Physical and Histological Comparison of Hydroxyapatite, Carbonate Apatite, and β-Tricalcium Phosphate Bone Substitutes

scientific article published on 16 October 2018

Physical and Histological Comparison of Hydroxyapatite, Carbonate Apatite, and β-Tricalcium Phosphate Bone Substitutes is …
instance of (P31):
scholarly articleQ13442814

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P356DOI10.3390/MA11101993
P932PMC publication ID6213161
P698PubMed publication ID30332751

P2093author name stringYouji Miyamoto
Akira Tsuchiya
Kunio Ishikawa
Kanji Tsuru
Go Ohe
Koichiro Hayashi
P2860cites workFabrication of low-crystallinity hydroxyapatite foam based on the setting reaction of alpha-tricalcium phosphate foam.Q53494918
Effects of low crystalline carbonate apatite on proliferation and osteoblastic differentiation of human bone marrow cells.Q53625265
Fabrication of solid and hollow carbonate apatite microspheres as bone substitutes using calcite microspheres as a precursorQ57219026
Fabrication of low-crystalline carbonate apatite foam bone replacement based on phase transformation of calcite foamQ57220138
The carbonate environment in bone mineral: a resolution-enhanced Fourier Transform Infrared Spectroscopy StudyQ69230284
Occurrence of nitrogenous species in precipitated B-type carbonated hydroxyapatitesQ70174058
Bioceramics consisting of calcium phosphate saltsQ71506225
Novel hydroxyapatite ceramics with an interconnective porous structure exhibit superior osteoconduction in vivoQ77358055
Calcium hydroxyapatite ceramic implants in bone tumour surgery. A long-term follow-up studyQ80379504
A comparative assessment of synthetic ceramic bone substitutes with different composition and microstructure in rabbit femoral condyle modelQ84157216
Bone graft materials. An overview of the basic science.Q33849619
Osteoclasts: more than 'bone eaters'.Q33993757
Calcium orthophosphates in medicine: from ceramics to calcium phosphate cements.Q34196107
Synthetic bone graft substitutesQ34284334
Bioactive materials in orthopaedic surgery: overview and regulatory considerations.Q34591342
Bone substitutes: an updateQ36269863
The use of osteoconductive bone graft substitutes in orthopaedic traumaQ36924681
The Great Beauty of the osteoclast.Q38224362
Evaluation of carbonate apatite blocks fabricated from dicalcium phosphate dihydrate blocks for reconstruction of rabbit femoral and tibial defectsQ38812571
Fabrication of Carbonate Apatite Block through a Dissolution-Precipitation Reaction Using Calcium Hydrogen Phosphate Dihydrate Block as a PrecursorQ40992532
Fabrication of carbonate apatite block based on internal dissolution-precipitation reaction of dicalcium phosphate and calcium carbonate.Q43071371
Effect of temperature on crystallinity of carbonate apatite foam prepared from alpha-tricalcium phosphate by hydrothermal treatment.Q45937777
Fabrication of B-type carbonate apatite blocks by the phosphorization of free-molding gypsum-calcite composite.Q46274202
Fabrication of macroporous carbonate apatite foam by hydrothermal conversion of alpha-tricalcium phosphate in carbonate solutionsQ46767096
P275copyright licenseCreative Commons Attribution 4.0 InternationalQ20007257
P6216copyright statuscopyrightedQ50423863
P433issue10
P407language of work or nameEnglishQ1860
P577publication date2018-10-16
P1433published inMaterialsQ6786584
P1476titlePhysical and Histological Comparison of Hydroxyapatite, Carbonate Apatite, and β-Tricalcium Phosphate Bone Substitutes
P478volume11

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cites work (P2860)
Q90225233Honeycomb blocks composed of carbonate apatite, β-tricalcium phosphate, and hydroxyapatite for bone regeneration: effects of composition on biological responses
Q64275790Innovative Biomaterials for Bone Regrowth
Q87048615Osteoinductive and Osteoconductive Biomaterials
Q90284486Percutaneous cyst aspiration with injection of two different bioresorbable bone cements in treatment of simple bone cyst

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