Skip to main content
Erschienen in: Calcified Tissue International 2/2019

25.04.2019 | Original Research

Ablation of Stabilin-1 Enhances Bone-Resorbing Activity in Osteoclasts In Vitro

verfasst von: Soon-Young Kim, Eun-Hye Lee, Seung-Yoon Park, Hyuck Choi, Jeong-Tae Koh, Eui Kyun Park, In-San Kim, Jung-Eun Kim

Erschienen in: Calcified Tissue International | Ausgabe 2/2019

Einloggen, um Zugang zu erhalten

Abstract

Stabilin-1 is a transmembrane receptor that regulates molecule recycling and cell homeostasis by controlling the intracellular trafficking and participates in cell–cell adhesion and transmigration. Stabilin-1 expression is observed in various organs, including bones; however, its function and regulatory mechanisms in the bone remain unclear. In this study, we evaluated the physiological function of stabilin-1 in bone cells and tissue using a stabilin-1 knockout (Stab1 KO) mouse model. In wild-type (WT) mice, stabilin-1 was expressed in osteoblasts and osteoclasts, and its expression was maintained during osteoblast differentiation but significantly decreased after osteoclast differentiation. There was no difference in osteoblast differentiation and function, or the expression of osteoblast differentiation markers between mesenchymal stem cells isolated from Stab1 KO and WT mice. However, osteoclast differentiation marker levels demonstrated a non-significant increase and bone-resorbing activity was significantly increased in vitro in RANKL-induced osteoclasts from Stab1-deficient bone marrow macrophages (BMMs) compared with those of WT BMMs. Microcomputed tomography showed a negligible difference between WT and Stab1 KO mice in bone volume and trabecular thickness and number. Moreover, no in vivo functional defect in bone formation by osteoblasts was observed in the Stab1 KO mice. The osteoclast surface and number showed an increased tendency in Stab1 KO mice compared to WT mice in vivo, but this difference was not statistically significant. Overall, these results indicate that Stab1 does not play an essential role in in vivo bone development and bone cell function, but it does affect in vitro osteoclast maturation and function for bone resorption.
Anhänge
Nur mit Berechtigung zugänglich
Literatur
1.
3.
Zurück zum Zitat Tanaka Y, Nakayamada S, Okada Y (2005) Osteoblasts and osteoclasts in bone remodeling and inflammation. Curr Drug Targets Inflamm Allergy 4:325–328CrossRefPubMed Tanaka Y, Nakayamada S, Okada Y (2005) Osteoblasts and osteoclasts in bone remodeling and inflammation. Curr Drug Targets Inflamm Allergy 4:325–328CrossRefPubMed
4.
Zurück zum Zitat Prevo R, Banerji S, Ni J, Jackson DG (2004) Rapid plasma membrane-endosomal trafficking of the lymph node sinus and high endothelial venule scavenger receptor/homing receptor stabilin-1 (FEEL-1/CLEVER-1). J Biol Chem 279:52580–52592CrossRefPubMed Prevo R, Banerji S, Ni J, Jackson DG (2004) Rapid plasma membrane-endosomal trafficking of the lymph node sinus and high endothelial venule scavenger receptor/homing receptor stabilin-1 (FEEL-1/CLEVER-1). J Biol Chem 279:52580–52592CrossRefPubMed
5.
Zurück zum Zitat Kzhyshkowska J, Gratchev A, Goerdt S (2006) Stabilin-1, a homeostatic scavenger receptor with multiple functions. J Cell Mol Med 10:635–649CrossRefPubMed Kzhyshkowska J, Gratchev A, Goerdt S (2006) Stabilin-1, a homeostatic scavenger receptor with multiple functions. J Cell Mol Med 10:635–649CrossRefPubMed
6.
