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Changes in US Medicaid Enrollment During the COVID-19 Pandemic

Changes in US Medicaid Enrollment During the COVID-19 Pandemic

JAMA Netw Open. 2021;4(5):e219463. doi:10.1001/jamanetworkopen.2021.9463

Introduction

The COVID-19 pandemic has led to unemployment among millions of US adults. Research shows that the Patient Protection and Affordable Care Act and Medicaid provide an important safety net for coverage after job losses, but it is unclear how changes in Medicaid enrollment during the pandemic vary across states and what policy factors are associated with those changes. The objective of this study is to analyze changes in Medicaid enrollment for all 50 US states and Washington, DC, during the first 9 months of 2020 and to test for associations with state Medicaid expansion, pandemic application simplification steps, and changes in the unemployment rate.

Methods

This cross-sectional study was deemed as non–human participants research by the Harvard University institutional review board, which waived the need for informed consent because all data were deidentified and publicly available. This study follows the Strengthening the Reporting of Observational Studies in Epidemiology () reporting guidelines.

We analyzed Medicaid enrollment data from the Centers for Medicare & Medicaid Services for all 50 states and Washington, DC, from January 2019 through September 2020, the most recent month with available data. We plotted descriptive monthly trends for enrollment expressed as a percentage of each state’s 2019 population obtained from the US Census Bureau, with the sample stratified into expansion and nonexpansion states and with estimates weighted by state population. Then we estimated linear regression models for the change in Medicaid enrollment from the beginning of our study period (January 2019) to the end (September 2020); sensitivity analyses assessed different time frames. We specified univariable and multivariable models examining 3 independent variables: Medicaid expansion, change in state unemployment rates during the study period from the Bureau of Labor Statistics, and the number of Medicaid enrollment simplification steps taken by each state during the pandemic, including extending presumptive eligibility to additional eligibility groups and more lenient residency criteria for individuals temporarily residing out of state because of the pandemic (see eMethods in the  for full details and regression models).

A linear regression was conducted with a significance threshold of P < .05 (2-sided). The analysis was done with Stata statistical software version 14.0 (StataCorp) in January 2021.

Results

From January 2019 to September 2020, Medicaid enrollment increased from 48.2 million to 51.8 million individuals in expansion states and from 17.2 million to 18.8 million individuals in nonexpansion states. The  shows changes in the percentage of the population enrolled in Medicaid, for expansion vs nonexpansion states. Panel A of the  shows that enrollment was flat until it began to increase in March 2020 in both expansion and nonexpansion states. Between January 2019 and September 2020, enrollment increased by 1.4 percentage points in nonexpansion states and 1.6 percentage points in expansion states. Panel B of the  plots the net change in Medicaid enrollment vs the change in the state unemployment rate. The largest changes were in Idaho (which expanded starting January 2020) and Kentucky. The regression line for Medicaid growth had a modest negative slope with respect to unemployment increases, in both expansion and nonexpansion states.

The  shows regression results. Enrollment gains were significantly negatively associated with increases in unemployment, in both unadjusted (estimate, −0.14 percentage point; 95% CI, −0.27 to −0.00 percentage point; P = .046) and adjusted (estimate, −0.20 percentage point; 95% CI, −0.34 to −0.06 percentage point; P = .007) models. Medicaid expansion was associated with higher enrollment growth in the adjusted model (estimate, 0.68 percentage point; 95% CI, 0.07 to 1.29 percentage points; P = .03), whereas application simplification steps were not associated with enrollment changes. Results were similar when analyzing 12-month changes from September 2019 to September 2020, or from January 2020 to September 2020.

Discussion

Medicaid enrollment increased as the US’s COVID-19 pandemic and economic shutdown began in March 2020, with approximately 5 million more people covered nationally by September 2020. This increase occurred in both expansion and nonexpansion states, as found in a previous shorter-term analysis, although we found evidence suggesting that growth was larger in expansion states. Enrollment simplification steps were not associated with Medicaid growth. Unexpectedly, we found that enrollment growth was greater in states with smaller changes in unemployment in 2020. This may indicate that Medicaid growth is associated with factors other than job loss, including reduced work hours making more people eligible, greater focus on health care during the pandemic, and the maintenance of effort requirement passed by Congress in March 2020, which offered states more funding in exchange for a requirement that they not disenroll anyone from Medicaid during the public health emergency. Limitations of this study include the fact that we have data only through the fall of 2020, a lack of information on uninsured rates, and a regression model with 51 state-level observations, which precluded a detailed analysis of enrollment policies and was subject to potential unmeasured confounders.

Accepted for Publication: March 17, 2021.

Published: May 5, 2021. doi:

Open Access: This is an open access article distributed under the terms of the . © 2021 Khorrami P et al. JAMA Network Open.

Corresponding Author: Peggah Khorrami, MPH, Department of Health Policy and Management, Harvard T.H. Chan School of Public Health, 677 Huntington Ave, Boston, MA 02115 ([email protected]).

Author Contributions: Ms Khorrami had full access to all of the data in the study and takes responsibility for the integrity of the data and the accuracy of the data analysis.

Concept and design: Both authors.

Acquisition, analysis, or interpretation of data: Khorrami.

Drafting of the manuscript: Sommers.

Critical revision of the manuscript for important intellectual content: Both authors.

Statistical analysis: Khorrami.

Obtained funding: Sommers.

Supervision: Sommers.

Conflict of Interest Disclosures: Dr Sommers reported receiving personal fees from the Health Research & Educational Trust, the Massachusetts Medical Society, the Urban Institute, AcademyHealth, American Economic Journal, and the Illinois Department of Healthcare and Family Services and grants from Baylor Scott & White, Commonwealth Fund, and the Robert Wood Johnson Foundation outside the submitted work. No other disclosures were reported.

Funding/Support: Support for this study was provided by a grant from the National Institute on Minority Health and Health Disparities to Dr Sommers.

Role of the Funder/Sponsor: The funder had no role in the design and conduct of the study; collection, management, analysis, and interpretation of the data; preparation, review, or approval of the manuscript; and decision to submit the manuscript for publication.

Disclaimer: Dr Sommers is currently on leave from Harvard and is serving in the US Department of Health and Human Services. However, this article was conceived and drafted while Dr Sommers was employed at the Harvard School of Public Health, and the findings and views in this article do not reflect the official views or policy of the Department of Health and Human Services.

References



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