An automated quantitative meibomian gland analyzer based on all kinds of infrared meibomian gland images was develop to obtain more detail in meibomian gland, including width, length, area, signal intensity correlated to the quality of meibum, deformation index and ratio of area of each visible specific gland. The purpose of this study is present as separate sections the following points: (1) to compared the detailed characteristics of meibomian glands in normal subjects, Meibomian gland dysfunction (MGD) patients by the automated quantitative analyzer; (2) to identify the inter-examiner and intra-examiner repeatability of the new technique; (3) to explore the correlation among morphological and functional parameters of meibomian gland and risk factors,clinical symptoms and signs; (4) to explore the sensitivity and specificity of meibomian gland morphological and functional parameters in MGD diagnosis. (5) using morphological and functional parameters as new assessment of MGD severity and efficacy indicators for treatment.
Meibomian glands are essential for maintaining ocular surface health and integrity secrete various lipid components to forms a lipid layer to prevent excessive tear evaporation. Functional disorders of the meibomian glands, referred to today as meibomian gland dysfunction (MGD), are increasingly recognized as a high incidence disease commonly characterized by terminal duct obstruction and/or abnormal glandular secretion, often results in ocular surface epithelium damage, chronic blepharitis and dry eye disease that significantly reduces quality of life. A wide variation of the prevalence of MGD were reported from 0.39% to 69.3%, which is likely due to lack of diagnostic methods. To identify which clinical features are likely to be predictive of progressive disease in MGD may indicate the early diagnosis and proper treatment strategies. Histologic section through the normal meibomian glands and the obstructed human meibomian gland revealed that obstruction of orifice in MGD could lead to dilation of the central duct, damage of the secretory meibocytes and finally result in atrophy of dilated meibomian glands and glands drop-out. It was thus be accepted that detailed changes of meibomian glands morphology are key signs to diagnose and evaluate the severity of MGD. The detailed changes including dilation, distortion, shortening and loss of visualisation of glands which can be directly observed and visual assessment by the developed of non-contact meibomian gland infrared imaging technology. Quantitative evaluations of meibomian glands were obtain by developing imaging processing techniques. The most common use is the image editing software Image J (National Institute of Health; http://imagej.nih.gov/ij) which can identify the gland region on the image manually by the users and may lead to inter-observer variability. Koh et al., first applied original algorithms to automatically analysed gland loss in meibography images with a manually pre-processing. Reiko et al., then develop an objective and automatic system to measure the meibomian gland area. However, the existing methods of meibomian gland analysis have been limited to clinical use where large number of images needs to be analyzed efficiently due to the inter-observer variability or time-consuming process. Meanwhile, the existing quantitative morphological parameters obtain by those imaging processing techniques, including percentage of MG drop-out and gland atrophy area, were suggested to not only be advanced stages or terminal changes in MGD, but also occurs as an age-related atrophic process. The early findings of MGD induced by the primary pathologic obstruction including degenerative gland dilation, irregularly shapes of gland and change of meibum quality are still difficult to be evaluated automatically and quantitively from the image. Moreover, the meibomian gland drop-out is still an approximate assessment without specific pattern. Whether the atrophy or loss occur in upper or lower eyelids, central, distal or proximal, total loss of gland or partial loss of gland has the greatest effect on the pathology progress of MGD will be important to identify. Thus, a comprehensive analysis technique to automatically detect multi-information of meibomian gland morphology will benefit the future early diagnosis and management of MGD. Recently, an automated quantitative meibomian gland analyzer based on all kinds of infrared meibomian gland images was develop to obtain more detail in meibomian gland, including width, length, area, signal intensity correlated to the quality of meibum, deformation index and ratio of area of each visible specific gland. The purpose of this study is present as separate sections the following points: (1) to compared the detailed characteristics of meibomian glands in normal subjects and MGD patients by the automated quantitative analyzer; (2) to identify the inter-examiner and intra-examiner repeatability of the new technique; (3) to explore the correlation among morphological and functional parameters of meibomian gland and risk factors,clinical symptoms and signs; (4) to explore the sensitivity and specificity of meibomian gland morphological and functional parameters in MGD diagnosis. (5) using morphological and functional parameters as new assessment of MGD severity and efficacy indicators for treatment.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
NONE
Enrollment
180
Participants underwent a single LipiFlow® thermal pulsation system (TearScience Inc., Morrisville, NC,USA) treatment on the first visit: after lid hygiene with wet cotton swabs(OCuSOFT, Inc., Texas, USA) and instillation of anesthetic eye drops (Alcaine, proparacaine hydrochloride 0.4 ml/2mg) in both eyes, sterile eye cups were placed on to the conjunctival sac as instructed by the manufacturer, after 12 minutes of upper and lower palpebral conjunctival surfaces heat while simultaneously graded pulsatile pressure applying, eye cups were removed slightly.
