1 |
Sagadevan S, Schirhagl R, Rahman MZ, Bin Ismail MF, Lett JA, Fatimah I, Mohd Kaus NH, Oh W. Recent advancements in polymer matrix nanocomposites for bone tissue engineering applications. Journal of Drug Delivery Science and Technology 2023;82:104313. [DOI: 10.1016/j.jddst.2023.104313] [Reference Citation Analysis]
|
2 |
Sánchez-fernández JA. Structural Strategies for Supramolecular Hydrogels and Their Applications. Polymers 2023;15:1365. [DOI: 10.3390/polym15061365] [Reference Citation Analysis]
|
3 |
Ghaffari-bohlouli P, Golbaten-mofrad H, Najmoddin N, Goodarzi V, Shavandi A, Chen W. Reinforced conductive polyester based on itaconic acids, glycerol and polypyrrole with potential for electroconductive tissue restoration. Synthetic Metals 2023;293:117238. [DOI: 10.1016/j.synthmet.2022.117238] [Reference Citation Analysis]
|
4 |
Rahmani Del Bakhshayesh A, Saghebasl S, Asadi N, Kashani E, Mehdipour A, Nezami Asl A, Akbarzadeh A. Recent advances in nano-scaffolds for tissue engineering applications: Toward natural therapeutics. Wiley Interdiscip Rev Nanomed Nanobiotechnol 2023;:e1882. [PMID: 36815236 DOI: 10.1002/wnan.1882] [Reference Citation Analysis]
|
5 |
Houben S, Aldana AA, Huysecom A, Mpinganzima W, Cardinaels R, Baker MB, Pitet LM. Hybrid Hydrogels with Orthogonal Transient Cross-linking Exhibiting Highly Tunable Mechanical Properties. ACS Appl Polym Mater 2023. [DOI: 10.1021/acsapm.2c01906] [Reference Citation Analysis]
|
6 |
Niu X, Li N, Du Z, Li X. Integrated gradient tissue-engineered osteochondral scaffolds: Challenges, current efforts and future perspectives. Bioact Mater 2023;20:574-97. [PMID: 35846846 DOI: 10.1016/j.bioactmat.2022.06.011] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
7 |
Li Z, Ruan C, Niu X. Collagen-based bioinks for regenerative medicine: Fabrication, application and prospective. Medicine in Novel Technology and Devices 2023. [DOI: 10.1016/j.medntd.2023.100211] [Reference Citation Analysis]
|
8 |
Jia Z, Xu X, Zhu D, Zheng Y. Design, Printing, and Engineering of Regenerative Biomaterials for Personalized Bone Healthcare. Progress in Materials Science 2023. [DOI: 10.1016/j.pmatsci.2023.101072] [Reference Citation Analysis]
|
9 |
Song Y, Hu Q, Liu Q, Liu S, Wang Y, Zhang H. Design and fabrication of drug-loaded alginate/hydroxyapatite/collagen composite scaffolds for repairing infected bone defects. J Mater Sci 2023. [DOI: 10.1007/s10853-022-08053-3] [Reference Citation Analysis]
|
10 |
Gupta D, Bellare J. Material selection and processing challenges with additive manufacturing in biomimicry for biomedical applications. Advances in Additive Manufacturing Artificial Intelligence, Nature-Inspired, and Biomanufacturing 2023. [DOI: 10.1016/b978-0-323-91834-3.00020-x] [Reference Citation Analysis]
|
11 |
Santos Beato P, Poologasundarampillai G, Nommeots-nomm A, Kalaskar DM. Materials for 3D printing in medicine: metals, polymers, ceramics, and hydrogels. 3D Printing in Medicine 2023. [DOI: 10.1016/b978-0-323-89831-7.00002-x] [Reference Citation Analysis]
|
12 |
Tripathi S, Mandal SS, Bauri S, Maiti P. 3D bioprinting and its innovative approach for biomedical applications. MedComm (2020) 2023;4:e194. [PMID: 36582305 DOI: 10.1002/mco2.194] [Reference Citation Analysis]
|
13 |
Bonardd S, Nandi M, Hernández García JI, Maiti B, Abramov A, Díaz Díaz D. Self-Healing Polymeric Soft Actuators. Chem Rev 2023;123:736-810. [PMID: 36542491 DOI: 10.1021/acs.chemrev.2c00418] [Reference Citation Analysis]
|
14 |
Wang Z, Agrawal P, Zhang YS. 3D Printing and Bioprinting Strategies Applied Toward Orthopedics. Biofabrication for Orthopedics 2022. [DOI: 10.1002/9783527831371.ch3] [Reference Citation Analysis]
|
15 |
Mayfield CK, Ayad M, Lechtholz-zey E, Chen Y, Lieberman JR. 3D-Printing for Critical Sized Bone Defects: Current Concepts and Future Directions. Bioengineering 2022;9:680. [DOI: 10.3390/bioengineering9110680] [Reference Citation Analysis]
|
16 |
Dong C, Wei H, Zhang X, Li Y, Huang L, Wa Q, Luo Y. 3D printed hydrogel/wesselsite-PCL composite scaffold with structural change from core/shell fibers to microchannels for enhanced bone regeneration. Composites Part B: Engineering 2022;246:110264. [DOI: 10.1016/j.compositesb.2022.110264] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
17 |
Podaru IA, Stănescu PO, Ginghină R, Stoleriu Ş, Trică B, Şomoghi R, Teodorescu M. Poly(N-vinylpyrrolidone)-Laponite XLG Nanocomposite Hydrogels: Characterization, Properties and Comparison with Divinyl Monomer-Crosslinked Hydrogels. Polymers (Basel) 2022;14:4216. [PMID: 36236165 DOI: 10.3390/polym14194216] [Reference Citation Analysis]
|
18 |
Tipa C, Cidade MT, Borges JP, Costa LC, Silva JC, Soares PIP. Clay-Based Nanocomposite Hydrogels for Biomedical Applications: A Review. Nanomaterials 2022;12:3308. [DOI: 10.3390/nano12193308] [Reference Citation Analysis]
|
19 |
Yuan Z, Wan Z, Gao C, Wang Y, Huang J, Cai Q. Controlled magnesium ion delivery system for in situ bone tissue engineering. J Control Release 2022;350:360-76. [PMID: 36002052 DOI: 10.1016/j.jconrel.2022.08.036] [Reference Citation Analysis]
|
20 |
Li S, Li Z, Yang J, Ha Y, Zhou X, He C. Inhibition of Sympathetic Activation by Delivering Calcium Channel Blockers from a 3D Printed Scaffold to Promote Bone Defect Repair. Adv Healthc Mater 2022;11:e2200785. [PMID: 35666701 DOI: 10.1002/adhm.202200785] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
21 |
Lan W, Huang X, Huang D, Wei X, Chen W. Progress in 3D printing for bone tissue engineering: a review. J Mater Sci. [DOI: 10.1007/s10853-022-07361-y] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
22 |
