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Covid-19: temporal evolution and immunization in the three epidemiological waves, Brazil, 2020–2022

ABSTRACT

OBJECTIVE

Describe the temporal evolution of morbimortality due to Covid-19 and vaccination coverage during the health emergency in Brazil.

METHODS

Number of cases and deaths due to Covid-19 were extracted from the public panel of the Brazilian Ministry of Health, according to epidemiological week (EW) and geographic region. Data on vaccines and variants were obtained, respectively, from the Information System of the National Immunization Program and the Genomic Surveillance System of SARS-CoV-2.

RESULTS

Three peaks of deaths characterized the evolution of the Covid-19 pandemic: in EW 30 of 2020, in the EW 14 of 2021 and in the EW six of 2022; three case waves, starting in the North and Northeast regions, with higher rates in the third wave, mainly in the South region. Vaccination started in the epidemiological week three of 2021, rapidly reaching most of the population, particularly in the Southeast and South regions, coinciding with a reduction exclusively in the mortality rate in the third wave. Only from the beginning of the second wave, when Gama was the dominant variant, 146,718 genomes were sequenced. From the last EW of 2021, with vaccination coverage already approaching 70%, the Omicron variant caused an avalanche of cases, but with fewer deaths.

CONCLUSIONS

We noticed the presence of three waves of Covid-19, as well as the effect of immunization on the reduction of mortality in the second and third waves, attributed to the Delta and Omicron variants, respectively. However, the reduction of morbidity, which peaked in the third wave during the domination of the Omicron variant, remained the same. The national and centralized command of the pandemic confrontation did not occur; thus, public administrators took the lead in their territories. The overwhelming effect of the pandemic could have been minimized, if there had been a coordinated participation of three spheres of the Brazilian Unified Health System administration, in the joint governance of the pandemic fight.

DESCRIPTORS
COVID-19, epidemiology; Indicators of Morbidity and Mortality; Vaccination Coverage; Health Status Disparities

RESUMO

OBJETIVO

Descrever a evolução temporal da morbimortalidade por covid-19 e da cobertura vacinal no período da emergência sanitária no Brasil.

MÉTODOS

Número de casos e óbitos por covid-19 foram extraídos do painel público do Ministério da Saúde, conforme semana epidemiológica (SE) e região geográfica. Dados sobre vacinas e variantes foram obtidos, respectivamente, do Sistema de Informação do Programa Nacional de Imunizações e do Sistema de Vigilância Genômica do SARS-CoV-2.

RESULTADOS

A evolução da pandemia de covid-19 caracterizou-se por três picos de óbitos: na 30ᵃ semana epidemiológica de 2020, na 14ᵃ de 2021 e na sexta de 2022; três ondas de casos, iniciando-se nas regiões Norte e Nordeste, com maiores taxas na terceira onda, principalmente na região Sul. A vacinação teve início na terceira semana epidemiológica de 2021, atingindo rapidamente a maior parte da população, particularmente nas regiões Sudeste e Sul, coincidindo com redução da taxa de mortalidade, mas não de morbidade na terceira onda. No total, 146.718 genomas foram sequenciados, mas somente a partir do início da segunda onda, na qual a variante dominante foi a Gama. A partir da última SE de 2021, quando a cobertura vacinal já se aproximava de 70%, a variante Ômicron causou uma avalanche de casos, porém com menos óbitos.

CONCLUSÕES

É nítida a presença de três ondas de covid-19, bem como o efeito da imunização na redução da mortalidade na segunda e na terceira ondas, atribuídas às variantes Delta e Ômicron, respectivamente. Contudo não houve efeito na redução da morbidade, que atingiu o pico na terceira onda, na qual dominou a variante Ômicron. O comando nacional e centralizado do enfrentamento à pandemia não ocorreu; assim, os gestores locais assumiram a liderança em seus territórios. O efeito avassalador da pandemia poderia ter sido minimizado, caso houvesse a participação coordenada das três esferas de governo no SUS.

