Poly(ester amides) (PEAs) - Scaffold for tissue engineering applications

被引:61
作者
Ghosal, Kajal [1 ,2 ]
Latha, Mahima Santhakumar [2 ]
Thomas, Sabu [2 ]
机构
[1] Dr BC Roy Coll Pharm & Allied Hlth Sci, Durgapur 713206, WB, India
[2] Mahatma Gandhi Univ, Ctr Nanosci & Nanotechnol, Kottayam 686560, Kerala, India
关键词
Organ transplantation; Tissue engineering; Scaffold; Poly(ester amide); Electrospinning; IN-VITRO; CELL TRANSPLANTATION; ACID; NANOFIBERS; FABRICATION; CHITOSAN; BIODEGRADATION; POLYMERS; DESIGN; STRATEGIES;
D O I
10.1016/j.eurpolymj.2014.08.006
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Implementation of comprehensive medical infrastructures throughout the world, especially in the highly populated developing nations, led to an ever increasing number of diagnostic incidents of all sorts including early detection of organ failures. Organ failures or malfunctioning often require full organ transplantations. However, the shortage of organs to meet the demand is the major obstacle in proper exploitation of the medical advancements. In this regard, tissue engineering aided cell transplantation has recently emerged as a promising alternative. Tissue engineering has the potential to regenerate any kind of tissue or organ in the body. For tissue regeneration, cells are seeded on a scaffold and are allowed to grow into a new specific tissue. Although it is possible to use metals, ceramics, or glasses for the fabrication of the scaffolds, polymers have attained considerable attention of the researchers. The reason behind this is the versatility of their properties which enables polymer based scaffolds to provide a platform for replacement, restoration, and regeneration of lost tissue structure and or function. Poly(ester amide) (PEA), a synthetic polymer, exhibits excellent thermal and mechanical properties along with biodegradability and biocompatibility which makes it a strong candidate for tissue engineering. In this article, a comprehensive review is presented on the recent developments of PEAS and PEA-based scaffolds for tissue engineering applications. Their methods of preparation, characterization, properties, and applications have been summarized. Other issues regarding the electrospinning for the fabrication of scaffolds are also discussed. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:58 / 68
页数:11
相关论文
共 100 条
[1]  
Agrawal CM, 2001, J BIOMED MATER RES, V55, P141, DOI 10.1002/1097-4636(200105)55:2<141::AID-JBM1000>3.3.CO
[2]  
2-A
[3]   Thermo-mechanical behavior of electrospun thermoplastic polyurethane nanofibers [J].
Alhazov, Dmitriy ;
Gradys, Arkadiusz ;
Sajkiewicz, Pawel ;
Arinstein, Arkadii ;
Zussman, Eyal .
EUROPEAN POLYMER JOURNAL, 2013, 49 (12) :3851-3856
[4]   Controlled assembly of superparamagnetic iron oxide nanoparticles on electrospun PU nanofibrous membrane: A novel heat-generating substrate for magnetic hyperthermia application [J].
Amarjargal, Altangerel ;
Tijing, Leonard D. ;
Park, Chan-Hee ;
Im, Ik-Tae ;
Kim, Cheol Sang .
EUROPEAN POLYMER JOURNAL, 2013, 49 (12) :3796-3805
[5]  
[Anonymous], 1990, ANN REPORT
[6]   Engineering tissues, organs and cells [J].
Atala, Anthony .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2007, 1 (02) :83-96
[7]   Strategies to improve chitosan hemocompatibility: A review [J].
Balan, Vera ;
Verestiuc, Liliana .
EUROPEAN POLYMER JOURNAL, 2014, 53 :171-188
[8]  
Bastioli C., 2005, Handbook of biodegradable polymers
[9]   LIVING TISSUE FORMED INVITRO AND ACCEPTED AS SKIN-EQUIVALENT TISSUE OF FULL THICKNESS [J].
BELL, E ;
EHRLICH, HP ;
BUTTLE, DJ ;
NAKATSUJI, T .
SCIENCE, 1981, 211 (4486) :1052-1054
[10]   Solution blow spun poly(lactic acid)/hydroxypropyl methylcellulose nanofibers with antimicrobial properties [J].
Bilbao-Sainz, Cristina ;
Chiou, Bor-Sen ;
Valenzuela-Medina, Diana ;
Du, Wen-Xian ;
Gregorski, Kay S. ;
Williams, Tina G. ;
Wood, Delilah F. ;
Glenn, Greg M. ;
Orts, William J. .
EUROPEAN POLYMER JOURNAL, 2014, 54 :1-10