4D printing of personalized shape memory polymer vascular stents with negative Poisson’s ratio structure: A preliminary study

Science China Technological Sciences - Tập 63 Số 4 - Trang 578-588 - 2020
Cheng Ting Lin1, LiJin Zhang1, Yanju Liu1, Liwu Liu1, Jinsong Leng2
1Department of Astronautic Science and Mechanics, Harbin Institute of Technology (HIT), Harbin, 150001, China
2National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Harbin Institute of Technology (HIT), Harbin, 150080, China

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Tài liệu tham khảo

Leng J, Lan X, Liu Y, et al. Shape-memory polymers and their composites: Stimulus methods and applications. Prog Mater Sci, 2011, 56: 1077–1135

Mu T, Liu L, Lan X, et al. Shape memory polymers for composites. Compos Sci Tech, 2018, 160: 169–198

Wang J, Zhao Q, Cui H, et al. Tunable shape memory polymer mold for multiple microarray replications. J Mater Chem A, 2018, 6: 24748–24755

Zhao Q, Wang Y, Cui H, et al. Bio-inspired sensing and actuating materials. J Mater Chem C, 2019, 7: 6493–6511

Yakacki C M, Shandas R, Safranski D, et al. Strong, tailored, biocompatible shape-memory polymer networks. Adv Funct Mater, 2008, 18: 2428–2435

Yakacki C M, Shandas R, Lanning C, et al. Unconstrained recovery characterization of shape-memory polymer networks for cardiovascular applications. Biomaterials, 2007, 28: 2255–2263

Yakacki C M, Gall K. Shape-memory polymers for biomedical applications. In: Shape-Memory Polymers. Lendlein A, ed. Berlin Heidelberg: Springer, 2010. 147–175

Wischke C, Neffe A T, Steuer S, et al. Evaluation of a degradable shape-memory polymer network as matrix for controlled drug release. J Control Release, 2009, 138: 243–250

Lendlein A, Langer R. Biodegradable, elastic shape-memory polymers for potential biomedical applications. Science, 2002, 296: 1673–1676

Balk M, Behl M, Wischke C, et al. Recent advances in degradable lactide-based shape-memory polymers. Adv Drug Deliver Rev, 2016, 107: 136–152

Chen J, Hu J, Leung A K L, et al. Shape memory ankle-foot orthoses. ACS Appl Mater Interfaces, 2018, 10: 32935–32941

Baker R M, Tseng L F, Iannolo M T, et al. Self-deploying shape memory polymer scaffolds for grafting and stabilizing complex bone defects: A mouse femoral segmental defect study. Biomaterials, 2016, 76: 388–398

Zhang D, George O J, Petersen K M, et al. A bioactive “self-fitting” shape memory polymer scaffold with potential to treat cranio-maxillo facial bone defects. Acta Biomater, 2014, 10: 4597–4605

Zhao Q, Wang J, Cui H, et al. Programmed shape-morphing scaffolds enabling facile 3D endothelialization. Adv Funct Mater, 2018, 28: 1801027

Bose S, Vahabzadeh S, Bandyopadhyay A. Bone tissue engineering using 3D printing. Mater Today, 2013, 16: 496–504

Wang M O, Vorwald C E, Dreher M L, et al. Evaluating 3D-printed biomaterials as scaffolds for vascularized bone tissue engineering. Adv Mater, 2015, 27: 138–144

Yang B, Yin J, Chen Y, et al. 2D-black-phosphorus-reinforced 3D-printed scaffolds: A stepwise countermeasure for osteosarcoma. Adv Mater, 2018, 30: 1705611

Deng C, Yao Q, Feng C, et al. 3D printing of bilineage constructive biomaterials for bone and cartilage regeneration. Adv Funct Mater, 2017, 27: 1703117

Zhuang P, Sun A X, An J, et al. 3D neural tissue models: From spheroids to bioprinting. Biomaterials, 2018, 154: 113–133

Norman J, Madurawe R D, Moore C M V, et al. A new chapter in pharmaceutical manufacturing: 3D-printed drug products. Adv Drug Deliver Rev, 2017, 108: 39–50

Sadia M, Arafat B, Ahmed W, et al. Channelled tablets: An innovative approach to accelerating drug release from 3D printed tablets. J Control Release, 2018, 269: 355–363

Lin M, Firoozi N, Tsai C T, et al. 3D-printed flexible polymer stents for potential applications in inoperable esophageal malignancies. Acta Biomater, 2019, 83: 119–129

Wei H, Zhang Q, Yao Y, et al. Direct-write fabrication of 4D active shape-changing structures based on a shape memory polymer and its nanocomposite. ACS Appl Mater Interfaces, 2017, 9: 876–883

Truby R L, Wehner M, Grosskopf A K, et al. Soft somatosensitive actuators via embedded 3D printing. Adv Mater, 2018, 30: 1706383

