Literature DB >> 32233753

Coronavirus Disease 2019 (COVID-19): Do Angiotensin-Converting Enzyme Inhibitors/Angiotensin Receptor Blockers Have a Biphasic Effect?

Rami Sommerstein1, Michael M Kochen2, Franz H Messerli3,4,5, Christoph Gräni3.   

Abstract

Entities:  

Keywords:  ACE2; angiotensin II receptor blocker; angiotensin‐converting enzyme inhibitor; coronavirus disease 2019; epidemiology; infectious diseases

Mesh:

Substances:

Year:  2020        PMID: 32233753      PMCID: PMC7428596          DOI: 10.1161/JAHA.120.016509

Source DB:  PubMed          Journal:  J Am Heart Assoc        ISSN: 2047-9980            Impact factor:   5.501


× No keyword cloud information.
Coronavirus disease 2019 (COVID‐19) is a pandemic viral disease with its origin in Wuhan, China, in December 2019.1 As of March 20, 2020, 244 602 patients have tested positive worldwide; and 10 031 (4.1%) of these patients were reported to be deceased because of COVID‐19.2 According to the Chinese Center for Disease Control and Prevention, as of February 11, 2020 with 44 672 confirmed patients, several comorbidities, including cardiovascular diseases and diabetes mellitus, seem to be involved in COVID‐19 patients with a severe course.3 In this largest analysis, 10.5% of fatal cases occurred in patients with cardiovascular disease and 6% in patients with arterial hypertension.3 It is unclear whether these comorbidities contribute to the higher risk. See Article by Guo et al. Most patients with cardiovascular comorbidities qualify for angiotensin‐converting enzyme inhibitor (ACEI) or angiotensin II receptor blocker (ARB) therapy.4 Of note, Severe acute respiratory syndrome coronavirus 2 (SARS‐CoV‐2 uses the receptor angiotensin‐converting enzyme (ACE) 2 for entry into target cells.5 Ferrario et al reported that both ACEI and ARB could significantly increase mRNA expression of cardiac ACE2.6 On the basis of these thoughts, we recently generated the hypothesis that these drugs might play a role in the severe course of COVID‐19 cases. More importantly, no clinical‐epidemiological data have been put forward and it is unknown whether the hypothesized mechanism plays a pivotal role in COVID‐19. The lay press picked up the theory, causing concern and even anxiety among patients and their healthcare providers. Because of the lack of current evidence of a potential negative impact of these medications on COVID‐19, we currently support the position statement of the European and American Societies of Cardiology, who express that ACEIs and ARBs are safe and should be continued and prescribed according to established guidelines. ,

High Mortality in COVID‐19: caused by Pre‐existing Cardiovascular Disease, ACEI/ARBs Medication, or Both?

A recently published single‐center study on 99 hospitalized patients in China showed that 40% of the cohort had cardiovascular or cerebrovascular disease and 12% had diabetes mellitus. In another Chinese report from 138 hospitalized COVID‐19 patients, 31% had hypertension, 10% had diabetes mellitus, and 14.5% had cardiovascular disease, being the 3 most common comorbidities. In the latter study, 36 of the 138 patients needed intensive care unit stays, and 58.3% of all intensive care unit patients were reported to have hypertension and 22.1% were reported to have diabetes mellitus. Beyond these studies, Zhou et al have recently published a study on the risk factors for adult inpatients who die from COVID‐19. Notably, of 58 patients with arterial hypertension, 26 (45%) died. This number was significantly higher than the 54 of 191 (28%) from the entire case series. Even more impressive was the fact that 13 of 15 (87%) of the patients with coronary heart disease died, as well as 17 of 36 (47%) with diabetes mellitus. Unfortunately, in our opinion, no studies have been published to date that make an adequate adjustment of cardiovascular risk factors for important covariates. An overview of previous data with adjustment is shown in the Table.
Table 1

Overview of Current Studies With Adjusted COVID‐19 Outcome Analysis for Cardiovascular Risk Factors

ArticleStudy PopulationCardiovascular Risk FactorAssociation of Risk Factor With Fatal OutcomeAdjusted Association With Fatal OutcomeAdjusted forComment
Zhou et al, Lancet 12 n=191Coronary heart disease2/137 (Survivor) vs 13/54 (non‐survivor), OR 21.4 (95% CI, 4.6–98.8, P<0.001OR, 2.14 (95% CI, 0.26–17.8; P=0.48)Lymphocyte count, d‐dimer, Sequential Organ Failure Assessment (SOFA) score, ageSample size too small for meaningful adjustment
Caramelo et al, medRxiv 13 Simulation, based on Chinese Center for Disease Control and Prevention (CCDC) report3 HypertensionNot availableOR, 7.41 (95% CI, 6.33–8.80)Age, sexResults obtained by Monte‐Carlo simulation, not peer reviewed

ccdc indicates Chinese Center for Disease Control and Prevention; COVID‐19 indicates coronavirus disease 2019; sofa: Sequential Organ Failure Assessment; and OR, odds ratio.