Zhu Y, Zhang Y, Zhou Y. Application Progress of Modified Chitosan and Its Composite Biomaterials for Bone Tissue Engineering. Int J Mol Sci 2022;23:6574. [PMID: 35743019 DOI: 10.3390/ijms23126574] [Cited by in Crossref: 2] [Cited by in F6Publishing: 1] [Article Influence: 2.0] [Reference Citation Analysis]
|
23 |
Wang XQ, Chan KH, Lu W, Ding T, Ng SWL, Cheng Y, Li T, Hong M, Tee BCK, Ho GW. Macromolecule conformational shaping for extreme mechanical programming of polymorphic hydrogel fibers. Nat Commun 2022;13:3369. [PMID: 35690594 DOI: 10.1038/s41467-022-31047-3] [Reference Citation Analysis]
|
24 |
Saberi A, Behnamghader A, Aghabarari B, Yousefi A, Majda D, Huerta MVM, Mozafari M. 3D direct printing of composite bone scaffolds containing polylactic acid and spray dried mesoporous bioactive glass-ceramic microparticles. Int J Biol Macromol 2022;207:9-22. [PMID: 35181332 DOI: 10.1016/j.ijbiomac.2022.02.067] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 4.0] [Reference Citation Analysis]
|
25 |
Magalhães LSSM, Andrade DB, Bezerra RDS, Morais AIS, Oliveira FC, Rizzo MS, Silva-filho EC, Lobo AO. Nanocomposite Hydrogel Produced from PEGDA and Laponite for Bone Regeneration. JFB 2022;13:53. [DOI: 10.3390/jfb13020053] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 2.0] [Reference Citation Analysis]
|
26 |
Liu Z, Xin W, Ji J, Xu J, Zheng L, Qu X, Yue B. 3D-Printed Hydrogels in Orthopedics: Developments, Limitations, and Perspectives. Front Bioeng Biotechnol 2022;10:845342. [DOI: 10.3389/fbioe.2022.845342] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
27 |
Omar J, Ponsford D, Dreiss CA, Lee TC, Loh XJ. Supramolecular Hydrogels: Design Strategies and Contemporary Biomedical Applications. Chem Asian J 2022;:e202200081. [PMID: 35304978 DOI: 10.1002/asia.202200081] [Cited by in Crossref: 6] [Cited by in F6Publishing: 5] [Article Influence: 6.0] [Reference Citation Analysis]
|
28 |
Qiao K, Xu L, Tang J, Wang Q, Lim KS, Hooper G, Woodfield TBF, Liu G, Tian K, Zhang W, Cui X. The advances in nanomedicine for bone and cartilage repair. J Nanobiotechnology 2022;20:141. [PMID: 35303876 DOI: 10.1186/s12951-022-01342-8] [Cited by in Crossref: 7] [Cited by in F6Publishing: 8] [Article Influence: 7.0] [Reference Citation Analysis]
|
29 |
Müller FJ, Fenton OS. Additive Manufacturing Approaches toward the Fabrication of Biomaterials. Adv Materials Inter 2022;9:2100670. [DOI: 10.1002/admi.202100670] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
30 |
Du C, Hu J, Wu X, Shi H, Yu HC, Qian J, Yin J, Gao C, Wu ZL, Zheng Q. 3D printing of a tough double-network hydrogel and its use as a scaffold to construct a tissue-like hydrogel composite. J Mater Chem B 2022;10:468-76. [PMID: 34982091 DOI: 10.1039/d1tb02465e] [Cited by in Crossref: 6] [Cited by in F6Publishing: 7] [Article Influence: 6.0] [Reference Citation Analysis]
|
31 |
Memarian P, Pishavar E, Zanotti F, Trentini M, Camponogara F, Soliani E, Gargiulo P, Isola M, Zavan B. Active Materials for 3D Printing in Small Animals: Current Modalities and Future Directions for Orthopedic Applications. Int J Mol Sci 2022;23:1045. [PMID: 35162968 DOI: 10.3390/ijms23031045] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 4.0] [Reference Citation Analysis]
|
32 |
Zhang X, Tang Y, Wang P, Wang Y, Wu T, Li T, Huang S, Zhang J, Wang H, Ma S, Wang L, Xu W. A review of recent advances in metal ion hydrogels: mechanism, properties and their biological applications. New J Chem 2022;46:13838-55. [DOI: 10.1039/d2nj02843c] [Cited by in F6Publishing: 1] [Reference Citation Analysis]
|
33 |
Leu Alexa R, Ianchis R, Savu D, Temelie M, Trica B, Serafim A, Vlasceanu GM, Alexandrescu E, Preda S, Iovu H. 3D Printing of Alginate-Natural Clay Hydrogel-Based Nanocomposites. Gels 2021;7:211. [PMID: 34842675 DOI: 10.3390/gels7040211] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.5] [Reference Citation Analysis]
|
34 |
Tabasi H, Oroojalian F, Darroudi M. Green clay ceramics as potential nanovehicles for drug delivery applications. Ceramics International 2021;47:31042-53. [DOI: 10.1016/j.ceramint.2021.08.090] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
|
35 |
Rastin H, Mansouri N, Tung TT, Hassan K, Mazinani A, Ramezanpour M, Yap PL, Yu L, Vreugde S, Losic D. Converging 2D Nanomaterials and 3D Bioprinting Technology: State-of-the-Art, Challenges, and Potential Outlook in Biomedical Applications. Adv Healthc Mater 2021;10:e2101439. [PMID: 34468088 DOI: 10.1002/adhm.202101439] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
36 |
García-Villén F, Ruiz-Alonso S, Lafuente-Merchan M, Gallego I, Sainz-Ramos M, Saenz-Del-Burgo L, Pedraz JL. Clay Minerals as Bioink Ingredients for 3D Printing and 3D Bioprinting: Application in Tissue Engineering and Regenerative Medicine. Pharmaceutics 2021;13:1806. [PMID: 34834221 DOI: 10.3390/pharmaceutics13111806] [Cited by in Crossref: 6] [Cited by in F6Publishing: 6] [Article Influence: 3.0] [Reference Citation Analysis]
|
37 |
Avila-Ramirez A, Catzim-Ríos K, Guerrero-Beltrán CE, Ramírez-Cedillo E, Ortega-Lara W. Reinforcement of Alginate-Gelatin Hydrogels with Bioceramics for Biomedical Applications: A Comparative Study. Gels 2021;7:184. [PMID: 34842681 DOI: 10.3390/gels7040184] [Reference Citation Analysis]
|
38 |
Rahimnejad M, Rezvaninejad R, Rezvaninejad R, França R. Biomaterials in bone and mineralized tissue engineering using 3D printing and bioprinting technologies. Biomed Phys Eng Express 2021;7. [PMID: 34438382 DOI: 10.1088/2057-1976/ac21ab] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
39 |
Kappauf K, Majstorovic N, Agarwal S, Rother D, Claaßen C. Modulation of Transaminase Activity by Encapsulation in Temperature-Sensitive Poly(N-acryloyl glycinamide) Hydrogels. Chembiochem 2021. [PMID: 34596326 DOI: 10.1002/cbic.202100427] [Cited by in Crossref: 1] [Cited by in F6Publishing: 2] [Article Influence: 0.5] [Reference Citation Analysis]
|
