Understanding Ceramides from the Perspective of the Stratum Corneum Lipid Barrier: Moisturizing and Barrier-Repair Mechanisms, Ingredient Selection, and Formulation Research Considerations
Understanding Ceramides from the Perspective of the Stratum Corneum Lipid Barrier: Moisturizing and Barrier-Repair Mechanisms, Ingredient Selection, and Formulation Research Considerations
Introduction
When the skin feels dry, tight, stinging, or red, many people immediately attribute it to “dehydration.” However, in skincare evaluation, the more important question is often not whether water has been temporarily replenished, but whether the stratum corneum can effectively reduce water loss and limit the entry of external irritants.
This is where the value of ceramides lies. Ceramides are not ordinary hydrating ingredients; they are important components of the stratum corneum lipid barrier. The stratum corneum is not simply a layer of cells covering the skin surface. Rather, it is a protective structure composed of corneocytes and intercellular lipids. Among these, ceramides, cholesterol, and free fatty acids together form the intercellular lipid layer, directly influencing the skin’s water-retention capacity and barrier stability.
1 The Core of the Skin Barrier: The Lipid Structure of the Stratum Corneum
1.1 The stratum corneum is a protective structure composed of both cells and lipids
The outermost layer of the skin is the stratum corneum (SC). The stratum corneum is the key site responsible for skin barrier function and mainly performs two tasks: reducing the outward loss of water from the body and lowering the chance that external irritants, allergens, and microbe-associated components enter the skin.
The stratum corneum is composed of two core structural components:
Component | Main Role |
Corneocytes | Provide mechanical support and form the basic framework of the stratum corneum |
Intercellular lipids | Fill the spaces between corneocytes and form a continuous lipid barrier |
1.2 The position of ceramides in the skin barrier
Skin barrier structure and the site of ceramide action
External environment
Irritants / allergens / pollutants / microbe-associated components
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Stratum corneum, SC
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Role of corneocytes: form the basic framework of the stratum corneum
Role of the intercellular lipid layer: fill the spaces between corneocytes and form a continuous barrier
Main lipid composition: ceramides + cholesterol + free fatty acids
Barrier outcome: reduced outward water loss; reduced entry of irritants; maintenance of skin hydration and tolerance
1.3 Why impaired barrier function can lead to dryness and sensitive-skin symptoms
When the intercellular lipid structure of the stratum corneum is intact, skin water is less likely to be lost in large amounts, and external irritants are less likely to penetrate the stratum corneum. Conversely, when the lipid structure is disrupted, or when ceramide content and the proportions of different ceramide types become abnormal, barrier function declines.
Transepidermal water loss (TEWL) is an important indicator used to evaluate skin barrier function. An increase in TEWL indicates that water is more likely to diffuse outward from within the skin. Common manifestations include dryness, tightness, roughness, and flaking. At the same time, external irritants can enter the skin more easily, and the skin may show stinging, redness, a burning sensation, and reduced tolerance to skincare products.
2 What Are Ceramides?
2.1 Ceramides are a class of sphingolipids
Ceramides are a class of sphingolipid molecules. A typical ceramide is composed of a sphingoid long-chain base and a fatty acid, connected by an amide bond. The long-chain base may include structures such as sphingosine, dihydrosphingosine, and phytosphingosine.
Structural Part | Functional Significance |
Long-chain sphingoid backbone | Forms the basic backbone of the ceramide molecule |
Fatty acid chain | Enhances the hydrophobicity and ordering ability of the lipid molecule |
Amide bond | Connects the sphingoid backbone and fatty acid chain to form the ceramide structure |
2.2 The properties of ceramides make them suitable for barrier construction
Ceramides have long-chain lipid structures and strong hydrophobicity. They can form an orderly arranged lipid layer together with cholesterol and free fatty acids. This lipid layer has relatively low fluidity and strong blocking capacity, helping the stratum corneum regulate water and external substances.
The role of ceramides can be summarized as follows:
Long-chain lipid structure
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Co-arrangement with cholesterol and free fatty acids
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Formation of the intercellular lipid barrier in the stratum corneum
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Reduction of outward water loss
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Improvement of skin barrier stability
2.3 Ceramides exist in multiple types, and different structures perform different roles
Ceramides in human skin are not a single substance, but consist of multiple subclasses. Common examples include Ceramide NP, Ceramide AP, Ceramide EOP, and Ceramide NS. These names usually represent different structural categories or INCI naming categories and do not necessarily correspond to a single fixed molecule. Within the same category, multiple molecular species may still exist due to differences in fatty acid chain length, degree of unsaturation, and hydroxyl structure.
