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research article

Engineered aprotinin for improved stability of fibrin biomaterials

Lorentz, Kristen Marie
•
Kontos, Stephan
•
Frey, Peter
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2011
Biomaterials

Fibrin has been long used clinically for hemostasis and sealing, yet extension of use in other applications has been limited due to its relatively rapid resorption in vivo, even with addition of aprotinin or other protease inhibitors. We report an engineered aprotinin variant that can be immobilized within fibrin and thus provide extended longevity. When recombinantly fused to a transglutaminase substrate domain from α(2)-plasmin inhibitor (α(2)PI(1-8)), the resulting variant, aprotinin-α(2)PI(1-8), was covalently crosslinked into fibrin matrices during normal thrombin/factor XIIIa-mediated polymerization. Challenge with physiological plasmin concentrations revealed that aprotinin-α(2)PI(1-8)-containing matrices retained 78% of their mass after 3 wk, whereas matrices containing wild type (WT) aprotinin degraded completely within 1 wk. Plasmin challenge of commercial sealants Omrixil and Tisseel, supplemented with aprotinin-α(2)PI(1-8) or WT aprotinin, showed extended longevity as well. When seeded with human dermal fibroblasts, aprotinin-α(2)PI(1-8)-supplemented matrices supported cell growth for at least 33% longer than those containing WT aprotinin. Subcutaneously implanted matrices containing aprotinin-α(2)PI(1-8) were detectable in mice for more than twice as long as those containing WT aprotinin. We conclude that our engineered recombinant aprotinin variant can confer extended longevity to fibrin matrices more effectively than WT aprotinin in vitro and in vivo.

  • Details
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Type
research article
DOI
10.1016/j.biomaterials.2010.08.109
Web of Science ID

WOS:000285401500011

Author(s)
Lorentz, Kristen Marie
Kontos, Stephan
Frey, Peter
Hubbell, Jeffrey Alan  
Date Issued

2011

Published in
Biomaterials
Volume

32

Issue

2

Start page

430

End page

438

Subjects

fibrin

•

degradation

•

crosslinking

•

recombinant protein

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMRP  
Available on Infoscience
October 11, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/55354
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