DESCRITORES
COVID-19, epidemiologia; Indicadores de Morbimortalidade; Cobertura Vacinal; Disparidades nos Níveis de Saúde

INTRODUCTION

Since its creation and during more than three decades of existence, the Brazilian Unified Health System (SUS) has advanced, despite many challenges. More recently the Covid-19 pandemic was the main confrontation, considering the country's population size and territorial diversity.

The Brazilian Ministry of Health created the Coronavirus Panel11 Ministério da Saúde (BR), Secretaria de Vigilância em Saúde. COVID 19 Painel Coronavírus. Brasíia, DF; 2020 [cited 2022 Jun 6]. Available from: https://covid.saude.gov.br/
https://covid.saude.gov.br/...
, which daily summarizes the numbers of cases and deaths due to Covid-19 throughout the country, accounted more than 30 million cases and more than 660,000 deaths until May 21, 2022, showing three propagation waves of the disease in the country.

Regarding epidemics and pandemics, public health governance should be valued, by centering national leadership mainly on the Ministry of Health, based on scientific principles and responsibility22 Brasil, Constituição (1988). Constituição da República Federativa do Brasil. Brasília, DF; 1988 [cited 2022 Jun 6]. Available from: http://www.planalto.gov.br/ccivil_03/constituicao/constituicao.htm
http://www.planalto.gov.br/ccivil_03/con...
. Unfortunately, the absence of those measurements in Brazil, forced other spheres of public power to assume the federal role33 Abrucio FL, Grin EJ, Franzese C, Segatto CI, Couto CG. Combate à COVID-19 sob o federalismo bolsonarista: um caso de descoordenação intergovernamental. Rev Adm Publica. 2020;54(4):663-77. https://doi.org/10.1590/0034-761220200354
https://doi.org/10.1590/0034-76122020035...
. The present study highlights the performance of the States, the Federal District and the municipalities. However, the effect of the pandemic was so devastating that, even leading this fight in their respective territories, state and municipal public administrators, either due to their extensive size or the meagre resources available, did not manage to control this outcome. Public administrators could have handled the effect of the pandemic if SUS functioned with the coordinated participation of all government spheres of the Federation44 Shimizu HE, Lima LD, Carvalho ALB, Carvalho BG, Viana ALDA. Regionalização e crise federativa no contexto da pandemia da Covid 19: impasses e perspectivas. Saude Debate. 2021;45(131):945-57. https://doi.org/10.1590/0103-1104202113101i
https://doi.org/10.1590/0103-11042021131...
. The nonexistence of central coordination hindered the fight against the pandemic and postponed the implementation of Covid-19 immunization in Brazil.

This study aimed to describe the temporal evolution of cases and deaths from Covid-19 in Brazil according to the advance of vaccination coverage, by geographic regions, and the dominant variants reported in the country.

METHODS

This is a descriptive temporal study, based on public domain secondary data. The event evaluated was Covid-19, from the first notification until the end of the state of Public Health Emergency of National Importance (ESPIN)55 Ministério da Saúde (BR). Portaria GM/MS N° 913, de 22 de abril de 2022. Declara o encerramento da Emergência em Saúde Pública de Importância Nacional (ESPIN) em decorrência da infecção humana pelo novo coronavírus (2019-nCoV) e revoga a Portaria GM/MS n° 188, de 3 de fevereiro de 2020. Diário Oficial da União. 22 abr 2022 [cited 2022 May 22]; Seção 1-Extra E:1. Available from: https://www.in.gov.br/en/web/dou/-/portaria-gm/ms-n-913-de-22-de-abril-de-2022-394545491
https://www.in.gov.br/en/web/dou/-/porta...
, in May 21, 2022, or the epidemiological week (EW) 20 of 2022.

Number of cases and deaths due to Covid-19 were extracted from the public panel of the Brazilian Ministry of Health, according to epidemiological week and geographic region of residence. Morbidity rates per 10,000 inhabitants and mortality per 100,000 inhabitants were calculated, considering a population estimate for the year 202066 Ministério da Saúde (BR), DATASUS. Projeção da população das unidades da Federação por sexo e grupos de idade: 2000-2030. Brasília, DF; [cited 2021 Mar 12]. Available from: http://tabnet.datasus.gov.br/cgi/tabcgi.exe?ibge/cnv/projpopuf.def
http://tabnet.datasus.gov.br/cgi/tabcgi....
.

