Centre for Human Drug Research
Leiden, 2333 CL, Netherlands
NCT Number: NCT03433820
The skin plays a critical role in protection where it acts as a barrier from damage and pathogens between the external and internal environments. Wounds compromise its protective role by disrupting the function and the normal structure of the skin and the underlying soft tissue. As a response to injury wound healing occurs in order to rapidly restore the defect. This process involves activation of keratinocytes, fibroblasts, endothelial cells, macrophages, and platelets and consists of multiple phases including hemostasis, inflammation, migration and cellular proliferation, and maturation and remodeling. A simplified schematic of the course of wound healing is depicted in Figure 2. Hemostasis occurs immediately after dermal injury. The inflammation phase is characterized by cellular recruitment and increased vascular permeability. The epithelization phase is achieved by proliferation of basal cells and migration of epithelial cells. The last phase is known as the maturation and remodeling phase where collagen cross-linking and remodeling, wound contraction, and repigmentation takes place. Due to the broad involvement of various cell types, extracellular matrix and many reactive molecules each phase in wound healing produces characteristic changes within the tissue. A deficiency in any part of the process can lead to delayed wound healing, abnormal scar formation or chronic wounds.
To study wound healing in healthy volunteers a challenge model with skin punch biopsies has been described in literature previously. However, the characterization of this model was not performed comprehensively since advanced analysis of biopsies were omitted. Furthermore, analyses performed in previous studies only partially described wound healing processes either by insufficient time points for characterization or scarce simultaneous evaluations of multiple wound healing modalities.
The overall aim of this study is to develop a standardized model to temporarily and locally induce a skin trauma to investigate wound healing and monitor wound closure. This clinical model will enable future application as proof-of-pharmacology and proof-of concept studies as well as drug profiling in early drug development programs. More specifically, the objective of the trial is to explore and characterize the induction of well-defined skin trauma and natural wound healing process over the course of the different phases using a battery of dermatological assessments after skin punch biopsies in healthy volunteers. Furthermore, safety and tolerability will be assessed.
Characterization and monitoring of wound healing effects following skin punch biopsies will be performed by means of biophysical, biochemical, imaging, clinical parameters and subject reported outcomes.
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Notify Me18 year–30 year
All sexes
Interventional
Not applicable
Leiden, 2333 CL, Netherlands
Background & Rationale The skin plays a critical role in protection where it acts as a barrier from damage and pathogens between the external and internal environments. Wounds compromise its protective role by disrupting the function and the normal structure of the skin and the underlying soft tissue. As a response to injury wound healing occurs in order to rapidly restore the defect. This process involves activation of, among others, keratinocytes, fibroblasts, endothelial cells, macrophages, and platelets and consists of multiple phases including hemostasis, inflammation, migration and cellular proliferation, and maturation and remodeling. A simplified schematic of the course of wound healing is depicted in Figure 2. Due to the broad involvement of various cell types, extracellular matrix and many reactive molecules each phase in wound healing produces characteristic changes within the tissue. A deficiency in any part of the process can lead to delayed wound healing, abnormal scar formation or chronic wounds.
To study wound healing in healthy volunteers a challenge model with skin punch biopsies has been described in literature previously. However, the characterization of this model was not performed comprehensively since advanced analysis of biopsies were omitted. Furthermore, analyses performed in previous studies only partially described wound healing processes either by insufficient time points for characterization or scarce simultaneous evaluations of multiple wound healing modalities. In addition, novel non-invasive imaging methodologies including thermography, 3D photography, multispectral imaging, enable more comprehensive profiling of the wound morphology.
The overall aim of this study is to develop a standardized model to temporarily and locally induce a skin trauma to investigate wound healing and monitor wound closure. This clinical model will enable future application as proof-of-pharmacology and proof-of concept studies as well as drug profiling in early drug development programs. More specifically, the objective of the trial is to explore and characterize the induction of well-defined skin trauma and natural wound healing process over the course of the different phases using a battery of dermatological assessments after skin punch biopsies in healthy volunteers. Furthermore, safety and tolerability will be assessed.
