

57
Glaucoma postvitrectomia: Factores bioquímicos involucrados en la patogenia
1.
Machemer R, Buettner HM, Norton EW, Parel JM.
Vitrectomy: a pars plana approach. Trans Am Acad
Ophthalmol Otolaryngol 1971;75:813– 820.
2.
Machemer R, Parel JM, Norton EW. Vitrectomy: a pars
plana approach: technical improvements and further
results. Trans Am Acad Ophthalmol Otolaryngol
1972;76:462– 466
3.
Chang MA, Parides MK, Chang S, Braunstein RE.
Outcome of phacoemulsification after pars plana
vitrectomy. Ophthalmology 2002;109:948 –954
4.
Chen PP, Thompson JT. Risk factors for elevated
intraocular pressure after the use of intraocular gases
in vitreoretinal surgery. Ophthalmic Surg Lasers
1997;28:37– 42.
5.
Costarides AP, Alabata P, Bergstrom C. Elevated
intraocular pressure following vitreoretinal surgery.
Ophthalmol Clin North Am 2004;17:507–512.
6.
Chang S. LXII Edward Jackson lecture: open angle
glaucoma after vitrectomy. Am J Ophthalmol
2006;141:1033–1043
7.
Holekamp NM, Shui YB, Beebe DC. Vitrectomy
surgery increases oxygen exposure to the lens: a
possible mechanism for nuclear cataract formation.
Am J Ophthalmol 2005;139: 302–310.
8.
McNulty R, Wang H, Mathias RT, Ortwerth BJ, Truscott
RJ, Bassnett S. Regulation of tissue oxygen levels in
the mammalian lens. J Physiol 2004;559.3;883– 898.
9.
Truscott RJ. Age-related nuclear cataract-oxidation is
the key. Exp Eye Res 2005;80:709 –725
10. Nguyen KP, Chung ML, Anderson PJ, Johnson M,
Epstein DL. Hydrogen peroxide removal by the calf
aqueous outflow pathway. Invest Ophthalmol Vis Sci
1988;29:976 –981.
11. Kahn MG, Giblin FJ, Epstein DL. Glutathione in calf
trabecular meshwork and its relation to aqueous
humor outflow facility. Invest Ophthalmol Vis Sci
1983;24:1283–1287.
12. Sacca SC, Pascotto A, Camicione P, Capris P, Izzotti
A. Oxidative DNA damage in the human trabecular
meshwork: clinical correlation in patients with
primary open-angleglaucoma. Arch Ophthalmol
2005;123:458–463.
13. Izzotti A, Sacca SC, Cartiglia C, De Flora S. Oxidative
deoxyribonucleic acid damage in the eye of glaucoma
patients. Am J Med 2003;114:638–646
14. Caballero M, Liton PB, Epstein DL, Gonzalez P.
Proteasome inhibition by chronic oxidative stress in
human trabecular meshwork cells. Biochem Biophys
Res Commun 2003;308: 346–352.
15. Zhou L, Li Y, Yue BY. Oxidative stress affects cytoskeletal
structure and cell-matrix interactions in cells from an
ocular tissue: the trabecular meshwork. J Cell Physiol
1999;180: 182–189
16. Fiona Luk, Alvin Kwok, Timothy Lai, Dennis Lam.
Presence of crystalline lens as a protective factor for
the late development of open angle glaucoma after
vitrectomy. Retina 2009 29(2)218-24
17. Izzotti A, Sacca SC, Longobardi M, Cartiglia C. Sensitivity
of ocular anterior chamber tissues to oxidative damage
and its relevance to the pathogenesis of glaucoma.
Invest Ophthalmol Vis Sci. 2009; 50:5251–5258
18. Abu-Amero KK, Morales J, Bosley TM. Mitochondrial
abnormalities in patients with primary open-angle
glaucoma. Invest Ophthalmol Vis Sci. 2006;47:2533–2541.
19. Holekamp NM, Shui YB, Beebe DC. Vitrectomy
surgery increases oxygen exposure to the lens: a
possible mechanism for nuclear cataract formation.
Am J Ophthalmol. 2005;139:302–310.
20. Alvord LA, Hall WJ, Keyes LD, Morgan CF, Winterton
LC. Corneal oxygen distribution with contact lens wear.
Cornea. 2007;26:654–664.
21. Bonanno JA, Stickel T, Nguyen T, et al. Estimation of
human corneal oxygen consumption by noninvasive
measurement of tear oxygen tension while wearing
hydrogel lenses. Invest Ophthalmol Vis Sci.
2002;43:371–376.
BIBLIOGRAFÍA