Cell adhesion, cell junctions, and the extracellular matrix, Chap. 14 in Molecular biology of the cell, pp.808-814, 1989. ,
Cell differentiation by mechanical stress, The FASEB Journal, vol.16, issue.2, pp.270-272, 2002. ,
Silk matrix for tissue engineered anterior cruciate ligaments, Biomaterials, vol.23, pp.4131-4141, 2002. ,
Silk-based biomaterials, Biomaterials, vol.24, pp.401-416, 2003. ,
Influence of oxygen concentration and mechanical factors on differentiation of connective tissues in vitro, Nature, vol.190, pp.460-461, 1961. ,
Biodegradation of Bombyx mori silk fibroin fibers and films, J. Appl. Polym. Sci, vol.91, pp.2383-2390, 2004. ,
Repair of patellar tendon injuries using a cell???collagen composite, Journal of Orthopaedic Research, vol.16, issue.3 ,
DOI : 10.1002/jor.1100160403
Porous methacrylate scaffolds: supercritical fluid fabrication and in vitro chondrocyte responses, Biomaterials, vol.25, issue.17, pp.3559-3568, 2004. ,
DOI : 10.1016/j.biomaterials.2003.10.023
La reconstruction du ligament croisé antérieur par greffe à deux faisceaux utilisant les tendons de la patte d'oie. Maîtrise Orthopédique Novembre, 2003. ,
Late degradation response to poly(L-lactide) bone plates and screws, Biomaterials, vol.16, pp.25-31, 1995. ,
Hydrophilic nanofibrous structures of polylactide, fabrication and cell affinity, J. Biomed. Mater. Res. Part A, vol.78, pp.247-257, 2006. ,
Localization of collagen types I, III and V during tendon development. Changes in collagen types I and III are correlated with changes in fibril diameter, Eur. J. Cell Biol, vol.72, pp.352-361, 1997. ,
In vitro and in vivo degradation of non-woven materials made of poly(??-caprolactone) nanofibers prepared by electrospinning under different conditions, Journal of Biomaterials Science, Polymer Edition, vol.17, issue.12, pp.1537-1555, 2005. ,
DOI : 10.1002/jbm.820170115
Alginate based new materials. Inter, J. Biol. Macrom, vol.1007, issue.21, pp.47-55 ,
Acrylic scaffolds with interconnected spherical pores and controlled hydrophilicity for tissue engineering, J. Mater. Sci. Mater. Med, vol.16, pp.693-698, 2005. ,
Novel method to produce poly(3-hydroxybutyrate) scaffolds with controlled multi-pore size, Journal of Materials Science Letters, vol.22, issue.2, pp.153-155, 2003. ,
DOI : 10.1023/A:1021891626262
Engineering of Functional Tendon, Tissue Engineering, vol.10, issue.5-6, pp.755-761, 2004. ,
DOI : 10.1089/1076327041348464
Tendon Engineering with Avian Tenocytes and Polyglycolic Acids: A Preliminary Report, Tissue Engineering, vol.12, issue.5, pp.1369-1377, 2006. ,
DOI : 10.1089/ten.2006.12.1369
Development of Cell-Seeded Patellar Tendon Allografts for Anterior Cruciate Ligament Reconstruction, Tissue Engineering, vol.10, issue.7-8, pp.1065-1075, 2004. ,
DOI : 10.1089/ten.2004.10.1065
Controlling Surface Morphology of Electrospun Polystyrene Fibers:?? Effect of Humidity and Molecular Weight in the Electrospinning Process, Macromolecules, vol.37, issue.2, pp.573-578, 2004. ,
DOI : 10.1021/ma0351975
Preparation of poly(l-lactic acid) and poly(dl-lactic-co-glycolic acid) foams by use of ice microparticulates, Biomaterials, vol.22, issue.18, pp.2563-2567, 2001. ,
DOI : 10.1016/S0142-9612(00)00447-6
The use of a novel PLGA fiber/collagen composite web as a scaffold for engineering of articular cartilage tissue with adjustable thickness, Journal of Biomedical Materials Research, vol.21, issue.4, pp.1170-1180, 2003. ,
DOI : 10.1016/S0736-0266(02)00105-5
Nano-fibrous poly(l-lactic acid) scaffolds with interconnected spherical macropores, Biomaterials, vol.25, issue.11, pp.2065-73, 2004. ,
DOI : 10.1016/j.biomaterials.2003.08.058
Cell adhesion of bone marrow cells, chondrocytes, ligament cells and synovial cells on a PLGA???collagen hybrid mesh, Materials Science and Engineering: C, vol.24, issue.6-8, pp.867-873, 2005. ,
DOI : 10.1016/j.msec.2004.08.026
Functionalization of poly(L-lactide) nanofibrous scaffolds with bioactive collagen molecules, Journal of Biomedical Materials Research Part A, vol.24, issue.4 ,
DOI : 10.1089/ten.2004.10.1510