Characterization and monitoring of wound healing effects following skin punch biopsies will be performed by means of biophysical, biochemical, imaging, clinical parameters and subject reported outcomes.
Objective(s) Primary Objective
Investigational drug Not applicable Comparative drug No comparative drug will be used in this study. Study periods The total duration of the study will be approximately 14 weeks: 4 weeks for screening and 10 weeks of observation. Subjects will visit CHDR 14 times.
Subjects / Groups A total of 18 healthy volunteers are planned to be enrolled. The study will entail 1 cohort with a randomized repeated biopsy collection time. Three skin punch biopsies (3 mm) of the lower back will be taken from each volunteer on day 0, with a distance of approximately 3-5 cm in between. All biopsy lesions will be treated with a gauze dressing (Jelonet®, paraffine gauze + Tegaderm®) for 48h after which the gauze is removed. Hereafter, the biopsy lesions will remain untreated. One biopsy sample taken on day 0 will serve as a baseline measurement for the repeated samples regarding the histology, immunohistochemistry, and RNA sequencing (RNA-seq) or real-time reverse transcription polymerase chain reaction (qRT-PCR) assessments.
Repeated biopsies of the same location as on day 0 will be taken on day 7, 14 or 21 (biopsy lesion and day randomized), and day 28, 42 or 56 (biopsy lesion and day randomized) for all subjects. The observation biopsy (biopsy lesion randomized) will serve as primary biopsy and followed for all measurements. All repeated biopsy lesions will also be treated with a gauze dressing (Jelonet®, paraffine gauze + Tegaderm®) for 48h after which the gauze is removed and observation commences.
Cohort: 1 Observation period (day 2 - day 70): 3 biopsies taken on day 0
Inclusion criteria
Eligible subjects must meet all of the following inclusion criteria at screening:
Exclusion criteria
Eligible subjects must meet none of the following exclusion criteria at screening:
Concomitant medications No prescription medication or OTC medications (excluding multivitamins) will be permitted within 21 days prior to the start of the study, or less than 5 half-lives (whichever is longer), and during the course of the study. Exceptions are paracetamol (up to 4 g/day) in case of local pain. Use of pain medication will be determined by the investigator individually. Other exceptions will only be made if the rationale is discussed and clearly documented.
Endpoints
Sample Size Justification A total cohort size of 18 healthy volunteers will be investigated. This is justified since the primary objective is to explore and monitor the wound healing model. No formal power calculation was performed given the exploratory character of the study.
Statistical methodology Data listings and averages will be presented for pharmacodynamics and safety measures.
Given the exploratory character of the study, pharmacodynamic endpoints will be primarily analyzed using descriptive statistics. All pharmacodynamic endpoints will be summarized (mean and standard deviation of the mean, median, minimum and maximum values) by time, and will also be presented graphically as mean over time, with standard deviation as error bars. Both Nominal results, and log-transformed results and change from baseline results will be utilized in all data summaries. All categorical pharmacodynamic endpoints will be summarized by frequencies.
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Eligible subjects must meet all of the following inclusion criteria at screening:
Exclusion criteria
Eligible subjects must meet none of the following exclusion criteria at screening:
Observation of wound healing after skin biopsy
Time frame: 3 months after end of study
Histology with hematoxylin and eosin (HE) staining
Time frame: 3 months after end of study
Local skin biomarkers for wound healing related biomarkers (e.g. VEGF-A, TNFα, IL-8, TLSP, MMP-3, IL-4) by transdermal analysis patch (TAP)
Time frame: 3 months after end of study
2D photography
Time frame: 3 months after end of study
Erythema grading scale. Wounds are scored on the basis of redness of the wound (from better to worse: absence, mild, moderate, or severe).