40 |
Song D, Xu Y, Liu S, Wen L, Wang X. Progress of 3D Bioprinting in Organ Manufacturing. Polymers (Basel) 2021;13:3178. [PMID: 34578079 DOI: 10.3390/polym13183178] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 2.0] [Reference Citation Analysis]
|
41 |
Ravanbakhsh H, Bao G, Luo Z, Mongeau LG, Zhang YS. Composite Inks for Extrusion Printing of Biological and Biomedical Constructs. ACS Biomater Sci Eng 2021;7:4009-26. [PMID: 34510905 DOI: 10.1021/acsbiomaterials.0c01158] [Cited by in Crossref: 14] [Cited by in F6Publishing: 14] [Article Influence: 7.0] [Reference Citation Analysis]
|
42 |
Majstorović N, Agarwal S. Thermosensitive Fluorescence of an UCST-type Hybrid Functional Hydrogel. ACS Appl Polym Mater 2021;3:4992-9. [DOI: 10.1021/acsapm.1c00735] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 2.0] [Reference Citation Analysis]
|
43 |
Saadedine M, Zaïri F, Ouali N, Tamoud A, Mesbah A. A micromechanics-based model for visco-super-elastic hydrogel-based nanocomposites. International Journal of Plasticity 2021;144:103042. [DOI: 10.1016/j.ijplas.2021.103042] [Cited by in Crossref: 9] [Cited by in F6Publishing: 9] [Article Influence: 4.5] [Reference Citation Analysis]
|
44 |
Liu C, Xu N, Zong Q, Yu J, Zhang P. Hydrogel prepared by 3D printing technology and its applications in the medical field. Colloid and Interface Science Communications 2021;44:100498. [DOI: 10.1016/j.colcom.2021.100498] [Cited by in Crossref: 10] [Cited by in F6Publishing: 12] [Article Influence: 5.0] [Reference Citation Analysis]
|
45 |
Ebhodaghe SO. Natural Polymeric Scaffolds for Tissue Engineering Applications. J Biomater Sci Polym Ed 2021;:1-51. [PMID: 34328068 DOI: 10.1080/09205063.2021.1958185] [Cited by in Crossref: 10] [Cited by in F6Publishing: 6] [Article Influence: 5.0] [Reference Citation Analysis]
|
46 |
Wang Z, Agrawal P, Zhang YS. Nanotechnologies and Nanomaterials in 3D (Bio)printing toward Bone Regeneration. Adv NanoBio Res 2021;1:2100035. [DOI: 10.1002/anbr.202100035] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.5] [Reference Citation Analysis]
|
47 |
Wang Y, Li J, Li Y, Yang B. Biomimetic bioinks of nanofibrillar polymeric hydrogels for 3D bioprinting. Nano Today 2021;39:101180. [DOI: 10.1016/j.nantod.2021.101180] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 2.5] [Reference Citation Analysis]
|
48 |
Erezuma I, Eufrasio-da-Silva T, Golafshan N, Deo K, Mishra YK, Castilho M, Gaharwar AK, Leeuwenburgh S, Dolatshahi-Pirouz A, Orive G. Nanoclay Reinforced Biomaterials for Mending Musculoskeletal Tissue Disorders. Adv Healthc Mater 2021;10:e2100217. [PMID: 34185438 DOI: 10.1002/adhm.202100217] [Cited by in Crossref: 6] [Cited by in F6Publishing: 6] [Article Influence: 3.0] [Reference Citation Analysis]
|
49 |
Farzaneh S, Hosseinzadeh S, Samanipour R, Hatamie S, Ranjbari J, Khojasteh A. Fabrication and characterization of cobalt ferrite magnetic hydrogel combined with static magnetic field as a potential bio-composite for bone tissue engineering. Journal of Drug Delivery Science and Technology 2021;64:102525. [DOI: 10.1016/j.jddst.2021.102525] [Cited by in Crossref: 8] [Cited by in F6Publishing: 10] [Article Influence: 4.0] [Reference Citation Analysis]
|
50 |
Fan C, Xu Z, Wu T, Cui C, Liu Y, Liu B, Yang J, Liu W. 3D printing of lubricative stiff supramolecular polymer hydrogels for meniscus replacement. Biomater Sci 2021;9:5116-26. [PMID: 34254606 DOI: 10.1039/d1bm00836f] [Cited by in Crossref: 1] [Cited by in F6Publishing: 2] [Article Influence: 0.5] [Reference Citation Analysis]
|
51 |
Zhai X, Ruan C, Shen J, Zheng C, Zhao X, Pan H, Lu WW. Clay-based nanocomposite hydrogel with attractive mechanical properties and sustained bioactive ion release for bone defect repair. J Mater Chem B 2021;9:2394-406. [PMID: 33625433 DOI: 10.1039/d1tb00184a] [Cited by in Crossref: 13] [Cited by in F6Publishing: 15] [Article Influence: 6.5] [Reference Citation Analysis]
|
52 |
Sonnleitner D, Schrüfer S, Berglund L, Schubert DW, Lang G. Correlating rheology and printing performance of fiber-reinforced bioinks to assess predictive modelling for biofabrication. Journal of Materials Research 2021;36:3821-32. [DOI: 10.1557/s43578-021-00276-5] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
|
53 |
Kumar S, Tharayil A, Thomas S. 3D Bioprinting of Nature-Inspired Hydrogel Inks Based on Synthetic Polymers. ACS Appl Polym Mater 2021;3:3685-701. [DOI: 10.1021/acsapm.1c00567] [Cited by in Crossref: 6] [Cited by in F6Publishing: 6] [Article Influence: 3.0] [Reference Citation Analysis]
|
54 |
Yadav LR, Chandran SV, Lavanya K, Selvamurugan N. Chitosan-based 3D-printed scaffolds for bone tissue engineering. Int J Biol Macromol 2021;183:1925-38. [PMID: 34097956 DOI: 10.1016/j.ijbiomac.2021.05.215] [Cited by in Crossref: 20] [Cited by in F6Publishing: 22] [Article Influence: 10.0] [Reference Citation Analysis]
|
55 |
Omidi M, Mansouri V, Mohammadi Amirabad L, Tayebi L. Impact of Lipid/Magnesium Hydroxide Hybrid Nanoparticles on the Stability of Vascular Endothelial Growth Factor-Loaded PLGA Microspheres. ACS Appl Mater Interfaces 2021;13:24370-84. [PMID: 34006111 DOI: 10.1021/acsami.0c22140] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
56 |
Guo Z, Dong L, Xia J, Mi S, Sun W. 3D Printing Unique Nanoclay-Incorporated Double-Network Hydrogels for Construction of Complex Tissue Engineering Scaffolds. Adv Healthc Mater 2021;10:e2100036. [PMID: 33949152 DOI: 10.1002/adhm.202100036] [Cited by in Crossref: 16] [Cited by in F6Publishing: 19] [Article Influence: 8.0] [Reference Citation Analysis]
|
57 |
Liu W, Zhou F, Sun D, Luo Y, Tang A. Investigation of transient mass transport induced deformation of PEGDA hydrogel in photocurable solution. Modelling Simul Mater Sci Eng 2021;29:055003. [DOI: 10.1088/1361-651x/abf487] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
