The objective of this POC clinical study is to investigate the impact of the test product (Developmental Cosmetic Moisturising Cream) on skin barrier function and skin moisturisation on the forearm and face after 4 weeks of twice daily application compared to no treatment in participants with dry sensitive skin.
Areas on the volar forearm and each side of the face, will be selected for measurements of transepidermal water loss (TEWL) and corneometry to be conducted . A physical challenge and a regression period of 5 days is also included to evaluate skin barrier function and moisturisation. A regression period of 5 days (Days 30, 31, 32, 33 and 34) of no study product use following the 4 week treatment phase is also included to evaluate skin barrier function and moisturisation.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
SINGLE
Enrollment
69
Participants will be instructed to apply their assigned product to the randomly assigned sites twice daily (in the morning and evening).
Participants will be instructed to apply their assigned product to the randomly assigned sites twice daily (in the morning and evening).
No treatment.
GSK Investigational Site
Schenefeld, Schleswig-Holstein, Germany
Change From Baseline in Transepidermal Water Loss (TEWL) Measurements on Day 29, Test Product Treated Versus (vs.) Untreated Sites on the Forearm
TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 seconds (sec), to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: At Baseline and Day 29
Change From Baseline in Transepidermal Water Loss (TEWL) Measurements on Day 29, Test Product Treated vs. Untreated Sites on the Face
TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: At Baseline and Day 29
Change From Baseline in Corneometry on the Forearm and Face, Test Product Treated vs. Untreated Sites
Corneometry was used to measure moisture content of stratum corneum using corneometer. The measuring principle is based on changes in the capacitance of the measuring head, functioning as a condensator. Between the conductors of the probe an electrical field was built which allows the dielectricity of the stratum corneum to be measured. Because the dielectricity of the skin varies as a function of its water content. The Corneometer measurements was taken 5 times in total and then an average reading was calculated for each site and time point. An increase in corneometry values indicates an increase in the hydration status of the skin and vice versa.
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Time frame: At Baseline, Day 1 (30 minutes and 6 hours post study product application), Day 2, 15, and 29
Change From Baseline in Transepidermal Water Loss (TEWL) on the Forearm and Face, Test Product Treated vs. Untreated Sites at Day 2 and 15
TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: At Baseline, Day 2, and 15
Standardised Area Under Curve (AUC1-29) of Change From Baseline in Corneometry Over Treatment Period
Standardised AUC1-29 was calculated for each participant for change from baseline in corneometry on forearms and face over the treatment period; i.e. up to Day 29 using the trapezoidal rule and dividing by the number of days in the period. Corneometry was used to measure moisture content of stratum corneum using corneometer. The measuring principle is based on changes in the capacitance of the measuring head, functioning as a condensator. Between the conductors of the probe an electrical field was built which allows the dielectricity of the stratum corneum to be measured. Because the dielectricity of the skin varies as a function of its water content. The Corneometer measurements was taken 5 times in total and then an average reading was calculated for each site and time point. An increase in corneometry values indicates an increase in the hydration status of the skin and vice versa.
Time frame: Up to Day 29
Standardised Area Under Curve (AUC1-29) of Change From Baseline in Transepidermal Water Loss (TEWL) Over Treatment Period
Standardised AUC1-29 was calculated for each participant for change from baseline in TEWL on forearms and face over the treatment period; i.e. up to Day 29 using the trapezoidal rule and dividing by the number of days in the period. TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: Up to Day 29
Change From Pre-challenge in Transepidermal Water Loss (TEWL) Measurements of D-Squame Discs Following 4, 8 and 12 Adhesive Discs Removal From Skin of Both Test Product Treated and Untreated Sites on the Forearm on Day 29
A series of D-Squame discs were gently smoothed over the designated D-Squame Areas by applying a uniform pressure for 5 secs with a stamp to ensure consistent adhesion to the skin. Each disc was pulled off the skin with one fluent and decisive movement. There were maximum of 12 D-Squame discs (in groups of 4) removed from each forearm repeatedly. TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. TEWL was measured pre-challenge and after 4, 8 and 12 discs have been removed from the forearms. An increase in TEWL values shows damage to the skin barrier function.
Time frame: On Day 29 (including Pre-challenge)
Change From Pre-challenge in Transepidermal Water Loss (TEWL) Measurements of D-Squame Discs Following 3, 6 and 9 Adhesive Discs Removal From Skin of Both Test Product Treated and Untreated Sites on the Face on Day 29
A series of D-Squame discs were gently smoothed over the designated D-Squame Areas by applying a uniform pressure for 5 secs with a stamp to ensure consistent adhesion to the skin. Each disc was pulled off the skin with one fluent and decisive movement. There were maximum of 9 D-Squame discs (in groups of 3) removed from the face repeatedly. TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. TEWL was measured pre-challenge and after 3, 6 and 9 discs have been removed from the face. An increase in TEWL values shows damage to the skin barrier function.
Time frame: On Day 29 (including Pre-challenge)
Protein Analysis (SquameScan) of D-Squame Discs (Total of 12 Adhesive Discs) From Skin of Both Test Product Treated and Untreated Sites on the Forearm on Day 29
The protein content of each D-Squame disc was analysed using a SquameScan. SquameScan is the instrument used to indirectly measure the protein content extracted from the skin by D-squame tape strips. The determination was performed by measuring the optical absorption of the strip at about 850 nanometres (nm) (infrared light). The value displayed in % was proportionally related to the protein content. The protein content was analysed for each of the discs obtained the D-Squame stripping on the forearms and reported to 2 decimal places.
