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Detection and Isolation of Circulating Melanoma Cells using Photoacoustic Flowmetry
Published on: November 25, 2011
Quantifying melanin concentration in retinal pigment epithelium using broadband photoacoustic microscopy
Xiao Shu1,2, Hao Li1,2, Biqin Dong1,3
1Department of Biomedical Engineering, Northwestern University, 2145 Sheridan Rd., Evanston, IL 60201, USA.
Abstract:
Melanin is the dominant light absorber in retinal pigment epithelium (RPE). The loss of RPE melanin is a sign of ocular senescence and is both a risk factor and a symptom of age-related macular degeneration (AMD). Quantifying the RPE melanin concentration provides insight into the pathological role of RPE in ocular aging and the onset and progression of AMD. The main challenge in accurate quantification of RPE melanin concentration is to distinguish this ten-micrometer-thick cell monolayer from the underlying choroid, which also contains melanin but carries different pathognomonic information. In this work, we investigated a three-dimensional photoacoustic microscopic (PAM) method with high axial resolution, empowered by broad acoustic detection bandwidth, to distinguish RPE from choroid and quantify melanin concentrations in the RPE ex vivo. We first conducted numerical simulation on photoacoustic generation in the RPE, which suggested that a PAM system with at least 100-MHz detection bandwidth provided sufficient axial resolution to distinguish the melanin in RPE from that in choroid. Based on simulation results, we integrated a transparent broadband micro-ring resonator (MRR) based detector in a homebuilt PAM system. We imaged ex vivo RPE-choroid complexes (RCCs) from both porcine and human eyes and quantified the absolute melanin concentrations in the RPE and choroid, respectively. In our study, the measured melanin concentrations were 14.7 mg/mL and 17.0 mg/mL in human and porcine RPE, and 12 mg/mL and 61 mg/mL in human and porcine choroid, respectively. This study suggests that broadband PAM is capable of quantifying the RPE melanin concentration from RCCs ex vivo.
Insights
Researchers developed a 3D photoacoustic microscopy (PAM) method to accurately measure melanin in the retinal pigment epithelium (RPE). This technique distinguishes RPE melanin from choroid melanin, aiding in understanding ocular aging and age-related macular degeneration (AMD).
Area of Science:
- Ophthalmology
- Biomedical Optics
- Medical Imaging
Background:
- Melanin in the retinal pigment epithelium (RPE) is crucial for eye health.
- Loss of RPE melanin is linked to ocular senescence and age-related macular degeneration (AMD).
- Accurate quantification of RPE melanin is challenging due to interference from choroidal melanin.
Purpose of the Study:
- To develop and validate a 3D photoacoustic microscopy (PAM) method for distinguishing and quantifying melanin in the RPE layer.
- To assess the potential of PAM in understanding RPE's role in ocular aging and AMD.
- To measure absolute melanin concentrations in ex vivo RPE and choroid tissues.
Main Methods:
- Investigated a 3D photoacoustic microscopic (PAM) method utilizing broad acoustic detection bandwidth for high axial resolution.
- Conducted numerical simulations to determine optimal PAM system bandwidth (≥100 MHz) for RPE/choroid differentiation.
- Integrated a transparent broadband micro-ring resonator (MRR) detector into a custom-built PAM system.
- Imaged ex vivo RPE-choroid complexes (RCCs) from porcine and human eyes.
Main Results:
- The developed PAM system successfully distinguished between RPE and choroid melanin.
- Absolute melanin concentrations were quantified in both RPE and choroid layers.
- Measured human RPE melanin: 14.7 mg/mL; porcine RPE: 17.0 mg/mL.
- Measured human choroid melanin: 12 mg/mL; porcine choroid: 61 mg/mL.
Conclusions:
- Broadband 3D PAM is a viable technique for quantifying RPE melanin concentration ex vivo.
- This method can differentiate RPE melanin from choroid melanin, overcoming a key imaging challenge.
- The findings support PAM's utility in studying ocular aging and AMD pathogenesis.

