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19篇 您的检索式:作者名="Bacabac"
    题名 作者 年代 出处 被引量
1Mechanobiology of bone tissue显示文摘Klein-Nulend J Bacabac RG Mullender MG 2005Pathol Biol2005,53,10:1
2Mechanobiotogy of bone tissue显示文摘Klein-Nulend J Bacabac R.G Mullender M.G 0,,:1
3Nitric oxide production by bone cells is fluid shear stress rate depend- ent显示文摘Bacabac RG Smit TH Mullender MG 2004Biochem Biophys Res Commun2004,315,4:1
4Nitric oxide production by bone cells is fluid sbear stress rate dependent显示文摘Bacabac R.G Smit T.H Mullender M.G 0,,:1
5Mechanical loading and how it affects bone cells:the role of the osteocyte cytoskeleton in maintaining our skeleton显示文摘Klein-Nulend J Bacabac R G Bakker A D 2012Eur Cell Mater2012,24,:1
6Nitric oxide production by bone cells is fluid shear stress rate dependent 显示文摘Bacabac RG Smit TH Mullender MG 2004Biochem Biophys Res Commun2004,19,315:1
7Mechanosensation and tranaduetion in osteocytes 显示文摘KLEIN-NULEND J BAKKER A D BACABAC R G 2013Bone2013,54,2:1
8Mechanosensation and transduction in osteocytes显示文摘Klein-Nulend J Bakker AD Bacabac RG 2013Bone2013,54,2:1
9Osteocyte shape and mechani- cal loading显示文摘van Oers RF Wang H Bacabac RG 2015Curr Osteoporos Rep2015,13,2:1
10Noise en-hances the rapid nitric oxide production by bone cells inresponse to fluid shear stress 显示文摘Bacabac RG Van Loon JJ Smit TH 2009Techno 1 HealthCare2009,17,1:1
11Release of nitric oxide, but not prostaglandin E2, by bone cells depends on fluid flow frequency显示文摘MULLENDER M G DIJCKS S J BACABAC R G 2006J Or- thop Res2006,24,:1
12Dynamic shear stress in parallel-plate flow chambers显示文摘Bacabac R G Smit T H Cowin S C 2005J Biomech2005,38,1:1
13Microgravity and bone cell mechanosensitivity 显示文摘Klein-Nulend J Bacabac RG Veldhuijzen JP 2003Adv Space Res2003,32,8:1
14Microgravity and bone cell mechanosensitivity 显示文摘Klein - Nulend J Bacabac RG Veldhuijzen JP 2003Adv Space Res2003,32,8:1
15Nitric oxide production by bone cells is fluid shear stress rate dependent 显示文摘Bacabac RG Smit TH Mullender MG 2004Biochem Bioph Res Co2004,315,4:1
16Mechanobiology ofbone tissue显示文摘Klein-Nulend J Bacabac RG Mullender MG 2005Pathol Bio(l Paris)2005,53,10:1
17Bone cell responses to high-frequency vibration stress:does the nucleus oscillate within the cytoplasm?显示文摘Bacabac RG Smit TH van Loon JJ 2006FASEB J2006,20,7:1
18Bone cell re- sponses to high-frequency vibration stress:does the nucleus oscillate within the cytoplasm?显示文摘Bacabac RG Smit TH Van Loon JJ 2006FASEB J2006,20,7:1
19Osteocyte morphology and orientation in relation to strain in the jaw bone显示文摘Bone mass is important for dental implant success and is regulated by mechanoresponsive osteocytes. We aimed to investigate the relationship between the levels and orientation of tensile strain and morphology and orientation of osteocytes at different dental implant positions in the maxillary bone. Bone biopsies were retrieved from eight patients who underwent maxillary sinus-floor elevation with β-tricalcium phosphate prior to implant placement. Gap versus free-ending locations were compared using 1) a three-dimensional finite-element model of the maxilla to predict the tensile strain magnitude and direction and 2) histology and histomorphometric analyses. The finite-element model predicted larger, differently directed tensile strains in the gap versus freeending locations. The mean percentage of mineralised residual native-tissue volume, osteocyte number(mean ± standard deviations:97 ± 40/region-of-interest), and osteocyte shape(~90% elongated, ~10% round) were similar for both locations. However, the osteocyte surface area was 1.5-times larger in the gap than in the free-ending locations, and the elongated osteocytes in these locations were more cranially caudally oriented. In conclusion, significant differences in the osteocyte surface area and orientation seem to exist locally in the maxillary bone, which may be related to the tensile strain magnitude and orientation. This might reflect local differences in the osteocyte mechanosensitivity and bone quality, suggesting differences in dental implant success based on the location in the maxilla.Vivian Wu René F. M. van Oers Engelbert A. J. M. Schulten Marco No Helder Rommel G. Bacabac Jenneke Klein-Nulend 2018International Journal of Oral Science2018,10,1:0
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