Zurück zum Zitat Qian H, Johansson S, McCourt P, Smedsrød B, Ekblom M, Johansson S (2009) Stabilins are expressed in bone marrow sinusoidal endothelial cells and mediate scavenging and cell adhesive functions. Biochem Biophys Res Commun 390:883–886CrossRefPubMed Qian H, Johansson S, McCourt P, Smedsrød B, Ekblom M, Johansson S (2009) Stabilins are expressed in bone marrow sinusoidal endothelial cells and mediate scavenging and cell adhesive functions. Biochem Biophys Res Commun 390:883–886CrossRefPubMed
7.
Zurück zum Zitat Kzhyshkowska J (2010) Multifunctional receptor stabilin-1 in homeostasis and disease. Sci World J 10:2039–2053CrossRef Kzhyshkowska J (2010) Multifunctional receptor stabilin-1 in homeostasis and disease. Sci World J 10:2039–2053CrossRef
8.
Zurück zum Zitat Politz O, Gratchev A, McCourt PA, Schledzewski K, Guillot P, Johansson S, Svineng G, Franke P, Kannicht C, Kzhyshkowska J, Longati P, Velten FW, Johansson S, Goerdt S (2002) Stabilin-1 and -2 constitute a novel family of fasciclin-like hyaluronan receptor homologues. Biochem J 362:155–164PubMedPubMedCentral Politz O, Gratchev A, McCourt PA, Schledzewski K, Guillot P, Johansson S, Svineng G, Franke P, Kannicht C, Kzhyshkowska J, Longati P, Velten FW, Johansson S, Goerdt S (2002) Stabilin-1 and -2 constitute a novel family of fasciclin-like hyaluronan receptor homologues. Biochem J 362:155–164PubMedPubMedCentral
9.
Zurück zum Zitat Hirose Y, Saijou E, Sugano Y, Takeshita F, Nishimura S, Nonaka H, Chen YR, Sekine K, Kido T, Nakamura T, Kato S, Kanke T, Nakamura K, Nagai R, Ochiya T, Miyajima A (2012) Inhibition of stabilin-2 elevates circulating hyaluronic acid levels and prevents tumor metastasis. Proc Natl Acad Sci 109:4263–4268CrossRefPubMed Hirose Y, Saijou E, Sugano Y, Takeshita F, Nishimura S, Nonaka H, Chen YR, Sekine K, Kido T, Nakamura T, Kato S, Kanke T, Nakamura K, Nagai R, Ochiya T, Miyajima A (2012) Inhibition of stabilin-2 elevates circulating hyaluronic acid levels and prevents tumor metastasis. Proc Natl Acad Sci 109:4263–4268CrossRefPubMed
10.
Zurück zum Zitat Park SY, Kim SY, Jung MY, Bae DJ, Kim IS (2008) Epidermal growth factor-like domain repeat of stabilin-2 recognizes phosphatidylserine during cell corpse clearance. Mol Cell Biol 28:5288–5298CrossRefPubMedPubMedCentral Park SY, Kim SY, Jung MY, Bae DJ, Kim IS (2008) Epidermal growth factor-like domain repeat of stabilin-2 recognizes phosphatidylserine during cell corpse clearance. Mol Cell Biol 28:5288–5298CrossRefPubMedPubMedCentral
11.
Zurück zum Zitat Schledzewski K, Géraud C, Arnold B, Wang S, Gröne HJ, Kempf T, Wollert KC, Straub BK, Schirmacher P, Demory A, Schönhaber H, Gratchev A, Dietz L, Thierse HJ, Kzhyshkowska J, Goerdt S (2011) Deficiency of liver sinusoidal scavenger receptors stabilin-1 and -2 mice causes glomerulofibrotic nephropathy via impaired hepatic clearance of noxious blood factors. J Clin Invest 121:703–714CrossRefPubMedPubMedCentral Schledzewski K, Géraud C, Arnold B, Wang S, Gröne HJ, Kempf T, Wollert KC, Straub BK, Schirmacher P, Demory A, Schönhaber H, Gratchev A, Dietz L, Thierse HJ, Kzhyshkowska J, Goerdt S (2011) Deficiency of liver sinusoidal scavenger receptors stabilin-1 and -2 mice causes glomerulofibrotic nephropathy via impaired hepatic clearance of noxious blood factors. J Clin Invest 121:703–714CrossRefPubMedPubMedCentral
12.
Zurück zum Zitat Lee SJ, Park SY, Jung MY, Bae SM, Kim IS (2011) Mechanism for phosphatidylserin-dependent erythrophagocytosis in mouse liver. Blood 117:5215–5223CrossRefPubMed Lee SJ, Park SY, Jung MY, Bae SM, Kim IS (2011) Mechanism for phosphatidylserin-dependent erythrophagocytosis in mouse liver. Blood 117:5215–5223CrossRefPubMed
13.
