Sphingolipid metabolism and its role in the skeletal tissues

被引:63
作者
Khavandgar, Zohreh [1 ]
Murshed, Monzur [1 ,2 ,3 ]
机构
[1] McGill Univ, Fac Dent, Montreal, PQ, Canada
[2] McGill Univ, Dept Med, Montreal, PQ, Canada
[3] McGill Univ, Shriners Hosp Children, Montreal, PQ, Canada
关键词
Sphingolipids; SMPD3; Neutral sphingomyelinase; Ceramide; Phosphocholine; Sphingosine; 1; phosphate; Matrix vesicles; Skeletal development; Bone mineralization; fro/fro; NEUTRAL SPHINGOMYELINASE 2; SHOCK-PROTEIN; 27; CHOLINE KINASE; ALKALINE SPHINGOMYELINASE; CERAMIDE BIOSYNTHESIS; SIGNALING PATHWAY; ENERGY-METABOLISM; MATRIX VESICLES; GROWTH-FACTOR; CELL-DEATH;
D O I
10.1007/s00018-014-1778-x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The regulators affecting skeletal tissue formation and its maintenance include a wide array of molecules with very diverse functions. More recently, sphingolipids have been added to this growing list of regulatory molecules in the skeletal tissues. Sphingolipids are integral parts of various lipid membranes present in the cells and organelles. For a long time, these macromolecules were considered as inert structural elements. This view, however, has radically changed in recent years as sphingolipids are now recognized as important second messengers for signal-transduction pathways that affect cell growth, differentiation, stress responses and programmed death. In the current review, we discuss the available data showing the roles of various sphingolipids in three different skeletal cell types-chondrocytes in cartilage and osteoblasts and osteoclasts in bone. We provide an overview of the biology of sphingomyelin phosphodiesterase 3 (SMPD3), an important regulator of sphingolipid metabolism in the skeleton. SMPD3 is localized in the plasma membrane and has been shown to cleave sphingomyelin to generate ceramide, a bioactive lipid second messenger, and phosphocholine, an essential nutrient. SMPD3 deficiency in mice impairs the mineralization in both cartilage and bone extracellular matrices leading to severe skeletal deformities. A detailed understanding of SMPD3 function may provide a novel insight on the role of sphingolipids in the skeletal tissues.
引用
收藏
页码:959 / 969
页数:11
相关论文
共 78 条
[1]  
Airola Michael V, 2013, Handb Exp Pharmacol, P57, DOI 10.1007/978-3-7091-1368-4_3
[2]   Sox9 Family Members Negatively Regulate Maturation and Calcification of Chondrocytes through Up-Regulation of Parathyroid Hormone-related Protein [J].
Amano, Katsuhiko ;
Hata, Kenji ;
Sugita, Atsushi ;
Takigawa, Yoko ;
Ono, Koichiro ;
Wakabayashi, Makoto ;
Kogo, Mikihiko ;
Nishimura, Riko ;
Yoneda, Toshiyuki .
MOLECULAR BIOLOGY OF THE CELL, 2009, 20 (21) :4541-4551
[3]   Programmed cell death of chondrocytes and aberrant chondrogenesis in mice homozygous for parathyroid hormone-related peptide gene deletion [J].
Amizuka, N ;
Henderson, JE ;
Hoshi, K ;
Warshawsky, H ;
Ozawa, H ;
Goltzman, D ;
Karaplis, AC .
ENDOCRINOLOGY, 1996, 137 (11) :5055-5067
[4]   Matrix vesicles and calcification. [J].
H. Clarke Anderson .
Current Rheumatology Reports, 2003, 5 (3) :222-226
[5]   A deletion in the gene encoding sphingomyelin phosphodiesterase 3 (Smpd3) results in osteogenesis and dentinogenesis imperfecta in the mouse [J].
Aubin, I ;
Adams, CP ;
Opsahl, S ;
Septier, D ;
Bishop, CE ;
Auge, N ;
Salvayre, R ;
Negre-Salvayre, A ;
Goldberg, M ;
Guénet, JL ;
Poirier, C .
NATURE GENETICS, 2005, 37 (08) :803-805
[6]   CHOLINE KINASE AND ETHANOLAMINE KINASE ARE SEPARATE, SOLUBLE ENZYMES IN RAT-LIVER [J].
BROPHY, PJ ;
CHOY, PC ;
TOONE, JR ;
VANCE, DE .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1977, 78 (02) :491-495
[7]   Dexamethasone suppresses tumor necrosis factor-α-induced apoptosis in osteoblasts:: Possible role for ceramide [J].
Chae, HJ ;
Chae, SW ;
Kang, JS ;
Bang, BG ;
Cho, SB ;
Park, RK ;
So, HS ;
Kim, YK ;
Kim, HM ;
Kim, HR .
ENDOCRINOLOGY, 2000, 141 (08) :2904-2913
[8]   Sphingolipid Metabolism Cooperates with BAK and BAX to Promote the Mitochondrial Pathway of Apoptosis [J].
Chipuk, Jerry E. ;
McStay, Gavin P. ;
Bharti, Archana ;
Kuwana, Tomomi ;
Clarke, Christopher J. ;
Siskind, Leah J. ;
Obeid, Lina M. ;
Green, Douglas R. .
CELL, 2012, 148 (05) :988-1000
[9]   Comparison of bone tissue properties in mouse models with collagenous and non-collagenous genetic mutations using FTIRI [J].
Coleman, Rhima M. ;
Aguilera, Laura ;
Quinones, Layla ;
Lukashoya, Lyudamila ;
Poirier, Christophe ;
Boskey, Adele .
BONE, 2012, 51 (05) :920-928
[10]   FGFs in Endochondral Skeletal Development [J].
Degnin, Catherine R. ;
Laederich, Melanie B. ;
Horton, William A. .
JOURNAL OF CELLULAR BIOCHEMISTRY, 2010, 110 (05) :1046-1057