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Published on: August 2, 2017
Insulin-regulated aminopeptidase deficiency impairs cardiovascular adaptations and placental development during
Sarah L Walton1,2, Katrina M Mirabito Colafella1,2, Aneesa Ansari1,2
1Department of Physiology, Monash University, Melbourne, Australia.
Insights
Insulin-regulated aminopeptidase (IRAP) deficiency in mice impacts maternal fluid handling and placental development during pregnancy. IRAP is crucial for normal pregnancy adaptations, affecting heart rate and placental labyrinth expansion.
Area of Science:
- Physiology
- Reproductive Biology
- Endocrinology
Background:
- Insulin-regulated aminopeptidase (IRAP) cleaves vasoactive peptides and is implicated in pregnancy and preeclampsia.
- Understanding IRAP's role is vital for managing pregnancy complications.
Purpose of the Study:
- To investigate the function of IRAP in maternal arterial pressure regulation and placental development during mouse pregnancy.
- To elucidate IRAP's contribution to physiological adaptations during gestation.
Main Methods:
- Utilized IRAP knockout and wild-type female mice for comparative studies.
- Measured mean arterial pressure and heart rate using radiotelemetry.
- Conducted histological analysis of placentae at embryonic day 18.5.
Main Results:
- IRAP knockout mice exhibited lower basal heart rate and a greater gestational heart rate increase.
- Maternal fluid handling was altered in IRAP knockout mice, with reduced urine output and water intake.
- Placental morphology showed reduced labyrinth surface area and glycogen accumulation in IRAP-deficient mice, without affecting fetal weight.
Conclusions:
- IRAP deficiency disrupts normal maternal fluid balance and impairs placental labyrinth development in late gestation.
- IRAP plays a significant role in the physiological adaptations required for successful pregnancy in mice.
Abstract:
Insulin-regulated aminopeptidase (IRAP), an enzyme that cleaves vasoactive peptides including oxytocin and vasopressin, is suggested to play a role in pregnancy and the onset of preeclampsia. Our aim was to examine the contribution of IRAP to arterial pressure regulation and placental development during pregnancy in mice. Mean arterial pressure and heart rate were measured via radiotelemetry in 12-week-old female wild-type and IRAP knockout mice. Females were time-mated with males of the same genotype. Placentae were collected at embryonic day 18.5 for histological analysis. Basal heart rate was ∼40 bpm lower in IRAP knockout females compared with wild-type females. The increase in heart rate across gestation was greater in IRAP knockout females than wild-type females. Neither basal nor gestational mean arterial pressure was different between wildtype and IRAP knockout females. Urine output and water intake of IRAP knockout mice were ∼45% less than wild-type mice at late gestation. IRAP deficiency had no effect on fetal weight. Morphological assessment of placentae revealed that IRAP deficiency was associated with reduced labyrinth surface area and accumulation of glycogen in the junctional zone. Our data demonstrate that IRAP deficiency alters maternal fluid handling and impairs placental labyrinth expansion at late gestation, indicating that IRAP contributes to the normal adaptions to pregnancy.
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