Among them, ω-O-acylceramides are a class of ceramides with ultra-long N-acyl chains and a linoleic acid esterified structure attached at the ω position. Studies suggest that this class of ceramides is closely related to the long-period lamellar lipid structure of the stratum corneum, the corneocyte lipid envelope, and the integrity of the skin barrier.
3 The Relationship Between Ceramides and Skin Condition
3.1 Ceramide deficiency can affect lipid organization in the stratum corneum
Ceramides are important components of the intercellular lipids in the stratum corneum. When ceramide content decreases, fatty acid chain length changes, or the proportions of different ceramide subclasses become imbalanced, the lipid organization in the stratum corneum may become incomplete, and the continuity of the barrier structure may decline. This change can affect two skin functions:
Affected Function | Possible Manifestations |
Reduced water-retention capacity | Dryness, tightness, roughness, flaking |
Reduced ability to block external irritants | Stinging, redness, burning sensation, intolerance to skincare products |
These symptoms are not necessarily caused only by reduced ceramide levels. They may also be related to over-cleansing, low environmental humidity, ultraviolet exposure, inflammatory responses, skin disease conditions, or highly irritating skincare practices. However, from the perspective of barrier structure, ceramide abnormalities are an important factor worth focusing on.
3.2 Dryness does not always require ceramides, but ceramides deserve more attention when barrier function is impaired
Skin dryness can have different causes. Some dryness is mainly related to low environmental humidity or transient water reduction after cleansing. Other types of dryness are accompanied by tightness, flaking, stinging, redness, and reduced tolerance, suggesting that barrier function may be affected. The following signs can be used for assessment:
Skin Manifestation | Possible Indication |
Tightness persists for a long time after cleansing | Loss of stratum corneum lipids or reduced barrier stability |
Recurrent dryness and redness during seasonal changes | Reduced ability of the barrier to adapt to temperature and humidity changes |
Stinging after using acid-based or vitamin A products | Combined burden of active-ingredient irritation and barrier stress |
Roughness, flaking, and repeated instability | Possible abnormalities in stratum corneum hydration and lipid organization |
Reduced tolerance to skincare products | External ingredients are more likely to irritate the skin |
Vitamin A products refer to skincare or pharmaceutical ingredients that affect keratinization and renewal, such as retinol, retinal, and retinoic acid derivatives.
4 The Role of Ceramides in Skin Care
4.1 The core role of ceramides is to support the barrier lipid structure
In skincare, the main significance of ceramides is to supplement lipids related to the stratum corneum barrier and support the integrity of the intercellular lipid layer, thereby helping reduce outward water loss and improve discomfort associated with dryness, tightness, and impaired barrier function. Their role differs from that of humectants:
Ingredient Type | Representative Ingredients | Main Role |
Humectants | Glycerin, hyaluronic acid, betaine | Increase the water content of the stratum corneum |
Barrier lipid ingredients | Ceramides, cholesterol, free fatty acids | Support the intercellular lipid structure |
Emollient and occlusive ingredients | Squalane, plant oils, silicones | Reduce further water loss and improve skin softness and smoothness |
4.2 Ceramides alone cannot complete all barrier repair
Ceramides are important, but barrier recovery is not a process that can be completed independently by a single ingredient. If frequent exfoliation, harsh cleansing, high-frequency use of acid-based products, or layering of high-concentration active ingredients continues at the same time, the barrier may remain under stress. Reasonable skincare approaches include:
Care Objective | Corresponding Approach |
Reduce lipid loss | Use mild cleansing products and avoid over-cleansing |
Support the lipid barrier | Choose leave-on products containing ceramides, cholesterol, and free fatty acids |
Reduce accumulated irritation | When the barrier is unstable, reduce the frequency of acid-based and vitamin A products |
Maintain hydration | Pair with moisturizing ingredients such as glycerin, hyaluronic acid, and panthenol |
Reduce external damage | Use sun protection during the day to reduce the impact of ultraviolet radiation on the skin |
