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Updated: Nov 8, 2025

Generation of Human Brain Organoids for Mitochondrial Disease Modeling
Published on: June 21, 2021
Development of cerebral mitochondrial respiratory function is impaired by thyroid hormone deficiency before birth in
Katie L Davies1, Danielle J Smith1, Tatiana El-Bacha1
1Department of Physiology, Development and Neuroscience, University of Cambridge, Cambridge, UK.
Insights
Thyroid hormones are crucial for fetal brain development, impacting mitochondrial energy production. This study shows that hypothyroidism before birth impairs cerebral oxidative phosphorylation and myelination, affecting neurodevelopment.
Area of Science:
- Neuroscience
- Developmental Biology
- Metabolic Physiology
Background:
- Thyroid hormones regulate adult metabolism via mitochondrial oxidative phosphorylation (OXPHOS).
- The role of thyroid hormones in fetal cerebral OXPHOS and its impact on neurological development is largely unknown.
- Cerebral energy demand significantly increases during the neonatal period.
Purpose of the Study:
- To investigate the impact of prepartum hypothyroidism on the development of cerebral OXPHOS in fetal sheep.
- To assess the effects of hypothyroidism on mitochondrial function, biogenesis, and cerebral morphology before birth.
Main Methods:
- Surgical thyroidectomy or sham operation in fetal sheep at 105 days of gestational age (dGA).
- Measurement of OXPHOS capacity (Complex I, Complex II, CI&CII) using respirometry in fetal cerebellum and cortex at 128 and 142 dGA.
- Quantification of mitochondrial electron transfer system (ETS) complexes, related mRNA transcripts, and mitochondrial density.
- Assessment of cerebral morphology via immunohistochemistry and stereology.
Main Results:
- In the cortex, hypothyroidism reduced Complex I respiration and abundance, and upregulated PGC1α and thyroid hormone receptor β.
- In the cerebellum, hypothyroidism decreased Complex I&II and Complex II respiration, downregulated glucocorticoid receptor and ANT1.
- Hypothyroid-induced alterations in mitochondrial function were associated with reduced myelination.
Conclusions:
- Thyroid hormones are essential for the prenatal maturation of cerebral mitochondria.
- Prepartum hypothyroidism adversely affects fetal brain mitochondrial function and myelination.
- Findings suggest implications for understanding neurodevelopmental abnormalities in human prematurity and congenital hypothyroidism.
Abstract:
Thyroid hormones regulate adult metabolism partly through actions on mitochondrial oxidative phosphorylation (OXPHOS). They also affect neurological development of the brain, but their role in cerebral OXPHOS before birth remains largely unknown, despite the increase in cerebral energy demand during the neonatal period. Thus, this study examined prepartum development of cerebral OXPHOS in hypothyroid fetal sheep. Using respirometry, Complex I (CI), Complex II (CII), and combined CI&CII OXPHOS capacity were measured in the fetal cerebellum and cortex at 128 and 142 days of gestational age (dGA) after surgical thyroidectomy or sham operation at 105 dGA (term ~145 dGA). Mitochondrial electron transfer system (ETS) complexes, mRNA transcripts related to mitochondrial biogenesis and ATP production, and mitochondrial density were quantified using molecular techniques. Cerebral morphology was assessed by immunohistochemistry and stereology. In the cortex, hypothyroidism reduced CI-linked respiration and CI abundance at 128 dGA and 142 dGA, respectively, and caused upregulation of PGC1α (regulator of mitochondrial biogenesis) and thyroid hormone receptor β at 128 dGA and 142 dGA, respectively. In contrast, in the cerebellum, hypothyroidism reduced CI&II- and CII-linked respiration at 128 dGA, with no significant effect on the ETS complexes. In addition, cerebellar glucocorticoid hormone receptor and adenine nucleotide translocase (ANT1) were downregulated at 128 dGA and 142 dGA, respectively. These alterations in mitochondrial function were accompanied by reduced myelination. The findings demonstrate the importance of thyroid hormones in the prepartum maturation of cerebral mitochondria and have implications for the etiology and treatment of the neurodevelopmental abnormalities associated with human prematurity and congenital hypothyroidism.
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