Biomedical applications of three-dimensional bioprinted craniofacial tissue engineering

被引:31
作者
Charbe, Nitin Bharat [1 ]
Tambuwala, Murtaza [2 ]
Palakurthi, Sushesh Srivatsa [1 ]
Warokar, Amol [3 ]
HronniC-JahjefendiC, Altijana [4 ]
Bakshi, Hamid [2 ]
Zacconi, Flavia [5 ,6 ,7 ,8 ]
Mishra, Vijay [9 ]
Khadse, Saurabh [10 ]
Aljabali, Alaa A. [11 ]
El-Tanani, Mohamed [12 ]
Serrano-Aroca, Angel [13 ]
Palakurthi, Srinath [1 ]
机构
[1] Texas A&M Hlth Sci Ctr, Irma Lerma Rangel Coll Pharm, 1010 West Ave B,MSC 131, Kingsville, TX 78363 USA
[2] Ulster Univ, Sch Pharm & Pharmaceut Sci, Coleraine BT52 1SA, Londonderry, North Ireland
[3] Dadasaheb Balpande Coll Pharm, Dept Pharm, Nagpur, Maharashtra, India
[4] Int Univ Sarajevo, Fac Engn & Nat Sci, Dept Genet & Bioengn, Sarajevo, Bosnia & Herceg
[5] Pontificia Univ Catolica Chile, Fac Quim & Farm, Dept Quim Organ, Santiago, Chile
[6] Pontificia Univ Catolica Chile, Sch Engn, Inst Biol & Med Engn, Santiago, Chile
[7] Pontificia Univ Catolica Chile, Sch Med, Inst Biol & Med Engn, Santiago, Chile
[8] Pontificia Univ Catolica Chile, Sch Biol Sci, Inst Biol & Med Engn, Santiago, Chile
[9] Lovely Profess Univ, Sch Pharmaceut Sci, Phagwara, India
[10] RC Patel Inst Pharmaceut Educ & Res, Dept Pharmaceut Chem, Dhule, India
[11] Yarmouk Univ, Fac Pharm, Dept Pharmaceut Sci, Irbid, Jordan
[12] Al Ahliyya Amman Univ, Fac Pharm, Pharmacol & Diagnost Res Ctr, Amman, Jordan
[13] Catholic Univ Valencia San Vicente Martir, Translat Res Ctr San Alberto Magno, Biomat & Bioengn Lab, Valencia, Spain
关键词
3D bioprinting; bioengineering; biomaterials; craniofacial tissue complex; soft tissues; MESENCHYMAL STEM-CELLS; MUSCLE SATELLITE CELLS; FREE-FORM FABRICATION; SKELETAL-MUSCLE; EXTRACELLULAR-MATRIX; BONE REPAIR; IN-VITRO; GROWTH-FACTOR; CALCIUM-PHOSPHATE; STROMAL CELLS;
D O I
10.1002/btm2.10333
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Anatomical complications of the craniofacial regions often present considerable challenges to the surgical repair or replacement of the damaged tissues. Surgical repair has its own set of limitations, including scarcity of the donor tissues, immune rejection, use of immune suppressors followed by the surgery, and restriction in restoring the natural aesthetic appeal. Rapid advancement in the field of biomaterials, cell biology, and engineering has helped scientists to create cellularized skeletal muscle-like structures. However, the existing method still has limitations in building large, highly vascular tissue with clinical application. With the advance in the three-dimensional (3D) bioprinting technique, scientists and clinicians now can produce the functional implants of skeletal muscles and bones that are more patient-specific with the perfect match to the architecture of their craniofacial defects. Craniofacial tissue regeneration using 3D bioprinting can manage and eliminate the restrictions of the surgical transplant from the donor site. The concept of creating the new functional tissue, exactly mimicking the anatomical and physiological function of the damaged tissue, looks highly attractive. This is crucial to reduce the donor site morbidity and retain the esthetics. 3D bioprinting can integrate all three essential components of tissue engineering, that is, rehabilitation, reconstruction, and regeneration of the lost craniofacial tissues. Such integration essentially helps to develop the patient-specific treatment plans and damage site-driven creation of the functional implants for the craniofacial defects. This article is the bird's eye view on the latest development and application of 3D bioprinting in the regeneration of the skeletal muscle tissues and their application in restoring the functional abilities of the damaged craniofacial tissue. We also discussed current challenges in craniofacial bone vascularization and gave our view on the future direction, including establishing the interactions between tissue-engineered skeletal muscle and the peripheral nervous system.
