参考文献/References:
[1] VAISHYA R,CHAUHAN M,VAISH A. Bone cement[J]. Journal of clinical orthopaedics and trauma,2013,4(4):157-163.
[2]JOHL S S,BURGETT R A. Dermal filler agents:a practical review[J]. Current opinion in ophthalmology,2006,17(5):471-479.
[3]FREY N,LINKE A,SüSELBECK T,et al. Intracoronary delivery of injectable bioabsorbable scaffold(IK-5001)to treat left ventricular remodeling after ST-elevation myocardial infarction:a first-in-man study[J]. Circulation:cardiovascular interventions,2014,7(6):806-812.
[4]NAAHIDI S,JAFARI M,LOGAN M,et al. Biocompatibility of hydrogel-based scaffolds for tissue engineering applications[J]. Biotechnology advances,2017,35(5):530-544.
[5]DRURY J L,MOONEY D J. Hydrogels for tissue engineering:scaffold design variables and applications[J]. Biomaterials,2003,24(24):4337-4351.
[6]HONG L T A,KIM Y M,PARK H H,et al. An injectable hydrogel enhances tissue repair after spinal cord injury by promoting extracellular matrix remodeling[J]. Nature communications,2017,8(1):533.
[7]ULLAH F,OTHMAN M B,JAVED F,et al. Classification,processing and application of hydrogels:A review[J]. Materials science and engineering C:materials for biological applications,2015,57:414-433.
[8]MANO J F,SILVA G A,AZVEDO H S,et al. Natural origin biodegradable systems in tissue engineering and regenerative medicine:present status and some moving trends[J]. Journal of the royal society interface,2007,4(17):999-1030.
[9]ZHANG C,ZHANG Y P,SHAO H L,et al. Hybrid silk fibers dry-spun from regenerated silk fibroin/graphene oxide aqueous solutions[J]. ACS applied materials & interfaces,2016,8(5):3349-3358.
[10]ZHAO Y H,LIANG Y Y,DING S P,et al. Application of conductive PPy/SF composite scaffold and electrical stimulation for neural tissue engineering[J]. Biomaterials,2020,255:120164.
[11]FINI M,MOTTA A,TORRICELLI P,et al. The healing of confined critical size cancellous defects in the presence of silk fibroin hydrogel[J]. Biomaterials,2005,26:3527-3536.
[12]XU H L,CHEN P P,Zhuge D L,et al. Liposomes with silk fibroin hydrogel core to stabilize bfgf and promote the wound healing of mice with deep second-degree scald[J]. Advanced healthcare materials,2017,6(19):1700344.
[13]LEE C,WEI X D,KYSAR J W,et al. Measurement of the elastic properties and intrinsic strength of monolayer graphene[J]. Science,2008,321(5887):385-388.
[14]BANO S,MAHMOOD A,KIM S J,et al. Graphene oxide modified polyamide nanofiltration membrane with improved flux and antifouling properties[J]. Journal of materials chemistry A,2015,3(5):1-1.
[15]WANG J,CHENG Y,CHEN L,et al. In vitro and in vivo studies of electroactive reduced graphene oxide-modified nanofiber scaffolds for peripheral nerve regeneration[J]. Acta biomaterialia,2019,84:98-113.
[16]XU M,ZHU J Q,WANG F F,et al. Improved in vitro and in vivo biocompatibility of graphene oxide through surface modification:poly(acrylic acid)-functionalization is superior to PEGylation[J]. ACS nano,2016,10:3267-3281.
[17]IBRAHIM M M,PATEL P S,WU Z J,et al. Detection of flap tissue ischemia in a rat model:real-time monitoring of changes in oxygenation and perfusion through injectable biosensors[J]. Surgery,2020,168(5):926-934.
[18]ZHANG X,YANG R,WANG C,et al. Cell biocompatibility of functionalized graphene oxide[J]. Acta physico-chimica sinica,2012,28:1520-1524.