Vaccination coverage was estimated, in percentage, by region and epidemiological week, considering individuals with full immunization (one dose or two doses, according to the type of vaccine)77 Ministério da Saúde (BR), Sistema de Informação do Programa de Imunizações (SI-PNI). Campanha Nacional de Vacinação contra Covid-19. Brasília, DF; 2021 [cited 2022 May 22]. Available from: https://opendatasus.saude.gov.br/dataset/covid-19-vacinacao
https://opendatasus.saude.gov.br/dataset...
, also using the population estimate for 202066 Ministério da Saúde (BR), DATASUS. Projeção da população das unidades da Federação por sexo e grupos de idade: 2000-2030. Brasília, DF; [cited 2021 Mar 12]. Available from: http://tabnet.datasus.gov.br/cgi/tabcgi.exe?ibge/cnv/projpopuf.def
http://tabnet.datasus.gov.br/cgi/tabcgi....
, by region and EW. The evolution of morbidity and mortality rates was plotted for the country and geographic regions as well as vaccination coverage, according to these rates.

To identify the dominant variants, the results of the sequenced genomes were extracted from the Genomic Surveillance System of SARS-CoV-2 (Severe Acute Respiratory Syndrome CoronaVirus 2) database in Brazil88 Ministério da Saúde (BR). Vigilância Genômica do SARS-CoV-2 no Brasil: Principais variantes por período de amostragem. Rio de Janeiro: Fiocruz; 2022 [cited 2022 Jun 4]. Available from: http://www.genomahcov.fiocruz.br/dashboard-pt/
http://www.genomahcov.fiocruz.br/dashboa...
. Data were analyzed regarding the “Main variants by sampling period” by geographic region, from February 2020 to May 2022, according to the month of samples collection, and classified as Alpha, Beta, Gamma, Delta, Omicron and others. The total number of sequenced genomes was plotted, by type of variant, according to morbidity rate and mortality rate for the country.

Since the present study is based on secondary data in the public domain, it does not require approval by an ethics committee for research with human beings99 Ministério da Saúde (BR), Conselho Nacional de Saúde. Resolução N° 510, de 7 de abril de 2016. Brasília, DF; 2016 [cited 2021 Apr 1]. Available from: http://www.conselho.saude.gov.br/resolucoes/2016/Reso510.pdf
http://www.conselho.saude.gov.br/resoluc...
.

RESULTS

The Brazilian Ministry of Health portal shows 30,945,384 cases and 666,391 deaths due to Covid-19 until May 21, 2022 (end of ESPIN), demonstrating three waves of deaths. The first wave was between February 23 (EW nine 2020) and July 25, 2020 (EW 45 2020), with 7,677 deaths weekly. The second, the longest and most lethal, occurred between November 8, 2020 (EW 46 2020) and April 10, 2021 (EW 5 2020), which ended with the triple of deaths: 21,141 in a week. The third wave was the shortest, from December 26, 2021 (EW 52 2021) to May 21, 2022, with 6,246 deaths in total (Chart).

Chart
Characteristics of the three epidemiological waves of Covid-19, determined by the number of deaths. Brazil, 2020–2022.

The first wave peaked in mortality at the epidemiological week 30 of 2020, the second wave at the EW 14 of 2021, and the third in the EW six of 2022. The peaks of the waves occurred at different epidemiological weeks in the five Brazilian regions (Figure 1). The first two cases, recorded in the EW nine of 2020, occurred in the Southeast region. The evolution of the pandemic differed according to the region of the country: initially progressing in the North region, with a peak of cases during the first wave in the epidemiological week 26 of 2020, followed by the Northeast (EW 27), Midwest (EW 32), Southeast (EW 33) and, finally, the Southern (EW 36) region (Figure 1). The second wave intensified first and was more prominent in the South region, reaching more than 50 cases per 10,000 inhabitants. The third wave abruptly increased hitting all regions, with the highest rate in the South (111 cases per 10,000 inhabitants), and almost 50,000 reported cases in a single day.