Overview of Current Studies With Adjusted COVID‐19 Outcome Analysis for Cardiovascular Risk Factors ccdc indicates Chinese Center for Disease Control and Prevention; COVID‐19 indicates coronavirus disease 2019; sofa: Sequential Organ Failure Assessment; and OR, odds ratio. According to the latest analysis of the National Health and Nutrition Examination Survey ACEIs/ARBs are the most prevalent antihypertensive medication among all drug classes. Unfortunately, the European Centre for Disease Prevention and Control does not record any previous drugs in its data collection on COVID‐19 patients. Until now, no data are available about the association between previous drug intake and severity of COVID‐19 pulmonary outcome. This brings up 4 key questions: Are these cardiovascular comorbidities simply confounders (as they occur frequently with higher age and have been shown to predispose to worse outcome with influenza type A H1N1 infection)? Is there is a link between the comorbidities and SARS‐CoV‐2 (ie, are patients with heart failure at a higher risk of pulmonary outcome)? Does the comorbidities‐associated intake of some drug classes improve or worsen infectivity or the course of COVID‐19? If, (and this is a big if), renin‐angiotensin system blockade emerges in one way or another as a possible mediator, are there difference between ACEIs and ARBs? In this issue of the Journal of the American Heart Association (JAHA), Guo et al point out 2 important issues: On the one hand, the possible overregulation of ACE2 leads to an increased risk of infection of the pulmonary (and possibly other) tissues. On the other hand, there is evidence that there exist both cardio protective and pulmonary‐protective activity of ACE2. Which is the case? Several demographic characteristics are associated with increased ACE2 expression, such as older age and male sex. , , In animal studies, ACEIs and ARBs have been shown in rodents to increase the expression of ACE2 mRNA in different organs and tissues, including heart, kidney, and the aorta. , , In a study with healthy humans treated with ACEIs and controls, the mean duodenal mRNA expression level of ACE2 was increased 1.9‐fold when compared with nontreated controls. However, no significant differences in expression levels were observed in patients treated with ARBs. Beside age and sex, arterial hypertension and diabetes mellitus may upregulate ACE2. , , On the contrary, it seems that once infection and acute respiratory distress syndrome ensue, a downregulation of ACE2 occurs. The counterregulatory enzyme ACE2 that degrades angiotensin II to angiotensin , , , , , , has been shown to be beneficial in acute respiratory distress syndrome when replaced, and may offer a novel treatment option. , Similarly, in animal studies, ACEIs/ARBs have been shown to upregulate ACE2 activity; thereby, they may possibly be favorable once patients are infected with COVID‐19. , At present, we cannot rule out that long‐term intake of ACEIs and/or ARBs may facilitate SARS‐CoV‐2 entry and virus replication. Conversely, it is yet unknown whether intake of ACEIs and/or ARBs, when infected, is beneficial with regard to pulmonary outcome. Possibly, we are dealing here with a double‐edged sword, depending on the phase of the disease: increased baseline ACE2 expression could potentially increase infectivity and ACEI/ARB use would be an addressable risk factor. Conversely, once infected, downregulation of ACE2 may be the hallmark of COVID‐19 progression. Consequently, upregulation by preferentially using renin‐angiotensin system blockade and ACE2 replacement in the acute respiratory syndrome phase may turn out to be beneficial. Regardless of these deliberations, we would like to emphasize that many older patients are on renin‐angiotensin system blockade because of latent or manifest left ventricular dysfunction and that discontinuation of these drugs may exacerbate frank heart failure. There is little doubt that heart failure is prone to have an unfavorable effect on pulmonary outcome in the course of COVID‐19. In conclusion, cardiovascular diseases and/or their therapy, by affecting ACE2 levels, may play a pivotal role with regard to infectivity and outcome of COVID‐19. Whether treatment or disease induced upregulation of ACE2 influences the course of COVID‐19 urgently needs to be determined.

