A fluorophore-tagged RGD peptide to control endothelial cell adhesion to micropatterned surfaces.

Abstract:

:The long-term patency rates of vascular grafts and stents are limited by the lack of surface endothelialisation of the implanted materials. We have previously reported that GRGDS and WQPPRARI peptide micropatterns increase the endothelialisation of prosthetic materials in vitro. To investigate the mechanisms by which the peptide micropatterns affect endothelial cell adhesion and proliferation, a TAMRA fluorophore-tagged RGD peptide was designed. Live cell imaging revealed that the micropatterned surfaces led to directional cell spreading dependent on the location of the RGD-TAMRA spots. Focal adhesions formed within 3 h on the micropatterned surfaces near RGD-TAMRA spot edges, as expected for cell regions experiencing high tension. Similar levels of focal adhesion kinase phosphorylation were observed after 3 h on the micropatterned surfaces and on surfaces treated with RGD-TAMRA alone, suggesting that partial RGD surface coverage is sufficient to elicit integrin signaling. Lastly, endothelial cell expansion was achieved in serum-free conditions on gelatin-coated, RGD-TAMRA treated or micropatterned surfaces. These results show that these peptide micropatterns mainly impacted cell adhesion kinetics rather than cell proliferation. This insight will be useful for the optimization of micropatterning strategies to improve vascular biomaterials.

journal_name

Biomaterials

journal_title

Biomaterials

authors

Hoesli CA,Garnier A,Juneau PM,Chevallier P,Duchesne C,Laroche G

doi

10.1016/j.biomaterials.2013.09.076

subject

Has Abstract

pub_date

2014-01-01 00:00:00

pages

879-90

issue

3

eissn

0142-9612

issn

1878-5905

pii

S0142-9612(13)01176-9

journal_volume

35

pub_type

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