Characterizing the Structure and Function of Blood Vessels from Aging Pregnant Mothers

Program Type (Grant): Summer Studentship Award
Applicant Name: Chan, Christy
Competition Cycle: 2022-02
Start Date: 2022-05-01
End Date: 2022-08-31
Supervisor Name: Davidge, Sandra
Co-supervisor Name: Wooldridge, Amy
Institutional Sponsor: Medicine & Dentistry-Obstetrics & Gynecology
Supervisor Faculty / Department: Medicine & Dentistry-Obstetrics & Gynecology
WCHRI Funder: RAHF/SCHF
External Funder: AI-URI
Total WCHRI Funding Commitment: $5,200.00

In the past thirty years, the proportion of mothers becoming pregnant at or over age 35 has risen by 2.5 times. This is also called 'advanced maternal age' and poses serious risks to both maternal and offspring health. As maternal age increases, the likelihood of pregnancy complications, such as preeclampsia (elevated blood pressure during pregnancy), poor fetal growth, and preterm birth increases dramatically. During pregnancy, the maternal system of blood vessels, undergoes several changes to accommodate the growing fetus. For example, the blood vessels become more relaxed, to ensure sufficient oxygen and nutrient delivery for fetal growth and development. Previous research using rodent models has demonstrated that the blood vessels that supply the placenta and uterus are more constricted and stiffer in aged compared to young pregnant rats, which could reduce this blood flow. Aging in humans also produces similar effects on the blood vessels, and as older women have more complications with their pregnancies, this suggests their blood vessels may be contributing to this. However, knowledge gaps persist as to the molecular pathways through which blood vessel structure and function may differ between aged and young pregnant women. For the first time, we aim to characterize the function and structure of systemic arteries of older pregnant women compared to arteries of younger control women. We will do this by assessing blood vessels collected from fat biopsies at the time of Caesarian section, to measure their function and stiffness. Then, using molecular biology techniques, we will confirm our findings and identify key molecular and structural features in the walls of these blood vessels. Ultimately, these findings will further our understanding of blood vessel function in women with pregnancies at advanced maternal age, which will contribute to improving women's health and pregnancy outcomes.