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Explore national- and state-level data for hundreds of health, environmental and socioeconomic measures, including background information about each measure. Use features on this page to find measures; view subpopulations, trends and rankings; and download and share content.
Maryland Value:
Percentage of infants weighing less than 2,500 grams (5 pounds, 8 ounces) at birth
Maryland Rank:
Percentage of infants weighing less than 2,500 grams (5 pounds, 8 ounces) at birth
6.7% - 7.5%
7.6% - 8.0%
8.1% - 8.7%
8.8% - 9.5%
9.6% - 12.5%
US Value: 8.6%
Top State(s): Alaska: 6.7%
Bottom State(s): Mississippi: 12.5%
Definition: Percentage of infants weighing less than 2,500 grams (5 pounds, 8 ounces) at birth
Data Source and Years(s): U.S. Department of Health and Human Services, Centers for Disease Control and Prevention, National Center for Health Statistics, National Vital Statistics System, Natality Public Use Files via CDC WONDER Online Database, 2023
Suggested Citation: America's Health Rankings analysis of U.S. Department of Health and Human Services, Centers for Disease Control and Prevention, National Center for Health Statistics, National Vital Statistics System, Natality Public Use Files via CDC WONDER Online Database, United Health Foundation, AmericasHealthRankings.org, accessed 2026.
Low birth weight infants (weighing less than 2,500 grams at birth) are at increased risk of several short- and long-term complications. Low birth weight and preterm birth are leading causes of infant mortality. There are two categories of low birth weight infants: moderately low birth weight infants (between 1,500 and 2,499 grams at birth) and very low birth weight infants (less than 1,500 grams at birth).
Low birth weight infants are more susceptible to health problems, including heart problems, breathing problems, bleeding in the brain, intestinal disorders and retinopathy, which affects eye development. They are also more likely to develop certain health conditions later in life, such as Type 2 diabetes, heart disease, high blood pressure, obesity, cerebral palsy and learning and behavioral problems.
The average hospital cost is estimated to be $27,200 for a low birth weight infant and $76,700 for a very low birth weight infant, compared with an average hospital cost of $3,200. Very low birth weight infant care accounts for 30% of all newborn health care costs, with an annual cost of approximately $13.4 billion in neonatal intensive care unit hospitalizations. Low birth weight and very low birth weight infants who survive to adulthood often experience serious physical and mentalmorbidities, significantly increasing the costs of hospitalization throughout their lifespan.
The most common causes of low birth weight are premature birth (earlier than 37 weeks of gestation) and restricted fetal growth.
According to America’s Health Rankings analysis, the prevalence of having a low birth weight is higher among:
Additional studies have found that having a low birth weight infant is more common among:
Improving women’s health prior to pregnancy may be more beneficial than interventions during pregnancy. Strategies to prevent low birth weight include:
According to the American Public Health Association, effective tools for reducing disparities in low birth weight include “educating the public and health care providers, broadening access to quality health care services, promoting healthier physical and social environments, supporting innovative research and advocating for efforts to address racial and social inequalities.”
Healthy People 2030 has several objectives related to pregnancy and childbirth, including reducing preterm births and reducing infant mortality.
Committee to Study the Prevention of Low Birthweight, Division of Health Promotion and Disease Prevention, and Institute of Medicine. Preventing Low Birthweight. Washington, D.C.: National Academies Press, 1985. https://www.ncbi.nlm.nih.gov/books/NBK214456/.
Glass, Hannah, Andrew Costarino, Stephen Stayer, Claire Brett, Franklyn Cladis, and Peter Davis. “Outcomes for Extremely Premature Infants.” Anesthesia & Analgesia 120, no. 6 (June 2015): 1337–51. https://doi.org/10.1213/ANE.0000000000000705.
Johnson, Tricia J., Aloka L. Patel, Briana Jegier, Janet L. Engstrom, and Paula Meier. “Cost of Morbidities in Very Low Birth Weight Infants.” Journal of Pediatrics 162, no. 2 (February 2013): 243-49 e1. https://doi.org/10.1016/j.jpeds.2012.07.013.
Kowlessar, Niranjana M., H. Joanna Jiang, and Claudia Steiner. Hospital Stays for Newborns, 2011. HCUP Statistical Brief #163. Healthcare Cost and Utilization Project. Rockville, MD: Agency for Healthcare Research and Quality, October 2013. https://pubmed.ncbi.nlm.nih.gov/24308074/.
Petrou, Stavros, Tracey Sach, and Leslie Davidson. “The Long-Term Costs of Preterm Birth and Low Birth Weight: Results of a Systematic Review.” Child: Care, Health and Development 27, no. 2 (March 2001): 97–115. https://doi.org/10.1046/j.1365-2214.2001.00203.x.
Shore, Rima, and Barbara Shore. Kids Count Indicator Brief: Preventing Low Birthweight. Baltimore, MD: The Annie E. Casey Foundation, July 2009. https://www.aecf.org/resources/kids-count-indicator-brief-preventing-low-birthweight.
Squarza, Chiara, Odoardo Picciolini, Laura Gardon, Maria L. Giannì, Alessandra Murru, Silvana Gangi, Ivan Cortinovis, Silvano Milani, and Fabio Mosca. “Learning Disabilities in Extremely Low Birth Weight Children and Neurodevelopmental Profiles at Preschool Age.” Frontiers in Psychology 7 (June 28, 2016). https://doi.org/10.3389/fpsyg.2016.00998.
Thorsen, Maggie L., Andreas Thorsen, and Ronald McGarvey. “Operational Efficiency, Patient Composition and Regional Context of U.S. Health Centers: Associations with Access to Early Prenatal Care and Low Birth Weight.” Social Science & Medicine 226 (April 2019): 143–52. https://doi.org/10.1016/j.socscimed.2019.02.043.
Wang, Fu, Yingxiao Hua, Paul K. Whelton, Tao Zhang, Camilo Alonso Fernandez, Huijie Zhang, Lydia Bazzano, Jiang He, Wei Chen, and Shengxu Li. “Relationship Between Birth Weight and the Double Product in Childhood, Adolescence, and Adulthood (from the Bogalusa Heart Study).” American Journal of Cardiology 120, no. 6 (September 15, 2017): 1016–19.https://doi.org/10.1016/j.amjcard.2017.06.037.
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