Modern Era in Personalized Medicine of Dual Antiplatelet Therapy After Myocardial Revascularization
Abstract
1. Introduction
2. Methodology
3. Pharmacological Basis of DAPT
4. Why Personalization? The Ischemic–Bleeding Trade-Off
4.1. Ischemic Risk Determinants
4.2. Bleeding Risk Determinants
4.3. Quantifying Risk: Clinical Scores and Consensus Definitions
4.4. Integrated Clinical-Genetic Scores
4.5. Net Clinical Benefit and Decision-Making Limits
5. Pharmacogenomics and Precision Antiplatelet Therapy
5.1. CYP2C19 Genetic Variability
5.2. Clinical Impact on Clopidogrel Response
5.3. Point-of-Care Genotyping and Clinical Implementation
5.4. Guideline and Regulatory Perspectives
6. Platelet Function Testing
6.1. Methods and Clinical Relevance
6.2. High and Low Platelet Reactivity
6.3. Complementarity with Genetic Testing
7. Personalizing DAPT Intensity: Escalation and De-Escalation
7.1. Escalation Strategies
7.2. De-Escalation Strategies
7.3. Evidence from Clinical Trials
7.4. Timing Considerations and Early Phase Risks
8. Antiplatelet Management After CABG
9. Antiplatelet Considerations After Off-Pump CABG
10. Perioperative Management of P2Y12 Inhibitors: Discontinuation Timing and Bridging Across Surgical Settings
11. Personalizing DAPT Duration After PCI for ACS
11.1. From Fixed to Tailored Duration
11.2. Evidence from Landmark Trials
11.3. P2Y12 Monotherapy and Aspirin-Free Strategies
11.4. Patients with High Bleeding Risk
11.5. Clopidogrel Versus Aspirin Monotherapy at Long-Term Follow-Up After PCI
12. Special Populations and Complex Clinical Scenarios
12.1. Patients with Atrial Fibrillation Requiring Anticoagulation
12.2. Elderly, Frail, and HBR Patients
12.3. Diabetes, CKD, and High Ischemic Risk Groups
12.4. Ethnic and Sex-Based Differences
12.5. Urgent Surgery and Bridging Strategies
13. Emerging Technologies and Future Directions
13.1. AI-Based Risk Prediction Models and Digital Health Tools
13.2. Multi-Omics and Precision Pharmacology
13.3. Novel Antiplatelet Agents
14. Gaps in Evidence
15. Future Trial Design
16. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACC | American College of Cardiology |
| ACS | Acute coronary syndrome |
| ADP | Adenosine diphosphate |
| AHA | American Heart Association |
| AI | Artificial intelligence |
| CABG | Coronary artery bypass grafting |
| CAD | Coronary artery disease |
| CKD | Chronic kidney disease |
| DAPT | Dual antiplatelet therapy |
| DES | Drug-eluting stent |
| ESC | European Society of Cardiology |
| HBR | High bleeding risk |
| HTPR | High on-treatment platelet reactivity |
| LoF | Loss of function |
| MACE | Major adverse cardiovascular events |
| MI | Myocardial infarction |
| NACE | Net adverse clinical events |
| PCI | Percutaneous coronary intervention |
| PFT | Platelet function testing |
| PRU | Platelet reactivity units |
| SCAI | Society for Cardiovascular Angiography and Interventions |
| SVG | Saphenous vein graft |
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| Score | Number of Participants | Variables | Discrimination (c-Statistic) | Clinical Application |
|---|---|---|---|---|
| DAPT score | 11,648 patients | 8 (5 clinical + 3 procedural) | 0.70 | Identify candidates for extended DAPT (>12 months) |
| PRECISE-DAPT | 14,963 patients | 5 clinical | 0.73 (bleeding) | Identify HBR patients (score ≥ 25) for shortened DAPT |
| ARC-HBR | Consensus-based | 13 criteria (major + minor) | N/A (semiquantitative) | Define HBR for clinical trials and practice |
| PARIS | 8665 patients | 6 clinical | 0.65 (thrombosis), 0.64 (bleeding) | Dual assessment of thrombosis and bleeding risk |