Time frame: On Day 29
Protein Analysis of D-Squame Discs (Total of 9 Adhesive Discs) From Skin of Both Test Product Treated and Untreated Sites on the Face on Day 29
The protein content of each D-Squame disc was analysed using a SquameScan. SquameScan is the instrument used to indirectly measure the protein content extracted from the skin by D-squame tape strips. The determination was performed by measuring the optical absorption of the strip at about 850 nm (infrared light). The value displayed in % was proportionally related to the protein content. The protein content was analysed for each of the discs obtained the D-Squame stripping on the face and reported to 2 decimal places.
Time frame: On Day 29
Change From Baseline in Transepidermal Water Loss (TEWL) Measurements on Days 30, 31, 32, 33 and 34 in Test Product Treated vs. Untreated Sites on the Forearm and Face
TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value was established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: At Baseline, Day 30, 31, 32, 33 and 34
Change From Day 29 in Transepidermal Water Loss (TEWL) Measurements on Days 30, 31, 32, 33 and 34 in Test Product Treated vs. Untreated Sites on the Forearm and Face
TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value was established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: At Day 30, 31, 32, 33, and 34
Change From Baseline in Standardised Area Under Curve (AUCday 29-34) of Transepidermal Water Loss (TEWL) Over Regression Period (Days 30, 31, 32, 33 and 34) of Forearm and Face, Test Product Treated vs. Untreated Sites
Standardised AUCday29-34 was calculated for each participant for change from baseline in TEWL on forearms and face over the regression period (Day31, 32, 33 and 34) using the trapezoidal rule and dividing by the number of days in the period. TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value was established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: Up to Day 34
Change From Day 29 in Standardised Area Under Curve (AUCday 29-34) of Transepidermal Water Loss (TEWL) Over Regression Period (Days 30, 31, 32, 33 and 34) of Forearm and Face, Test Product Treated vs. Untreated Sites
Standardised AUCday29-34 was calculated for each participant for change from Day 29 in TEWL on forearms and face over the regression period (Day31, 32, 33 and 34) using the trapezoidal rule and dividing by the number of days in the period. TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value was established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 secs were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: Up to Day 34
Change From Baseline in Corneometry Measurements on Days 30, 31, 32, 33 and 34 in Test Product Treated Site vs. Untreated Site on the Forearm and Face
Corneometry was used to measure the moisture content of stratum corneum using corneometer. The measuring principle is based on changes in the capacitance of the measuring head, functioning as a condensator. Between the conductors of the probe an electrical field was built which allows the dielectricity of the stratum corneum to be measured. Because the dielectricity of the skin varies as a function of its water content. The Corneometer measurements were taken 5 times in total and then an average reading was calculated for each site and time point. An increase in corneometry values indicates an increase in the hydration status of the skin and vice versa.
Time frame: At Baseline, Day 30, 31, 32, 33, and 34
Change From Day 29 in Corneometry Measurements on Days 30, 31, 32, 33 and 34 in Test Product Treated Site vs. Untreated Site on the Forearm and Face
Corneometry was used to measure the moisture content of stratum corneum using corneometer. The measuring principle is based on changes in the capacitance of the measuring head, functioning as a condensator. Between the conductors of the probe an electrical field was built which allows the dielectricity of the stratum corneum to be measured. Because the dielectricity of the skin varies as a function of its water content. The Corneometer measurements were taken 5 times in total and then an average reading was calculated for each site and time point. An increase in corneometry values indicates an increase in the hydration status of the skin and vice versa.
Time frame: At Day 29, 30, 31, 32, 33, and 34
Standardised Area Under Curve (AUCday29-34) Calculated Using Change From Baseline in Corneometry Over Regression Period (Days 30, 31, 32, 33 and 34) on the Forearm and Face
Standardised AUCday29-34 was calculated for each participant for change from baseline in corneometry on forearms and face over the regression period using the trapezoidal rule and dividing by the number of days in the period. Corneometry was used to measure moisture content of stratum corneum using corneometer. The measuring principle is based on changes in the capacitance of the measuring head, functioning as a condensator. Between the conductors of the probe an electrical field was built which allows the dielectricity of the stratum corneum to be measured. Because the dielectricity of the skin varies as a function of its water content. The Corneometer measurements was taken 5 times in total and then an average reading was calculated for each site and time point. An increase in corneometry values indicates an increase in the hydration status of the skin and vice versa.
Time frame: Up to Day 34
Standardised AUC Calculated Using Change From Day 29 in Corneometry Over Regression Period (Days 30, 31, 32, 33 and 34) on the Forearm and Face
Standardised AUCday29-34 was calculated for each participant for change from day 29 in corneometry on forearms and face over the regression period using the trapezoidal rule and dividing by the number of days in the period. Corneometry was used to measure the moisture content of stratum corneum using corneometer. The measuring principle is based on changes in the capacitance of the measuring head, functioning as a condensator. Between the conductors of the probe an electrical field was built which allows the dielectricity of the stratum corneum to be measured. Because the dielectricity of the skin varies as a function of its water content. The Corneometer measurements were taken 5 times in total and then an average reading was calculated for each site and time point. An increase in corneometry values indicates an increase in the hydration status of the skin and vice versa.
Time frame: Up to Day 34
Change From Baseline in Transepidermal Water Loss (TEWL) Measurements on Day 29 of Positive Control Treated Site vs. Untreated Site on the Forearm.
TEWL measuring principle is based on water vapour gradient determination between two pairs of sensors placed at different distances perpendicularly to the skin. The probe was held in place on the skin for one measurement, for approximately 40 secs, to ensure that a stable value has been established. The first part of the measurement belongs to the equilibration phase. The values of the last 10 seconds were averaged as the actual measurement values. An increase in TEWL values shows damage to the skin barrier function.
Time frame: At Baseline and Day 29