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1Academic Journal
المؤلفون: Jacob W. Fleming, Molly C. McCloskey, Kevin Gray, David R. Nash, Vincent Leung, Christos Michas, Shawn M. Luttrell, Christopher Cavanaugh, Julie Mathieu, Shawn Mcquire, Mark Bothwell, David L. Mack, Nicholas A. Geisse, Alec S.T. Smith
المصدر: Current Research in Toxicology, Vol 8, Iss , Pp 100218- (2025)
مصطلحات موضوعية: Neuromuscular junction, Engineered skeletal muscle, Engineered tissue models, Potency assay, High-throughput model, Toxicology. Poisons, RA1190-1270
وصف الملف: electronic resource
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2Academic Journal
المؤلفون: Isabella Pallotta, Michael J. Stec, Brian Schriver, David R. Golann, Kevin Considine, Qi Su, Victor Barahona, Julia E. Napolitano, Sarah Stanley, Meghan Garcia, Nicole T. Feric, Krista M. Durney, Roozbeh Aschar‐Sobbi, Nathan Bays, Tea Shavlakadze, Michael P. Graziano
المصدر: Physiological Reports, Vol 12, Iss 19, Pp n/a-n/a (2024)
مصطلحات موضوعية: dexamethasone, electrical stimulation, engineered skeletal muscle, skeletal muscle contractility, Physiology, QP1-981
وصف الملف: electronic resource
Relation: https://doaj.org/toc/2051-817X
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3Academic Journal
مصطلحات موضوعية: Engineering, Biomedical Engineering, Biotechnology, Animals, Cattle, Mice, Emulsions, Cell Culture Techniques, Bioreactors, Cell Differentiation, Meat, Cells, Cultured, Cellular agriculture, Mechanobiology, Tissue engineered skeletal muscle, Hydrogel, Scaffold
وصف الملف: application/pdf
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4Academic Journal
المؤلفون: Norris, Sam C.P., Kawecki, N. Stephanie, Davis, Ashton R., Chen, Kathleen K., Rowat, Amy C.
المصدر: Biomaterials, 287, (2022-07-12)
مصطلحات موضوعية: cellular agriculture, cultivated meat, cultured meat, mechanobiology, tissue engineered skeletal muscle, hydrogel, scaffold
Relation: https://zenodo.org/communities/cell-ag; https://doi.org/10.1016/j.biomaterials.2022.121669; oai:zenodo.org:7411955
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5Academic Journal
المؤلفون: Koji YAMAMOTO, Takuya HATTORI, Yusuke MORITA, 山本 浩司, 服部 拓哉, 森田 有亮
المصدر: The Proceedings of Mechanical Engineering Congress, Japan. 2021, :J023-25
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6
المؤلفون: Forconi, Flavia
مصطلحات موضوعية: engineered skeletal muscle tissue, isotonic conditions, neuromuscular junction, optical methods, Muscle, isometric conditions, microfluidic device, extracellular vesicles, Settore ING-INF/06 - Bioingegneria Elettronica e Informatica, Settore ING-IND/34 - Bioingegneria Industriale
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7
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8
مصطلحات موضوعية: Biomaterials, cultivated meat, Mechanics of Materials, cultured meat, Biophysics, Ceramics and Composites, cellular agriculture, tissue engineered skeletal muscle, Bioengineering, mechanobiology, hydrogel, scaffold
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9Academic Journal
المؤلفون: Yoshitake AKIYAMA, Reiko TERADA, Masayuki HASHIMOTO, Takayuki HOSHINO, Yuji FURUKAWA, Keisuke MORISHIMA
المصدر: Journal of Biomechanical Science and Engineering, Vol 5, Iss 3, Pp 236-244 (2010)
مصطلحات موضوعية: tissue engineered skeletal muscle, bio-actuator, artificial anchor, collagen gel, Science, Mechanical engineering and machinery, TJ1-1570
وصف الملف: electronic resource
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10Dissertation/ Thesis
المؤلفون: Lampela, Ella
المساهمون: Lääketieteen ja terveysteknologian tiedekunta - Faculty of Medicine and Health Technology, Tampere University
