Role of First-Trimester Mean Arterial Pressure and Second-Trimester Uterine Artery Pulsatility Index in Prediction of Preeclampsia in High-Risk Pregnant Women

Authors

  • Maryam Bashar Author
  • Maliha Sadaf Author
  • Humera Noreen Author
  • Khansa Iqbal Author
  • Fouzia Naheed Author
  • Amna Abbasi Author

DOI:

https://doi.org/10.51985/

Keywords:

Preeclampsia, mean arterial pressure, uterine artery Doppler, pulsatility index, high-risk pregnancy

Abstract

 Objective: To compare the predictive performance of first-trimester mean arterial pressure (MAP) and second-trimester uterine artery pulsatility index (UtA-PI) for subsequent preeclampsia in high-risk pregnant women.

 

Study Design and Setting: Validation study at Department of Obstetrics and Gynaecology, Holy Family Hospital, Rawalpindi. Methodology: This validation study included 202 high-risk singleton pregnancies enrolled by non-probability consecutive sampling. MAP was measured in the first trimester and was considered abnormal when >100 mmHg. Uterine artery Doppler was performed at 22+6 to 24+6 weeks of gestation; UtA-PI >1.45 was considered abnormal. Participants were followed after 20 weeks for development of preeclampsia. Sensitivity, specificity, positive predictive value (PPV), negative predictive value (NPV), and overall accuracy were calculated against the final clinical prediction of preeclampsia.

 

Result: Preeclampsia developed in 75/202 (37.1%) participants. For MAP, sensitivity was 92.0% (95% CI 83.6–96.3), specificity 89.0% (82.3–93.3), PPV 83.1% (73.7–89.7), NPV 95.0% (89.4–97.7), and overall accuracy 90.1% (85.2–93.5). For second-trimester UtA-PI, sensitivity was 76.0% (65.2–84.2), specificity 79.5% (71.7–85.6), PPV 68.7% (58.1–77.6), NPV 84.9% (77.4–90.2), and overall accuracy 78.2% (72.0–83.4).

 

Conclusion: In this selected high-risk cohort, first-trimester MAP showed higher predictive accuracy than second-trimester UtA-PI for subsequent preeclampsia. These findings support MAP as a practical component of risk assessment, but they should not be interpreted as establishing MAP as a stand-alone screening strategy for all pregnant women. 

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References

1. Chang KJ, Seow KM, Chen KH. Preeclampsia: recent advances

in predicting, preventing, and managing the maternal and

fetal life-threatening condition. Int J Environ Res Public

Health. 2023;20(4):2994. doi: 10.3390/ijerph20042994.

2. Chaemsaithong P, Sahota DS, Poon LC. First trimester

preeclampsia screening and prediction. Am J Obstet Gynecol.

2022;226(2 Suppl).e2. doi: 10.1016/j.ajog.2020.07.020.

3. Zhu J, Zhang J, Syaza Razali N, Chern B, Tan KH. Mean

arterial pressure for predicting preeclampsia in Asian women:

a longitudinal cohort study. BMJ Open. 2021;11(8). doi:

10.1136/bmjopen-2020-046161.

4. Das E, Singh V, Agrawal S, Pati SK. Prediction of preeclampsia

using first-trimester uterine artery Doppler and pregnancyassociated plasma protein-A (PAPP-A): a prospective study

in Chhattisgarh, India. Cureus. 2022;14(2). doi: 10.7759/

cureus.22026.

5. Rolnik DL, Syngelaki A, O’Gorman N, Wright D, Poon LC,

Nicolaides KH. ASPRE trial: effects of aspirin on mean arterial

blood pressure and uterine artery pulsatility index trajectories

in pregnancy. Ultrasound Obstet Gynecol. 2023;61(6):691-

697. doi: 10.1002/uog.26222.

6. Guerby P, Audibert F, Johnson JA, Okun N, Giguere Y, Forest

JC, et al. Prospective validation of first-trimester screening

for preterm preeclampsia in nulliparous women (PREDICTION

Study). Hypertension. 2024;81(7):1574-1582. doi: 10.1161/

HYPERTENSIONAHA.123.22584.

7. Nguyen-Hoang L, Dinh LT, Tai AST, Nguyen DA, Pooh RK,

Shiozaki A, et al. Implementation of first-trimester screening

and prevention of preeclampsia: a stepped wedge clusterrandomized trial in Asia. Circulation. 2024;150(16):1223-

1235. doi: 10.1161/CIRCULATIONAHA.124.069907.

8. Johnson JM, Walsh JD, Okun NB, Metcalfe A, Pastuck ML,

Maxey CM, et al. The Implementation of Preeclampsia

Screening and Prevention (IMPRESS) Study. Am J Obstet

Gynecol MFM. 2023;5(2):100815. doi: 10.1016/j.ajogmf.

2022.100815.

9. Zwertbroek EF, Groen H, Fontanella F, Maggio L, Marchi L,

Bilardo CM. Performance of the FMF first-trimester

preeclampsia-screening algorithm in a high-risk population

in The Netherlands. Fetal Diagn Ther. 2021;48(2):103-111.

doi: 10.1159/000512335.

