erythrosine and vendex

erythrosine has been researched along with vendex in 6 studies

Research

Studies (6)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's1 (16.67)18.2507
2000's1 (16.67)29.6817
2010's4 (66.67)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Martin, GP; Needleman, IG; Smales, FC1
Bloch, RJ; Lovering, RM; Roche, JA1
Bloch, RJ; Lovering, RM; Reed, PW; Roche, JA; Roche, R; Ru, LW1
Blanchard, SB; Chu, TM; Ito, M; Shin, D1
Gutwald, R; Kreutzer, K; Metzger, M; Rahn, B; Sauerbier, S; Schmelzeisen, R; Schön, R1
Cottam, MR; Dahlke, WO; Ditmyer, MM; Herring, MC; Leavitt, JM; Walker, RS1

Other Studies

6 other study(ies) available for erythrosine and vendex

ArticleYear
Characterisation of bioadhesives for periodontal and oral mucosal drug delivery.
    Journal of clinical periodontology, 1998, Volume: 25, Issue:1

    Topics: Adhesiveness; Adhesives; Administration, Buccal; Biocompatible Materials; Biopolymers; Chemical Phenomena; Chemistry, Pharmaceutical; Chemistry, Physical; Chitin; Chitosan; Drug Carriers; Drug Delivery Systems; Elasticity; Fluoresceins; Fluorescent Dyes; Gels; Humans; Materials Testing; Mouth Mucosa; Organ Culture Techniques; Periodontal Pocket; Polyethylene Glycols; Polysaccharides, Bacterial; Rheology; Stress, Mechanical; Surface-Active Agents; Torque; Water

1998
Impaired recovery of dysferlin-null skeletal muscle after contraction-induced injury in vivo.
    Neuroreport, 2008, Oct-29, Volume: 19, Issue:16

    Topics: Animals; Dextrans; Dysferlin; Fluoresceins; Male; Membrane Proteins; Mice; Mice, Inbred A; Mice, Inbred C57BL; Mice, Knockout; Microscopy, Confocal; Microscopy, Fluorescence; Muscle Contraction; Muscle Development; Muscle, Skeletal; Recovery of Function; Sarcolemma; Torque; Wound Healing

2008
Extensive mononuclear infiltration and myogenesis characterize recovery of dysferlin-null skeletal muscle from contraction-induced injuries.
    American journal of physiology. Cell physiology, 2010, Volume: 298, Issue:2

    Topics: Animals; Cumulative Trauma Disorders; Dextrans; Disease Models, Animal; Dysferlin; Fluoresceins; Inflammation; Macrophages; Male; Membrane Proteins; Mice; Mice, Knockout; Muscle Contraction; Muscle Development; Muscle Fibers, Skeletal; Muscle, Skeletal; Muscular Dystrophies, Limb-Girdle; Necrosis; Recovery of Function; Time Factors; Torque

2010
Peripheral quantitative computer tomographic, histomorphometric, and removal torque analyses of two different non-coated implants in a rabbit model.
    Clinical oral implants research, 2011, Volume: 22, Issue:3

    Topics: Animals; Bone Density; Bone Remodeling; Dental Implants; Dental Materials; Dental Prosthesis Design; Diaphyses; Fluoresceins; Fluorescent Dyes; Male; Models, Animal; Osseointegration; Periosteum; Rabbits; Random Allocation; Tibia; Time Factors; Titanium; Tomography, X-Ray Computed; Torque; Zirconium

2011
Miniplate osteosynthesis with four different systems in sheep.
    International journal of oral and maxillofacial surgery, 2011, Volume: 40, Issue:1

    Topics: Alloys; Animals; Biocompatible Materials; Biomechanical Phenomena; Bone Plates; Bone Screws; Bony Callus; Equipment Design; Equipment Failure; Fluoresceins; Fluorescent Dyes; Mandible; Osteogenesis; Osteotomy; Phenols; Sheep; Sulfoxides; Surface Properties; Time Factors; Titanium; Tomography, X-Ray Computed; Torque; Xylenes

2011
Evaluation of the spatter-reduction effectiveness of two dry-field isolation techniques.
    Journal of the American Dental Association (1939), 2012, Volume: 143, Issue:11

    Topics: Aerosols; Air Microbiology; Dental Cavity Preparation; Dental High-Speed Equipment; Equipment Contamination; Equipment Design; Fluoresceins; Fluorescent Dyes; Humans; Infection Control, Dental; Manikins; Models, Dental; Mouth Protectors; Occupational Exposure; Rotation; Rubber Dams; Suction; Torque; Water

2012