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Pregled bibliografske jedinice broj: 903941

High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization.


Andolfi, Laura; Murello, Anna; Cassese, Damiano; Ban, Jelena; Dal Zilio, Simone; Lazzarino, Marco
High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization. // Nanotechnology, 28 (2017), 15; 155102, 20 doi:10.1088/1361-6528/aa5f3a (međunarodna recenzija, članak, znanstveni)


CROSBI ID: 903941 Za ispravke kontaktirajte CROSBI podršku putem web obrasca

Naslov
High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization.

Autori
Andolfi, Laura ; Murello, Anna ; Cassese, Damiano ; Ban, Jelena ; Dal Zilio, Simone ; Lazzarino, Marco

Izvornik
Nanotechnology (0957-4484) 28 (2017), 15; 155102, 20

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
Silicon-nanowires ; mechanotransduction ; adhesion ; single cell force spectroscopy

Sažetak
Cell–cell and cell–matrix interactions are essential to the survival and proliferation of most cells, and are responsible for triggering a wide range of biochemical pathways. More recently, the biomechanical role of those interactions was highlighted, showing, for instance, that adhesion forces are essential for cytoskeleton organization. Silicon nanowires (Si NWs) with their small size, high aspect ratio and anisotropic mechanical response represent a useful model to investigate the forces involved in the adhesion processes and their role in cellular development. In this work we explored and quantified, by single cell force spectroscopy (SCFS), the interaction of mouse embryonic fibroblasts with a flexible forest of Si NWs. We observed that the cell adhesion forces are comparable to those found on collagen and bare glass coverslip, analogously the membrane tether extraction forces are similar to that on collagen but stronger than that on bare flat glass. Cell survival did not depend significantly on the substrate, although a reduced proliferation after 36 h was observed. On the contrary both cell morphology and cytoskeleton organization revealed striking differences. The cell morphology on Si-NW was characterized by a large number of filopodia and a significant decrease of the cell mobility. The cytoskeleton organization was characterized by the absence of actin fibers, which were instead dominant on collagen and flat glass support. Such findings suggest that the mechanical properties of disordered Si NWs, and in particular their strong asymmetry, play a major role in the adhesion, morphology and cytoskeleton organization processes. Indeed, while adhesion measurements by SCFS provide out-of-plane forces values consistent with those measured on conventional substrates, weaker in-plane forces hinder proper cytoskeleton organization and migration processes.

Izvorni jezik
Engleski

Znanstvena područja
Biologija, Interdisciplinarne prirodne znanosti, Interdisciplinarne biotehničke znanosti, Biotehnologija u biomedicini (prirodno područje, biomedicina i zdravstvo, biotehničko područje)



POVEZANOST RADA


Ustanove:
Sveučilište u Rijeci - Odjel za biotehnologiju

Profili:

Avatar Url Jelena Ban (autor)

Citiraj ovu publikaciju:

Andolfi, Laura; Murello, Anna; Cassese, Damiano; Ban, Jelena; Dal Zilio, Simone; Lazzarino, Marco
High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization. // Nanotechnology, 28 (2017), 15; 155102, 20 doi:10.1088/1361-6528/aa5f3a (međunarodna recenzija, članak, znanstveni)
Andolfi, L., Murello, A., Cassese, D., Ban, J., Dal Zilio, S. & Lazzarino, M. (2017) High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization.. Nanotechnology, 28 (15), 155102, 20 doi:10.1088/1361-6528/aa5f3a.
@article{article, author = {Andolfi, Laura and Murello, Anna and Cassese, Damiano and Ban, Jelena and Dal Zilio, Simone and Lazzarino, Marco}, year = {2017}, pages = {20}, DOI = {10.1088/1361-6528/aa5f3a}, chapter = {155102}, keywords = {Silicon-nanowires, mechanotransduction, adhesion, single cell force spectroscopy}, journal = {Nanotechnology}, doi = {10.1088/1361-6528/aa5f3a}, volume = {28}, number = {15}, issn = {0957-4484}, title = {High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization.}, keyword = {Silicon-nanowires, mechanotransduction, adhesion, single cell force spectroscopy}, chapternumber = {155102} }
@article{article, author = {Andolfi, Laura and Murello, Anna and Cassese, Damiano and Ban, Jelena and Dal Zilio, Simone and Lazzarino, Marco}, year = {2017}, pages = {20}, DOI = {10.1088/1361-6528/aa5f3a}, chapter = {155102}, keywords = {Silicon-nanowires, mechanotransduction, adhesion, single cell force spectroscopy}, journal = {Nanotechnology}, doi = {10.1088/1361-6528/aa5f3a}, volume = {28}, number = {15}, issn = {0957-4484}, title = {High aspect ratio silicon nanowires control fibroblast adhesion and cytoskeleton organization.}, keyword = {Silicon-nanowires, mechanotransduction, adhesion, single cell force spectroscopy}, chapternumber = {155102} }

Časopis indeksira:


  • Current Contents Connect (CCC)
  • Web of Science Core Collection (WoSCC)
    • Science Citation Index Expanded (SCI-EXP)
    • SCI-EXP, SSCI i/ili A&HCI
  • Scopus
  • MEDLINE


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