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Effectiveness and feasibility of convalescent blood transfusion to reduce COVID-19 fatality ratio
Xi Huo1, Xiaodan Sun2, Nicola Bragazzi3
1Department of Mathematics, University of Miami, Coral Gables, FL 33146, USA.
Insights
Convalescent plasma (CP) therapy, when initiated early, can significantly reduce COVID-19 deaths. Mathematical modeling shows population-wide CP implementation is logistically feasible and can save lives.
Area of Science:
- Epidemiology
- Mathematical Modeling
- Public Health
Background:
- COVID-19 pandemic caused millions of deaths globally by December 2020.
- Severe and critical COVID-19 cases necessitate effective treatments.
- Convalescent plasma (CP) therapy involves transfusing plasma from recovered individuals.
Purpose of the Study:
- To develop a mathematical model for optimizing CP therapy implementation.
- To assess the potential benefits and logistical challenges of large-scale CP therapy.
- To estimate the impact of CP therapy on COVID-19 mortality in Italy.
Main Methods:
- Developed a mathematical model for treatment-donation-stockpile dynamics.
- Parametrized the model using COVID-19 epidemic data from Italy.
- Conducted scenario analyses to evaluate population-wide CP therapy outcomes and donation capacity.
Main Results:
- With 90% CP efficacy, early initiation (April 2020) could save up to 19,215 lives by year-end 2020.
- Daily apheresis demand was manageable, with average daily processions per center ranging from 2.5 to 23.5.
- Life-saving potential and logistical feasibility were demonstrated across various donor availability scenarios.
Conclusions:
- Population-wide convalescent plasma therapy is a viable strategy to reduce COVID-19 mortality.
- Early implementation of CP therapy yields the most significant reduction in deaths.
- Logistical implementation of CP therapy is feasible in developed countries.
Abstract:
Background: As of December 2020, COVID-19 has spread all over the world with more than 81 million cases and more than 1.8 million deaths. The rapidly increasing number of patients mandates the consideration of potential treatments for patients under severe and critical conditions. Convalescent plasma (CP) treatment refers to the approach of infusing patients with plasma from recently recovered patients. CP appears to be a possible therapeutic option to manage patients suffering from severe or even lethal infectious disorders, in which 'traditional therapies' have failed to obtain any result. Methods: In the present study, we develop a mathematical model on the treatment-donation-stockpile dynamics for an optimal implementation of CP therapy to examine potential benefits and complications in the logistic realization of this therapy in a large-scale population. We parametrize the model with COVID-19 epidemics in Italy, and conduct scenario analyses to estimate outcomes of population-wide CP therapy and to examine the maximum number of CP donation processions per day. Results: Under the assumption that the efficacy of CP is 90%, we show that by the end of year 2020, initiating the population-wide CP therapy from April 2020 can save as many as 19 215 lives (ranging from 5000 to 28 000 depending on donor availability), while the demand for apheresis use is manageable in all scenarios: the maximum daily demand is 156 (ranging from 27 to 519 depending on donor availability) for the first outbreak wave and 1434 (ranging from 224 to 4817 depending on donor availability) for the second wave. Given that Italy has 61 centres with apheresis this maximum demand level corresponds to a daily average of 2.5 and 23.5 processions of CP donation being performed by each centre with respect to each outbreak wave. Conclusions: Our analyses show that population-wide CP therapy can contribute to curbing COVID-19-related deaths, and the logistic implementation is feasible for developed countries. The reduction of deaths can be very significant if the CP therapy is started earlier in the outbreak, and remains significant even if it is implemented during the outbreak peak time.
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