Relationships between matrix mineralization, oxidative metabolism, and mitochondrial structure during ATDC5 murine chondroprogenitor cell line differentiation

被引:0
作者
Blank, Kevin [1 ]
Ekanayake, Derrick [1 ]
Cooke, Margaret [1 ,2 ]
Bragdon, Beth [1 ]
Hussein, Amira [1 ]
Gerstenfeld, Louis [1 ,3 ]
机构
[1] Boston Sch Med, Dept Orthopaed Surg, Boston, MA USA
[2] Stanford Univ, Sch Med, Dept Orthopaed Surg, Redwood City, CA USA
[3] Boston Sch Med, Orthoped Surg Res Lab, Dept Orthopaed Surg, 715 Albany St,E243, Boston, MA 02118 USA
基金
美国国家卫生研究院;
关键词
chondrocyte differentiation; matrix mineralization; mitochondrial fusion; oxidative metabolism; HYPERTROPHIC CHONDROCYTE; GROWTH; APOPTOSIS; OSTEOARTHRITIS; EXPRESSION; RICKETS; LEADS;
D O I
10.1002/jcp.31285
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The mechanistic relationships between the progression of growth chondrocyte differentiation, matrix mineralization, oxidative metabolism, and mitochondria content and structure were examined in the ATDC5 murine chondroprogenitor cell line. The progression of chondrocyte differentiation was associated with a statistically significant (p <= 0.05) similar to 2-fold increase in oxidative phosphorylation. However, as matrix mineralization progressed, oxidative metabolism decreased. In the absence of mineralization, cartilage extracellular matrix mRNA expression for Col2a1, Aggrecan, and Col10a1 were statistically (p <= 0.05) similar to 2-3-fold greater than observed in mineralizing cultures. In contrast, BSP and Phex that are associated with promoting matrix mineralization showed statistically (p <= 0.05) higher similar to 2-4 expression, while FGF23 phosphate regulatory factor was significantly lower (similar to 50%) in mineralizing cultures. Cultures induced to differentiate under both nonmineralizing and mineralizing media conditions showed statistically greater basal oxidative metabolism and ATP production. Maximal respiration and spare oxidative capacity were significantly elevated (p <= 0.05) in differentiated nonmineralizing cultures compared to those that mineralized. Increased oxidative metabolism was associated with both an increase in mitochondria volume per cell and mitochondria fusion, while mineralization diminished mitochondrial volume and appeared to be associated with fission. Undifferentiated and mineralized cells showed increased mitochondrial co-localization with the actin cytoskeletal. Examination of proteins associated with mitochondria fission and apoptosis and mitophagy, respectively, showed levels of immunological expression consistent with the increasing fission and apoptosis in mineralizing cultures. These results suggest that chondrocyte differentiation is associated with intracellular structural reorganization, promoting increased mitochondria content and fusion that enables increased oxidative metabolism. Mineralization, however, does not need energy derived from oxidative metabolism; rather, during mineralization, mitochondria appear to undergo fission and mitophagy. In summary, these studies show that as chondrocytes underwent hypertrophic differentiation, they increased oxidative metabolism, but as mineralization proceeds, metabolism decreased. Mitochondria structure also underwent a structural reorganization that was further supportive of their oxidative capacity as the chondrocytes progressed through their differentiation. Thus, the mitochondria first underwent fusion to support increased oxidative metabolism, then underwent fission during mineralization, facilitating their programed death.
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页数:14
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共 38 条
[1]   Lysosomal dysfunction in osteoarthritis and aged cartilage triggers apoptosis in chondrocytes through BAX mediated release of Cytochrome c [J].
Ansari, M. Y. ;
Ball, H. C. ;
Wase, S. J. ;
Novak, K. ;
Haqqi, T. M. .
OSTEOARTHRITIS AND CARTILAGE, 2021, 29 (01) :100-112
[2]   A CHONDROGENIC CELL-LINE DERIVED FROM A DIFFERENTIATING CULTURE OF AT805 TERATOCARCINOMA CELLS [J].
ATSUMI, T ;
MIWA, Y ;
KIMATA, K ;
IKAWA, Y .
CELL DIFFERENTIATION AND DEVELOPMENT, 1990, 30 (02) :109-116
[3]   CD11b Deficiency Favors Cartilage Calcification via Increased Matrix Vesicles, Apoptosis, and Lysyl Oxidase Activity [J].
Bernabei, Ilaria ;
Hansen, Uwe ;
Ehirchiou, Driss ;
Brinckmann, Juergen ;
Chobaz, Veronique ;
Busso, Nathalie ;
Nasi, Sonia .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (11)
[4]   A pipeline for multidimensional confocal analysis of mitochondrial morphology, function, and dynamics in pancreatic β-cells [J].
Chaudhry, Ahsen ;
Shi, Rocky ;
Luciani, Dan S. .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2020, 318 (02) :E87-E101
[5]   MATRIX MINERALIZATION IN HYPERTROPHIC CHONDROCYTE CULTURES - BETA-GLYCEROPHOSPHATE INCREASES TYPE-X COLLAGEN MESSENGER-RNA AND THE SPECIFIC ACTIVITY OF PP60(C-SRC) KINASE [J].
COE, MR ;
SUMMERS, TA ;
PARSONS, SJ ;
BOSKEY, AL ;
BALIAN, G .
BONE AND MINERAL, 1992, 18 (02) :91-106
[6]   Reactive oxygen species and NADPH oxidase 4 involvement in osteoarthritis [J].
Drevet, S. ;
Gavazzi, G. ;
Grange, L. ;
Dupuy, C. ;
Lardy, B. .
EXPERIMENTAL GERONTOLOGY, 2018, 111 :107-117
[7]   Iron deficiency drives an autosomal dominant hypophosphatemic rickets (ADHR) phenotype in fibroblast growth factor-23 (Fgf23) knock-in mice [J].
Farrow, Emily G. ;
Yu, Xijie ;
Summers, Lelia J. ;
Davis, Siobhan I. ;
Fleet, James C. ;
Allen, Matthew R. ;
Robling, Alexander G. ;
Stayrook, Keith R. ;
Jideonwo, Victoria ;
Magers, Martin J. ;
Garringer, Holly J. ;
Vidal, Ruben ;
Chan, Rebecca J. ;
Goodwin, Charles B. ;
Hui, Siu L. ;
Peacock, Munro ;
White, Kenneth E. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (46) :E1146-E1155
[8]   VEGF couples hypertrophic cartilage remodeling, ossification and angiogenesis during endochondral bone formation [J].
Gerber, HP ;
Vu, TH ;
Ryan, AM ;
Kowalski, J ;
Werb, Z ;
Ferrara, N .
NATURE MEDICINE, 1999, 5 (06) :623-628
[9]  
Gerstenfeld LC, 1996, J CELL BIOCHEM, V62, P1
[10]   Chondrocytes provide morphogenic signals that selectively induce osteogenic differentiation of mesenchymal stem cells [J].
Gerstenfeld, LC ;
Cruceta, J ;
Shea, CM ;
Sampath, K ;
Barnes, GL ;
Einhorn, TA .
JOURNAL OF BONE AND MINERAL RESEARCH, 2002, 17 (02) :221-230