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1.
Int J Cosmet Sci ; 2024 Jun 24.
Article in English | MEDLINE | ID: mdl-38924095

ABSTRACT

OBJECTIVE: Human skin is the first line of defence from environmental factors such as solar radiation and is susceptible to premature ageing, including a disruption in epidermal differentiation and homeostasis. We evaluated the impact of a Galactomyces Ferment Filtrate (GFF) on epidermal differentiation and response to oxidative stress. METHODS: We used transcriptomics, both spatial and traditional, to assess the impact of GFF on epidermal biology and homeostasis in keratinocytes (primary or immortalized) and in ex vivo skin explant tissue. The effect of GFF on cell adhesion rates, cellular ATP levels and proliferation rates were quantitated. Oxidative phosphorylation and glycolytic rates were measured under normal and stress-induced conditions. RESULTS: Transcriptomics from keratinocytes and ex vivo skin explants from multiple donors show GFF induces keratinocyte differentiation, skin barrier development and cell adhesion while simultaneously repressing cellular stress and inflammatory related processes. Spatial transcriptomics profiling of ex vivo skin indicated basal keratinocytes at the epidermal-dermal junction and cornifying keratinocytes in the top layer of the epidermis as the primary cell types influenced by GFF treatment. Additionally, GFF significantly increases crosstalk between suprabasal and basal keratinocytes. To support these findings, we show that GFF can significantly increase cell adhesion and proliferation in keratinocytes. GFF also protected overall cellular bioenergetics under metabolic or oxidative stress conditions. CONCLUSION: Our findings provide novel insights into cellular differences and epidermal spatial localization in response to GFF, supporting previous findings that this filtrate has a significant impact on epidermal biology and homeostasis, particularly on spatially defined crosstalk. We propose that GFF can help maintain epidermal health by enhancing keratinocyte crosstalk and differentiation/proliferation balance as well as promoting an enhanced response to stress.

2.
Exp Dermatol ; 31(11): 1748-1760, 2022 11.
Article in English | MEDLINE | ID: mdl-36320153

ABSTRACT

Inflammaging is a theory of ageing which purports that low-level chronic inflammation leads to cellular dysfunction and premature ageing of surrounding tissue. Skin is susceptible to inflammaging because it is the first line of defence from the environment, particularly solar radiation. To better understand the impact of ageing and photoexposure on epidermal biology, we performed a system biology-based analysis of photoexposed face and arm, and photoprotected buttock sites, from women between the ages of 20s to 70s. Biopsies were analysed by histology, transcriptomics, and proteomics and skin surface biomarkers collected from tape strips. We identified morphological changes with age of epidermal thinning, rete ridge pathlength loss and stratum corneum thickening. The SASP biomarkers IL-8 and IL-1RA/IL1-α were consistently elevated in face across age and cis/trans-urocanic acid were elevated in arms and face with age. In older arms, the DNA damage response biomarker 53BP1 showed higher puncti numbers in basal layers and epigenetic ageing were accelerated. Genes associated with differentiation and senescence showed increasing expression in the 30s whereas genes associated with hypoxia and glycolysis increased in the 50's. Proteomics comparing 60's vs 20's confirmed elevated levels of differentiation and glycolytic-related proteins. Representative immunostaining for proteins of differentiation, senescence and oxygen sensing/hypoxia showed similar relationships. This system biology-based analysis provides a body of evidence that young photoexposed skin is undergoing inflammaging. We propose the presence of chronic inflammation in young skin contributes to an imbalance of epidermal homeostasis that leads to a prematurely aged appearance during later life.


Subject(s)
Epidermis , Skin , Humans , Female , Aged , Young Adult , Adult , Skin/metabolism , Homeostasis , Inflammation/metabolism , Hypoxia/metabolism , Cellular Senescence
3.
Int J Mol Sci ; 23(11)2022 May 24.
Article in English | MEDLINE | ID: mdl-35682565

ABSTRACT

Sallow and/or dull skin appearance is greatly attributable to the yellow components of skin tone. Bilirubin is a yellow chromophore known to be made in the liver and/or spleen and is transported throughout the body via the blood stream. Recent publications suggest bilirubin may be synthesized in other cells/organs, including the skin. We found human keratinocytes express the transcripts involved in bilirubin biosynthesis. In parallel, we also found human keratinocytes could indeed synthesize bilirubin in monolayer keratinocytes and in a 3D human skin-equivalent model. The synthesized amount was substantial enough to contribute to skin yellowness. In addition, oxidative stress enhanced bilirubin production. Using UnaG, a protein that forms a fluorescent species upon binding to bilirubin, we also visualized the intracellular expression of bilirubin in keratinocytes. Finally, we screened a compound library and discovered that the sucrose laurate/dilaurate (SDL) combination significantly reduced bilirubin levels, as well as bilirubin-mediated yellowness. In conclusion, bilirubin is indeed synthesized in epidermal keratinocytes and can be upregulated by oxidative stress, which could contribute to chronic or transient yellow skin tone appearance. Application of SDL diminishes bilirubin generation and may be a potential solution to mitigate yellowish and/or dull skin appearance.


