Conceived and designed the experiments: SN SK NY MS HN RH T. Imada MD SW KT. Performed the experiments: MS HN RH T. Imada MD SW. Analyzed the data: SN SK NY MS HN RH T. Imada MD. Wrote the paper: SN SK MD SW KT. Designed the epidemiological study and analyzed the data, and wrote the corresponding part: SK NY MD SW. Performed the clinical portion of the human study and electron microscopy: YO. Performed the pathological analysis of the animal study: T. Imagawa MU. Performed the exocrine analysis of the animal study: IS.
Dry eye has shown a marked increase due to visual display terminal (VDT) use. It remains unclear whether reduced blinking while focusing can have a direct deleterious impact on the lacrimal gland function. To address this issue that potentially affects the life quality, we conducted a large-scale epidemiological study of VDT users and an animal study.
Cross sectional survey carried out in Japan. A total of 1025 office workers who use VDT were enrolled. The association between VDT work duration and changes in tear film status, precorneal tear stability, lipid layer status and tear secretion were analyzed. For the animal model study, the rat VDT user model, placing rats onto a balance swing in combination with exposure to an evaporative environment was used to analyze lacrimal gland function. There was no positive relationship between VDT working duration and change in tear film stability and lipid layer status. The odds ratio for decrease in Schirmer score, index of tear secretion, were significantly increased with VDT working year (
These data suggest that lacrimal gland hypofunction is associated with VDT use and may be a critical mechanism for VDT-associated dry eye. We believe this to be the first mechanistic link to the pathogenesis of dry eye in office workers.
Working related to video display terminals (VDT) has been increasing in the office workplace and their use is growing because of the rapid advance of information technology. Intel estimates that there are close to one billion Internet-connected personal computers throughout the world
The tear film covering the cornea and conjunctiva consists of lipid, aqueous and mucin layers
(A) Image of rat VDT user model. (B) Schematic representation of daily experimental schedule for rat VDT user model. This series of treatments was repeated for up to 20 days.
The characteristics of the study population are shown in
| Variable | Estimate |
| Age (years) | 35.6±10.1 |
| Gender (male) (%) | 335/601 (56) |
| VDT working year (years) | 8.2±5.7 |
| Daily VDT hour (hours) | 5.1±2.7 |
| BUT (sec) | 5.7±2.7 |
| DR-1 grade | 2.3±0.5 |
| Schirmer score (mm/min) | 19.7±10.2 |
*Values represent mean ± standard deviation.
There was no positive relationship between duration of VDT working year and daily using time and change in tear film break up time (BUT) (
| Category | Sub category | Decrease in tear stability (BUT ≤5 sec) | OR |
95% C I |
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| Cases | Controls | ||||
| (n = 297) | (n = 304) | ||||
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92 | 86 | reference | |
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64 | 66 | 0.97 | 0.60, 1.56 | |
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80 | 86 | 0.92 | 0.59, 1.46 | |
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61 | 66 | 0.95 | 0.56, 1.62 | |
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50 | 52 | reference | |
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80 | 78 | 1.07 | 0.64, 1.79 | |
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64 | 75 | 0.89 | 0.52, 1.50 | |
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82 | 59 | 1.50 | 0.88, 2.57 | |
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21 | 40 | 0.65 | 0.32, 1.27 | |
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†OR: odds ratio;
*Adjusted for gender and age;
§Confidence interval.
| Category | Sub category | Tear lipid layer status (DR-1 grade >3) | OR |
95% C I |
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| Cases | Controls | ||||
| (n = 109) | (n = 492) | ||||
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36 | 142 | reference | |
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22 | 108 | 0.90 | 0.49, 1.64 | |
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29 | 137 | 0.99 | 0.55, 1.76 | |
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22 | 105 | 1.05 | 0.53, 2.09 | |
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20 | 82 | reference | |
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25 | 133 | 0.75 | 0.39, 1.45 | |
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20 | 119 | 0.66 | 0.33, 1.32 | |
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24 | 117 | 0.80 | 0.41, 1.59 | |
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20 | 41 | 2.03 | 0.96, 4.34 | |
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†OR: odds ratio;
*Adjusted for gender and age;
§Confidence interval.
