Literature DB >> 21373812

Optimizing PANi doped electroactive substrates as patches for the regeneration of cardiac muscle.

A Borriello1, V Guarino, L Schiavo, M A Alvarez-Perez, L Ambrosio.   

Abstract

In scaffold aided regeneration of muscular tissue, composite materials are currently utilized as a temporary substrate to stimulate tissue formation by controlled electrochemical signals as well as continuous mechanical stimulation until the regeneration processes are completed. Among them, composites from the blending of conductive (CPs) and biocompatible polymers are powerfully emerging as a successful strategy for the regeneration of myocardium due to their unique conductive and biological recognition properties able to assure a more efficient electroactive stimulation of cells. Here, different composite substrates made of synthesized polyaniline (sPANi) and polycaprolactone (PCL) were investigated as platforms for cardiac tissue regeneration. Preliminary, a comparative analysis of substrates conductivity performed on casted films endowed with synthesized polyaniline (sPANi) short fibres or blended with emeraldine base polyaniline (EBPANi) allows to study the attitude of charge transport, depending on the conducting filler amount, shape and spatial distribution. In particular, conducibility tests indicated that sPANi short fibres provide a more efficient transfer of electric signal due to the spatial organization of electroactive needle-like phases up to form a percolative network. On the basis of this characterization, sPANi/PCL electrospun membranes have been also optimized to mimic either the morphological and functional features of the cardiac muscle ECM. The presence of sPANi does not relevantly affect the fibre architecture as confirmed by SEM/image analysis investigation which shows a broader distribution of fibres with only a slight reduction of the average fibre diameter from 7.1 to 6.4 μm. Meanwhile, biological assays--evaluation of cell survival rate by MTT assay and immunostaining of sarcomeric α-actinin of cardiomyocites-like cells--clearly indicate that conductive signals offered by PANi needles, promote the cardiogenic differentiation of hMSC into cardiomyocite-like cells. These preliminary results concur to promise the development of electroactive biodegradable substrates able to efficiently stimulate the basic cell mechanisms, paving the way towards a new generation of synthetic patches for the support of the regeneration of damaged myocardium.

Entities:  

Mesh:

Substances:

Year:  2011        PMID: 21373812     DOI: 10.1007/s10856-011-4259-x

Source DB:  PubMed          Journal:  J Mater Sci Mater Med        ISSN: 0957-4530            Impact factor:   3.896


  27 in total

1.  Erodible conducting polymers for potential biomedical applications.

Authors:  Alexander N Zelikin; David M Lynn; Jian Farhadi; Ivan Martin; Venkatram Shastri; Robert Langer
Journal:  Angew Chem Int Ed Engl       Date:  2002-01-04       Impact factor: 15.336

2.  Nanofiber formation in the chemical polymerization of aniline: a mechanistic study.

Authors:  Jiaxing Huang; Richard B Kaner
Journal:  Angew Chem Int Ed Engl       Date:  2004-11-05       Impact factor: 15.336

Review 3.  Stem cells as a source of regenerative cardiomyocytes.

Authors:  Keiichi Fukuda; Shinsuke Yuasa
Journal:  Circ Res       Date:  2006-04-28       Impact factor: 17.367

4.  Electrochemically controlled release of dexamethasone from conducting polymer polypyrrole coated electrode.

Authors:  Reecha Wadhwa; Carl F Lagenaur; Xinyan Tracy Cui
Journal:  J Control Release       Date:  2005-12-19       Impact factor: 9.776

5.  Polyaniline, an electroactive polymer, supports adhesion and proliferation of cardiac myoblasts.

Authors:  Paul R Bidez; Shuxi Li; Alan G Macdiarmid; Everaldo C Venancio; Yen Wei; Peter I Lelkes
Journal:  J Biomater Sci Polym Ed       Date:  2006       Impact factor: 3.517

6.  Electrospun polydioxanone-elastin blends: potential for bioresorbable vascular grafts.

Authors:  S A Sell; M J McClure; C P Barnes; D C Knapp; B H Walpoth; D G Simpson; G L Bowlin
Journal:  Biomed Mater       Date:  2006-05-04       Impact factor: 3.715

7.  Conducting-Polymer Nanotubes for Controlled Drug Release.

Authors:  Mohammad Reza Abidian; Dong-Hwan Kim; David C Martin
Journal:  Adv Mater       Date:  2006-02-17       Impact factor: 30.849

8.  Synthesis and characterization of electroactive and biodegradable ABA block copolymer of polylactide and aniline pentamer.

