Showing posts with label cells. Show all posts
Showing posts with label cells. Show all posts

Thursday, January 31

Epidermal keratinocyte cells in human skin

Home > Know your skin > Epidermis > Keratinocyte cell - Epidermal keratinocytes in human skin
Keratinocytes are epidermal cells found on the outermost layer of the human skin. Nearly 95% of the cells present in the epidermal layer are keratinocytes.
Live and proliferating keratinocytes are found in stratum basale layer. These cells move upwards and differentiate into various layers and finally get sloughed off as dead skin. The epidermal layer is dynamic and is regenerated continuously throughout the human life, turning over every 40-56 days.

Morphogenesis of epidermal keratinocytes

The keratinocytes originate from human epidermal stem cells present in the stratum germinativum (basal layer of epidermis). The progeny of these stem cells are termed transit amplifying (TA) cells. TA cells also reside in the basal layer and undergo mitosis. After a few rounds of mitosis, they undergo differentiation and move outwards. As they move outward, keratinocytes undergo a series of biochemical and morphological changes and pass through various layer-stages. Finally they die and turn into the outermost layer of dead cornecytes (stratum corneum) to be sloughed off.

Structure and function of human keratinocytes

In the basal layer, Keratinocytes are cuboidal or columnar in appearance and are under continuous mitosis. They are separated from dermis by basement membrane and are attached to it through hemidesmosomes. Their function is to continuously divide and proliferate to maintain a regular supply of cells for differentiation in the upper layers.

As the Keratinocytes move upwards into spinosum layer of epidermis, the process of mitosis ceases in them and they undergo keratinization. The nuclei of these cells function actively to synthesize cytokeratin. The cytokeratin, which is a type of fibrillar protein builds up within the keratinocytes and aggregate together to form tonofibrils. Then the tonofibrils form desmosomes. These desmosomes radiate from the keratinocytes and form points of connection between these prickle cells. The net-like structure of these prickle cells provides protection to skin from abrasion and also imparts some elasticity and flexibility to the epidermis. Spinosum keratinocytes produce lamellar bodies having polar lipids, free sterols, phospholipids and enzymes.

As the spinosum keratinocytes are pushed into granulosum layer, the cells have many basophilic granules called keratohyalin granules. Here they are in the process of losing their nuclei and dying. Filaggrin, a type of protein, is found in large quantities in these cells and helps in bundling keratin. In areas of human body like palms and soles where the skin is thick, the lucidum and granulosum layers appear distinct. The differentiation between granulosum and lucidum layers may not be clear where the skin is thin.

As the granulosum keratinocytes are pushed into lucidum layer, they become transparent or translucent and get flattened. The lucidum keratinocytes may be 3-5 layers in thickness and may undergo apoptosis releasing fatty substance. They contain a clear intermediate form of keratin called eleidin. Lucidum keratinocytes are responsible for water-proofing of the epidermis, which is brought about by the release of oily substance.

As the lucidum keratinocytes are moved upward they undergo cornification. Now they are termed as corneocytes. Stratum corneum functions as a barrier protecting the inner layer of epidermis from dehydration and also from invasion of pathogens. Their cell membranes undergo changes and ceramides replace them and a cornified envelope of structural proteins is linked to them. Corneodesmosomes, a type of adhesion proteins, bind the corneocytes. As they move further outward, protein degrading proteases, break them up and the dead skin is sloughed off.
Reference:
1. Maranke I. Koster.(2009). "Making an Epidermis". Annals of the New York Academy of Sciences 1170: 7–10. doi:10.1111/j.1749-6632.2009.04363.x. PMC 2861991. PMID 19686098.
2. Tang, L., Wu, J.J., Ma, Q., Cui, T., Andreopoulos, F.M., Gil, J., Valdes, J., Davis, S.C. and Li, J. (2010), Human lactoferrin stimulates skin keratinocyte function and wound re-epithelialization. British Journal of Dermatology, 163: 38–47. doi: 10.1111/j.1365-2133.2010.09748.x
Current topic: Epidermal keratinocyte cells in human skin.

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Saturday, January 5

Stratum corneum layer in skin - Function of stratum corneum cells

Home > Know your skin > Epidermis > Function of the stratum corneum cell layer in the skin
Stratum corneum, the outermost layer of the epidermis, has the skin barrier function and is formed by the death of keratinocyte cells. The stratum corneum (SC) is multi layered and is composed of dead, anucleated, flattened corneocytes.
The stratum corneum has a thickness between 10 and 40 μm and may contain 15-20 layers. These corneocytes are embedded within the multiple lamellar sheets of lipid matrix formed by specialized lipids.

Formation of stratum corneum and desquamation

Epidermis is the outermost layer of skin and it consists of five sublayers. Its main function is to protect underlying tissues and organs from pathogens, toxic agents, oxidants, dehydration, chemicals, environment, ultraviolet radiation and physical stress. Epidermis functions very dynamically and renews continuously.

A continuous process of cell proliferation takes place in the lowermost layer of epidermis known as basale layer. These cells moving outwards undergo maturation and after a number of changes become keratinocyte cells . Eventually these cells die and form the stratum corneum to function as a barrier and get replaced and shed by the desquamation process.

The process of living keratinocytes undergoing transformation into non-living corneocytes is called cornification. As the living keratinocyte cells die, they lose the nuclei and organelles. Their cell membranes undergo changes and ceramides replace them and a cornefied envelope of structural proteins is linked to them.

Desmosomes (corneodesmosomes) which are molecular complexes of cell adhesion proteins and cell linking proteins, bind these corneocytes in the outer st. corneum. As these protein complexes move towards outer region of st. corneum, protein degrading proteases, break them up which leads to desquamation.

Function of stratum corneum

This layer functions as a barrier protecting the inner layer of epidermis from dehydration and also from invasion of pathogens. Stratum corneum contain a dense network of a protein known as keratin. Keratin keeps the epidermis hydrated by absorbing moisture as well as by preventing water evaporation.

The st. corneum by the nature of its structure, makes the epidermis elastic and a glutenous protein bond pulls the epidermis back to its original natural shape.

Another important action of S. corneum is in providing protection from mechanical injuries. To carry out this action, this layer is typically thicker in palms and soles. To some extent it helps in the absorption of moisturizers, holding them back from immediate loss.

Effects of defects in stratum corneum

The formation of corneocytes and their desquamation in a regulated manner is very essential for the maintenance of healthy skin. Any failure or set back in these regulated processes can give rise to skin disorders and ailments. A collection of low-molecular-weight water-soluble components, known as the natural moisturizing factor (NMF) present in st. corneum act as a humectant absorbing moisture by direct contact and also from atmosphere.

These barrier and moisturizing properties can be deranged by intrinsic factors like skin diseases and excessive sebum production or xerosis. Extrinsic factors like weather, temperature, low humidity, surfactants and chemicals can also impair the moisturizing barrier. Mental and physical stress can also have effects on the function of stratum corneum cell layers by the increase in the circulating stress hormones in the skin.
Reference:
Harding, C. R. (2004), The stratum corneum: structure and function in health and disease. Dermatologic Therapy, 17: 6–15. doi: 10.1111/j.1396-0296.2004.04S1001.x
Image source:
http://en.wikipedia.org/wiki/File:Epidermal_layers.png
Author: Mikael Häggström, based on work by Wbensmith
License: CC BY-SA 3.0

Current topic: Function of the stratum corneum layer cells in skin.

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