Published September 1, 2018 | Version v1
Journal article

Electrospun fiber surface nanotopography influences astrocyte-mediated neurite outgrowth

  • 1. Department of Biomedical Engineering, Rensselaer Polytechnic Institute, 110 8th Street, Troy, NY, 12180-3590 (United States)

Description

Aligned, electrospun fiber scaffolds provide topographical guidance for regenerating neurons and glia after central nervous system injury. To date, no study has explored how fiber surface nanotopography affects astrocyte response to fibrous scaffolds. Astrocytes play important roles in the glial scar, the blood brain barrier, and in maintaining homeostasis in the central nervous system. In this study, electrospun poly L-lactic acid fibers were engineered with smooth, pitted, or divoted surface nanotopography. Cortical or spinal cord primary rat astrocytes were cultured on the surfaces for either 1 or 3 d to examine the astrocyte response over time. The results showed that cortical astrocytes were significantly shorter and broader on the pitted and divoted fibers compared to those on smooth fibers. However, spinal cord astrocyte morphology was not significantly altered by the surface features. These findings indicate that astrocytes from unique anatomical locations respond differently to the presence of nanotopography. Western blot results show that the differences in morphology were not associated with significant changes in glial fibrillary acidicprotein (GFAP) or vinculin in either astrocyte population, suggesting that surface pits and divots do not induce a reactive phenotype in either cortical or spinal cord astrocytes. Finally, astrocytes were co-cultured with dorsal root ganglia to determine how the surfaces affected astrocyte-mediated neurite outgrowth. Astrocytes cultured on the fibers for shorter periods of time (1 d) generally supported longer neurite outgrowth. Pitted and divoted fibers restricted spinal cord astrocyte-mediated neurite outgrowth, while smooth fibers increased 3 d spinal cord astrocyte-mediated neurite outgrowth. In total, fiber surface nanotopography can influence astrocyte elongation and influence the capability of astrocytes to direct neurites. Therefore, fiber surface characteristics should be carefully controlled to optimize astrocyte-mediated axonal regeneration. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1748-605X/aac4de

Additional details

Identifiers

Publishing Information

Journal Title
Biomedical Materials (Bristol. Online)
Journal Volume
13
Journal Issue
5
Journal Page Range
[20 p.]
ISSN
1748-605X

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51058917
Subject category
S60: APPLIED LIFE SCIENCES;
Descriptors DEI
BLOOD-BRAIN BARRIER; ELONGATION; HOMEOSTASIS; INJURIES; LACTIC ACID; NERVE CELLS; PHENOTYPE; RATS; SPINAL CORD; SURFACES
Descriptors DEC
ANIMAL CELLS; ANIMALS; CARBOXYLIC ACIDS; CENTRAL NERVOUS SYSTEM; DEFORMATION; DISEASES; HYDROXY ACIDS; MAMMALS; NERVOUS SYSTEM; ORGANIC ACIDS; ORGANIC COMPOUNDS; RODENTS; SOMATIC CELLS; VERTEBRATES