Zurück zum Zitat Kzhyshkowska J, Workman G, Cardó-Vila M, Arap W, Pasqualini R, Gratchev A, Krusell L, Goerdt S, Sage EH (2006) Novel function of alternatively activated macrophages: stabilin-1-mediated clearance of SPARC. J Immunol 176:5825–5832CrossRefPubMed Kzhyshkowska J, Workman G, Cardó-Vila M, Arap W, Pasqualini R, Gratchev A, Krusell L, Goerdt S, Sage EH (2006) Novel function of alternatively activated macrophages: stabilin-1-mediated clearance of SPARC. J Immunol 176:5825–5832CrossRefPubMed
14.
Zurück zum Zitat Workman G, Sage EH (2011) Identification of a sequence in the matricellular protein SPARC that interacts with the scavenger receptor stabilin-1. J Cell Biochem 112:1003–1008CrossRefPubMed Workman G, Sage EH (2011) Identification of a sequence in the matricellular protein SPARC that interacts with the scavenger receptor stabilin-1. J Cell Biochem 112:1003–1008CrossRefPubMed
16.
Zurück zum Zitat Xiao W, Meng G, Zhao Y, Yuan H, Li T, Peng Y, Zhao Y, Luo M, Zhao W, Li Z, Zheng X (2014) Human secreted stabilin-1-interacting chitinase-like protein aggravates the inflammation associated with rheumatoid arthritis and is a potential macrophage inflammatory regulator in rodents. Arthritis Rheumatol 66:1141–1152CrossRefPubMed Xiao W, Meng G, Zhao Y, Yuan H, Li T, Peng Y, Zhao Y, Luo M, Zhao W, Li Z, Zheng X (2014) Human secreted stabilin-1-interacting chitinase-like protein aggravates the inflammation associated with rheumatoid arthritis and is a potential macrophage inflammatory regulator in rodents. Arthritis Rheumatol 66:1141–1152CrossRefPubMed
17.
Zurück zum Zitat David C, Nance JP, Hubbard J, Hsu M, Binder D, Wilson EH (2012) Stabilin-1 expression in tumor associated macrophages. Brain Res 1481:71–78CrossRefPubMed David C, Nance JP, Hubbard J, Hsu M, Binder D, Wilson EH (2012) Stabilin-1 expression in tumor associated macrophages. Brain Res 1481:71–78CrossRefPubMed
18.
Zurück zum Zitat Lee W, Park SY, Kim SY, Kim JE, Kim SW, Seo YK, Kim IS, Bae JS (2018) Macrophagic stabilin-1 restored disruption of vascular integrity caused by sepsis. Thromb Haemost 118:1776–1789CrossRefPubMed Lee W, Park SY, Kim SY, Kim JE, Kim SW, Seo YK, Kim IS, Bae JS (2018) Macrophagic stabilin-1 restored disruption of vascular integrity caused by sepsis. Thromb Haemost 118:1776–1789CrossRefPubMed
19.
Zurück zum Zitat Erben RG (1997) Embedding of bone samples in methylmethacrylate: an improved method suitable for bone histomorphometry, histochemistry, and immunohistochemistry. J Histochem Cytochem 45:307–313CrossRefPubMed Erben RG (1997) Embedding of bone samples in methylmethacrylate: an improved method suitable for bone histomorphometry, histochemistry, and immunohistochemistry. J Histochem Cytochem 45:307–313CrossRefPubMed
20.
Zurück zum Zitat Parfitt AM, Drezner MK, Glorieux FH, Kanis JA, Malluche H, Meunier PJ, Ott SM, Recker RR (1987) Bone histomorphometry nomenclature, symbols and units: report of the ASBMR Histomorphometry Nomenclature Committee. J Bone Miner Res 2:595–610CrossRefPubMed Parfitt AM, Drezner MK, Glorieux FH, Kanis JA, Malluche H, Meunier PJ, Ott SM, Recker RR (1987) Bone histomorphometry nomenclature, symbols and units: report of the ASBMR Histomorphometry Nomenclature Committee. J Bone Miner Res 2:595–610CrossRefPubMed
21.
Zurück zum Zitat Lee JM, Lee EH, Kim IS, Kim JE (2015) Tgfbi deficiency leads to a reduction in skeletal size and degradation of the bone matrix. Calcif Tissue Int 96:56–64CrossRefPubMed Lee JM, Lee EH, Kim IS, Kim JE (2015) Tgfbi deficiency leads to a reduction in skeletal size and degradation of the bone matrix. Calcif Tissue Int 96:56–64CrossRefPubMed