Lid hygiene with wet cotton swabs(OCuSOFT, Inc., Texas, USA) before treatment. Intense pulsed light (IPL) with a range of wavelength (570 or 620 nm) was performed every 3 weeks,3 times in total (0, 3w, 6w). 10 pulses were transmited from one tragus through nose to the other tragus was a single pass, each treatment needed to do 2 passes. Manual lid massage was done after per IPL treatment.
Lids hygiene of both eyes with wet cotton swabs(OCuSOFT, Inc., Texas, USA).Commercial heated eye patch was use for 10 min. Manual lid massage every 2 weeks, 5 times in total(0,2w, 4w, 4w, 8w).
Zhongshan Ophthalmic Center, Sun Yat-Sen University
Guangzhou, Guangdong, China
RECRUITINGDeng Yuqing
Guangzhou, China
RECRUITINGMophology of meibomian glands
Infrared photography of inversed upper meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mophology features of meibomian glands in millimeter.
Time frame: 30 days after commencement of treatment
Functional feature of meibomian glands
Infrared photography of inversed upper and lower meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mean signal intensity of meibomian glands in millimeter.
Time frame: 30 days after commencement of treatment
Non-invasive tear-film break-up time
Non-invasived tear-film break-up time is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) with a scale of seconds. Higher values represent a better outcome
Time frame: Baseline
Non-invasive tear-film break-up time
Non-invasived tear-film break-up time is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) with a scale of seconds. Higher values represent a better outcome
Time frame: 15 days after commencement of treatment
Non-invasive tear-film break-up time
Non-invasived tear-film break-up time is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) with a scale of seconds. Higher values represent a better outcome
Time frame: 30 days after commencement of treatment
Non-invasive tear-film break-up time
Non-invasived tear-film break-up time is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) with a scale of seconds. Higher values represent a better outcome
Time frame: 90 days after commencement of treatment
Non-invasive tear-film break-up time
Non-invasived tear-film break-up time is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) with a scale of seconds. Higher values represent a better outcome
Time frame: 180 days after commencement of treatment
Non-invasive tear meniscus height
Non-invasived tear meniscus height is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) in millimeter. The value higher than 0.20 mm was provided as a normal condition of tear secretion.
Time frame: Baseline
Non-invasive tear meniscus height
Non-invasived tear meniscus height is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) in millimeter. The value higher than 0.20 mm was provided as a normal condition of tear secretion.
Time frame: 15 days after commencement of treatment
Non-invasive tear meniscus height
Non-invasived tear meniscus height is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) in millimeter. The value higher than 0.20 mm was provided as a normal condition of tear secretion.
Time frame: 30 days after commencement of treatment
Non-invasive tear meniscus height
Non-invasived tear meniscus height is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) in millimeter. The value higher than 0.20 mm was provided as a normal condition of tear secretion.
Time frame: 90 days after commencement of treatment
Non-invasive tear meniscus height
Non-invasived tear meniscus height is measured by tear film pattern of Keratograph 5M (Oculus, Wetzlar, Germany) in millimeter. The value higher than 0.20 mm was provided as a normal condition of tear secretion.
Time frame: 180 days after commencement of treatment
Tear film lipid layer thicknesses
Tear film lipid layer thicknesses were averaged in nanometer(0-100nm) during 20 seconds by LipiView II (Tear Science, Morrisville, NC).
Time frame: Baseline
Tear film lipid layer thicknesses
Tear film lipid layer thicknesses were averaged in nanometer(0-100nm) during 20 seconds by LipiView II (Tear Science, Morrisville, NC).
Time frame: 15 days after commencement of treatment
Tear film lipid layer thicknesses
Tear film lipid layer thicknesses were averaged in nanometer(0-100nm) during 20 seconds by LipiView II (Tear Science, Morrisville, NC).
Time frame: 30 days after commencement of treatment
Tear film lipid layer thicknesses
Tear film lipid layer thicknesses were averaged in nanometer(0-100nm) during 20 seconds by LipiView II (Tear Science, Morrisville, NC).
Time frame: 90 days after commencement of treatment
Tear film lipid layer thicknesses
Tear film lipid layer thicknesses were averaged in nanometer(0-100nm) during 20 seconds by LipiView II (Tear Science, Morrisville, NC).