The effect of pH on thein vitro degradation of poly(glycolide lactide) copolymer absorbable sutures, Journal of Biomedical Materials Research, vol.140, issue.2, pp.117-124, 1982. ,
DOI : 10.1016/0002-9394(77)90856-X
Fiber-based tissue-engineered scaffold for ligament replacement: design considerations and in vitro evaluation, Biomaterials, vol.26, issue.13, pp.1523-1532, 2005. ,
DOI : 10.1016/j.biomaterials.2004.05.014
The role of bacterial biofims in regenerative medicine. International symposium on bioengineering and regenerative medicine, 2007. ,
Analysis of mesenchymal stem cells grown on a threedimensional HYAFF 11® -based prototype ligament scaffold, J. Biomed. Mater ,
Evaluation of in vitro drug release, pH change, and molecular weight degradation of poly(L-lactic acid) and poly(D,L-lactide-co-glycolide) fibers ,
A Blank Slate? Layer-by-Layer Deposition of Hyaluronic Acid and Chitosan onto Various Surfaces, Biomacromolecules, vol.7, issue.5, pp.1610-1622, 2006. ,
DOI : 10.1021/bm060044l
Electrospinning of polyurethane fibers, Polymer, vol.43, issue.11, pp.3303-3309, 2002. ,
DOI : 10.1016/S0032-3861(02)00136-2
Effect of load and temperature on in vitro degradation of poly(glycolide-co-l-lactide) multifilament braids, Biomaterials, vol.26, issue.20, pp.4327-4336, 2005. ,
DOI : 10.1016/j.biomaterials.2004.09.067
Development of fibroblastseeded ligament analogs for ACL reconstruction, J. Biomed. Mater. Res, vol.29, pp.133-1371, 1995. ,
Anatomy of the anterior cruciate ligament, Knee Surg. Sport Traumatol ,
Beaded nanofibers formed during electrospinning, Polymer, vol.40, pp.4585-4592, 1999. ,
Thescience of reconstruction of the anterior cruciate ligament, J. Bone Joint Surg, vol.79, pp.1556-1576, 1997. ,
Elastomeric biodegradable polyurethane blends for soft tissue applications, J. Biomater. Sci. Polym. Ed, vol.13, pp.391-406, 2002. ,
Novel chitosan-based hyaluronan hybrid polymer fibers as a scaffold in ligament tissue engineering, J ,
Surface hydrolysis of poly(glycolic acid) meshes increases the seeding density of vascular smooth muscle cells, Journal of Biomedical Materials Research, vol.71, issue.3 ,
DOI : 10.1111/j.1365-2818.1982.tb00324.x
Multicompartment Films Made of Alternate Polyelectrolyte Multilayers of Exponential and Linear Growth, Langmuir, vol.20, issue.17, pp.7298-7302, 2004. ,
DOI : 10.1021/la049106o
Characterization of knitted polymeric scaffolds for potential use in ligament tissue engineering, Journal of Biomaterials Science, Polymer Edition, vol.53, issue.9 ,
DOI : 10.1002/1097-4636(2000)53:6<617::AID-JBM1>3.0.CO;2-C
Selection of Cell Source for Ligament Tissue Engineering, Cell Transplantation, vol.7, issue.5, pp.573-583, 2005. ,
DOI : 10.1089/107632701300062859
State of knowledge in structural mechanics of penile erection, and some areas of ignorance, Journal of Biomechanics, vol.39, pp.29-33, 2006. ,
DOI : 10.1016/S0021-9290(06)84368-X
Mechanical characterization of collagen fibers and scaffolds for tissue engineering, Biomaterials, vol.24, pp.3805-3813, 2003. ,
Development of Ligament-Like Structural Organization and Properties in Cell-Seeded Collagen Scaffolds in vitro, Annals of Biomedical Engineering, vol.124, issue.5, pp.726-736, 2006. ,
DOI : 10.1016/B978-0-12-363706-2.50010-6
In vitro chemical degradation of poly(glycolic acid) pellets and fibers, Journal of Applied Polymer Science, vol.33, issue.7, pp.2411-2429, 1987. ,
DOI : 10.1002/app.1987.070330712
Synthesis and Properties of Degradable Poly(urethane urea)s To Be Used for Ligament Reconstructions, Biomacromolecules, vol.3, issue.5, pp.951-958, 2002. ,
DOI : 10.1021/bm025535u
Gore-Tex prosthetic ligament in anterior cruciate deficient knees, The American Journal of Sports Medicine, vol.16, issue.4, pp.321-326, 1988. ,
DOI : 10.2106/00004623-198466030-00005
Tissue-Engineering Approach to the Repair and Regeneration of Tendons and Ligaments, Tissue Engineering, vol.9, issue.supplement 1 ,
DOI : 10.1089/10763270360696969
Tissue reorganization in response to mechanical load increases functionality, Tissue Engineering, vol.11, pp.90-100, 2005. ,
