Hoppa till innehåll

Fibronectin-uppveckning omprövad: modellering av celltraktionsmedierad uppveckning av den tionde typ-III-repetitionen

Elaine P S Gee, Donald E Ingber, Collin M Stultz
Nyckelinsikter
  1. 01Datormodellering simulerade cellers kraft på fibronectin
  2. 02Att dra vid cellens fästpunkt är mer energieffektivt
  3. 03Specifik utveckling exponerar ytor för matris-uppbyggnad
  4. 04Processen kan hjälpa celler att släppa taget och fortsätta bygga

Datormodeller tyder på att cellers dragkraft effektivt vecklar ut fibronectin på ett sätt som främjar uppbyggnaden av den extracellulära matrisen.

Abstract

Fibronectin polymerization is essential for the development and repair of the extracellular matrix. Consequently, deciphering the mechanism of fibronectin fibril formation is of immense interest. Fibronectin fibrillogenesis is driven by cell-traction forces that mechanically unfold particular modules within fibronectin. Previously, mechanical unfolding of fibronectin has been modeled by applying tensile forces at the N- and C-termini of fibronectin domains; however, physiological loading is likely focused on the solvent-exposed RGD loop in the 10th type-III repeat of fibronectin (10FNIII), which mediates binding to cell-surface integrin receptors. In this work we used steered molecular dynamics to study the mechanical unfolding of 10FNIII under tensile force applied at this RGD site. We demonstrate that mechanically unfolding 10FNIII by pulling at the RGD site requires less work than unfolding by pulling at the N- and C- termini. Moreover, pulling at the N- and C-termini leads to 10FNIII unfolding along several pathways while pulling on the RGD site leads to a single exclusive unfolding pathway that includes a partially unfolded intermediate with exposed hydrophobic N-terminal β-strands – residues that may facilitate fibronectin self-association. Additional mechanical unfolding triggers an essential arginine residue, which is required for high affinity binding to integrins, to move to a position far from the integrin binding site. This cell traction-induced conformational change may promote cell detachment after important partially unfolded kinetic intermediates are formed. These data suggest a novel mechanism that explains how cell-mediated forces promote fibronectin fibrillogenesis and how cell surface integrins detach from newly forming fibrils. This process enables cells to bind and unfold additional fibronectin modules – a method that propagates matrix assembly.

Citera denna studie
APA
Elaine P S Gee, Donald E Ingber, & Collin M Stultz (2008). Fibronectin-uppveckning omprövad: modellering av celltraktionsmedierad uppveckning av den tionde typ-III-repetitionen. https://fasciaresearchdatabase.com/fibronectin-unfolding-revisited-modeling-cell-traction-mediated-unfolding-of-the-tenth-type-iii-repeat/
MLA
Elaine P S Gee, et al. "Fibronectin-uppveckning omprövad: modellering av celltraktionsmedierad uppveckning av den tionde typ-III-repetitionen." 2008, https://fasciaresearchdatabase.com/fibronectin-unfolding-revisited-modeling-cell-traction-mediated-unfolding-of-the-tenth-type-iii-repeat/.
Chicago
Elaine P S Gee, Donald E Ingber, Collin M Stultz. 2008. "Fibronectin-uppveckning omprövad: modellering av celltraktionsmedierad uppveckning av den tionde typ-III-repetitionen.". https://fasciaresearchdatabase.com/fibronectin-unfolding-revisited-modeling-cell-traction-mediated-unfolding-of-the-tenth-type-iii-repeat/