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1.
Preprint em Inglês | medRxiv | ID: ppmedrxiv-21255473

RESUMO

BackgroundThe COVID-19 pandemic has caused substantial morbidity and mortality. ObjectivesTo describe monthly demographic and clinical trends among adults hospitalized with COVID-19. DesignPooled cross-sectional. Setting99 counties within 14 states participating in the Coronavirus Disease 2019-Associated Hospitalization Surveillance Network (COVID-NET). PatientsU.S. adults (aged [≥]18 years) hospitalized with laboratory-confirmed COVID-19 during March 1-December 31, 2020. MeasurementsMonthly trends in weighted percentages of interventions and outcomes including length of stay (LOS), intensive care unit admissions (ICU), invasive mechanical ventilation (IMV), vasopressor use and in-hospital death (death). Monthly hospitalization, ICU and death rates per 100,000 population. ResultsAmong 116,743 hospitalized adults, median age was 62 years. Among 18,508 sampled adults, median LOS decreased from 6.4 (March) to 4.6 days (December). Remdesivir and systemic corticosteroid use increased from 1.7% and 18.9% (March) to 53.8% and 74.2% (December), respectively. Frequency of ICU decreased from 37.8% (March) to 20.5% (December). IMV (27.8% to 8.7%), vasopressors (22.7% to 8.8%) and deaths (13.9% to 8.7%) decreased from March to October; however, percentages of these interventions and outcomes remained stable or increased in November and December. Percentage of deaths significantly decreased over time for non-Hispanic White patients (p-value <0.01) but not non-Hispanic Black or Hispanic patients. Rates of hospitalization (105.3 per 100,000), ICU (20.2) and death (11.7) were highest during December. LimitationsCOVID-NET covers approximately 10% of the U.S. population; findings may not be generalizable to the entire country. ConclusionsAfter initial improvement during April-October 2020, trends in interventions and outcomes worsened during November-December, corresponding with the 3rd peak of the U.S. pandemic. These data provide a longitudinal assessment of trends in COVID-19-associated outcomes prior to widespread COVID-19 vaccine implementation.

2.
Rachel M Burke; Sharon Balter; Emily Barnes; Vaughn Barry; Karri Bartlett; Karlyn D Beer; Isaac Benowitz; Holly M Biggs; Hollianne Bruce; Jonathan Bryant-Genevier; Jordan Cates; Kevin Chatham-Stephens; Nora Chea; Howard Chiou; Demian Christiansen; Victoria Chu; Shauna Clark; Sara H. Cody; Max Cohen; Erin E Conners; Vishal Dasari; Patrick Dawson; Traci DeSalvo; Matthew Donahue; Alissa Dratch; Lindsey Duca; Jeffrey Duchin; Jonathan W Dyal; Leora R Feldstein; Marty Fenstersheib; Marc Fischer; Rebecca Fisher; Chelsea Foo; Brandi Freeman-Ponder; Alicia M Fry; Jessica Gant; Romesh Gautom; Isaac Ghinai; Prabhu Gounder; Cheri T Grigg; Jeffrey Gunzenhauser; Aron J Hall; George S Han; Thomas Haupt; Michelle Holshue; Jennifer Hunter; Mireille B Ibrahim; Max W Jacobs; M. Claire Jarashow; Kiran Joshi; Talar Kamali; Vance Kawakami; Moon Kim; Hannah Kirking; Amanda Kita-Yarbro; Rachel Klos; Miwako Kobayashi; Anna Kocharian; Misty Lang; Jennifer Layden; Eva Leidman; Scott Lindquist; Stephen Lindstrom; Ruth Link-Gelles; Mariel Marlow; Claire P Mattison; Nancy McClung; Tristan McPherson; Lynn Mello; Claire M Midgley; Shannon Novosad; Megan T Patel; Kristen Pettrone; Satish K Pillai; Ian W Pray; Heather E Reese; Heather Rhodes; Susan Robinson; Melissa Rolfes; Janell Routh; Rachel Rubin; Sarah L Rudman; Denny Russell; Sarah Scott; Varun Shetty; Sarah E Smith-Jeffcoat; Elizabeth A Soda; Chris Spitters; Bryan Stierman; Rebecca Sunenshine; Dawn Terashita; Elizabeth Traub; Grace E Vahey; Jennifer R Verani; Megan Wallace; Matthew Westercamp; Jonathan Wortham; Amy Xie; Anna Yousaf; Matthew Zahn.
Preprint em Inglês | medRxiv | ID: ppmedrxiv-20081901

RESUMO

BackgroundCoronavirus disease 2019 (COVID-19), the respiratory disease caused by the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), was first identified in Wuhan, China and has since become pandemic. As part of initial response activities in the United States, enhanced contact investigations were conducted to enable early identification and isolation of additional cases and to learn more about risk factors for transmission. MethodsClose contacts of nine early travel-related cases in the United States were identified. Close contacts meeting criteria for active monitoring were followed, and selected individuals were targeted for collection of additional exposure details and respiratory samples. Respiratory samples were tested for SARS-CoV-2 by real-time reverse transcription polymerase chain reaction (RT-PCR) at the Centers for Disease Control and Prevention. ResultsThere were 404 close contacts who underwent active monitoring in the response jurisdictions; 338 had at least basic exposure data, of whom 159 had [≥]1 set of respiratory samples collected and tested. Across all known close contacts under monitoring, two additional cases were identified; both secondary cases were in spouses of travel-associated case patients. The secondary attack rate among household members, all of whom had [≥]1 respiratory sample tested, was 13% (95% CI: 4 - 38%). ConclusionsThe enhanced contact tracing investigations undertaken around nine early travel-related cases of COVID-19 in the United States identified two cases of secondary transmission, both spouses. Rapid detection and isolation of the travel-associated case patients, enabled by public awareness of COVID-19 among travelers from China, may have mitigated transmission risk among close contacts of these cases.

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