Lei D, Yang Y, Liu Z, et al. A general strategy of 3D printing thermosets for diverse applications. Mater Horiz, 2019, 6: 394–404

Miao S, Castro N, Nowicki M, et al. 4D printing of polymeric materials for tissue and organ regeneration. Mater Today, 2017, 20: 577–591

Momeni F, M.Mehdi Hassani.N S, Liu X, et al. A review of 4D printing. Mater Des, 2017, 122: 42–79

Zarek M, Mansour N, Shapira S, et al. 4D printing of shape memory-based personalized endoluminal medical devices. Macromol Rapid Commun, 2017, 38: 1600628

Im S H, Jung Y, Kim S H. Current status and future direction of biodegradable metallic and polymeric vascular scaffolds for next-generation stents. Acta Biomater, 2017, 60: 3–22

Sigwart U, Puel J, Mirkovitch V, et al. Intravascular stents to prevent occlusion and re-stenosis after transluminal angioplasty. N Engl J Med, 1987, 316: 701–706

Wiebe J, Nef H M, Hamm C W. Current status of bioresorbable scaffolds in the treatment of coronary artery disease. J Am College Cardiology, 2014, 64: 2541–2551

Zhao Q, Cui H, Wang J, et al. Regulation effects of biomimetic hybrid scaffolds on vascular endothelium remodeling. ACS Appl Mater Interfaces, 2018, 10: 23583–23594

Kulkarni R P, Bellamy E A. A new thermo-expandable shape-memory nickel-titanium alloy stent for the management of ureteric strictures. BJU Int, 2001, 83: 755–759

Fu M, Liu F, Hu L. A novel category of 3D chiral material with negative Poisson’s ratio. Compos Sci Tech, 2018, 160: 111–118

Huang J, Zhang Q, Scarpa F, et al. Multi-stiffness topology optimization of zero Poisson’s ratio cellular structures. Compos Part B-Eng, 2018, 140: 35–43

Park S A, Lee S J, Lim K S, et al. In vivo evaluation and characterization of a bio-absorbable drug-coated stent fabricated using a 3D-printing system. Mater Lett, 2015, 141: 355–358

Pacharra S, Ortiz R, McMahon S, et al. Surface patterning of a novel PEG-functionalized poly-l-lactide polymer to improve its bio-compatibility: Applications to bioresorbable vascular stents. J Biomed Mater Res, 2019, 107: 624–634

Adeli H, Cheng N. Integrated genetic algorithm for optimization of space structures. J Aerospace Eng, 1993, 6: 315–328

Kociecki M, Adeli H. Two-phase genetic algorithm for topology optimization of free-form steel space-frame roof structures with complex curvatures. Eng Appl Artificial Intelligence, 2014, 32: 218–227

Gibson L J, Ashby M F, Schajer G S, et al. The mechanics of two-dimensional cellular materials. Proc R Soc A-Math Phys Eng Sci, 1982, 382: 25–42

Abouhamze M, Shakeri M. Multi-objective stacking sequence optimization of laminated cylindrical panels using a genetic algorithm and neural networks. Composite Struct, 2007, 81: 253–263

He Y, Guo S, Liu Z, et al. Pattern transformation of thermo-responsive shape memory polymer periodic cellular structures. Int J Solids Struct, 2015, 71: 194–205

Yu K, Li H, McClung A J W, et al. Cyclic behaviors of amorphous shape memory polymers. Soft Matter, 2016, 12: 3234–3245

Hager M D, Bode S, Weber C, et al. Shape memory polymers: Past, present and future developments. Prog Polym Sci, 2015, 49-50: 3–33

ASTM Standard. D638-97. Standard Test Method for Tensile Properties of Plastics. American Society for Testing and Materials, New York, 1997

ASTM Standard. D2412-02. Standard Test Method for Determination of External Loading Characteristics of Plastic Pipe by Parallel-Plate Loading. ASTM International, West Conshohocken, 2002

Chen M C, Liu C T, Tsai H W, et al. Mechanical properties, drug eluting characteristics and in vivo performance of a genipin-cross-linked chitosan polymeric stent. Biomaterials, 2009, 30: 5560–5571

Wang Q, Fang G, Zhao Y, et al. Computational and experimental investigation into mechanical performances of poly-l-lactide acid (Plla) coronary stents. J Mech Behav BioMed Mater, 2017, 65: 415–427

Tamai H, Igaki K, Kyo E, et al. Initial and 6-month results of biodegradable poly-l-lactic acid coronary stents in humans. Circulation, 2000, 102: 399–404

Wong Y S, Salvekar A V, Zhuang K D, et al. Bioabsorbable radio-paque water-responsive shape memory embolization plug for temporary vascular occlusion. Biomaterials, 2016, 102: 98–106