Related Experiment Video
Updated: Jun 3, 2025

Lymphocyte Isolation from Human Skin for Phenotypic Analysis and Ex Vivo Cell Culture
Published on: April 8, 2016
Circulating MicroRNAs in Patients with Psoriasis Treated with Anti-IL-23: A Cohort Study
Federico Diotallevi1, Giulia Matacchione2, Anna Campanati3
1Dermatological Clinic, Department of Clinical and Molecular Sciences (DISCLIMO), Università Politecnica delle Marche, Ancona, Italy.
Introduction:
Psoriasis is characterized by aberrant keratinocyte activity and immune cell infiltration, driven by immune-mediated pathways. MicroRNAs (miRNAs) play crucial roles in regulating these processes, offering insights into disease mechanisms and therapeutic targets.
Objectives:
This study aimed to investigate changes in circulating miRNAs in psoriasis patients undergoing risankizumab therapy, an anti-IL-23 monoclonal antibody, to understand its impact on disease pathogenesis and treatment response.
Methods:
Plasma samples from 12 psoriasis patients were collected before (T0) and after 1 year (T1) of risankizumab treatment and analyzed using small RNA sequencing. Findings were validated in a separate cohort of 23 patients using quantitative real-time PCR (qRT-PCR). T-regulatory cell (Treg) numbers and pro-inflammatory cytokine levels were also assessed.
Results:
Significant clinical improvement was observed in all patients after 1 year of treatment, accompanied by increased Treg counts and reduced levels of pro-inflammatory cytokines. Twenty-four miRNAs exhibited differential expression post-treatment; 9 were downregulated and 15 upregulated. Notably, miR-200a-3p showed a significant correlation with baseline Psoriasis Area Severity Index (PASI), indicating its potential as a severity marker. Risankizumab therapy also decreased peripheral blood levels of IL-23, IL-1β, and IL-8.
Conclusions:
This study identifies specific circulating miRNAs, including miR-200a-3p, as potential biomarkers for monitoring treatment responses in psoriasis patients. The findings underscore the therapeutic efficacy of risankizumab in modulating miRNA profiles and immune pathways associated with psoriasis pathogenesis. Overall, these results provide new insights into the mechanisms of risankizumab action and highlight miRNAs as promising candidates for personalized medicine approaches in psoriasis management.
Insights
Risankizumab treatment for psoriasis altered circulating microRNA (miRNA) profiles, with miR-200a-3p potentially marking disease severity. This offers insights into immune modulation and personalized psoriasis therapy.
Area of Science:
- Dermatology
- Immunology
- Molecular Biology
Background:
- Psoriasis involves abnormal skin cell activity and immune cell infiltration.
- MicroRNAs (miRNAs) are key regulators of these psoriasis-related processes.
- miRNAs present potential therapeutic targets for psoriasis.
Purpose of the Study:
- Investigate circulating miRNA changes in psoriasis patients during risankizumab therapy.
- Understand risankizumab's impact on psoriasis pathogenesis and treatment response.
- Identify potential miRNA biomarkers for psoriasis treatment.
Main Methods:
- Small RNA sequencing of plasma samples from 12 psoriasis patients before and after 1 year of risankizumab treatment.
- Validation of miRNA findings using quantitative real-time PCR (qRT-PCR) in 23 patients.
- Assessment of T-regulatory cell (Treg) counts and pro-inflammatory cytokine levels.
Main Results:
- All patients showed significant clinical improvement after 1 year of risankizumab.
- Treg counts increased, and pro-inflammatory cytokines decreased post-treatment.
- Twenty-four miRNAs were differentially expressed; miR-200a-3p correlated with Psoriasis Area Severity Index (PASI).
Conclusions:
- Circulating miRNAs, including miR-200a-3p, may serve as biomarkers for monitoring psoriasis treatment response.
- Risankizumab effectively modulates miRNA profiles and immune pathways in psoriasis.
- Findings support miRNAs as candidates for personalized psoriasis medicine.
Related Concept Videos
T Cell Types and Functions
Th1 cells stimulate dendritic cells to express necessary co-stimulatory molecules on their surfaces for...
MicroRNAs
iPS Cell Differentiation