| ABCD-GENE | 3046 patients | 5 (clinical + genetic) | 0.71 | Predict clopidogrel nonresponse; score > 10 = high MACE risk |
| Study | Participants | Intervention | Comparator | Primary Endpoint | Key Efficacy Result | Bleeding Result |
|---|---|---|---|---|---|---|
| DACAB (2018) [51] | 500 (elective CABG—75% off-pump) | Ticagrelor + ASA × 1 yr; or ticagrelor alone × 1 yr | ASA alone × 1 yr | SVG patency at 1 yr | SVG patency: 88.7% (ticagrelor + ASA) vs. 82.8% (ticagrelor alone) vs. 76.5% (ASA alone); ticagrelor + ASA vs. ASA: p = 0.001 | 5 major bleeding episodes across all groups |
| Agrawal meta-analysis (2024) [48] | 77,447 (CABG -mixed ACS/elective) | DAPT (any P2Y12 + ASA) | SAPT (ASA alone) | All-cause mortality, MACCE | ↓ All-cause mortality (OR 0.65; 95% CI 0.50–0.86; p = 0.002); ↓ MACCE (OR 0.68; 95% CI 0.51–0.91; p = 0.01) | ↑ Major bleeding (OR 1.30; 95% CI 1.08–1.56; p = 0.007) |
| Agrawal (DAPT-ticagrelor/prasugrel vs. DAPT-clopidogrel subgroup) (2024) [48] | Subset (CABG) | DAPT with ticagrelor/prasugrel | DAPT with clopidogrel | All-cause mortality | ↓ All-cause mortality (OR 0.43; 95% CI 0.29–0.65; p ≤ 0.0001); ↓ CV mortality (OR 0.44; 95% CI 0.24–0.80) | No significant difference in bleeding |
| Agarwal meta-analysis (2018) [49] | 11,135 (CABG) | DAPT | ASA alone | MACE, graft occlusion | ↓ Graft occlusion (RR 0.79; 95% CI 0.63–0.98); ↓ all-cause mortality (RR 0.67; 95% CI 0.48–0.94) | No significant increase in major bleeding |
| Wang (2025) [52] | 2424 (CABG) | Ticagrelor-based DAPT | Clopidogrel-based DAPT | Mortality, MACE | ↓ Mortality and ↓ MACE with ticagrelor-based regimens | No significant difference in bleeding |
| POPular CABG (2020) [50] | 499 (CABG with ≥1 SVG -31% ACS; 95% on-pump) | Ticagrelor + ASA × 1 yr | Placebo + ASA × 1 yr | SVG occlusion at 1 yr | No significant difference: 10.5% vs. 9.1% (OR 1.29; 95% CI 0.73–2.30; p = 0.38) | No significant difference |
| TACSI (2025) [57] | 2201 (CABG for ACS -Nordic centers) | Ticagrelor + ASA × 1 yr | ASA alone × 1 yr | Death, MI, stroke, or repeat revascularization at 1 yr | No difference: 4.8% vs. 4.6% (HR 1.06; 95% CI 0.72–1.56; p = 0.77) | Major bleeding: 4.9% vs. 2.0% (HR 2.50; 95% CI 1.52–4.11) |
| Sandner IPD meta-analysis (2022) [58] | 1316 (CABG with SVGs) | Ticagrelor + ASA | ASA alone | SVG failure per graft | ↓ SVG failure: 11.2% vs. 20.0% (OR 0.51; 95% CI 0.35–0.74; p = 0.001) | ↑ Clinically important bleeding (BARC 2/3/5) with ticagrelor DAPT |
| Bhatt review (2023) [53] | (CABG) | — | — | — | Highlights conflicting findings between DACAB, POPular CABG, and TARGET trials; no consensus on optimal DAPT duration | — |
| Bacha meta-analysis with TSA (2026) [59] | 4208 (CABG) | Ticagrelor-based therapy | ASA alone | MACE, all-cause mortality, SVG failure | No difference in MACE (RR 1.05; p = 0.75) or mortality (RR 1.02; p = 0.93); ↓ SVG failure (RR 0.62; 95% CI 0.50–0.78; p = 0.0001) | No significant difference in major bleeding (RR 1.09; p = 0.73) |
| OPCAB personalized DAPT study (2022) [60] | 1134 (OPCAB) | Personalized DAPT (CYP2C19 genotyping + PFT-guided) | Standard DAPT (ASA + clopidogrel) | MACE | ↓ MACE: 5.5% vs. 9.2% (HR 0.583; 95% CI 0.371–0.915; p = 0.019); ↓ MI: 1.7% vs. 4.2% (HR 0.407; p = 0.016) | No significant difference in TIMI major bleeding (5.3% vs. 6.0%; RR 0.883; p = 0.626) |
| Qu (2021) [61] | 18,069 (CABG) | Clopidogrel + ASA | ASA alone | Composite (death, MI, stroke, revascularization) at 6 mo | ↓ Composite: 2.9% vs. 4.2% (HR 0.65; 95% CI 0.55–0.77; p = 0.001) | No significant increase in major bleeding (HR 1.11; 95% CI 0.69–1.78) |
| Clinical Scenario | Recommended Surgical Delay | P2Y12 Discontinuation Timing | ASA Management | Bridging Strategy | Postoperative Resumption |