5 The Relationship Between Ceramides and Niacinamide
5.1 They belong to different types of skincare ingredients
Niacinamide, also known as nicotinamide, is a form of vitamin B3 and is a water-soluble small-molecule active ingredient. Ceramides, by contrast, are lipid-based barrier ingredients. They are not the same type of ingredient and differ in their sites and modes of action:
Comparison Dimension | Ceramides | Niacinamide |
Ingredient category | Sphingolipid barrier lipids | Vitamin B3 derivative |
Main direction of action | Participate in the lipid structure of the stratum corneum | Participate in epidermal cell metabolism and barrier-related processes |
Relationship with the barrier | Serve as important components of intercellular lipids | May promote the synthesis of ceramides and other stratum corneum lipids |
Skincare focus | Dryness, tightness, impaired barrier function | Barrier support, while also addressing skin tone, sebum, and inflammation-related concerns |
Usage considerations | Focus on the overall combination system and product mildness | Excessively high concentrations or unstable barrier conditions may cause irritation |
5.2 Ceramides mainly supplement barrier lipids, while niacinamide mainly supports lipid synthesis
Research shows that, under appropriate concentrations and formulation conditions, niacinamide can promote keratinocytes to synthesize ceramides and other stratum corneum lipids. Topical niacinamide has also been observed to increase levels of ceramides and free fatty acids in the stratum corneum and reduce transepidermal water loss, or TEWL, in dry skin.
Ceramides and niacinamide are complementary:
Key role of ceramides: supplement barrier-related lipid components
Key role of niacinamide: promote the skin’s own synthesis of ceramides and other lipids
Logic of combined use: exogenous lipid supplementation + support for endogenous lipid synthesis
This is also why some barrier-care products contain both ceramides and niacinamide. Ceramides are more focused on structural supplementation, while niacinamide is more focused on physiological regulation. When used together, they can support stratum corneum barrier function through different pathways.
5.3 How to choose based on skin condition
Skin Condition | Suitable Choice |
Dryness, tightness, flaking, accompanied by stinging or redness | Prioritize ceramide-based barrier-care products |
Dull skin tone, higher sebum production, and generally good barrier tolerance | Consider niacinamide-based products |
Reduced tolerance after using acid-based or vitamin A products | Prioritize ceramide-related barrier care and reduce the frequency of irritating active ingredients |
Desire to maintain long-term skin stability | Choose products combining ceramides and niacinamide |
Noticeable stinging after using niacinamide | Reduce the concentration or frequency of use and first improve the barrier condition |
6 How to Evaluate Whether a Ceramide Product Is Worth Choosing
6.1 Do not only check whether ceramides are added; assess whether the overall formulation is designed around barrier care
The presence of “Ceramide” in an ingredient list does not necessarily mean the product is suitable for a compromised barrier. Ceramides are relatively lipophilic, and their stability, dispersion, skin feel, and performance are influenced by the formulation system. It is recommended to consider whether the product addresses the following aspects:
Evaluation Dimension | Key Points to Consider |
Barrier lipid supplementation | Whether it contains lipid ingredients such as ceramides, cholesterol, and free fatty acids |
Moisturizing support | Whether it contains humectants such as glycerin, hyaluronic acid, and betaine |
Soothing support | Whether it contains ingredients such as panthenol, allantoin, and madecassoside to reduce discomfort associated with dryness |
Formulation mildness | Whether it reduces highly irritating fragrances, highly volatile alcohols, and high-concentration irritating active ingredients |
Product type | Whether it is a leave-on product such as a lotion, cream, or repair serum |
In addition, the dissolution, dispersion, carrier system, and ratio of ceramides to cholesterol and fatty acids in the final formulation can all affect their actual performance in barrier care.
6.2 When the barrier is unstable, reduce irritation first before pursuing repair efficiency
If the skin already shows signs of impaired barrier function, such as tightness, stinging, redness, and flaking, the skincare sequence should begin with subtraction before addition.
