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Three-dimensional imaging coupled with topological quantification uncovers retinal vascular plexuses undergoing obliteration

  • Chih Chiang Chang
  • , Alison Chu
  • , Scott Meyer
  • , Yichen Ding
  • , Michel M. Sun
  • , Parinaz Abiri
  • , Kyung In Baek
  • , Varun Gudapati
  • , Xili Ding
  • , Pierre Guihard
  • , Kristina I. Bostrom
  • , Song Li
  • , Lynn K. Gordon
  • , Jie J. Zheng
  • , Tzung K. Hsiai*
  • *Corresponding author for this work
  • University of California at Los Angeles
  • Department of Veterans Affairs
  • California Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Introduction: Murine models provide microvascular insights into the 3-D network disarray seen in retinopathy and cardiovascular diseases. Light-sheet fluorescence microscopy (LSFM) has emerged to capture retinal vasculature in 3-D, allowing for assessment of the progression of retinopathy and the potential to screen new therapeutic targets in mice. We hereby coupled LSFM, also known as selective plane illumination microscopy, with topological quantification, to characterize the retinal vascular plexuses undergoing preferential obliteration. Method and Result: In postnatal mice, we revealed the 3-D retinal microvascular network in which the vertical sprouts bridge the primary (inner) and secondary (outer) plexuses, whereas, in an oxygen-induced retinopathy (OIR) mouse model, we demonstrated preferential obliteration of the secondary plexus and bridging vessels with a relatively unscathed primary plexus. Using clustering coefficients and Euler numbers, we computed the local versus global vascular connectivity. While local connectivity was preserved (p > 0.05, n = 5 vs. normoxia), the global vascular connectivity in hyperoxia-exposed retinas was significantly reduced (p < 0.05, n = 5 vs. normoxia). Applying principal component analysis (PCA) for auto-segmentation of the vertical sprouts, we corroborated the obliteration of the vertical sprouts bridging the secondary plexuses, as evidenced by impaired vascular branching and connectivity, and reduction in vessel volumes and lengths (p < 0.05, n = 5 vs. normoxia). Conclusion: Coupling 3-D LSFM with topological quantification uncovered the retinal vasculature undergoing hyperoxia-induced obliteration from the secondary (outer) plexus to the vertical sprouts. The use of clustering coefficients, Euler's number, and PCA provided new network insights into OIR-associated vascular obliteration, with translational significance for investigating therapeutic interventions to prevent visual impairment.

Original languageEnglish
Pages (from-to)1162-1175
Number of pages14
JournalTheranostics
Volume11
Issue number3
DOIs
StatePublished - 1 Jan 2021
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Light-sheet fluorescence microscopy
  • Oxygen-induced retinopathy
  • Primary and secondary plexus
  • Retinal vasculature
  • Vertical sprouts

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