Szczegóły publikacji

Opis bibliograficzny

Modulating cell adhesion and infiltration in advanced scaffold designs based on PLLA fibers with rGO and MXene ($Ti_{3}C_{2}T_{x}$) / Martyna POLAK, Krzysztof BERNIAK, Piotr K. SZEWCZYK, Joanna KNAPCZYK-KORCZAK, Mateusz M. MARZEC, Muhammad Abiyyu Kenichi Purbayanto, Agnieszka M. Jastrzębska, Urszula STACHEWICZ // Materials Today Bio [Dokument elektroniczny]. — Czasopismo elektroniczne ; ISSN 2590-0064. — 2025 — vol. 32 art.no. 101785, s. 1–17. — Wymagania systemowe: Adobe Reader. — Bibliogr. s. 15–17, Abstr. — Publikacja dostępna online od: 2025-04-21

Autorzy (8)

Słowa kluczowe

rGOcluster analysissurface chargeMXenesosteoblast infiltrationfocal adhesionPLLA

Dane bibliometryczne

ID BaDAP159877
Data dodania do BaDAP2025-06-18
Tekst źródłowyURL
DOI10.1016/j.mtbio.2025.101785
Rok publikacji2025
Typ publikacjiartykuł w czasopiśmie
Otwarty dostęptak
Creative Commons
Czasopismo/seriaMaterials Today Bio

Abstract

The development of electrospun scaffolds that support cell adhesion and infiltration remains a critical challenge in tissue engineering. In this study, we investigate the influence of two-dimensional (2D) fillers—reduced graphene oxide (rGO) and MXene (Ti3C2Tx)—incorporated into poly(L-lactic acid) (PLLA) electrospun fibers on their properties and osteoblast responses. The presence of fillers modified fiber arrangement and created varying inter-fiber spacing due to surface charge repulsion and agglomeration. Importantly, surface potential measurements via Kelvin probe force microscopy (KPFM) of PLLA fibers show a significant shift caused by the incorporation of Ti3C2Tx to ∼400 mV compared to ∼50 mV for rGO. In vitro tests indicate that rGO-modified scaffolds support osteoblast infiltration up to ∼100 μm, unlike PLLA fibers, which limit cell infiltration to a maximum of ∼70 μm. However, Ti3C2Tx promotes even deeper (∼120 μm) and more uniform cell's infiltration due to changes in scaffold architecture. High-resolution confocal imaging confirmed that PLLA-Ti3C2Tx fosters larger, elongated adhesion site clusters of cells, whereas rGO increases cell's adhesion site density in relation to PLLA scaffolds without any filler. Our findings highlight the distinct roles of rGO and Ti3C2Tx in modulating scaffold geometry, mechanical behavior, and cellular interactions. Tailoring the composition and distribution of conductive fillers in fibers offers a promising strategy for optimizing scaffold performance in tissue engineering applications.

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#154501Data dodania: 17.7.2024
Effect of rGO and MXenes incorporated in electrospun PLLA fibers on their properties and cell behaviour / Martyna POLAK, Piotr K. SZEWCZYK, Krzysztof BERNIAK, Mateusz M. MARZEC, Agnieszka M. Jastrzębska, Urszula STACHEWICZ // W: ELECTROSPIN2024 [Dokument elektroniczny] : 8th international conference on Electrospinning : 25-28th June 2024, Kraków, Poland : book of abstracts. — Wersja do Windows. — Dane tekstowe. — [Krakow : AGH University of Krakow], [2024]. — S. 206. — Wymagania systemowe: Adobe Reader. — Tryb dostępu: https://s.agh.edu.pl/WR87J [2024-07-16]. — Bibliogr. s. 206
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#159905Data dodania: 17.6.2025
Impact of rGO and MXene integrated in the electrospun scaffolds on cell focal adhesion points / Martyna POLAK, Krzysztof BERNIAK, Piotr K. SZEWCZYK, Joanna KNAPCZYK-KORCZAK, Mateusz M. MARZEC, Agnieszka M. Jastrzębska, Urszula STACHEWICZ // W: ESEE2025 [Dokument elektroniczny] : 8th European symposium on electrohydrodynamic atomization and electrospinning : 28 – 30 April, 2025, Nicosia, Cyprus : book of abstracts. — Wersja do Windows. — Dane tekstowe. — [Nicosia : University of Cyprus], [2025]. — S. [48]. — Wymagania systemowe: Adobe Reader. — Tryb dostępu: https://cyprusconferences.org/esee2025/ [2025-05-15]. — Bibliogr. s. [48]. — Dostęp po zalogowaniu