Technologies for Prediction of Preeclampsia

E A Rokоtyanskаya1, I A Panova2, A I Malyshkina3

  • 1Associate Professor, Department of Obstetrics and Gynecology, Neonatology, Anesthesiology, and Reanimatology; Ivanovo Research Institute of Motherhood and Childhood named after V.N. Gorodkov, Ministry of Health of the Russian Federation, 20 Pobeda St., Ivanovo, 153045, Russia.

Summary

This study developed a predictive model for preeclampsia (PE) using biomedical and genetic factors. The technology identifies high-risk pregnancies for timely intervention and personalized care.

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