Biomechanical Insights into the Proteomic Profiling of Cells in Response to Red Light Absorption

Author:

Silva Antônio V. S.12,Sousa Felipe D.3,Sousa Brandon F.4,Santos Wallace V.1,Oliveira Antônio E. R.3,Lobo Marina D. P.5,Ramos Márcio V.4,Alencar Nylane M. N.6,de Sousa Marcelo V. P.178,Freire Rosemayre S.9,Oliveira Cláudio L. N.1,de Sousa Jeanlex S.1ORCID

Affiliation:

1. Departamento de Física Universidade Federal do Ceará Fortaleza CE 60440‐900 Brazil

2. Instituto Federal do Rio Grande do Norte Pau dos Ferros RN 59900‐000 Brazil

3. Núcleo de Biologia Experimental Universidade de Fortaleza Fortaleza CE 60811‐905 Brazil

4. Departamento de Bioquímica e Biologia Molecular Universidade Federal do Ceará Fortaleza CE 60440‐900 Brazil

5. Departamento de Biologia Universidade Federal do Ceará Fortaleza CE 60440‐900 Brazil

6. Departamento de Fisiologia e Farmacologia Universidade Federal do Ceará Fortaleza CE 60430‐275 Brazil

7. Bright Photomedicine São Paulo SP 05508‐000 Brazil

8. Instituto Federal de Sergipe Estância SE 49200‐000 Brazil

9. Central Analítica Universidade Federal do Ceará Fortaleza CE 60440‐900 Brazil

Abstract

AbstractPhotobiomodulation (PBM) is a promising non‐invasive therapy for tissue repair, but its underlying cellular mechanisms are not fully understood. In this study, the biomechanical and proteomic responses of three cell types – keratinocytes (HACAT), fibroblasts (L929), and osteoblasts (OFCOLII) – exposed to red light (633 nm) are investigated using atomic force microscopy (AFM) and mass spectrometry‐based proteomic analysis. Red light absorption resulted in cell‐type‐specific changes in viscoelastic properties, with fibroblasts exhibiting increased fluidity, reduced stiffness, and enhanced motility. Conversely, keratinocytes exhibited intensity‐dependent responses, while osteoblasts appeared to be relatively insensitive to irradiation conditions. Proteomic profiling identified key signaling pathways involved in immune response, ATP production, and stress regulation. The immune and ATP pathways are strongly linked to the modulation of viscoelastic properties, particularly in fibroblasts, while weaker correlations were observed in keratinocytes. Cytoskeletal remodeling, primarily within the F‐actin network, is identified as the main driver of mechanical alterations, with additional contributions from microtubules and intermediate filaments. These findings provide new insights into how red light absorption modulates cellular viscoelasticity through cytoskeletal remodeling, with potential applications in optimizing light‐based therapies for tissue regeneration and disease treatment.

Funder

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Fundação Cearense de Apoio ao Desenvolvimento Científico e Tecnológico

Publisher

Wiley

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