Submitted:
02 August 2026
Posted:
05 August 2026
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Abstract
Keywords:
Key points
- Human retinal vascular development is not a slower version of the mouse astrocyte-template programme. Evidence supports early central vasculogenesis followed by predominantly angiogenic peripheral and intraretinal expansion, with a superficial–intermediate–deep primate sequence rather than the superficial–deep–intermediate mouse sequence.
- Superficial growth, laminar invasion, perfusion, remodelling and iBRB maturation overlap in time but must be measured as distinct outcomes.
- Functional iBRB formation requires more than tight-junction expression: developmental suppression of endothelial transcytosis, MFSD2A induction, PLVAP downregulation, transporter specialization, mural-cell investment and vascular-segment zonation are central.
- Microglia refine the developing retina through several separable actions. Evidence for astrocyte removal and complement-dependent network refinement is causal; other reported microglia–Müller and microglia–endothelial effects are depletion-associated or context-specific
- Neural activity instructs vascular lamination through transmitter- and cell-specific relays, including cholinergic, dopaminergic and glutamatergic pathways coupled to glial or endothelial programmes.
- Engineered vascularization should be benchmarked by stable cell identity, lumenization, flow, quantitative permeability, transcytosis, mural investment, zonation and neural function—not by endothelial markers or network morphology alone.
1. From retinal vascular Development to Reciprocal NVU Assembly
2. Species-Resolved Sequence and Developmental Modes
2.1. Mouse: A Postnatal Angiogenic Sequence
2.2. Human: Central Vasculogenesis Followed by Angiogenesis
2.3. Fovea and Non-Human Primate Evidence
2.4. Integrated Cellular Chronology of NVU Assembly
| Window | Vessels | Astrocytes | Microglia | Pericytes and barrier |
|---|---|---|---|---|
| E8.5–E11.5 | No intraretinal circulation | Retinal colonization has not begun | Primitive yolk-sac myeloid lineages emerge around E8.5–E9.5; retinal microglia are detected by approximately E11.5 | No retinal vascular substrate for mural investment or an iBRB |
| E17–P0 | Superficial angiogenic outgrowth initiates from the optic nerve head around birth | Precursors enter from the optic nerve region from approximately E17 and spread over the retinal nerve-fibre layer | Already resident before the astrocytic and endothelial waves | Recruitment begins with growing endothelium; the evidence does not justify a separate retinal pericyte “birth date” |
| P1–P7/8 | The superficial plexus advances radially and approaches the periphery | The astrocytic network remains ahead of the vascular front; abundance peaks around P5 | Number rises through the first postnatal week to approximately twice adult abundance around P7 | By P5, pericytes cover most endothelial stalks but are absent from leading tip cells; junctions are restrictive while transcytosis remains comparatively high |
| P5–P15 | Deep plexus develops mainly from P7–P12; intermediate plexus begins around P12 and expands through approximately P15 | Total astrocyte abundance falls more than threefold from P5–P14 through microglia-mediated developmental removal | P5 and P10 populations include phagocytic and angiogenic-front-associated states; Hmox1-positive localization at the wavefront is spatial/transcriptomic association, not proof of angiogenic causality | Transcytosis is progressively suppressed and tracer restriction becomes evident around P10, depending on assay; mural coverage stabilizes retained branches |
| P17–P28 | Three-plexus topology remodels toward the mature state | Remaining astrocytes acquire stable vessel-associated organization | Developmental phagocytic programmes decline by P17 and population/topography approach steady state by approximately P28 | Pericytes support established capillaries while transport and segment-specific barrier programmes continue to mature |
| Window | Vessels | Astrocytes | Microglia | Pericytes and barrier |
|---|---|---|---|---|
| 6–8 WG | CD39-positive, CXCR4-positive vascular precursors occur before patent retinal vessels | Retinal colonization is not securely demonstrated in this interval | No secure retinal observation in the sampled developmental series | No defensible retinal first-detection landmark |
| Approximately 9–12 WG | Precursors are present and begin to organize around the optic disc by approximately 12 WG | Colonization is reported to begin around 9–10 WG; direct fetal series demonstrates astrocyte–vascular-front relationships from 12 WG onward | Retinal microglia are present by approximately 10 WG and show regional and laminar unevenness at 12 WG | First recruitment and functional barrier competence remain unresolved |