Biodegradable composite scaffolds with an interconnected spherical network for bone tissue engineering, Biomaterials, vol.25, issue.20, pp.4955-4962, 2004. ,
DOI : 10.1016/j.biomaterials.2004.01.046
Poly(lactic acid) fiber: An overview, Progress in Polymer Science, vol.32, issue.4 ,
DOI : 10.1016/j.progpolymsci.2007.01.005
Solid lipid templating of macroporous tissue engineering scaffolds, Biomaterials, vol.28, pp.3497-3507, 2007. ,
Open pore biodegradable matrices formed with gas foaming, Journal of Biomedical Materials Research, vol.50, issue.3, pp.396-402, 1998. ,
DOI : 10.1161/01.CIR.86.6.1977
Colonization and maintenance of murine embryonic stem cells on poly(?-hydroxy esters), Biomaterials, vol.24, pp.4963-4970, 2004. ,
Fabrication of collagne coated biodegradable polymer nanofiber mesh and its potential for endothetial cells growth, Biomaterials, vol.26, pp.7606-7615, 2005. ,
Role of particles electrostatic charge in adhesion and ingestion of dictyostelium discoideum amoeboid cells, J. Cell Sci, vol.79, pp.327-342, 1985. ,
An image based approach to design and manufacture craniofacial scaffolds, Int. J ,
In vitro degradation of silk fibroin, Biomaterials, vol.26, issue.17, pp.3385-3393, 2005. ,
DOI : 10.1016/j.biomaterials.2004.09.020
Preparation of interconnected highly porous polymeric structures by a replication and freeze-drying process, Journal of Biomedical Materials Research, vol.42, issue.2 ,
DOI : 10.1002/(SICI)1097-4636(19981205)42:3<396::AID-JBM7>3.0.CO;2-E
Macroporous poly(L-lactide) scaffold 1. Preparation of a macroporous scaffold by liquid-liquid phase separation of a PLLA-dioxane-water system, Journal of Biomedical Materials Research, vol.29, issue.2, pp.161-167, 2002. ,
DOI : 10.1002/jbm.10121
A facile preparation of highly interconnected macroporous poly(D,L-lactic acid-co-glycolic acid) scaffolds by liquid-liquid phase separation of a PLGA-dioxane-water ternary system, Polymer, vol.44, 1911. ,
Mechanical properties and cell cultural response of polycaprolactone scaffolds designed and fabricated via fused deposition modeling, Journal of Biomedical Materials Research, vol.21, issue.2, pp.203-216, 2001. ,
DOI : 10.1002/1097-4636(200105)55:2<203::AID-JBM1007>3.0.CO;2-7
Elastic cartilage engineering using novel scaffold architectures in combination with a biomimetic cell carrier, Biomaterials, vol.24, issue.24, pp.4445-4458, 2003. ,
DOI : 10.1016/S0142-9612(03)00350-8
Tissue engineering of bone : effects of mechanical strain on osteoblastic cells in type I collagen matrices, Biomaterials, pp.311-318, 2005. ,
Structure and properties of electrospun PLLA single nanofibres, Nanotechnology, vol.16, issue.2, pp.208-216, 2005. ,
DOI : 10.1088/0957-4484/16/2/005
Tissue-engineered vascular grafts composed of marine collagen and PLGA fibers using pulsatile perfusion bioreactor, Biomaterials, vol.28, pp.115-1122, 2007. ,
Novel porous gelatine scaffolds by overrun/particulate leaching process for tissue engineering applications, J ,
Donor-site morbidity and anterior knee problems after anterio cruciate ligament reconstruction using autografts ,
Bioresorbable nanofiberbased systems for wound healing and drug delivery : Optimization of fabrications parameters, J. Biomed Mater. Res. Part B, vol.70, pp.286-296, 2004. ,
Interaction of different types of cells on physicochemically treated poly(L-lactide-co-glycolide) sufaces, J ,
Novel fabricated matrix via electrospinning for tissue engineering, Journal of Biomedical Materials Research, vol.20, issue.1, pp.117-124, 2005. ,
DOI : 10.1557/S088376940003181X
Mesoscopic spatial designs of nano- and microfiber meshes for tissue-engineering matrix and scaffold based on newly devised multilayering and mixing electrospinning techniques, Biomaterials, vol.26, issue.1, pp.37-46, 2005. ,
DOI : 10.1016/j.biomaterials.2004.01.063
Survival and function of hepatocytes on a novel three-dimensional synthetic biodegradable scaffold with an intrinsic network of channels, Annals of Surgery, vol.22, pp.8-13, 1998. ,