Subject(s)
Bilirubin , Keratinocytes , Bilirubin/metabolism , Bilirubin/pharmacology , Epidermis/metabolism , Humans , Keratinocytes/metabolism , Skin/metabolism , Sucrose/analogs & derivatives
4.
J Invest Dermatol ; 142(7): 1934-1946.e21, 2022 07.
Article in English | MEDLINE | ID: mdl-34890626

ABSTRACT

Understanding the changes in the skin microbiome and their relationship to host skin factors during aging remains largely unknown. To better understand this phenomenon, we collected samples for metagenomic and host skin factor analyses from the forearm, buttock, and facial skin from 158 Caucasian females aged 20‒24, 30‒34, 40‒44, 50‒54, 60‒64, and 70‒74 years. Metagenomics analysis was performed using 16S ribosomal RNA gene sequencing, whereas host sebocyte gland area, skin lipids, natural moisturizing factors, and antimicrobial peptides measurements were also performed. These analyses showed that skin bacterial diversity increased at all the skin sites with increasing age. Of the bacterial genera with an average relative abundance >1%, only Lactobacillus and Cutibacterium demonstrated a significant change (decrease) in abundance at all sampled skin sites with increasing age. Additional bacterial genera demonstrated significant age- and site-specific changes in abundance. Analysis of sebocyte area, natural moisturizing factors, lipids, and antimicrobial peptides showed an age-related decrease in sebocyte area and increases in natural moisturizing factors/antimicrobial peptides/skin lipids, all of which correlated with changes in specific bacterial genera. In conclusion, the human skin microbiome undergoes age-associated alterations that may reflect underlying age-related changes in cutaneous biology.


Subject(s)
Microbiota , Adult , Aging , Bacteria/genetics , Female , Humans , Lipids , Metagenomics , Microbiota/genetics , RNA, Ribosomal, 16S/genetics , Skin/microbiology
5.
Int J Cosmet Sci ; 43(5): 518-529, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34272744

ABSTRACT

OBJECTIVE: To explore synergistic effects related to skin regeneration, peptides with distinct biological mechanisms of action were evaluated in combination with different skin cell lines in the presence or absence of niacinamide (Nam). Furthermore, the synergistic responses of peptide combinations on global gene expression were compared with the changes that occur with fractional laser resurfacing treatment, a gold standard approach for skin rejuvenation, to further define optimal peptide combinations. METHODS: Microarray profiling was used to characterize the biological responses of peptide combinations (+/- Nam) relative to the individual components in epidermal keratinocyte and dermal fibroblast cell lines. Cellular functional assays were utilized to confirm the synergistic effects of peptide combinations. Bioinformatics approaches were used to link the synergistic effects of peptide combinations on gene expression to the transcriptomics of the skin rejuvenation response from fractional laser treatment. RESULTS: Microarray analysis of skin cells treated with peptide combinations revealed synergistic changes in gene expression compared with individual peptide controls. Bioinformatic analysis of synergy genes in keratinocytes revealed the activation of NRF2-mediated oxidative stress responses by a combination of Ac-PPYL, Pal-KTTKS and Nam. Additional analysis revealed direct downstream transcriptional targets of NRF2/ARE exhibiting synergistic regulation by this combination of materials, which was corroborated by a cellular reporter assay. NRF2-mediated oxidative stress response pathways were also found to be activated in the transcriptomics of the early skin rejuvenation response to fractional laser treatment, suggesting the importance of this biology in the early stages of tissue repair. Additionally, the second combination of peptides (pal-KT and Ac-PPYL) was found to synergistically restore cellular ATP levels that had been depleted due to the presence of ROS, indicating an additional mechanism, whereby peptide synergies may accelerate skin repair. CONCLUSION: Through combinatorial synergy studies, we have identified additional in vitro skin repair mechanisms beyond the previously described functions of individual peptides and correlated these to the transcriptomics of the skin rejuvenation response of fractional laser treatment. These findings suggest that specific peptides can act together, via complementary and synergistic mechanisms, to holistically enhance the regenerative capacity of in vitro skin cells.