58 |
Jang MJ, Bae SK, Jung YS, Kim JC, Kim JS, Park SK, Suh JS, Yi SJ, Ahn SH, Lim JO. Enhanced wound healing using a 3D printed VEGF-mimicking peptide incorporated hydrogel patch in a pig model. Biomed Mater 2021;16. [PMID: 33761488 DOI: 10.1088/1748-605X/abf1a8] [Cited by in Crossref: 15] [Cited by in F6Publishing: 15] [Article Influence: 7.5] [Reference Citation Analysis]
|
59 |
Decante G, Costa JB, Silva-Correia J, Collins MN, Reis RL, Oliveira JM. Engineering bioinks for 3D bioprinting. Biofabrication 2021;13. [PMID: 33662949 DOI: 10.1088/1758-5090/abec2c] [Cited by in Crossref: 62] [Cited by in F6Publishing: 63] [Article Influence: 31.0] [Reference Citation Analysis]
|
60 |
Photoinitiators in Specific Polymerization Processes. Photoinitiators 2021. [DOI: 10.1002/9783527821297.ch17] [Reference Citation Analysis]
|
61 |
Orafa Z, Irani S, Zamanian A, Bakhshi H, Nikukar H, Ghalandari B. Coating of Laponite on PLA Nanofibrous for Bone Tissue Engineering Application. Macromol Res 2021;29:191-8. [DOI: 10.1007/s13233-021-9028-1] [Cited by in Crossref: 4] [Cited by in F6Publishing: 5] [Article Influence: 2.0] [Reference Citation Analysis]
|
62 |
Xue X, Hu Y, Deng Y, Su J. Recent Advances in Design of Functional Biocompatible Hydrogels for Bone Tissue Engineering. Adv Funct Mater 2021;31:2009432. [DOI: 10.1002/adfm.202009432] [Cited by in Crossref: 61] [Cited by in F6Publishing: 72] [Article Influence: 30.5] [Reference Citation Analysis]
|
63 |
Xu Z, Fan C, Zhang Q, Liu Y, Cui C, Liu B, Wu T, Zhang X, Liu W. A Self‐Thickening and Self‐Strengthening Strategy for 3D Printing High‐Strength and Antiswelling Supramolecular Polymer Hydrogels as Meniscus Substitutes. Adv Funct Mater 2021;31:2100462. [DOI: 10.1002/adfm.202100462] [Cited by in Crossref: 24] [Cited by in F6Publishing: 25] [Article Influence: 12.0] [Reference Citation Analysis]
|
64 |
Fu Z, Naghieh S, Xu C, Wang C, Sun W, Chen DX. Printability in extrusion bioprinting. Biofabrication 2021. [PMID: 33601340 DOI: 10.1088/1758-5090/abe7ab] [Cited by in Crossref: 26] [Cited by in F6Publishing: 26] [Article Influence: 13.0] [Reference Citation Analysis]
|
65 |
dos Santos J, Oliveira RS, Oliveira TV, Velho MC, Konrad MV, da Silva GS, Deon M, Beck RCR. 3D Printing and Nanotechnology: A Multiscale Alliance in Personalized Medicine. Adv Funct Mater 2021;31:2009691. [DOI: 10.1002/adfm.202009691] [Cited by in Crossref: 22] [Cited by in F6Publishing: 24] [Article Influence: 11.0] [Reference Citation Analysis]
|
66 |
Li X, Xu W, Xin Y, Yuan J, Ji Y, Chu S, Liu J, Luo Q. Supramolecular Polymer Nanocomposites for Biomedical Applications. Polymers (Basel) 2021;13:513. [PMID: 33572052 DOI: 10.3390/polym13040513] [Cited by in Crossref: 2] [Cited by in F6Publishing: 3] [Article Influence: 1.0] [Reference Citation Analysis]
|
67 |
Yang J, Cristian V, Dong A, Zhang J. A Facile Strategy to Achieve Synergistic Multiple Hydrogen Bonding Interactions for Constructing Robust Hydrogels with Self‐healing Capability, Shape Transformation and Actuation Function. Macromol Chem Phys 2021;222:2000429. [DOI: 10.1002/macp.202000429] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
|
68 |
Wang Y, Guo Y, Wei Q, Li X, Ji K, Zhang K. Current researches on design and manufacture of biopolymer-based osteochondral biomimetic scaffolds. Bio-des Manuf 2021;4:541-67. [DOI: 10.1007/s42242-020-00119-y] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 4.0] [Reference Citation Analysis]
|
69 |
Poustchi F, Amani H, Ahmadian Z, Niknezhad SV, Mehrabi S, Santos HA, Shahbazi MA. Combination Therapy of Killing Diseases by Injectable Hydrogels: From Concept to Medical Applications. Adv Healthc Mater 2021;10:e2001571. [PMID: 33274841 DOI: 10.1002/adhm.202001571] [Cited by in Crossref: 68] [Cited by in F6Publishing: 72] [Article Influence: 34.0] [Reference Citation Analysis]
|
70 |
Aravind H, Joseph B, Thomas S. Hydrogel as Bio-Ink for Organ Regeneration. Gels Horizons: From Science to Smart Materials 2021. [DOI: 10.1007/978-981-15-7138-1_9] [Reference Citation Analysis]
|
71 |
Advincula RC, Dizon JRC, Caldona EB, Viers RA, Siacor FDC, Maalihan RD, Espera AH Jr. On the progress of 3D-printed hydrogels for tissue engineering. MRS Commun 2021;11:539-53. [PMID: 34367725 DOI: 10.1557/s43579-021-00069-1] [Cited by in Crossref: 33] [Cited by in F6Publishing: 29] [Article Influence: 16.5] [Reference Citation Analysis]
|
72 |
Ding C, Zhang S, Fu X, Liu T, Shao L, Fei M, Hao C, Liu Y, Zhong W. Robust supramolecular composite hydrogels for sustainable and “visible” agriculture irrigation. J Mater Chem A 2021;9:24613-21. [DOI: 10.1039/d1ta05442b] [Cited by in Crossref: 3] [Cited by in F6Publishing: 4] [Article Influence: 1.5] [Reference Citation Analysis]
|
73 |
Bhattacharyya A, Janarthanan G, Noh I. Nano-biomaterials for designing functional bioinks towards complex tissue and organ regeneration in 3D bioprinting. Additive Manufacturing 2021;37:101639. [DOI: 10.1016/j.addma.2020.101639] [Cited by in Crossref: 9] [Cited by in F6Publishing: 11] [Article Influence: 4.5] [Reference Citation Analysis]
|
74 |
Nakhlband A, Saleh-ghadimi L, Fathi M, Samiei M, Barar J, Omidi Y. Recent Advances in Hydrogels and Stem Cells. Engineering Materials for Stem Cell Regeneration 2021. [DOI: 10.1007/978-981-16-4420-7_21] [Reference Citation Analysis]
|
75 |
Cernencu AI. 3D Printing of Hydrogel Constructs Toward Targeted Development in Tissue Engineering. 3D printable Gel-inks for Tissue Engineering 2021. [DOI: 10.1007/978-981-16-4667-6_3] [Reference Citation Analysis]
|
76 |
Kumar S. Synthetic polymer-derived single-network inks/bioinks for extrusion-based 3D printing towards bioapplications. Mater Adv 2021;2:6928-6941. [DOI: 10.1039/d1ma00525a] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
