Mouse developmental defects, but not paraganglioma tumorigenesis, upon conditional Complex II loss in early Sox10+
Elizabeth P Lewis1, Fatimah Al Khazal1, Brandon Wilbanks1
1Department of Biochemistry and Molecular Biology Mayo Clinic College of Medicine and Science Rochester Minnesota USA.
Abstract:
In humans, loss of heterozygosity for defective alleles of any of the four subunits of mitochondrial tricarboxylic acid cycle enzyme succinate dehydrogenase (SDH, also Complex II of the electron transport chain) can lead to paraganglioma tumors in neuroendocrine cells. With the goal of developing mouse models of this rare disorder, we have developed various SDH conditional loss strategies. Based on recent lineage tracing studies, we hypothesized that conditional SDHC loss in early embryogenesis during migration of primordial neural crest cells that form the susceptible chromaffin cells of the adrenal medulla might induce paraganglioma. We triggered low levels of detectable SDHC loss in Sox10+ cells at E11.5 of mouse development. We report that, rather than developing adrenal medulla paraganglioma (pheochromocytoma), offspring survived with evidence of neural crest cell dysfunction. Phenotypes included mild lower extremity gait anomalies suggestive of neural tube closure defects and patches of unpigmented fur consistent with neural crest-derived melanocyte dysfunction. These defects were not observed in mice lacking Sdhc knockout. Our results add to existing data suggesting that, unlike humans, even early embryonic (Sox10-driven) SDHx loss is inadequate to trigger paraganglioma in mice of the genetic backgrounds that have been investigated. Instead, low levels of tricarboxylic acid cycle-deficient neural crest cells cause mild developmental defects in hind limb and melanocyte function. This new model may be of interest for studies of metabolism during early neural crest cell development.
Insights
Loss of succinate dehydrogenase (SDH) subunit C in early mouse development did not cause paraganglioma but led to neural crest cell dysfunction, impacting hind limb and melanocyte development.
Area of Science:
- Mitochondrial metabolism
- Neuroendocrinology
- Developmental biology
Background:
- Loss of function in succinate dehydrogenase (SDH) subunits can cause paraganglioma in humans.
- Developing mouse models for SDH-related disorders is crucial for understanding disease mechanisms.
Purpose of the Study:
- To investigate if conditional loss of SDHC in early embryogenesis can induce paraganglioma in mice.
- To explore the role of SDHC in neural crest cell development and function.
Main Methods:
- Conditional loss of SDHC in Sox10+ cells at embryonic day 11.5 in mice.
- Observation of developmental phenotypes and comparison with Sdhc knockout mice.
Main Results:
- Conditional SDHC loss did not result in paraganglioma but caused neural crest cell dysfunction.
- Observed phenotypes included hind limb gait anomalies and unpigmented fur patches.
- These defects were milder than those in full Sdhc knockout mice.
Conclusions:
- Early embryonic SDHC loss is insufficient to induce paraganglioma in investigated mouse models.
- Low levels of SDHC deficiency in neural crest cells lead to mild developmental defects.
- This model offers insights into neural crest cell metabolism during early development.
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