OBJECTIF: Pour explorer les effets synergiques liés à la régénération cutanée, les peptides ayant des mécanismes d'action biologiques distincts ont été évalués en association dans différentes lignées cellulaires cutanées en présence ou en l'absence de niacinamide (Nam). De plus, les réponses synergiques des associations de peptides sur l'expression des gènes globale ont été comparées aux changements qui surviennent avec le traitement de resurfaçage au laser fractionné, une approche de référence pour le rajeunissement de la peau, afin de définir davantage les associations optimales de peptides. MÉTHODES: Le profilage de micro-réseau a été utilisé pour caractériser les réponses biologiques des combinaisons de peptides (+/-Nam) par rapport aux composants individuels dans les lignées cellulaires de kératinocytes épidermiques et de fibroblastes dermiques. Des tests fonctionnels cellulaires ont été réalisés pour confirmer les effets synergiques des associations de peptides. Des approches bio-informatiques ont été utilisées pour mettre en lien les effets synergiques des associations de peptides sur l'expression des gènes à la transcriptomique de la réponse de rajeunissement de la peau du traitement au laser fractionné. RÉSULTATS: L'analyse par micro-réseau des cellules cutanées traitées par des combinaisons de peptides a révélé des changements synergiques dans l'expression des gènes par rapport aux contrôles peptidiques individuels. L'analyse bio-informatique des gènes de synergie dans les kératinocytes a révélé une activation des réponses au stress oxydatif médiées par NRF2 par une association d'Ac-PPYL, de Pal-KTTKS et de Nam. Une analyse supplémentaire a révélé des cibles transcriptionnelles directes en aval de NRF2/ARE présentant une régulation synergique par cette combinaison de matériaux, qui a été corroborée par un test de gène rapporteur. Les voies de réponses au stress oxydatif médiées par NRF2 se sont également révélées activées dans la transcriptomique de la réponse précoce de rajeunissement cutané au traitement au laser fractionné, ce qui suggère l'importance de cette biologie dans les stades précoces de la réparation des tissus. De plus, une deuxième association de peptides (pal-KT et Ac-PPYL) s'est avérée restaurer de manière synergique les taux d'ATP cellulaire qui avaient été épuisés en raison de la présence de ROS, indiquant un mécanisme supplémentaire par lequel les synergies de peptides pourraient accélérer la réparation cutanée. CONCLUSION: Grâce à des études de synergie combinatoire, nous avons identifié des mécanismes de réparation cutanés in vitro supplémentaires au-delà des fonctions précédemment décrites des peptides individuels et les avons corrélés à la transcriptomique de la réponse de rajeunissement de la peau au traitement au laser fractionné. Ces résultats suggèrent que des peptides spécifiques peuvent agir ensemble, par le biais de mécanismes complémentaires et synergiques, pour améliorer de manière globale la capacité régénérative des cellules cutanées in vitro.


Subject(s)
Keratinocytes/drug effects , Niacinamide/pharmacology , Peptides/pharmacology , Skin Aging/drug effects , Cell Line , Drug Synergism , Gene Expression , Humans , Rejuvenation
6.
Aging Cell ; 19(10): e13248, 2020 10.
Article in English | MEDLINE | ID: mdl-32990346

ABSTRACT

Alterations in metabolism in skin are accelerated by environmental stressors such as solar radiation, leading to premature aging. The impact of aging on mitochondria is of interest given their critical role for metabolic output and the finding that environmental stressors cause lowered energy output, particularly in fibroblasts where damage accumulates. To better understand these metabolic changes with aging, we performed an in-depth profiling of the expression patterns of dermal genes in face, forearm, and buttock biopsies from females of 20-70 years of age that encode for all subunits comprising complexes I-V of the mitochondrial electron transport chain. This complements previous preliminary analyses of these changes. "Oxidative phosphorylation" was the top canonical pathway associated with aging in the face, and genes encoding for numerous subunits had decreased expression patterns with age. Investigations on fibroblasts from older aged donors also showed decreased gene expression of numerous subunits from complexes I-V, oxidative phosphorylation rates, spare respiratory capacity, and mitochondrial number and membrane potential compared to younger cells. Treatment of older fibroblasts with nicotinamide (Nam) restored these measures to younger cell levels. Nam increased complexes I, IV, and V activity and gene expression of representative subunits. Elevated mt-Keima staining suggests a possible mechanism of action for these restorative effects via mitophagy. Nam also improved mitochondrial number and membrane potential in younger fibroblasts. These findings show there are significant changes in mitochondrial functionality with aging and that Nam treatment can restore bioenergetic efficiency and capacity in older fibroblasts with an amplifying effect in younger cells.