Figure 1
Morbidity (cases per 10,000 inhabitants) and mortality rates (deaths per 100,000 inhabitants) due to Covid-19, according to epidemiological week, country and geographic region. Brazil, 2020–2022.

Regarding mortality rates due to Covid-19 (Figure 1), the second among the three waves had the highest peak in all regions. At that time, the country had more than 15,000 deaths per week for eight weeks in a row. The North region stands out with earlier peaks in the first and second waves, followed by the Northeast and Southeast regions and, finally, the South and Midwest regions. The lowest rates occurred during the third wave, and the Southeast region had the highest mortality rates.

Figure 2 shows lower number of deaths with the increase in immunization against Covid-19, in the country in general and in all regions individually during the year 2021, but with a new increase in the first weeks of 2022. This scenario coincides with the increase in the number of cases (Figure 3), whose peak occurred in the epidemiological week six of 2022, regardless of vaccination coverage. Although the vaccination initiated concomitantly in all regions, its evolution was distinct, advancing faster in the Southeast and South Regions, in which the Southeast Region reached coverage of 50% around the EW 38 of 2021 and the Northern Region only in the EW 38, and by the end of this study it was almost 40% higher in the Southeast region than in the North region, achieving coverage of 83 and 60%, respectively.

Figure 2
Mortality rates (deaths per 100,000 inhabitants) due to Covid-19 and vaccination coverage (%) against Covid-19, according to epidemiological week, country and geographic region. Brazil, 2020–2022.
Figura 3
Morbidity rates (cases per 10,000 inhabitants) due to Covid-19 and vaccination coverage (%) against Covid-19, per epidemiological week, depending on the country and geographic region. Brazil, 2020–2022.

Since the start of the pandemic, 148,839 genomes have been sequenced, slowly at first, then mainly increasing from March 2021 (start of the second wave), with a higher amount in January 2022 (peak of the third wave) (Figure 4). We observed that, in 2020, practically no tests were made for the identification of strains, a period in which the Alpha variant is identified on a very small scale; in the second wave, the predominant variant was Gamma and then, Omicron. The Beta variant was not detected in Brazil. Regarding Covid-19 morbidity, the Omicron variant stands out, as for the mortality, the Gamma variant stands out.

Figure 4
Distribution (number) of sequenced genomes, second month of collection and type of variant, morbidity rates (cases per 10,000 inhabitants) and mortality rates (per 100,000 inhabitants) due to Covid-19, Brazil, 2020–2022.

DISCUSSION

The data of the present study show the evolution of morbidity and mortality rates due to Covid-19 and vaccine coverage against coronavirus, unequal among the different regions of the country. Despite the identification of three waves, all of them present a spread of the pandemic in the Northern Region and, then, in the Northeast — socioeconomically disadvantaged regions. This condition impacts the vaccination coverage, which is slower in these regions, and in the Midwest, falling below the national average.

Accurate or even approximate data on the number of cases of Covid-19 in Brazil have several limitations, such as: the decision not to perform mass testing; the low availability of diagnostic tests (imported); the uncertain quality of some types of tests; the low sensitivity and specificity of the tests; the absence of registration in the information systems on the type of test performed (antigen or PCR)1010 Castro R, Luz PM, Wakimoto MD, Veloso VG, Grinsztejn B, Perazzo H. COVID-19: a meta-analysis of diagnostic test accuracy of commercial assays registered in Brazil. Braz J Infect Dis. 2020;24(2):180-7. https://doi.org/10.1016/j.bjid.2020.04.003
https://doi.org/10.1016/j.bjid.2020.04.0...
1212 Martinello F. Acurácia diagnóstica dos métodos sorológicos de detecção da COVID-19. Rev Bras Anal Clin. 2021;53(2):155-62. https://doi.org/10.21877/2448-3877.202100966
https://doi.org/10.21877/2448-3877.20210...
, especially during the first months of the pandemic.