Gene Expression of Type I and Type III Collagen by Mechanical Stretch in Anterior Cruciate Ligament Cells, Cell Structure and Function, vol.27, issue.3, pp.139-144, 2002. ,
DOI : 10.1247/csf.27.139
Highly porous 3D nanofiber scaffold using an electrospinning technique, J. Biomed. Mater. Res. Part B, vol.81, pp.104-110, 2007. ,
Fibroblast culture on surface modified poly(glycolide-co-?-caprolactone) scaffold for soft tissue regeneration, J. Biomater. Sci. Polym. Edn, vol.12, pp.1147-1160, 2001. ,
Electrospun nano-to microfiber fabrics made of biodegradable copolyesters : structural characteristics, mechanical properties and cell adhesion potential, Biomaterials, vol.26, pp.3929-3939, 2005. ,
Electrospinning for tissue engineering scaffolds, Mater. Sci. Eng. C, vol.27, pp.504-509, 2006. ,
Tissue engineering : Orthopedic applications, Annu. Rev. Biomed. Eng, vol.1, pp.19-46, 1999. ,
Ligament tissue engineering : An evolutionary materials science approach, Biomaterials, vol.26, pp.7530-7536, 2005. ,
Interaction of cells on chargeable functional group gradient surfaces, Biomaterials, vol.18, issue.4, pp.351-358, 1997. ,
DOI : 10.1016/S0142-9612(96)00128-7
Bionsynthetic response of passaged chondrocytes in a type II collagen scaffold to mechanical compression, J ,
Interaction of human chondrocytes and NIH/3T3 fibroblasts on chloric-acid-treated biodegradable polymer surfaces, J ,
The change of bead morphology formed on electrospun polystyrene fibers, Polymer, vol.44, issue.14, pp.4029-4034, 2003. ,
DOI : 10.1016/S0032-3861(03)00345-8
Nanofiber alignment and direction of mechanical strain affect the ECM production of human ACL fibroblast, Biomaterials, vol.26, issue.11, pp.1261-1270, 2005. ,
DOI : 10.1016/j.biomaterials.2004.04.037
Preparation and physico-chemical characterisation of microporous polysaccharidic hydrogels, Journal of Materials Science: Materials in Medicine, vol.15, issue.4, pp.463-467, 2004. ,
DOI : 10.1023/B:JMSM.0000021121.91449.f4
Nouveau matériau de prothèse osseuse et son application, French Patent Appl, pp.76-28163, 1976. ,
Heterogeneous proliferation within engineered cartilaginous tissue: the role of oxygen tension, Biotechnology and Bioengineering, vol.14, issue.5, pp.607-615, 2005. ,
DOI : 10.1007/978-1-4684-8181-5_87
Biodegradation of aliphatic polyester, Degradable polymers principles and applications, pp.43-87, 1995. ,
Electrospinning nanofibers as uniaxially aligned arrays and layer-by-layer stacked films, Adv. Mater, vol.16, pp.361-366, 2004. ,
Fabrication and characterization of six electrospun poly(??-hydroxy ester)-based fibrous scaffolds for tissue engineering applications, Acta Biomaterialia, vol.2, issue.4, pp.377-385, 2006. ,
DOI : 10.1016/j.actbio.2006.02.005
Engineering controllable anisotropy in electrospun biodegradable nanofibrous scaffolds for musculoskeletal tissue engineering, Journal of Biomechanics, vol.40, issue.8, pp.1686-1693, 2007. ,
DOI : 10.1016/j.jbiomech.2006.09.004
Long-term effects of porcine small intestine submucosa on the healing of medial collateral ligament: A functional tissue engineering study, Journal of Orthopaedic Research, vol.12, issue.4, pp.811-819, 2006. ,
DOI : 10.1002/jor.20080
Porogen-induced surface modification of nano-fibrous poly(l-lactic acid) scaffolds for tissue engineering, Biomaterials, vol.27, issue.21, pp.3980-3987, 2006. ,
DOI : 10.1016/j.biomaterials.2006.03.008
The interaction between a combined knitted silk scaffold and microporous silk sponge with human mesenchymal stem cells for ligament tissue engineering, Biomaterials, vol.29, issue.6, 2007. ,
DOI : 10.1016/j.biomaterials.2007.10.035
Role of interconnection in porous bioceramics on bone recolonization in vitro and in vivo, Journal of Materials Science: Materials in Medicine, vol.10, issue.2, pp.111-120, 1999. ,
DOI : 10.1023/A:1008973120918
Biodegradable Polymer Scaffolds with Well-Defined Interconnected Spherical Pore Network, Tissue Engineering, vol.7, issue.1, pp.23-33, 2001. ,
DOI : 10.1089/107632701300003269
Paraffin spheres as porogen to fabricate poly(L-lactic acid) scaffolds with improved cytocompatibility for cartilage tissue engineering, Journal of Biomedical Materials Research, vol.21, issue.1, pp.610-617, 2003. ,
