CHOROIDAL BLOOD FLOW: Review and Potential Explanation for the Choroidal Venous Anatomy Including the Vortex Vein

Richard F Spaide1

  • 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.
Abstract

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