Since January 28, 2022, the Brazilian Health Regulatory Agency (Anvisa) authorized the registration, distribution and commercialization of self-tests for antigen detection of SARS-CoV-21313 Ministério da Saúde (BR), Agência Nacional de Vigilância Sanitária. Resolução RDC N° 595, de 28 de janeiro de 2022. Dispõe sobre os requisitos e procedimentos para a solicitação de registro, distribuição, comercialização e utilização de dispositivos médicos para diagnóstico in vitro como autoteste para detecção de antígeno do SARS-CoV-2, em consonância ao Plano Nacional de Expansão da Testagem para Covid-19 (PNE-Teste), e dá outras providências. Diário Oficial da União. 28 jan 2022 [cited 2022 Jun 8]; Seção 1-Extra A:1 Available from: https://www.in.gov.br/web/dou/-/resolucao-rdc-n-595-de-28-de-janeiro-de-2022-376825970
https://www.in.gov.br/web/dou/-/resoluca...
. Thereafter, anyone could acquire and perform their own test. However, among the tests for detecting antibodies approved in Brazil for commercialization, sensitivity range levels are low to moderate, which can generate difficulty in diagnosing infected people1010 Castro R, Luz PM, Wakimoto MD, Veloso VG, Grinsztejn B, Perazzo H. COVID-19: a meta-analysis of diagnostic test accuracy of commercial assays registered in Brazil. Braz J Infect Dis. 2020;24(2):180-7. https://doi.org/10.1016/j.bjid.2020.04.003
https://doi.org/10.1016/j.bjid.2020.04.0...
. Self-tests are available in pharmacies, however, patients are not obligated to report positive self-tests for epidemiological surveillance, only guidance to seek medical attention is required if the result is positive1414 Ministério da Saúde (BR), Agência Nacional de Vigilância Sanitária. Perguntas frequentes: Autoteste Covid-19. Brasília, DF: Anvisa; 2022 [cited 2022 Jun 8]. Available from: https://www.gov.br/anvisa/pt-br/assuntos/noticias-anvisa/2022/anvisa-regulamenta-a-utilizacao-de-autotestes-para-covid-19/PerguntasfrequentesAutotestesCovid.pdf
https://www.gov.br/anvisa/pt-br/assuntos...
. In mild to moderate cases of Covid-19, many people are unlikely to seek medical care, therefore, official systems of records cannot identify them. Thus, data on the number of cases for Covid-19 became even more fragile.

The absence of genomic sequencing in the first year of the pandemic, with insufficient testing, did not cover 0.5% of the reported number of Covid-19 cases. Since no sampling process could represent the different population groups, the samples for sequencing do not reflect the national reality, acting exclusively as markers (proxy) for the identification of the dominant variants during this period.

Hospital care was in high demand, especially in the second wave when health services were overloaded, starting with the collapse in the city of Manaus1515 Sabino EC, Buss LF, Carvalho MPS, Prete Jr CA, Crispim MAE, Fraiji NA, et al. Resurgence of COVID-19 in Manaus, Brazil, despite high seroprevalence. Lancet. 2021;97(10273):452-5. https://doi.org/10.1016/S0140-6736(21)00183-5
https://doi.org/10.1016/S0140-6736(21)00...
,1616 Barreto ICHC, Costa Filho RV, Ramos RF, Oliveira LG, Martins NRAV, Cavalcaanti FV, et al. Colapso na saúde em Manaus: o fardo de não aderir às medidas não farmacológicas de redução da transmissão da Covid-19. Saude Debate. 2021;45(131):1126-39. https://doi.org/10.1590/0103-1104202113114I
https://doi.org/10.1590/0103-11042021131...
. Data from the Influenza Epidemiological Surveillance Information System (SIVEP-Gripe)1717 Ministério da Saúde (BR). SIVEP/ SRAG 2020 - Banco de Dados de Síndrome Respiratória Aguda Grave - incluindo dados da COVID-19. Brasília, DF: 2020 [cited 2022 Jun 23]. Available from: https://opendatasus.saude.gov.br/dataset/srag-2020
https://opendatasus.saude.gov.br/dataset...
,1818 Ministério da Saúde (BR). SRAG 2021 e 2022. Banco de dados de Síndrome Respiratória Aguda Grave – incluindo dados da COVID-19. Brasília, DF; 2021-2022 [cited 2022 Jun 11]. Available from: https://opendatasus.saude.gov.br/dataset/srag-2021-e-2022/resource/9f0edb83-f8c2-4b53-99c1-099425ab634c
https://opendatasus.saude.gov.br/dataset...
show the highest hospital demand in the second wave, coinciding with high mortality. On the other hand, the low demand for hospitals in the third wave coincided with high vaccination coverage and the emergence of the less lethal variant — Omicron, when most cases were reported and assisted by primary and secondary care services.

