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Mechanical loading disrupts osteocyte plasma membranes which initiates mechanosensation events in bone.
Yu, Kanglun; Sellman, David P; Bahraini, Anoosh; Hagan, Mackenzie L; Elsherbini, Ahmed; Vanpelt, Kayce T; Marshall, Peyton L; Hamrick, Mark W; McNeil, Anna; McNeil, Paul L; McGee-Lawrence, Meghan E.
  • Yu K; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Sellman DP; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Bahraini A; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Hagan ML; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Elsherbini A; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Vanpelt KT; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Marshall PL; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • Hamrick MW; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • McNeil A; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • McNeil PL; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
  • McGee-Lawrence ME; Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, 30912, Georgia.
J Orthop Res ; 36(2): 653-662, 2018 02.
Article en En | MEDLINE | ID: mdl-28755471
ABSTRACT
Osteocytes sense loading in bone, but their mechanosensation mechanisms remain poorly understood. Plasma membrane disruptions (PMD) develop with loading under physiological conditions in many cell types (e.g., myocytes, endothelial cells). These PMD foster molecular flux across cell membranes that promotes tissue adaptation, but this mechanosensation mechanism had not been explored in osteocytes. Our goal was to investigate whether PMD occur and initiate consequent mechanotransduction in osteocytes during physiological loading. We found that osteocytes experience PMD during in vitro (fluid flow) and in vivo (treadmill exercise) mechanical loading, in proportion to the level of stress experienced. In fluid flow studies, osteocyte PMD preferentially formed with rapid as compared to gradual application of loading. In treadmill studies, osteocyte PMD increased with loading in weight bearing locations (tibia), but this trend was not seen in non-weight bearing locations (skull). PMD initiated osteocyte mechanotransduction including calcium signaling and expression of c-fos, and repair rates of these PMD could be enhanced or inhibited pharmacologically to alter downstream mechanotransduction and osteocyte survival. PMD may represent a novel mechanosensation pathway in bone and a target for modifying skeletal adaptation signaling in osteocytes. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36653-662, 2018.
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Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Osteocitos / Huesos / Mecanotransducción Celular Límite: Animals Idioma: En Año: 2018 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Osteocitos / Huesos / Mecanotransducción Celular Límite: Animals Idioma: En Año: 2018 Tipo del documento: Article