Skincare sequence for an unstable barrier:
① Reduce sources of irritation: reduce harsh cleansing, frequent exfoliation, high-frequency use of acid-based products, and vitamin A products
② Maintain basic moisturization: use mild moisturizing ingredients such as glycerin, hyaluronic acid, and panthenol
③ Supplement barrier lipids: choose leave-on products containing ceramides, cholesterol, and free fatty acids
④ After the skin stabilizes, gradually resume function-oriented skincare: such as brightening, anti-aging, and oil-control active ingredients
7 Representative Chemical Product Classification Tables Related to Ceramides and the Stratum Corneum Lipid Barrier
Table 1 Ceramide Compounds, Model Compounds, and Sphingolipid Metabolism-Related Products
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Ceramide compound | 178436-06-1 | Ceramide NP | ≥95% | A stratum corneum intercellular lipid-related component, used for ceramide structure research, barrier lipid model construction, and skin lipidomics analysis | |
Ceramide compound | 100403-19-8 | Ceramide mixture | ≥95% | A multi-component ceramide material, used for simulating the ceramide composition of the stratum corneum, studying barrier lipid combinations, and developing repair-oriented formulations | |
Ceramide compound | 34354-88-6 | N-Stearoyl phytosphingosine | ≥98% | A phytosphingosine-type ceramide, used for studying stratum corneum lipid organization, analyzing the effect of ceramide chain length, and conducting barrier lipid model experiments | |
Short-chain ceramide model compound | 3102-57-6 | N-Acetyl-D-sphingosine | Moligand™, ≥98% | A short-chain ceramide model compound, used for sphingolipid signaling research, evaluation of ceramide bioactivity, and cell-level mechanistic studies | |
Short-chain ceramide model compound | 124753-97-5 | N-Hexanoyl-D-erythro-sphingosine | ≥99% | A short-chain ceramide research reagent, used for studying ceramide signaling pathways, cell apoptosis and differentiation experiments, and lipid metabolism regulation research | |
Dihydroceramide | 2304-80-5 | C18 Dihydroceramide (d18:0/18:0) | ≥99% | A dihydroceramide reference compound, used for sphingolipid metabolic pathway research, analysis of the conversion between dihydroceramides and ceramides, and lipidomics detection | |
Sphingosine base | 123-78-4 | D-erythro-Sphingosine | Moligand™, ≥99% | A ceramide structural-unit-related reagent, used for sphingolipid metabolism research, analysis of ceramide biosynthetic pathways, and cell signaling experiments | |
Dihydrosphingosine base | 764-22-7 | D-erythro-Dihydrosphingosine | Moligand™, ≥95% | A dihydrosphingosine-related reagent, used for research on dihydroceramide precursors, sphingolipid biosynthesis analysis, and lipid metabolism experiments | |
Phytosphingosine base | 554-62-1 | Phytosphingosine (glycolipid) | ≥98% | A phytosphingosine-type sphingoid base-related product, used for ceramide structural-unit research, sphingolipid metabolism experiments, and studies related to stratum corneum lipids | |
Sphingomyelin | 85187-10-6 | Sphingomyelins(SM) (from bovine spinal cord) | ≥95% natural bovine mixture | Naturally derived sphingomyelin, used for ceramide metabolic pathway research, membrane lipid model construction, and studies of sphingolipid hydrolysis and lipid signaling |
Table 2 Barrier Sterol and Free Fatty Acid-Related Products
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Barrier sterol | 57-88-5 | Cholesterol, plant-derived | ≥98% | A key sterol component of stratum corneum intercellular lipids, used for constructing ternary lipid models composed of ceramides, cholesterol, and free fatty acids | |
Essential fatty acid | 60-33-3 | Linoleic acid | Moligand™, ≥99% (GC) | An unsaturated fatty acid component, used for research on linoleic-acid-related ceramide structures, analysis of stratum corneum lipid composition, and barrier lipid model experiments | |
Saturated fatty acid | 57-10-3 | Palmitic acid | Stearic acid ≤0.5% | A saturated fatty acid component, used for studying skin free fatty acid systems, barrier lipid combinations, and structural regulation of emulsification systems | |
Saturated fatty acid | 57-11-4 | S736443 | Stearic acid | Moligand™, ≥95%, acid value 194–199 mg KOH/g | A long-chain saturated fatty acid, used for stratum corneum lipid models, structural regulation of cream systems, and barrier-care formulation research |
Unsaturated fatty acid | 112-80-1 | Oleic acid | USP, ≥98% | A monounsaturated fatty acid component, used for skin lipid fluidity research, transdermal penetration studies, and lipid system construction; in barrier-care applications, it is suitable as a research model for lipid fluidity or penetration enhancement | |