The use of daily and up-to-date information on deaths enables an immediate response to the health needs imposed by the pandemic. However, the data provided by the Ministry of Health are synthesized, allowing the recording of the occurrence in a municipality different from the original, whose value is corrected in the epidemiological week a posteriori. Thus, the maintenance of two entries, one negative, does not give security regarding the number of occurrences of each municipality per week, also generating inaccuracy in the values per unit of the federation and region. On the other hand, the pandemic demanded speed in the information, which required immediate transparency of the data, although incomplete, but also exposes the unpreparedness regarding the quality of the information, showing mostly the need for improvement in the accuracy of the occurrence record and minimum completeness of variables such as gender, age group and municipality of residence. The pandemic also showed the possibility of implementing an agile system in a territory as large and heterogeneous as Brazil, alerting the urgency of human resources training and development of its own system for recording these data, even in the most distant locations.

Another limitation refers to the use of the 2020 population estimate, based on the 2010 census. The census in Brazil occurs every 10 years, but due to the pandemic, it did not occur in 2020. The pandemic also warns for the need of precise and safe alternatives for population counting that can be done remotely, such as several virtual visits, which surfaced during this period. However, to carry out the full census as soon as possible is urgent.

Comparing to the Mortality Information System1919 Ministério da Saúde (BR), DATASUS. SIM -- Sistema de Informações sobre Mortalidade. Brasília, DF; 2022 [cited 2022 Jun 10]. Available from: https://dados.gov.br/dataset/sistema-de-informacao-sobre-mortalidade
https://dados.gov.br/dataset/sistema-de-...
, considered the gold standard2020 Morais RM, Costa AL. Uma avaliação do Sistema de Informações sobre Mortalidade. Saude Debate. 2017;41 N° Espec:101-17. https://doi.org/10.1590/0103-11042017S09
https://doi.org/10.1590/0103-11042017S09...
, the terms of the death's registration in the Coronavirus Panel of the Brazilian Ministry of Health was delayed several weeks. Deaths due to Covid-19 started in the EW one of 2020 but were only recorded in the Panel from the EW 12, in greater number in relation to population density in the Northeast, a situation that repeated in the second wave of deaths, with higher values in the Southeast region, the most densely populated. The need to adapt health services in the first wave and high number of deaths in the second can explain these occurrences.

Moreover, the appearance of a new more lethal variant (Delta) in 20212121 Michelon C. Principais variantes do SARS-CoV-2 notificadas no Brasil. Rev Bras Anal Clin. 2021 [cited 2022 May 7];53(2):109-6. Available from: https://www.rbac.org.br/artigos/principais-variantes-do-sars-cov-2-notificadas-no-brasil/
https://www.rbac.org.br/artigos/principa...
, may explain the sudden evolution of deaths in the second wave, contained by the beginning of immunization, which, although increasing, was scarce to prevent the high mortality rates in the second wave. The progressive increase in vaccination coverage in 2021 and 2022 was also unable to stop the occurrence and dispersion of cases of the Omicron variant, with high transmission power but lower lethality, reaching mostly the South region.