| Category | Sub category | Decrease in tear secretion (Schirmer score ≤5 mm) | OR |
95% C I |
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| Cases | Controls | ||||
| (n = 57) | (n = 544) | ||||
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8 | 170 | reference | |
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11 | 119 | 1.84 | 0.69, 5.04 | |
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18 | 148 | 2.49 | 1.02, 6.55 | |
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20 | 107 | 3.61 | 1.39, 10.26 | |
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6 | 96 | reference | |
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13 | 145 | 1.47 | 0.55, 4.39 | |
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10 | 129 | 1.35 | 0.47, 4.23 | |
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16 | 125 | 2.30 | 0.87, 6.89 | |
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12 | 49 | 4.27 | 1.47, 13.66 | |
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†OR: odds ratio;
*Adjusted for gender and age;
§Confidence interval.
In our previous study, we demonstrated that a rat under the swing treatment induced a decrease in blink frequency, the appearance of corneal surface disorder and a decrease in tear secretion
(A) Changes in tear secretion during 20 days of swing use. For rats repeating the daily experimental cycle, the Schirmer test was performed on days 1, 5, 10, 15 and 20. Data represent the mean ± SEM for 16 eyes. **
Tears are secreted from the LGs and are under the control of the parasympathetic nervous system
In the rat VDT user model, dramatic histopathological alterations occurred. The entire area of the LG was occupied by enlarged acini with expanded cytoplasm compared to the normal group (
(A) Left: H & E staining. Left center: Toluidine blue staining. Right center and right: Electron microscopic analysis of acinar cells. Images showing expanded aciner cells accompanied by accumulated enlarged secretory vesicle in the cytoplasm (center), decresed endoplasmic reticulum and increase in the nuclei with dark neucleoplasm (Right) of LG on day 10. Scale bars: Left = 200 µm; Left and right center = 10 µm; Right = 4 µm. (B) Changes in total cell number of LG. Changes of LG cell number were measured 10 days after treatment with or without swing or dry condition. Quantification of LG number was calculated by deoxyribonucleic acid content of the LG. Data represent the mean ± SEM for 8 to 16 eyes. *
We have recently experienced one patient who has been using a VDT for more than 12 hours per day for 15 years. Although this patient does not have Sjogren's syndrome, the lacrimal function was severely suppressed and he was treated by lacrimal punctum plug. Similar to our rat model, the lacrimal biopsy showed a greater amount of accumulated secretory vesicles, as compared to normal subjects
To address effective treatment for preservation of lacrimal dysfunction in VDT users, we studied the effects of modifying daily treatment schedules of our rat model. In the epidemiological study of office workers, we found that reduction of tear secretion was associated with daily working duration (
(A) Effect of shortening the time spent on the swing. Ratios to initial value were calculated. Data represent the mean ± SEM for 16 eyes. *
Although VDT use is defined as a cause of dry eye, little is known about the relationship between tear film status and VDT use. It has been hypothesized that excess evaporation of tear fluid due to extended blinking interval while gazing is a causative factor in VDT-associated dry eye
In the present study, duration of VDT use has an etiologic association with a decrease in tear secretion. These results suggest that chronic reduction of tear production may be induced by VDT use, and indicates that lacrimal hypofunction is the critical mechanism involved in progressive worsening of VDT users dry eye. In order to prevent the occurrence of dry eyes as well as maintain the ocular surface health, attention needs to be paid to the total lifetime working hours.
The mechanism(s) underlying the observed association between VDT and decreased tear secretion are not defined in the present human study
Tear secretion is primarily under the control of the sensory, sympathetic and parasympathetic nervous systems
A few measures were carried out to avoid progression or recovery of lacrimal hypofunction using our rat model. A certain level of delay in progression was achieved by modifying the resting pattern or stimulation of lacrimal function. A complete restoration occurred when rats were moved to an extended duration of resting condition. Our findings indicate that improvement can be expected by modifying daily working conditions or life styles.
