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Sost, independent of the non-coding enhancer ECR5, is required for bone mechanoadaptation
- Publication Year :
- 2016
- Publisher :
- eScholarship, University of California, 2016.
-
Abstract
- Sclerostin (Sost) is a negative regulator of bone formation that acts upon the Wnt signaling pathway. Sost is mechanically regulated at both mRNA and protein level such that loading represses and unloading enhances Sost expression, in osteocytes and in circulation. The non-coding evolutionarily conserved enhancer ECR5 has been previously reported as a transcriptional regulatory element required for modulating Sost expression in osteocytes. Here we explored the mechanisms by which ECR5, or several other putative transcriptional enhancers regulate Sost expression, in response to mechanical stimulation. We found that in vivo ulna loading is equally osteoanabolic in wildtype and Sost(−/−) mice, although Sost is required for proper distribution of load-induced bone formation to regions of high strain. Using Luciferase reporters carrying the ECR5 non-coding enhancer and heterologous or homologous hSOST promoters, we found that ECR5 is mechanosensitive in vitro and that ECR5-driven Luciferase activity decreases in osteoblasts exposed to oscillatory fluid flow. Yet, ECR5(−/−) mice showed similar magnitude of load-induced bone formation and similar periosteal distribution of bone formation to high-strain regions compared to wildtype mice. Further, we found that in contrast to Sost(−/−) mice, which are resistant to disuse-induced bone loss, ECR5(−/−) mice lose bone upon unloading to a degree similar to wildtype control mice. ECR5 deletion did not abrogate positive effects of unloading on Sost, suggesting that additional transcriptional regulators and regulatory elements contribute to load-induced regulation of Sost.
- Subjects :
- 0301 basic medicine
RNA, Untranslated
Mechanotransduction
Physiology
Endocrinology, Diabetes and Metabolism
Medical and Health Sciences
Transgenic
chemistry.chemical_compound
Mice
Engineering
Osteogenesis
2.1 Biological and endogenous factors
Aetiology
Mice, Knockout
Chemistry
Wnt signaling pathway
Untranslated
Adaptor Proteins
Biological Sciences
Adaptation, Physiological
Cell biology
Biomechanical Phenomena
Enhancer Elements, Genetic
Bone Morphogenetic Proteins
Intercellular Signaling Peptides and Proteins
ECR5
Female
Stem Cell Research - Nonembryonic - Non-Human
medicine.medical_specialty
Histology
Enhancer Elements
Sclerostin
Knockout
Physiological
1.1 Normal biological development and functioning
Mice, Transgenic
Osteocytes
Article
03 medical and health sciences
Endocrinology & Metabolism
Genetic
Underpinning research
Internal medicine
medicine
Genetics
Animals
Luciferase
Adaptation
Enhancer
Skeleton
Adaptor Proteins, Signal Transducing
Glycoproteins
Sost
Messenger RNA
Wild type
Signal Transducing
Promoter
Stem Cell Research
030104 developmental biology
Endocrinology
Musculoskeletal
RNA
Osteoporosis
Disuse
Subjects
Details
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....43e9eb7ba6f6c851d6a0151dc0d6f202