Literature DB >> 28298652

Patient-specific blood pressure correction technique for arterial stiffness: evaluation in a cohort on anti-angiogenic medication.

Bart Spronck1,2, Tammo Delhaas1, Anouk Gw De Lepper1, Julie Giroux3, François Goldwasser3, Pierre Boutouyrie4, Maureen Alivon4, Koen D Reesink1.   

Abstract

Arterial pulse wave velocity (PWV) depends on blood pressure (BP). Correction of PWV for BP is commonly performed using a statistical approach, requiring a patient cohort. We recently developed a mechanistic, model-predictive approach to assess BP-independent changes in carotid PWV (cPWV) at the level of the individual. The goal of the present study is to compare our novel technique to conventional statistical correction, in the context of anti-cancer therapy using anti-angiogenic drugs (AADs). AADs frequently lead to a PWV increase, but also to hypertension, underlining the need for BP correction of PWV measurements. We obtained carotid artery systolic and diastolic cross-sectional areas (echotracking) and corresponding BPs (tonometry) in 48 patients before starting AAD treatment (sorafenib/sunitinib), and at four follow-up visits spaced 2 weeks apart. For each patient, we derived cPWV and a baseline single-exponential BP cross-sectional area curve. Based on these baseline curves and follow-up BPs, we predicted cPWV at follow-up due to BP. By comparing predicted and measured cPWVs at follow-up, we assessed the BP-independent cPWV increase. In the same way, we assessed whether diastolic cross-sectional area (Ad) changed beyond the BP-induced amount. The AAD-induced BP-independent increase in cPWV was 0.43(0.09,0.77) m s-1 (mean (95%CI), P=0.014, mechanistic approach) and 0.48(0.14,0.82) m s-1 (P=0.006, statistical approach). Ad increased with 1.92(0.93,2.92) mm2 (P<0.001) and 2.14(1.06,3.23) mm2 (P<0.001), respectively. In conclusion, the present study demonstrates the feasibility and potential of our mechanistic, model-predictive approach to quantify BP-independent effects on arterial stiffness at the level of the individual, in a clinically relevant setting of AAD therapy.

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Year:  2017        PMID: 28298652     DOI: 10.1038/hr.2017.32

Source DB:  PubMed          Journal:  Hypertens Res        ISSN: 0916-9636            Impact factor:   3.872


  13 in total

1.  Simultaneous assessment of diameter and pressure waveforms in the carotid artery.

Authors:  Jan M Meinders; Arnold P G Hoeks
Journal:  Ultrasound Med Biol       Date:  2004-02       Impact factor: 2.998

2.  Seeking a blood pressure-independent measure of vascular properties.

Authors:  Jochen Steppan; Gautam Sikka; Daijiro Hori; Daniel Nyhan; Dan E Berkowitz; Allan Gottschalk; Viachaslau Barodka
Journal:  Hypertens Res       Date:  2015-10-22       Impact factor: 3.872

3.  Intravitreal ranibizumab may induce retinal arteriolar vasoconstriction in patients with neovascular age-related macular degeneration.

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Journal:  Ophthalmology       Date:  2009-06-27       Impact factor: 12.079

4.  Pressure-dependence of arterial stiffness: potential clinical implications.

Authors:  Bart Spronck; Maarten H G Heusinkveld; Floris H Vanmolkot; Jos Op 't Roodt; Evelien Hermeling; Tammo Delhaas; Abraham A Kroon; Koen D Reesink
Journal:  J Hypertens       Date:  2015-02       Impact factor: 4.844

5.  Cardio-ankle vascular index and subclinical heart disease.

Authors:  Giuseppe Schillaci; Francesca Battista; Laura Settimi; Fabio Anastasio; Giacomo Pucci
Journal:  Hypertens Res       Date:  2014-09-18       Impact factor: 3.872

6.  Preoperative Sildenafil administration in children undergoing cardiac surgery: a randomized controlled preconditioning study.

Authors:  Varsha Walavalkar; Egmond Evers; Suresh Pujar; Kiran Viralam; Shreesha Maiya; Stefan Frerich; Colin John; Shekhar Rao; Chinnaswamy Reddy; Bart Spronck; Frits W Prinzen; Tammo Delhaas; Ward Y Vanagt
Journal:  Eur J Cardiothorac Surg       Date:  2015-10-13       Impact factor: 4.191

7.  Effect of vasa vasorum flow on structure and function of the aorta in experimental animals.

Authors:  C Stefanadis; C Vlachopoulos; P Karayannacos; H Boudoulas; C Stratos; T Filippides; M Agapitos; P Toutouzas
Journal:  Circulation       Date:  1995-05-15       Impact factor: 29.690

8.  Optimizing the delivery of cancer drugs that block angiogenesis.

Authors:  Yihai Cao; Robert Langer
Journal:  Sci Transl Med       Date:  2010-01-20       Impact factor: 17.956

9.  Large artery stiffness and hypertension after antiangiogenic drugs: influence on cancer progression.

Authors:  Maureen Alivon; Julie Giroux; Marie Briet; François Goldwasser; Stéphane Laurent; Pierre Boutouyrie
Journal:  J Hypertens       Date:  2015-06       Impact factor: 4.844

Review 10.  Incidence and risk of hypertension with sorafenib in patients with cancer: a systematic review and meta-analysis.

Authors:  Shenhong Wu; John J Chen; Andrzej Kudelka; Janice Lu; Xiaolei Zhu
Journal:  Lancet Oncol       Date:  2008-01-24       Impact factor: 41.316

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  4 in total

1.  New approach to arterial stiffness: BP-independent local carotid stiffness.

Authors:  Kazuki Shiina; Hirofumi Tomiyama
Journal:  Hypertens Res       Date:  2017-08-17       Impact factor: 3.872

Review 2.  Options for Dealing with Pressure Dependence of Pulse Wave Velocity as a Measure of Arterial Stiffness: An Update of Cardio-Ankle Vascular Index (CAVI) and CAVI0.

Authors:  Bart Spronck; Tammo Delhaas; Mark Butlin; Koen D Reesink; Alberto P Avolio
Journal:  Pulse (Basel)       Date:  2017-09-07

Review 3.  The Role of Vascular Smooth Muscle Cells in Arterial Remodeling: Focus on Calcification-Related Processes.

Authors:  Armand Jaminon; Koen Reesink; Abraham Kroon; Leon Schurgers
Journal:  Int J Mol Sci       Date:  2019-11-14       Impact factor: 5.923

4.  Heart rate and blood pressure dependence of aortic distensibility in rats: comparison of measured and calculated pulse wave velocity.

Authors:  Bart Spronck; Isabella Tan; Koen D Reesink; Dana Georgevsky; Tammo Delhaas; Alberto P Avolio; Mark Butlin
Journal:  J Hypertens       Date:  2021-01       Impact factor: 4.776

  4 in total

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