Affiliation:
1. Department of Biostatistics and Data Science, The University of Texas Health Science Center at Houston School of Public Health, Houston
2. Department of Epidemiology, Human Genetics and Environmental Health, The University of Texas Health Science Center at Houston School of Public Health, Houston
3. Department of Health Services Research, Management and Policy, College of Public Health and Health Professions, University of Florida, Gainesville
4. UFHealth Cancer Center, Gainesville, Florida
5. Department of Management, Policy and Community Health, The University of Texas Health Science Center at Houston School of Public Health, Houston
Abstract
ImportanceArea-level factors have been identified as important social determinants of health (SDoH) that impact many health-related outcomes. Less is known about how the social vulnerability index (SVI), as a scalable composite score, can multidimensionally explain the population-based cancer screening program uptake at a county level.ObjectiveTo examine the geographic variation of US Preventive Services Task Force (USPSTF)–recommended breast, cervical, and colorectal cancer screening rates and the association between county-level SVI and the 3 screening rates.Design, Setting, and ParticipantsThis population-based cross-sectional study used county-level information from the Centers for Disease Control and Prevention’s PLACES and SVI data sets from 2018 for 3141 US counties. Analyses were conducted from October 2021 to February 2022.ExposuresSocial vulnerability index score categorized in quintiles.Main Outcomes and MeasuresThe main outcome was county-level rates of USPSTF guideline-concordant, up-to-date breast, cervical, and colorectal screenings. Odds ratios were calculated for each cancer screening by SVI quintile as unadjusted (only accounting for eligible population per county) or adjusted for urban-rural status, percentage of uninsured adults, and primary care physician rate per 100 000 residents.ResultsAcross 3141 counties, county-level cancer screening rates showed regional disparities ranging from 54.0% to 81.8% for breast cancer screening, from 69.9% to 89.7% for cervical cancer screening, and from 39.8% to 74.4% for colorectal cancer screening. The multivariable regression model showed that a higher SVI was significantly associated with lower odds of cancer screening, with the lowest odds in the highest SVI quintile. When comparing the highest quintile of SVI (SVI-Q5) with the lowest quintile of SVI (SVI-Q1), the unadjusted odds ratio was 0.86 (95% posterior credible interval [CrI], 0.84-0.87) for breast cancer screening, 0.80 (95% CrI, 0.79-0.81) for cervical cancer screening, and 0.72 (95% CrI, 0.71-0.73) for colorectal cancer screening. When fully adjusted, the odds ratio was 0.92 (95% CrI, 0.90-0.93) for breast cancer screening, 0.87 (95% CrI, 0.86-0.88) for cervical cancer screening, and 0.86 (95% CrI, 0.85-0.88) for colorectal cancer screening, showing slightly attenuated associations.Conclusions and RelevanceIn this cross-sectional study, regional disparities were found in cancer screening rates at a county level. Quantifying how SVI associates with each cancer screening rate could provide insight into the design and focus of future interventions targeting cancer prevention disparities.
Publisher
American Medical Association (AMA)