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Updated: Sep 25, 2026

Isolation and Culture of Primary Mouse Keratinocytes from Neonatal and Adult Mouse Skin
Published on: July 14, 2017
Neonatal development of the stratum corneum pH gradient: localization and mechanisms leading to emergence of optimal
Martin J Behne1, Nicholas P Barry, Kerry M Hanson
1Department of Dermatology, University of California San Francisco, Veterans Affairs Medical Center, San Francisco, California 94121, USA. behnemj@itsa.ucsf.edu
Insights
Newborn skin barrier develops through gradual acidification of the stratum corneum (SC), crucial for processing lipids and forming a protective layer. This process, essential for full barrier competence, extends from the lower SC outward post-birth.
Area of Science:
- Dermatology
- Neonatal Physiology
- Skin Barrier Function
Background:
- Neonatal skin has a higher risk of infections and absorption due to incomplete barrier maturation.
- Adult stratum corneum (SC) acidification is vital for permeability barrier homeostasis.
- Lipid processing in SC relies on acidic pH-dependent enzymes.
Purpose of the Study:
- To investigate the development of SC acidification in newborns.
- To correlate SC acidification with lipid processing and barrier formation.
- To understand the mechanisms limiting barrier competence in early neonatal skin.
Main Methods:
- Utilized fluorescence lifetime imaging to assess SC pH in neonatal rats.
- Monitored the temporal development of SC acidification.
- Examined the expression of key proteins involved in acidification (NHE1) and lipid processing (beta-glucocerebrosidase).
Main Results:
- SC acidification begins postnatally by day 3 at the SC-stratum granulosum interface.
- Acidification correlated with the maturation of extracellular lamellar bilayers.
- Suboptimal initial acidification may stem from reduced NHE1 activity, not expression.
- Beta-glucocerebrosidase expression was adequate, suggesting it's not rate-limiting.
Conclusions:
- Neonatal SC barrier maturation involves a postnatal progression of acidification.
- Efficient lipid processing and lamellar membrane formation depend on this developing acidification.
- Full skin barrier competence requires acidification to extend from the SC/SG interface to the skin surface.
Abstract:
Although basal permeability barrier function is established at birth, the higher risk for infections, dermatitis, and percutaneous absorption of toxic agents may indicate incomplete permeability barrier maturation in the early neonatal period. Since stratum corneum (SC) acidification in adults is required for normal permeability barrier homeostasis, and lipid processing occurs via acidic pH dependent enzymes, we hypothesized that, in parallel with the less acidic surface pH, newborn SC would exhibit signs of incomplete barrier formation. Fluorescence lifetime imaging reveals that neonatal rat SC acidification first becomes evident by postnatal day 3, in extracellular "microdomains" at the SC- stratum granulosum (SG) interface, where pH-sensitive lipid processing is known to occur. This localized acidification correlated temporally with efficient processing of secreted lamellar body contents to mature extracellular lamellar bilayers. Since expression of the key acidifying mechanism NHE1 is maximal just prior to birth, and gradually declines over the first postnatal week, suboptimal SC acidification at birth cannot be attributed to insufficient NHE1 expression, but could instead reflect reduced NHE1 activity. Expression of the key lipid processing enzyme, beta-glucocerebrosidase (beta-GlcCer'ase), develops similar to NHE1, excluding a lack of beta-GlcCer'ase protein as rate limiting for efficient lipid processing. These results define a postnatal development consisting of initial acidification in the lower SC followed by outward progression, which is accompanied by formation of mature extracellular lamellar membranes. Thus, full barrier competence appears to require the extension of acidification in microdomains from the SC/SG interface outward toward the skin surface in the immediate postnatal period.
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