iCVD Polymer Thin Film Bio‐Interface‐Performance for Fibroblasts, Cancer‐Cells, and Viruses Connected to Their Functional Groups and In Silico Studies

Author:

Hartig Torge1,Mohamed Asmaa T.2,Fattah Nasra F. Abdel3,Gülses Aydin4,Tjardts Tim1,Kangah Esther Afiba4,Chan Kwing Pak Gabriel1,Veziroglu Salih15,Acil Yahya4,Aktas Oral Cenk15,Wiltfang Jörg4,Loutfy Samah A23,Strunskus Thomas15,Faupel Franz15,Amin Amal6,Schröder Stefan15ORCID

Affiliation:

1. Chair for Multicomponent Materials Department of Materials Science Kiel University 24143 Kiel Germany

2. Nanotechnology Research Centre (NTRC) The British University in Egypt (BUE) El‐Sherouk City Cairo 11837 Egypt

3. Virology and Immunology Unit Cancer Biology Department National Cancer Institute Cairo University Fom El‐Khalig Cairo 11796 Egypt

4. Department of Oral and Maxillofacial Surgery Campus Kiel University Hospital of Schleswig‐Holstein 24105 Kiel Germany

5. Kiel Nano Surface and Interface Science KiNSIS Kiel University 24118 Kiel Germany

6. Polymers and Pigments Department Chemical Industries Research Institute National Research Centre Giza 12622 Egypt

Abstract

AbstractThin polymer coatings are used to improve the interface between biological species and functional materials. Their interaction is significantly influenced by the functional groups and roughness of the polymer film and prediction of the interaction is thus of great interest. However, for conventional polymer films, this cannot be examined independently because of the interplay of defects, residual solvent molecules, roughness, and functional groups. Solvent‐free polymer films prepared by initiated chemical vapor deposition (iCVD) exhibit conformal, defect‐free characteristics and enable precise tailoring of the functional groups. This facilitates to isolate the contribution of functional groups on the bio‐interface performance. Consequently, in silico studies can enable a prediction of ligand interaction in anti‐viral activity for SARS‐CoV‐2 based on defined polymer and key protein structures. Furthermore, the cell viability of human fibroblasts can be traced back to the functional groups of the repeating units. For human liver cancer cell culture, it turns out that more sophisticated models are needed. The insilico‐iCVD approach can enable precise tailoring of complex polymer films optimized for the respective interfaces. In addition, this first big scan of the bio‐interface performance of iCVD films enables a solid starting point in areas like anticancer, antiviral, and biocompatibility for future studies.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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