Synaptic defects in type I spinal muscular atrophy in human development

被引:64
作者
Martinez-Hernandez, Rebeca [1 ,2 ]
Bernal, Sara [1 ,2 ]
Also-Rallo, Eva [1 ,2 ]
Alias, Laura [1 ,2 ]
Jesus Barcelo, Ma [1 ,2 ]
Hereu, Marta [3 ,4 ]
Esquerda, Josep E. [3 ,4 ]
Tizzano, Eduardo F. [1 ,2 ]
机构
[1] Hosp Santa Creu & Sant Pau, Dept Genet, Barcelona 08025, Spain
[2] IIB St Pau, Barcelona 08025, Spain
[3] IRBLLeida, Lleida, Spain
[4] Univ LLeida, Dept Expt Med, Unitat Neurobiol Cel Lular, Lleida, Spain
关键词
spinal muscular atrophy; neuromuscular junction; acetylcholine receptor; human development; WERDNIG-HOFFMANN DISEASE; MOTOR-NEURON PROTEIN; SMN2 COPY NUMBER; NEUROMUSCULAR-JUNCTION; MUSCLE-FIBERS; MOUSE MODELS; ACETYLCHOLINE-RECEPTOR; FETAL-DEVELOPMENT; DETERMINING GENE; NATURAL-HISTORY;
D O I
10.1002/path.4080
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Childhood spinal muscular atrophy is an autosomal recessive neuromuscular disorder caused by alterations in the Survival Motor Neuron 1 gene that triggers degeneration of motor neurons within the spinal cord. Spinal muscular atrophy is the second most common severe hereditary disease of infancy and early childhood. In the most severe cases (type I), the disease appears in the first months of life, suggesting defects in fetal development. However, it is not yet known how motor neurons, neuromuscular junctions, and muscle interact in the neuropathology of the disease. We report the structure of presynaptic and postsynaptic apparatus of the neuromuscular junctions in control and spinal muscular atrophy prenatal and postnatal human samples. Qualitative and quantitative data from confocal and electron microscopy studies revealed changes in acetylcholine receptor clustering, abnormal preterminal accumulation of vesicles, and aberrant ultrastructure of nerve terminals in the motor endplates of prenatal type I spinal muscular atrophy samples. Fetuses predicted to develop milder type II disease had a similar appearance to controls. Postnatal muscle of type I spinal muscular atrophy patients showed persistence of the fetal subunit of acetylcholine receptors, suggesting a delay in maturation of neuromuscular junctions. We observed that pathology in the severe form of the disease starts in fetal development and that a defect in maintaining the initial innervation is an early finding of neuromuscular dysfunction. These results will improve our understanding of the spinal muscular atrophy pathogenesis and help to define targets for possible presymptomatic therapy for this disease. Copyright (C) 2012 Pathological Society of Great Britain and Ireland. Published by John Wiley & Sons, Ltd.
引用
收藏
页码:49 / 61
页数:13
相关论文
共 53 条
[1]   Reduced expression of nicotinic AChRs in myotubes from spinal muscular atrophy I patients [J].
Arnold, AS ;
Gueye, M ;
Guettier-Sigrist, S ;
Courdier-Fruh, I ;
Coupin, G ;
Poindron, P ;
Gies, JP .
LABORATORY INVESTIGATION, 2004, 84 (10) :1271-1278
[2]   Copies of the survival motor neuron gene in spinal muscular atrophy: the more, the better [J].
Brahe, C .
NEUROMUSCULAR DISORDERS, 2000, 10 (4-5) :274-275
[3]   The distribution of SMN protein complex in human fetal tissues and its alteration in spinal muscular atrophy [J].
Burlet, P ;
Huber, C ;
Bertrandy, S ;
Ludosky, MA ;
Zwaenepoel, I ;
Clermont, O ;
Roume, J ;
Delezoide, AL ;
Cartaud, J ;
Munnich, A ;
Lefebvre, S .
HUMAN MOLECULAR GENETICS, 1998, 7 (12) :1927-1933
[4]   Prevention by lamotrigine, MK-801 and N-omega-nitro-L-arginine methyl ester of motoneuron cell death after neonatal axotomy [J].
Casanovas, A ;
Ribera, J ;
Hukkanen, M ;
RiverosMoreno, V ;
Esquerda, JE .
NEUROSCIENCE, 1996, 71 (02) :313-325
[5]   Neurofilament accumulation at the motor endplate and lack of axonal sprouting in a spinal muscular atrophy mouse model [J].
Cifuentes-Diaz, C ;
Nicole, S ;
Velasco, ME ;
Borra-Cebrian, C ;
Panozzo, C ;
Frugier, T ;
Millet, G ;
Roblot, N ;
Joshi, V ;
Melki, J .
HUMAN MOLECULAR GENETICS, 2002, 11 (12) :1439-1447
[6]  
Coers C., 1959, INNERVATION MUSCLE B, DOI [10.1093/bja/32.3.148, DOI 10.1093/BJA/32.3.148]
[7]   The survival motor neuron protein in spinal muscular atrophy [J].
Coovert, DD ;
Le, TT ;
McAndrew, PE ;
Strasswimmer, J ;
Crawford, TO ;
Mendell, JR ;
Coulson, SE ;
Androphy, EJ ;
Prior, TW ;
Burghes, AHM .
HUMAN MOLECULAR GENETICS, 1997, 6 (08) :1205-1214
[8]   The neurobiology of childhood spinal muscular atrophy [J].
Crawford, TO ;
Pardo, CA .
NEUROBIOLOGY OF DISEASE, 1996, 3 (02) :97-110
[9]   SMN2 copy number predicts acute or chronic spinal muscular atrophy but does not account for intrafamilial variability in siblings [J].
Cuscó, I ;
Barceló, MJ ;
Rojas-García, R ;
Illa, I ;
Gámez, J ;
Cervera, C ;
Pou, A ;
Izquierdo, G ;
Baiget, M ;
Tizzano, EF .
JOURNAL OF NEUROLOGY, 2006, 253 (01) :21-25
[10]   Prevalence of SMN1 deletion and duplication in carrier and normal populations:: implication for genetic counselling -: art. no. e39 [J].
Cusin, V ;
Clermont, O ;
Gérard, B ;
Chantereau, D ;
Elion, J .
JOURNAL OF MEDICAL GENETICS, 2003, 40 (04)