مصطلحات موضوعية: rasvakudoksesta peräisin olevat kantasolut, mesenkymaaliset kantasolut, kudosteknologinen luurankolihas, lihassyy, hybridilihassyy, luurankolihassolu, konfokaalikuvantaminen, immunovärjäys, vasta-ainevärjäys, immunohistokemia, immunosytokemia, ihmisen tumien värjääminen, biolääketieteen teknologia, kantasolujen biologia, kudosteknologia, adipose-derived stem cell, mesenchymal stem cell, engineered skeletal muscle, myotube, hybrid myotube, confocal imaging, immunostaining, immunohistochemistry, immunocytochemistry, human nuclei staining, biomedical engineering, stem cell biology, tissue engineering, Bioteknologian ja biolääketieteen tekniikan kandidaattiohjelma - Bachelor's Programme in Biotechnology and Biomedical Engineering, kantasolut
وصف الملف: fulltext
Relation: https://trepo.tuni.fi/handle/10024/131261; URN:NBN:fi:tuni-202104273919
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11Academic Journal
المؤلفون: Douhiko TERADA, Hideo KONDO, Hiroyuki HAYASHI, Kenichi YAMASAKI, Masanao NARA, Shigehiro HASHIMOTO, Toshia FUJISATO, 奈良 雅尚, 寺田 堂彦, 山崎 健一, 林 宏行, 橋本 成広, 藤里 俊哉, 近藤 英雄
المصدر: The proceedings of the JSME annual meeting. 2008, :249
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12Academic Journal
المؤلفون: Dohiko TERADA, Hideo KONDO, Hiroyuki HAYASHI, Kenichi YAMASAKI, Toshia FUJISATO, 寺田 堂彦, 山崎 健一, 林 宏行, 藤里 俊哉, 近藤 英雄
المصدر: The Proceedings of the Bioengineering Conference Annual Meeting of BED/JSME. 2009, :193
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13Academic Journal
المؤلفون: Dohiko TERADA, Hideo KONDO, Hiroshi TSUTSUI, Hiroyuki HAYASHI, Kazuya SYAKUDO, Kenichi YAMASAKI, Toshia FUJISATO, 寺田 堂彦, 山崎 健一, 林 宏行, 筒井 博司, 藤里 俊哉, 赤土 和也, 近藤 英雄
المصدر: 生体医工学 / Transactions of Japanese Society for Medical and Biological Engineering. 2008, 46(6):690
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14Academic Journal
المصدر: Hamdan , M N , Post , M J , Ramli , M A & Mustafa , A R 2018 , ' Cultured Meat in Islamic Perspective ' , Journal of Religion & Health , vol. 57 , no. 6 , pp. 2193-2206 . https://doi.org/10.1007/s10943-017-0403-3
مصطلحات موضوعية: Cultured meat, Halal, Slaughtered animal, Islamic view, ENGINEERED SKELETAL-MUSCLE, IN-VITRO, SATELLITE CELLS, STEM-CELLS, DIFFERENTIATION, OPTIMIZATION, CONSUMPTION, CHALLENGES, CANCER, RISK
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15
المساهمون: Fysiologie, RS: CARIM - R3.08 - Regenerative and reconstructive medicine for vascular disease
المصدر: Journal of Religion & Health, 57(6), 2193-2206. Kluwer Academic/Human Sciences Press Inc.
مصطلحات موضوعية: 0301 basic medicine, Meat, Ijtihad, Unconsciousness, Animal Welfare, Morals, Islam, 03 medical and health sciences, Cultured meat, ENGINEERED SKELETAL-MUSCLE, 0404 agricultural biotechnology, Sharia, SATELLITE CELLS, Slaughtered animal, Animals, Product (category theory), Meaning (existential), OPTIMIZATION, General Nursing, RISK, CHALLENGES, Religious studies, Halal, Environmental ethics, CONSUMPTION, 04 agricultural and veterinary sciences, General Medicine, IN-VITRO, 040401 food science, CANCER, 030104 developmental biology, DIFFERENTIATION, Economy, Business, STEM-CELLS, Abattoirs, Islamic view
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16Report
المؤلفون: Zhang C(张闯), Wang WX(王文学), Wang YC(王越超), Liu LQ(刘连庆)
مصطلحات موضوعية: Bio-syncretic Robot, Hybrid Robot, Bio-actuator, Cardiomyocyte, Muscle Cells, Engineering, Multidisciplinary, ENGINEERED SKELETAL-MUSCLE, DORSAL VESSEL TISSUE, CELL-BASED ACTUATORS, ELECTRICAL-STIMULATION, IN-VITRO, CARDIAC TISSUE, HEART-TISSUE, MYOGENIC DIFFERENTIATION, BIOLOGICAL MACHINES, OPTOGENETIC CONTROL
Relation: Engineering; http://119.78.100.139/handle/173321/22389
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17Academic Journal
المصدر: Faculty Bibliography 2010s
مصطلحات موضوعية: in vitro, adult skeletal muscle, cantilevers, serum free, exercise, NEUROMUSCULAR-JUNCTION FORMATION, DEFINED ELECTRICAL-STIMULATION, ENGINEERED SKELETAL-MUSCLE, CELL-DERIVED MOTONEURONS, RECEPTOR-GAMMA, CREATINE SUPPLEMENTATION, OXIDATIVE CAPACITY, MYOSIN SYNTHESIS, STRENGTH, INTEGRATION, Physiology, Sport Sciences
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18Academic Journal
المؤلفون: Weist, Michael R., Wellington, Michael S., Bermudez, Jacob E., Kostrominova, Tatiana Y., Mendias, Christopher L., Arruda, Ellen M., Larkin, Lisa M.
