Proprotein convertase subtilisn/kexin type 9 inhibitors and small interfering RNA therapy for cardiovascular risk reduction: A systematic review and meta-analysis.


Journal

PloS one
ISSN: 1932-6203
Titre abrégé: PLoS One
Pays: United States
ID NLM: 101285081

Informations de publication

Date de publication:
2023
Historique:
received: 25 07 2023
accepted: 17 11 2023
medline: 11 12 2023
pubmed: 6 12 2023
entrez: 6 12 2023
Statut: epublish

Résumé

Atherosclerotic cardiovascular disease (ASCVD) is the leading cause of mortality worldwide. Atherosclerosis occurs due to accumulation of low-density lipoprotein cholesterol (LDL-c) in the arterial system. Thus, lipid lowering therapy is essential for both primary and secondary prevention. Proprotein convertase subtilisn/kexin type 9 (PCSK9) inhibitors (Evolocumab, Alirocumab) and small interfering RNA (siRNA) therapy (Inclisiran) have been demonstrated to lower LDL-c and ASCVD events in conjunction with maximally tolerated statin therapy. However, the degree of LDL-c reduction and the impact on reducing major adverse cardiac events, including their impact on mortality, remains unclear. The purpose of this study is to examine the effects of PCSK9 inhibitors and small interfering RNA (siRNA) therapy on LDL-c reduction and major adverse cardiac events (MACE) and mortality by conducting a meta-analysis of randomized controlled trials. Using Pubmed, Embase, Cochrane Library and clinicaltrials.gov until April 2023, we extracted randomized controlled trials (RCTs) of PCSK9 inhibitors (Evolocumab, Alirocumab) and siRNA therapy (Inclisiran) for lipid lowering and risk of MACE. Using random-effects models, we pooled the relative risks and 95% CIs and weighted least-squares mean difference in LDL-c levels. We estimated odds ratios with 95% CIs among MACE subtypes and all-cause mortality. Fixed-effect model was used, and heterogeneity was assessed using the I2 statistic. In all, 54 studies with 87,669 participants (142,262 person-years) met criteria for inclusion. LDL-c percent change was reported in 47 studies (n = 62,634) evaluating two PCSK9 inhibitors and siRNA therapy. Of those, 21 studies (n = 41,361) included treatment with Evolocumab (140mg), 22 (n = 11,751) included Alirocumab (75mg), and 4 studies (n = 9,522) included Inclisiran (284mg and 300mg). Compared with placebo, after a median of 24 weeks (IQR 12-52), Evolocumab reduced LDL-c by -61.09% (95% CI: -64.81, -57.38, p<0.01) and Alirocumab reduced LDL-c by -46.35% (95% CI: -51.75, -41.13, p<0.01). Inclisiran 284mg reduced LDL-c by -54.83% (95% CI: -59.04, -50.62, p = 0.05) and Inclisiran 300mg reduced LDL-c by -43.11% (95% CI: -52.42, -33.80, p = 0.01). After a median of 8 months (IQR 6-15), Evolocumab reduced the risk of myocardial infarction (MI), OR 0.72 (95% CI: 0.64, 0.81, p<0.01), coronary revascularization, 0.77 (95% CI: 0.70, 0.84, p<0.01), stroke, 0.79 (95% CI: 0.66, 0.94, p = 0.01) and overall MACE 0.85 (95% CI: 0.80, 0.89, p<0.01). Alirocumab reduced MI, 0.57 (0.38, 0.86, p = 0.01), cardiovascular mortality 0.35 (95% CI: 0.16, 0.77, p = 0.01), all-cause mortality 0.60 (95% CI: 0.43, 0.84, p<0.01), and overall MACE 0.35 (0.16, 0.77, p = 0.01). PCSK9 inhibitors (Evolocumab, Alirocumab) and siRNA therapy (Inclisiran) significantly reduced LDL-c by >40% in high-risk individuals. Additionally, both Alirocumab and Evolocumab reduced the risk of MACE, and Alirocumab reduced cardiovascular and all-cause mortality.

