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.

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