Nanoengineered Granular Hydrogel Bioinks with Preserved Interconnected Microporosity for Extrusion Bioprinting

被引:46
作者
Ataie, Zaman [1 ]
Kheirabadi, Sina [1 ]
Zhang, Jenna Wanjing [2 ]
Kedzierski, Alexander [3 ]
Petrosky, Carter [1 ]
Jiang, Rhea [1 ]
Vollberg, Christian [2 ,3 ]
Sheikhi, Amir [1 ,3 ]
机构
[1] Penn State Univ, Dept Chem Engn, University Pk, PA 16802 USA
[2] Penn State Univ, Dept Mech Engn, University Pk, PA 16802 USA
[3] Penn State Univ, Dept Biomed Engn, University Pk, PA 16802 USA
关键词
3D bioprinting; granular bioinks; jamming; microgels; porous scaffolds; tissue engineering; FABRICATION; SCAFFOLDS; PHYSICS; DESIGN; GELS;
D O I
10.1002/smll.202202390
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
3D bioprinting of granular hydrogels comprising discrete hydrogel microparticles (microgels) may overcome the intrinsic structural limitations of bulk (nanoporous) hydrogel bioinks, enabling the fabrication of modular thick tissue constructs. The additive manufacturing of granular scaffolds has predominantly relied on highly jammed microgels to render the particulate suspensions shear yielding and extrudable. This inevitably compromises void spaces between microgels (microporosity), defeating rapid cell penetration, facile metabolite and oxygen transfer, and cell viability. Here, this persistent bottleneck is overcome by programming microgels with reversible interfacial nanoparticle self-assembly, enabling the fabrication of nanoengineered granular bioinks (NGB) with well-preserved microporosity, enhanced printability, and shape fidelity. The microporous architecture of bioprinted NGB constructs permits immediate post-printing 3D cell seeding, which may expand the library of bioinks via circumventing the necessity of bioorthogonality for cell-laden scaffold formation. This work opens new opportunities for the 3D bioprinting of tissue engineering microporous scaffolds beyond the traditional biofabrication window.
引用
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页数:16
相关论文
共 63 条
[1]   Direct-write 3D printing and characterization of a GelMA-based biomaterial for intracorporeal tissue [J].
Adib, A. Asghari ;
Sheikhi, A. ;
Shahhosseini, M. ;
Simeunovic, A. ;
Wu, S. ;
Castro, C. E. ;
Zhao, R. ;
Khademhosseini, A. ;
Hoelzle, D. J. .
BIOFABRICATION, 2020, 12 (04)
[2]   Effect of Filling Pattern on the Tensile and Flexural Mechanical Properties of FDM 3D Printed Products [J].
Akhoundi, B. ;
Behravesh, A. H. .
EXPERIMENTAL MECHANICS, 2019, 59 (06) :883-897
[3]   Design and 3D Printing of Scaffolds and Tissues [J].
An, Jia ;
Teoh, Joanne Ee Mei ;
Suntornnond, Ratima ;
Chua, Chee Kai .
ENGINEERING, 2015, 1 (02) :261-268
[4]   25th Anniversary Article: Rational Design and Applications of Hydrogels in Regenerative Medicine [J].
Annabi, Nasim ;
Tamayol, Ali ;
Uquillas, Jorge Alfredo ;
Akbari, Mohsen ;
Bertassoni, Luiz E. ;
Cha, Chaenyung ;
Camci-Unal, Gulden ;
Dokmeci, Mehmet R. ;
Peppas, Nicholas A. ;
Khademhosseini, Ali .
ADVANCED MATERIALS, 2014, 26 (01) :85-124
[5]  
Annabi N, 2010, TISSUE ENG PART B-RE, V16, P371, DOI [10.1089/ten.teb.2009.0639, 10.1089/ten.TEB.2009.0639]
[6]   Toward a Better Understanding of the Fused Deposition Modeling Process: Comparison with Injection Molding [J].
Askanian, Haroutioun ;
de Lima, Daniel Muranaka ;
Commereuc, Sophie ;
Verney, Vincent .
3D PRINTING AND ADDITIVE MANUFACTURING, 2018, 5 (04) :319-327
[7]   Mean-field theory of random close packings of axisymmetric particles [J].
Baule, Adrian ;
Mari, Romain ;
Bo, Lin ;
Portal, Louis ;
Makse, Hernan A. .
NATURE COMMUNICATIONS, 2013, 4
[8]   Jamming in granular materials [J].
Behringer, Robert P. .
COMPTES RENDUS PHYSIQUE, 2015, 16 (01) :10-25
[9]   Jamming - A new kind of phase transition? [J].
Biroli, Giulio .
NATURE PHYSICS, 2007, 3 (04) :222-223
[10]   Rheophysics of dense granular materials: Discrete simulation of plane shear flows [J].
da Cruz, F ;
Emam, S ;
Prochnow, M ;
Roux, JN ;
Chevoir, F .
PHYSICAL REVIEW E, 2005, 72 (02)