DOI : 10.1016/S0142-9612(99)00242-2
Potential of Nanofiber Matrix as Tissue-Engineering Scaffolds, Tissue Engineering, vol.11, issue.1-2, pp.101-109, 2005. ,
DOI : 10.1089/ten.2005.11.101
Alginate and chitosan polyion complex hybrid fibers for scaffolds in ligament and tendon tissue engineering, J. Orthop. Sci, vol.10, pp.302-307, 2005. ,
The effect of PEGT/PBT scaffold architecture on oxygen gradients in tissue engineered cartilaginous constructs, Biomaterials, vol.25, pp.5773-5780, 2004. ,
Synovial healing responses to synthetic ligamentous fibres implanted in the knee joint of the rat, Actualité en Biomatériaux, pp.339-348, 1995. ,
Resorbable defect analog PLAGA scaffolds using CO 2 as solvent: Structural characterization, J ,
Electrospinning of Collagen Nanofibers, Biomacromolecules, vol.3, issue.2, pp.232-238, 2002. ,
DOI : 10.1021/bm015533u
Micro- and Nanostructured Surface Morphology on Electrospun Polymer Fibers, Macromolecules, vol.35, issue.22, pp.8456-8466, 2002. ,
DOI : 10.1021/ma020444a
Preparation and characterization of poly(l-lactic acid) foams, Polymer, vol.35, issue.5, pp.1068-1077, 1994. ,
DOI : 10.1016/0032-3861(94)90953-9
Degradation rates of oral resorbable implants (polylactates and polyglycolates): Rate modification with changes in PLA/PGA copolymer ratios, Journal of Biomedical Materials Research, vol.5, issue.5, pp.711-719, 1977. ,
DOI : 10.1002/jbm.820110507
Ultrafine Electrospun Polyamide-6 fibers : Effect of solution conditions on morphology and average fiber diameter, Macromol. Chem. Physic, vol.205, pp.2327-2338, 2004. ,
Electrospinning P(LLA-CL) Nanofiber: A Tubular Scaffold Fabrication with Circumferential Alignment, Macromolecular Symposia, vol.217, issue.1, pp.413-416, 2004. ,
DOI : 10.1002/masy.200451337
Novel approach to fabricate porous sponges of poly(d,l-lactic-co-glycolic acid) without the use of organic solvents, Biomaterials, vol.17, issue.14, pp.1417-1422, 1996. ,
DOI : 10.1016/0142-9612(96)87284-X
3D fiber-deposited scaffolds for tissue engineering: Influence of pores geometry and architecture on dynamic mechanical properties, Biomaterials, vol.27, issue.7, pp.974-985, 2006. ,
DOI : 10.1016/j.biomaterials.2005.07.023
Salt Fusion: An Approach to Improve Pore Interconnectivity within Tissue Engineering Scaffolds, Tissue Engineering, vol.8, issue.1, pp.43-52, 2002. ,
DOI : 10.1089/107632702753503045
The use of porcine small intestinal submucosa to enhance the healing of the medial collateral ligament-a functional tissue engineering study in rabbits, J. Orthop. Res, vol.22, pp.214-220, 2004. ,
Mechanical stretching force promotes collagen synthesis by cultured cells from human ligamentum flavum via transforming growth factor-??1, Journal of Orthopaedic Research, vol.17, issue.6, pp.1380-1386, 2002. ,
DOI : 10.1097/00007632-199211000-00015
Biodegradable polymeric microcellular foams by modified thermally induced phase separation method, Biomaterials, vol.20, issue.19, pp.1783-1790, 1999. ,
DOI : 10.1016/S0142-9612(99)00073-3
Mechanics of oriented electrospun nanofibrous scaffolds for annulus fibrosus tissue engineering, Journal of Orthopaedic Research, vol.11, issue.8, pp.1018-1028, 2007. ,
DOI : 10.1007/BF00186991
Anterior cruciate ligament constructs fabricated from human mesenchymal stem cells in a collagne type I hydrogel, Cytotherapy, vol.7, pp.447-455, 2005. ,
In vitro and in vivo characteristics of PCL scaffolds with pore size gradient fabricated by a centrifugation method, Biomaterials, vol.28, issue.9, pp.1664-1671, 2007. ,
DOI : 10.1016/j.biomaterials.2006.11.024
The biochemical and histological effects of artificial ligament wear particles : In vitro and in vivo studies, Am. J. Sports Med, vol.16, pp.558-570, 1988. ,
Characterization of anterior cruciate ligament cells and bone marrow stromal cells on various biodegradable polymeric films, Materials Science and Engineering: C, vol.20, issue.1-2, pp.63-69, 2002. ,
DOI : 10.1016/S0928-4931(02)00014-0
