With the increasing global prevalence of cerebrovascular diseases and the growing demand for precise treatment, accurate diagnosis has become crucial. As the "gold standard" for diagnosing cerebrovascular diseases, digital subtraction angiography (DSA) is being increasingly utilized and required in clinical practice. For a long time, the transfemoral approach (TFA) has been the standard access route for clinical neurointervention due to its anatomical advantages, such as straight vascular pathways, strong instrument support, and ease of operation. However, as clinical cases accumulate, the limitations of TFA have become increasingly evident: the incidence of puncture site-related vascular complications (e.g., hematoma, pseudoaneurysm, retroperitoneal hemorrhage) is relatively high, and patients require strict bed rest and immobilization postoperatively. This not only leads to suboptimal perioperative comfort for patients but also significantly increases clinical nursing burdens and healthcare costs.
In the field of coronary intervention, multiple large-scale randomized controlled trials (e.g., the RIVAL study) have established the superiority of the transradial approach (TRA) in reducing bleeding complications and all-cause mortality. Inspired by this, TRA has gradually been applied in the field of neurointervention. The main advantages of TRA lie in the superficial location of the radial artery, which facilitates compression hemostasis, and the dual blood supply from the ulnar artery as collateral circulation, greatly reducing the risk of severe puncture site complications. Additionally, patients do not require bed rest postoperatively, significantly improving perioperative comfort and shortening perioperative time.
However, despite TRA becoming the first-line choice in cardiac intervention, its application in cerebrovascular angiography still faces unique challenges. Since cerebral vessels originate from the aortic arch, reaching the target vessels (especially the left carotid artery) from the radial artery involves navigating more tortuous anatomical pathways (such as the aortic arch and the turn of the innominate artery), which differs fundamentally from the anatomical pathways in coronary intervention. Therefore, conclusions from coronary intervention studies cannot be directly applied to the field of neurointervention. Currently, comparative studies of TRA and TFA in cerebrovascular angiography are mostly limited to single-center, retrospective analyses, and there remains a lack of high-quality prospective randomized controlled trials (RCTs) to provide high-level evidence-based medical data for evaluating their operational success rates, radiation exposure times, and long-term safety under different anatomical variations.
Based on this, this study aims to objectively evaluate the effectiveness and safety of the two approaches by comparing clinical data from TRA and TFA for full cerebrovascular angiography, thereby providing scientific evidence for clinical physicians to choose the optimal surgical pathway.