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The effect of biodegradable gelatin microspheres on the neuroprotective effects of high mobility group box 1 A box in the postischemic brain

Authors :
Jin, Yin-Chuan
Kim, Seung-Woo
Cheng, Felice
Shin, Joo-Hyun
Park, Jin-Kuen
Lee, Sanghyun
Lee, Jung-Eun
Han, Pyung-Lim
Lee, Minhyung
Kim, Kyekyoon (Kevin)
Choi, Hyungsoo
Lee, Ja-Kyeong
Source :
Biomaterials. Jan2011, Vol. 32 Issue 3, p899-908. 10p.
Publication Year :
2011

Abstract

Abstract: High mobility group box 1 (HMGB1) is a family of endogenous molecules that is released by necrotic cells and causes neuronal damages by triggering inflammatory processes. In the cerebral ischemic brain, sustained and regulated suppression of HMGB1 has been emerged as a therapeutic means to grant neuroprotection. HMGB1 consists of two HMG boxes (A and B) and an acidic C-terminal tail, and the A box peptide antagonistically competes with HMGB1 for its receptors. In the middle cerebral artery occlusion (MCAO) in rats, a murine model of transient cerebral ischemia, administration of HMGB1 A box intraparenchymally, after encapsulated in biodegradable gelatin microspheres (GMS), which enhances the stability of peptide inside and allows its sustained delivery, at 1 h, 3 h, or 6 h after MCAO, reduced mean infarct volumes by, respectively, 81.3%, 42.6% and 30.7% of the untreated MCAO-brain, along with remarkable improvement of neurological deficits. Furthermore, the administration of HMGB1 A box/GMS suppressed proinflammatory cytokine inductions more strongly than the injection of non-encapsulated HMGB1 A box. Given that insulted brains-like ischemia have enhanced gelatinase activity than the normal brain, our results suggest that GMS-mediated delivery of therapeutic peptides is a promising means to provide efficient neuroprotection in the postischemic brain. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01429612
Volume :
32
Issue :
3
Database :
Academic Search Index
Journal :
Biomaterials
Publication Type :
Academic Journal
Accession number :
55476746
Full Text :
https://doi.org/10.1016/j.biomaterials.2010.09.054