10. Okun N, Hoffman B, Johnson JA, Biringer A, Shapiro J, Felix

C, et al. Implementation of multiple marker screening for

preterm preeclampsia in a single tertiary obstetric centre. J

Obstet Gynaecol Can. 2024;46(1):102220. doi: 10.1016/j.

jogc.2023. 102220.

11. Magee LA, Brown MA, Hall DR, Gupte S, Hennessy A,

Karumanchi SA, et al. The 2021 International Society for the

Study of Hypertension in Pregnancy classification, diagnosis

& management recommendations for international practice.

Pregnancy Hypertens. 2022;27:148-169. doi: 10.1016/j.preghy.

2021.09.008.

12. Liu Y, Xie Z, Huang Y, Lu X, Yin F. Uterine arteries pulsatility

index by Doppler ultrasound in the prediction of preeclampsia:

an updated systematic review and meta-analysis. Arch Gynecol

Obstet. 2024;309(2):427-437. doi: 10.1007/s00404-023-

07044-2.

13. Cao L, He B, Zhou Y, Chen T, Gao Y, Yao B. Utility of uterine

artery Doppler ultrasound imaging in predicting preeclampsia

during pregnancy: a meta-analysis. Med Ultrason. 2024;26(2):

197-204. doi: 10.11152/mu-4355.

14. Gil MM, Cuenca-Gomez D, Rolle V, Pertegal M, Diaz C,

Revello R, et al. Validation of machine-learning model for

first-trimester prediction of pre-eclampsia using cohort from

PREVAL study. Ultrasound Obstet Gynecol. 2024;63(1):68-

74. doi: 10.1002/uog.27478.

15. Li T, Xu M, Wang Y, Wang Y, Tang H, Duan H, et al. Prediction

model of preeclampsia using machine learning based methods:

a population based cohort study in China. Front Endocrinol

(Lausanne). 2024;15:1345573. doi: 10.3389/fendo.2024.

1345573.

16. Ansbacher-Feldman Z, Syngelaki A, Meiri H, Cirkin R,

Nicolaides KH, Louzoun Y. Machine-learning-based prediction

of pre-eclampsia using first-trimester maternal characteristics

and biomarkers. Ultrasound Obstet Gynecol. 2022;60(6):739-

745. doi: 10.1002/uog.26105.

17. Liu M, Yang X, Chen G, Ding Y, Shi M, Sun L, et al.

Development of a prediction model on preeclampsia using

machine learning-based method: a retrospective cohort study

in China. Front Physiol. 2022;13:896969. doi: 10.3389/fphys.

2022.896969.

18. MacDonald TM, Walker SP, Hannan NJ, Tong S, Kaitu’uLino TJ. Clinical tools and biomarkers to predict preeclampsia.

EBioMedicine. 2022;75:103780. doi: 10.1016/j.ebiom.2021.

103780.

19. Tarca AL, Taran A, Romero R, Jung E, Paredes C, Bhatti G,

et al. Prediction of preeclampsia throughout gestation with

maternal characteristics and biophysical and biochemical

markers: a longitudinal study. Am J Obstet Gynecol.

2022;226(1):126.e1-126.e22. doi: 10.1016/j.ajog.2021.01.020.

20. Torres-Torres J, Villafan-Bernal JR, Martinez-Portilla RJ,

Hidalgo-Carrera JA, Estrada-Gutierrez G, Adalid-MartinezCisneros R, et al. Performance of a machine-learning approach

for the prediction of pre-eclampsia in a middle-income country.

Ultrasound Obstet Gynecol. 2024;63(3):350-357. doi:

10.1002/uog.27510. PMID: 37796702.

21. Nguyen-Hoang L, Sahota DS, Poon CYL. Effect of aspirin

on biomarker profile in women at high risk for preeclampsia.

Am J Obstet Gynecol. 2025;232(6):e213. doi:

10.1016/j.ajog.2025.01.023.

22. Hodžiæ J, Muraèeviæ B, Graèiæ A, Hodžiæ HS, Bajgoriæ

Škrgo E. First trimester placental growth factor and uterine

artery pulsatility index in the prediction of preeclampsia in

high-risk pregnancy. Med Glas (Zenica). 2025;22(1):71-77.

doi: 10.17392/1864-22-01.

23. Paiboonborirak C, Phupong V. Serum fatty acid binding

protein 4 and Doppler of uterine artery ultrasound in the first

trimester for the prediction of preeclampsia. Hypertens Res.

2024;47(5):1208-1215. doi: 10.1038/s41440-023-01553-y.

24. Wang S, Dong H. Non-linear dose-response relationship

between uterine artery pulsatility index and risk of preeclampsia

in early pregnancy: secondary analysis of a nested cohort

study. PLoS One. 2025;20(1):e0317625. doi:

10.1371/journal.pone.0317625.

25. Clare A, Robertson B, Henry D, Knowles A. Role of second

trimester uterine artery doppler in early prediction of

preeclampsia and intrauterine growth restriction among highrisk women. SAGE Open Med. 2025;13:20503121251378109.

doi: 10.1177/20503121251378109

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Published

2026-10-02

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Original Articles

How to Cite

Role of First-Trimester Mean Arterial Pressure and Second-Trimester Uterine Artery Pulsatility Index in Prediction of Preeclampsia in High-Risk Pregnant Women. (2026). Journal of Bahria University Medical and Dental College, 16(04), 915-920. https://doi.org/10.51985/

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