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Biomedical subjects

Mark J Greenwald

Publications and source records attributed to Mark J Greenwald.

3 recordsLinked to original sources

Refractive abnormalities in childhood.

The knowledgeable pediatrician can make a significant contribution to the management of refractive errors by aiding in the early recognition of abnormalities, making appropriate referrals, and reinforcing the ophthalmologist's recommendations to the family. If this article has focused the reader's attention and caused a few rays of light to fall on an important subject, it has achieved its purpose.

Accommodation, Ocular↗

Rhegmatogenous retinal detachments in children: risk factors and surgical outcomes.

PURPOSE: To describe the presenting features and surgical outcomes in a series of children with rhegmatogenous retinal detachments. DESIGN: Retrospective, noncomparative, interventional case series. PARTICIPANTS: Thirty-nine eyes of 34 children 18 years of age or younger undergoing surgery for rhegmatogenous retinal detachment. METHODS: Patients were identified by chart review at two affiliated tertiary care centers. Risk factors for retinal detachment were classified into four categories: (1). congenital or developmental structural ocular abnormalities, (2). trauma, (3). previous ophthalmologic surgery, and (4). preceding uveitis. RESULTS: Median age was 10 years, and 79% of patients were boys. Nine patients (26%) had bilateral retinal detachment at presentation, or experienced a detachment in their second eye before their nineteenth birthday. Every eye had at least one risk factor for retinal detachment, and more than half had risk factors in two or more categories. Structural abnormalities were most common (56%). Fifty-one percent of eyes underwent previous surgery, 36% experienced trauma, and 15% had uveitis. Detachments tended to be complex. Median follow-up was 24 months. Retinal reattachment was achieved in 79% of eyes; however, visual recovery was modest. Median preoperative and postoperative visual acuities were counting fingers and 20/400, respectively. Predictors of a poor visual outcome were: unmeasurable or light perception-only preoperative vision (P = 0.0001), macula-off retinal detachment (P = 0.01), the need for vitrectomy surgery (P = 0.01), the presence of proliferative vitreoretinopathy grade C or worse (P = 0.02), and the use of silicone oil (P = 0.02). CONCLUSIONS: Predisposing factors in pediatric retinal detachments, particularly congenital and developmental structural abnormalities, may be more common than previously reported. Modern vitreoretinal surgical techniques can help achieve retinal reattachment in most cases. Many factors contribute to the limited visual recovery in this patient population. Predictors of visual outcomes are similar to those observed in adults. Inability of the clinician to determine confidently the preoperative visual acuity is a newly identified predictor of poor visual outcomes.

Adolescent↗

When may the posterior capsule be preserved in pediatric intraocular lens surgery?

PURPOSE: To refine indications for primary posterior capsulotomy (PPC) in conjunction with posterior chamber intraocular lens (PCIOL) implantation for cataract in childhood. DESIGN: Noncomparative case series. PARTICIPANTS: Patients 1 to 13 years old who underwent cataract extraction with intent to preserve the posterior lens capsule and PCIOL implantation between January 1992 and December 1998 at a pediatric hospital. METHODS: Medical records were reviewed to determine the frequency and timing of posterior capsule opacification (PCO) after PCIOL surgery with preservation of an intact posterior capsule. Comparison of pseudophakic PCO rates for groups defined by age and several possible risk factors. Assessment of safety and efficacy for PPC with anterior vitrectomy performed through a limbal incision in cases where the posterior capsule could not be preserved. MAIN OUTCOME MEASURES: Need for neodymium:yttrium-aluminum-garnet laser capsulotomy or surgical membranectomy to treat PCO. RESULTS: PCO occurred in 40% of 30 eyes with intact posterior capsule. Mean follow-up duration was 22 months for eyes that had PCO develop and 24 months for those in which the posterior capsule remained clear. Laser capsulotomy was required for 64% of 14 eyes in the 1- to 6-year-old age range but for only 19% of 16 in the 6- to 13-year-old range (P < 0.05). Mean time from surgery to PCO was 7 months for the younger group and 13 months for the older group. A need for repeated capsulotomy (one eye) or membranectomy with anterior vitrectomy (two eyes) was found only in the younger age group. There was no association of PCO with trauma history, cataract type, residual lens cortex, IOL position, or postoperative fibrin clot. Final vision was possibly compromised as a result of PCO in one eye with amblyopia. None of 24 eyes in which PPC with anterior vitrectomy was performed out of intraoperative necessity before primary PCIOL implantation had secondary opacification develop. No reduction in postoperative vision was attributable to PPC. CONCLUSIONS: PPC seems to be advisable for children less than 6 years old when cataract extraction with PCIOL implantation is performed. Preservation of the posterior capsule remains appropriate for older children with pseudophakia.

Adolescent↗