Subject(s)
Fibroblasts/metabolism , Mitochondria/metabolism , Niacinamide/metabolism , Skin/pathology , Adult , Aged , Cells, Cultured , Humans , Middle Aged , Tissue Donors , Young Adult
7.
J Am Acad Dermatol ; 78(1): 29-39.e7, 2018 Jan.
Article in English | MEDLINE | ID: mdl-29146147

ABSTRACT

BACKGROUND: Intrinsic and extrinsic factors, including ultraviolet irradiation, lead to visible signs of skin aging. OBJECTIVE: We evaluated molecular changes occurring in photoexposed and photoprotected skin of white women 20 to 74 years of age, some of whom appeared substantially younger than their chronologic age. METHODS: Histologic and transcriptomics profiling were conducted on skin biopsy samples of photoexposed (face and dorsal forearm) or photoprotected (buttocks) body sites from 158 women. 23andMe genotyping determined genetic ancestry. RESULTS: Gene expression and ontologic analysis revealed progressive changes from the 20s to the 70s in pathways related to oxidative stress, energy metabolism, senescence, and epidermal barrier; these changes were accelerated in the 60s and 70s. The gene expression patterns from the subset of women who were younger-appearing were similar to those in women who were actually younger. LIMITATIONS: Broader application of these findings (eg, across races and Fitzpatrick skin types) will require further studies. CONCLUSIONS: This study demonstrates a wide range of molecular processes in skin affected by aging, providing relevant targets for improving the condition of aging skin at different life stages and defining a molecular pattern of epidermal gene expression in women who appear younger than their chronologic age.


Subject(s)
Genetic Predisposition to Disease , Skin Aging/genetics , Skin Aging/physiology , Ultraviolet Rays/adverse effects , Adult , Aged , Aged, 80 and over , Biopsy, Needle , Facial Dermatoses/genetics , Facial Dermatoses/pathology , Female , Humans , Immunohistochemistry , Middle Aged , Prognosis , Risk Factors , Skin Aging/pathology , White People , Young Adult
8.
J Drugs Dermatol ; 8(7 Suppl): s4-7, 2009 Jul.
Article in English | MEDLINE | ID: mdl-19623777

ABSTRACT

Global gene expression profiling provides a useful means to identify key aspects of the skin aging process, and provides information to help develop new skin technologies. Important aspects of skin aging that can be addressed include skin hydration, barrier, matrix, pigmentation and antioxidant capacity. Human skin equivalent cultures allow topical application of test compounds, combinations and products to their stratum corneum surface and measurement of predictive biomarkers. Using this in vitro biomarker approach, it is possible to detect skin barrier enhancement in response to the compounds niacinamide and hexamidine, matrix effects to the peptides Pal-KT and Pal-KTTKS, and hydration and matrix responses to niacinamide and N-acetylglucosamine.


Subject(s)
Gene Expression Profiling/methods , Skin Aging/drug effects , Tissue Engineering/methods , Administration, Cutaneous , Biomarkers/metabolism , Dermatologic Agents/administration & dosage , Dermatologic Agents/pharmacology , Humans , Permeability , Skin/drug effects , Skin/metabolism , Skin Aging/genetics
9.
Electrophoresis ; 26(11): 2269-78, 2005 Jun.
Article in English | MEDLINE | ID: mdl-15880551

ABSTRACT

Proteomic analysis of biological samples in disease models or therapeutic intervention studies requires the ability to detect and identify biologically relevant proteins present in relatively low concentrations. The detection and analysis of these low-level proteins is hindered by the presence of a few proteins that are expressed in relatively high concentrations. In the case of muscle tissue, highly abundant structural proteins, such as actin, myosin, and tropomyosin, compromise the detection and analysis of more biologically relevant proteins. We have developed a practical protocol which exploits high-pH extraction to reduce or remove abundant structural proteins from skeletal muscle crude membrane preparations in a manner suitable for two dimensional gel electrophoresis. An initial whole-cell muscle lysate is generated by homogenization of powdered tissue in Tris-base. This lysate is subsequently partitioned into a supernatant and pellet containing the majority of structural proteins. Treatment of the pellet with high-pH conditions effectively releases structural proteins from membrane compartments which are then removed through ultracentrifugation. Mass spectrometric identification shows that the majority of protein spots reduced or removed by high-pH treatment were contractile proteins or contractile-related proteins. Removal of these proteins enabled successful detection and identification of minor proteins. Structural protein removal also results in significant improvement of gel quality and the ability to load higher amounts of total protein for the detection of lower abundant protein classes.


