Abstract
The purpose is to use laws of physics to elucidate the mechanisms behind capillary non-perfusion in diabetic retinopathy. In diabetic retinopathy, loss of pericytes weakens capillary walls and the vessel dilates. A dilated capillary has reduced resistance to flow, therefore increased flow in that vessel and decreased in adjoining capillaries. A preferential shunt vessel is thus formed from the dilated capillary and the adjacent capillaries become non-perfused. We apply the laws of Laplace and Hagen-Poiseuille to better understand the phenomena that lead to capillary non-perfusion. These laws of physics can give a foundation for physical or mathematical models to further elucidate this field of study. The law of Laplace predicts that a weaker vessel wall will dilate, assuming constant transmural pressure. The Hagen-Poiseuille equation for flow and the Ostwald-de Waele relationship for viscosity predict that a dilated vessel will receive a higher portion of the fluid flow than the adjoining capillaries. Viscosity will decrease in the dilated vessel, furthering the imbalance and resulting in a patch of non-perfused capillaries next to the dilated 'preferential' shunt vessel. Physical principles support or inspire novel hypotheses to explain poorly understood phenomena in ophthalmology. This thesis of pericyte death and capillary remodelling, which was first proposed by Cogan and Kuwabara, already agrees with histological and angiographical observations in diabetic retinopathy. We have shown that it is also supported by classical laws of physics.
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References
Cogan DG, Kuwabara T . Capillary shunts in the pathogenesis of diabetic retinopathy. Diabetes 1963; 12: 293–300.
Cogan DG, Toussaint D, Kuwabara T . Retinal vascular patterns. IV. Diabetic retinopathy. Arch Ophthalmol 1961; 66: 366–378.
Arboleda-Velasquez JF, Valdez CN, Marko CK, D'Amore PA . From pathobiology to the targeting of pericytes for the treatment of diabetic retinopathy. Curr Diab Rep 2015; 15 (2): 573.
Power law (Ostwald-deWaele model). In: Gooch JW (ed.) Encyclopedic Dictionary of Polymers Springer: New York, NY, 2007 pp 781–781.
Anand M, Rajagopal KR . A shear-thinning viscoelastic fluid model for describing the flow of blood. Int J Cardiovasc Med Sci 2004; 4: 59–68.
Freund JB . The flow of red blood cells through a narrow spleen-like slit. Phys Fluids 2013; 25 (11): 110807.
Hatchell DL, Wilson CA, Saloupis P . Neutrophils plug capillaries in acute experimental retinal ischemia. Microvasc Res 1994; 47 (3): 344–354.
Schroder S, Palinski W, Schmid-Schonbein GW . Activated monocytes and granulocytes, capillary nonperfusion, and neovascularization in diabetic retinopathy. Am J Pathol 1991; 139 (1): 81–100.
Kim SY, Johnson MA, McLeod DS, Alexander T, Hansen BC, Lutty GA . Neutrophils are associated with capillary closure in spontaneously diabetic monkey retinas. Diabetes 2005; 54 (5): 1534–1542.
Lechner J, O'Leary OE, Stitt AW . The pathology associated with diabetic retinopathy. Vision Res 2017; 139: 7–14.
Ashton N . Vascular basement membrane changes in diabetic retinopathy. Montgomery lecture 1973. Br J Ophthalmol 1974; 58 (4): 344–366.
Bek T . Glial cell involvement in vascular occlusion of diabetic retinopathy. Acta Ophthalmol Scand 1997; 75 (3): 239–243.
Bek T . Immunohistochemical characterization of retinal glial cell changes in areas of vascular occlusion secondary to diabetic retinopathy. Acta Ophthalmol Scand 1997; 75 (4): 388–392.
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Stefánsson, E., Chan, Y., Bek, T. et al. Laws of physics help explain capillary non-perfusion in diabetic retinopathy. Eye 32, 210–212 (2018). https://doi.org/10.1038/eye.2017.313
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DOI: https://doi.org/10.1038/eye.2017.313
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