Biomedical Engineering Reference
In-Depth Information
78. Temenoff JS, Mikos AG (2000) Injectable biodegradable materials for orthopaedic tissue
engineering. Biomaterials 21:2405-2412
79. Ishaug-Riley SL, Crane-Kruger GM, Yaszemski MJ, Mikos AG (1998) Three-dimensional
culture of rat calvarial osteoblasts in porous biodegradable polymers. Biomaterials 19:
1405-1412
80. Tangpasuthadol V, Pendharkar SM, Kohn J (2000) Hydrolytic degradation of tyrosine-
derived polycarbonates, a class of new biomaterials: part I study of model compounds.
Biomaterials 21:2371-2378
81. Tangpasuthadol V, Pendharkar SM, Peterson RC, Kohn J (2000) Hydrolytic degradation of
tyrosine-derived polycarbonates, a class of new biomaterials. part II: study of model
compounds. Biomaterials 21:2379-2387
82. Mandaogade PM, Satturwar PM, Fulzele SV, Gogte BB, Dorle AK (2002) Rosin
derivatives: novel film forming materials for controlled drug delivery. React Funct Polym
50:233-242
83. Satturwar PM, Mandaogade PM, Fulzele SV, Darwhekar GN, Joshi SB, Dorle AK (2002)
Synthesis and evaluation of rosin based polymers as film coating materials. Drug Dev Ind
Pharm 28:383-389
84. Sahu NH, Mandaogade PM, Deshmukh AM, Meghre VS, Dorle AK (1999) Biodegradation
studies of rosin-glycerol ester derivative. J Bioact Compat Polym 14:344-360
85. Friess W (1998) Collagen-biomaterial for drug delivery. Eur J Pharm Biopharm 45:113-136
86. Klammert U, Ignatius A, Wolfram U, Reuther T, Gbureck U (2011) In vivo degradation of
low temperature calcium and magnesium phosphate ceramics in a heterotopic model. Acta
Biomater 7:3469-3475
87. Walton M, Cotton NJ (2007) Long-term in vivo degradation of poly-L-lactide (PLLA) in
bone. J Biomater Appl 21:395-411
88. Schilling AF, Linhart W, Filke S, Gebauer M, Schinke T, Rueger JM, Amling M (2004)
Resorbability of bone substitute biomaterials by human osteoclasts. Biomaterials 25:
3963-3972
89. Xia Z, Triffitt JT (2006) A review on macrophage responses to biomaterials. Biomed Mater
1:1-9
90. Hoebertz A, Arnett TR (2003) Isolated osteoclast cultures. Methods Mol Med 80:53-64
91. Chambers TJ, Revell PA, Fuller K, Athanasou NA (1984) Resorption of bone by isolated
rabbit osteoclasts. J Cell Sci 66:383-399
92. Boyde A, Jones SJ (1987) Early scanning electron microscopic studies of hard tissue
resorption: their relation to current concepts reviewed. Scanning Microsc 1:369-381
93. Jones SJ, Boyde A, Ali NN (1984) The resorption of biological and non-biological
substrates by cultured avian and mammalian osteoclasts. Anat Embryol (Berl) 170:247-256
94. Oursler MJ, Collin-Osdoby P, Anderson F, Li L, Webber D, Osdoby P (1991) Isolation of
avian osteoclasts: improved techniques to preferentially purify viable cells. J Bone Miner
Res 6:375-385
95. Cao JJ, Wronski TJ, Iwaniec U, Phleger L, Kurimoto P, Boudignon B, Halloran BP (2005)
Aging
increases
stromal/osteoblastic
cell-induced
osteoclastogenesis
and
alters
the
osteoclast precursor pool in the mouse. J Bone Miner Res 20:1659-1668
96. Yasuda H, Shima N, Nakagawa N, Yamaguchi K, Kinosaki M, Mochizuki S, Tomoyasu A,
Yano K, Goto M, Murakami A, Tsuda E, Morinaga T, Higashio K, Udagawa N, Takahashi N,
Suda
T
(1998)
Osteoclast
differentiation
factor
is
a
ligand
for
osteoprotegerin/
osteoclastogenesis-inhibitory
factor
and
is
identical
to
TRANCE/RANKL.
Proc
Natl
Acad Sci U S A 95:3597-3602
97. Fuller K, Ross JL, Szewczyk KA, Moss R, Chambers TJ (2010) Bone is not essential for
osteoclast activation. PLoS One 5:e12837
98. Boyde A, Ali NN, Jones SJ (1985) Optical and scanning electron microscopy in the single
osteoclast resorption assay. Scan Electron Microsc 3:1259-1271
99. Salgado AJ, Coutinho OP, Reis RL (2004) Bone tissue engineering: state of the art and
future trends. Macromol Biosci 4:743-765
Search WWH ::




Custom Search