Disclosures

None.
  21 in total

1.  ACE and ACE2: their role to balance the expression of angiotensin II and angiotensin-(1-7).

Authors:  M C Chappel; C M Ferrario
Journal:  Kidney Int       Date:  2006-07       Impact factor: 10.612

2.  Angiotensin II AT1 receptors regulate ACE2 and angiotensin-(1-7) expression in the aorta of spontaneously hypertensive rats.

Authors:  Michiya Igase; William B Strawn; Patricia E Gallagher; Randolph L Geary; Carlos M Ferrario
Journal:  Am J Physiol Heart Circ Physiol       Date:  2005-04-15       Impact factor: 4.733

Review 3.  The ANG-(1-7)/ACE2/mas axis in the regulation of nephron function.

Authors:  Carlos M Ferrario; Jasmina Varagic
Journal:  Am J Physiol Renal Physiol       Date:  2010-04-07

4.  Angiotensin converting enzyme 2 activity and human atrial fibrillation: increased plasma angiotensin converting enzyme 2 activity is associated with atrial fibrillation and more advanced left atrial structural remodelling.

Authors:  Tomos E Walters; Jonathan M Kalman; Sheila K Patel; Megan Mearns; Elena Velkoska; Louise M Burrell
Journal:  Europace       Date:  2017-08-01       Impact factor: 5.214

5.  New perspectives in the renin-angiotensin-aldosterone system (RAAS) IV: circulating ACE2 as a biomarker of systolic dysfunction in human hypertension and heart failure.

Authors:  Katalin Úri; Miklós Fagyas; Ivetta Mányiné Siket; Attila Kertész; Zoltán Csanádi; Gábor Sándorfi; Marcell Clemens; Roland Fedor; Zoltán Papp; István Édes; Attila Tóth; Erzsébet Lizanecz
Journal:  PLoS One       Date:  2014-04-01       Impact factor: 3.240

6.  Angiotensin-converting enzyme 2 inhibits lung injury induced by respiratory syncytial virus.

Authors:  Hongjing Gu; Zhengde Xie; Tieling Li; Shaogeng Zhang; Chengcai Lai; Ping Zhu; Keyu Wang; Lina Han; Yueqiang Duan; Zhongpeng Zhao; Xiaolan Yang; Li Xing; Peirui Zhang; Zhouhai Wang; Ruisheng Li; Jane J Yu; Xiliang Wang; Penghui Yang
Journal:  Sci Rep       Date:  2016-01-27       Impact factor: 4.379

7.  A Novel Coronavirus from Patients with Pneumonia in China, 2019.

Authors:  Na Zhu; Dingyu Zhang; Wenling Wang; Xingwang Li; Bo Yang; Jingdong Song; Xiang Zhao; Baoying Huang; Weifeng Shi; Roujian Lu; Peihua Niu; Faxian Zhan; Xuejun Ma; Dayan Wang; Wenbo Xu; Guizhen Wu; George F Gao; Wenjie Tan
Journal:  N Engl J Med       Date:  2020-01-24       Impact factor: 91.245

8.  An interactive web-based dashboard to track COVID-19 in real time.

Authors:  Ensheng Dong; Hongru Du; Lauren Gardner
Journal:  Lancet Infect Dis       Date:  2020-02-19       Impact factor: 25.071

9.  Clinical course and risk factors for mortality of adult inpatients with COVID-19 in Wuhan, China: a retrospective cohort study.

Authors:  Fei Zhou; Ting Yu; Ronghui Du; Guohui Fan; Ying Liu; Zhibo Liu; Jie Xiang; Yeming Wang; Bin Song; Xiaoying Gu; Lulu Guan; Yuan Wei; Hui Li; Xudong Wu; Jiuyang Xu; Shengjin Tu; Yi Zhang; Hua Chen; Bin Cao
Journal:  Lancet       Date:  2020-03-11       Impact factor: 79.321

10.  Coronavirus Disease 2019 (COVID-19): Do Angiotensin-Converting Enzyme Inhibitors/Angiotensin Receptor Blockers Have a Biphasic Effect?

Authors:  Rami Sommerstein; Michael M Kochen; Franz H Messerli; Christoph Gräni
Journal:  J Am Heart Assoc       Date:  2020-04-01       Impact factor: 5.501

View more
  94 in total

1.  Presenting Characteristics, Comorbidities, and Outcomes Among 5700 Patients Hospitalized With COVID-19 in the New York City Area.