Several study limitations need to be considered when interpreting our human results. The data are cross-sectional and do not provide for a direction of causality. Our study population consisted of ethnic Japanese which limits generalizability to other populations. We did not survey other visual tasks such as video games or watching television outside the work environment that may affect blinking pattern. Although dates were adjusted by age and gender, dry eye is a multifactorial disease and we did not study all other confounding factors.
In conclusion, our results from the human and rat studies provided the evidence that not only excess evaporation of tear fluid but also hypofunction of the lacrimal gland contributes to the pathogenesis of VDT-associated dry eye. Since normal tear secretion is essential to maintain homeostasis of ocular surface cells, lacrimal hypofunction is important to the ocular surface just as a pathological situation is likely to promote heart failure in systemic circulation. Our study supports the concept that a proper number of blinks are required in order for healthy LG function to occur. Since VDT use suppresses the blink rate, modifications, such as the use of bigger and clearer characters
Investigations were performed according to the Declaration of Helsinki on Biomedical Research Involving Human Subjects. The epidemiological study was approved by Institutional Review Board of Kyoto Prefectural University of Medicine Review Board and after complete description of the study to the participants, written informed consent was obtained.
We carried out a cross sectional study of 1,025 Japanese (male: 542, female: 483) aged 17 to 73 years (average age 36.0 years, SD 10.0 years) who were engaging in VDT work. The VDT worker is characterized according to the occupational health management guideline for VDT workers
The amount of VDT used per year was calculated from starting year/month to consultation day of the study. Total hours of VDT use per month were calculated and the amount of time of VDT use per day was estimated. Average BUT and Schirmer score from both eyes were analyzed. Unconditional logistic regression analysis was used to calculate odds ratios as an estimate of the relative risk and 95 percent confidence intervals for the association between amount of VDT working duration and the risk of change in precorneal tear film stability, lipid layer status and tear secretion. The tear secretion were categorized into Schirmer score less than 5 mm and 5 mm or more, and precorneal tear film stability were categorized into tear film BUT less than 5 sec and 5 sec or more which is considered the definitive threshold value for dry eye
We excluded participants who lacked data related to tear secretion (3), the amount of VDT use by year or time of VDT use per day (421). The data for the remaining 601 participants (335 males, 266 females) were used for the analyses of the relationship between amount of VDT use and tear function. Statistical analysis was performed using the JMP version 8 (SAS Institute Inc., USA).
Eight-week-old female Sprague-Dawley rats (Tokyo Laboratory Animal Science, Japan) were used for this study. At 1 week prior to the experiments, all animals were quarantined and acclimatized under the following general conditions: room temperature of 23±2°C, relative humidity of 60%±10%, an alternating 12-hour light–dark cycle (8 AM to 8 PM), and water and food available
The model and methodology used for the simulation of VDT has been previously published
In the study that examined shorter times on the swing, the amount of time the rat was on the swing was 4 and 6 hours, respectively. For the study that examined a modified resting pattern, various patterns were used during the 6-hour period the animals were on the swing. The variations used included 3 equal resting/swing periods, five 30-minute resting periods that were each followed by 1 hour on the swing, two 1-hour resting periods that were each followed by 2 hours on the swing, and one 2-hour resting period that was followed by 3 hours on the swing. Lacrimal functions were evaluated after 10 days for each of the different groups. In the study that examined stimulation of lacrimal function, tear fluid secretion was stimulated by subcutaneous injection of 0.75 mg/kg pilocarpine hydrochloride (Merck, Germany) every day after the allocated swing time. The modified Schirmer test was performed before pilocarpine injection on days 5 and 10. In the rehabilitation study, after the initial 10 days of the swing procedure, the animals were placed in cages and maintained under the same general conditions without any further time on the swing. In these animals, the recovery of the lacrimal function was evaluated on days 1, 5 and 10.
We used a modified Schirmer test
Changes in rat tear fluid secretion were measured under general anesthesia by intramuscular injection of an anesthesia cocktail containing ketamine and xylazine. Tear fluid secretion was stimulated by subcutaneous injection of 0.35 mg/kg to 1 mg/kg pilocarpine hydrochloride (Merck, Germany) after 15 minutes of general anesthesia. The Schirmer test was performed 5 minutes before and 30 minutes after pilocarpine injection.
