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CHOROIDAL BLOOD FLOW: Review and Potential Explanation for the Choroidal Venous Anatomy Including the Vortex Vein
1Vitreous, Retina, Macula Consultants of New York, New York, NY.
Insights
Choroidal blood flow may be regulated by a Starling resistor mechanism, influencing venous outflow and impacting ocular diseases. This system could explain choroidal venous anatomy and disease pathogenesis.
Area of Science:
- Ophthalmology
- Cardiovascular Physiology
- Neuroscience
Background:
- The choroid is a highly vascularized tissue crucial for retinal health.
- Understanding choroidal blood flow regulation is vital for diagnosing and treating various eye conditions.
Purpose of the Study:
- To review choroidal blood flow control mechanisms.
- To propose a Starling resistor model for choroidal venous outflow.
- To explain choroidal venous anatomical features.
Main Methods:
- Literature review of choroidal blood flow control mechanisms (autoregulation, neurovascular coupling, myogenic regulation).
- Analogy drawn from cerebral blood flow control in a low-compliance environment.
- Examination of choroidal venous anatomy and potential Starling resistor function.
Main Results:
- Effective autoregulation appears limited in the choroid; myogenic mechanisms may be present.
- Sophisticated neural innervation offers partial blood flow control.
- A Starling resistor effect in the choroidal vortex vein area is proposed, analogous to cerebral venous outflow modulation.
- This mechanism could explain choroidal venous architecture.
Conclusions:
- Choroidal blood flow control, including venous outflow, is critical for ocular health.
- Dysregulation of venous outflow may underlie pathogenic mechanisms in ocular diseases.
- The proposed Starling resistor model offers insights into conditions like central serous chorioretinopathy and spaceflight-associated neuro-ocular syndrome.
Purpose:
To review control mechanisms for blood flow in the choroid, propose a system by which venous outflow is controlled by a Starling resistor, and propose an explanation for the choroidal venous architectural anatomy.
Methods:
The main blood flow control mechanisms were reviewed including autoregulation, neurovascular coupling, and myogenic regulation. Applicable blood flow control mechanisms in the brain, a high flow organ in a low compliance outer shell, were used to examine analogous processes that may be occurring in the choroid.
Results:
There does not seem to be effective autoregulation in the choroid, although myogenic mechanisms may be present. There is a sophisticated neural innervation that provides partial control. Like the brain, the eye has a high pulsatile blood flow rate and is encased in a noncompliant casing. As part of modulating pulsatile pressure in the cranium, the brain uses venous storage and a Starling resistor effect to modulate venous outflow. An analogous function in the eye could be provided by the choroid, which contains fascicles of large veins that converge in vortices to drain out of the eye. This vortex area seems to be where the Starling resistor effect is possible. This mechanism would have important impact on theories of many ocular diseases including central serous chorioretinopathy and spaceflight-associated neuroocular syndrome.
Conclusion:
Control of blood flow is critical in the choroid, and this control seems to extend to the venous outflow system. Abnormalities in venous outflow may critically affect function in predictable pathogenic mechanisms.
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