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COMMENTARY |
The authors are with the Army Medical Surveillance Activity, Directorate of Epidemiology and Disease Surveillance, US Army Center for Health Promotion and Preventive Medicine, Washington, DC.
Correspondence: Requests for reprints should be sent to Mark V. Rubertone, MD, MPH, Army Medical Surveillance Activity, Bldg T-20, Room 213 (Attn: MCHB-TS-EDM), 6900 Georgia Ave, NW, Washington, DC 20307-5001 (e-mail: mark.rubertone{at}amedd.army.mil).
| ABSTRACT |
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The Defense Medical Surveillance System (DMSS) is the central repository of medical surveillance data for the US armed forces. The DMSS integrates data from sources worldwide in a continuouslyexpanding relational database that documents the military and medical experiences of servicemembers throughout their careers.
The Department of Defense Serum Repository (DoDSR) is a central archive of sera drawn from servicemembers for medical surveillance purposes.
Currently, the DMSS contains data relevant to more than 7 million individuals who have served in the armed forces since 1990, and the DoDSR contains more than 27 million specimens that are linkable to data in the DMSS. Recent applications of the DMSS and DoDSR provide glimpses of the capabilities and uses of comprehensive public health surveillance systems.
| INTRODUCTION |
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In contrast, the potential values of comprehensive public health surveillance are numerous and well recognized.18 For example, if population-based demographic, exposure, and medical outcomes data were routinely and systematically collected from various sources; and if such data were integrated in a database and easily analyzed, interpreted, and results reported, then public health officials could detect new and emerging hazards; track rates and trends of illnesses and injuries of concern; prioritize and focus prevention programs (and allocate resources appropriately); document effects of policies and programs; justify requirements for personnel and other resources; project the natures, distributions, and magnitudes of future health care needs; and support health education and medical research activities.
Comprehensive public health surveillance is sometimes considered infeasible or impractical for general use. For example, sources of relevant data are often difficult to identify and may not be automated, and there is often variability across sources in database structures, record definitions, and coding schemes.9,10 Computer networks and data transmission capabilities are often unreliable or nonexistent, and the hardware, software, and personnel required to collect, integrate, and analyze large quantities of data are often too expensive or too easily overwhelmed by the demands of operating the system.6,10 Finally, there is often weak institutional support for public health surveillance.11
A number of authors have articulated visions of the future of epidemiological practice and public health surveillance.2,4,6,7,12-21 However, while technological advances have significantly enhanced current capabilities, there are few published descriptions of functioning systems that employ new approaches, exploit modern technologies, or preview capabilities of future systems.
| MILITARY PUBLIC HEALTH SURVEILLANCE |
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However, there are characteristics of the US armed forces that enhance opportunities to conduct comprehensive public health surveillance. First, all individuals are closely tracked from the day they enter service until the day they leave. Second, all individuals have free and open access to medical care in the military health system, and nearly every encounter is documented with a standardized record. Third, records of demographic characteristics, military experiences, and inpatient and outpatient encounters of all servicemembers are regularly transmitted to and maintained in centralized data archives. Fourth, the armed forces have telecommunications networks that can securely link data archives and medical institutions with a centralized data system. Fifth, postcold war strategic circumstances and managed health care initiatives have stimulated support for health promotion and morbidity prevention programs in the armed forces. Finally, sera are routinely collected from servicemembers for medical surveillance purposes, and these specimens are available for archiving in a central repository.
| RECENT BACKGROUND |
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About the same time, largely in response to the end of the cold war, national security policies, structures, and priorities fundamentally changed.24 As military forces were downsized, overseas operations became more frequent and more geographically dispersed; were more likely to be conducted in places with nonfunctional public health and public safety infrastructures; and were generally peacekeeping, counterterrorist, humanitarian, or drug interdictive, rather than conventional combat, operations.
