Degeneration of Interpericyte Tunneling Nanotubes Can Occur in the Absence of Pericyte Loss in Diabetic Retina Disease.
H, Q., M, H., PK, Y., DY, Y., & C, B. (2026). Degeneration of Interpericyte Tunneling Nanotubes Can Occur in the Absence of Pericyte Loss in Diabetic Retina Disease.. Investigative ophthalmology & visual science. https://doi.org/10.1167/iovs.67.8.1
H Q, M H, PK Y, DY Y, C B. Degeneration of Interpericyte Tunneling Nanotubes Can Occur in the Absence of Pericyte Loss in Diabetic Retina Disease.. Investigative ophthalmology & visual science. 2026; doi: 10.1167/iovs.67.8.1
H Q, M H, PK Y, et al. Degeneration of Interpericyte Tunneling Nanotubes Can Occur in the Absence of Pericyte Loss in Diabetic Retina Disease.[J]. Investigative ophthalmology & visual science. 2026. DOI: 10.1167/iovs.67.8.1.
@article{h2026,
author = {Qambari H and Hein M and Yu PK and Yu DY and Balaratnasingam C},
title = {Degeneration of Interpericyte Tunneling Nanotubes Can Occur in the Absence of Pericyte Loss in Diabetic Retina Disease.},
journal = {Investigative ophthalmology & visual science},
year = {2026},
doi = {10.1167/iovs.67.8.1},
note = {PMID: 42383815},
}
TY - JOUR AU - Qambari H AU - Hein M AU - Yu PK AU - Yu DY AU - Balaratnasingam C TI - Degeneration of Interpericyte Tunneling Nanotubes Can Occur in the Absence of Pericyte Loss in Diabetic Retina Disease. T2 - Investigative ophthalmology & visual science PY - 2026 DO - 10.1167/iovs.67.8.1 AN - PMID:42383815 ER -
PURPOSE: Interpericyte tunneling nanotubes (IP-TNTs) synchronize pericyte-pericyte communication and regulate microvascular perfusion, processes disrupted in early diabetic retina disease (DRD). We conducted a comprehensive histological examination of IP-TNTs in the normal and diabetic retina using the streptozotocin (STZ)-induced rat model. METHODS: High-resolution confocal microscopy was used to assess IP-TNT density, morphology, and their interactions with pericytes and retinal glia. Quantitative analysis was performed on vessel density, capillary diameter, pericyte distribution, and IP-TNT characteristics across three retinal vascular layers: superior vascular plexus (SVP), intermediate capillary plexus, and deep capillary plexus (DCP). RESULTS: IP-TNTs were present across all retinal vascular plexuses, with the highest density in the SVP and DCP. Diabetic retinas exhibited a significant reduction in IP-TNT density, length, and morphological diversity, particularly in the DCP. The loss of IP-TNTs occurred independently of capillary loss and was associated with preserved vessel density and increased pericyte numbers. Notably, there was a shift in IP-TNT phenotype, with a significant increase in Type 1 (soma-to-soma) IP-TNTs in the DCP of diabetic rats. IP-TNTs were closely associated with retinal glial cells, including astrocytes and Müller cells, suggesting a role in neurovascular-glial interactions. CONCLUSION: Our findings indicate that IP-TNTs are critical components of the retinal microvascular network, and their early degeneration in diabetes may contribute to impaired microvascular autoregulation and pericyte dysfunction. The selective loss of IP-TNTs in the DCP highlights their potential as early biomarkers of diabetic microvascular injury. Modulating IP-TNT stability may represent a promising strategy for early intervention in diabetic retinopathy.