Cellular mechanisms of acute rhabdomyolysis in inherited metabolic diseases

被引:1
作者
de Calbiac, Hortense [1 ]
Imbard, Apolline [2 ,3 ,4 ]
de Lonlay, Pascale [1 ,4 ]
机构
[1] Univ Paris Cite, Inst Necker Enfants Malad INEM, INSERM, U1151, Paris, France
[2] Hop Univ Necker Enfants Malad, AP HP, Serv Biochim, Paris, France
[3] Univ Paris Saclay, Fac Pharm, LYPSIS, Orsay, France
[4] Necker Enfants Malad Univ Hosp, AP HP, Imagine Inst, Filiere G2M,Reference Ctr Inherited Metab Dis,Meta, Paris, France
关键词
anterograde trafficking; ATP; autophagy; calcium; cellular trafficking; complex lipid membrane composition; inherited metabolic diseases; mitophagy; rhabdomyolysis; FATTY-ACID OXIDATION; CHAIN 3-HYDROXYACYL-COA DEHYDROGENASE; SKELETAL-MUSCLE ADAPTATION; GIRDLE MUSCULAR-DYSTROPHY; MEMBRANE CONTACT SITES; RYANODINE RECEPTOR; LIPID-METABOLISM; REGULATES AUTOPHAGY; INBORN-ERRORS; EXERTIONAL RHABDOMYOLYSIS;
D O I
10.1002/jimd.12781
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Acute rhabdomyolysis (RM) constitutes a life-threatening emergency resulting from the (acute) breakdown of skeletal myofibers, characterized by a plasma creatine kinase (CK) level exceeding 1000 IU/L in response to a precipitating factor. Genetic predisposition, particularly inherited metabolic diseases, often underlie RM, contributing to recurrent episodes. Both sporadic and congenital forms of RM share common triggers. Considering the skeletal muscle's urgent need to rapidly adjust to environmental cues, sustaining sufficient energy levels and functional autophagy and mitophagy processes are vital for its preservation and response to stressors. Crucially, the composition of membrane lipids, along with lipid and calcium transport, and the availability of adenosine triphosphate (ATP), influence membrane biophysical properties, membrane curvature in skeletal muscle, calcium channel signaling regulation, and determine the characteristics of autophagic organelles. Consequently, a genetic defect involving ATP depletion, aberrant calcium release, abnormal lipid metabolism and/or lipid or calcium transport, and/or impaired anterograde trafficking may disrupt autophagy resulting in RM. The complex composition of lipid membranes also alters Toll-like receptor signaling and viral replication. In response, infections, recognized triggers of RM, stimulate increased levels of inflammatory cytokines, affecting skeletal muscle integrity, energy metabolism, and cellular trafficking, while elevated temperatures can reduce the activity of thermolabile enzymes. Overall, several mechanisms can account for RMs and may be associated in the same disease-causing RM.
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页数:28
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