Time frame: 180 days after commencement of treatment
The pattern of eye blinks
The pattern of eye blinks including numbers of incompleted and completed blinks during 20 seconds were measured by LipiView II (Tear Science, Morrisville, NC).
Time frame: Baseline
The pattern of eye blinks
Tear film lipid layer thicknesses and numbers of incomplete blinks during 20 seconds were measured by LipiView II (Tear Science, Morrisville, NC).
Time frame: 15 days after commencement of treatment
The pattern of eye blinks
Tear film lipid layer thicknesses and numbers of incomplete blinks during 20 seconds were measured by LipiView II (Tear Science, Morrisville, NC).
Time frame: 30 days after commencement of treatment
The pattern of eye blinks
Tear film lipid layer thicknesses and numbers of incomplete blinks during 20 seconds were measured by LipiView II (Tear Science, Morrisville, NC).
Time frame: 90 days after commencement of treatment
The pattern of eye blinks
Tear film lipid layer thicknesses and numbers of incomplete blinks during 20 seconds were measured by LipiView II (Tear Science, Morrisville, NC).
Time frame: 180 days after commencement of treatment
Lid margin signs
Three lid margin abnormalities (irregular lid margin, plugging of meibomian gland orifices, and anterior or posterior replacement of the mucocutaneous junction) were scored from 0 through 4 according to the number of these abnormalities that were present in each eye. Higher scores represent a worse outcome.
Time frame: baseline
Lid margin signs
Three lid margin abnormalities (irregular lid margin, plugging of meibomian gland orifices, and anterior or posterior replacement of the mucocutaneous junction) were scored from 0 through 4 according to the number of these abnormalities that were present in each eye. Higher scores represent a worse outcome.
Time frame: 15 days after commencement of treatment
Lid margin signs
Three lid margin abnormalities (irregular lid margin, plugging of meibomian gland orifices, and anterior or posterior replacement of the mucocutaneous junction) were scored from 0 through 4 according to the number of these abnormalities that were present in each eye. Higher scores represent a worse outcome.
Time frame: 30 days after commencement of treatment
Lid margin signs
Three lid margin abnormalities (irregular lid margin, plugging of meibomian gland orifices, and anterior or posterior replacement of the mucocutaneous junction) were scored from 0 through 4 according to the number of these abnormalities that were present in each eye. Higher scores represent a worse outcome.
Time frame: 90 days after commencement of treatment
Lid margin signs
Three lid margin abnormalities (irregular lid margin, plugging of meibomian gland orifices, and anterior or posterior replacement of the mucocutaneous junction) were scored from 0 through 4 according to the number of these abnormalities that were present in each eye. Higher scores represent a worse outcome.
Time frame: 180 days after commencement of treatment
Meibum expressibility
Meibum expressibility were measured by firm digital pressure of Meibomian gland diagnostic Expressibility (Tear Sience, Morrisville, NC): For each of these glands, the secretion was graded as follows: 0:no secretion; 1: inspissated/ toothpaste consistency; 2: cloudy liquid secretion and 3: clear liquid secretion19. The scores were then summed in 15 glands to a single meibomian gland yield secretion score (MGYSS) with a range from 0 to 45. Higher values represent a better outcome.
Time frame: baseline
Meibum expressibility
Meibum expressibility were measured by firm digital pressure of Meibomian gland diagnostic Expressibility (Tear Sience, Morrisville, NC): For each of these glands, the secretion was graded as follows: 0:no secretion; 1: inspissated/ toothpaste consistency; 2: cloudy liquid secretion and 3: clear liquid secretion19. The scores were then summed in 15 glands to a single meibomian gland yield secretion score (MGYSS) with a range from 0 to 45. Higher values represent a better outcome.
Time frame: 15 days after commencement of treatment
Meibum expressibility
Meibum expressibility were measured by firm digital pressure of Meibomian gland diagnostic Expressibility (Tear Sience, Morrisville, NC): For each of these glands, the secretion was graded as follows: 0:no secretion; 1: inspissated/ toothpaste consistency; 2: cloudy liquid secretion and 3: clear liquid secretion19. The scores were then summed in 15 glands to a single meibomian gland yield secretion score (MGYSS) with a range from 0 to 45. Higher values represent a better outcome.
Time frame: 30 days after commencement of treatment
Meibum expressibility
Meibum expressibility were measured by firm digital pressure of Meibomian gland diagnostic Expressibility (Tear Sience, Morrisville, NC): For each of these glands, the secretion was graded as follows: 0:no secretion; 1: inspissated/ toothpaste consistency; 2: cloudy liquid secretion and 3: clear liquid secretion19. The scores were then summed in 15 glands to a single meibomian gland yield secretion score (MGYSS) with a range from 0 to 45. Higher values represent a better outcome.
