Absolute retinal blood flow measurement with a dual-beam Doppler optical coherence tomography.

PURPOSE To test the capability of a novel dual-beam Doppler optical coherence tomography (OCT) technique for simultaneous in vivo measurement of the Doppler angle and, thus, the absolute retinal blood velocity and the retinal flow rate, without the influence of motion artifacts. METHODS A novel dual-beam Doppler spectral domain OCT (SD-OCT) was developed. The two probing beams are separated with a controllable distance along an arbitrary direction, both of which are controlled by two independent 2D optical scanners. Two sets of optical Doppler tomography (ODT) images are acquired simultaneously. The Doppler angle of each blood vessel segment is calculated from the relative coordinates of the centers of the blood vessel in the two corresponding ODT images. The absolute blood flow velocity and the volumetric blood flow rate can then be calculated. To measure the total retinal blood flow, we used a circular scan pattern centered at the optic disc to obtain two sets of concentric OCT/ODT images simultaneously. RESULTS We imaged two normal human subjects at ages of 48 and 34 years. The total retinal blood flow rates of the two human subjects were calculated to be 47.01 μL/min (older subject) and 51.37 μL/min (younger subject), respectively. Results showed that the performance of this imaging system is immune to eye movement, since the two sets of ODT images were acquired simultaneously. CONCLUSIONS The dual-beam OCT/ODT system is successful in measuring the absolute retinal blood velocity and the volumetric flow rate. The advantage of the technique is that the two sets of ODT images used for the calculation are acquired simultaneously, which eliminates the influence of eye motion and ensures the accuracy of the calculated hemodynamic parameters.

[1]  David Huang,et al.  Relationship among visual field, blood flow, and neural structure measurements in glaucoma. , 2012, Investigative ophthalmology & visual science.

[2]  Leopold Schmetterer,et al.  Measurement of absolute blood flow velocity and blood flow in the human retina by dual-beam bidirectional Doppler fourier-domain optical coherence tomography. , 2012, Investigative ophthalmology & visual science.

[3]  Teresa C. Chen,et al.  In vivo dynamic human retinal blood flow imaging using ultra-high-speed spectral domain optical Doppler tomography , 2003 .

[4]  Victor X D Yang,et al.  High speed, wide velocity dynamic range Doppler optical coherence tomography (Part II): Imaging in vivo cardiac dynamics of Xenopus laevis. , 2003, Optics express.

[5]  Maciej Wojtkowski,et al.  Real-time measurement of in vitro flow by Fourier-domain color Doppler optical coherence tomography. , 2004, Optics letters.

[6]  J. Izatt,et al.  Retinal blood flow measurement by circumpapillary Fourier domain Doppler optical coherence tomography. , 2008, Journal of biomedical optics.

[7]  Carmen A. Puliafito,et al.  Automatic retinal blood flow calculation using spectral domain optical coherence tomography , 2007 .

[8]  L. Schmetterer,et al.  Retinal blood flow in healthy young subjects. , 2012, Investigative ophthalmology & visual science.

[9]  Richard B. Rosen,et al.  Retinal Blood Flow in the Normal Human Eye Using the Canon Laser Blood Flowmeter , 2002, Ophthalmic Research.

[10]  Quing Zhu,et al.  Quantifying Doppler angle and mapping flow velocity by a combination of Doppler-shift and Doppler-bandwidth measurements in optical Doppler tomography. , 2003, Applied optics.

[11]  Daniel X Hammer,et al.  Dual-beam Fourier domain optical Doppler tomography of zebrafish. , 2008, Optics express.

[12]  E. Stefánsson,et al.  The impact of ocular blood flow in glaucoma , 2002, Progress in Retinal and Eye Research.

[13]  Martin F. Kraus,et al.  Total retinal blood flow measurement with ultrahigh speed swept source/Fourier domain OCT , 2011, Biomedical optics express.

[14]  Leopold Schmetterer,et al.  Bidirectional Doppler Fourier-domain optical coherence tomography for measurement of absolute flow velocities in human retinal vessels. , 2008, Optics letters.

[15]  Joseph A Izatt,et al.  In vivo total retinal blood flow measurement by Fourier domain Doppler optical coherence tomography. , 2007, Journal of biomedical optics.

[16]  L. Schmetterer,et al.  Response of Retinal Blood Flow to Systemic Hyperoxia as Measured with Dual-Beam Bidirectional Doppler Fourier-Domain Optical Coherence Tomography , 2012, PloS one.

[17]  B L Petrig,et al.  Blood velocity and volumetric flow rate in human retinal vessels. , 1985, Investigative ophthalmology & visual science.

[18]  David Huang,et al.  Measurement of absolute flow velocity vector using dual-angle, delay-encoded Doppler optical coherence tomography. , 2007, Optics letters.

[19]  Shuichi Makita,et al.  Quantitative retinal-blood flow measurement with three-dimensional vessel geometry determination using ultrahigh-resolution Doppler optical coherence angiography. , 2008, Optics letters.