Diazonium chemistry surface treatment of piezoelectric polyhydroxybutyrate scaffolds for enhanced osteoblastic cell growth; Applied Materials Today; Vol. 20

Bibliografiset tiedot
Parent link:Applied Materials Today
Vol. 20.— 2020.— [100758, 10 р.]
Yhteisötekijät: Национальный исследовательский Томский политехнический университет Исследовательская школа химических и биомедицинских технологий, Национальный исследовательский Томский политехнический университет Исследовательская школа химических и биомедицинских технологий Научно-исследовательский центр "Физическое материаловедение и композитные материалы"
Muut tekijät: Chernozem R. V. Roman Viktorovich, Guselnikova O. A. Olga Andreevna, Surmeneva M. A. Maria Alexandrovna, Postnikov P. S. Pavel Sergeevich, Abalymov A. A. Anatoly Anatoljevich, Parakkhonsky B. V. Bogdan Vladislavovich, De Roo N. Nico, Depla D., Skirtach A. G. Andrey Gennadjevich, Surmenev R. A. Roman Anatolievich
Yhteenveto:Title screen
Biodegradable piezoelectric 3D polymer scaffolds attract great attention due to possibilities to mimic the functional and mechanical properties of the extracellular matrix, avoiding secondary surgery, and electrically stimulated tissue repair. However, the preservation of piezoelectric response and improvement of wettability of hydrophobic fibrous polymer scaffolds, limiting their application in tissue engineering and regenerative medicine, is a challenge. Here, a facile and mild approach is presented to improve wettability and cell spreading on the surface of piezoelectric polyhydroxybutyrate (PHB) and non-piezoelectric polycaprolactone (PCL) scaffolds. The surface of electrospun 3D fibrous scaffolds was modified by 3,4-dicarboxybenzenediazonium tosylate (ADT-(COOH)2) via photo-induced formation of aryl radicals under ultraviolet irradiation. According to scanning electron microscopy and x-ray diffraction analyses, the intrinsic structure of 3D scaffolds remains unaffected after the treatment. Meanwhile, the attachment of hydrophilic 3,4-dicaboxyphenyl groups to the surface led to an apparent decrease of the water contact angle from 127±4° to 82±1° for PCL and from 126±4° to 78±2° for PHB, i.e. resulting in the change of the scaffold's wettability from hydrophobic to hydrophilic. Furthermore, no aging of the improved wetting was observed for 21 days. The diazonium modification allows to preserve a pronounced piezoelectric response, since PHB scaffolds demonstrate a slightly reduced effective d33 from 2.5 ± 0.3 pC•N?1 to 2.1 ± 0.4 pC•N?1 and surface electric potential from 510±56 mV to 458±25 mV after surface treatment. At the same time, after C6H3-(COOH)2 grafting, osteoblastic cells were well-spread along the PCL and PHB fibrous scaffolds. Moreover, after 7 days of incubation, the cell density is increased on the surface of ADT-(COOH)2-treated fibers in comparison to that on pristine ones, while cells formed a distinct osteoblastic network.
Режим доступа: по договору с организацией-держателем ресурса
Kieli:englanti
Julkaistu: 2020
Aiheet:
Linkit:https://doi.org/10.1016/j.apmt.2020.100758
Aineistotyyppi: MixedMaterials Elektroninen Kirjan osa
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=663027