Sections du résumé

BACKGROUND BACKGROUND
Atherosclerotic cardiovascular disease (ASCVD) is the leading cause of mortality worldwide. Atherosclerosis occurs due to accumulation of low-density lipoprotein cholesterol (LDL-c) in the arterial system. Thus, lipid lowering therapy is essential for both primary and secondary prevention. Proprotein convertase subtilisn/kexin type 9 (PCSK9) inhibitors (Evolocumab, Alirocumab) and small interfering RNA (siRNA) therapy (Inclisiran) have been demonstrated to lower LDL-c and ASCVD events in conjunction with maximally tolerated statin therapy. However, the degree of LDL-c reduction and the impact on reducing major adverse cardiac events, including their impact on mortality, remains unclear.
OBJECTIVE OBJECTIVE
The purpose of this study is to examine the effects of PCSK9 inhibitors and small interfering RNA (siRNA) therapy on LDL-c reduction and major adverse cardiac events (MACE) and mortality by conducting a meta-analysis of randomized controlled trials.
METHODS METHODS
Using Pubmed, Embase, Cochrane Library and clinicaltrials.gov until April 2023, we extracted randomized controlled trials (RCTs) of PCSK9 inhibitors (Evolocumab, Alirocumab) and siRNA therapy (Inclisiran) for lipid lowering and risk of MACE. Using random-effects models, we pooled the relative risks and 95% CIs and weighted least-squares mean difference in LDL-c levels. We estimated odds ratios with 95% CIs among MACE subtypes and all-cause mortality. Fixed-effect model was used, and heterogeneity was assessed using the I2 statistic.
RESULTS RESULTS
In all, 54 studies with 87,669 participants (142,262 person-years) met criteria for inclusion. LDL-c percent change was reported in 47 studies (n = 62,634) evaluating two PCSK9 inhibitors and siRNA therapy. Of those, 21 studies (n = 41,361) included treatment with Evolocumab (140mg), 22 (n = 11,751) included Alirocumab (75mg), and 4 studies (n = 9,522) included Inclisiran (284mg and 300mg). Compared with placebo, after a median of 24 weeks (IQR 12-52), Evolocumab reduced LDL-c by -61.09% (95% CI: -64.81, -57.38, p<0.01) and Alirocumab reduced LDL-c by -46.35% (95% CI: -51.75, -41.13, p<0.01). Inclisiran 284mg reduced LDL-c by -54.83% (95% CI: -59.04, -50.62, p = 0.05) and Inclisiran 300mg reduced LDL-c by -43.11% (95% CI: -52.42, -33.80, p = 0.01). After a median of 8 months (IQR 6-15), Evolocumab reduced the risk of myocardial infarction (MI), OR 0.72 (95% CI: 0.64, 0.81, p<0.01), coronary revascularization, 0.77 (95% CI: 0.70, 0.84, p<0.01), stroke, 0.79 (95% CI: 0.66, 0.94, p = 0.01) and overall MACE 0.85 (95% CI: 0.80, 0.89, p<0.01). Alirocumab reduced MI, 0.57 (0.38, 0.86, p = 0.01), cardiovascular mortality 0.35 (95% CI: 0.16, 0.77, p = 0.01), all-cause mortality 0.60 (95% CI: 0.43, 0.84, p<0.01), and overall MACE 0.35 (0.16, 0.77, p = 0.01).
CONCLUSION CONCLUSIONS
PCSK9 inhibitors (Evolocumab, Alirocumab) and siRNA therapy (Inclisiran) significantly reduced LDL-c by >40% in high-risk individuals. Additionally, both Alirocumab and Evolocumab reduced the risk of MACE, and Alirocumab reduced cardiovascular and all-cause mortality.

Identifiants

pubmed: 38055686
doi: 10.1371/journal.pone.0295359
pii: PONE-D-23-23516
pmc: PMC10699593
doi:

Substances chimiques

PCSK9 Inhibitors 0
Cholesterol, LDL 0
Proprotein Convertase 9 EC 3.4.21.-
RNA, Small Interfering 0
Anticholesteremic Agents 0
Hydroxymethylglutaryl-CoA Reductase Inhibitors 0
PCSK9 protein, human EC 3.4.21.-

Types de publication

Meta-Analysis Systematic Review Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e0295359

Subventions

Organisme : NIGMS NIH HHS
ID : P20 GM103652
Pays : United States

Informations de copyright

Copyright: This is an open access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 public domain dedication.

Déclaration de conflit d'intérêts

The authors have declared that no competing interests exist.

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Auteurs

Tasnim F Imran (TF)

Providence VA Medical Center, Providence, Rhode Island, United States of America.
Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.
Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Ali A Khan (AA)

Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Phinnara Has (P)

Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.
Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Alexis Jacobson (A)

Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Stephanie Bogin (S)

Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Mahnoor Khalid (M)

Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.

Asim Khan (A)

Northwestern University, Evanston, Illinois, United States of America.

Samuel Kim (S)

Weil Cornell College of Medicine, New York, New York, United States of America.

Sebhat Erqou (S)

Providence VA Medical Center, Providence, Rhode Island, United States of America.
Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.
Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Gaurav Choudhary (G)

Providence VA Medical Center, Providence, Rhode Island, United States of America.
Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.
Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Karen Aspry (K)

Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.
Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

Wen-Chih Wu (WC)

Providence VA Medical Center, Providence, Rhode Island, United States of America.
Lifespan Cardiovascular Institute, Rhode Island and Miriam Hospitals, Providence, Rhode Island, United States of America.
Warren Alpert Medical School of Brown University, Providence, Rhode Island, United States of America.

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Classifications MeSH