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Intravital Video Microscopy Measurements of Retinal Blood Flow in Mice
Published on: December 26, 2013
Computational investigation of blood cell transport in retinal microaneurysms
He Li1, Yixiang Deng1, Konstantina Sampani2,3
1School of Engineering, Brown University, Providence, Rhode Island, United States of America.
Abstract:
Microaneurysms (MAs) are one of the earliest clinically visible signs of diabetic retinopathy (DR). MA leakage or rupture may precipitate local pathology in the surrounding neural retina that impacts visual function. Thrombosis in MAs may affect their turnover time, an indicator associated with visual and anatomic outcomes in the diabetic eyes. In this work, we perform computational modeling of blood flow in microchannels containing various MAs to investigate the pathologies of MAs in DR. The particle-based model employed in this study can explicitly represent red blood cells (RBCs) and platelets as well as their interaction in the blood flow, a process that is very difficult to observe in vivo. Our simulations illustrate that while the main blood flow from the parent vessels can perfuse the entire lumen of MAs with small body-to-neck ratio (BNR), it can only perfuse part of the lumen in MAs with large BNR, particularly at a low hematocrit level, leading to possible hypoxic conditions inside MAs. We also quantify the impacts of the size of MAs, blood flow velocity, hematocrit and RBC stiffness and adhesion on the likelihood of platelets entering MAs as well as their residence time inside, two factors that are thought to be associated with thrombus formation in MAs. Our results show that enlarged MA size, increased blood velocity and hematocrit in the parent vessel of MAs as well as the RBC-RBC adhesion promote the migration of platelets into MAs and also prolong their residence time, thereby increasing the propensity of thrombosis within MAs. Overall, our work suggests that computational simulations using particle-based models can help to understand the microvascular pathology pertaining to MAs in DR and provide insights to stimulate and steer new experimental and computational studies in this area.
Insights
Computational models reveal how microaneurysms in diabetic retinopathy (DR) can lead to thrombosis. Factors like size and blood flow influence platelet buildup, impacting visual outcomes in diabetic eyes.
Area of Science:
- Biomedical Engineering
- Ophthalmology
- Computational Fluid Dynamics
Background:
- Microaneurysms (MAs) are early indicators of diabetic retinopathy (DR).
- MA rupture or thrombosis can lead to vision impairment in diabetic patients.
- Understanding MA pathophysiology is crucial for predicting visual and anatomic outcomes.
Purpose of the Study:
- To computationally model blood flow within microaneurysms (MAs) in diabetic retinopathy (DR).
- To investigate the factors contributing to microaneurysm pathology and thrombosis.
- To provide insights into the mechanisms underlying vision loss in DR.
Main Methods:
- Employed a particle-based computational model to simulate blood flow in microchannels with MAs.
- Explicitly represented red blood cells (RBCs) and platelets, including their interactions.
- Analyzed the impact of MA size, blood flow velocity, hematocrit, and RBC properties on platelet dynamics.
Main Results:
- Simulations showed incomplete perfusion in MAs with large body-to-neck ratios (BNR), especially at low hematocrit, potentially causing hypoxia.
- Enlarged MA size, increased blood velocity, higher hematocrit, and RBC-RBC adhesion promote platelet entry and increase residence time within MAs.
- These factors collectively increase the propensity for thrombus formation in MAs.
Conclusions:
- Particle-based computational models offer valuable insights into microvascular pathologies in DR.
- The study highlights key factors influencing thrombosis in MAs, aiding understanding of DR progression.
- Findings can guide future experimental and computational research on diabetic eye disease.