77 |
Askari M, Afzali Naniz M, Kouhi M, Saberi A, Zolfagharian A, Bodaghi M. Recent progress in extrusion 3D bioprinting of hydrogel biomaterials for tissue regeneration: a comprehensive review with focus on advanced fabrication techniques. Biomater Sci 2021;9:535-73. [DOI: 10.1039/d0bm00973c] [Cited by in Crossref: 112] [Cited by in F6Publishing: 121] [Article Influence: 56.0] [Reference Citation Analysis]
|
78 |
López-ângulo D, Bonilla J, Sobral PJ. Tissue engineering applications. Biopolymeric Nanomaterials 2021. [DOI: 10.1016/b978-0-12-824364-0.00028-9] [Reference Citation Analysis]
|
79 |
Jiang P, Lin P, Yang C, Qin H, Wang X, Zhou F. 3D Printing of Dual-Physical Cross-linking Hydrogel with Ultrahigh Strength and Toughness. Chem Mater 2020;32:9983-95. [DOI: 10.1021/acs.chemmater.0c02941] [Cited by in Crossref: 39] [Cited by in F6Publishing: 44] [Article Influence: 13.0] [Reference Citation Analysis]
|
80 |
Li J, Ma Q, Xu Y, Yang M, Wu Q, Wang F, Sun P. Highly Bidirectional Bendable Actuator Engineered by LCST-UCST Bilayer Hydrogel with Enhanced Interface. ACS Appl Mater Interfaces 2020;12:55290-8. [PMID: 33232107 DOI: 10.1021/acsami.0c17085] [Cited by in Crossref: 43] [Cited by in F6Publishing: 45] [Article Influence: 14.3] [Reference Citation Analysis]
|
81 |
Li Y, Hoffman MD, Benoit DSW. Matrix metalloproteinase (MMP)-degradable tissue engineered periosteum coordinates allograft healing via early stage recruitment and support of host neurovasculature. Biomaterials 2021;268:120535. [PMID: 33271450 DOI: 10.1016/j.biomaterials.2020.120535] [Cited by in Crossref: 14] [Cited by in F6Publishing: 14] [Article Influence: 4.7] [Reference Citation Analysis]
|
82 |
Sällström N, Goulas A, Martin S, Engstrøm DS. The effect of print speed and material aging on the mechanical properties of a self-healing nanocomposite hydrogel. Additive Manufacturing 2020;35:101253. [DOI: 10.1016/j.addma.2020.101253] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 0.7] [Reference Citation Analysis]
|
83 |
Wang J, Gao H, Hu Y, Zhang N, Zhou W, Wang C, Binks BP, Yang Z. 3D printing of Pickering emulsion inks to construct poly(D,L-lactide-co-trimethylene carbonate)-based porous bioactive scaffolds with shape memory effect. J Mater Sci 2021;56:731-45. [DOI: 10.1007/s10853-020-05318-7] [Cited by in Crossref: 13] [Cited by in F6Publishing: 9] [Article Influence: 4.3] [Reference Citation Analysis]
|
84 |
Jiang Z, Diggle B, Tan ML, Viktorova J, Bennett CW, Connal LA. Extrusion 3D Printing of Polymeric Materials with Advanced Properties. Adv Sci (Weinh) 2020;7:2001379. [PMID: 32999820 DOI: 10.1002/advs.202001379] [Cited by in Crossref: 70] [Cited by in F6Publishing: 75] [Article Influence: 23.3] [Reference Citation Analysis]
|
85 |
Zhu H, Yang H, Ma Y, Lu TJ, Xu F, Genin GM, Lin M. Spatiotemporally Controlled Photoresponsive Hydrogels: Design and Predictive Modeling from Processing through Application. Adv Funct Mater 2020;30:2000639. [PMID: 32802013 DOI: 10.1002/adfm.202000639] [Cited by in Crossref: 25] [Cited by in F6Publishing: 25] [Article Influence: 8.3] [Reference Citation Analysis]
|
86 |
Delaey J, Dubruel P, Van Vlierberghe S. Shape‐Memory Polymers for Biomedical Applications. Adv Funct Mater 2020;30:1909047. [DOI: 10.1002/adfm.201909047] [Cited by in Crossref: 73] [Cited by in F6Publishing: 76] [Article Influence: 24.3] [Reference Citation Analysis]
|
87 |
Entezari A, Liu NC, Roohani I, Zhang Z, Chen J, Sarrafpour B, Zoellner H, Behi M, Zreiqat H, Li Q. On design for additive manufacturing (DAM) parameter and its effects on biomechanical properties of 3D printed ceramic scaffolds. Materials Today Communications 2020;23:101065. [DOI: 10.1016/j.mtcomm.2020.101065] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 0.7] [Reference Citation Analysis]
|
88 |
Mobaraki M, Ghaffari M, Yazdanpanah A, Luo Y, Mills D. Bioinks and bioprinting: A focused review. Bioprinting 2020;18:e00080. [DOI: 10.1016/j.bprint.2020.e00080] [Cited by in Crossref: 82] [Cited by in F6Publishing: 87] [Article Influence: 27.3] [Reference Citation Analysis]
|
89 |
Cidonio G, Glinka M, Kim YH, Kanczler JM, Lanham SA, Ahlfeld T, Lode A, Dawson JI, Gelinsky M, Oreffo ROC. Nanoclay-based 3D printed scaffolds promote vascular ingrowth ex vivo and generate bone mineral tissue in vitro and in vivo. Biofabrication 2020;12:035010. [PMID: 32259804 DOI: 10.1088/1758-5090/ab8753] [Cited by in Crossref: 39] [Cited by in F6Publishing: 40] [Article Influence: 13.0] [Reference Citation Analysis]
|
90 |
Ye F, Yan Z, Zhang H, Chang H, Neuzil P. Microfabricated stem cell targeted differentiation systems. TrAC Trends in Analytical Chemistry 2020;126:115858. [DOI: 10.1016/j.trac.2020.115858] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 0.7] [Reference Citation Analysis]
|
91 |
Zhou L, Fu J, He Y. A Review of 3D Printing Technologies for Soft Polymer Materials. Adv Funct Mater 2020;30:2000187. [DOI: 10.1002/adfm.202000187] [Cited by in Crossref: 168] [Cited by in F6Publishing: 176] [Article Influence: 56.0] [Reference Citation Analysis]
|
92 |
Lim KS, Galarraga JH, Cui X, Lindberg GCJ, Burdick JA, Woodfield TBF. Fundamentals and Applications of Photo-Cross-Linking in Bioprinting. Chem Rev 2020;120:10662-94. [DOI: 10.1021/acs.chemrev.9b00812] [Cited by in Crossref: 117] [Cited by in F6Publishing: 125] [Article Influence: 39.0] [Reference Citation Analysis]
|
93 |
Sun X. Morphosynthesis of SnO2 nanocrystal networks as high-capacity anodes for lithium ion batteries. Ionics 2020;26:3841-51. [DOI: 10.1007/s11581-020-03552-2] [Cited by in Crossref: 9] [Cited by in F6Publishing: 10] [Article Influence: 3.0] [Reference Citation Analysis]
|
94 |