22.
Zurück zum Zitat Herman S, Krönke G, Schett G (2008) Molecular mechanisms of inflammatory bone damage: emerging targets for therapy. Trends Mol Med 14:245–253CrossRefPubMed Herman S, Krönke G, Schett G (2008) Molecular mechanisms of inflammatory bone damage: emerging targets for therapy. Trends Mol Med 14:245–253CrossRefPubMed
23.
Zurück zum Zitat Petrova NL, Petrov PK, Edmonds ME, Shanahan CM (2015) Inhibition of TNF-α reverses the pathological resorption pit profile of osteoclasts from patients with acute charcot osteoarthropathy. J Diab Res 2015:917945 Petrova NL, Petrov PK, Edmonds ME, Shanahan CM (2015) Inhibition of TNF-α reverses the pathological resorption pit profile of osteoclasts from patients with acute charcot osteoarthropathy. J Diab Res 2015:917945
24.
Zurück zum Zitat Palani S, Elima K, Ekholm E, Jalkanen S, Salmi M (2016) Monocyte stabilin-1 suppresses the activation of Th1 lymphocytes. J Immunol 196:115–123CrossRefPubMed Palani S, Elima K, Ekholm E, Jalkanen S, Salmi M (2016) Monocyte stabilin-1 suppresses the activation of Th1 lymphocytes. J Immunol 196:115–123CrossRefPubMed
25.
Zurück zum Zitat Huynh ML, Fadok VA, Henson PM (2002) Phosphatidylserine-dependent ingestion of apoptotic cells promotes TGF-beta1 secretion and the resolution of inflammation. J Clin Invest 109:41–50CrossRefPubMedPubMedCentral Huynh ML, Fadok VA, Henson PM (2002) Phosphatidylserine-dependent ingestion of apoptotic cells promotes TGF-beta1 secretion and the resolution of inflammation. J Clin Invest 109:41–50CrossRefPubMedPubMedCentral
26.
Zurück zum Zitat Brekken RA, Sage EH (2000) SPARC, a matricellular protein: at the crossroads of cell-matrix. Matrix Biol 19:569–580CrossRefPubMed Brekken RA, Sage EH (2000) SPARC, a matricellular protein: at the crossroads of cell-matrix. Matrix Biol 19:569–580CrossRefPubMed
27.
Zurück zum Zitat Korns D, Frasch SC, Fernandez-Boyanapalli R, Henson PM, Bratton DL (2011) Modulation of macrophage efferocytosis in inflammation. Front Immunol 2:57CrossRefPubMedPubMedCentral Korns D, Frasch SC, Fernandez-Boyanapalli R, Henson PM, Bratton DL (2011) Modulation of macrophage efferocytosis in inflammation. Front Immunol 2:57CrossRefPubMedPubMedCentral
28.
Zurück zum Zitat Wu M, Chen G, Li YP (2016) TGF-β and BMP signaling in osteoblast, skeletal development, and bone formation, homeostasis and disease. Bone Res 4:16009CrossRefPubMedPubMedCentral Wu M, Chen G, Li YP (2016) TGF-β and BMP signaling in osteoblast, skeletal development, and bone formation, homeostasis and disease. Bone Res 4:16009CrossRefPubMedPubMedCentral
30.
Zurück zum Zitat Endo-Munoz L, Evdokiou A, Saunders NA (2012) The role of osteoclasts and tumour-associated macrophages in osteosarcoma metastasis. Biochim Biophys Acta 1826:434–442PubMed Endo-Munoz L, Evdokiou A, Saunders NA (2012) The role of osteoclasts and tumour-associated macrophages in osteosarcoma metastasis. Biochim Biophys Acta 1826:434–442PubMed
31.
Zurück zum Zitat Jeganathan S, Fiorino C, Naik U, Sun HS, Harrison RE (2014) Modulation of osteoclastogenesis with macrophage M1- and M2-inducing stimuli. PLoS ONE 9:e104498CrossRefPubMedPubMedCentral Jeganathan S, Fiorino C, Naik U, Sun HS, Harrison RE (2014) Modulation of osteoclastogenesis with macrophage M1- and M2-inducing stimuli. PLoS ONE 9:e104498CrossRefPubMedPubMedCentral
32.