Authors:  Safiya Richardson; Jamie S Hirsch; Mangala Narasimhan; James M Crawford; Thomas McGinn; Karina W Davidson; Douglas P Barnaby; Lance B Becker; John D Chelico; Stuart L Cohen; Jennifer Cookingham; Kevin Coppa; Michael A Diefenbach; Andrew J Dominello; Joan Duer-Hefele; Louise Falzon; Jordan Gitlin; Negin Hajizadeh; Tiffany G Harvin; David A Hirschwerk; Eun Ji Kim; Zachary M Kozel; Lyndonna M Marrast; Jazmin N Mogavero; Gabrielle A Osorio; Michael Qiu; Theodoros P Zanos
Journal:  JAMA       Date:  2020-05-26       Impact factor: 56.272

2.  Rigor before speculation in COVID-19 therapy.

Authors:  Paul A Welling; Daniel Batlle; James Brian Byrd; Louise M Burrell; Andrew M South; Matthew A Sparks
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2020-05-01       Impact factor: 5.464

3.  Coronavirus disease 2019 in Saudi Arabia: A nationwide real-world characterization study.

Authors:  Khalidah A Alenzi; Wafi F Albalawi; Tahani S Alanazi; Najah S Alanazi; Deemah S Alsuhaibani; Nouf Almuwallad; Thamir M Alshammari
Journal:  Saudi Pharm J       Date:  2022-02-25       Impact factor: 4.562

4.  Association of Angiotensin-Converting Enzyme Inhibitor or Angiotensin Receptor Blocker Use With COVID-19 Diagnosis and Mortality.

Authors:  Emil L Fosbøl; Jawad H Butt; Lauge Østergaard; Charlotte Andersson; Christian Selmer; Kristian Kragholm; Morten Schou; Matthew Phelps; Gunnar H Gislason; Thomas A Gerds; Christian Torp-Pedersen; Lars Køber
Journal:  JAMA       Date:  2020-07-14       Impact factor: 56.272

5.  Acute kidney injury in hospitalized patients with COVID-19: A Portuguese cohort.

Authors:  Joana Gameiro; José Agapito Fonseca; João Oliveira; Filipe Marques; João Bernardo; Claudia Costa; Carolina Carreiro; Sandra Braz; José António Lopes
Journal:  Nefrologia       Date:  2021-05-14       Impact factor: 2.033

Review 6.  Approach to Acute Cardiovascular Complications in COVID-19 Infection.

Authors:  Lauren S Ranard; Justin A Fried; Marwah Abdalla; D Edmund Anstey; Raymond C Givens; Deepa Kumaraiah; Susheel K Kodali; Koji Takeda; Dimitrios Karmpaliotis; LeRoy E Rabbani; Gabriel Sayer; Ajay J Kirtane; Martin B Leon; Allan Schwartz; Nir Uriel; Amirali Masoumi
Journal:  Circ Heart Fail       Date:  2020-06-05       Impact factor: 8.790

7.  Network-Based Analysis of Fatal Comorbidities of COVID-19 and Potential Therapeutics.

Authors:  Broto Chakrabarty; Dibyajyoti Das; Gopalakrishnan Bulusu; Arijit Roy
Journal:  IEEE/ACM Trans Comput Biol Bioinform       Date:  2021-08-06       Impact factor: 3.702

8.  Evaluation of the Prognosis of COVID-19 Patients According to the Presence of Underlying Diseases and Drug Treatment.

Authors:  Ejin Kim; Yong Chul Kim; Jae Yoon Park; Jiyun Jung; Jung Pyo Lee; Ho Kim
Journal:  Int J Environ Res Public Health       Date:  2021-05-17       Impact factor: 3.390

Review 9.  Factors Behind the Higher COVID-19 Risk in Diabetes: A Critical Review.

Authors:  Amany Magdy Beshbishy; Victor B Oti; Diaa E Hussein; Ibrahim F Rehan; Oluyomi S Adeyemi; Nallely Rivero-Perez; Adrian Zaragoza-Bastida; Muhammad Ajmal Shah; Khaled Abouelezz; Helal F Hetta; Natália Cruz-Martins; Gaber El-Saber Batiha
Journal:  Front Public Health       Date:  2021-07-07

10.  Clinical Features of COVID-19 Patients in Jordan: A Study of 508 Patients.

Authors:  Mahmoud Al-Balas; Hasan I Al-Balas; Rami Alqassieh; Hamzeh Al-Balas; Almu'atasim Khamees; Rahaf Al-Balas; Samir Al-Balas
Journal:  Open Respir Med J       Date:  2021-06-18
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.