Li J, Wu C, Chu PK, Gelinsky M. 3D printing of hydrogels: Rational design strategies and emerging biomedical applications. Materials Science and Engineering: R: Reports 2020;140:100543. [DOI: 10.1016/j.mser.2020.100543] [Cited by in Crossref: 257] [Cited by in F6Publishing: 271] [Article Influence: 85.7] [Reference Citation Analysis]
|
95 |
Bi S, Pang J, Huang L, Sun M, Cheng X, Chen X. The toughness chitosan-PVA double network hydrogel based on alkali solution system and hydrogen bonding for tissue engineering applications. International Journal of Biological Macromolecules 2020;146:99-109. [DOI: 10.1016/j.ijbiomac.2019.12.186] [Cited by in Crossref: 38] [Cited by in F6Publishing: 40] [Article Influence: 12.7] [Reference Citation Analysis]
|
96 |
Yang J, Yu X, Sun X, Kang Q, Zhu L, Qin G, Zhou A, Sun G, Chen Q. Polyaniline-Decorated Supramolecular Hydrogel with Tough, Fatigue-Resistant, and Self-Healable Performances for All-In-One Flexible Supercapacitors. ACS Appl Mater Interfaces 2020;12:9736-45. [DOI: 10.1021/acsami.9b20573] [Cited by in Crossref: 63] [Cited by in F6Publishing: 69] [Article Influence: 21.0] [Reference Citation Analysis]
|
97 |
Sun Y, Nan D, Jin H, Qu X. Recent advances of injectable hydrogels for drug delivery and tissue engineering applications. Polymer Testing 2020;81:106283. [DOI: 10.1016/j.polymertesting.2019.106283] [Cited by in Crossref: 75] [Cited by in F6Publishing: 83] [Article Influence: 25.0] [Reference Citation Analysis]
|
98 |
Mondal S. Cellulose Nanocrystal as a Prospective Reinforcement for Polymer Matrix Nanocomposites. Encyclopedia of Renewable and Sustainable Materials 2020. [DOI: 10.1016/b978-0-12-803581-8.11292-5] [Reference Citation Analysis]
|
99 |
Chimene D, Kaunas R, Gaharwar AK. Hydrogel Bioink Reinforcement for Additive Manufacturing: A Focused Review of Emerging Strategies. Adv Mater 2020;32:e1902026. [PMID: 31599073 DOI: 10.1002/adma.201902026] [Cited by in Crossref: 235] [Cited by in F6Publishing: 245] [Article Influence: 78.3] [Reference Citation Analysis]
|
100 |
Zhu Y, Lin L, Chen Y, Song Y, Lu W, Guo Y. A self-healing, robust adhesion, multiple stimuli-response hydrogel for flexible sensors. Soft Matter 2020;16:2238-48. [DOI: 10.1039/c9sm02303h] [Cited by in Crossref: 28] [Cited by in F6Publishing: 30] [Article Influence: 9.3] [Reference Citation Analysis]
|
101 |
Jing Z, Xian X, Huang Q, Chen Q, Hong P, Li Y, Shi A. Biocompatible double network poly(acrylamide- co -acrylic acid)–Al 3+ /poly(vinyl alcohol)/graphene oxide nanocomposite hydrogels with excellent mechanical properties, self-recovery and self-healing ability. New J Chem 2020;44:10390-403. [DOI: 10.1039/d0nj01725f] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.0] [Reference Citation Analysis]
|
102 |
Hart LR, He Y, Ruiz-cantu L, Zhou Z, Irvine D, Wildman R, Hayes W. 3D and 4D printing of biomaterials and biocomposites, bioinspired composites, and related transformers. 3D and 4D Printing of Polymer Nanocomposite Materials 2020. [DOI: 10.1016/b978-0-12-816805-9.00015-6] [Cited by in Crossref: 2] [Article Influence: 0.7] [Reference Citation Analysis]
|
103 |
Hales S, Tokita E, Neupane R, Ghosh U, Elder B, Wirthlin D, Kong YL. 3D printed nanomaterial-based electronic, biomedical, and bioelectronic devices. Nanotechnology 2020;31:172001. [PMID: 31805540 DOI: 10.1088/1361-6528/ab5f29] [Cited by in Crossref: 26] [Cited by in F6Publishing: 27] [Article Influence: 6.5] [Reference Citation Analysis]
|
104 |
Pazarçeviren AE, Dikmen T, Altunbaş K, Yaprakçı V, Erdemli Ö, Keskin D, Tezcaner A. Composite clinoptilolite/PCL‐PEG‐PCL scaffolds for bone regeneration: In vitro and in vivo evaluation. J Tissue Eng Regen Med 2019;14:3-15. [DOI: 10.1002/term.2938] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 1.0] [Reference Citation Analysis]
|
105 |
Hassan M, Dave K, Chandrawati R, Dehghani F, Gomes VG. 3D printing of biopolymer nanocomposites for tissue engineering: Nanomaterials, processing and structure-function relation. European Polymer Journal 2019;121:109340. [DOI: 10.1016/j.eurpolymj.2019.109340] [Cited by in Crossref: 61] [Cited by in F6Publishing: 61] [Article Influence: 15.3] [Reference Citation Analysis]
|
106 |
Cheng Y, Chan KH, Wang XQ, Ding T, Li T, Lu X, Ho GW. Direct-Ink-Write 3D Printing of Hydrogels into Biomimetic Soft Robots. ACS Nano 2019;13:13176-84. [PMID: 31625724 DOI: 10.1021/acsnano.9b06144] [Cited by in Crossref: 113] [Cited by in F6Publishing: 121] [Article Influence: 28.3] [Reference Citation Analysis]
|
107 |
Xu C, Dai G, Hong Y. Recent advances in high-strength and elastic hydrogels for 3D printing in biomedical applications. Acta Biomater 2019;95:50-9. [PMID: 31125728 DOI: 10.1016/j.actbio.2019.05.032] [Cited by in Crossref: 77] [Cited by in F6Publishing: 78] [Article Influence: 19.3] [Reference Citation Analysis]
|
108 |
Rodríguez-montaño ÓL, Cortés-rodríguez CJ, Naddeo F, Uva AE, Fiorentino M, Naddeo A, Cappetti N, Gattullo M, Monno G, Boccaccio A. Irregular Load Adapted Scaffold Optimization: A Computational Framework Based on Mechanobiological Criteria. ACS Biomater Sci Eng 2019;5:5392-411. [DOI: 10.1021/acsbiomaterials.9b01023] [Cited by in Crossref: 10] [Cited by in F6Publishing: 11] [Article Influence: 2.5] [Reference Citation Analysis]
|
109 |
Motealleh A, Çelebi-saltik B, Ermis N, Nowak S, Khademhosseini A, Kehr NS. 3D printing of step-gradient nanocomposite hydrogels for controlled cell migration. Biofabrication 2019;11:045015. [DOI: 10.1088/1758-5090/ab3582] [Cited by in Crossref: 14] [Cited by in F6Publishing: 15] [Article Influence: 3.5] [Reference Citation Analysis]
|
110 |