مصطلحات موضوعية: Tissue Engineering, Engineered Skeletal Muscle, Scaffoldless, Transforming Growth Factor Beta‐1, Extracellular Matrix, Medicine (General), Health Sciences
وصف الملف: application/pdf
Relation: Weist, Michael R.; Wellington, Michael S.; Bermudez, Jacob E.; Kostrominova, Tatiana Y.; Mendias, Christopher L.; Arruda, Ellen M.; Larkin, Lisa M. (2013). "TGF‐β1 enhances contractility in engineered skeletal muscle." Journal of Tissue Engineering and Regenerative Medicine 7(7): 562-571.; https://hdl.handle.net/2027.42/98828; Journal of Tissue Engineering and Regenerative Medicine; Robbins JR, Evanko SP, Vogel KG. 1997; Mechanical loading and TGF‐beta regulate proteoglycan synthesis in tendon. Arch Biochem Biophys 342: 203 – 211.; Roberts AB, Sporn MB, Assoian RK et al. 1986; Transforming growth factor type beta: rapid induction of fibrosis and angiogenesis in vivo and stimulation of collagen formation in vitro. Proc Natl Acad Sci U S A 83: 4167 – 4171.; Rossi CA, Pozzobon M, De Coppi P. 2010; Advances in musculoskeletal tissue engineering: moving towards therapy. Organogenesis 6: 167 – 172.; Rowe J, Chen Q, Domire ZJ et al. 2010; Effect of collagen digestion on the passive elastic properties of diaphragm muscle in rat. Med Eng Phys 32: 90 – 94.; Schultze‐Mosgau S, Blaese MA, Grabenbauer G et al. 2004; Smad‐3 and Smad‐7 expression following anti‐transforming growth factor beta 1 (TGF‐beta‐1)‐treatment in irradiated rat tissue. Radiother Oncol 70: 249 – 259.; Seale P, Sabourin LA, Girgis‐Gabardo A et al. 2000; Pax7 is required for the specification of myogenic satellite cells. Cell 102: 777 – 786.; Stauber WT, Knack KK, Miller GR et al. 1996; Fibrosis and intercellular collagen connections from four weeks of muscle strains. Muscle Nerve 19: 423 – 430.; Stern HM, Lin‐Jones J, Hauschka SD. 1997; Synergistic interactions between bFGF and a TGF‐beta family member may mediate myogenic signals from the neural tube. Development 124: 3511 – 3523.; Tatsumi R, Anderson JE, Nevoret CJ et al. 1998; HGF/SF is present in normal adult skeletal muscle and is capable of activating satellite cells. Dev Biol 194: 114 – 128.; Vaidya TB, Rhodes SJ, Taparowsky EJ et al. 1989; Fibroblast growth factor and transforming growth factor beta repress transcription of the myogenic regulatory gene MyoD1. Mol Cell Biol 9: 3576 – 3579.; Whittemore LA, Song K, Li X, Aghajanian J et al. 2003; Inhibition of myostatin in adult mice increases skeletal muscle mass and strength. Biochem Biophys Res Commun 300: 965 – 971.; Williams ML, Kostrominova TY, Arruda EM et al. 2011; Effect of Implantation on engineered skeletal muscle constructs. Revision Submitted for Publication in Tissue Engineering and Regenerative Medicine, September 12, 2011.; Zhang Y, Feng X, We R et al. 1996; Receptor‐associated Mad homologues synergize as effectors of the TGF‐beta response. Nature 383: 168 – 172.; Heinemeier KM, Olesen JL, Haddad F et al. 2009; Effect of unloading followed by reloading on expression of collagen and related growth factors in rat tendon and muscle. J Appl Physiol 106: 178 – 186.; Heymann S, Koudrova M, Arnold H et al. 1996; Regulation and function of SF/HGF during migration of limb muscle precursor cells in chicken. Dev Biol 180: 566 – 578.; Huijing PA. 1999; Muscle as a collagen fiber reinforced composite: a review