1.Difference of Self-identity Levels between Strabismus Patients and Normal Controls.
Youngjun KIM ; Cheron KIM ; Seongjae KIM ; Yongseop HAN ; Inyoung CHUNG ; Seongwook SEO ; Jongmoon PARK ; Jimyong YOO
Korean Journal of Ophthalmology 2016;30(6):410-415
PURPOSE: To evaluate differences in self-identity in patients diagnosed with strabismus, patients who underwent strabismus surgery, and healthy control individuals. METHODS: Self-identity testing was done during a military service physical examination. There were three subject groups: subjects with strabismus (group 1), subjects who had undergone corrective strabismus surgery (group 2), and subjects free of strabismus (group 3). The self-identity test was comprised of six sub-sections (subjectivity, self-acceptance, future confidence, goal orientation, initiative, and familiarity). Statistical significance of the sub-sections was compared across the three groups. Correlations in age at the time of surgery and across the six sub-sections were investigated in group 2. RESULTS: A total of 351 subjects were enrolled in the study; 96 subjects were in group 1, 108 subjects were in group 2, and 147 subjects were in group 3. Significant differences were evident in subjectivity, self-acceptance, initiative and familiarity between groups 1 and 3. No significant differences were found between groups 2 and 3. In group 2, statistical significance was evident between age at surgery and initiative and familiarity (r = −0.333, p < 0.001; r = −0.433, p < 0.001, respectively). CONCLUSIONS: Self-identity is greater in non-strabismus subjects than strabismus subjects. Correction of strabismus may increase self-identity levels.
Adolescent
;
Adult
;
Eye Movements/*physiology
;
*Facial Expression
;
Female
;
Humans
;
Male
;
Oculomotor Muscles/*physiopathology/surgery
;
Ophthalmologic Surgical Procedures
;
Retrospective Studies
;
*Self Concept
;
Strabismus/physiopathology/*psychology/surgery
2.The Stabilization of Postoperative Exo-drift in Intermittent Exotropia after Surgical Treatment.
Hoon PARK ; Won Jae KIM ; Myung Mi KIM
Korean Journal of Ophthalmology 2016;30(1):60-65
PURPOSE: To investigate the long-term clinical course of intermittent exotropia after surgical treatment to determine whether and when postoperative exo-drift stabilizes, and the required postsurgery follow-up duration in cases of intermittent exotropia. METHODS: We retrospectively reviewed the medical records of patients diagnosed with intermittent exotropia who underwent surgical treatment between January 1992 and January 2006 at Yeungnam University Hospital and postoperatively performed regular follow-up examinations for up to 7 years. We also analyzed the difference in exo-drift stabilization, according to surgical procedure. RESULTS: A total of 101 patients were enrolled in the study. Thirty-one patients underwent lateral rectus recession and medial rectus resection (R&R) and 70 patients underwent bilateral lateral rectus recession (BLR). The postoperative angles of deviation increased significantly during the initial 36 months, but no subsequent significant changes were observed for up to 84 months. Follow-ups for 7 years revealed that more than 50% of the total amount of exo-drift was observed within the first postoperative year. In addition, the angles of deviation at 1 year correlated with those at 7 years postoperatively (Pearson correlation coefficient r = 0.517, p < 0.001). No significant exo-drift was observed after 36 months in patients who underwent BLR, whereas after 18 months in patients who underwent R&R. CONCLUSIONS: The minimum postoperative follow-up required after surgical treatment to ensure stable results is 36 months. In particular, careful follow-up is necessary during the first postoperative year to detect rapid exo-drift. Patients who underwent BLR required a longer follow-up than those who underwent R&R to ensure stable postoperative alignment.