Long-chain/very-long-chain saturated fatty acid model | 112-85-6 | Behenic acid, also known as moringa seed oil acid | ≥99% | A C22:0 saturated fatty acid-related product, used for studying fatty acid chain-length effects, analyzing ordered arrangement of lipid layers, and constructing barrier lipid models | |
Long-chain/very-long-chain saturated fatty acid model | 557-59-5 | Lignoceric acid | ≥99% (GC) | A C24:0 saturated fatty acid, used for studying fatty acid chain-length effects, analyzing ceramide chain-length-related properties, and conducting barrier model experiments |
Table 3 Niacinamide, Moisturizing, and Soothing Auxiliary Products
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Vitamin B3 barrier-regulating ingredient | 98-92-0 | Niacinamide | ≥99.5% (HPLC) | A vitamin B3 active ingredient, used for research on promoting ceramide synthesis, transepidermal water loss evaluation, and development of barrier-function-regulating formulations | |
Vitamin B3 control ingredient | 59-67-6 | Niacin | Moligand™, ≥99% | A vitamin B3-related ingredient, used for niacinamide metabolism-related research, control experiments for skin active ingredients, and analysis of barrier-regulating mechanisms | |
Macromolecular aqueous-phase moisturizing ingredient | 9067-32-7 | Sodium hyaluronate | Injection grade, ≥99.8%, molecular weight: 1.70–2.60 million | A high-molecular-weight moisturizing ingredient, used for evaluating stratum corneum hydration, constructing the aqueous phase of moisturizing systems, and developing barrier-care formulations | |
Polyol moisturizing ingredient | 56-81-5 | Glycerol | Anhydrous grade, UltraBio™, molecular biology grade, ≥99.5% (GC) | A humectant, used for stratum corneum hydration research, construction of basic moisturizing systems, and development of ceramide combination formulations | |
Natural moisturizing factor-related ingredient | 28874-51-3 | Sodium L-pyrrolidone-5-carboxylate | Oily, 50% | A natural moisturizing factor-related ingredient, used for studying water retention in the stratum corneum, moisturizing system design, and barrier-care formulation development | |
Natural moisturizing factor-related ingredient | 57-13-6 | Urea | AR, ≥99% | A natural moisturizing factor-related ingredient, used for stratum corneum hydration research, dry-skin model experiments, and moisturizing repair formulation development; at low concentrations it mainly supports moisturization, while at higher concentrations it may have keratin-softening or keratin-conditioning effects, so irritation should be considered when the barrier is unstable | |
Osmoregulating moisturizing ingredient | 107-43-7 | Betaine, anhydrous | Moligand™, ultrapure grade, ≥99% | An ingredient with both moisturizing and osmoregulatory properties, used for hydration-balance research, mild moisturizing systems, and barrier-care formulation development | |
Panthenol care auxiliary ingredient | 81-13-0 | D-Panthenol | ≥98% | A panthenol-type care auxiliary ingredient, used for research on improving dryness-related discomfort, barrier-care formulations, and moisturizing-soothing systems | |
Panthenol care auxiliary ingredient | 16485-10-2 | DL-Panthenol | ≥99% | A panthenol-type moisturizing and soothing ingredient, used for basic moisturizing formulations, barrier-care systems, and experiments on improving dry skin conditions | |
Soothing care auxiliary ingredient | 97-59-6 | Allantoin | ≥98% | A commonly used soothing care ingredient, used for dry and rough skin care research, barrier-care formulations, and mild repair systems |
Table 4 Sebum-Related Emollient Lipid Products
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Sebum-related unsaturated lipid | 111-02-4 | Squalene | Moligand™, ≥98% | A sebum-related unsaturated lipid, used for skin lipid composition research, lipid oxidation experiments, and prototype research on emollient systems; as an unsaturated lipid, its oxidative stability should be considered | |
Sebum-related emollient lipid | 111-01-3 | Squalane | ≥98% | A stable emollient lipid ingredient, used for barrier-care formulations, skin-feel adjustment in cream systems, and research related to reducing outward water loss |
Note: The above products are mainly intended for scientific research, analytical testing, lipid model construction, and formulation prototype studies. Whether they can be used in cosmetics, human-use products, or large-scale formulations should be determined based on product grade, regulatory requirements, COA/SDS, supply status, and compliance evaluation. For more product specifications, grades, and COA information, please search by “product name/CAS/catalog number” on the Aladdin official website.
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