Diana V. Mazur and Nadezhda V Antipova and Mikhail I Shakhparonov and D. А. Dolgikh and M. P. Kirpichnikov and Marine E. Gasparian and Anne V. Yagolovich},
title = {Dual targeting of DR5 and VEGFR2 molecular pathways by multivalent fusion protein significantly suppresses tumor growth and angiogenesis},
journal = {International Journal of Biological Macromolecules},
year = {2024},
volume = {255},
publisher = {Elsevier},
month = {jan},
url = {https://doi.org/10.1016/j.ijbiomac.2023.128096},
pages = {128096},
doi = {10.1016/j.ijbiomac.2023.128096}
}