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Dynamic multi-omics mechanisms underpinning retinol tolerance: stage-specific reconstruction of skin barrier function
Yixuan Huang1, Qi Zhou2,3, Minyan Gui1
1Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, China.
Background:
Retinol remains an essential component in anti-aging skincare; however, a subset of users develop intolerance, characterized by compromised barrier integrity and inflammation. The temporal dynamics of how skin microbiota and host metabolism co-evolve during retinol tolerance establishment remain poorly understood.
Methods:
We conducted a prospective 28-day longitudinal study with 18 Chinese women (aged 25-40): 9 retinol-intolerant subjects monitored at baseline, adverse reaction phase, and tolerance establishment, while baseline data from 9 retinol-tolerant individuals served as controls. We integrated cutaneous phenotypic measurements, metagenomic sequencing, and untargeted metabolomics.
Results:
In the intolerant group, skin phenotype assessment revealed a distinct biphasic response-an acute phase marked by increased stratum corneum hydration, reduced sebum secretion, lower skin pH, and improved wrinkle metrics, followed by a re-equilibration phase characterized by sustained barrier restoration. Metagenomic profiling of 969 microbial species demonstrated that, although overall microbial α-diversity remained stable across time points in both groups, key taxa in the intolerant group exhibited transient "rise-and-fall" dynamics. At baseline, the intolerant group exhibited overrepresentation of Cutibacterium acnes, whereas the tolerant group was enriched in potentially protective species, including Sphingomonas hankookensis and Acinetobacter johnsonii. Untargeted metabolomics showed marked temporal fluctuations with an initial phase of metabolic turbulence, followed by partial recovery. During the early adverse reaction phase in intolerant subjects, lipid and fatty acid metabolic pathways-specifically, glycerophospholipid, linoleic acid, α-linolenic acid, and ether lipid metabolism-were significantly upregulated, concomitant with the suppression of TCA cycle and sphingolipid activity. Conversely, as tolerance was established, enhanced activity in the TCA cycle, sphingolipid, ascorbate, and pentose metabolism pathways-coupled with a reduction in pro-inflammatory arachidonic acid derivatives-indicated metabolic reconstitution and restoration of barrier integrity.
Discussion:
Integrated multi-omics correlation analyses further underscored the tightly interconnected regulation of host-microbe energy metabolism, antioxidant defenses, and membrane repair in response to retinol-induced stress. These findings elucidate the temporal interplay between host and microbial processes underpinning retinol tolerance and highlight baseline biomarkers that may facilitate personalized skincare interventions.
Insights
Understanding how skin adapts to retinol is key for anti-aging skincare. This study reveals how skin microbes and metabolism change during retinol tolerance, identifying potential biomarkers for personalized treatments.
Area of Science:
- Dermatology and Skin Microbiome Research
- Metabolomics and Metagenomics
- Host-Microbe Interactions
Background:
- Retinol is crucial for anti-aging, but some users experience intolerance.
- Skin barrier integrity and inflammation are key features of retinol intolerance.
- The co-evolution of skin microbiota and host metabolism during retinol tolerance is not well understood.
Purpose of the Study:
- To investigate the temporal dynamics of skin microbiota and host metabolism during retinol tolerance establishment.
- To identify potential biomarkers for predicting and managing retinol intolerance.
- To understand the interplay between host and microbial processes in response to retinol.
Main Methods:
- A 28-day prospective longitudinal study involving 18 Chinese women.
- Monitoring of retinol-intolerant subjects through adverse reaction and tolerance phases, with tolerant individuals as controls.
- Integration of cutaneous phenotypic measurements, metagenomic sequencing, and untargeted metabolomics.
Main Results:
- Intolerant subjects showed a biphasic skin response: acute barrier disruption followed by restoration.
- Key skin microbial taxa exhibited transient dynamics, with altered baseline compositions (e.g., increased Cutibacterium acnes in intolerant individuals).
- Metabolomics revealed significant temporal fluctuations, with initial upregulation of lipid metabolism and suppression of TCA cycle activity, followed by metabolic reconstitution upon tolerance establishment.
Conclusions:
- Multi-omics analyses highlight the interconnected regulation of host-microbe metabolism, antioxidant defenses, and membrane repair.
- Findings elucidate the temporal interplay of host and microbial processes in retinol tolerance.
- Baseline biomarkers may facilitate personalized skincare interventions for retinol use.
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