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Updated: May 23, 2025

A Mouse Model of Mechanotransduction-driven, Human-like Hypertrophic Scarring
Published on: November 29, 2024
Bacterial colonization contributes to pathological scar formation via the regulation of inflammatory response
Ning Yang1, Hao Zhang2, Yuheng Zhang1,3
1Department of Burn and Plastics Surgery, Tangdu Hospital, The Fourth Military Medical University, Xi'an, 710038, China.
Background:
It has been established that inflammatory factors are involved in the formation of pathological scars. Therefore, pathological scars are regarded to be highly associated with chronic inflammation, whereas what factors contribute to this inflammation remains unclear.
Objective:
To confirm that bacterial colonization is involved in the formation of pathological scars, and to reveal that the persistent inflammatory response mediated by macrophages due to bacterial colonization promotes scar formation.
Methods:
This study included 23 normal skin controls and 58 untreated pathological scar samples. To detect the presence of bacteria in surgically-excised scar samples and alterations of histology, as well as bacteria-associated gene levels, histological staining, immunoelectron microscopy, microbiological and cell culture and molecular biology detection methods were employed. The PICRUSt2 tool and BugBase were employed to identify pathways, genes, and phenotypic differences.
Results:
We found that in pathological scars, bacteria were widely distributed both extracellularly and intracellularly, with intracellular bacteria primarily located in the cytoplasm of macrophages and fibroblasts. A total of 2,260 bacterial species were detected in pathological scars, primarily from the Clostridiales, Burkholderiales, Actinomycetales, and Bacteroidales orders. Moreover, the pathogenicity and motility of colonizing bacteria were positively correlated with the degree of scar hyperplasia and invasiveness. The lysates of four clinically-relevant bacterial species had differential effects on the secretion of inflammatory cytokines from macrophages. When treated macrophage supernatant was added to fibroblasts, collagen secretion was dysregulated, and fibroblast differentiation into myofibroblasts prominently increased. In rat scar model, the expression of inflammatory factors and growth factors in the scar tissue was increased, which activated the TGF-β/Smad signaling pathway, resulting in the increasing of α-SMA.
Conclusions:
Persistent activation of macrophages by tissue-colonizing bacteria may be a key factor in promoting inflammatory response and dysregulated collagen deposition in pathological scars, offering a potential new strategy for preventing and treating pathological scars.
Insights
Bacterial colonization in pathological scars triggers chronic inflammation by activating macrophages, leading to abnormal collagen deposition and scar formation. This finding offers new strategies for scar prevention and treatment.
Area of Science:
- Dermatology
- Microbiology
- Immunology
Background:
- Pathological scars are linked to chronic inflammation, but the specific contributing factors remain unclear.
- Investigating the role of bacterial colonization in pathological scar development is crucial.
Purpose of the Study:
- To confirm bacterial colonization's role in pathological scar formation.
- To demonstrate how bacterial colonization-induced macrophage-mediated inflammation promotes scar development.
Main Methods:
- Analysis of 23 normal skin and 58 pathological scar samples using histological staining, immunoelectron microscopy, and molecular biology techniques.
- Detection of bacteria and assessment of bacteria-associated gene levels.
- Utilized PICRUSt2 and BugBase for pathway and gene identification.
Main Results:
- Bacteria were widely found in pathological scars, both extracellularly and intracellularly within macrophages and fibroblasts.
- 2,260 bacterial species were identified, with pathogenicity correlating positively with scar severity.
- Bacterial lysates induced differential cytokine secretion in macrophages, leading to dysregulated collagen deposition and fibroblast activation.
Conclusions:
- Persistent macrophage activation by tissue-colonizing bacteria is a key driver of inflammation and aberrant collagen deposition in pathological scars.
- This research presents a potential new strategy for preventing and treating pathological scars.
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