The maximization of the health, fitness, and medical preparedness of forces being deployed and the minimization of disease and injury risks during deployments became cornerstones of postcold war military medical support strategy.21,25 There is now a broad understanding that the successful execution of this strategy depends on the effective conduct of comprehensive medical surveillance.26
| THE DEFENSE MEDICAL SURVEILLANCE SYSTEM |
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The DMSS (Figure 1
) now serves as the central repository of medical surveillance data for the US armed forces. The DMSS receives data from many sources, including more than 100 field sites. Upon receipt, the data are processed through "edit check" programs that ensure completeness (e.g., that all essential fields have entries), consistency (e.g., birth dates are unchanged from previous entries), and accuracy (e.g., compliance with specified formats and within acceptable ranges). After processing, relevant data are integrated into the DMSS database.
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All data in the DMSS are maintained in a relational database (Oracle; Oracle Inc; Redwood City, Calif.). Tools for accessing and managing data in the DMSS have been customized with commercial off-the-shelf relational database management systems development software. Extensive physical and electronic security measures are used to restrict access to the DMSS and protect its integrity. For example, multiple layers of password protection are used to restrict access to information linkable to specific individuals.
In summary, the DMSS is a continuously updated, fully integrated, easily accessed relational database system. As of October 2001, the DMSS consisted of more than 200 million rows of data related to more than 7 million servicemembers.
| THE DEPARTMENT OF DEFENSE SERUM REPOSITORY |
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At the repository, specimens are stored in precisely documented locations in walk-in freezers at 30 °C. In the DMSS, serum identification numbers and repository locations are linked to dates of specimen collection and personal identifiers of donors. As of October 2001, more than 27 million specimens related to nearly 7.5 million individuals were stored in the DoDSR. Approximately 4.5 million individuals had at least 2 specimens in the repository, and among servicemembers with 2 or more archived specimens, the median time between the earliest and latest was 4.0 years (Figure 2
). The DoDSR adds a powerful seroepidemiological capability to the overall surveillance program.
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| ACCESS |
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Personal identifier information is not available through remote access. On rare occasions, information linked to individuals is provided to enhance individual patient care, protect individual or community health, increase military operational preparedness, or support the conduct of research (contingent on prior approval by cognizant scientific and human subjects review committees).
Since 1995, the Medical Surveillance Monthly Report (MSMR) has been the principal tool for disseminating results of DMSS data analyses. MSMR reports frequencies, rates, and trends of ambulatory visits, hospitalizations, and reportable medical events among active servicemembers. MSMR also publishes reports of cases and outbreaks of illnesses, injuries, and exposures with broad military or medical relevance. MSMR is mailed to designated recipients and posted on the AMSA Web site (http://amsa.army.mil).
Finally, the DMSS enables rapid access to sera in the DoDSR. Specimens are retrieved from the repository to support the care of individual patients, outbreak investigations, assessments of deployment-related health threats, and seroepidemiological studies. Guidelines for accessing specimens are posted on the AMSA Web site.
