[1] |
Zhou D, Wei D, Xing W, et al. Effects of craniotomy clipping and interventional embolization on treatment efficacy, cognitive function and recovery of patients complicated with subarachnoid hemorrhage[J]. Am J Transl Res, 2021, 13(5): 5117-5126.
|
[2] |
Wiper A, Kumar S, Macdonald J, et al. Day case transradial coronary angioplasty: a four-year single-center experience[J]. Catheter Cardiovasc Interv, 2006, 68(4): 549-553.
|
[3] |
Brueck M, Bandorski D, Kramer W, et al. A randomized comparison of transradial versus transfemoral approach for coronary angiography and angioplasty[J]. JACC Cardiovasc Interv, 2009, 2(11): 1047-1054.
|
[4] |
Campeau L. Percutaneous radial artery approach for coronary angiography[J]. Cathet Cardiovasc Diagn, 1989, 16(1): 3-7.
|
[5] |
Snelling BM, Sur S, Shah SS, et al. Transradial access: lessons learned from cardiology[J]. J Neurointerv Surg, 2018, 10(5): 487-492.
|
[6] |
Rychlik J, Hornacek I, Tejc M, et al. Retrospective analysis of coronary interventions in a single centre and comparison of specific differences between radial and femoral access[J]. Acta Cardiol, 2019, 74(4): 325-330.
|
[7] |
Satti SR, Vance AZ, Golwala SN, et al. Patient preference for transradial access over transfemoral access for cerebrovascular procedures[J]. J Vasc Interv Neurol, 2017, 9(4): 1-5.
|
[8] |
Kühn AL, Satti SR, Eden T, et al. Anatomic snuffbox (distal radial artery) and radial artery access for treatment of intracranial aneurysms with fda-approved flow diverters[J]. AJNR Am J Neuroradiol, 2021, 42(3): 487-492.
|
[9] |
Eid-Lidt G, Rivera Rodríguez A, Jimenez Castellanos J, et al. Distal radial artery approach to prevent radial artery occlusion trial[J]. JACC Cardiovasc Interv, 2021, 14(4): 378-385.
|
[10] |
Koutouzis M, Kontopodis E, Tassopoulos A, et al. Distal versus traditional radial approach for coronary angiography[J]. Cardiovasc Revasc Med, 2019, 20(8): 678-80.
|
[11] |
Lee JW, Park SW, Son JW, et al. Real-world experience of the left distal transradial approach for coronary angiography and percutaneous coronary intervention: a prospective observational study (LeDRA)[J]. EuroIntervention, 2018, 14(9): e995-e1003.
|
[12] |
Liang C, Han Q, Jia Y, et al. Distal transradial access in anatomical snuffbox for coronary angiography and intervention: an updated meta-analysis[J]. J Interv Cardiol, 2021, 2021: 7099044.
|
[13] |
Kiemeneij F. Left distal transradial access in the anatomical snuffbox for coronary angiography (ldTRA) and interventions (ldTRI)[J]. EuroIntervention, 2017, 13(7): 851-857.
|
[14] |
Al-Azizi KM, Grewal V, Gobeil K, et al. The left distal transradial artery access for coronary angiography and intervention: a US experience[J]. Cardiovasc Revasc Med, 2019, 20(9): 786-789.
|
[15] |
Bertrand OF, Larose E, Rodés-Cabau J, et al. Incidence, predictors, and clinical impact of bleeding after transradial coronary stenting and maximal antiplatelet therapy[J]. Am Heart J, 2009, 157(1): 164-169.
|
[16] |
Nathan S, Rao SV. Radial versus femoral access for percutaneous coronary intervention: implications for vascular complications and bleeding[J]. Curr Cardiol Rep, 2012, 14(4): 502-509.
|
[17] |
Mahtta D, Manandhar P, Wegermann ZK, et al. Outcomes and institutional variation in arterial access among patients with AMI and cardiogenic shock undergoing PCI[J]. JACC Cardiovasc Interv, 2023, 16(12): 1517-1528.
|
[18] |
Dahm JB, Van Buuren F, Hansen C, et al. The concept of an anatomy related individual arterial access: lowering technical and clinical complications with transradial access in bovine- and type-Ⅲ aortic arch carotid artery stenting[J]. Vasa, 2011, 40(6): 468-473.
|
[19] |
Goland J, Doroszuk GF, Garbugino SL, et al. Transradial approach to treating endovascular cerebral aneurysms: case series and technical note[J]. Surg Neurol Int, 2017, 8: 73.
|
[20] |
Khanna O, Sweid A, Mouchtouris N, et al. Radial artery catheterization for neuroendovascular procedures[J]. Stroke, 2019, 50(9): 2587-2590.
|
[21] |
Mitchell MD, Hong JA, Lee BY, et al. Systematic review and cost-benefit analysis of radial artery access for coronary angiography and intervention[J]. Circ Cardiovasc Qual Outcomes, 2012, 5(4): 454-462.
|
[22] |
Matsumoto Y, Hongo K, Toriyama T, et al. Transradial approach for diagnostic selective cerebral angiography: results of a consecutive series of 166 cases[J]. AJNR Am J Neuroradiol, 2001, 22(4): 704-708.
|
[23] |
Jo KW, Park SM, Kim SD, et al. Is transradial cerebral angiography feasible and safe? A single center's experience[J]. J Korean Neurosurg Soc, 2010, 47(5): 332-337.
|
[24] |
Lee DH, Ahn JH, Jeong SS, et al. Routine transradial access for conventional cerebral angiography: a single operator's experience of its feasibility and safety[J]. Br J Radiol, 2004, 77(922): 831-838.