Gao F, Xu Z, Liang Q, Li H, Peng L, Wu M, Zhao X, Cui X, Ruan C, Liu W. Osteochondral Regeneration with 3D-Printed Biodegradable High-Strength Supramolecular Polymer Reinforced-Gelatin Hydrogel Scaffolds. Adv Sci (Weinh) 2019;6:1900867. [PMID: 31406678 DOI: 10.1002/advs.201900867] [Cited by in Crossref: 135] [Cited by in F6Publishing: 143] [Article Influence: 33.8] [Reference Citation Analysis]
|
111 |
Yang J, Li Y, Yu X, Sun X, Zhu L, Qin G, Dai Y, Chen Q. Tough and Conductive Dual Physically Cross-Linked Hydrogels for Wearable Sensors. Ind Eng Chem Res 2019;58:17001-9. [DOI: 10.1021/acs.iecr.9b01796] [Cited by in Crossref: 14] [Cited by in F6Publishing: 14] [Article Influence: 3.5] [Reference Citation Analysis]
|
112 |
Chen M, Zhang Y, Xie Q, Zhang W, Pan X, Gu P, Zhou H, Gao Y, Walther A, Fan X. Long-Term Bone Regeneration Enabled by a Polyhedral Oligomeric Silsesquioxane (POSS)-Enhanced Biodegradable Hydrogel. ACS Biomater Sci Eng 2019;5:4612-23. [DOI: 10.1021/acsbiomaterials.9b00642] [Cited by in Crossref: 20] [Cited by in F6Publishing: 20] [Article Influence: 5.0] [Reference Citation Analysis]
|
113 |
Afewerki S, Magalhães LSSM, Silva ADR, Stocco TD, Silva Filho EC, Marciano FR, Lobo AO. Bioprinting a Synthetic Smectic Clay for Orthopedic Applications. Adv Healthc Mater 2019;8:e1900158. [PMID: 30957992 DOI: 10.1002/adhm.201900158] [Cited by in Crossref: 20] [Cited by in F6Publishing: 20] [Article Influence: 5.0] [Reference Citation Analysis]
|
114 |
Bourguignon M, Thomassin J, Grignard B, Jerome C, Detrembleur C. Fast and Facile One-Pot One-Step Preparation of Nonisocyanate Polyurethane Hydrogels in Water at Room Temperature. ACS Sustainable Chem Eng 2019. [DOI: 10.1021/acssuschemeng.9b02624] [Cited by in Crossref: 4] [Cited by in F6Publishing: 5] [Article Influence: 1.0] [Reference Citation Analysis]
|
115 |
Yang F, Niu X, Gu X, Xu C, Wang W, Fan Y. Biodegradable Magnesium-Incorporated Poly( l -lactic acid) Microspheres for Manipulation of Drug Release and Alleviation of Inflammatory Response. ACS Appl Mater Interfaces 2019;11:23546-57. [DOI: 10.1021/acsami.9b03766] [Cited by in Crossref: 43] [Cited by in F6Publishing: 46] [Article Influence: 10.8] [Reference Citation Analysis]
|
116 |
Gaharwar AK, Cross LM, Peak CW, Gold K, Carrow JK, Brokesh A, Singh KA. 2D Nanoclay for Biomedical Applications: Regenerative Medicine, Therapeutic Delivery, and Additive Manufacturing. Adv Mater 2019;31:e1900332. [PMID: 30941811 DOI: 10.1002/adma.201900332] [Cited by in Crossref: 135] [Cited by in F6Publishing: 140] [Article Influence: 33.8] [Reference Citation Analysis]
|
117 |
Heidarian P, Kouzani AZ, Kaynak A, Paulino M, Nasri-nasrabadi B. Dynamic Hydrogels and Polymers as Inks for Three-Dimensional Printing. ACS Biomater Sci Eng 2019;5:2688-707. [DOI: 10.1021/acsbiomaterials.9b00047] [Cited by in Crossref: 47] [Cited by in F6Publishing: 47] [Article Influence: 11.8] [Reference Citation Analysis]
|
118 |
Midha S, Dalela M, Sybil D, Patra P, Mohanty S. Advances in three-dimensional bioprinting of bone: Progress and challenges. J Tissue Eng Regen Med. 2019;13:925-945. [PMID: 30812062 DOI: 10.1002/term.2847] [Cited by in Crossref: 38] [Cited by in F6Publishing: 40] [Article Influence: 9.5] [Reference Citation Analysis]
|
119 |
Liu S, Jin M, Chen Y, Teng L, Qi D, Ren L. Air‐In‐Water Emulsion Solely Stabilized by Gelatin Methacryloyl and Templating for Macroporous Nanocomposite Hydrogels. Macromol Chem Phys 2019;220:1800500. [DOI: 10.1002/macp.201800500] [Cited by in Crossref: 7] [Cited by in F6Publishing: 8] [Article Influence: 1.8] [Reference Citation Analysis]
|
120 |
Hiratsuka A, Iwasa H, Uzawa H, Suzuki A, Muguruma H. Direct-Electron-Transfer Bio-Nanoink with Single-Walled Carbon Nanotube and Aspergillus terreus var. aureus Flavin Adenine Dinucleotide Glucose Dehydrogenase. ACS Omega 2019;4:5776-83. [DOI: 10.1021/acsomega.9b00060] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 2.0] [Reference Citation Analysis]
|
121 |
Pan X, Wang Q, He P, Liu K, Ni Y, Ouyang X, Chen L, Huang L, Wang H, Tan Y. Mussel-Inspired Nanocomposite Hydrogel-Based Electrodes with Reusable and Injectable Properties for Human Electrophysiological Signals Detection. ACS Sustainable Chem Eng 2019;7:7918-25. [DOI: 10.1021/acssuschemeng.9b00579] [Cited by in Crossref: 65] [Cited by in F6Publishing: 66] [Article Influence: 16.3] [Reference Citation Analysis]
|
122 |
Feng P, He J, Peng S, Gao C, Zhao Z, Xiong S, Shuai C. Characterizations and interfacial reinforcement mechanisms of multicomponent biopolymer based scaffold. Mater Sci Eng C Mater Biol Appl 2019;100:809-25. [PMID: 30948118 DOI: 10.1016/j.msec.2019.03.030] [Cited by in Crossref: 73] [Cited by in F6Publishing: 67] [Article Influence: 18.3] [Reference Citation Analysis]
|
123 |
Jafarbeglou M, Abdouss M. Fabricating Hybrid Microsphere Substrate Based PLGA-CNT with In Situ Drug Release: Characterization and In Vitro Evaluation. ChemistrySelect 2019;4:2095-2100. [DOI: 10.1002/slct.201803326] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.3] [Reference Citation Analysis]
|
124 |
Shang J, Le X, Zhang J, Chen T, Theato P. Trends in polymeric shape memory hydrogels and hydrogel actuators. Polym Chem 2019;10:1036-55. [DOI: 10.1039/c8py01286e] [Cited by in Crossref: 115] [Cited by in F6Publishing: 117] [Article Influence: 28.8] [Reference Citation Analysis]
|
125 |
Reddy KR, Venkata Reddy C, Babu B, Ravindranadh K, Naveen S, Raghu AV. Recent advances in layered clays–intercalated polymer nanohybrids. Modified Clay and Zeolite Nanocomposite Materials 2019. [DOI: 10.1016/b978-0-12-814617-0.00013-x] [Cited by in Crossref: 12] [Cited by in F6Publishing: 13] [Article Influence: 3.0] [Reference Citation Analysis]
|
126 |
Gao F, Ruan C, Liu W. High-strength hydrogel-based bioinks. Mater Chem Front 2019;3:1736-46. [DOI: 10.1039/c9qm00373h] [Cited by in Crossref: 30] [Cited by in F6Publishing: 30] [Article Influence: 7.5] [Reference Citation Analysis]
