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PubMed · 11913244

[When should glaucoma be surgically treated?].

Abstract

The medical treatment of primary open angle glaucoma has progressively become more and more efficient and safe, and surgery is therefore mostly restricted to failure of and intolerance to antiglaucoma eyedrops. Glaucoma surgery may thus cause severe complications and a high risk of failure has tempered its prognostic. Nevertheless, when efficacious, glaucoma surgery definitively resolves two major pitfalls of medical treatment: patient compliance and eyedrops tolerance. Moreover, new surgical developments of surgery have come from the new technique of non-penetrating deep sclerectomy, which is actually an external trabeculectomy involving removal of the area of maximal resistance to aqueous outflow. This procedure has a very low risk of complications, much lower than that of standard trabeculectomy, but its efficacy is still controversial. Whatever the technique chosen for filtering surgery, antimetabolites may be used in order to limit the risk of postoperative fibrosis, but they also expose to specific, sometimes sight-threatening, complications. Therefore, the most important--and also the most difficult--choice for treating glaucoma patients still remains the best timing for surgery, either excessive, useless, and aggressive medical treatment, or systematic primary surgery.

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BibTeXRIS

C Baudouin. 2001. [When should glaucoma be surgically treated?].. https://pubmed.ncbi.nlm.nih.gov/11913244/

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Do scleral flap dimensions influence reliability of intraocular pressure control in experimental trabeculectomy?

AIM: To compare the effect on intraocular pressure (IOP) of large vs small scleral flap size during trabeculectomy using adjustable sutures. METHODS: Trabeculectomy operations were performed on nine donor human eyes connected to a constant flow infusion with real-time IOP monitoring. Large scleral flaps (4 x 4 mm, 16 mm(2), n=12) or small scleral flaps (3 x 2 mm, 6 mm(2), n=9) were constructed over 0.76 mm(2) sclerostomies. For each procedure, equilibrium IOP was measured following tight closure with two four-throw adjustable 10-0 nylon sutures. RESULTS: Five scleral flaps were thin or poorly constructed; four of these were in the initial seven procedures, implying learning effect. These had a mean absolute IOP of 7.6 mmHg (range 2.7-12.4 mmHg) and mean relative IOP of 28.3% of baseline (range 10-45.8%) after closure. In the remaining 16 good quality procedures, mean IOP was 1.3 mmHg (range 0-3.4 mmHg) after sclerostomy, confirming minimal outflow resistance before closure. Following flap closure mean IOP was 20 mmHg (SD 4.4, range 15.5-29.3 mmHg) for large (n=8), and 18.7 mmHg (SD 3.6, 15.9-25.8 mmHg) for small (n=8) flaps (unpaired t-test, P=0.26). Mean IOP (% baseline) was 71.6% (SD 8.4, range 60.6-86.6%) and 66% (SD=12.7, 46.8-86.6%) for large and small flap groups, respectively (unpaired t-test, P=0.2). CONCLUSIONS: Well-constructed scleral flaps of both sizes were able to support an average IOP at least two-thirds of baseline, and both had similar absolute IOP levels. Errors in flap construction resulted in loss of IOP control. Smaller flap size does not appear to compromise control of early postoperative IOP using adjustable sutures.

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