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Wake Forest University

The Mechanical Properties of Individual Electrospun Fibers and Fibrin Fibers

Abstract

dc:description.abstract

Nanofibers play important mechanical roles in the body. Collagen, the most abundant protein in humans, forms fibers which comprise part of the extracellular matrix and tissues such as bone, cartilage and blood vessels, to name a few. Fibrinogen, a plasma protein, is converted into fibrin fibers which form the mechanical and structural support for blood clots. Biomimetic nanofibers can be synthesized outside of the body through the process of electrospinning. The mechanical properties of electrospun collagen and fibrinogen fibers are important because of their potential for tissue engineering, due to their biocompatibility. We studied the mechanical properties of individual electrospun collagen and fibrinogen fibers using a combined atomic force microscopy and optical microscopy technique. Using the same technique we also studied the mechanical properties of individual fibrin fibers, as the mechanical properties of blood clots have been shown to be related to diseases and disorders yet the mechanisms responsible for their mechanical properties are relatively unknown. Electrospun type I collagen and electrospun fibrinogen fibers both showed viscoelastic properties. The extensibility of electrospun fibrinogen in buffer is 130% and its average modulus is 10 MPa. Electrospun collagen in ambient conditions has an extensibility of 33% and a bending modulus of 7.5 GPa. Both fibers show strain softening, however, collagen shows extreme strain softening and therefore only a bending modulus is given. Native crosslinked fibrin fibers have similar properties to electrospun fibrinogen fibers. Crosslinked fibers have an extensibility of 130% and a modulus of 14 MPa. Uncrosslinked fibers are more extensible at 226% strain and softer with a modulus of 4 MPa. Crosslinked fibers rupture more often than crosslinked joints while uncrosslinked fibers rupture less often than uncrosslinked joints. Fibrin fibers with only alpha crosslinks are as extensible as uncrosslinked fibrin fibers but have a modulus in between crosslinked and uncrosslinked fibrin, of 10 MPa. Alpha crosslinked fibrin fibers have a larger elastic limit, 95% strain, than both uncrosslinked and crosslinked. Lastly, individual fibrin fibers from plasma samples were studied. Fibers from patients with type 2 diabetes show no difference in modulus or extensibility when compared with control patient samples.

Degree

thesis:*
Grantor dc:publisher
Wake Forest University
Year dc:date.issued
2010

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Carlisle, Christine

Subjects

dc:subject × 1

Rights

Language dc:language.iso
en_US

Identifiers

dc:identifier.*
Handle dc:identifier.uri
http://hdl.handle.net/10339/14928
OAI identifier oai:identifier
oai:wakespace.lib.wfu.edu:10339/14928

Chain of custody

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Wake Forest University
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Last updated
2026-07-27
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citation

Carlisle, Christine. The Mechanical Properties of Individual Electrospun Fibers and Fibrin Fibers. Wake Forest University, 2010. http://hdl.handle.net/10339/14928