Page 202 - Handbook of Properties of Textile and Technical Fibres
P. 202
Silk: fibers, films, and compositesdtypes, processing, structure, and mechanics 179
Li G, Li F, Zheng ZZ, Luo T, Liu J, Wu JB, Wang X, Kaplan DL: Silk microfiber-reinforced silk
composite scaffolds: fabrication, mechanical properties, and cytocompatibility, J Mater Sci
51:3025e3035, 2016.
Lin SC, Ryu S, Tokareva O, Gronau G, Jacobsen MM, Huang WW, Rizo DJ, Li D, Staii C,
Pugno NM, Wong JY, Kaplan D, Buehler MJ: Predictive modelling-based design and
experiments for synthesis and spinning of bioinspired silk fibres, Nat Commun 8:6892,
2015.
Liu H, Ge Z, Wang Y, Toh AL, Sutthikhum V, Goh JCH: Modification of sericin-free silk fibers
for ligament tissue engineering application, J Biomed Mater Res B Appl Biomater 82:
129e138, 2007.
Lotz B, Cesari C: The chemical structure and the crystalline structures of Bombyx mori silk
fibroin, Biochimie 61:205e214, 1979.
Lovett M, Cannizzaro C, Daheron L, Messmer B, Vunjak-Novakovic G, Kaplan DL: Silk fibroin
microtubes for blood vessel engineering, Biomaterials, 2007:5271e5279, 2007.
Lu Q, Hu X, Wang WQ, Luge JA, Lu SZ, Cebe P, Kaplan DL: Water-insoluble silk films with
silk I structure, Acta Biomater 6:1380e1387, 2010.
Luan X-Y, Wang Y, Duan X, Duan Q-Y, Li M-Z, Lu S-Z, Zhang H-X, Zhang X-G: Attachment
and growth of human bone marrow derived mesenchymal stem cells on regenerated
Antheraea pernyi silk fibroin films, Biomed Mater 1:181e187, 2006.
Magoshi J, Magoshi Y, Becker MA, Kato M, Han Z, Tanaka T, Inoue S-I, Nakamura S:
Crystallization of silk fibroin from solution, Thermochim Acta 352e353:165e169, 2000.
Marcellan A, Bunsell AR, Piques R, Colomban P: Mechanical behaviour and probabilistic
fracture analysis of PA 66 fibres, J Mater Sci 38:2117e2123, 2003.
Marcellan A, Colomban P, Bunsell A: (Nano)structure, internal stress and in situ fracture
behaviour of polyamide fibres, J Raman Spectrosc 35:308e315, 2004.
Marsh RE, Corey RB, Pauling L: An investigation of the structure of silk fibroin, Biochimica
Biophysica Acta 16:1e34, 1955.
Meechaisue C, Wutticharoenmongkol P, Waraput R, Huangjing T, Ketbumrung N, Pavasant P,
Supaphol P: Preparation of electrospun silk fibroin fiber mats as bone scaffolds: a pre-
liminary study, Biomed Mater 2:181e188, 2007.
Meinel L, Hofmann S, Karageorgiou V, Zichner L, Langer R, Kaplan D, Vunjak-Novakovic G:
Engineering cartilage-like tissue using human mesenchymal stem cells ans silk protein
scaffolds, Biotechnol Bioeng 88:379e391, 2004.
Meinel L, Fajardo R, Hofmann S, Langer R, Chen J, Snyder B, Vunjak-Novakovic G, Kaplan D:
Silk implants for the healing of critical size bone defects, Bone 37:688e698, 2005.
Meinel L, Betz O, Fajardo R, Hofmann S, Nazarian A, Cory E, Hilbe M, McColl J, Langer R,
Vunjak-Novakovic G, Merkle HP, Rechenberg B, Kaplan DL, Kirker-Head C: Silk based
biomaterials to heal critical sized femur defects, Bone 39:922e931, 2006.
Michel J-M: Contribution to the history of the polymer industry in France (Contribution ’a
l’Histoire Industrielle des Polym eres en France), Paris, 2009, Société Chimique de France.
http://www.societechimiquedefrance.fr/documentations-scientifiques.html.
Min B-M, Lee G, Kim SH, Nam YS, Lee TS, Park WH: Electrospinning of silk fibroin nano-
fibers and its effect on the adhesion and spreading of normal human keratinocytes and
fibroblasts in vitro, Biomaterials 25:1289e1297, 2004.
Miserez A, Guerette PA: Integrating materials and life sciences towards the engineering of
biomimetic materials, JOM 64:494e504, 2012.
Mita K, Ichimura S, James TC: Highly repetitive structure and its organization of the silk fibroin
gene, J Mol Evol 38:583e592, 1994.