As other viruses, SARS-CoV-2 is also subject to mutations, by alteration in molecular structure, during the replication process. The first variant of concern (VOC) identified was Alpha (Alpha – B.1.1.7) in England; followed by Beta (Beta – B.1.351) in South Africa; Gamma (Gamma – P.1) in Brazil; Delta (Delta – B.1.617.2) in India and Omicron (Omicron – B.1.1.529) in Africa2222 Organização Pan-Americana da Saúde. Folha informativa sobre COVID-19. Washington, DC: OPAS; s.d. [cited 2022 May 7]. Available from: https://www.paho.org/pt/covid19.
https://www.paho.org/pt/covid19...
. Mutations can make the virus more infectious, facilitating its entry into cells, or more transmissible, by increasing circulation, as in the case of Omicron, which quickly became the dominant variant worldwide2323 Freitas ARR, Giovanetti M, Alcantara LCJ. Emerging variants of SARS-CoV-2 and its public health implications. Interam J Med Health. 2021;4. https://doi.org/10.31005/iajmh.v4i.181
https://doi.org/10.31005/iajmh.v4i.181...
,2424 Dai L, Gao GF. Viral targets for vaccines against COVID-19. Nat Rev Immunol. 2021;21(2):73-82. https://doi.org/10.1038/s41577-020-00480-0
https://doi.org/10.1038/s41577-020-00480...
.

The mutation process also explains the reinfection of the disease and the drop in immunity, observed after a few months of the application of the primary vaccination schedule or the booster dose. This process contributes to the reduction of the vaccines effectiveness against infection and the decrease in sensitivity to diagnostic tests, which reinforces, from the clinical and epidemiological point of view, the need to maintain non-pharmacological measures and accelerate immunization, to reduce the circulation of the virus and the emergence of new mutations2525 Naveca F, Costa C, Nascimento V, Souza V, Corado A, Nascimento F, et al. SARS- CoV-2 reinfection by the new Variant of Concern (VOC) P.1 in Amazonas, Brazil. nCoV-2019 Genomic Epidemiology. Jan 2021 [cited 2022 Jun 11]. Available from: https://virological.org/t/sars-cov-2-reinfection-by-the-new-variant-of-concern-voc-p-1-in-amazonas-brazil/596
https://virological.org/t/sars-cov-2-rei...
. Reinfection may justify the pattern of morbidity and mortality during the third wave in this study. According to a survey conducted by the government of São Paulo, whose population has complete vaccination coverage of 88.5%, the Omicron variant caused an explosion of cases, but not deaths, in early 2022. The notification went from an average of 2,000 cases of Covid-19 daily to a peak of 14,542. However, in the same period (December 5, 2021 to February 26, 2022) the number of deaths due to Covid-19 among unvaccinated people was 26 times higher than fully immunized, showed the survey2626 Bergamo M. Sem vacina, Covid mata 26 vezes mais: levantamento do governo paulista, entre dezembro e fevereiro de 2022. Folha de São Paulo. 14 mar 2022. [cited 2022 Jun 11]. Available from: https://www1.folha.uol.com.br/colunas/monicabergamo/2022/03/mortes-por-covid-entre-nao-vacinados-em-sp-e-26-vezes-maior-do-que-naqueles-ja-imunizados.shtml
https://www1.folha.uol.com.br/colunas/mo...
. According to the Health Secretariat, in the Federal District 72% of deaths in the third wave were of unvaccinated people or those with an incomplete vaccination schedule. Complete vaccination coverage in the Federal District is 84.7%. Among the number of deaths, 85% of the people had comorbidities and the mean age was 80 years2727 Secretaria da Saúde do Distrito Federal. Covid-19: 72% das mortes em 2022 no DF, foram de pessoas não vacinadas ou com esquema incompleto. G1/DF. 27 abril 2022 [cited 2022 Jun 11]. Available from: https://g1.globo.com/df/distrito-federal/noticia/2022/04/27/covid-19-das-440-mortes-em-2022-no-df-72percent-foram-de-pessoas-nao-vacinadas-ou-com-esquema-incompleto-diz-saude.ghtml
https://g1.globo.com/df/distrito-federal...
.