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页数:32
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共 287 条
[1]   Formulating poly(lactide-co-glycolide) particles for plasmid DNA delivery [J].
Abbas, Aiman O. ;
Donovan, Maureen D. ;
Salem, Aliasger K. .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2008, 97 (07) :2448-2461
[2]   Mechanical and cytotoxicity properties of hybrid ceramics filled polyamide 12 filament feedstock for craniofacial bone reconstruction via fused deposition modelling [J].
Abdullah, Abdul Manaf ;
Rahim, Than Noraihan Azila Than ;
Hamad, Wan Nur Fadilla Wan ;
Mohamad, Dasmawati ;
Akil, Hazizan Md ;
Rajion, Zainul Ahmad .
DENTAL MATERIALS, 2018, 34 (11) :E309-E316
[3]   Reconstructing Mandibular Defects Using Autologous Tissue-Engineered Tooth and Bone Constructs [J].
Abukawa, Harutsugi ;
Zhang, Weibo ;
Young, Conan S. ;
Asrican, Rose ;
Vacanti, Joseph P. ;
Kaban, Leonard B. ;
Troulis, Maria J. ;
Yelick, Pamela C. .
JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 2009, 67 (02) :335-347
[4]   Molecular regulation of angiogenesis and lymphangiogenesis [J].
Adams, Ralf H. ;
Alitalo, Kari .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2007, 8 (06) :464-478
[5]   Bone tissue engineering using polyetherketoneketone scaffolds combined with autologous mesenchymal stem cells in a sheep calvarial defect model [J].
Adamzyk, Carina ;
Kachel, Paul ;
Hoss, Mareike ;
Gremse, Felix ;
Modabber, Ali ;
Hoelzle, Frank ;
Tolba, Rene ;
Neuss, Sabine ;
Lethaus, Bernd .
JOURNAL OF CRANIO-MAXILLOFACIAL SURGERY, 2016, 44 (08) :985-994
[6]  
Agrawal Amit, 2011, J Surg Tech Case Rep, V3, P13, DOI 10.4103/2006-8808.78465
[7]   Toward Biofabrication of Resorbable Implants Consisting of a Calcium Phosphate Cement and Fibrin-A Characterization In Vitro and In Vivo [J].
Ahlfeld, Tilman ;
Lode, Anja ;
Richter, Richard Frank ;
Pradel, Winnie ;
Franke, Adrian ;
Rauner, Martina ;
Stadlinger, Bernd ;
Lauer, Guenter ;
Gelinsky, Michael ;
Korn, Paula .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (03) :1-18
[8]   Microcellular polyHIPE polymer supports osteoblast growth and bone formation in vitro [J].
Akay, G ;
Birch, MA ;
Bokhari, MA .
BIOMATERIALS, 2004, 25 (18) :3991-4000
[9]   Skeletal site-specific characterization of orofacial and iliac crest human bone marrow stromal cells in same individuals [J].
Akintoye, Sunday O. ;
Lam, Thanh ;
Shi, Songtao ;
Brahim, Jaime ;
Collins, Michael T. ;
Robey, Pamela G. .
BONE, 2006, 38 (06) :758-768
[10]   HEPATOCYTE GROWTH-FACTOR ACTIVATES QUIESCENT SKELETAL-MUSCLE SATELLITE CELLS IN-VITRO [J].
ALLEN, RE ;
SHEEHAN, SM ;
TAYLOR, RG ;
KENDALL, TL ;
RICE, GM .
JOURNAL OF CELLULAR PHYSIOLOGY, 1995, 165 (02) :307-312