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Bone circuitry and interorgan skeletal crosstalk

The past decade has seen significant advances in our understanding of skeletal homeostasis and the mechanisms that mediate the loss of bone integrity in disease. Recent breakthroughs have arisen mainly from identifying disease-causing mutations and modeling human bone disease in rodents, in essence,...

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Autores principales: Zaidi, Mone, Kim, Se-Min, Mathew, Mehr, Korkmaz, Funda, Sultana, Farhath, Miyashita, Sari, Gumerova, Anisa Azatovna, Frolinger, Tal, Moldavski, Ofer, Barak, Orly, Pallapati, Anusha, Rojekar, Satish, Caminis, John, Ginzburg, Yelena, Ryu, Vitaly, Davies, Terry F, Lizneva, Daria, Rosen, Clifford J, Yuen, Tony
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9851618/
https://www.ncbi.nlm.nih.gov/pubmed/36656634
http://dx.doi.org/10.7554/eLife.83142
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author Zaidi, Mone
Kim, Se-Min
Mathew, Mehr
Korkmaz, Funda
Sultana, Farhath
Miyashita, Sari
Gumerova, Anisa Azatovna
Frolinger, Tal
Moldavski, Ofer
Barak, Orly
Pallapati, Anusha
Rojekar, Satish
Caminis, John
Ginzburg, Yelena
Ryu, Vitaly
Davies, Terry F
Lizneva, Daria
Rosen, Clifford J
Yuen, Tony
author_facet Zaidi, Mone
Kim, Se-Min
Mathew, Mehr
Korkmaz, Funda
Sultana, Farhath
Miyashita, Sari
Gumerova, Anisa Azatovna
Frolinger, Tal
Moldavski, Ofer
Barak, Orly
Pallapati, Anusha
Rojekar, Satish
Caminis, John
Ginzburg, Yelena
Ryu, Vitaly
Davies, Terry F
Lizneva, Daria
Rosen, Clifford J
Yuen, Tony
author_sort Zaidi, Mone
collection PubMed
description The past decade has seen significant advances in our understanding of skeletal homeostasis and the mechanisms that mediate the loss of bone integrity in disease. Recent breakthroughs have arisen mainly from identifying disease-causing mutations and modeling human bone disease in rodents, in essence, highlighting the integrative nature of skeletal physiology. It has become increasingly clear that bone cells, osteoblasts, osteoclasts, and osteocytes, communicate and regulate the fate of each other through RANK/RANKL/OPG, liver X receptors (LXRs), EphirinB2-EphB4 signaling, sphingolipids, and other membrane-associated proteins, such as semaphorins. Mounting evidence also showed that critical developmental pathways, namely, bone morphogenetic protein (BMP), NOTCH, and WNT, interact each other and play an important role in postnatal bone remodeling. The skeleton communicates not only with closely situated organs, such as bone marrow, muscle, and fat, but also with remote vital organs, such as the kidney, liver, and brain. The metabolic effect of bone-derived osteocalcin highlights a possible role of skeleton in energy homeostasis. Furthermore, studies using genetically modified rodent models disrupting the reciprocal relationship with tropic pituitary hormone and effector hormone have unraveled an independent role of pituitary hormone in skeletal remodeling beyond the role of regulating target endocrine glands. The cytokine-mediated skeletal actions and the evidence of local production of certain pituitary hormones by bone marrow-derived cells displays a unique endocrine-immune-skeletal connection. Here, we discuss recently elucidated mechanisms controlling the remodeling of bone, communication of bone cells with cells of other lineages, crosstalk between bone and vital organs, as well as opportunities for treating diseases of the skeleton.
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spelling pubmed-98516182023-01-20 Bone circuitry and interorgan skeletal crosstalk Zaidi, Mone Kim, Se-Min Mathew, Mehr Korkmaz, Funda Sultana, Farhath Miyashita, Sari Gumerova, Anisa Azatovna Frolinger, Tal Moldavski, Ofer Barak, Orly Pallapati, Anusha Rojekar, Satish Caminis, John Ginzburg, Yelena Ryu, Vitaly Davies, Terry F Lizneva, Daria Rosen, Clifford J Yuen, Tony eLife Medicine The past decade has seen significant advances in our understanding of skeletal homeostasis and the mechanisms that mediate the loss of bone integrity in disease. Recent breakthroughs have arisen mainly from identifying disease-causing mutations and modeling human bone disease in rodents, in essence, highlighting the integrative nature of skeletal physiology. It has become increasingly clear that bone cells, osteoblasts, osteoclasts, and osteocytes, communicate and regulate the fate of each other through RANK/RANKL/OPG, liver X receptors (LXRs), EphirinB2-EphB4 signaling, sphingolipids, and other membrane-associated proteins, such as semaphorins. Mounting evidence also showed that critical developmental pathways, namely, bone morphogenetic protein (BMP), NOTCH, and WNT, interact each other and play an important role in postnatal bone remodeling. The skeleton communicates not only with closely situated organs, such as bone marrow, muscle, and fat, but also with remote vital organs, such as the kidney, liver, and brain. The metabolic effect of bone-derived osteocalcin highlights a possible role of skeleton in energy homeostasis. Furthermore, studies using genetically modified rodent models disrupting the reciprocal relationship with tropic pituitary hormone and effector hormone have unraveled an independent role of pituitary hormone in skeletal remodeling beyond the role of regulating target endocrine glands. The cytokine-mediated skeletal actions and the evidence of local production of certain pituitary hormones by bone marrow-derived cells displays a unique endocrine-immune-skeletal connection. Here, we discuss recently elucidated mechanisms controlling the remodeling of bone, communication of bone cells with cells of other lineages, crosstalk between bone and vital organs, as well as opportunities for treating diseases of the skeleton. eLife Sciences Publications, Ltd 2023-01-19 /pmc/articles/PMC9851618/ /pubmed/36656634 http://dx.doi.org/10.7554/eLife.83142 Text en © 2023, Zaidi et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Medicine
Zaidi, Mone
Kim, Se-Min
Mathew, Mehr
Korkmaz, Funda
Sultana, Farhath
Miyashita, Sari
Gumerova, Anisa Azatovna
Frolinger, Tal
Moldavski, Ofer
Barak, Orly
Pallapati, Anusha
Rojekar, Satish
Caminis, John
Ginzburg, Yelena
Ryu, Vitaly
Davies, Terry F
Lizneva, Daria
Rosen, Clifford J
Yuen, Tony
Bone circuitry and interorgan skeletal crosstalk
title Bone circuitry and interorgan skeletal crosstalk
title_full Bone circuitry and interorgan skeletal crosstalk
title_fullStr Bone circuitry and interorgan skeletal crosstalk
title_full_unstemmed Bone circuitry and interorgan skeletal crosstalk
title_short Bone circuitry and interorgan skeletal crosstalk
title_sort bone circuitry and interorgan skeletal crosstalk
topic Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9851618/
https://www.ncbi.nlm.nih.gov/pubmed/36656634
http://dx.doi.org/10.7554/eLife.83142
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