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.

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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