参考文献

参考文献

[1]Goudenege S,Goudenege,Carl,et al.Myoblasts derived from normal h ESCs and dystrophic hiPSCs efficiently fuse with existing muscle fibers following transplantation.Mol Ther,2012,20(11):2153-2167.

[2]Darabi R,Arpke R,Irion S,et al.Human ES-and iPS-derived myogenic progenitors restore DYSTROPHIN and improve contractility upon transplantation in dystrophic mice.Cell Stem Cell,2012,10(5):610-619.

[3]Maffioletti S M,Gerli M F M,Ragazzi M,et al.Efficient derivation and inducible differentiation of expandable skeletal myogenic cells from human ES and patient-specific iPS cells.Nat Protoc,2015,10(7):941-958.

[4]Tedesco F S,Gerli M F M,Perani L,et al.Transplantation of genetically corrected human iPSCderived progenitors in mice with limb-girdle muscular dystrophy.Sci Transl Med,2012,4(140):140ra89.

[5]Hick,Aurore,Gobert,et al.Generation of human muscle fibers and satellite-like cells from human pluripotent stem cells in vitro.Nat Protoc,2016,11(10):1833-1850.

[6]Chal J,Oginuma M,Tanoury Z A,et al.Differentiation of pluripotent stem cells to muscle fiber to model Duchenne muscular dystrophy.Nat Biotechnol,2015,33(9):962-969.

[7]Fu X,Zhuang C L,Hu P.Regulation of muscle stem cell fate.Cell Regen,2022,11(1):40.

[8]Fu X,Wang H,Hu P.Stem cell activation in skeletal muscle regeneration.Cell Mol Life Sci,2015,72(9):1663-1677.

[9]Xin,Fu,Jun,et al.Combination of inflammation-related cytokines promotes long-term muscle stem cell expansion.Cell Res,2015,25(6):655-673.

[10]Martins J M F,Fisher C,Vrzi A,et al.Self-organizing 3D human trunk neuromuscular organoids.Cell Stem Cell,2020,27(3):498.

[11]Bakooshli M A,Lippmann E S,Mulcahy B,et al.A 3D culture model of innervated human skeletal muscle enables studies of the adult neuromuscular junction.elife Sciences,2019,8.

[12]Jin Y,Shahriari D,Jeon E J,et al.Functional skeletal muscle regeneration with thermally drawn porous fibers and reprogrammed muscle progenitors for volumetric muscle injury.Adv Mater,2021,33(14):e2007946.

[13]Gokyer S,Yilgor E,Yilgor I,et al.3D printed biodegradable polyurethaneurea elastomer recapitulates skeletal muscle structure and function.ACS Biomater Sci Eng,2021,7(11):5189-5205.

[14]Nakayama K H,Quarta M,Paine P,et al.Treatment of volumetric muscle loss in mice using nanofibrillar scaffolds enhances vascular organization and integration.Commun Biol,2019,2:170.

[15]Juhas M,Engelmayr G,Fontanella A,et al.Biomimetic engineered muscle with capacity for vascular integration and functional maturation in vivo.Proc Natl Acad Sci U S A,2014,111(15):5508-5513.

[16]Heher P,Christiane,Ruenzler,et al.A novel bioreactor for the generation of highly aligned 3D skeletal muscle-like constructs through orientation of fibrin via application of static strain.Acta Biomater,2015,24:251-265.

[17]Kim S H,Kim D Y,Lim T H,et al.Silk fibroin bioinks for digital light processing(DLP)3D bioprinting.Adv Exp Med Biol,2020,1249:53-66.

[18]Hinds S,Bian W,Dennis R G,et al.The role of extracellular matrix composition in structure and function of bioengineered skeletal muscle.Biomaterials,2011,32(14):3575-3583.

[19]Choi Y J,Jun Y J,Kin D Y,et al.A 3D cell printed muscle construct with tissue-derived bioink for the treatment of volumetric muscle loss.Biomaterials,2019,206:160-169.

[20]Quarta M,Cromie M,Chacon R,et al.Bioengineered constructs combined with exercise enhance stem cell-mediated treatment of volumetric muscle loss.Nat Commun,2017,8:15613.

[21]Zhang Q,Chiu Y,Chen Y,et al.Harnessing the synergy of perfusable muscle flap matrix and adipose-derived stem cells for prevascularization and macrophage polarization to reconstruct volumetric muscle loss.Bioact Mater,2023,22:588-614.

[22]Fernandez-Garibay X,María A,Ortega,et al.Xeno-free bioengineered human skeletal muscle tissue using human platelet lysate-based hydrogels.Biofabrication,2022,14(4).

[23]Kim J H,Kim I,Seol Y J,et al.Neural cell integration into 3D bioprinted skeletal muscle constructs accelerates restoration of muscle function.Nat Commun,2020,11(1):1025.

[24]Cheesbrough A,Sciscione F,Riccio F,et al.Biobased elastomer nanofibers guide light-controlled human-iPSC-derived skeletal myofibers.Adv Mater,2022,34(18):e2110441.

[25]Liu S,Sun X,Wang T,et al.Nano-fibrous and ladder-like multi-channel nerve conduits:Degradation and modification by gelatin.Mater Sci Eng C Mater Biol Appl,2018,83:130-142.

