Page 385 - IJB-9-1
P. 385

International Journal of Bioprinting                          Micro/nano-3D hemostats for rapid wound healing



            109. Davoodi E, Montazerian H, Zhianmanesh M, et al., 2021,   124. Huang Y, Zhao X, Wang C, et al., 2022, High-strength anti-
               Template-enabled biofabrication of thick three-dimensional   bacterial composite cryogel for lethal noncompressible
               tissues with patterned perfusable macro-channels.  Adv   hemorrhage  hemostasis:  Synergistic  physical
               Healthc Mater, 2021: e2102123.                     hemostasis and chemical hemostasis.  J Chem Eng, 427:
                                                                  131977.
            110. Weems AC, Arno MC, Yu W, et al., 2021, 4D polycarbonates
               via stereolithography as scaffolds for soft tissue repair. Nat   125. Teng L, Xia K, Qian T,  et al., 2022, Shape-recoverable
               Commun, 12: 3771.                                  macroporous nanocomposite hydrogels created via ice
                                                                  templating polymerization for noncompressible wound
            111. Cosola A, Sangermano M, Terenziani D,  et  al., 2021, dlp
               3D-printing of shape memory polymers stabilized by   hemorrhage. ACS Biomater Sci Eng, 8: 2076–2087.
               thermoreversible  hydrogen  bonding  interactions.  Appl   126. Zhu Y, Liu H, Qin S,  et al., 2022, Antibacterial sericin
               Mater Today, 23: 101060.                           cryogels promote hemostasis by facilitating the activation of
                                                                  coagulation pathway and platelets. Adv Healthc Mater, 2022:
            112. Kurtuldu F, Mutlu N, Boccaccini AR, et al., 2022, Gallium
               containing bioactive materials: A review of anticancer,   2102717.
               antibacterial, and osteogenic properties.  Bioact Mater, 17:   127. Zhang Y, Wang Y, Chen L, et al., An injectable antibacterial
               125–146.                                           chitosan-based cryogel with high absorbency and rapid
                                                                  shape recovery for noncompressible hemorrhage and
            113. Pourshahrestani S, Zeimaran E, Kadri NA, et al., 2017, Potency
               and cytotoxicity of a novel gallium-containing mesoporous   wound healing. Biomaterials, 285: 121546.
               bioactive  glass/chitosan  composite  scaffold  as  hemostatic   128. Bai Q, Teng L, Zhang X, et al., 2022, Multifunctional single‐
               agents. ACS Appl Mater Interfaces, 9: 31381–31392.  component polypeptide hydrogels: The gelation mechanism,
                                                                  superior biocompatibility, high performance hemostasis,
            114. Galliger Z, Vogt CD, Panoskaltsis-Mortari A, 2019, 3D
               bioprinting for lungs and hollow organs. Transl Res, 211:   and scarless wound healing. Adv Healthc Mater, 11: 2101809.
               19–34.                                          129. Duan S, Wu R, Xiong Y-H,  et al., 2022, Multifunctional
                                                                  antimicrobial materials: From rational design to biomedical
            115. Sun Z, Lu Y, Zhao Q, et al., 2022, A new stereolithographic
               3D printing strategy for hydrogels with a large mechanical   applications. Prog Mater Sci, 125: 100887.
               tunability and self-weldability. Addit Manuf, 50: 102563.  130. Liu J, Zhou X, Zhang Y, et al., 2022, Rapid hemostasis and
                                                                  excellent antibacterial cerium-containing mesoporous
            116. Palaganas NB, Mangadlao JD, de Leon ACC, et al., 2017, 3D
               printing of photocurable cellulose nanocrystal composite for   bioactive glass/chitosan composite sponge for hemostatic
               fabrication of complex architectures via stereolithography.   material. Mater Today Chem, 23: 100735.
               ACS Appl Mater Interfaces, 9: 34314–34324.      131. Cao C, Yang N, Zhao Y, et al., 2021, Biodegradable hydrogel
                                                                  with thermo-response and hemostatic effect for photothermal
            117. Quan H, Zhang T, Xu H, et al., 2020, Photo-curing 3d printing
               technique and its challenges. Bioact Mater, 5: 110–115.  enhanced anti-infective therapy.  Nano Today, 39:
                                                                  101165.
            118. Zhou F, Hong Y, Liang R,  et al., 2020, Rapid printing of
               bio-inspired 3D tissue constructs for skin regeneration.   132. Choudhary M, Chhabra P, Tyagi A, et al., Scar free healing
               Biomaterials, 258: 120287.                         of full thickness diabetic wounds: A unique combination of
                                                                  silver nanoparticles as antimicrobial agent, calcium alginate
            119. Vera D, García-Díaz M, Torras N, et al., Engineering tissue   nanoparticles as hemostatic agent, fresh blood as nutrient/
               barrier models on hydrogel microfluidic platforms.  ACS   growth factor supplier and chitosan as base matrix. Int J Biol
               Appl Mater Interfaces, 13: 13920–13933.            Macromol, 178: 41–52.
            120. Rezaei FS, Sharifianjazi F, Esmaeilkhanian A, et al., Chitosan   133. Zheng Y, Pan N, Liu Y, et al., 2021, Novel porous chitosan/
               films and scaffolds for regenerative medicine applications: A   N-halamine structure with efficient antibacterial and
               review. Carbohydr Polym, 273: 118631.              hemostatic properties. Carbohydr Polym, 253: 117205.
            121. Illath K, Kar S, Gupta P,  et al., 2021, Microfluidic   134. Yin M, Wang Y, Zhang Y, et al., 2020, Novel quaternarized
               nanomaterials: From synthesis to biomedical applications.   N-halamine chitosan and polyvinyl alcohol nanofibrous
               Biomaterials, 2021: 121247.                        membranes as hemostatic materials with excellent
            122. Xu Z, Tian W, Wen C, et al., 2022, Cellulose-based cryogel   antibacterial properties. Carbohydr Polym, 232: 115823.
               microspheres with nanoporous and controllable wrinkled   135. Zhou J, Zhang H, Fareed MS,  et al., 2022, An injectable
               morphologies for rapid hemostasis.  Nano Letters, 22:    peptide hydrogel constructed of natural antimicrobial
               6350–6358.                                         peptide j-1 and adp shows anti-infection, hemostasis, and
            123. Wang  M, Hu  J, Ou Y,  et al.,  2022, Shape-recoverable   antiadhesion efficacy. ACS Nano, 16: 7636–7657.
               hyaluronic acid–waterborne polyurethane hybrid cryogel   136. Liang Y, Liang Y, Zhang H,  et al., 2022, Antibacterial
               accelerates hemostasis and wound healing. ACS Appl Mater   biomaterials for skin wound dressing. Asian J Pharm Sci, 17:
               Interfaces, 14: 17093–17108.                       353–384.


            V
            Volume 9 Issue 1 (2023)olume 9 Issue 1 (2023)  377                      https://doi.org/10.18063/ijb.v9i1.648
   380   381   382   383   384   385   386   387   388   389   390