Knitted polylactide-co-glycolide scaffold loaded with bone marrow stromal cells in repair and regeneration of rabbit Achilles tendon, Tissue Engineering, vol.9, p.431439, 2003. ,
Assembly of bone marrow stromal cell sheets with knitted poly (L-lactide) scaffold for engineering ligament analogs, Journal of Biomedical Materials Research Part B: Applied Biomaterials, vol.21, issue.2, pp.264-271, 2005. ,
DOI : 10.1042/bj2690175
Accelerated chondrocyte functions on NaOH-treated PLGA scaffolds, Biomaterials, vol.26, issue.16, pp.3075-3082, 2005. ,
DOI : 10.1016/j.biomaterials.2004.08.005
The Gore-tex anterior cruciate ligament prosthesis : A long term followup, Am. J. Sports Med, vol.20, pp.246-252, 1992. ,
Bioactive poly(ethylene terephthalate) fibers and fabrics : Grafting, chemical characterization, and biological assessment, Biomacromol, vol.8, pp.3317-3325, 2007. ,
URL : https://hal.archives-ouvertes.fr/hal-00416095
Electrospun Poly(??-caprolactone) Microfiber and Multilayer Nanofiber/Microfiber Scaffolds:?? Characterization of Scaffolds and Measurement of Cellular Infiltration, Biomacromolecules, vol.7, issue.10, pp.2796-2805, 2006. ,
DOI : 10.1021/bm060680j
Aliphatic polyesters II. The degradation of poly (DL-lactide), poly (??-caprolactone), and their copolymers in vivo, Biomaterials, vol.2, issue.4, pp.215-220, 1981. ,
DOI : 10.1016/0142-9612(81)90060-0
Rupture of current ACL protheses. A retrospective analysis of 89 surgically excised explants, Actualité en Biomatériaux, pp.313-326, 1994. ,
Collagen fibril morphology and organization: Implications for force transmission in ligament and tendon, Matrix Biology, vol.25, issue.2, pp.71-84, 2006. ,
DOI : 10.1016/j.matbio.2005.09.005
Electrospinning of polymeric nanofibers for tissue engineering applications : A review, Tissue Engineering, vol.12, pp.1197-1211, 2006. ,
An introduction to electrospinning and nanofibers, World Scientific, p.100, 2005. ,
DOI : 10.1142/5894
An introduction to electrospinning and nanofibers, World Scientific, p.105, 2005. ,
DOI : 10.1142/5894
Nanometre diameter fibres of polymer, produced by electrospinning, Nanotechnology, vol.7, issue.3, pp.216-223, 1996. ,
DOI : 10.1088/0957-4484/7/3/009
Tissue engineering of cartilage: State of the art and future challenge. International symposium on bioengineering and regenerative medicine, 2007. ,
In vivo efficacy of bone-marrow-coated polycaprolactone scaffolds for the reconstruction of orbital defects in the pig, Journal of Biomedical Materials Research, vol.11, issue.2, pp.574-580, 2003. ,
DOI : 10.1054/jcms.2000.0140
In vitro assessment of cell penetration into porous hydroxyapatite scaffolds with a central aligned channel, Biomaterials, vol.25, pp.5507-5514, 2004. ,
Characterization of a Novel Polymeric Scaffold for Potential Application in Tendon/Ligament Tissue Engineering, Tissue Engineering, vol.12, issue.1, pp.91-99, 2006. ,
DOI : 10.1089/ten.2006.12.91
Guidance of glial cell migration and axonal growth on electrospun nanofibers of poly-??-caprolactone and a collagen/poly-??-caprolactone blend, Biomaterials, vol.28, issue.19, pp.3012-3025, 2007. ,
DOI : 10.1016/j.biomaterials.2007.03.009
In vitro biocompatibility assessment of poly($epsiv;-caprolactone) films using L929 mouse fibroblasts, Biomaterials, vol.25, issue.25, pp.5603-5611, 2004. ,
DOI : 10.1016/j.biomaterials.2004.01.037
Protein adsorption at the interface between charged polymer substrata and migrating osteoblasts, Biomaterials, vol.9, issue.1, pp.24-29, 1988. ,
DOI : 10.1016/0142-9612(88)90065-8
Reconstruction of the anterior cruciate ligament using allogeneic tendon, The American Journal of Sports Medicine, vol.18, issue.5 ,
DOI : 10.1177/036354657600400206
Electrospinning : A whipping fluid jet generates submicron polymer fibers, Appl. Phys. Lett, vol.78, pp.1149-1151, 2001. ,
Collagen self-assembly and the development of tendon mechanical properties, Journal of Biomechanics, vol.36, issue.10, pp.1529-1553, 2003. ,
DOI : 10.1016/S0021-9290(03)00135-0
Generation of porous microcellular 85/15 poly (dl-lactide-co-glycolide) foams for biomedical applications, Biomaterials, vol.25, issue.13, pp.2611-2617, 2004. ,