Time frame: 3 months after end of study
Skin microbiome (healthy and biopsy lesions). Collection of skin culture samples is a non-invasive procedure where a sterile polyester flock tip per site is passed along the surface of the 3 different areas. The target areas are i) regions surrounding one of the biopsy lesions on the lower back, ii) a control site of healthy, unaffected skin in proximity of a biopsy lesion and iii) a control area on the lower back with a minimum distance of 10cm from a biopsy site. The skin swab will be placed in a 2 ml lysis tube containing DNA/RNA shield to stabilize and preserve the DNA. The DNA extraction will be performed using adapted DNA extraction method based on the Zymo Research fecal DNA extraction methodology. After DNA extraction, the variable regions 3 and 4 of the 16S rRNA gene are amplified giving an amplicon of around 450 base pairs. This amplicon is analyzed by capillary systems using standard protocols.
Time frame: 3 months after end of study
Immunohistochemistry with wound healing related biomarkers (e.g. CD31, collagen I, collagen III, aSMA, fibronectin)
Time frame: 3 months after end of study
RNA-seq or qRT-PCR for wound healing related biomarkers (e.g. VEGFα, TGFβ1, TGFβ2, TGFβ3, PDGF, CTGF, TNF, IL-1B, IL-4, GM-CSF, IL-6, IL-10, MMP1, MMP3, OSM, LOX)
Time frame: 3 months after end of study
3D photography
Time frame: 3 months after end of study
Thermography
Time frame: 3 months after end of study
Laser speckle contrast imaging (LSCI)
Time frame: 3 months after end of study
Trans epidermal water loss (TEWL)
Time frame: 3 months after end of study
Colorimetry
Time frame: 3 months after end of study
Red-Yellow-Black (RYB) wound assessment scale. Wounds are scored based on the color of the wound bed (from healthy to least healthy: red, yellow, or black). The least healthy color is chosen in multi-color wounds. Furthermore, a humidity subscale (dry, humid, or wet) is added to further classify the health status of the wounds.
Time frame: 3 months after end of study
POSAS. The observer scale of the POSAS consists of six items (vascularity, pigmentation, thickness, relief, pliability and surface area). All items are scored on a scale ranging from 1 ('like normal skin') to 10 ('worst scar imaginable'). The sum of the six items results in a total score of the POSAS observer scale. Categories boxes are added for each item:
Time frame: 3 months after end of study
Adverse events
Time frame: 3 months after end of study
Erythema grading scale. Wounds are scored on the basis of redness of the wound (from better to worse: absence, mild, moderate, or severe).
Time frame: 3 months after end of study
Red-Yellow-Black (RYB) wound assessment scale. Wounds are scored based on the color of the wound bed (from healthy to least healthy: red, yellow, or black). The least healthy color is chosen in multi-color wounds. Furthermore, a humidity subscale (dry, humid, or wet) is added to further classify the health status of the wounds.
Time frame: 3 months after end of study
POSAS. The observer scale of the POSAS consists of six items (vascularity, pigmentation, thickness, relief, pliability and surface area). All items are scored on a scale ranging from 1 ('like normal skin') to 10 ('worst scar imaginable'). The sum of the six items results in a total score of the POSAS observer scale. Categories boxes are added for each item:
Time frame: 3 months after end of study
NRS pruritus and pain. The pruritus and pain NRS are single-question assessment tools that are used to assess the subject's worst itch and pain in the previous time interval. Subjects will be asked the following question; "on a scale of 0 - 100, with 0 being no itch, and 100 being the worst itch imaginable, how would you rate your average degree of itch of all biopsy sites combined experienced during the previous time interval?" and "on a scale of 0 - 100, with 0 being no pain, and 100 being the worst pain imaginable, how would you rate your average degree of pain of all biopsy sites combined experienced during the previous time interval?"
Centre for Human Drug Research, Netherlands
Other
A Single-arm, Observational Study to Explore and Characterize Wound Healing After Skin Punch Biopsies in Healthy Volunteers
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