| 14–21 WG | Endothelial cords organize by 12–14 WG; patent central vessels are present by approximately 15 WG; angiogenic meshes become prominent at 17–21 WG | Precursors and differentiating astrocytes occur near the expanding front but are not the exclusive initiators of the central circulation | Distribution becomes more even by approximately 20 WG, although regional differences remain | NG2-positive mural/pericyte-like cells are observed on the abluminal vessel surface and around the advancing front at approximately 17–20 WG |
| 25–32 WG | Intraretinal budding is visible around 25–26 WG; superficial vascularization approaches the retinal limits by approximately 32 WG | Astrocytes have nearly reached the periphery by approximately 25 WG but remain excluded from the foveal centre and temporal raphe | Laminar maturation continues, but a mouse-like quantitative postnatal trajectory has not been established | Anatomical coverage increases, but marker expression or apposition does not establish functional fetal iBRB competence |
| Late gestation–postnatal | Comparative primate evidence supports superficial, then inner-INL/intermediate, then outer-INL/deep lamination; human maturation continues after birth | Foveal astrocyte exclusion persists | Postnatal human developmental kinetics remain poorly resolved | Functional human iBRB maturation has not been mapped with the temporal and transport resolution available in mouse |

3. Constructing and Remodelling the Superficial Interface
3.1. RGC Axons, Astrocytes and Extracellular Matrix
3.2. Endothelial state, Metabolism and Mechanical Integration
3.3. Flow, Branch Selection and Regression
4. Microglia as Refiners and Relay Partners
4.1. Identity and Developmental Context
4.2. Astrocyte and Neuronal Refinement
4.3. Microglia–Müller–Vascular Coupling: What is Established
| Evidence class | Representative mechanism | What the evidence supports | What it does not yet establish |
|---|---|---|---|
| Cell-specific or pathway-level causal perturbation | RGC/PDGF–astrocyte expansion; Dll4–Notch tip selection; complement-dependent astrocyte refinement; activity-dependent Norrin relay; endothelial MFSD2A control | A defined pathway changes a specified developmental endpoint in a bounded model | Universal conservation across species or developmental windows |
| Depletion-associated | Microglia depletion with altered Müller maturation and intraretinal vascular density | The depleted compartment is required for the composite phenotype under that regimen | The direct ligand, sole intermediate or exclusivity to parenchymal microglia |
| Pharmacological | Receptor inhibition or broad pathway manipulation in explants or whole animals | Pathway sensitivity under the treatment conditions | Cell-autonomous action or absence of off-target effects |
| Spatial or temporal association | Human vascular precursors with candidate SDF-1/SCF, Müller/axonal or foveal guidance cues | Anatomical plausibility and developmental ordering | Causal source–target signalling |
| Context-specific experimental evidence | PLX5622-associated branching changes at P42; microglial HMOX1–endothelial STAT3 signalling in OIR | Microglia can influence retinal vascular architecture at P42 and pathological angiogenesis in OIR | A shared mechanism or direct generalization to normal developmental angiogenesis |
| Hypothesis | Active foveal exclusion; microglial history controlling later vascular support | A testable integrated model | An established mechanism |
5. Neural Activity and Müller Glia Direct Laminar Angiogenesis
6. Pericytes and Construction of the Functional iBRB
6.1. Barrier Maturation has Parallel Gates
6.2. Norrin–FZD4, MFSD2A, Caveolae and Endothelial Zonation
6.3. Pericyte Recruitment, Coverage and Developmental Plasticity
6.4. Flow-Dependent Remodelling and Barrier Competence
| Domain | Minimum measurement | Stronger validation | Common over-interpretation |
|---|---|---|---|
| Vascular structure | Continuous endothelial network and lumen | Three-dimensional lumen continuity and basement membrane | A PECAM1-positive cord is a vessel |
| Perfusion | Intravascular tracer or red-cell transit | Quantified flow direction and velocity | Passive medium access is perfusion |
| Paracellular gate | Junctional continuity plus size-defined permeability | Ultrastructural junctional restriction | CLDN5/TJP1 staining proves an intact barrier |
| Transcellular gate | MFSD2A/PLVAP/CAV1 profile | Vesicle quantification and transcytosis assay | Low bulk leakage proves suppressed transcytosis |
| Selective transport | Influx/efflux transporter panel | Substrate-specific flux and inhibition | One transporter defines retinal endothelial identity |
| Mural support | Pericyte identity and quantitative coverage | Direct apposition, contact duration and functional perturbation | PDGFRβ proximity equals mature investment |
| Zonation | Artery, vein and capillary annotation | Segment-resolved permeability and transcriptomics | A whole-retina average represents every vessel |
| Neural compatibility | Viability and layer organization | Electrophysiology, circuit response and metabolic coupling | Larger tissue or more markers equals an assembled NVU |
7. Model Systems: Causal Power and Benchmarked Limitations
7.1. The Model Should Match the Question
7.2. Vascularized Retinal Organoids