Time frame: 90 days after commencement of treatment
Meibum expressibility
Meibum expressibility were measured by firm digital pressure of Meibomian gland diagnostic Expressibility (Tear Sience, Morrisville, NC): For each of these glands, the secretion was graded as follows: 0:no secretion; 1: inspissated/ toothpaste consistency; 2: cloudy liquid secretion and 3: clear liquid secretion19. The scores were then summed in 15 glands to a single meibomian gland yield secretion score (MGYSS) with a range from 0 to 45. Higher values represent a better outcome.
Time frame: 180 days after commencement of treatment
Corneal Fluorescein Staining
Fluorescein was administered into the conjunctival sac under a cobalt blue light from the slit lamp. Corneal epithelial cell disruption was measured via corneal staining (National Eye Institute (NEI) scale (0-3 scale for each area of 5 areas, total score 15). Higher values represent a worse outcome.
Time frame: baseline
Corneal Fluorescein Staining
Fluorescein was administered into the conjunctival sac under a cobalt blue light from the slit lamp. Corneal epithelial cell disruption was measured via corneal staining (National Eye Institute (NEI) scale (0-3 scale for each area of 5 areas, total score 15). Higher values represent a worse outcome.
Time frame: 15 days after commencement of treatment
Corneal Fluorescein Staining
Fluorescein was administered into the conjunctival sac under a cobalt blue light from the slit lamp. Corneal epithelial cell disruption was measured via corneal staining (National Eye Institute (NEI) scale (0-3 scale for each area of 5 areas, total score 15). Higher values represent a worse outcome.
Time frame: 30 days after commencement of treatment
Corneal Fluorescein Staining
Fluorescein was administered into the conjunctival sac under a cobalt blue light from the slit lamp. Corneal epithelial cell disruption was measured via corneal staining (National Eye Institute (NEI) scale (0-3 scale for each area of 5 areas, total score 15). Higher values represent a worse outcome.
Time frame: 90 days after commencement of treatment
Corneal Fluorescein Staining
Fluorescein was administered into the conjunctival sac under a cobalt blue light from the slit lamp. Corneal epithelial cell disruption was measured via corneal staining (National Eye Institute (NEI) scale (0-3 scale for each area of 5 areas, total score 15). Higher values represent a worse outcome.
Time frame: 180 days after commencement of treatment
Schirmer I test
The tear production was measured with Schirmer strips without anaesthesia 15 minutes after corneal staining.
Time frame: baseline
Schirmer I test
The tear production was measured with Schirmer strips without anaesthesia 15 minutes after corneal staining.
Time frame: 15 days after commencement of treatment
Schirmer I test
The tear production was measured with Schirmer strips without anaesthesia 15 minutes after corneal staining.
Time frame: 30 days after commencement of treatment
Schirmer I test
The tear production was measured with Schirmer strips without anaesthesia 15 minutes after corneal staining.
Time frame: 90 days after commencement of treatment
Schirmer I test
The tear production was measured with Schirmer strips without anaesthesia 15 minutes after corneal staining.
Time frame: 180 days after commencement of treatment
Mophology of meibomian glands
Infrared photography of inversed upper meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mophology features of meibomian glands in millimeter.
Time frame: 15 days after commencement of treatment
Mophology of meibomian glands
Infrared photography of inversed upper meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mophology features of meibomian glands in millimeter.
Time frame: 90 days after commencement of treatment
Mophology of meibomian glands
Infrared photography of inversed upper meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mophology features of meibomian glands in millimeter.
Time frame: 180 days after commencement of treatment
Mophology of meibomian glands
Infrared photography of inversed upper meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mophology features of meibomian glands in millimeter.
Time frame: Baseline
Functional feature of meibomian glands
Infrared photography of inversed upper and lower meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mean signal intensity of meibomian glands in millimeter.
Time frame: Baseline
Functional feature of meibomian glands
Infrared photography of inversed upper and lower meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mean signal intensity of meibomian glands in millimeter.
Time frame: 15 days after commencement of treatment
Functional feature of meibomian glands
Infrared photography of inversed upper and lower meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mean signal intensity of meibomian glands in millimeter.
Time frame: 90 days after commencement of treatment
Functional feature of meibomian glands
Infrared photography of inversed upper and lower meibomian glands were measured by Meibography pattern of Keratograph 5M (Oculus, Wetzlar, Germany). The infrared images of Meibography were analysed using the new developed software for identifying the mean signal intensity of meibomian glands in millimeter.
Time frame: 180 days after commencement of treatment
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