[26]Das S,Browne K D,Laimo F A,et al.Pre-innervated tissue-engineered muscle promotes a proregenerative microenvironment following volumetric muscle loss.Commun Biol,2020,3(1):330.(https://www.daowen.com)

[27]Beckerman M,Harel C,Michael I,et al.GLUT4-overexpressing engineered muscle constructs as a therapeutic platform to normalize glycemia in diabetic mice.Sci Adv,2021,7(42):3947.

[28]Chen S,Du Z,Zou J,et al.Promoting neurite growth and schwann cell migration by the harnessing decellularized nerve matrix onto nanofibrous guidance.ACS Appl Mater Interfaces,2019,11(19):17167-17176.

[29]Rao L,Qian Y,Khodabukus A,et al.Engineering human pluripotent stem cells into a functional skeletal muscle tissue.Nat Commun,2018,9(1):126.

[30]Shin M K.Generation of skeletal muscle organoids from human pluripotent stem cells to model myogenesis and muscle regeneration.Int J Mol Sci,2022,23(9).

[31]Andersen J,Revah O,Miuva Y,et al.Generation of functional human 3D cortico-motor assembloids.Cell,2020,183(7):1913-1929.

[32]Selvaraj S.Screening identifies small molecules that enhance the maturation of human pluripotent stem cell-derived myotubes.Elife,2019,8.

[33]Heidari Moghadam A.Redesigning of 3-dimensional vascular-muscle structure using ADSCs/HUVECs co-culture and VEGF on engineered skeletal muscle ECM.Cell J,2022,24(7):380-390.

[34]Maffioletti S,Sarcar S,Henderson A,et al.Three-dimensional human iPSC-derived artificial skeletal muscles model muscular dystrophies and enable multilineage tissue engineering.Cell Rep,2018,23(3):899-908.

[35]Bersini S,Gilardi M,Ugolini G S,et al.Engineering an environment for the study of fibrosis:A 3D human muscle model with endothelium specificity and endomysium.Cell Rep,2018,25(13):3858-3868.

[36]Khodabukus A.Electrical stimulation increases hypertrophy and metabolic flux in tissueengineered human skeletal muscle.Biomaterials,2019,198:259-269.

[37]Aydin O,Passaro A P,Elhebeary M,et al.Development of 3D neuromuscular bioactuators.APL Bioeng,2020,4(1):016107.

[38]Gouti M,Delile J,Stamataki D,et al.A gene regulatory network balances neural and mesoderm specification during vertebrate trunk development.Dev Cell,2017,41(3):243-261.

[39]Guibentif C,Griffiths J A,Imaz-Rosshandler I,et al.Diverse routes toward early somites in the mouse embryo.Dev Cell,2021,56(1):141-153.

[40]Matsuda M,Yamanaka Y,Uemura M,et al.Recapitulating the human segmentation clock with pluripotent stem cells.Nature,2020,580(7801):124-129.

[41]Mournetas V.Myogenesis modelled by human pluripotent stem cells:a multi-omic study of Duchenne myopathy early onset.J Cachexia Sarcopenia Muscle,2021,12(1):209-232.

[42]Uchimura T,Asano T,Nokata T,et al.A muscle fatigue-like contractile decline was recapitulated using skeletal myotubes from Duchenne muscular dystrophy patient-derived iPSCs.Cell Rep Med,2021,2(6):100298.

[43]Osaki T,Uzel S G M,Kamm R D.Microphysiological 3D model of amyotrophic lateral sclerosis(ALS)from human iPS-derived muscle cells and optogenetic motor neurons.Sci Adv,2018,4(10):eaat5847.

[44]Stein S R.SARS-Co V-2 infection and persistence in the human body and brain at autopsy.Nature,2022,612(7941):758-763.

[45]Seixas M.Unraveling muscle impairment associated with COVID-19 and the role of 3D culture in its investigation.Front Nutr,2022,9:825629.

[46]Chatterjee S,Khunti K,Davies M J.Type 2 diabetes.Lancet,2017,389(10085):2239-2251.

[47]Salvatore,Iovino,Alison,et al.Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin resistance.Proc Natl Acad Sci U S A,2016,113(7):1889-1894.

[48]Xu B,Zhang M,Perlingeiro R C R,et al.Skeletal muscle constructs engineered from human embryonic stem cell derived myogenic progenitors exhibit enhanced contractile forces when differentiated in a medium containing EGM-2 supplements.Adv Biosyst,2019,3(12):e1900005.

[49]Jongh R D,Spijkers X M,Svetlana P V,et al.Neuromuscular junction-on-a-chip:ALS disease modeling and read-out development in microfluidic devices.J Neurochem,2021,157(3):393-412.

[50]Reyes-Furrer A,Andrade S D,Bachmann D,et al.Matrigel 3D bioprinting of contractile human skeletal muscle models recapitulating exercise and pharmacological responses.Commun Biol,2021,4(1):1183.

[51]Gilbert-Honick J,Iyer S R,Somers S M,et al.Engineering 3D skeletal muscle primed for neuromuscular regeneration following volumetric muscle loss.Biomaterials,2020,255:120154.

[52]Thangadurai M,Ajith A,Budharaju H,et al.Advances in electrospinning and 3D bioprinting strategies to enhance functional regeneration of skeletal muscle tissue.Biomater Adv,2022,142:213135.