|
[25] |
Khan NR, Peterson J, Dornbos Iii D, et al. Predicting the degree of difficulty of the trans-radial approach in cerebral angiography[J]. J Neurointerv Surg, 2021, 13(6): 552-558.
|
[26] |
Barros G, Bass DI, Osbun JW, et al. Left transradial access for cerebral angiography[J]. J Neurointerv Surg, 2020, 12(4): 427-430.
|
[27] |
Pacchioni A, Versaci F, Mugnolo A, et al. Risk of brain injury during diagnostic coronary angiography: comparison between right and left radial approach[J]. Int J Cardiol, 2013, 167(6): 3021-3026.
|
[28] |
Zussman BM, Tonetti DA, Stone J, et al. Maturing institutional experience with the transradial approach for diagnostic cerebral arteriography: overcoming the learning curve[J]. J Neurointerv Surg, 2019, 11(12): 1235-1238.
|
[29] |
Brunet MC, Chen SH, Peterson EC. Transradial access for neurointerventions: management of access challenges and complications[J]. J Neurointerv Surg, 2020, 12(1): 82-86.
|
[30] |
Zhang T, Zhao J, Li X, et al. Chinese stroke association guidelines for clinical management of cerebrovascular disorders: executive summary and 2019 update of clinical management of stroke rehabilitation[J]. Stroke Vasc Neurol, 2020, 5(3): 250-259.
|
[31] |
Beltrán Romero LM, Vallejo-Vaz AJ, Muñiz Grijalvo O. Cerebrovascular disease and statins[J]. Front Cardiovasc Med, 2021, 8: 778740.
|
[32] |
Goyal M, Menon BK, Van Zwam WH, et al. Endovascular thrombectomy after large-vessel ischaemic stroke: a meta-analysis of individual patient data from five randomised trials[J]. Lancet, 2016, 387(10029): 1723-1731.
|
[33] |
Jadhav AP, Desai SM, Jovin TG. Indications for mechanical thrombectomy for acute ischemic stroke: current guidelines and beyond[J]. Neurology, 2021, 97(20 Suppl 2): S126-S136.
|
[34] |
Haussen DC, Nogueira RG, Desousa KG, et al. Transradial access in acute ischemic stroke intervention[J]. J Neurointerv Surg, 2016, 8(3): 247-250.
|
[35] |
Siddiqui AH, Waqas M, Neumaier J, et al. Radial first or patient first: a case series and meta-analysis of transradial versus transfemoral access for acute ischemic stroke intervention[J]. J Neurointerv Surg, 2021, 13(8): 687-692.
|
[36] |
Chen SH, Snelling BM, Sur S, et al. Transradial versus transfemoral access for anterior circulation mechanical thrombectomy: comparison of technical and clinical outcomes[J]. J Neurointerv Surg, 2019, 11(9): 874-878.
|
[37] |
Ramzan A, Kobeissi H, Ghozy S, et al. Transradial balloon guide catheter placement for acute ischemic stroke thrombectomy: a systematic review and meta-analysis[J]. Interv Neuroradiol, 2023: 15910199231171955.
|
[38] |
Gao F, Lo W J, Sun X, et al. Selective use of transradial access for endovascular treatment of severe intracranial vertebrobasilar artery stenosis[J]. Clin Neurol Neurosurg, 2015, 134: 116-121.
|
[39] |
Folmar J, Sachar R, Mann T. Transradial approach for carotid artery stenting: a feasibility study[J]. Catheter Cardiovasc Interv, 2007, 69(3): 355-361.
|
[40] |
Etxegoien N, Rhyne D, Kedev S, et al. The transradial approach for carotid artery stenting[J]. Catheter Cardiovasc Interv, 2012, 80(7): 1081-1087.
|
[41] |
Chandra A, Stone CR, Du X, et al. The cerebral circulation and cerebrovascular disease Ⅲ: stroke[J]. Brain Circ, 2017, 3(2): 66-77.
|
[42] |
Broderick JP, Grotta JC, Naidech AM, et al. The story of intracerebral hemorrhage: from recalcitrant to treatable disease[J]. Stroke, 2021, 52(5): 1905-1914.
|
[43] |
López-Callejas O, Ortiz-Giraldo AF, Vera DD, et al. Flow diverter treatment for non-ruptured carotid aneurysms: efficacy and safety[J]. Neurointervention, 2023, 18(1): 23-29.
|
[44] |
Goland J, Doroszuk G. Transradial approach for endovascular diagnosis and treatment of ruptured cerebral aneurysms: a descriptive study[J]. Surg Neurol Int, 2019, 10: 87.
|
[45] |
Huang X, Xiong Y, Guo X, et al. Transradial versus transfemoral access for endovascular therapy of intracranial aneurysms: a systematic review and meta-analysis of cohort studies[J]. Neurosurg Rev, 2022, 45(6): 3489-3498.
|
[46] |
Luther E, Mccarthy D, Silva M, et al. Bilateral transradial access for complex posterior circulation interventions[J]. World Neurosurg, 2020, 139: 101-105.
|
[47] |
Sweid A, Starke RM, Herial N, et al. Transradial approach for the treatment of brain aneurysms using flow diversion: feasibility, safety, and outcomes[J]. J Neurosurg Sci, 2019, 63(5): 509-517.
|
[48] |
Lawton MT, Rutledge WC, Kim H, et al. Brain arteriovenous malformations[J]. Nat Rev Dis Primers, 2015, 1: 15008.
|