Spinal Nerve Roots Abnormalities on MRI in a Child with SURF1 Mitochondrial Disease

2021 ◽  
Author(s):  
Alfonso Rubino ◽  
Giorgia Bruno ◽  
Federica Mazio ◽  
Maria Fulvia de Leva ◽  
Lucia Ruggiero ◽  
...  

AbstractVariants in SURF1, encoding an assembly factor of mitochondrial respiratory chain complex IV, cause Leigh syndrome (LS) and Charcot-Marie-Tooth type 4K in children and young adolescents. Magnetic resonance imaging (MRI) appearance of enlarged nerve roots with postcontrastographic enhancement is a distinctive feature of hypertrophic neuropathy caused by onion-bulb formation and it has rarely been described in mitochondrial diseases (MDs). Spinal nerve roots abnormalities on MRI are novel findings in LS associated with variants in SURF1. Here we report detailed neuroradiological and neurophysiologic findings in a child with LS and demyelinating neuropathy SURF1-related. Our case underlines the potential contributive role of spinal neuroimaging together with neurophysiological examination to identify the full spectrum of patterns in MDs. It remains to elucidate if these observations remain peculiar of SURF1 variants or potentially detectable in other MDs with peripheral nervous system involvement.

Author(s):  
Michele Brischigliaro ◽  
Elena Frigo ◽  
Samantha Corrà ◽  
Cristiano De Pittà ◽  
Ildikò Szabò ◽  
...  

AbstractMutations in BCS1L are the most frequent cause of human mitochondrial disease linked to complex III deficiency. Different forms of BCS1L-related diseases and more than 20 pathogenic alleles have been reported to date. Clinical symptoms are highly heterogenous, and multisystem involvement is often present, with liver and brain being the most frequently affected organs. BCS1L encodes a mitochondrial AAA + -family member with essential roles in the latest steps in the biogenesis of mitochondrial respiratory chain complex III. Since Bcs1 has been investigated mostly in yeast and mammals, its function in invertebrates remains largely unknown. Here, we describe the phenotypical, biochemical and metabolic consequences of Bcs1 genetic manipulation in Drosophila melanogaster. Our data demonstrate the fundamental role of Bcs1 in complex III biogenesis in invertebrates and provide novel, reliable models for BCS1L-related human mitochondrial diseases. These models recapitulate several features of the human disorders, collectively pointing to a crucial role of Bcs1 and, in turn, of complex III, in development, organismal fitness and physiology of several tissues.


2021 ◽  
Vol 64 (4) ◽  
pp. 104187
Author(s):  
Leoni Chiara ◽  
Tedesco Marta ◽  
Talloa Dario ◽  
Verdolotti Tommaso ◽  
Onesimo Roberta ◽  
...  

1987 ◽  
Vol 67 (2) ◽  
pp. 269-277 ◽  
Author(s):  
Wesley W. Parke ◽  
Ryo Watanabe

✓ An epispinal system of motor axons virtually covers the ventral and lateral funiculi of the human conus medullaris between the L-2 and S-2 levels. These nerve fibers apparently arise from motor cells of the ventral horn nuclei and join spinal nerve roots caudal to their level of origin. In all observed spinal cords, many of these axons converged at the cord surface and formed an irregular group of ectopic rootlets that could be visually traced to join conventional spinal nerve roots at one to several segments inferior to their original segmental level; occasional rootlets joined a dorsal nerve root. As almost all previous reports of nerve root interconnections involved only the dorsal roots and have been cited to explain a lack of an absolute segmental sensory nerve distribution, it is believed that these intersegmental motor fibers may similarly explain a more diffuse efferent distribution than has previously been suspected.


Spine ◽  
1996 ◽  
Vol 21 (4) ◽  
pp. 411-414 ◽  
Author(s):  
Kjell Olmarker ◽  
Claes Nordborg ◽  
Karin Larsson ◽  
Björn Rydevik

1958 ◽  
Vol 131 (4) ◽  
pp. 681-699 ◽  
Author(s):  
Elizabeth K. Moyer ◽  
Barbara F. Kaliszewski

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