|---|---|---|---|---|---|
| Elective NCS after DES-PCI for ACS | ≥12 months (Class I, LOE B-NR) | Clopidogrel: 5–7 days; Ticagrelor: 3–5 days; Prasugrel: 7–10 days | Continue ASA 75–100 mg (Class I, LOE B-R) | Not routinely required | Reload P2Y12 with loading dose within 24–72 h when hemostasis secured |
| Elective NCS after DES-PCI for CCD | ≥6 months (Class IIa, LOE B-NR) | Clopidogrel: 5–7 days; Ticagrelor: 3–5 days; Prasugrel: 7–10 days | Continue ASA 75–100 mg (Class I, LOE B-R) | Not routinely required | Reload P2Y12 with loading dose within 24–72 h when hemostasis secured |
| Time-sensitive NCS after DES-PCI | ≥3 months may be considered if risk of delay outweighs MACE risk (Class IIb, LOE B-NR) | Clopidogrel: 5–7 days; Ticagrelor: 3–5 days; Prasugrel: 7–10 days | Continue ASA 75–100 mg | Consider IV bridging (see below) | Reload P2Y12 with loading dose within 24–72 h when hemostasis secured |
| NCS within 30 days of BMS- or DES-PCI | Elective NCS: potentially harmful (Class III: Harm, LOE B-NR) | Continue DAPT if feasible; if must interrupt, minimize duration | Continue DAPT if feasible | IV bridging strongly considered | Reload P2Y12 as soon as possible |
| NCS after PCI (ESC perspective) [16,17] | ≥1 month irrespective of stent type (Class IIa, LOE B); ≥6 months if recent MI or high ischemic risk (Class IIb, LOE C) | Ticagrelor: ≥3 days; Clopidogrel: ≥5 days; Prasugrel: ≥7 days (Class IIa, LOE B) | Continue ASA (Class I, LOE B); resume P2Y12 as soon as possible postoperatively | IV antiplatelet bridging may be considered if surgery within 1 month of stent (Class IIb, LOE C) | Resume P2Y12 as soon as possible postoperatively (Class I, LOE B) |
| Elective CABG | Ticagrelor: minimum 3 days; Clopidogrel: 5 days; Prasugrel: 7 days (Class II, LOE B-NR) | Per above | Continue ASA through surgery (suggested over interruption) | Not routinely indicated | Resume ASA or P2Y12 within 24 h after surgery |
| CABG—role of PFT | POC PFT can guide timing of surgery (Class IIa, LOE B-R) | Individualized based on PFT results | Continue ASA | Not applicable | Resume within 24 h |
| Elective NCS (general) | — | Clopidogrel: 5–7 days; Ticagrelor: 3–5 days; Prasugrel: 7–10 days | Continue ASA if possible; if must stop, ≤7 days before surgery | Not addressed | Resume within 24 h |
| NCS—role of PFT | — | — | — | — | — |
| IV bridging with cangrelor (high thrombotic risk, 6 months post-DES or 30 days post-BMS) | Surgery nondeferrable | Start cangrelor 0.75 μg/kg/min (bridging dose) 48 h after oral P2Y12 discontinuation (or 2–3 days after clopidogrel/ticagrelor; 3–4 days after prasugrel) | Continue ASA throughout | Cangrelor: stop 1–2 h before surgery; platelet function recovers within 60 min | Reload oral P2Y12 (preferably clopidogrel 300–600 mg) within 6 h postoperatively if hemostasis permits |
| IV bridging with GPIIb/IIIa inhibitors (when cangrelor unavailable) | Surgery nondeferrable | Per standard washout | Continue ASA throughout | Eptifibatide 2.0 μg/kg/min or tirofiban 0.1 μg/kg/min; stop 6–8 h before surgery; no validated bridging dose exists | Reload oral P2Y12 within 6 h postoperatively if hemostasis permits |
| Study | Participants | Intervention | Comparator | Primary Endpoint | Key Efficacy Result | Bleeding Result |
|---|---|---|---|---|---|---|
| DAPT duration/P2Y12 monotherapy trials | ||||||
| STOPDAPT-2 (2019) [69] | 3045 (PCI with DES—38% ACS) | 1-mo DAPT → clopidogrel mono | 12-mo DAPT (ASA + clopidogrel) | NACE at 1 year | Superior: 2.36% vs. 3.70% (HR 0.64; p = 0.04) | TIMI major/minor: HR 0.46; 95% CI 0.23–0.94 |
