Page 383 - IJB-9-1
P. 383

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



            48.  Chen S, Carlson MA, Zhang YS,  et al., 2018, Fabrication   63.  Yuk H, Wu J, Sarrafian TL,  et al.,  2021,  Rapid  and
               of injectable and superelastic nanofiber rectangle matrices   coagulation-independent haemostatic sealing by a paste
               (“peanuts”) and their potential applications in hemostasis.   inspired by barnacle glue. Nat Biomed Eng, 5: 1131–1142.
               Biomaterials, 179: 46–59.
                                                               64.  Yang Y, Liang Y, Chen J, et al., 2022, Mussel-inspired adhesive
            49.  Chen R, Zhao C, Chen Z, et al., 2022, A bionic cellulose   antioxidant antibacterial hemostatic composite hydrogel
               nanofiber-based nanocage wound dressing for NIR-triggered   wound dressing via photo-polymerization for infected skin
               multiple synergistic therapy of tumors and infected wounds.   wound healing. Bioact Mater, 8: 341–354.
               Biomaterials, 281: 121330.
                                                               65.  Ruiz-Esparza GU, Wang X, Zhang X,  et al., 2021,
            50.  Jeong GJ, Im GB, Lee TJ, et al., 2021, Development of a stem   Nanoengineered shear-thinning hydrogel barrier for preventing
               cell spheroid‐laden patch with high retention at skin wound   postoperative abdominal adhesions, Micro Nano Lett, 13: 212.
               site. Bioeng Transl Med, 2022: 1–10.
                                                               66.  Pourshahrestani S, Zeimaran E, Kadri NA,  et al, 2020,
            51.  Shi  Z,  Lan  G,  Hu  E,  et al.,  2022,  Targeted  delivery  of   Polymeric hydrogel systems as emerging biomaterial
               hemostats to complex bleeding wounds with magnetic   platforms to enable hemostasis and wound healing.
               guidance for instant hemostasis. J Chem Eng, 427: 130916.  Adv Healthc Mater, 9: e2000905.
            52.  Xi G, Liu W, Chen M, et al., 2019, Polysaccharide-based lotus   67.  Zhang F, King MW, 2020, Biodegradable polymers as the
               seedpod surface-like porous microsphere with precise and   pivotal player in the design of tissue engineering scaffolds.
               controllable  micromorphology  for ultrarapid  hemostasis.   Adv Healthc Mater, 9:e1901358.
               ACS Appl Mater Interfaces, 11: 46558–46571.
                                                               68.  Wang XX, Liu Q, Sui JX, et al., 2019, Recent advances in
            53.  Huang X, Fu Q, Deng Y, et al., 2021, Surface roughness of   hemostasis at the nanoscale. Adv Healthc Mater, 8: e1900823.
               silk fibroin/alginate microspheres for rapid hemostasis in   69.  Hao  R,  Peng  X,  Zhang Y,  et al.,  2020,  Rapid  hemostasis
               vitro and in vivo. Carbohydr Polym, 253: 117256.
                                                                  resulting from the synergism of self-assembling short peptide
            54.  Liu X, Moradi MA, Bus T,  et al., 2021, Flower-like   and O-carboxymethyl chitosan. ACS Appl Mater Interfaces,
               colloidal particles through precipitation polymerization   12: 55574–55583.
               of redox-responsive liquid crystals.  Angew Chem, 60:    70.  Vassey MJ, Figueredo GP, Scurr DJ,  et al., 2020, Immune
               27026–27030.
                                                                  modulation by design: Using topography to control human
            55.  Lv C, Li L, Jiao Z, et al., 2021, Improved hemostatic effects by   monocyte attachment and macrophage differentiation. Adv
               Fe(3+) modified biomimetic PLLA cotton-like mat via sodium   Sci, 7: 1903392.
               alginate grafted with dopamine. Bioact Mater, 6: 2346–2359.
                                                               71.  Zhou K, Chigan D, Xu L,  et al., 2021, Anti-sandwich
            56.  Wu J, Guo J, Linghu C,  et al., 2021, Rapid digital light   structured photo-electronic wound dressing for highly
               3D printing enabled by a soft and deformable hydrogel   efficient bacterial infection therapy. Small, 17: e2101858.
               separation interface. Nat Commun, 12: 6070.
                                                               72.  Chen M, Dong R, Zhang J, et al., 2021, Nanoscale metal-
            57.  Peng X, Xu X, Deng Y,  et al., 2021, Ultrafast self‐gelling   organic frameworks that are both fluorescent and hollow for
               and wet adhesive powder for acute hemostasis and wound   self-indicating drug delivery. ACS Appl Mater Interfaces, 13:
               healing. Adv Funct Mater, 31: 2102583.             18554–18562.
            58.  Collins MN, Ren G, Young K,  et  al., 2021, Scaffold   73.  Gong, Celi N, Zhang D, 2022, Magnetic biohybrid
               fabrication technologies and structure/function properties   microrobot multimers based on chlorella cells for enhanced
               in bone tissue engineering. Adv Funct Mater, 31: 2010609.  targeted drug delivery.  ACS Appl  Mater  Interfaces, 14:
                                                                  6320–6330.
            59.  Mohamed E, Fitzgerald A, Tsuzuki T, 2021, The role
               of nanoscale structures in the development of topical   74.  Chen J, Caserto JS, Ang I,  et al., 2021, An adhesive and
               hemostatic agents. Mater Today Nano, 16: 100137.   resilient hydrogel for the sealing and treatment of gastric
                                                                  perforation. Bioact Mater, 14: 52–60.
            60.  Karavasili C, Fatouros DG, 2021, Self-assembling peptides
               as vectors for local drug delivery and tissue engineering   75. Wang J, Li Y, Nie G, 2021, Multifunctional biomolecule
               applications. Adv Drug Deliv Rev, 174: 387–405.    nanostructures for cancer therapy. Nat Rev Mater, 6: 1–18.
            61.  Udangawa RN, Mikael PE, Mancinelli C, et al., 2019, Novel   76.  Daikuara LY, Chen X, Yue Z, et al., 2021, 3D bioprinting
               cellulose-halloysite hemostatic nanocomposite  fibers  with   constructs to facilitate skin regeneration. Adv Funct Mater,
               a dramatic reduction in human plasma coagulation time.   32: 2105080.
               ACS Appl Mater Interfaces, 11: 15447–15456.
                                                               77.  Li D, Yang Z, Zhao X, et al., 2022, Osteoimmunomodulatory
            62.  Sun X, Jia P, Zhang H,  et al., 2021, Green regenerative   injectable lithium-heparin hydrogel with microspheres/
               hydrogel wound dressing functionalized by natural   TGF-β1 delivery promotes M2 macrophage polarization
               drug‐food homologous  small  molecule self‐assembled   and osteogenesis for guided bone regeneration. J Chem Eng,
               nanospheres. Adv Funct Mater, 32: 2106572.         435: 134991.


            Volume 9 Issue 1 (2023)olume 9 Issue 1 (2023)
            V                                              375                      https://doi.org/10.18063/ijb.v9i1.648
   378   379   380   381   382   383   384   385   386   387   388