Child
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Child, Preschool
;
Exotropia/*physiopathology/surgery
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Female
;
Follow-Up Studies
;
Humans
;
Male
;
Oculomotor Muscles/*physiopathology/surgery
;
*Ophthalmologic Surgical Procedures
;
Postoperative Complications/*physiopathology
;
Retrospective Studies
;
Vision, Binocular/physiology
;
Visual Acuity/physiology
3.Comparison of Postoperative Exodrift after First Unilateral and Second Contralateral Lateral Rectus Recession in Recurrent Exotropia.
Eun Yeong KIM ; Hyun Kyung KIM ; Se Youp LEE ; Young Chun LEE
Korean Journal of Ophthalmology 2016;30(1):48-52
PURPOSE: To compare postoperative exodrift of the first unilateral lateral rectus (ULR) muscle recession with the exodrift of the second contralateral ULR muscle recession in patients with recurrent small-angle exotropia (XT). METHODS: We evaluated the results of a second ULR muscle recession in 19 patients with recurrent XT with deviation angles under 25 prism diopter (PD), following a first procedure of ULR muscle recession for small-angle XT. Recession of the lateral rectus muscle ranged from 8 to 9 mm. The postoperative motor alignment and degree of exodrift were investigated after the first ULR muscle recession and the second ULR muscle recession in the same patients. RESULTS: Observed differences in postoperative ocular alignment between the first ULR muscle recession and the second ULR muscle recession were statistically significant at follow-up periods of six months (7.84 +/- 4.43 vs. 3.89 +/- 3.47 PD), one year (9.58 +/- 4.97 vs. 5.21 +/- 4.94 PD), and at a final follow-up (21.11 +/- 2.98 vs. 7.52 +/- 4.06 PD) after surgery (p = 0.006, 0.013, and 0.000). Postoperative exodrift was statistically different between the first and second ULR muscle recessions at three to six months (2.89 +/-3.75 vs. 0.63 +/- 3.45 PD) and one year to final follow-up (11.52 +/- 5.50 vs. 2.32 +/- 3.53 PD) (p = 0.034 and 0.000). All of the first ULR muscle recession patients showed XT with deviation angles of more than 15 PD at the final follow-up. Regardless, the surgical success rate (<8 PD) after the second ULR recession was 63.16% (12 patients) among the total amount of patients with recurrent XT. CONCLUSIONS: This study shows that changes in exodrift after a second ULR muscle recession are less than changes after the first URL muscle recession among patients with recurrent XT. A second ULR muscle recession may be a useful surgery for small-angle XT patients with deviation angles of 25 PD or less after a first ULR muscle recession.
Child
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Child, Preschool
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*Exotropia/etiology/physiopathology/surgery
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Female
;
Follow-Up Studies
;
Humans
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Male
;
Oculomotor Muscles/physiopathology/*surgery
;
*Ophthalmologic Surgical Procedures
;
*Postoperative Complications
;
Recurrence
;
Retrospective Studies
;
Vision, Binocular/physiology
4.Antielevation Syndrome after Bilateral Anterior Transposition of the Inferior Oblique Muscles.
Korean Journal of Ophthalmology 2016;30(6):485-486
No abstract available.
Child
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Eye Movements/*physiology
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Humans
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Male
;
Oculomotor Muscles/physiopathology/*surgery
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Ophthalmologic Surgical Procedures/*methods
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Strabismus/physiopathology/*surgery
;
Syndrome
5.Comparison of Astigmatism Induced by Combined Inferior Oblique Anterior Transposition Procedure and Lateral Rectus Recession Alone.
