Preliminary observations of mitochondrial dysfunction in Prader-Willi syndrome

被引:18
作者
Butler, Merlin G. [1 ,2 ]
Hossain, Waheeda A. [1 ,2 ]
Tessman, Robert [3 ]
Krishnamurthy, Partha C. [3 ]
机构
[1] Univ Kansas, Med Ctr, Dept Psychiat & Behav Sci, 3901 Rainbow Blvd,MS 4015, Kansas City, KS 66160 USA
[2] Univ Kansas, Med Ctr, Dept Pediat, Kansas City, KS 66103 USA
[3] Univ Kansas, Med Ctr, Dept Pharmacol Toxicol & Therapeut, Kansas City, KS 66103 USA
关键词
fibroblasts; healthy controls; mitochondrial assays and dysfunction; Prader-Willi syndrome; ENERGY-EXPENDITURE; INDIVIDUALS; MUTATIONS; OBESITY; EXPRESSION; PROFILES; DELETION; GENE; DNA;
D O I
10.1002/ajmg.a.40526
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Prader-Willi syndrome (PWS) is a complex multisystem disorder because of errors in genomic imprinting with severe hypotonia, decreased muscle mass, poor suckling, feeding problems and failure to thrive during infancy, growth and other hormone deficiency, childhood-onset hyperphagia, and subsequent obesity. Decreased energy expenditure in PWS is thought to contribute to reduced muscle mass and physical activity but may also relate to cellular metabolism and disturbances in mitochondrial function. We established fibroblast cell lines from six children and adults with PWS and six healthy controls for mitochondrial assays. We used Agilent Seahorse XF extracellular flux technology to determine real-time measurements of several metabolic parameters including cellular substrate utilization, Adenosine Triphosphate (ATP)-linked respiration, and mitochondrial capacity in living cells. Decreased mitochondrial function was observed in the PWS patients compared to the healthy controls with significant differences in basal respiration, maximal respiratory capacity, and ATP-linked respiration. These results suggest disturbed mitochondrial bioenergetics in PWS although the low number of studied subjects will require a larger subject population before a general consensus can be reached to identify if mitochondrial dysfunction is a contributing factor in PWS.
引用
收藏
页码:2587 / 2594
页数:8
相关论文
共 39 条
[21]   The Regulation and Physiology of Mitochondrial Proton Leak [J].
Divakaruni, Ajit S. ;
Brand, Martin D. .
PHYSIOLOGY, 2011, 26 (03) :192-205
[22]   Assessing bioenergetic function in response to oxidative stress by metabolic profiling [J].
Dranka, Brian P. ;
Benavides, Gloria A. ;
Diers, Anne R. ;
Giordano, Samantha ;
Zelickson, Blake R. ;
Reily, Colin ;
Zou, Luyun ;
Chatham, John C. ;
Hill, Bradford G. ;
Zhang, Jianhua ;
Landar, Aimee ;
Darley-Usmar, Victor M. .
FREE RADICAL BIOLOGY AND MEDICINE, 2011, 51 (09) :1621-1635
[23]   Superoxide activates mitochondrial uncoupling proteins [J].
Echtay, KS ;
Roussel, D ;
St-Pierre, J ;
Jekabsons, MB ;
Cadenas, S ;
Stuart, JA ;
Harper, JA ;
Roebuck, SJ ;
Morrison, A ;
Pickering, S ;
Clapham, JC ;
Brand, MD .
NATURE, 2002, 415 (6867) :96-99
[24]   Developmental profiles in young children with Prader-Labhart-Willi syndrome:: Effects of weight and therapy with growth hormone or Coenzyme Q10 [J].
Eiholzer, Urs ;
Meinhardt, Udo ;
Rousson, Valentin ;
Petrovic, Nelica ;
Schlumpf, Michael ;
l'Allemand, Dagmar .
AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2008, 146A (07) :873-880
[25]   Clinical and genetic heterogeneity in progressive external ophthalmoplegia due to mutations in polymerase γ [J].
Filosto, M ;
Mancuso, M ;
Nishigaki, Y ;
Pancrudo, J ;
Harati, Y ;
Gooch, C ;
Mankodi, A ;
Bayne, L ;
Bonilla, E ;
Shanske, S ;
Hirano, M ;
DiMauro, S .
ARCHIVES OF NEUROLOGY, 2003, 60 (09) :1279-1284
[26]   The Electrophile Responsive Proteome: Integrating Proteomics and Lipidomics with Cellular Function [J].
Higdon, Ashlee N. ;
Landar, Aimee ;
Barnes, Stephen ;
Darley-Usmar, Victor M. .
ANTIOXIDANTS & REDOX SIGNALING, 2012, 17 (11) :1580-1589
[27]  
Hill James O, 1990, Dysmorphol Clin Genet, V4, P27
[28]  
HOLM VA, 1993, PEDIATRICS, V91, P398
[29]  
Meaney F J, 1989, Med Anthropol, V10, P247
[30]  
MEANEY F J, 1989, Medical Anthropology Quarterly, V3, P294, DOI 10.1525/maq.1989.3.3.02a00080