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Coronary Slow Flow and No-Reflow During Percutaneous Coronary Intervention: Contemporary Insights Into Imaging-Guided
Bharat Khialani1, Eran Sim1, George Touma2
1Department of Cardiovascular Medicine, Tan Tock Seng Hospital, National Healthcare Group, Jln Tan Tock Seng, Singapore.
Insights
Coronary slow flow and no-reflow after PCI are linked to microvascular issues. Advanced imaging and tailored strategies can prevent and manage these complications, improving patient outcomes.
Area of Science:
- Cardiology
- Interventional Cardiology
- Vascular Biology
Background:
- Coronary slow flow (SF) and no-reflow (NR) are significant complications following percutaneous coronary intervention (PCI).
- These conditions impair myocardial perfusion despite restored epicardial artery patency, often occurring in ST-segment elevation myocardial infarction (STEMI) and saphenous vein graft (SVG) interventions.
- Microvascular dysfunction, stemming from distal embolization, ischemia-reperfusion injury, and molecular pathways, drives SF/NR, leading to larger infarcts and increased mortality.
Purpose of the Study:
- To review the mechanisms, risk factors, and management strategies for coronary slow flow and no-reflow.
- To highlight the role of advanced intracoronary imaging in risk stratification and procedural guidance.
- To discuss preventive measures and therapeutic approaches for improving outcomes in PCI.
Main Methods:
- Literature review focusing on microvascular dysfunction in PCI.
- Analysis of advanced intracoronary imaging techniques for plaque characterization and risk stratification.
- Evaluation of preventive strategies, including pharmacotherapy and device techniques.
- Assessment of management protocols for SF/NR, including pharmacologic and device-based therapies.
Main Results:
- Advanced intracoronary imaging identifies lesion characteristics predictive of SF/NR.
- Image-guided strategies, such as deferred stenting and aspiration, can mitigate distal embolization.
- Preventive measures include optimized systemic therapy, anticoagulation, high-intensity statins, dual antiplatelet therapy, and refined device techniques.
- Management involves early recognition, exclusion of mimics, anticoagulation, and intracoronary vasodilator administration.
Conclusions:
- A structured, imaging-informed algorithm integrating prevention and treatment can reduce SF/NR incidence.
- Tailored strategies improve procedural and long-term outcomes in patients undergoing PCI.
- Further research is needed to validate imaging-guided prevention, standardized rescue protocols, and AI-driven risk assessment.
Abstract:
Coronary slow flow (SF) and no-reflow (NR) are clinically significant complications of percutaneous coronary intervention (PCI), particularly in ST-segment elevation myocardial infarction (STEMI) and saphenous vein graft (SVG) interventions. Angiographically defined as impaired myocardial perfusion despite restored epicardial patency, SF/NR results from microvascular dysfunction driven by distal embolization, ischemia-reperfusion injury, microvascular spasm, capillary plugging and emerging molecular mechanisms such as endothelial glycocalyx degradation and microRNA-mediated inflammatory pathways. These processes contribute to larger infarct size, maladaptive remodeling, and increased mortality. Advanced intracoronary imaging enables lesion-level risk stratification by identifying features such as lipid-rich cores, thin-cap fibroatheromas, positive remodeling, and thrombus. Image-guided strategies, incorporating deferred stenting, selective aspiration, and tailored lesion preparation, can mitigate distal embolization. Risk stratification models (e.g., PAMI score) and recognition of sex- and race-based disparities further refine procedural planning. Cost, accessibility, and emerging AI-driven automated plaque characterization tools are important considerations for wider implementation. Preventive measures emphasize systemic optimization, adequate anticoagulation, high-intensity statin pretreatment informed by precision dosing, dual antiplatelet therapy, and refined device techniques in thrombus-rich or calcified lesions. Management requires early recognition, systematic exclusion of mimics such as dissection or epicardial spasm, maintenance of anticoagulation, and rapid stepwise administration of intracoronary microvasculature dilators. Device-based delivery methods offer practical advantages but carry specific risks, including device entrapment or vessel trauma. Adjunctive therapies such as supersaturated oxygen may be considered in refractory cases. A structured, imaging-informed algorithm integrating preventive strategies, pharmacologic escalation, and device-assisted therapy may reduce SF/NR incidence and improve procedural and long-term outcomes. Future research should validate imaging-guided preventive strategies, standardized rescue protocols, and the role of AI-driven risk assessment in diverse patient populations.
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