of force transmission in muscle and whole limb. J Biomech 32: 329 – 345.; Ignotz RA, Endo T, Massague J. 1987; Regulation of fibronectin and type I collagen mRNA levels by transforming growth factor‐beta. J Biol Chem 262: 6443 – 6446.; Kjaer M, Magnusson P, Krogsgaard M et al. 2006; Extracellular matrix adaptation of tendon and skeletal muscle to exercise. J Anat 208: 445 – 450.; Kollias HD, McDermott JC. 2008; Transforming growth factor‐beta and myostatin signaling in skeletal muscle. J Appl Physiol 104: 579 – 587.; Kontrogianni‐Konstantopoulos A, Ackermann MA, Bowman AL et al. 2009; Muscle giants: molecular scaffolds in sarcomerogenesis. Physiol Rev 89: 1217 – 1267.; Larkin LM, Calve S, Kostrominova TY et al. 2006; Structure and functional evaluation of tendon‐skeletal muscle constructs engineered in vitro. Tissue Eng 12: 3149 – 3158.; Law PK, Goodwin TG, Fang Q et al. 1993; Cell transplantation as an experimental treatment for Duchenne muscular dystrophy. Cell Transplant 2: 485 – 505.; Lawson MA, Purslow PP. 2001; Development of components of the extracellular matrix, basal lamina and sarcomere in chick quadriceps and pectoralis muscles. Br Poult Sci 42: 315 – 320.; Leask A, Abraham DJ. 2004; TGF‐beta signaling and the fibrotic response. FASEB J 18: 816 – 827.; Levenberg S, Rouwkema J, Macdonald M et al. 2005; Engineering vascularized skeletal muscle tissue. Nat Biotechnol 23: 879 – 884.; Li Y, Foster W, Deasy BM, Chan Y et al. 2004; Transforming growth factor‐beta1 induces the differentiation of myogenic cells into fibrotic cells in injured skeletal muscle: a key event in muscle fibrogenesis. Am J Pathol 164: 1007 – 1019.; Luna A, Meister HP, Szanto PB. 1968; Esophageal varices in the absence of cirrhosis, Incidence and characteristics in congestive heart failure and neoplasm of the liver. Am J Clin Pathol 49: 710 – 717.; Macias‐Silva M, Abdollah S, Hoodless PA et al. 1996; MADR2 is a substrate of the TGF‐beta receptor and its phosphorylation is required for nuclear accumulation and signaling. Cell 87: 1215 – 1224.; Mathew SJ, Hansen JM, Merrell AJ et al. 2011; Connective tissue fibroblasts and Tcf4 regulate myogenesis. Development 138: 371 – 384.; McLennan IS, Koishi K. 1997; Cellular localisation of transforming growth factor ‐beta 2 and ‐beta 3 (TGF‐beta2, TGF‐beta3) in damaged and regenerating skeletal muscles. Dev Dyn 208: 278 – 289.; Miller JB, Everitt EA, Smith TH et al. 1993; Cellular and molecular diversity in skeletal muscle development: news from in vitro and in vivo. Bioessays 15: 191 – 196.; Miura T, Kishioka Y, Wakamatsu J et al. 2010; Interaction between myostatin and extracellular matrix components. Anim Sci J 81: 102 – 107.; Olguin HC, Santander C, Brandan E. 2003; Inhibition of myoblast migration via decorin expression is critical for normal skeletal muscle differentiation. Dev Biol 259: 209 – 224.; Powell CA, Smiley BL, Mills J et al. 2002; Mechanical stimulation improves tissue‐engineered human skeletal muscle. Am J Physiol Cell Physiol 283: C1557 – C1565.; Pryce BA, Watson SS, Murchison ND et al. 2009; Recruitment and maintenance of tendon progenitors by TGF‐beta signaling are essential for tendon formation. Development 136: 1351 – 1361.; Purslow PP. 2002; The structure and functional significance of variations in the connective tissue within muscle. Comp