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Updated: Oct 14, 2025

A Piglet Model of Neonatal Hypoxic-Ischemic Encephalopathy
Published on: May 16, 2015
Chronic Hypoxia Inhibits Respiratory Complex IV Activity and Disrupts Mitochondrial Dynamics in the Fetal Guinea Pig
Tabitha M Quebedeaux1, Hong Song1, Jamiu Giwa-Otusajo1
1Department of Obstetrics, Gynecology, & Reproductive Sciences, University of Maryland, Baltimore, School of Medicine, 655 W. Baltimore St., Baltimore, MD, 21201, USA.
Insights
Chronic intrauterine hypoxia (HPX) impairs fetal brain mitochondrial function and dynamics, increasing vulnerability to neurological injury. This study reveals sex-specific alterations in mitochondrial proteins and activity, impacting neurodevelopment.
Area of Science:
- Neuroscience
- Mitochondrial Biology
- Developmental Biology
Background:
- Mitochondrial dysfunction is a key factor in childhood neurological disorders.
- Mitochondria are vital for normal neurodevelopment.
- Intrauterine hypoxia (HPX) may disrupt fetal brain mitochondrial function.
Purpose of the Study:
- To investigate if chronic intrauterine hypoxia (HPX) induces mitochondrial deficits in the fetal brain.
- To examine the effects of HPX on mitochondrial biogenesis and dynamics.
- To determine if these effects are sex-dependent.
Main Methods:
- Pregnant guinea pigs were exposed to normoxia (NMX) or hypoxia (HPX) from early or late gestation.
- Mitochondria were isolated from fetal guinea pig brains.
- Mitochondrial protein expression (complex subunits, fission/fusion proteins) and enzyme activities were analyzed.
Main Results:
- HPX reduced fetal body weight and increased brain-to-body weight ratios.
- HPX altered mitochondrial complex subunit levels and CIV enzyme activity in a sex-dependent manner.
- HPX promoted mitochondrial fission (increased Drp1) in a sex-specific pattern.
Conclusions:
- Chronic HPX alters fetal brain mitochondrial function and dynamics.
- These alterations exhibit sex-specific differences.
- HPX-induced mitochondrial changes may contribute to neurological deficits and birth injury vulnerability.
Abstract:
Mitochondrial dysfunction is an underlying cause of childhood neurological disease secondary to the crucial role of mitochondria in proper neurodevelopment. We hypothesized that chronic intrauterine hypoxia (HPX) induces mitochondrial deficits by altering mitochondrial biogenesis and dynamics in the fetal brain. Pregnant guinea pigs were exposed to either normoxia (NMX, 21%O2) or HPX (10.5%O2) starting at 28-day (early onset, EO-HPX) or 50-day (late onset, LO-HPX) gestation until term (65 days). Near-term male and female fetuses were extracted from anesthetized sows, and mitochondria were isolated from excised fetal forebrains (n = 6/group). Expression of mitochondrial complex subunits I-V (CI-CV), fission (Drp-1), and fusion (Mfn-2) proteins was measured by Western blot. CI and CIV enzyme activities were measured by colorimetric assays. Chronic HPX reduced fetal body wts and increased (P < 0.05) brain/body wt ratios of both sexes. CV subunit levels were increased in EO-HPX males only and CII levels increased in LO-HPX females only compared to NMX. Both EO- and LO-HPX decreased CIV activity in both sexes but had no effect on CI activity. EO-HPX increased Drp1 and decreased Mfn2 levels in males, while LO-HPX had no effect on either protein levels. In females, both EO-HPX and LO-HPX increased Drp1 but had no effect on Mfn2 levels. Chronic HPX alters abundance and activity of select complex subunits and shifts mitochondrial dynamics toward fission in a sex-dependent manner in the fetal guinea pig brain. This may be an underlying mechanism of reduced respiratory efficiency leading to disrupted metabolism and increased vulnerability to a second neurological injury at the time of birth in HPX fetal brains.
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