Korean Journal of Ophthalmology 2016;30(6):459-467
PURPOSE: The purpose of this study is to compare the magnitude and axis of astigmatism induced by a combined inferior oblique (IO) anterior transposition procedure with lateral rectus (LR) recession versus LR recession alone. METHODS: Forty-six patients were retrospectively analyzed. The subjects were divided into two groups: those having concurrent inferior oblique muscle overaction (IOOA) and intermittent exotropia (group 1, 20 patients) and those having only intermittent exotropia as a control (group 2, 26 patients). Group 1 underwent combined anterior transposition of IO with LR recession and group 2 underwent LR recession alone. Induced astigmatism was defined as the difference between preoperative and postoperative astigmatism using double-angle vector analysis. Cylinder power, axis of induced astigmatism, and spherical equivalent were analyzed at 1 week, 1 month, and 3 months after surgery. RESULTS: Larger changes in the axis of induced astigmatism were observed in group 1, with 4.5° incyclotorsion, than in group 2 at 1 week after surgery (axis, 84.5° vs. 91°; p < 0.001). However, there was no statistically significant inter-group difference thereafter. Relaxation and rapid regression in the incyclotorsion of induced astigmatism were observed over-time. Spherical equivalent significantly decreased postoperatively at 1 month in both groups, indicating a myopic shift (p = 0.011 for group 1 and p = 0.019 for group 2) but did not show significant differences at 3 months after surgery (p = 0.107 for group 1 and p = 0.760 for group 2). CONCLUSIONS: Combined IO anterior transposition procedures caused an increased change in the axis of induced astigmatism, including temporary incyclotorsion, during the first week after surgery. However, this significant difference was not maintained thereafter. Thus, combined IO surgery with LR recession does not seem to produce a sustained astigmatic change, which can be a potential risk factor of postoperative amblyopia or diplopia compared with LR recession alone.
Astigmatism/diagnosis/*etiology/physiopathology
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Child
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Exotropia/diagnosis/physiopathology/*surgery
;
Eye Movements/*physiology
;
Female
;
Follow-Up Studies
;
Humans
;
Male
;
Oculomotor Muscles/*surgery
;
Ophthalmologic Surgical Procedures/*methods
;
Retrospective Studies
;
Treatment Outcome
;
Vision, Binocular/*physiology
6.Comparison of Surgical Outcomes with Unilateral Recession and Resection According to Angle of Deviation in Basic Intermittent Exotropia.
Soon Young CHO ; Se Youp LEE ; Jong Hyun JUNG
Korean Journal of Ophthalmology 2015;29(6):411-417
PURPOSE: The purpose of this study is to compare the surgical outcomes and near stereoacuities after unilateral medial rectus (MR) muscle resection and lateral rectus (LR) recession according to deviation angle in basic intermittent exotropia, X(T). METHODS: Ninety patients with basic type X(T) were included in this study. They underwent unilateral recession of the LR and resection of the MR and were followed postoperatively for at least 12 months. Patients were divided into three groups according to their preoperative deviation angle: group 1 < or =20 prism diopter (PD), 20 PD< group 2 <40 PD, and group 3 > or =40 PD. Surgical outcomes and near stereoacuities one year after surgery were evaluated. Surgical success was defined as having a deviation angle range within +/-10 PD for both near and distance fixation. RESULTS: Among 90 patients, groups 1, 2, and 3 included 30 patients each. The mean age in groups 1, 2, and 3 was 9.4 years, 9.4 years, and 11.0 years, respectively. The surgical success rates one year after surgery for groups 1, 2, and 3 were 80.0%, 73.3%, and 73.3% (chi-square test, p = 0.769), respectively. The undercorrection rates for groups 1, 2, and 3 were 16.7%, 23.3%, and 26.7%, and the overcorrection rates were 3.3%, 3.3%, and 0%, respectively. The mean preoperative near stereoacuities for groups 1, 2, and 3 were 224.3 arcsec, 302.0 arcsec, and 1,107.3 arcsec, and the mean postoperative near stereoacuities were 218.3 arcsec, 214.7 arcsec, and 743.0 arcsec (paired t-test; p = 0.858, p = 0.379, p = 0.083), respectively. CONCLUSIONS: In basic X(T) patients, the amount of angle deviation has no influence on surgical outcomes in unilateral LR recession and MR resection. The near stereoacuities by one year after LR recession and MR resection for intermittent X(T) were not different among patient groups separated by preoperative deviation angle.
