Photonic sensing of arterial distension
Dominic Ruh1, Sivaraman Subramanian1, Stanislav Sherman1
1Department of Microsystems Engineering - IMTEK, University of Freiburg, Germany.
Insights
A new implantable photonic sensor system measures arterial wall movements in vivo. This innovation offers precise, continuous monitoring for cardiovascular research and diagnostics, aiding in arteriosclerosis and hypertension studies.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Medical Device Technology
Background:
- Cardiovascular diseases like arteriosclerosis and hypertension are linked to abnormal hemodynamics.
- Current diagnostic tools lack the spatiotemporal resolution needed for detailed hemodynamic analysis.
- There is a need for miniaturized, implantable sensors for long-term hemodynamic monitoring.
Purpose of the Study:
- To develop and present an implantable photonic sensor system for high-resolution hemodynamic measurements.
- To enable continuous, long-term monitoring of arterial parameters in vivo.
- To advance cardiovascular diagnostics and research in conditions like arteriosclerosis and hypertension.
Main Methods:
- Utilized transmission photoplethysmography with stretchable optoelectronic sensors.
- Applied sensors directly to large systemic arteries for in vivo measurements.
- Achieved sub-micron resolution and 10 kHz temporal resolution for arterial wall movement sensing.
Main Results:
- Demonstrated an implantable photonic sensor system capable of sensing arterial wall movements.
- Sensed movements of a few hundred microns in vivo with micrometer precision.
- The system provides high spatiotemporal resolution for hemodynamic parameter assessment.
Conclusions:
- The photonic sensor system expands cardiovascular measurement capabilities.
- Enables continuous, long-term accessibility of key vital hemodynamic parameters.
- Offers a novel tool for clinical research and future diagnostic methods in cardiovascular diseases.
Abstract:
Most cardiovascular diseases, such as arteriosclerosis and hypertension, are directly linked to pathological changes in hemodynamics, i.e. the complex coupling of blood pressure, blood flow and arterial distension. To improve the current understanding of cardiovascular diseases and pave the way for novel cardiovascular diagnostics, innovative tools are required that measure pressure, flow, and distension waveforms with yet unattained spatiotemporal resolution. In this context, miniaturized implantable solutions for continuously measuring these parameters over the long-term are of particular interest. We present here an implantable photonic sensor system capable of sensing arterial wall movements of a few hundred microns in vivo with sub-micron resolution, a precision in the micrometer range and a temporal resolution of 10 kHz. The photonic measurement principle is based on transmission photoplethysmography with stretchable optoelectronic sensors applied directly to large systemic arteries. The presented photonic sensor system expands the toolbox of cardiovascular measurement techniques and makes these key vital parameters continuously accessible over the long-term. In the near term, this new approach offers a tool for clinical research, and as a perspective, a continuous long-term monitoring system that enables novel diagnostic methods in arteriosclerosis and hypertension research that follow the trend in quantifying cardiovascular diseases by measuring arterial stiffness and more generally analyzing pulse contours.
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