Zurück zum Zitat Rantakari P, Patten DA, Valtonen J, Karikoski M, Gerke H, Dawes H, Laurila J, Ohlmeier S, Elima K, Hübscher SG, Weston CJ, Jalkanen S, Adams DH, Salmi M, Shetty S (2016) Stabilin-1 expression defines a subset of macrophages that mediate tissue homeostasis and prevent fibrosis in chronic liver injury. Proc Natl Acad Sci 113:9298–9303CrossRefPubMed Rantakari P, Patten DA, Valtonen J, Karikoski M, Gerke H, Dawes H, Laurila J, Ohlmeier S, Elima K, Hübscher SG, Weston CJ, Jalkanen S, Adams DH, Salmi M, Shetty S (2016) Stabilin-1 expression defines a subset of macrophages that mediate tissue homeostasis and prevent fibrosis in chronic liver injury. Proc Natl Acad Sci 113:9298–9303CrossRefPubMed
33.
Zurück zum Zitat Wu J, Henning P, Sjögren K, Koskela A, Tuukkanen J, Movérare-Skrtic S, Ohlsson C (2019) The androgen receptor is required for maintenance of bone mass in adult male mice. Mol Cell Endocrinol 479:159–169CrossRefPubMed Wu J, Henning P, Sjögren K, Koskela A, Tuukkanen J, Movérare-Skrtic S, Ohlsson C (2019) The androgen receptor is required for maintenance of bone mass in adult male mice. Mol Cell Endocrinol 479:159–169CrossRefPubMed
34.
Zurück zum Zitat Kawano H, Sato T, Yamada T, Matsumoto T, Sekine K, Watanabe T, Nakamura T, Fukuda T, Yoshimura K, Yoshizawa T, Aihara K, Yamamoto Y, Nakamichi Y, Metzger D, Chambon P, Nakamura K, Kawaguchi H, Kato S (2003) Suppressive function of androgen receptor in bone resorption. Proc Natl Acad Sci 100:9416–9421CrossRefPubMed Kawano H, Sato T, Yamada T, Matsumoto T, Sekine K, Watanabe T, Nakamura T, Fukuda T, Yoshimura K, Yoshizawa T, Aihara K, Yamamoto Y, Nakamichi Y, Metzger D, Chambon P, Nakamura K, Kawaguchi H, Kato S (2003) Suppressive function of androgen receptor in bone resorption. Proc Natl Acad Sci 100:9416–9421CrossRefPubMed
35.
Zurück zum Zitat Wu J, Movérare-Skrtic S, Zhang FP, Koskela A, Tuukkanen J, Palvimo JJ, Sipilä P, Poutanen M, Ohlsson C (2019) Androgen receptor SUMOylation regulates bone mass in male mice. Mol Cell Endocrinol 479:117–122CrossRefPubMed Wu J, Movérare-Skrtic S, Zhang FP, Koskela A, Tuukkanen J, Palvimo JJ, Sipilä P, Poutanen M, Ohlsson C (2019) Androgen receptor SUMOylation regulates bone mass in male mice. Mol Cell Endocrinol 479:117–122CrossRefPubMed
36.
Zurück zum Zitat Wiren KM, Zhang XW, Toombs AR, Kasparcova V, Gentile MA, Harada S, Jepsen KJ (2004) Targeted overexpression of androgen receptor in osteoblasts: unexpected complex bone phenotype in growing animals. Endocrinology 145:3507–3522CrossRefPubMed Wiren KM, Zhang XW, Toombs AR, Kasparcova V, Gentile MA, Harada S, Jepsen KJ (2004) Targeted overexpression of androgen receptor in osteoblasts: unexpected complex bone phenotype in growing animals. Endocrinology 145:3507–3522CrossRefPubMed
37.
Zurück zum Zitat Sato T, Kawano H, Kato S (2002) Study of androgen action in bone by analysis of androgen-receptor deficient mice. J Bone Miner Metab 20:326–330CrossRefPubMed Sato T, Kawano H, Kato S (2002) Study of androgen action in bone by analysis of androgen-receptor deficient mice. J Bone Miner Metab 20:326–330CrossRefPubMed
Metadaten
Titel
Ablation of Stabilin-1 Enhances Bone-Resorbing Activity in Osteoclasts In Vitro
verfasst von
Soon-Young Kim
Eun-Hye Lee
Seung-Yoon Park
Hyuck Choi
Jeong-Tae Koh
Eui Kyun Park
In-San Kim
Jung-Eun Kim
Publikationsdatum
25.04.2019
Verlag
Springer US
Erschienen in
Calcified Tissue International / Ausgabe 2/2019
Print ISSN: 0171-967X
Elektronische ISSN: 1432-0827
DOI
https://doi.org/10.1007/s00223-019-00552-x

Weitere Artikel der Ausgabe 2/2019

Calcified Tissue International 2/2019 Zur Ausgabe

Leitlinien kompakt für die Innere Medizin

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Update Innere Medizin

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.