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The first knock-in rat model for glutaric aciduria type I allows further insights into pathophysiology in brain and periphery
- Source :
- Molecular genetics and metabolism. 133(2)
- Publication Year :
- 2021
-
Abstract
- Glutaric aciduria type I (GA-I, OMIM # 231670) is an inborn error of metabolism caused by a deficiency of glutaryl-CoA dehydrogenase (GCDH). Patients develop acute encephalopathic crises (AEC) with striatal injury most often triggered by catabolic stress. The pathophysiology of GA-I, particularly in brain, is still not fully understood. We generated the first knock-in rat model for GA-I by introduction of the mutation p.R411W, the rat sequence homologue of the most common Caucasian mutation p.R402W, into the Gcdh gene of Sprague Dawley rats by CRISPR/CAS9 technology. Homozygous Gcdhki/ki rats revealed a high excretor phenotype, but did not present any signs of AEC under normal diet (ND). Exposure to a high lysine diet (HLD, 4.7%) after weaning resulted in clinical and biochemical signs of AEC. A significant increase of plasmatic ammonium concentrations was found in Gcdhki/ki rats under HLD, accompanied by a decrease of urea concentrations and a concomitant increase of arginine excretion. This might indicate an inhibition of the urea cycle. Gcdhki/ki rats exposed to HLD showed highly diminished food intake resulting in severely decreased weight gain and moderate reduction of body mass index (BMI). This constellation suggests a loss of appetite. Under HLD, pipecolic acid increased significantly in cerebral and extra-cerebral liquids and tissues of Gcdhki/ki rats, but not in WT rats. It seems that Gcdhki/ki rats under HLD activate the pipecolate pathway for lysine degradation. Gcdhki/ki rat brains revealed depletion of free carnitine, microglial activation, astroglyosis, astrocytic death by apoptosis, increased vacuole numbers, impaired OXPHOS activities and neuronal damage. Under HLD, Gcdhki/ki rats showed imbalance of intra-and extracellular creatine concentrations and indirect signs of an intracerebral ammonium accumulation. We successfully created the first rat model for GA-I. Characterization of this Gcdhki/ki strain confirmed that it is a suitable model not only for the study of pathophysiological processes, but also for the development of new ther-apeutic interventions. We further brought up interesting new insights into the pathophysiology of GA-I in brain and periphery.<br />(c) 2021 The Authors. Published by Elsevier Inc. This is an open access article under the CC BY-NC-ND license (http:// creativecommons.org/licenses/by-nc-nd/4.0/).
- Subjects :
- 0301 basic medicine
1303 Biochemistry
Arginine
Endocrinology, Diabetes and Metabolism
030105 genetics & heredity
Biochemistry
chemistry.chemical_compound
0302 clinical medicine
Endocrinology
organic-acids
Hyperammonemia
Microglial activation
Gene Knock-In Techniques
Gliosis
Glutaryl-CoA Dehydrogenase
Chemistry
Brain Diseases, Metabolic
Brain
food-intake
Pathophysiology
1310 Endocrinology
Diabetes and Metabolism
2712 Endocrinology, Diabetes and Metabolism
Urea cycle
astrogliosis
medicine.medical_specialty
mice
Normal diet
mouse model
610 Medicine & health
Creatine
energy-metabolism
Astrogliosi
pipecolic acid
03 medical and health sciences
1311 Genetics
Internal medicine
1312 Molecular Biology
Genetics
medicine
Animals
Humans
Molecular Biology
Amino Acid Metabolism, Inborn Errors
Lysine
lysine metabolism
Glutaric aciduria
natural-history
Glutaric aciduria type I
mutations
medicine.disease
Rats
Cerebral organic aciduria
Lysine degradation
Disease Models, Animal
10036 Medical Clinic
Inborn error of metabolism
030217 neurology & neurosurgery
Metabolism, Inborn Errors
Subjects
Details
- ISSN :
- 10967206
- Volume :
- 133
- Issue :
- 2
- Database :
- OpenAIRE
- Journal :
- Molecular genetics and metabolism
- Accession number :
- edsair.doi.dedup.....9a6019eec29ea383cf7a6d2a44ee675b