Differential impairment of catecholaminergic cell maturation and survival by genetic mitochondrial complex II
Blanca Díaz-Castro1, C Oscar Pintado, Paula García-Flores
1Instituto de Biomedicina de Sevilla, Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain.
Abstract:
The SDHD gene (subunit D of succinate dehydrogenase) has been shown to be involved in the generation of paragangliomas and pheochromocytomas. Loss of heterozygosity of the normal allele is necessary for tumor transformation of the affected cells. As complete SdhD deletion is lethal, we have generated mouse models carrying a "floxed" SdhD allele and either an inducible (SDHD-ESR strain) or a catecholaminergic tissue-specific (TH-SDHD strain) CRE recombinase. Ablation of both SdhD alleles in adult SDHD-ESR mice did not result in generation of paragangliomas or pheochromocytomas. In contrast, carotid bodies from these animals showed smaller volume than controls. In accord with these observations, the TH-SDHD mice had decreased cell numbers in the adrenal medulla, carotid body, and superior cervical ganglion. They also manifested inhibited postnatal maturation of mesencephalic dopaminergic neurons and progressive cell loss during the first year of life. These alterations were particularly intense in the substantia nigra, the most affected neuronal population in Parkinson's disease. Unexpectedly, TH(+) neurons in the locus coeruleus and group A13, also lacking the SdhD gene, were unaltered. These data indicate that complete loss of SdhD is not sufficient to induce tumorigenesis in mice. They suggest that substantia nigra neurons are more susceptible to mitochondrial damage than other catecholaminergic cells, particularly during a critical postnatal maturation period.
Insights
Complete loss of the SDHD gene (subunit D of succinate dehydrogenase) does not cause tumors in mice. However, it impairs dopaminergic neuron development and survival, especially in the substantia nigra.
Area of Science:
- Genetics
- Neuroscience
- Oncology
Background:
- The SDHD gene is implicated in paragangliomas and pheochromocytomas.
- Loss of heterozygosity is crucial for tumor development.
- Complete SdhD deletion is lethal.
Purpose of the Study:
- To investigate the role of SDHD gene in tumorigenesis and neuronal development.
- To create mouse models with inducible or tissue-specific SdhD gene ablation.
Main Methods:
- Generated mouse models with a "floxed" SdhD allele and CRE recombinase (inducible and tissue-specific).
- Ablated both SdhD alleles in adult mice (SDHD-ESR strain).
- Analyzed SdhD gene function in catecholaminergic tissues (TH-SDHD strain).
Main Results:
- Complete SdhD ablation did not induce paragangliomas or pheochromocytomas.
- Carotid bodies and adrenal medulla showed reduced volume and cell numbers.
- Impaired postnatal maturation and progressive cell loss observed in dopaminergic neurons, particularly in the substantia nigra.
- Locus coeruleus and group A13 neurons remained unaltered.
Conclusions:
- Complete loss of SdhD is insufficient for tumorigenesis in mice.
- Substantia nigra neurons are highly susceptible to mitochondrial damage during postnatal development.
- SDHD gene deficiency impacts catecholaminergic neuron development and survival.
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