Authors:  Lihong Huang; Jun Hu; Le Lang; Xin Wang; Peibiao Zhang; Xiabin Jing; Xianhong Wang; Xuesi Chen; Peter I Lelkes; Alan G Macdiarmid; Yen Wei
Journal:  Biomaterials       Date:  2007-01-10       Impact factor: 12.479

9.  Biocompatibility of electroactive polymers in tissues.

Authors:  S Kamalesh; P Tan; J Wang; T Lee; E T Kang; C H Wang
Journal:  J Biomed Mater Res       Date:  2000-12-05

10.  Cardiomyocytes can be generated from marrow stromal cells in vitro.

Authors:  S Makino; K Fukuda; S Miyoshi; F Konishi; H Kodama; J Pan; M Sano; T Takahashi; S Hori; H Abe; J Hata; A Umezawa; S Ogawa
Journal:  J Clin Invest       Date:  1999-03       Impact factor: 14.808

View more
  24 in total

1.  Peripheral Nerve Regeneration Strategies: Electrically Stimulating Polymer Based Nerve Growth Conduits.

Authors:  Matthew Anderson; Namdev B Shelke; Ohan S Manoukian; Xiaojun Yu; Louise D McCullough; Sangamesh G Kumbar
Journal:  Crit Rev Biomed Eng       Date:  2015

2.  Conductive Silk-Polypyrrole Composite Scaffolds with Bioinspired Nanotopographic Cues for Cardiac Tissue Engineering.

Authors:  Jonathan H Tsui; Nicholas A Ostrovsky-Snider; David M P Yama; Jordan D Donohue; Jong Seob Choi; Rakchanok Chavanachat; Jesse D Larson; Amanda R Murphy; Deok-Ho Kim
Journal:  J Mater Chem B       Date:  2018-06-18       Impact factor: 6.331

Review 3.  Current research trends and challenges in tissue engineering for mending broken hearts.

Authors:  Muhammad Qasim; Pala Arunkumar; Heather M Powell; Mahmood Khan
Journal:  Life Sci       Date:  2019-05-17       Impact factor: 5.037

4.  Electroactive polymers for tissue regeneration: Developments and perspectives.

Authors:  Chengyun Ning; Zhengnan Zhou; Guoxin Tan; Ye Zhu; Chuanbin Mao
Journal:  Prog Polym Sci       Date:  2018-05-07       Impact factor: 29.190

Review 5.  Stem Cell Differentiation into Cardiomyocytes: Current Methods and Emerging Approaches.

Authors:  Elham Afjeh-Dana; Parvaneh Naserzadeh; Elham Moradi; Nasrin Hosseini; Alexander Marcus Seifalian; Behnaz Ashtari
Journal:  Stem Cell Rev Rep       Date:  2022-05-04       Impact factor: 5.739

Review 6.  Electroconductive biomaterials for cardiac tissue engineering.

Authors:  Hamid Esmaeili; Alejandra Patino-Guerrero; Masoud Hasany; Mohammad Omaish Ansari; Adnan Memic; Alireza Dolatshahi-Pirouz; Mehdi Nikkhah
Journal:  Acta Biomater       Date:  2021-08-27       Impact factor: 8.947

7.  Poly(ε-caprolactone) scaffolds of highly controlled porosity and interconnectivity derived from co-continuous polymer blends: model bead and cell infiltration behavior.

Authors:  Nima Ghavidel Mehr; Xian Li; Marianne B Ariganello; Caroline D Hoemann; Basil D Favis
Journal:  J Mater Sci Mater Med       Date:  2014-06-25       Impact factor: 3.896

Review 8.  Current advances in biodegradable synthetic polymer based cardiac patches.

Authors:  Sara McMahan; Alan Taylor; Katherine M Copeland; Zui Pan; Jun Liao; Yi Hong
Journal:  J Biomed Mater Res A       Date:  2020-01-12       Impact factor: 4.396

9.  Synthesis and Characterization of Anionic Poly(cyclopentadienylene vinylene) and Its Use in Conductive Hydrogels.

Authors:  Daniel C Lee; Drew L Sellers; Fan Liu; Andrew J Boydston; Suzie H Pun
Journal:  Angew Chem Int Ed Engl       Date:  2020-06-03       Impact factor: 15.336

10.  Direct-write, highly aligned chitosan-poly(ethylene oxide) nanofiber patterns for cell morphology and spreading control.

Authors:  Yiin Kuen Fuh; Sheng Zhan Chen; Zhe Yu He
Journal:  Nanoscale Res Lett       Date:  2013-02-22       Impact factor: 4.703

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.