Who is pregnant? Defining real-world data-based pregnancy episodes in the National COVID Cohort Collaborative (N3C)

Author:

Jones Sara E1ORCID,Bradwell Katie R2ORCID,Chan Lauren E3ORCID,McMurry Julie A4,Olson-Chen Courtney5,Tarleton Jessica6ORCID,Wilkins Kenneth J7,Ly Victoria5,Ljazouli Saad2,Qin Qiuyuan8,Faherty Emily Groene9,Lau Yan Kwan10,Xie Catherine8,Kao Yu-Han10,Liebman Michael N11,Mariona Federico1213,Challa Anup P14,Li Li10ORCID,Ratcliffe Sarah J15,Haendel Melissa A3,Patel Rena C16,Hill Elaine L58,Wilcox Adam B,Lee Adam M,Graves Alexis,Anzalone Alfred (Jerrod),Manna Amin,Saha Amit,Olex Amy,Zhou Andrea,Williams Andrew E,Southerland Andrew,Girvin Andrew T,Walden Anita,Sharathkumar Anjali A,Amor Benjamin,Bates Benjamin,Hendricks Brian,Patel Brijesh,Alexander Caleb,Bramante Carolyn,Ward-Caviness Cavin,Madlock-Brown Charisse,Suver Christine,Chute Christopher,Dillon Christopher,Wu Chunlei,Schmitt Clare,Takemoto Cliff,Housman Dan,Gabriel Davera,Eichmann David A,Mazzotti Diego,Brown Don,Boudreau Eilis,Zampino Elizabeth,Marti Emily Carlson,Pfaff Emily R,French Evan,Koraishy Farrukh M,Mariona Federico,Prior Fred,Sokos George,Martin Greg,Lehmann Harold,Spratt Heidi,Mehta Hemalkumar,Liu Hongfang,Sidky Hythem,Awori Hayanga J W,Pincavitch Jami,Clark Jaylyn,Harper Jeremy Richard,Islam Jessica,Ge Jin,Gagnier Joel,Saltz Joel H,Loomba Johanna,Buse John,Mathew Jomol,Rutter Joni L,Starren Justin,Crowley Karen,Bradwell Katie Rebecca,Walters Kellie M,Wilkins Ken,Gersing Kenneth R,Cato Kenrick Dwain,Murray Kimberly,Kostka Kristin,Northington Lavance,Pyles Lee Allan,Misquitta Leonie,Cottrell Lesley,Portilla Lili,Deacy Mariam,Bissell Mark M,Clark Marshall,Emmett Mary,Saltz Mary Morrison,Palchuk Matvey B,Adams Meredith,Temple-O'Connor Meredith,Kurilla Michael G,Morris Michele,Qureshi Nabeel,Safdar Nasia,Garbarini Nicole,Sharafeldin Noha,Sadan Ofer,Francis Patricia A,Burgoon Penny Wung,Robinson Peter,Payne Philip R O,Fuentes Rafael,Jawa Randeep,Erwin-Cohen Rebecca,Patel Rena,Moffitt Richard A,Zhu Richard L,Kamaleswaran Rishi,Hurley Robert,Miller Robert T,Pyarajan Saiju,Michael Sam G,Bozzette Samuel,Mallipattu Sandeep,Vedula Satyanarayana,Chapman Scott,O'Neil Shawn T,Setoguchi Soko,Hong Stephanie S,Johnson Steve,Bennett Tellen D,Callahan Tiffany,Topaloglu Umit,Sheikh Usman,Gordon Valery,Subbian Vignesh,Kibbe Warren A,Hernandez Wenndy,Beasley Will,Cooper Will,Hillegass William,Zhang Xiaohan Tanner,

Affiliation:

1. Office of Data Science and Emerging Technologies, National Institute of Allergy and Infectious Diseases, National Institutes of Health , Rockville, MD 20852, United States

2. Palantir Technologies , Denver, CO 80202, United States

3. College of Public Health and Human Sciences, Oregon State University , Corvallis, OR 97331, United States

4. Department of Biomedical Informatics, University of Colorado, Anschutz Medical Campus , Aurora, CO 80045, United States

5. Department of Obstetrics and Gynecology, University of Rochester Medical Center , Rochester, NY 14620, United States

6. Department of Obstetrics and Gynecology, Medical University of South Carolina , Charleston, SC 29425, United States

7. Biostatistics Program, Office of the Director, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health , Bethesda, MD 20892, United States

8. Department of Public Health Sciences, University of Rochester Medical Center , Rochester, NY 14618, United States

9. School of Public Health, University of Minnesota , Minneapolis, MN 55455, United States

10. Sema4 , Stamford, CT 06902, United States

11. IPQ Analytics, LLC, Kennett Square , PA 19348, United States

12. Beaumont Hospital , Dearborn, MI 48124, United States

13. Wayne State University , Detroit, MI 48202, United States

14. Department of Chemical and Biomolecular Engineering, Vanderbilt University , Nashville, TN 37212, United States

15. Department of Public Health Sciences, University of Virginia , Charlottesville, VA 22903, United States

16. Department of Medicine and Global Health, University of Washington , Seattle, WA 98105, United States

Abstract

Abstract Objectives To define pregnancy episodes and estimate gestational age within electronic health record (EHR) data from the National COVID Cohort Collaborative (N3C). Materials and Methods We developed a comprehensive approach, named Hierarchy and rule-based pregnancy episode Inference integrated with Pregnancy Progression Signatures (HIPPS), and applied it to EHR data in the N3C (January 1, 2018–April 7, 2022). HIPPS combines: (1) an extension of a previously published pregnancy episode algorithm, (2) a novel algorithm to detect gestational age-specific signatures of a progressing pregnancy for further episode support, and (3) pregnancy start date inference. Clinicians performed validation of HIPPS on a subset of episodes. We then generated pregnancy cohorts based on gestational age precision and pregnancy outcomes for assessment of accuracy and comparison of COVID-19 and other characteristics. Results We identified 628 165 pregnant persons with 816 471 pregnancy episodes, of which 52.3% were live births, 24.4% were other outcomes (stillbirth, ectopic pregnancy, abortions), and 23.3% had unknown outcomes. Clinician validation agreed 98.8% with HIPPS-identified episodes. We were able to estimate start dates within 1 week of precision for 475 433 (58.2%) episodes. 62 540 (7.7%) episodes had incident COVID-19 during pregnancy. Discussion HIPPS provides measures of support for pregnancy-related variables such as gestational age and pregnancy outcomes based on N3C data. Gestational age precision allows researchers to find time to events with reasonable confidence. Conclusion We have developed a novel and robust approach for inferring pregnancy episodes and gestational age that addresses data inconsistency and missingness in EHR data.

Funder

NIGMS National Institute of General Medical Sciences

Publisher

Oxford University Press (OUP)

Subject

Health Informatics

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