DOI : 10.1016/j.biomaterials.2003.09.040
The fabrication and characterization of linearly oriented nerve guidance scaffolds for spinal cord injury, Biomaterials, vol.25, issue.27, pp.5839-5846, 2004. ,
DOI : 10.1016/j.biomaterials.2004.01.041
Connective-tissue proteins, Biochemistry, issue.11, pp.261-274, 1989. ,
Development of a 3D cell culture system for investigating cell interactions with electrospun fibers, Biotechnology and Bioengineering, vol.26, issue.5, pp.1318-1328, 2007. ,
DOI : 10.1091/mbc.12.2.265
Disintegration of water drops in an electric field, Proc. R. Soc. 1964, A-280, pp.33-97 ,
Electrospun fibre bundle made of aligned nanofibres over two fixed points, Nanotechnology, vol.16, issue.9, pp.1878-1884, 2005. ,
DOI : 10.1088/0957-4484/16/9/077
Electrostatic field-assisted alignment of electrospun nanofibres, Nanotechnology, vol.12, issue.3, pp.384-390, 2001. ,
DOI : 10.1088/0957-4484/12/3/329
Fabrication of biodegradable polymer scaffolds to engineer trabecular bone, Journal of Biomaterials Science, Polymer Edition, vol.22, issue.1, pp.23-38, 1995. ,
DOI : 10.1016/0032-3861(81)90045-8
Hydroxyapatite fiber reinforced poly(??-hydroxy ester) foams for bone regeneration, Biomaterials, vol.19, issue.21, pp.1935-1943, 1998. ,
DOI : 10.1016/S0142-9612(98)00097-0
In vivo and in vitro cellular ongrowth into a new generation of artificial ligaments ,
Surface hydrophilicity and enzymatic hydrolyzability of biodegradable polyesters: 1. effects of alkaline treatment, Polymer International, vol.71, issue.5, pp.843-852, 2003. ,
DOI : 10.1016/S0141-3910(00)00192-0
The fabrication and characterization of poly(lactic acid) scaffolds for tissue engineering by improved solid-liquid phase separation, Polymers for Advanced Technologies, vol.62, issue.8, pp.565-573, 2003. ,
DOI : 10.1002/jbm.10318
Tissue Engineering of Ligaments: A Comparison of Bone Marrow Stromal Cells, Anterior Cruciate Ligament, and Skin Fibroblasts as Cell Source, Tissue Engineering, vol.10, issue.5-6, pp.893-903, 2004. ,
DOI : 10.1089/1076327041348428
Fibroblast responses to cyclic mechanical stretching depend on cell orientation to the stretching direction, Journal of Biomechanics, vol.37, issue.4, pp.573-576, 2004. ,
DOI : 10.1016/j.jbiomech.2003.09.011
Producing chitin scaffolds with controlled pore size and interconnectivity for tissue engineering, J. Mater. Sci. Letters, vol.20, pp.1401-1403, 2001. ,
Bone tissue engineering using polycaprolactone scaffolds fabricated via selective laser sintering, Biomaterials, vol.26, pp.4817-4827, 2005. ,
Tensile properties of the human femur-anterior cruciate ligament-tibia complex, The American Journal of Sports Medicine, vol.19, issue.3, pp.217-225, 1991. ,
DOI : 10.1177/036354658701500506
Tissue Engineering of Ligament and Tendon Healing, Clinical Orthopaedics and Related Research, vol.367 ,
DOI : 10.1097/00003086-199910001-00030
A ???room-temperature??? injection molding/particulate leaching approach for fabrication of biodegradable three-dimensional porous scaffolds, Biomaterials, vol.27, issue.2, pp.185-191, 2006. ,
DOI : 10.1016/j.biomaterials.2005.05.105
Preparation and Characterization of Novel Bone Scaffolds Based on Electrospun Polycaprolactone Fibers Filled with Nanoparticles, Macromolecular Bioscience, vol.205, issue.1, pp.70-77, 2006. ,
DOI : 10.1002/mabi.200500150
Aligned biodegradable nanofibrous structure: a potential scaffold for blood vessel engineering, Biomaterials, vol.25, issue.5, pp.877-886, 2004. ,
DOI : 10.1016/S0142-9612(03)00593-3
The Design of Scaffolds for Use in Tissue Engineering. Part I. Traditional Factors, Tissue Engineering, vol.7, issue.6, pp.679-689, 2001. ,
DOI : 10.1089/107632701753337645
Proliferation and collagen production of human patellar tendon fibroblasts in response to cyclic uniaxial stretching in serum-free conditions, Journal of Biomechanics, vol.37, issue.10, pp.1543-1550, 2004. ,
DOI : 10.1016/j.jbiomech.2004.01.005
Electrospinning of nano/micro scale poly(l-lactic acid) aligned fibers and their potential in neural tissue engineering, Biomaterials, vol.26, issue.15, pp.2603-2610, 2005. ,
