Keyword search (4,163 papers available)

"Helfield B" Authored Publications:

Title Authors PubMed ID
1 Thermal sonogenetics for adoptive cell transfer therapy Baez A; Hazel K; Guertin Z; Fong E; Manus MM; Kaloyannis A; Helfield B; 41748028
BIOLOGY
2 Shear Stress and Microbubble-Mediated Modulation of Endothelial Cell Immunobiology Memari E; Singh D; Alkins R; Helfield B; 40657183
PHYSICS
3 Deformable detection transformers for domain adaptable ultrasound localization microscopy with robustness to point spread function variations Gharamaleki SK; Helfield B; Rivaz H; 40640235
PHYSICS
4 Investigation of Phase-Change Droplets and Fast Imaging for Indicator Dilution Measurement of Flow Zajac Z; Helfield B; Williams R; Sheeran P; Tremblay-Darveau C; Yoo K; Burns PN; 40387284
BIOLOGY
5 Flow rate modulates focused ultrasound-mediated vascular delivery of microRNA He S; Singh D; Helfield B; 39850318
BIOLOGY
6 Focused Ultrasound and Microbubble-Mediated Delivery of CRISPR-Cas9 Ribonucleoprotein to Human Induced Pluripotent Stem Cells Hazel K; Singh D; He S; Guertin Z; Husser MC; Helfield B; 39797397
BIOLOGY
7 The effect of micro-vessel viscosity on the resonance response of a two-microbubble system Yusefi H; Helfield B; 39705920
BIOLOGY
8 Immunomodulation of human T cells by microbubble-mediated focused ultrasound Baez A; Singh D; He S; Hajiaghayi M; Gholizadeh F; Darlington PJ; Helfield B; 39502696
BIOLOGY
9 Shear stress preconditioning and microbubble flow pattern modulate ultrasound-assisted plasma membrane permeabilization Memari E; Helfield B; 38988819
BIOLOGY
10 Cardiac gene delivery using ultrasound: State of the field Singh D; Memari E; He S; Yusefi H; Helfield B; 38983873
BIOLOGY
11 Focused ultrasound-assisted delivery of immunomodulating agents in brain cancer Memari E; Khan D; Alkins R; Helfield B; 38266715
BIOLOGY
12 Subharmonic resonance of phospholipid coated ultrasound contrast agent microbubbles Yusefi H; Helfield B; 38217906
BIOLOGY
13 Cavitation-Enhanced Drug Delivery and Immunotherapy Helfield B; Sirsi S; Kwan J; Gray M; 37765176
PHYSICS
14 Fluid flow influences ultrasound-assisted endothelial membrane permeabilization and calcium flux Memari E; Hui F; Yusefi H; Helfield B; 37150403
PHYSICS
15 Stable Cavitation-Mediated Delivery of miR-126 to Endothelial Cells He S; Singh D; Yusefi H; Helfield B; 36559150
BIOLOGY
16 The influence of inter-bubble spacing on the resonance response of ultrasound contrast agent microbubbles Yusefi H; Helfield B; 36223708
BIOLOGY
17 An Overview of Cell Membrane Perforation and Resealing Mechanisms for Localized Drug Delivery He S; Singh D; Helfield B; 35456718
BIOLOGY
18 Lateral Position-Dependent Velocity Estimation Error in Plane-Wave Doppler Ultrasound Systems Wei L; Williams R; Loupas T; Helfield B; Burns PN; 34006440
IMAGING
19 Transendothelial Perforations and the Sphere of Influence of Single-Site Sonoporation. Helfield B, Chen X, Watkins SC, Villanueva FS 32402675
BIOLOGY

 

Title:Investigation of Phase-Change Droplets and Fast Imaging for Indicator Dilution Measurement of Flow
Authors:Zajac ZHelfield BWilliams RSheeran PTremblay-Darveau CYoo KBurns PN
Link:https://pubmed.ncbi.nlm.nih.gov/40387284/
DOI:10.1002/jum.16722
Publication:Journal of ultrasound in medicine : official journal of the American Institute of Ultrasound in Medicine
Keywords:dropletsindicator dilutionultrasound contrast agents
PMID:40387284 Category: Date Added:2025-05-19
Dept Affiliation: BIOLOGY
1 Department of Medical Biophysics, University of Toronto, Toronto, Ontario, Canada.
2 Physical Sciences Department, Sunnybrook Research Institute, Toronto, Ontario, Canada.
3 Department of Physics, Concordia University, Montreal, Quebec, Canada.
4 Department of Biology, Concordia University, Montreal, Quebec, Canada.

Description:

Objectives: The development of low boiling point liquid droplets as phase-change contrast agents allows for the local creation of microbubbles at a point of interest in vivo. Although there are many possible applications, few investigations have used selectively created microbubble boluses to measure volumetric flowrate. In this study, the flow ratio between two vessels is calculated by vaporizing droplets in each vessel individually.

Methods: Proof of principle is demonstrated in vitro by an imaging sequence that vaporizes droplets using a high mechanical index pulse, then images the transit of the resulting microbubbles at a high frame rate using low mechanical index plane waves.

Results: It is shown that a linear relationship exists between the concentration of droplets and enhancement of the resulting microbubble bolus. In vitro flow is measured with a mean error of 8% in a 0.66 cm diameter vessel and with a mean error of 33% in a 0.49 cm diameter vessel. The relative volumetric flow between two adjacent vessels is calculated with a mean percentage error of 25% when imaging the region of droplet vaporization for flow ratios between 0.25 and 4.

Conclusions: This in vitro study demonstrates the feasibility of using a positive bolus tracer, induced by image-guided ultrasound excitation, to measure flow. Potential applications include measurement of the portal vein to hepatic artery flow ratio, known as the hepatic perfusion index.





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