|
127 |
Bouguéon G, Kauss T, Dessane B, Barthélémy P, Crauste-manciet S. Micro- and nano-formulations for bioprinting and additive manufacturing. Drug Discovery Today 2019;24:163-78. [DOI: 10.1016/j.drudis.2018.10.013] [Cited by in Crossref: 13] [Cited by in F6Publishing: 14] [Article Influence: 3.3] [Reference Citation Analysis]
|
128 |
Kan L, Zhang P, Jiang H, Zhang S, Liu Z, Zhang X, Ma N, Qiu D, Wei H. Microphase separation of a quadruple hydrogen bonding supramolecular polymer: effect of the steric hindrance of the ureido-pyrimidone on their viscoelasticity. RSC Adv 2019;9:8905-11. [DOI: 10.1039/c8ra08861f] [Cited by in Crossref: 10] [Cited by in F6Publishing: 11] [Article Influence: 2.5] [Reference Citation Analysis]
|
129 |
Jiang P, Yan C, Guo Y, Zhang X, Cai M, Jia X, Wang X, Zhou F. Direct ink writing with high-strength and swelling-resistant biocompatible physically crosslinked hydrogels. Biomater Sci 2019;7:1805-14. [DOI: 10.1039/c9bm00081j] [Cited by in Crossref: 60] [Cited by in F6Publishing: 62] [Article Influence: 15.0] [Reference Citation Analysis]
|
130 |
Gopinathan J, Noh I. Current Status of Development and Intellectual Properties of Biomimetic Medical Materials. Adv Exp Med Biol 2018;1064:377-99. [PMID: 30471044 DOI: 10.1007/978-981-13-0445-3_22] [Reference Citation Analysis]
|
131 |
Mora-Boza A, Lopez-Donaire ML. Preparation of Polymeric and Composite Scaffolds by 3D Bioprinting. Adv Exp Med Biol 2018;1058:221-45. [PMID: 29691824 DOI: 10.1007/978-3-319-76711-6_10] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 1.0] [Reference Citation Analysis]
|
132 |
Shao N, Guo J, Guan Y, Zhang H, Li X, Chen X, Zhou D, Huang Y. Development of Organic/Inorganic Compatible and Sustainably Bioactive Composites for Effective Bone Regeneration. Biomacromolecules 2018;19:3637-48. [DOI: 10.1021/acs.biomac.8b00707] [Cited by in Crossref: 36] [Cited by in F6Publishing: 38] [Article Influence: 7.2] [Reference Citation Analysis]
|
133 |
Yu X, Li Y, Yang J, Chen F, Tang Z, Zhu L, Qin G, Dai Y, Chen Q. Nanoclay Reinforced Self-Cross-Linking Poly( N -Hydroxyethyl Acrylamide) Hydrogels with Integrated High Performances. Macromol Mater Eng 2018;303:1800295. [DOI: 10.1002/mame.201800295] [Cited by in Crossref: 15] [Cited by in F6Publishing: 15] [Article Influence: 3.0] [Reference Citation Analysis]
|
134 |
Li X, Su X. Multifunctional smart hydrogels: potential in tissue engineering and cancer therapy. J Mater Chem B 2018;6:4714-30. [PMID: 32254299 DOI: 10.1039/c8tb01078a] [Cited by in Crossref: 84] [Cited by in F6Publishing: 89] [Article Influence: 16.8] [Reference Citation Analysis]
|
135 |
Wei P, Yuan Z, Cai Q, Mao J, Yang X. Bioresorbable Microspheres with Surface-Loaded Nanosilver and Apatite as Dual-Functional Injectable Cell Carriers for Bone Regeneration. Macromol Rapid Commun 2018;39:1800062. [DOI: 10.1002/marc.201800062] [Cited by in Crossref: 15] [Cited by in F6Publishing: 17] [Article Influence: 3.0] [Reference Citation Analysis]
|
136 |
Nadgorny M, Ameli A. Functional Polymers and Nanocomposites for 3D Printing of Smart Structures and Devices. ACS Appl Mater Interfaces 2018;10:17489-507. [DOI: 10.1021/acsami.8b01786] [Cited by in Crossref: 123] [Cited by in F6Publishing: 128] [Article Influence: 24.6] [Reference Citation Analysis]
|
137 |
Mousa M, Evans ND, Oreffo RO, Dawson JI. Clay nanoparticles for regenerative medicine and biomaterial design: A review of clay bioactivity. Biomaterials 2018;159:204-14. [DOI: 10.1016/j.biomaterials.2017.12.024] [Cited by in Crossref: 142] [Cited by in F6Publishing: 143] [Article Influence: 28.4] [Reference Citation Analysis]
|
138 |
Zhai X, Ruan C, Ma Y, Cheng D, Wu M, Liu W, Zhao X, Pan H, Lu WW. 3D-Bioprinted Osteoblast-Laden Nanocomposite Hydrogel Constructs with Induced Microenvironments Promote Cell Viability, Differentiation, and Osteogenesis both In Vitro and In Vivo. Adv Sci (Weinh) 2018;5:1700550. [PMID: 29593958 DOI: 10.1002/advs.201700550] [Cited by in Crossref: 100] [Cited by in F6Publishing: 107] [Article Influence: 20.0] [Reference Citation Analysis]
|
139 |
Gu Z, Chen L, Xu Y, Liu Y, Zhao Z, Zhao C, Lei W, Rong Q, Fang R, Zhao T, Liu M. General Strategy to Fabricate Highly Filled Microcomposite Hydrogels with High Mechanical Strength and Stiffness. ACS Appl Mater Interfaces 2018;10:4161-7. [DOI: 10.1021/acsami.7b17689] [Cited by in Crossref: 10] [Cited by in F6Publishing: 10] [Article Influence: 2.0] [Reference Citation Analysis]
|
140 |
Gao F, Xu Z, Liang Q, Liu B, Li H, Wu Y, Zhang Y, Lin Z, Wu M, Ruan C, Liu W. Direct 3D Printing of High Strength Biohybrid Gradient Hydrogel Scaffolds for Efficient Repair of Osteochondral Defect. Adv Funct Mater 2018;28:1706644. [DOI: 10.1002/adfm.201706644] [Cited by in Crossref: 173] [Cited by in F6Publishing: 173] [Article Influence: 34.6] [Reference Citation Analysis]
|
141 |
Xu Z, Liu W. Poly( N -acryloyl glycinamide): a fascinating polymer that exhibits a range of properties from UCST to high-strength hydrogels. Chem Commun 2018;54:10540-53. [DOI: 10.1039/c8cc04614j] [Cited by in Crossref: 49] [Cited by in F6Publishing: 49] [Article Influence: 9.8] [Reference Citation Analysis]
|
142 |
Wypych F, Bergaya F, Schoonheydt RA. From polymers to clay polymer nanocomposites. Developments in Clay Science 2018. [DOI: 10.1016/b978-0-08-102432-4.00010-x] [Cited by in Crossref: 7] [Cited by in F6Publishing: 7] [Article Influence: 1.4] [Reference Citation Analysis]
|
143 |
Ghoshal S. Polymer/Carbon Nanotubes (CNT) Nanocomposites Processing Using Additive Manufacturing (Three-Dimensional Printing) Technique: An Overview. Fibers 2017;5:40. [DOI: 10.3390/fib5040040] [Cited by in Crossref: 41] [Cited by in F6Publishing: 42] [Article Influence: 6.8] [Reference Citation Analysis]
|