Biochem Physiol A Mol Integr Physiol 133: 947 – 966.; Purslow PP. 2010; Muscle fascia and force transmission. J Bodyw Mov Ther 14: 411 – 417.; Rao JS, Beach RL, Festoff BW. 1985; Extracellular matrix (ECM) synthesis in muscle cell cultures: quantitative and qualitative studies during myogenesis. Biochem Biophys Res Commun 130: 440 – 446.; Allen RE, Boxhorn LK. 1989; Regulation of skeletal muscle satellite cell proliferation and differentiation by transforming growth factor‐beta, insulin‐like growth factor I, and fibroblast growth factor. J Cell Physiol 138: 311 – 315.; Aviss KJ, Gough JE, Downes S. 2010; Aligned electrospun polymer fibres for skeletal muscle regeneration. Eur Cell Mater 19: 193 – 204.; Baker EL, Dennis RG, Larkin LM. 2003; Glucose transporter content and glucose uptake in skeletal muscle constructs engineered in vitro. In Vitro Cell Dev Biol Anim 39: 434 – 439.; Beach RL, Burton WV, Hendricks WJ et al. 1982; Extracellular matrix synthesis by skeletal muscle in culture. Proteins and effect of enzyme degradation. J Biol Chem 257: 11437 – 11442.; Buck CA, Horwitz AF. 1987; Cell surface receptors for extracellular matrix molecules. Annu Rev Cell Biol 3: 179 – 205.; Buckingham M. 1994; Muscle differentiation. Which myogenic factors make muscle? Curr Biol 4: 61 – 63.; Chen Q, Sivakumar P, Barley C et al. 2007; Potential role for heparan sulfate proteoglycans in regulation of transforming growth factor‐beta (TGF‐beta) by modulating assembly of latent TGF‐beta‐binding protein‐1. J Biol Chem 282: 26418 – 26430.; Croci S, Landuzzi L, Astolfi A et al. 2004; Inhibition of connective tissue growth factor (CTGF/CCN2) expression decreases the survival and myogenic differentiation of human rhabdomyosarcoma cells. Cancer Res 64: 1730 – 1736.; DiEdwardo CA, Petrosko P, Acarturk TO et al. 1999; Muscle tissue engineering. Clin Plast Surg 26: 647 – 656.; Duncan MR, Frazier KS, Abramson S et al. 1999; Connective tissue growth factor mediates transforming growth factor beta‐induced collagen synthesis: down‐regulation by cAMP. FASEB J 13: 1774 – 1786.; Fauza DO, Marler JJ, Koka R et al. 2001; Fetal tissue engineering: diaphragmatic replacement. J Pediatr Surg 36: 146 – 151.
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19Academic Journal
المؤلفون: Candiani G., Riboldi S. A., Sadr N., Lorenzoni S., Neuenschwander P., Mantero S., MONTEVECCHI, Franco Maria
المساهمون: Candiani, G., Riboldi, S. A., Sadr, N., Lorenzoni, S., Neuenschwander, P., Montevecchi, Franco Maria, Mantero, S.
مصطلحات موضوعية: engineered skeletal muscle construct, mechanical stimulation in bioreactor, myosin heavy chain
Relation: info:eu-repo/semantics/altIdentifier/wos/WOS:000281278200002; volume:8 (2); firstpage:68; lastpage:75; numberofpages:8; journal:JOURNAL OF APPLIED BIOMATERIALS & BIOMECHANICS; http://hdl.handle.net/11583/2375491; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-77957295909
الاتاحة: http://hdl.handle.net/11583/2375491
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20
المؤلفون: Gabriele Candiani, Riboldi, S. A., Sadr, N., Lorenzoni, S., Neuenschwander, P., Montevecchi, F. M., Mantero, S.
المصدر: Scopus-Elsevier
ResearcherID
Europe PubMed Central
Gabriele Candianiمصطلحات موضوعية: myosin heavy chain, engineered skeletal muscle constructs, mechanical stimulation in bioreactor