| MASTER DAPT (2021) [70] | 4579 (HBR patients with DES) | 1-month DAPT → SAPT | ≥3-month DAPT (standard) | NACE + MACE co-primary at 1 year | Non-inferior for both NACE and MACE | Substantially reduced major bleeding |
| SMART-DATE (2018) [71] | 2712 (ACS with DES—38% STEMI) | 6-month DAPT | ≥12-month DAPT | MACCE at 18 months | Non-inferior (p = 0.03 for NI) | Numerically lower (NS) |
| REDUCE-ACS (2019) [72] | 1496 (ACS with DES—47% STEMI) | 3-month DAPT | 12-month DAPT | NACE at 1 year | Non-inferior (p = 0.001 for NI) | Numerically lower (NS) |
| TWILIGHT (2019) [73] | 7119 (high-risk PCI—64% ACS) | 3-month DAPT → ticagrelor mono | 12-month DAPT (ASA + ticagrelor) | BARC 2/3/5 bleeding at 1 year | Death/MI/stroke: 3.9% vs. 3.9% (non-inferior) | BARC 2/3/5: 4.0% vs. 7.1% (HR 0.56; p = 0.001) |
| ULTIMATE-DAPT (2024) [74] | 3400 (ACS with DES) | 1- month DAPT → ticagrelor mono | 12-month DAPT (ASA + ticagrelor) | Clinically relevant bleeding at 1 year | MACCE: no significant difference | Major bleeding: 2.1%—significantly reduced |
| De-Escalation Trials | ||||||
| TOPIC (2017) [45] | 646 (ACS-PCI, event-free at 1 month) | Unguided switch to clopidogrel + ASA at 1 month | Standard DAPT (potent P2Y12 + ASA) | NACE at 1 year | HR 0.48; 95% CI 0.34–0.68; p = 0.01 (52% ↓ NACE) | BARC ≥ 2: HR 0.30; 95% CI 0.18–0.50 |
| TROPICAL-ACS (2017) [46] | 2610 (ACS-PCI) | PFT-guided de-escalation to clopidogrel at 14 days | Standard prasugrel × 12 months | NACE at 1 year | Non-inferior (HR 0.81; p = 0.0004 for NI) | BARC ≥ 2: HR 0.82; 95% CI 0.59–1.13 (NS) |
| HOST-REDUCE-POLYTECH-ACS (2020) [47] | 2338 (ACS-PCI) | Prasugrel 5 mg at 1 month (dose de-escalation) | Prasugrel 10 mg × 12 months | NACE at 1 year | Non-inferior → superior (HR 0.70; 95% CI 0.52–0.92; p = 0.012) | BARC ≥ 2: HR 0.48; 95% CI 0.32–0.73 |
| TALOS-AMI (2021) [44] | 2697 (AMI-PCI, event-free at 1 month) | Unguided switch to clopidogrel + ASA at 1 month | Ticagrelor + ASA × 12 months | NACE at 1 year | Non-inferior → superior (HR 0.55; 95% CI 0.40–0.76; p = 0.0001) | BARC 2/3/5: 3.0% vs. 5.6% (HR 0.52; p = 0.0012) |
| Guided- Therapy Trials | ||||||
| PATH-PCI [40] | CCS after PCI | PFT-guided antiplatelet management | Standard therapy | NACE | 32% ↓ NACE (HR 0.68; 95% CI 0.49–0.95) | — |
| PHARMCLO (2018) [41] | 888 (ACS) | Genotype-guided antiplatelet selection | Standard therapy | NACE | 42% ↓ NACE (HR 0.58) | — |
| GRAVITAS (2011) [30] | 2214 (PCI with HTPR -PRU ≥ 230) | High-dose clopidogrel (150 mg) | Standard-dose clopidogrel (75 mg) | Death, MI, or stent thrombosis at 6-month | No significant difference: 2.3% vs. 2.3% (HR 1.01; p = 0.98) | No significant difference |
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Dehghan, A.; Javadi, N.; Allaqaband, S.Q.; Jan, M.F. Modern Era in Personalized Medicine of Dual Antiplatelet Therapy After Myocardial Revascularization. J. Clin. Med. 2026, 15, 4870. https://doi.org/10.3390/jcm15134870
Dehghan A, Javadi N, Allaqaband SQ, Jan MF. Modern Era in Personalized Medicine of Dual Antiplatelet Therapy After Myocardial Revascularization. Journal of Clinical Medicine. 2026; 15(13):4870. https://doi.org/10.3390/jcm15134870
Chicago/Turabian StyleDehghan, Amin, Niloufar Javadi, Suhail Q. Allaqaband, and M. Fuad Jan. 2026. "Modern Era in Personalized Medicine of Dual Antiplatelet Therapy After Myocardial Revascularization" Journal of Clinical Medicine 15, no. 13: 4870. https://doi.org/10.3390/jcm15134870
APA StyleDehghan, A., Javadi, N., Allaqaband, S. Q., & Jan, M. F. (2026). Modern Era in Personalized Medicine of Dual Antiplatelet Therapy After Myocardial Revascularization. Journal of Clinical Medicine, 15(13), 4870. https://doi.org/10.3390/jcm15134870

