Holed Models

Holed Models




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Holed Models

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A model of semiconductor behaviour in which
donors contribute a positive charge equal in magnitude to the
charge of an electron , and acceptors contribute space for such
a charge within the crystal lattice.


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Affiliations



1 School of Medicine, Stanford University, Palo Alto, CA, USA.

2 School of Medicine, Stanford University, Palo Alto, CA, USA. jhelms@stanford.edu.







Zhijun Li et al.






Methods Mol Biol .



2021 .







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1 School of Medicine, Stanford University, Palo Alto, CA, USA.

2 School of Medicine, Stanford University, Palo Alto, CA, USA. jhelms@stanford.edu.





Hu K, Besschetnova TY, Olsen BR.
Hu K, et al.
J Orthop Res. 2017 Jul;35(7):1461-1469. doi: 10.1002/jor.23416. Epub 2016 Sep 22.
J Orthop Res. 2017.

PMID: 27658810








Colnot C, Huang S, Helms J.
Colnot C, et al.
Biochem Biophys Res Commun. 2006 Nov 24;350(3):557-61. doi: 10.1016/j.bbrc.2006.09.079. Epub 2006 Sep 25.
Biochem Biophys Res Commun. 2006.

PMID: 17022937








Einhorn TA.
Einhorn TA.
Clin Orthop Relat Res. 1998 Oct;(355 Suppl):S7-21. doi: 10.1097/00003086-199810001-00003.
Clin Orthop Relat Res. 1998.

PMID: 9917622








Dennis SC, Berkland CJ, Bonewald LF, Detamore MS.
Dennis SC, et al.
Tissue Eng Part B Rev. 2015 Jun;21(3):247-66. doi: 10.1089/ten.TEB.2014.0419. Epub 2014 Dec 4.
Tissue Eng Part B Rev. 2015.

PMID: 25336144
Free PMC article.

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Borrelli J Jr, Pape C, Hak D, Hsu J, Lin S, Giannoudis P, Lane J.
Borrelli J Jr, et al.
J Orthop Trauma. 2012 Dec;26(12):708-11. doi: 10.1097/BOT.0b013e318274da8b.
J Orthop Trauma. 2012.

PMID: 23047710


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Wang J, Yang C, Kong F, Zhang Z, Ji S, Sun G.
Wang J, et al.
Stem Cells Int. 2022 Jul 18;2022:2091615. doi: 10.1155/2022/2091615. eCollection 2022.
Stem Cells Int. 2022.

PMID: 35898655
Free PMC article.







Yan CP, Wang XK, Jiang K, Yin C, Xiang C, Wang Y, Pu C, Chen L, Li YL.
Yan CP, et al.
Front Cell Dev Biol. 2022 May 20;10:883228. doi: 10.3389/fcell.2022.883228. eCollection 2022.
Front Cell Dev Biol. 2022.

PMID: 35669516
Free PMC article.







Zhang C, Wu S, Chen E, Yu L, Wang J, Wu M.
Zhang C, et al.
Cell Mol Life Sci. 2022 May 31;79(6):328. doi: 10.1007/s00018-022-04338-7.
Cell Mol Life Sci. 2022.

PMID: 35639207








Shen H, Gardner AM, Vyas J, Ishida R, Tawfik VL.
Shen H, et al.
Front Pharmacol. 2021 Feb 1;11:620485. doi: 10.3389/fphar.2020.620485. eCollection 2020.
Front Pharmacol. 2021.

PMID: 33597884
Free PMC article.

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Our understanding of the mechanisms underlying fracture healing is rapidly developing and is contributing to new therapeutic strategies to enhance repair. To gain new insights, animal models must also evolve. From initially imprecise, uncontrolled bone defects we now have precise injury models that still capture all of the stages and phases of bone repair yet do so in a highly reproducible manner. The simple mono-cortical defect model allows assessment of bone repair through a cartilage intermediate, e.g., endochondral ossification, as well as direct bone repair, e.g., intramembranous healing. Cellular contributions of the periosteum can be distinguished from contributions originating in the bone marrow. In this chapter, we focus on the advantages of this bone repair model, as well as its limitations.




Keywords:


Animal model; Bone regeneration; Fracture healing; Orthopedics.


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