Communities & Collections
Researchers & Labs
Titles
DGIST
LIBRARY
DGIST R&D
Detail View
Division of Biomedical Technology
1. Journal Articles
Second-generation non-hematopoietic erythropoietin-derived peptide for neuroprotection
Cho, Bongki
;
Yoo, Seung Jun
;
Kim, So Yeon
;
Lee, Chang-Hun
;
Lee, Yun-Il
;
Lee, Seong-Ryong
;
Moon, Cheil
Department of Brain Sciences
Laboratory of Chemical Senses
1. Journal Articles
Division of Biomedical Technology
1. Journal Articles
Department of New Biology
Biointerface Structure and Skin Lab
1. Journal Articles
Citations
WEB OF SCIENCE
Citations
SCOPUS
Metadata Downloads
XML
Excel
Title
Second-generation non-hematopoietic erythropoietin-derived peptide for neuroprotection
Issued Date
2022-02
Citation
Cho, Bongki. (2022-02). Second-generation non-hematopoietic erythropoietin-derived peptide for neuroprotection. Redox Biology, 49. doi: 10.1016/j.redox.2021.102223
Type
Article
Author Keywords
Erythropoietin receptor
;
Peptide
;
Neuroprotection
;
Hypoxia
;
Ischemi
;
Erythropoietin
Keywords
SECONDARY STRUCTURE PREDICTION
;
SIGNAL-REGULATED KINASE
;
BRAIN-INJURY
;
POSSIBLE INVOLVEMENT
;
STIMULATING AGENTS
;
SUBUNIT STRUCTURE
;
RECEPTOR
;
PATHWAY
;
ACTIVATION
;
EXPRESSION
ISSN
2213-2317
Abstract
Erythropoietin (EPO) is a well-known erythropoietic cytokine having a tissue-protective effect in various tissues against hypoxic stress, including the brain. Thus, its recombinants may function as neuroprotective compounds. However, despite considerable neuroprotective effects, the EPO-based therapeutic approach has side effects, including hyper-erythropoietic and tumorigenic effects. Therefore, some modified forms and derivatives of EPO have been proposed to minimize the side effects. In this study, we generated divergently modified new peptide analogs derived from helix C of EPO, with several amino acid replacements that interact with erythropoietin receptors (EPORs). This modification resulted in unique binding potency to EPOR. Unlike recombinant EPO, among the peptides, ML1-h3 exhibited a potent neuroprotective effect against oxidative stress without additional induction of cell-proliferation, owing to a differential activating mode of EPOR signaling. Furthermore, it inhibited neuronal death and brain injury under hypoxic stress in vitro and in an in vivo ischemic brain injury model. Therefore, the divergent modification of EPO-derivatives for affinity to EPOR could provide a basis for a more advanced and optimal neuroprotective strategy. © 2021 The Authors
URI
http://hdl.handle.net/20.500.11750/16037
DOI
10.1016/j.redox.2021.102223
Publisher
Elsevier BV
Show Full Item Record
File Downloads
There are no files associated with this item.
공유
공유하기
Related Researcher
Lee, Chang-Hun
이창훈
Department of New Biology
read more
Total Views & Downloads