DOI : 10.1016/j.biomaterials.2004.06.051
Immobilization of cell adhesive RGD peptide onto the surface of highly porous biodegradable polymer scaffolds fabricated by gas foaming/salt leaching method, Biomaterials, vol.25, pp.5614-5620, 2004. ,
Use of mesenchymal stem cells in a collagen matrix for achilles tendon repair, Journal of Orthopaedic Research, vol.3, issue.4 ,
DOI : 10.1179/014788895794710516
Anterior cruciate ligament anatomy and function relating to anatomical reconstruction, Knee Surgery, Sports Traumatology, Arthroscopy, vol.220, issue.2 ,
DOI : 10.1007/BF02798075
Extracellular matrix scaffolds are repopulated by bone marrow-derived cells in a mouse model of achilles tendon reconstruction, Journal of Orthopaedic Research, vol.427, issue.6, pp.1299-1309, 2006. ,
DOI : 10.1016/S0741-5214(94)70073-7
Structure, metallurgy, and mechanical properties of a porous tantalum foam, J. Biomed. Mater. Res, vol.58, pp.180-187, 2001. ,
Fused deposition modeling of novel scaffold architectures for tissue engineering applications, Biomaterials, vol.23, issue.4, pp.1169-1185, 2002. ,
DOI : 10.1016/S0142-9612(01)00232-0
Instability of Electrified Liquid Surfaces, Physical Review, vol.10, issue.1, pp.1-6, 1917. ,
DOI : 10.1103/PhysRev.10.1
Ultrafine fibers electrospun from biodegradable polymers, J. Appl. Polym. Sci, vol.89, pp.1085-1092, 2003. ,
Poly(?-hydroxyl acids)/hydroxyapatite porous composites for bone-tissue engineering. I. Preparation and morphology, Journal of Biomedical Materials Research, vol.213, issue.4 ,
DOI : 10.1007/978-94-011-2336-5
Synthetic nano-fibrillar extracellular matrices with predesigned macroporous architectures, Journal of Biomedical Materials Research, vol.82, issue.2, pp.430-438, 2000. ,
DOI : 10.1016/0076-6879(82)82085-5
Electrospinning of ethyl-cyanoethyl cellulose/tetrahydrofuran solutions, Journal of Applied Polymer Science, vol.313, issue.1, pp.242-246, 2004. ,
DOI : 10.1098/rspa.1969.0205
A comparative study of porous scaffolds with cubic and spherical macropores, Polymer, vol.46, issue.13, pp.4979-4985, 2005. ,
DOI : 10.1016/j.polymer.2005.02.120
Electrospinning of gelatin fibers and gelatin/PCL composite fibrous scaffolds, Journal of Biomedical Materials Research, vol.48, issue.1 ,
DOI : 10.1002/jbm.b.30128
Characterization of the surface biocompatibility of the electrospun PCL-collagen nanofibers using fibroblasts, Biomacromolecules, vol.6, pp.2583-2589, 2005. ,
Coaxial Electrospinning of (Fluorescein Isothiocyanate-Conjugated Bovine Serum Albumin)-Encapsulated Poly(??-caprolactone) Nanofibers for Sustained Release, Biomacromolecules, vol.7, issue.4, pp.1049-1057, 2006. ,
DOI : 10.1021/bm050743i
Microstructure and mechanical properties of poly(L-lactide) scaffolds fabricated by gelatin leaching out method, J ,
Selective laser sintering of porous tissue engineering scaffolds from poly(l-lactide)/carbonated hydroxyapatite nanocomposite microspheres, Journal of Materials Science: Materials in Medicine, vol.182, issue.335, 2007. ,
DOI : 10.1007/s10856-007-3089-3
Structure and process relationship of electrospun bioabsorbable nanofiber membranes, Polymer, vol.43, issue.16, pp.4403-4412, 2002. ,
DOI : 10.1016/S0032-3861(02)00275-6
Control of structure, morphology and property in electrospun poly(glycolide-co-lactide) non-woven membranes via post-draw treatments, Polymer, vol.44, issue.17, pp.4959-4967, 2003. ,
DOI : 10.1016/S0032-3861(03)00464-6
Electrospun fine-textured scaffolds for heart tissue constructs, Biomaterials, vol.26, issue.26, pp.5330-5338, 2005. ,
DOI : 10.1016/j.biomaterials.2005.01.052
Brosses baissées, mannette en position O ,
Mettre une aiguille sur deux en position D. Passer le fil sur les aiguilles qui ressortent de la machine ,
Brosses relevées, mannette de gauche en position ? ,
Il faut « fermer » les mailles restantes Le fil en amont et en aval doit rester tendu pour faciliter l'opération, Avec une aiguille, on passe les mailles les unes dans les autres et on finit par un double noeud ,