MARC

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200 1 |a Diazonium chemistry surface treatment of piezoelectric polyhydroxybutyrate scaffolds for enhanced osteoblastic cell growth  |f R. V. Chernozem, O. A. Guselnikova, M. A. Surmeneva [et al.] 
203 |a Text  |c electronic 
300 |a Title screen 
320 |a [References: 57 tit.] 
330 |a Biodegradable piezoelectric 3D polymer scaffolds attract great attention due to possibilities to mimic the functional and mechanical properties of the extracellular matrix, avoiding secondary surgery, and electrically stimulated tissue repair. However, the preservation of piezoelectric response and improvement of wettability of hydrophobic fibrous polymer scaffolds, limiting their application in tissue engineering and regenerative medicine, is a challenge. Here, a facile and mild approach is presented to improve wettability and cell spreading on the surface of piezoelectric polyhydroxybutyrate (PHB) and non-piezoelectric polycaprolactone (PCL) scaffolds. The surface of electrospun 3D fibrous scaffolds was modified by 3,4-dicarboxybenzenediazonium tosylate (ADT-(COOH)2) via photo-induced formation of aryl radicals under ultraviolet irradiation. According to scanning electron microscopy and x-ray diffraction analyses, the intrinsic structure of 3D scaffolds remains unaffected after the treatment. Meanwhile, the attachment of hydrophilic 3,4-dicaboxyphenyl groups to the surface led to an apparent decrease of the water contact angle from 127±4° to 82±1° for PCL and from 126±4° to 78±2° for PHB, i.e. resulting in the change of the scaffold's wettability from hydrophobic to hydrophilic. Furthermore, no aging of the improved wetting was observed for 21 days. The diazonium modification allows to preserve a pronounced piezoelectric response, since PHB scaffolds demonstrate a slightly reduced effective d33 from 2.5 ± 0.3 pC•N?1 to 2.1 ± 0.4 pC•N?1 and surface electric potential from 510±56 mV to 458±25 mV after surface treatment. At the same time, after C6H3-(COOH)2 grafting, osteoblastic cells were well-spread along the PCL and PHB fibrous scaffolds. Moreover, after 7 days of incubation, the cell density is increased on the surface of ADT-(COOH)2-treated fibers in comparison to that on pristine ones, while cells formed a distinct osteoblastic network. 
333 |a Режим доступа: по договору с организацией-держателем ресурса 
461 |t Applied Materials Today 
463 |t Vol. 20  |v [100758, 10 р.]  |d 2020 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a scaffold 
610 1 |a piezoelectricity 
610 1 |a diazonium surface chemistry 
610 1 |a bone tissue engineering 
610 1 |a electrospinning 
701 1 |a Chernozem  |b R. V.  |c physicist  |c Associate Professor of Tomsk Polytechnic University  |f 1992-  |g Roman Viktorovich  |3 (RuTPU)RU\TPU\pers\36450  |9 19499 
701 1 |a Guselnikova  |b O. A.  |c chemist  |c Researcher at Tomsk Polytechnic University, Candidate of Chemical Sciences  |f 1992-  |g Olga Andreevna  |3 (RuTPU)RU\TPU\pers\34478  |9 17861 
701 1 |a Surmeneva  |b M. A.  |c specialist in the field of material science  |c engineer-researcher of Tomsk Polytechnic University, Associate Scientist  |f 1984-  |g Maria Alexandrovna  |3 (RuTPU)RU\TPU\pers\31894  |9 15966 
701 1 |a Postnikov  |b P. S.  |c organic chemist  |c Associate Professor of Tomsk Polytechnic University, Candidate of chemical sciences  |f 1984-  |g Pavel Sergeevich  |3 (RuTPU)RU\TPU\pers\31287  |9 15465 
701 1 |a Abalymov  |b A. A.  |g Anatoly Anatoljevich 
701 1 |a Parakkhonsky  |b B. V.  |g Bogdan Vladislavovich 
701 1 |a De Roo  |b N.  |g Nico 
701 1 |a Depla  |b D. 
701 1 |a Skirtach  |b A. G.  |g Andrey Gennadjevich 
701 1 |a Surmenev  |b R. A.  |c physicist  |c Associate Professor of Tomsk Polytechnic University, Senior researcher, Candidate of physical and mathematical sciences  |f 1982-  |g Roman Anatolievich  |3 (RuTPU)RU\TPU\pers\31885  |9 15957 
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