Child
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Exotropia/physiopathology/*surgery
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Female
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Follow-Up Studies
;
Humans
;
Male
;
Oculomotor Muscles/physiopathology/*surgery
;
*Ophthalmologic Surgical Procedures
;
Retrospective Studies
;
Treatment Outcome
;
Vision, Binocular/physiology
;
Visual Acuity/physiology
7.Traumatic Rupture of the Superior Oblique Muscle Tendon.
Hye Jin CHUNG ; Ji Won BAEK ; Young Chun LEE
Korean Journal of Ophthalmology 2014;28(3):265-267
Traumatic rupture of the superior oblique muscle is rare. We report a case of a 54-year-old man injured by the metal hook of a hanger, resulting in a rupture of the superior oblique muscle tendon. He complained of torsional diplopia when in the primary position. The distal margin of the superior oblique muscle was reattached to sclera 5 and 9 mm apart from the medial insertion of the superior rectus muscle. One week after the operation, torsional diplopia disappeared. However, a 4-prism diopter ipsilateral hypertropia was observed. Three months later, hypertropia gradually increased to 20 prism dioptors and the second operation was done to correct vertical diplopia.
Diplopia/etiology/physiopathology/surgery
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Eye Injuries/complications/*diagnosis/surgery
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*Eye Movements
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Humans
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Male
;
Middle Aged
;
Oculomotor Muscles/*injuries/physiopathology/surgery
;
Ophthalmologic Surgical Procedures/*methods
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Strabismus/etiology/physiopathology/surgery
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Tendon Injuries/complications/*diagnosis/surgery
8.Relationship of Hypertropia and Excyclotorsion in Superior Oblique Palsy.
Jung Jin LEE ; Ko I CHUN ; Seung Hee BAEK ; Ungsoo Samuel KIM
Korean Journal of Ophthalmology 2013;27(1):39-43
PURPOSE: To evaluate the correlation between hypertropia and excyclotorsion in acquired superior oblique palsy (SOP). METHODS: Thirty-one patients with acquired unilateral SOP were recruited for this study. The torsional angle of each patient was assessed via one objective method (fundus photography) and two subjective methods (double Maddox rod test and major amblyoscope). The patient population was divided into two groups (concordance group, n = 19 and discordance group, n = 12) according to the correspondence between the hypertropic eye (paralytic eye) and the more extorted eye (non-fixating eye), which was evaluated by fundus photography. RESULTS: The mean value of objective torsion was 5.09degrees +/- 3.84degrees. The subjective excyclotorsion degrees were 5.18degrees +/- 4.11degrees and 3.65degrees +/- 1.93degrees as measured by double Maddox rod test and major amblyoscope, respectively. Hypertropia and the excyclotorsional angle did not differ significantly between the groups (p = 0.257). Although no correlation was found in the discordance group, the concordance group showed a significant and positive correlation between hypertropia and excyclotorsion (p = 0.011). CONCLUSIONS: Torsional deviation was not related to hypertropia. However, in the concordance patients in whom the hypertropic eye showed excyclotorsion, a significant positive correlation was found between hypertropia and excyclotorsion.
Adolescent
;
Adult
;
Aged
;
Child
;
Diagnostic Techniques, Ophthalmological
;
Eye Movements
;
Female
;
Follow-Up Studies
;
Humans
;
Male
;
Middle Aged
;
Oculomotor Muscles/*physiopathology
;
Ophthalmologic Surgical Procedures/*methods
;
Ophthalmoplegia/*etiology/physiopathology/surgery
;
Retrospective Studies
;
Strabismus/*etiology/physiopathology/surgery
;
Treatment Outcome
;
Trochlear Nerve Diseases/*complications/physiopathology/surgery
;
Young Adult
9.Postoperative Stabilization of the Strabismic Angle in Intermittent Exotropia.