7.3. Stem-Cell-Derived Retinal Endothelium and Microvessels
7.4. A Causal Model Ladder
| Model | Strongest use | Essential benchmark | Cannot establish alone |
|---|---|---|---|
| Neonatal mouse whole mount | Angiogenic sequence, topology, cell-specific causality, flow and tracer leakage | Age, strain, layer, perfusion and vessel-segment annotation | Human central vasculogenesis or foveal development |
| OIR mouse | Vaso-obliteration, reparative regrowth and pathological tufting | Separate quantification of avascular area, regrowth, tufts and leakage | Normal development or human ROP in full |
| Human fetal tissue | Prenatal timing, cell distribution and precursor phenotypes | Gestational age, region, preservation and multiple lineage markers | Lineage or causal source–target signalling |
| Non-human primate | Foveated anatomy, prenatal lamination and circuit context | Species and developmental-stage matching | Automatic equivalence to human timing or gene regulation |
| Conventional retinal organoid | Human neural differentiation and cell-line comparison | Staging, reproducibility and fetal/adult reference mapping | Perfusion, immune history or a complete iBRB |
| Vascularized organoid | Endothelial trophic support and multicellular spatial interaction | Stable endothelial identity, lumens, flow, mural cells and transport | Mature NVU from marker expression alone |
| Retinal endothelial/pericyte co-culture | Contact-dependent signalling and quantitative permeability | Isogenic controls, barrier transport and flow where relevant | Tissue lamination or circuit function |
| Perfused retinal chip | Haemodynamics, transport and controlled multicellular perturbation | Physiological shear, solute-specific flux and cell identity | Whole-organ developmental history |
7.5. Measurement and inference discipline
8. Developmental Vasculopathies and Therapeutic Logic
8.1. Retinopathy of Prematurity and Oxygen-Induced Retinopathy
8.2. Norrin-Pathway Disorders
8.3. Therapeutic Criteria, Not Premature Prescriptions
9. Five Principles and an Experimental Agenda
- Principle 1: species and compartment specify mechanism
- Principle 2: NVU assembly uses relays
- Principle 3: growth, perfusion and barrier acquisition are distinct
- Principle 4: refinement is active
- Principle 5: stabilization is reciprocal and time-limited
-
Experimental priorities
- 1.
- Resolve human vascular precursor lineage. Combine high-quality fetal spatial data with lineage-informed stem-cell models and clone-aware genomic approaches to distinguish resident vasculogenic precursors from sprouting endothelium without treating marker co-expression as lineage proof.
- 2.
- Build an integrated human fetal NVU atlas. Map endothelium, mural cells, astrocytes and myeloid cells against gestational age, central-to-peripheral region, vascular layer and vessel segment, and pair spatial identity with functional barrier measurements. The atlas must preserve donor-level variation and must not substitute marker proximity for developmental interaction [41,49].
- 3.
- Measure human barrier maturation functionally. Establish gestationally staged retinal endothelial references for junctions, transcytosis, transporters and arteriovenous/capillary zonation, then use them to benchmark engineered models.
- 4.
- Test the microglia–Müller relay directly. Pair temporally restricted, compartment-specific manipulation with Müller-cell rescue and deep/intermediate plexus permeability and perfusion endpoints.
- 5.
- Link flow to barrier zonation. Combine segment-resolved haemodynamics, endothelial polarity, MFSD2A/PLVAP state and tracer leakage during normal development and revascularization.
- 6.
- Reconstruct the foveal boundary experimentally. Use primate and human spatial data to test candidate astrocytic, axonal, Müller-cell and antiangiogenic exclusion cues in patterned human systems.
- 7.
- Adopt causal model ladders. Validate a relay in reductionist human culture, a perfused multicellular system and an intact developmental model, with the same direction of perturbation and explicitly different claims at each level.
| Box 1. Minimum evidence for a multicellular developmental mechanism |
- Define species, age, retinal region, vascular layer and physiological or disease state.
- Identify the initiating cell and responding cell with cell-specific perturbation or rescue.
- Establish temporal order and spatial co-occurrence before claiming a relay.
- Measure each proposed intermediate, not only the final endothelial phenotype.
- Distinguish microglia from hyalocytes, border-associated macrophages and recruited monocytes.
- Measure perfusion and permeability when claiming functional vascularization or barrier formation.
- Separate paracellular leakage, transcytosis and selective transporter function.
- Treat animal, donor or independent stem-cell line as the biological replicate and model litter or differentiation batch.
- State what the experiment cannot establish; this is part of the mechanism, not an editorial afterthought.
10. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Declarations
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