The evolution of Covid-19 in three waves corroborates the trends observed in Europe, the Americas and Asia2828 World Health Organization. WHO Coronavirus (COVID-19) Dashboard. Geneva (CH): WHO; 2022 [cited 2022 Jun 11]. Available from: https://covid19.who.int/
https://covid19.who.int/...
.

The results of the present study confirm the difficulties that Brazil experienced against Covid-19. The speed with which the disease spread prevented the timely use of scientific evidence in support of government decisions1616 Barreto ICHC, Costa Filho RV, Ramos RF, Oliveira LG, Martins NRAV, Cavalcaanti FV, et al. Colapso na saúde em Manaus: o fardo de não aderir às medidas não farmacológicas de redução da transmissão da Covid-19. Saude Debate. 2021;45(131):1126-39. https://doi.org/10.1590/0103-1104202113114I
https://doi.org/10.1590/0103-11042021131...
,2929 Libote GB, Anjos L, Almeida RCC, Malta SMC, Medronho RA. Impacts of a delayed and slow-paced vaccination on cases and deaths during the COVID-19 pandemic: a modelling study. J R Soc Interface. 2022;19(190):20220275. https://doi.org/10.1098/rsif.2022.0275
https://doi.org/10.1098/rsif.2022.0275...
. Proposals to control the pandemic and treat the disease, without scientific support, such as the use of antibiotics, antiparasitic drugs and others, stood on the way, but then vaccines began to be tested, showing a reduction in the risk of moderate and severe complications. The beginning of vaccination was slow, with low coverage of the population at risk and amid false news about the benefit of immunization and unfounded side effects, combined with low acceptance of non-pharmacological protective measures, such as social isolation and mask use1616 Barreto ICHC, Costa Filho RV, Ramos RF, Oliveira LG, Martins NRAV, Cavalcaanti FV, et al. Colapso na saúde em Manaus: o fardo de não aderir às medidas não farmacológicas de redução da transmissão da Covid-19. Saude Debate. 2021;45(131):1126-39. https://doi.org/10.1590/0103-1104202113114I
https://doi.org/10.1590/0103-11042021131...
.

In addition to the overload of the health system and the lack of essential inputs, such as oxygen, starting in the state of Amazonas1515 Sabino EC, Buss LF, Carvalho MPS, Prete Jr CA, Crispim MAE, Fraiji NA, et al. Resurgence of COVID-19 in Manaus, Brazil, despite high seroprevalence. Lancet. 2021;97(10273):452-5. https://doi.org/10.1016/S0140-6736(21)00183-5
https://doi.org/10.1016/S0140-6736(21)00...
,1616 Barreto ICHC, Costa Filho RV, Ramos RF, Oliveira LG, Martins NRAV, Cavalcaanti FV, et al. Colapso na saúde em Manaus: o fardo de não aderir às medidas não farmacológicas de redução da transmissão da Covid-19. Saude Debate. 2021;45(131):1126-39. https://doi.org/10.1590/0103-1104202113114I
https://doi.org/10.1590/0103-11042021131...
and spreading rapidly throughout the rest of the country, the differentiated distribution of scarce resources made the pandemic situation even harder.

We emphasize the role of the three spheres of government in health care, concomitant with other public policies of social security and ensuring universal, full and non-discriminatory access, based on personal autonomy, the right to scientifically proven information and social control. Thus, the responsibility of the SUS, in addition to ensuring community management and epidemiology as a management tool, must ensure political-administrative decentralization with a single direction in each governmental sphere. The leadership of municipal and state public administrators in combating the Covid-19, demonstrated the construction of their own strategies to deal with the effects of the pandemic on their populations, which explains part of the regional differences.

In addition to the strengthening of local managers, leaders in their territories, the fact that articulation between the three spheres of management of the SUS could have reduced the direct and indirect effects of the pandemic on the Brazilian population stays as a lesson.

  • Funding: Public call MCTI/CNPq/CT-Saúde/MS/SCTIE/Decit No. 07/2020.

REFERENCES

Publication Dates

  • Publication in this collection
    09 Dec 2022
  • Date of issue
    2022

History

  • Received
    15 June 2022
  • Accepted
    23 June 2022
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