Subject(s)
Electrophoresis, Gel, Two-Dimensional/methods , Muscle Proteins/isolation & purification , Muscle, Skeletal/chemistry , Animals , Cell Fractionation , Chemical Fractionation , Contractile Proteins/isolation & purification , Hydrogen-Ion Concentration , Proteomics/methods , Rats
10.
Mol Biosyst ; 1(3): 229-41, 2005 Sep.
Article in English | MEDLINE | ID: mdl-16880987

ABSTRACT

Skeletal muscle atrophy is a process in which protein degradation exceeds protein synthesis, resulting in a decrease of the muscle's physiological cross-sectional area and mass, and is often a serious consequence of numerous health problems. We used the isotope-coded affinity tag (ICAT) labelling approach and MS-MS to protein profile cytosolic subcellular fractions from mouse tibialis anterior skeletal muscle undergoing 0, 4, 8, or 16 days of immobilisation-induced atrophy. For the validation of peptide and protein identifications statistical algorithms were applied to the sequence database search results in order to obtain consistent sensitivity/error rates for protein and peptide identifications at each immobilisation time point. In this study, we identified and quantified a large number of mouse skeletal muscle proteins. At a protein probability (P) of P> or = 0.9 (corresponding to a false positive error rate of less than 1%) 807 proteins were identified (231, 226, 217 for 4, 8, 16 days of immobilisation and 133 for the control sample, respectively), from which 51 displayed altered protein abundance with atrophy. Due to randomness of data acquisition, a full time course could be generated only for 62 proteins, most of which displayed unchanged protein abundance. In spite of this, useful information about dataset characteristics and underlying biological processes could be obtained through gene over-representation analysis. 20 gene categories-mainly but not exclusively encoded by the subset of overlapping proteins--were consistently found to be significantly (p < 0.05) over-represented in all 4 sub-datasets.


Subject(s)
Enzymes/genetics , Muscle Proteins/genetics , Muscle, Skeletal/pathology , Adaptor Proteins, Signal Transducing , Animals , Atrophy , Cell Cycle Proteins , Gene Expression Regulation , Indicators and Reagents , Kinetics , Male , Mass Spectrometry , Mice , Mice, Inbred C57BL , Peptides/genetics , Repressor Proteins , Transcription Factors
11.
Connect Tissue Res ; 43(1): 32-43, 2002.
Article in English | MEDLINE | ID: mdl-12180266

ABSTRACT

The proteoglycan, decorin, is a regulator of collagen fibril organization and its resulting functional properties. The temporal and spatial expression of decorin during the progression to heart failure is not well understood and may play a significant role in extracellular matrix remodeling. Decorin and types I and III collagen levels were measured in male Spontaneously Hypertensive Heart Failure (SHHF) and control Wistar-Furth rats at 2 and 8 mo, and at congestive heart failure (CHF). Decorin levels increased in the SHHF rats relative to the control rats in CHF. Type I collagen levels increased while type III levels decreased in the SHHF rats in CHF relative to the age matched controls. The SHHF rats have 48 and 45 KDa isoforms of the decorin core protein expressed at all ages while control Wistar-Furths produced only a 45 KDa form. Decorin was localized in the outer ventricle wall but during CHF, decorin was expressed throughout the ventricular myocardium. Immunogold localization of decorin demonstrated an increased distribution of decorin along the myocardium collagen fibrils at CHF. The enhanced expression and greater distribution of decorin may be linked to extracellular matrix remodeling which occurs with the development of heart failure.


Subject(s)
Heart Failure/etiology , Heart Failure/metabolism , Hypertension/complications , Myocardium/metabolism , Proteoglycans/metabolism , Up-Regulation/physiology , Animals , Collagen Type I/metabolism , Collagen Type I/ultrastructure , Collagen Type III/metabolism , Collagen Type III/ultrastructure , Decorin , Disease Models, Animal , Disease Progression , Endomyocardial Fibrosis/etiology , Endomyocardial Fibrosis/metabolism , Endomyocardial Fibrosis/pathology , Extracellular Matrix Proteins , Heart Failure/pathology , Hypertension/genetics , Hypertension/physiopathology , Immunohistochemistry , Male , Microscopy, Electron , Myocardium/pathology , Myocardium/ultrastructure , Proteoglycans/ultrastructure , Rats , Rats, Inbred Strains , Rats, Inbred WF
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