Topics

No keywords indexed for this article. Browse by subject →

References
45
[1]
Mehra "Five-year outcomes in patients with fully magnetically levitated vs axial-flow left ventricular assist devices in the MOMENTUM 3 randomized trial" JAMA (2022) 10.1001/jama.2022.16197
[2]
Pya "First human use of a wireless coplanar energy transfer coupled with a continuous-flow left ventricular assist device" J Heart Lung Transpl (2019) 10.1016/j.healun.2019.01.1316
[3]
Stein "Wireless transcutaneous energy transfer and control system for powering a fully-implanted left-ventricular assist system" ASAIO J (2023) 10.1097/01.mat.0000943580.83459.85
[4]
Qu "Ventricular assist device-specific infections" J Clin Med [Internet] (2021) 10.3390/jcm10030453
[5]
Bejko "Left ventricle assist devices and driveline’s infection incidence: a single-centre experience" J Artif Organs (2018) 10.1007/s10047-017-0997-y
[6]
Bernhardt "Prevention and early treatment of driveline infections in ventricular assist device patients - The DESTINE staging proposal and the first standard of care protocol" J Crit Care (2020) 10.1016/j.jcrc.2019.12.014
[7]
Koken "Driveline exit-site care protocols in patients with left ventricular assist devices: a systematic review" Eur J Cardiothorac Surg (2021) 10.1093/ejcts/ezab195
[8]
Cavalcanti "In vivo evaluation of skin integration with ventricular assist device drivelines" J Heart Lung Transpl (2022) 10.1016/j.healun.2022.03.014
[9]
Kranzl "Driveline features as risk factor for infection in left ventricular assist devices: meta-analysis and experimental tests" Front Cardiovasc Med (2021) 10.3389/fcvm.2021.784208
[10]
Dual "The future of durable mechanical circulatory support: emerging technological innovations and considerations to enable evolution of the field" J Card Fail (2024) 10.1016/j.cardfail.2024.01.011
[11]
Kourouklis "Transdermal wires for improved integration in vivo" Biomater Adv (2023) 10.1016/j.bioadv.2023.213568
[12]
Dodd "Performance and management of implantable lithium battery systems for left ventricular assist devices and total artificial hearts" J Power Sources (2005) 10.1016/j.jpowsour.2005.03.168
[13]
Kourouklis "Systems of conductive skin for power transfer in clinical applications" Eur Biophys J (2021) 10.1007/s00249-021-01568-8
[14]
Merzo "Outcomes of left ventricular assist device implantations at Karolinska University Hospital: a retrospective study" JHLT Open (2024) 10.1016/j.jhlto.2024.100093
[15]
Noly "Association of days alive and out of the hospital after ventricular assist device implantation with adverse events and quality of life" JAMA Surg (2023) 10.1001/jamasurg.2022.8127
[16]
Schachl "Mechanical characterization of anchoring devices for the prevention of driveline infection in left ventricular assist device patients" ASAIO J (2024) 10.1097/mat.0000000000002111
[17]
Christian "Thermal analysis of new transdermal devices for power transfer to ventricular assist devices" Annu Meet Swiss Soc Biomed Eng (SSBE) (2023)
[18]
Arrecubieta "SdrF, a Staphylococcus epidermidis surface protein, contributes to the initiation of ventricular assist device driveline-related infections" PLoS Pathog (2009) 10.1371/journal.ppat.1000411
[19]
Donlan RM. Biofilms and device-associated infections. (1080–6040 [Print]).