Junki KWON ; Seung Hyun KIM ; Yoonae A CHO
Korean Journal of Ophthalmology 2012;26(6):446-450
PURPOSE: To analyze the postoperative strabismic angle for five years or more and to investigate when the angle stabilized in intermittent exotropia. METHODS: We retrospectively reviewed the clinical records of 89 patients who had undergone surgery for intermittent exotropia. The postoperative strabismic angles measured were analyzed at one-year intervals up to five years postoperatively. We divided them into two groups according to their age at the time of surgery. Group 1 was less than 5 years of age, while Group 2 participants were 5 years of age or older. RESULTS: For our 89 total patients, average exo-angles were 7.8 +/- 7.26, 7.9 +/- 7.51, 9.5 +/- 7.05, 10.1 +/- 6.87, and 9.4 +/- 6.90 prism diopters at one, two, three, four, and five years postoperatively, respectively. Average exo-angles between postoperative year one and year three, as well as between postoperative year two and year three, were statistically significant (p = 0.015, 0.022). However, the angles were not statistically significant between postoperative year three and year four or between years three and five, respectively (p = 0.707, p = 0.948). The stabilization characteristics of the angle were somewhat different according to age group. In Group 1, the average exo-angle in postoperative years one and three were statistically significant (p = 0.016), but the angle in the same period was not statistically significant in Group 2 (p = 0.203). CONCLUSIONS: There was no significant interval change after three years postoperatively in intermittent exotropia, but if the patient's age at surgery was 5 years or higher, no significant change of exo-angle was found following postoperative year one in this study.
Adolescent
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Child
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Child, Preschool
;
Exotropia/physiopathology/*surgery
;
Eye Movements/*physiology
;
Female
;
Follow-Up Studies
;
Humans
;
Male
;
Oculomotor Muscles/physiopathology/*surgery
;
Postoperative Period
;
*Recovery of Function
;
Retrospective Studies
;
Treatment Outcome
10.Astigmatic Changes after Horizontal Rectus Muscle Surgery in Intermittent Exotropia.
Korean Journal of Ophthalmology 2012;26(6):438-445
PURPOSE: To evaluate the changes of refractive astigmatism after horizontal rectus muscle surgery in intermittent exotropic children. METHODS: Sixty-nine exotropic patients were retrospectively reviewed. Of those, 35 patients received unilateral lateral rectus recession (BLR group, 35 eyes) and 34 patients received unilateral lateral rectus recession and medial rectus resection (R&R group, 34 eyes). Non-cycloplegic refractions were measured until 6 months postoperatively. Spherical equivalent (SE), J0 and J45 using power vectors were calculated to determine and compare the changes of refractive astigmatism and axis in both groups. RESULTS: SE significantly decreased after surgery for the first week and did not changed thereafter in both groups (p = 0.000 and p = 0.018, respectively). In BLR group, J0 showed significant changes at the first week and 1 month after surgery (p = 0.005 and p = 0.016, respectively), but in R&R group, J0 changed significantly between 1 week and 3 months postoperatively (p = 0.023 and p = 0.016, respectively). J45 did not change significantly as time passed in both groups (all p > 0.05). There was no statistically significant difference in the magnitude of changes in SE, J0 and J45 between the two groups after the 6-month follow-up (p = 0.500, p = 0.244 and p = 0.202, respectively). CONCLUSIONS: Horizontal rectus muscle surgery in intermittent exotropic children tends to induce a statistically significant change in astigmatism in the with-the-rule direction and myopic shift in SE. This astigmatism change seems to occur within the first 3 months after surgery. Thus, astigmatism induced by surgery should be checked and corrected at least 3 months after horizontal strabismus surgery.
Adolescent
;
Astigmatism/*etiology/physiopathology
;
Child
;
Child, Preschool
;
Exotropia/complications/physiopathology/*surgery
;
*Eye Movements
;
Female
;
Follow-Up Studies
;
Humans
;
Male
;
Oculomotor Muscles/surgery
;
Ophthalmologic Surgical Procedures/*methods
;
Retrospective Studies
;
Treatment Outcome
;
Vision, Binocular/*physiology

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