| USE |
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| EXAMPLES OF APPLICATIONS |
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Risk Assessments
At the request of Army policymakers, respiratory illness hospitalization rates were compared between soldiers who had served at a military installation in a unique desert environment and closely matched "unexposed" soldiers. The exposed cohort consisted of more than 20 000 soldiers who had been assigned to the subject installation at any time during a 10-year surveillance period. The control cohort consisted of more than 80 000 soldiers who were randomly selected from among all soldiers who were contemporaries of and closely matched to index exposed soldiers. Compared with their counterparts, exposed soldiers had higher hospitalization rates for respiratory illnesses after they had left (but not before or during) their desert assignments.28
Vaccine Adverse Effects
In 1997, the Department of Defense began a program to immunize all servicemembers against anthrax.29,30 To monitor the vaccines safety, the AMSA compared rates of hospitalizations and ambulatory visits for specific diagnoses between servicemembers who had received anthrax vaccine and those who had not. Diagnoses that were statistically significantly overrepresented in the vaccinated cohort were referred for more detailed assessments.31
Emerging Threats
In 1993, after South Korea had been considered malaria-free for decades, vivax malaria reemerged in the country.32,33 Many of the cases had long incubation periods; thus, many servicemembers who acquired Plasmodium vivax infection in Korea had clinical presentations during subsequent assignments.34 For disease control purposes, vivax malaria among US soldiers was tracked in relation to time and location of infection acquisition, rather than clinical presentation. From 1993 to 1999, 147 cases of vivax malaria that were considered to have been acquired in Korea were found among soldiers at 34 locations in 16 states and on 4 continents.35
Deployment Surveillance
Since December 1995, the United States has deployed servicemembers to Bosnia-Herzegovina. Hospitalization rates were compared among deployed and contemporaneous nondeployed servicemembers; adjustment was made for potentially confounding differences between them. In general, crude hospitalization rates were lower among deployed than nondeployed personnel, and among the deployed, adjusted hospitalization rates were higher during and after deployment than before.36 The strongest predictor of hospitalization risk during deployment was a hospitalization prior to deployment, and the more recent a hospitalization was at the time of deployment, the greater the risk of hospitalization during deployment.37
Policy Effects
In April 1998, the Army revised its fluid replacement guidelines to lessen the risk of overhydration/hyponatremia during training in heat-stressful conditions.38,39 In the next 2 years, there were 65 cases of overhydration/hyponatremia among soldiers, and compared with 1997, there were 12% and 28% fewer cases in 1998 and 1999, respectively.40
Serological Surveys
In 1997, a serological survey was conducted to assess the nature, distribution, and magnitude of hepatitis C in US servicemembers. The AMSA randomly selected 21 000 members of the US armed forces who had serum specimens archived in the DoDSR. Some subgroups were oversampled to increase the precision of subgroup-specific estimates. Assays were conducted to detect antibodies to hepatitis C. Seroprevalences were lower in current servicemembers than in comparable groups of civilians and military veterans.41
Seroepidemiological Research
In collaboration with civilian and military researchers, the DMSS identified all servicemembers who were diagnosed with Hodgkins disease during a specified period and who had archived sera that was drawn prior to their diagnoses. A referent group was selected from among all noncases who had contemporaneous periods of service, were matched on potentially confounding factors, and had sera drawn at similar times to index cases. Sera from cases and noncases were assayed for markers of Epstein-Barr virus infection. Similar designs were used to study prostate,42 testicular, and cervical cancers; systemic lupus erythematosis; acute myocardial infarction; and postwar syndromes.43
| CONCLUSION |
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The linkages of data relevant to individual characteristics, exposure states, medical events, and specimens in the DoDSR provide powerful seroepidemiological capabilities. Over time, the serum repository will increase in its value as new etiologic hypotheses are developed, as technologies for detecting biological markers in sera are improved, and as medical events accrue among aging cohorts of contributors.
The DMSS and DoDSR do not obviate the need for thoughtful and informed study designs, analysis methods, and interpretation of results. On the contrary, the DMSS and DoDSR enable researchers to focus time and attention on solving methodological problems, interpreting results, and producing summaries and reports.
In summary, the DMSS and DoDSR provide unprecedented capabilities for conducting comprehensive population-based surveillance of the US armed forces while protecting the privacy and confidentiality of servicemembers. They provide glimpses of the capabilities and potential uses of public health surveillance systems of the future.
| Acknowledgments |
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| Footnotes |
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M. V. Rubertone has been chief of the AMSA since its inception. He has been involved in every aspect of planning, developing, and operating the DMSS. He is also responsible for the management and operations of the DoDSR. J. F. Brundage participated in the development of the AMSA, the DMSS, and the DoDSR. Both authors participated in every phase of the planning, writing, and editing of this article.
Accepted for publication March 29, 2002.
| References |
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