[20]
Zhai "Lavage with allicin in combination with vancomycin inhibits biofilm formation by Staphylococcus epidermidis in a rabbit model of prosthetic joint infection" Plos One (2014) 10.1371/journal.pone.0102760
[21]
Foti "A new approach to the definition of self-damping for stranded cables" Meccanica (2016) 10.1007/s11012-016-0444-9
[22]
Knecht "High-efficiency transcutaneous energy transfer for implantable mechanical heart support systems" IEEE T Power Electr (2015) 10.1109/tpel.2015.2396194
[23]
Nguyen "Host response to colonization and infections" Front Cell Infect Mi (2017)
[24]
Eckmann "Left ventricular assist device-associated driveline infections as a specific form of complicated skin and soft tissue infection/acute bacterial skin and skin structure infection – issues and therapeutic options" Curr Opin Infect Dis (2024) 10.1097/qco.0000000000000999
[25]
Zinoviev "In full flow: left ventricular assist device infections in the modern era" Open Forum Infect Dis (2020) 10.1093/ofid/ofaa124
[26]
Brescó "Pathogenic mechanisms and host interactions in device-related infection" Front Microbiol (2017) 10.3389/fmicb.2017.01401
[27]
Severn "Staphylococcus epidermidis and its dual lifestyle in skin health and infection" Nat Rev Microbiol (2023) 10.1038/s41579-022-00780-3
[28]
Nunez "A comprehensive comparison of biofilm formation and capsule production for bacterial survival on hospital surfaces" Biofilm (2023) 10.1016/j.bioflm.2023.100105
[29]
Cagliostro "Continuous-flow left ventricular assist devices and usefulness of a standardized strategy to reduce drive-line infections" J Heart Lung Transpl (2016) 10.1016/j.healun.2015.06.010
[30]
Ramachandran "Human mesenchymal stromal cell adhesion and expansion on fluoropolymer surfaces modified with oxygen and nitrogen-rich plasma polymers" Colloids Surf B Biointerfaces (2024) 10.1016/j.colsurfb.2023.113740
[31]
Qu "Diversity and dynamics of clinical biofilms in ventricular assist device driveline infections and in vitro modelling" Microbiol Aust (2023) 10.1071/ma23024
[32]
Yavari "Combating implant infections: shifting focus from bacteria to host" Adv Mater (2020)
[33]
Zimmerli "Pathogenesis of implant-associated infection: the role of the host" Semin Immunopathol (2011) 10.1007/s00281-011-0275-7
[34]
Seebach "Chronic implant-related bone infections − can immune modulation be a therapeutic strategy?" Front Immunol (2019) 10.3389/fimmu.2019.01724
[35]
Sweeney "Durable left ventricular assist device implant-how I teach it" Indian J Thorac Card (2023)
[36]
Kaemmel "On the function of biosynthesized cellulose as barrier against bacterial colonization of VAD drivelines" Sci Rep-Uk (2021)
[37]
Baudart "A silver lining in the VAD sky: a prospective randomized controlled study of driveline dressing" J Heart Lung Transpl (2024) 10.1016/j.healun.2024.02.926
[38]
de By "The European Registry for patients with mechanical circulatory support of the European Association for cardio-thoracic surgery: third report" Eur J Cardiothorac Surg (2022)
[39]
Grimm "Advancing the 3Rs: innovation, implementation, ethics and society" Front Vet Sci (2023) 10.3389/fvets.2023.1185706
[40]
Ferrell "A rise in devices: an overview of the current ventricular support devices and future prospects" Heart Surg Forum (2025) 10.59958/hsf.8367
[41]
Kusne "An ISHLT consensus document for prevention and management strategies for mechanical circulatory support infection" J Heart Lung Transpl (2017) 10.1016/j.healun.2017.06.007
[42]
Zierer "Late-onset driveline infections: the Achilles' Heel of prolonged left ventricular assist device support" Ann Thorac Surg (2007) 10.1016/j.athoracsur.2007.03.085
[43]
Nam "In vitro characterization of a novel human acellular dermal matrix (BellaCell HD) for breast reconstruction" Bioengineering (Basel) (2020) 10.3390/bioengineering7020039
[44]
Yang "On the tear resistance of skin" Nat Commun (2015) 10.1038/ncomms7649
[45]
Pissarenko "The toughness of porcine skin: quantitative measurements and microstructural characterization" J Mech Behav Biomed Mater (2020) 10.1016/j.jmbbm.2020.103848
Metrics
2
Citations
45
References
Details
Published
Dec 01, 2025
Vol/Issue
44(12)
Pages
1974-1984
License
View
Funding
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung Award: 310030_204343
ETH Zürich Foundation
Universität Zürich
Innosuisse Swiss Innovation Agency Award: 104.082 IP-LS
Hochschulmedizin Zürich
Abbott Pharmaceuticals
Cite This Article
Andreas P. Kourouklis, Xi Wu, Julius Kaemmel, et al. (2025). Reducing driveline infection risk in durable mechanical circulatory support devices with ultra-flexible wires for energy transfer. The Journal of Heart and Lung Transplantation, 44(12), 1974-1984. https://doi.org/10.1016/j.healun.2025.07.012