SBIR-STTR Award

Endovascular Cardiac Optical Mapping
Award last edited on: 9/9/14

Sponsored Program
SBIR
Awarding Agency
NIH : NHLBI
Total Award Amount
$201,492
Award Phase
1
Solicitation Topic Code
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Principal Investigator
Christian S Eversull

Company Information

Aust Development LLC (AKA: AUST)

144 South Whisman Road Unit H
Mountain View, CA 94041
   (650)-618-0940
   info@aust-dev.com
   austmanufacturing.com/
Location: Single
Congr. District: 18
County: Santa Clara

Phase I

Contract Number: 1R43HL116017-01A1
Start Date: 9/2/13    Completed: 9/1/14
Phase I year
2013
Phase I Amount
$201,492
Cardiac arrhythmias affect more than 5 million people nationwide, resulting in more than 1.2 million hospitalizations and 400,000 deaths yearly. The development of cardiac ablation has significantly improved treatment outcomes. Ablation traditionally has relied on electroanatomic mapping which can be tedious and often requires the use of complex navigation systems. Even so, the spatiotemporal resolution of current mapping modalities remains low. These limitations cause ablation to be a highly specialized and costly procedure offered only at select centers. In addition, the effectiveness of ablation is difficult t evaluate during the procedure due to limitations of traditional mapping technologies. The inability to accurately predict ultimate success at the time of initial procedure leads to recurren arrhythmia and repeat ablations. Direct visualization catheters offer simplicity compared to traditional electroanatomic mapping tools in that cardiac anatomy can be directly visualized without the need for complex mapping systems. However, a major limitation of direct visualization catheters is that electrophysiology cannot be directly mapped. For example, in pulmonary vein isolation for atrial fibrillation, although this is largely an anatomically based procedure, direct visualization alone cannot readily facilitate physiologically directed ablation (e.g. ablation based on complex atrial fractionated electrograms or identification of focal rotors) Likewise, when performing substrate modification ablation for ventricular tachycardia, identification of ablation targets visually is problematic at best. Furthermore, as is the case for traditional mapping/ablation systems, ablation efficacy cannot be directly verified, and relies on surrogate endpoints such as electrical block which can be confounded intra-procedurally by tissue edema. Here we propose to combine the simpler approach of a direct visualization catheter with novel, inexpensive, and scalable electrophysiological mapping technology, using voltage sensitive fluorescent dyes to intuitively visualize both anatomy and electrophysiology. In particular, photostable dyes with emissions in the near-infrared spectrum can be optimized for safe in vivo imaging. This system will be applicable to all forms of arrhythmia, including atrial fibrillation, and promises to reduce costs by reducing procedural complexity, procedure time, and arrhythmia recurrence rates. During Phase I the following three specific aims will be addressed: 1. Demonstrate technical feasibility of fluorescence imaging using an affordable light-emitting- diode/single camera system. 2. [Establish preliminary deliverability and safety of optimized near-infrared voltage sensitive dye(s) for clinical use.] 3. Demonstrate the feasibility f a balloon-tipped endovascular visualization catheter to minimally invasively optically map ratiometric voltage in a live animal. In subsequent work, the device and dye designs will be further optimized, dye safety profile will be characterized in more detail, we will refine a clinicl procedural approach in animal models, and the software analysis approach will be expanded, all while pushing toward the ultimate goal of a commercial product.

Public Health Relevance Statement:


Public Health Relevance:
Over five million people in the U.S. suffer from abnormal heart rhythms. At present, only a small fraction of people are offered curative ablation therapy because these procedures are complex and resource intensive. This project takes initial steps to develop a system that allows physicians to directly visualize abnormal heart rhythms and thereby more easily and effectively treat them.

NIH Spending Category:
Bioengineering; Cardiovascular; Heart Disease

Project Terms:
Ablation; Address; Adverse effects; Affect; Anatomy; Animal Model; Animals; Arrhythmia; Atrial Fibrillation; base; Basic Science; Blood; Cardiac; Cardiac ablation; Cardiology; Catheters; Cessation of life; Cicatrix; Clinical; Complex; Computer software; cost; Data; design; Development; Devices; Disease; Dyes; Edema; Effectiveness; Electrophysiology (science); experience; Failure (biologic function); flexibility; Fluorescence; fluorescence imaging; Fluorescent Dyes; Goals; Health Services Accessibility; Heart; Heart Atrium; heart rhythm; Hospitalization; Image; Imagery; Imaging technology; Improve Access; improved; in vivo; Lead; Life; Light; Magnetic Resonance Imaging; Maps; meetings; Modality; Modification; Movement; Navigation System; new technology; Normal tissue morphology; novel; Optics; Outcome; Patients; Phase; Physicians; Procedures; public health relevance; Pulmonary veins; ratiometric; Reaction Time; Recurrence; Research; Resolution; Resources; Safety; Signal Transduction; Source; spatiotemporal; success; Surrogate Endpoint; System; Techniques; Technology; Therapeutic; Time; Tissues; tool; Toxic effect; Treatment outcome; Ventricular Tachycardia; voltage; way finding; Work

Phase II

Contract Number: ----------
Start Date: 00/00/00    Completed: 00/00/00
Phase II year
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Phase II Amount
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