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Distinct Skin Penetration and Immune Responses to Ionic and Nanoparticulate Cobalt in Allergic Contact Dermatitis

Werner, P. ; Schaier, M. ; Braun, G. ; Julander, A. ; Midander, K. ; Isaksson, M. LU ; Koellensperger, G. ; Wisgrill, L. and Fyhrquist, N. (2026) In Allergy: European Journal of Allergy and Clinical Immunology
Abstract

Background: Cobalt is a well-established cause of allergic contact dermatitis (ACD), but data on the skin absorption, toxicity, and immunological effects of cobalt nanoparticles (CoNPs) remain limited. Given the increasing use of nanomaterials in industry and medicine, understanding how cobalt speciation affects skin immune activation is of growing clinical relevance. Methods: Fourteen cobalt-allergic individuals underwent standardized patch testing with cobalt chloride (CoCl2) and CoNPs at equivalent nominal doses. Skin biopsies from positive reactions were analyzed by RNA sequencing to characterize immune and barrier-related pathways. Cobalt penetration and localization were further examined in reconstructed and ex vivo... (More)

Background: Cobalt is a well-established cause of allergic contact dermatitis (ACD), but data on the skin absorption, toxicity, and immunological effects of cobalt nanoparticles (CoNPs) remain limited. Given the increasing use of nanomaterials in industry and medicine, understanding how cobalt speciation affects skin immune activation is of growing clinical relevance. Methods: Fourteen cobalt-allergic individuals underwent standardized patch testing with cobalt chloride (CoCl2) and CoNPs at equivalent nominal doses. Skin biopsies from positive reactions were analyzed by RNA sequencing to characterize immune and barrier-related pathways. Cobalt penetration and localization were further examined in reconstructed and ex vivo human skin models using inductively coupled plasma mass spectrometry (ICP-MS) and laser ablation ICP-TOFMS imaging. Results: Both CoCl2 and CoNPs elicited positive patch test reactions, although CoNP responses were delayed and milder. CoCl2 also demonstrated a clearer dose-dependent increase in clinical reactivity, whereas CoNP responses were comparatively stable across concentrations. Transcriptomic profiling revealed substantial overlap between exposures, with reaction strength emerging as the main determinant of gene expression changes. Increasing severity was associated with enrichment of interferon signaling, inflammatory response, apoptosis, cell cycle-related programs, and glycolysis in both exposures. Lipid metabolic pathways were significantly associated with reaction strength in CoCl2-exposed skin but not in CoNP-exposed samples. Direct comparison using a paired DESeq2 design identified 281 differentially expressed genes between CoCl2 and CoNP. Functional enrichment of these genes revealed distinct biological signatures between exposures, including upregulated interferon and antiviral pathways and downregulated epithelial differentiation programs in CoCl2 compared to CoNP. In complementary skin models, CoCl2 exhibited deeper penetration, higher trans-epidermal flux, and broader intracellular accumulation across epidermal and dermal cell populations, whereas CoNPs remained largely confined to the stratum corneum and adnexal structures. Conclusions: Cobalt-induced ACD is shaped by both reaction strength and cobalt speciation. While CoCl2 and CoNPs share a core interferon-driven inflammatory program that scales with clinical severity, ionic cobalt penetrates more deeply and preferentially engages interferon and antiviral pathways in dermal compartments, whereas CoNPs are retained more superficially and are associated with epithelial differentiation programs. These findings underscore the importance of chemical form, tissue penetration, bioavailability, and retention in determining immune responses and dermal hazard of cobalt and other metal nanomaterials.

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publishing date
type
Contribution to journal
publication status
epub
subject
keywords
allergic contact dermatitis, cobalt nanoparticles, interferon signaling, metal speciation, skin penetration
in
Allergy: European Journal of Allergy and Clinical Immunology
publisher
Wiley-Blackwell
external identifiers
  • scopus:105042419253
  • pmid:42323279
ISSN
0105-4538
DOI
10.1111/all.70422
language
English
LU publication?
yes
id
ed8a8e29-b085-4614-a6e2-ac9b19813364
date added to LUP
2026-09-16 12:54:16
date last changed
2026-09-17 03:00:02
@article{ed8a8e29-b085-4614-a6e2-ac9b19813364,
  abstract     = {{<p>Background: Cobalt is a well-established cause of allergic contact dermatitis (ACD), but data on the skin absorption, toxicity, and immunological effects of cobalt nanoparticles (CoNPs) remain limited. Given the increasing use of nanomaterials in industry and medicine, understanding how cobalt speciation affects skin immune activation is of growing clinical relevance. Methods: Fourteen cobalt-allergic individuals underwent standardized patch testing with cobalt chloride (CoCl<sub>2</sub>) and CoNPs at equivalent nominal doses. Skin biopsies from positive reactions were analyzed by RNA sequencing to characterize immune and barrier-related pathways. Cobalt penetration and localization were further examined in reconstructed and ex vivo human skin models using inductively coupled plasma mass spectrometry (ICP-MS) and laser ablation ICP-TOFMS imaging. Results: Both CoCl<sub>2</sub> and CoNPs elicited positive patch test reactions, although CoNP responses were delayed and milder. CoCl<sub>2</sub> also demonstrated a clearer dose-dependent increase in clinical reactivity, whereas CoNP responses were comparatively stable across concentrations. Transcriptomic profiling revealed substantial overlap between exposures, with reaction strength emerging as the main determinant of gene expression changes. Increasing severity was associated with enrichment of interferon signaling, inflammatory response, apoptosis, cell cycle-related programs, and glycolysis in both exposures. Lipid metabolic pathways were significantly associated with reaction strength in CoCl<sub>2</sub>-exposed skin but not in CoNP-exposed samples. Direct comparison using a paired DESeq2 design identified 281 differentially expressed genes between CoCl<sub>2</sub> and CoNP. Functional enrichment of these genes revealed distinct biological signatures between exposures, including upregulated interferon and antiviral pathways and downregulated epithelial differentiation programs in CoCl<sub>2</sub> compared to CoNP. In complementary skin models, CoCl<sub>2</sub> exhibited deeper penetration, higher trans-epidermal flux, and broader intracellular accumulation across epidermal and dermal cell populations, whereas CoNPs remained largely confined to the stratum corneum and adnexal structures. Conclusions: Cobalt-induced ACD is shaped by both reaction strength and cobalt speciation. While CoCl<sub>2</sub> and CoNPs share a core interferon-driven inflammatory program that scales with clinical severity, ionic cobalt penetrates more deeply and preferentially engages interferon and antiviral pathways in dermal compartments, whereas CoNPs are retained more superficially and are associated with epithelial differentiation programs. These findings underscore the importance of chemical form, tissue penetration, bioavailability, and retention in determining immune responses and dermal hazard of cobalt and other metal nanomaterials.</p>}},
  author       = {{Werner, P. and Schaier, M. and Braun, G. and Julander, A. and Midander, K. and Isaksson, M. and Koellensperger, G. and Wisgrill, L. and Fyhrquist, N.}},
  issn         = {{0105-4538}},
  keywords     = {{allergic contact dermatitis; cobalt nanoparticles; interferon signaling; metal speciation; skin penetration}},
  language     = {{eng}},
  publisher    = {{Wiley-Blackwell}},
  series       = {{Allergy: European Journal of Allergy and Clinical Immunology}},
  title        = {{Distinct Skin Penetration and Immune Responses to Ionic and Nanoparticulate Cobalt in Allergic Contact Dermatitis}},
  url          = {{http://dx.doi.org/10.1111/all.70422}},
  doi          = {{10.1111/all.70422}},
  year         = {{2026}},
}