Both exorbital LGs were excised and cut into fragments of 0.5 to 1 mm with a scalpel blade. The fragments were digested with 100 U/µg collagenase (CLS III, Worthington, USA) at 37°C for 30 minutes in 10 mL oxygenated saline solution (OSS, 116 mM NaCl, 5.4 mM KCl, 1.8 mM CaCl2, 0.81 mM MgCl2, 1.01 mM NaH2PO4, 26.2 mM NaHCO3, 5.6 mM dextrose [pH 7.4]), and then washed three times with OSS. After pre-incubation in OSS without carbachol for 30 minutes, the LG were incubated in OSS with 10−3 M carbachol (Cch) (Tokyo Kasei Kougyo, Japan) or without Cch for 90 minutes. During Cch stimulation, the culture medium was exchanged every 30 minutes and maintained at 37°C during the experiment. The protein concentration in the medium was measured using the Bradford reagent (Sigma-Aldrich, USA) with bovine serum albumin used as the standard. The protein secretion rate was calculated as a percentage of the before Cch stimulation value.
Animals were euthanized with an overdose of pentobarbital sodium, and their LGs were removed. For the hematoxylin and eosin staining, the LGs were fixed in 10% formalin. After dehydration, the LG specimens were embedded in paraffin, cross-sectioned, and stained. For the toluidine blue staining, the LGs were fixed with 2.5% glutaraldehyde in 0.1 M phosphate buffer (pH 7.4), then postfixed with 1% osmium tetroxide in 0.1 M phosphate buffer. After dehydration, the LGs were embedded in an epoxy resin, semithin sections were prepared and stained with toluidine blue. They were subsequently examined with a light microscope.
Deoxyribonucleic acid content of the LG was used to calculate cell density and total cell number. The exorbital LGs were excised after the rats were given a lethal dose of sodium pentobarbital. The LG tissue was homogenized in phosphate buffered saline containing 0.5% triton X-100. Propidium iodide (100 µg/ml, Invitrogen, USA) was added to the tissue suspension and fluorescein intensity was measured at an excitation of 530 nm and emission of 620 nm. Deoxyribonucleic acid from salmon sperm (Wako Pure Chemical, Japan) was used as the standard.
The removed LG was fixed with 2.5% glutaraldehyde in 0.1 M phosphate buffer (pH 7.4) for 1 hour. Samples were then post-fixed in 1% osmium tetroxide in 0.1 M phosphate buffer at 4°C for an hour. The LG was dehydrated in graded ethyl alcohols and embedded in Epoc 812. An ultrathin section was cut using a RT-7000 (RMC, USA), stained with uranyl acetate and lead citrate, and then examined with transmission electron microscopy (JEM-100CX; JEOL, Japan).
For the rat studies we used the Student's
TEM images from intensive computer user. Lacrimal biopsy specimen photo taken by an electron microscope. Note the accumulation of abundant secretory vesicles in the acinar cells. (Scale cars: Top 5 µm; Bottom 2 µm.)
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Recovery of LG morphology and corneal surface disorder with long-term rest without swing activity. (A) Effect of extended rest period without the swing on LG cell number After 10 days of swing use and representative H&E-stained sections of LG from recovery group. Rats were maintained 10 days under general conditions without the swing. Data represent the mean ± SEM for 8 to 16 eyes. * P<0.05 versus the normal. Scale bars = 20 µm; (B) Effect of extended rest period without the swing on recovery of corneal surface disorder. Changes in the corneal surface disorder were studied by applying a fluorescein solution. Corneal fluorescein staining was classified with 6 levels that are based on the area of corneal staining. Data represent the mean ± SEM for 8 to 16 eyes. * P<0.05 versus the initial value. Data were analyzed by the Steel test.
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Threshold year and daily working hour for decrease in tear function.
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Rat relaxing under normal conditions. The rat blinked three times during this 20 sec video clip.
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The video was filmed under dry conditions. The frequent blinking was first observed at the point where the airflow began to face the rat.
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The rat was placed on the swing under dry conditions with a constant airflow. No blinking was observed while the rat was on the swing.
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The authors thank Catherine Oshima for her technical support during the preparation of this work.