The Latest Advances in Rosacea Treatment: A Systematic Review
Abstract
1. Introduction
1.1. Clinical Overview of Rosacea
1.2. Epidemiology and Population Distribution
1.3. Pathophysiological Mechanisms and Disease Drivers
1.4. Molecular and Immunological Basis of Disease
1.5. Therapeutic Approaches and Pharmacological Management
1.5.1. Topical Therapies
1.5.2. Systemic Therapies
1.5.3. Off-Label and Emerging Therapies
2. Materials and Methods
3. Results
3.1. Vascular, Device-Based, and Procedural Therapies
3.2. Anti-Inflammatory and Conventional Topical Therapies
3.3. Systemic and Immunomodulatory Therapies
3.4. Microbiome- and Etiology-Oriented Therapies
3.5. Risk of Bias Assessment
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| BTX | botulinum toxin |
| CCL5 | C-C motif chemokine ligand 5 |
| CEA | Clinician’s Erythema Assessment |
| CGRP | calcitonin gene-related peptide |
| COL | colorimeter/clinical color measurement |
| CXCL8 | C-X-C motif chemokine ligand 8 |
| CXCL9 | C-X-C motif chemokine ligand 9 |
| CXCL10 | C-X-C motif chemokine ligand 10 |
| DLQI | Dermatology Life Quality Index |
| EDDP | erythema-directed digital photography |
| EGF | epidermal growth factor |
| ERK1/2 | extracellular signal-regulated kinases 1 and 2 |
| ET | erythematotelangiectatic rosacea (subtype) |
| ETR | erythematotelangiectatic rosacea |
| H. pylori | Helicobacter pylori |
| IFN-γ | interferon gamma |
| IGA | Investigator Global Assessment |
| IGA-RSS | Investigator Global Assessment–Rosacea Severity Score |
| IL-1 | interleukin-1 |
| IL-1β | interleukin-1 beta |
| IL-10 | interleukin-10 |
| IL-17 | interleukin-17 |
| IL-2 | interleukin-2 |
| IL-21 | interleukin-21 |
| IL-26 | interleukin-26 |
| IL-4 | interleukin-4 |
| IL-6 | interleukin-6 |
| IL-8 | interleukin-8 |
| IL-9 | interleukin-9 |
| IVM | ivermectin |
| JAK | Janus kinase |
| JAK-STAT | Janus kinase–signal transducer and activator of transcription pathway |
| JAK1/3 | Janus kinase 1 and 3 |
| KLK5 | kallikrein-related peptidase 5 |
| LL-37 | cathelicidin antimicrobial peptide LL-37 |
| MAPK | mitogen-activated protein kinase |
| MMPs | matrix metalloproteinases |
| MRGPRX2 | Mas-related G-protein coupled receptor X2 |
| mTOR | mammalian Target Of Rapamycin |
| mTORC1 | mechanistic Target Of Rapamycin Complex 1 |
| N/A | Not Applicable/Not Available |
| NF-κB | nuclear factor kappa B |
| NO | nitric oxide |
| PDGF | platelet-derived growth factor |
| PDL | pulsed dye laser |
| PMN(s) | polymorphonuclear neutrophil(s) |
| PPARγ | Peroxisome Proliferator-Activated Receptor gamma |
| PPR | papulopustular rosacea |
| PRP | platelet-rich plasma |
| PSA | Patient’s Self-Assessment |
| QD | once daily |
| QOD | every other day |
| RGS | Rosacea Grading Scale |
| ROS | reactive oxygen species |
| STAT | signal transducer and activator of transcription |
| TGF-β | transforming growth factor beta |
| TH1 | T helper 1 lymphocytes |
| TH17 | T helper 17 lymphocytes |
| TH2 | T helper 2 lymphocytes |
| TLR | toll-like receptor |
| TLR2 | toll-like receptor 2 |
| TMP | topical metronidazole preparation |
| TNF-α | tumor necrosis factor alpha |
| TRPV | transient receptor potential vanilloid |
| TRPV4 | transient receptor potential vanilloid 4 |
| TSP | topical sulfur preparation |
| VAS | Visual Analog Scale |
| VEGF | vascular endothelial growth factor |
| ΔE | color difference value (Delta E) |
Appendix A
| Study | Q1 | Q2 | Q3 | Q4 | Q5 | Q6 | Q7 | Q8 | Q9 | Overall |
|---|---|---|---|---|---|---|---|---|---|---|
| Sajdeh | Y | Y | Y | N | Y | Y | Y | Y | Y | Moderate |
| Cameli | Y | Y | Y | Y | Y | U | Y | Y | Y | Low |
| Ghoz | Y | Y | Y | Y | Y | U | Y | Y | Y | Low |
| Bageorgou | Y | Y | Y | N | Y | Y | Y | Y | Y | Moderate |
| Sharara | Y | Y | Y | N | Y | Y | Y | Y | Y | Moderate |
| Gökşin | Y | Y | Y | N | Y | Y | Y | Y | Y | Moderate |
| Dall’Oglio AzA + DHD | Y | Y | Y | N | Y | Y | Y | Y | Y | Moderate |
| Dall’Oglio IVM | Y | Y | Y | N | Y | Y | Y | Y | Y | Moderate |
| Study | Q1 | Q2 | Q3 | Q4 | Q5 | Q6 | Q7 | Q8 | Q9 | Q10 | Overall |
|---|---|---|---|---|---|---|---|---|---|---|---|
| Sun | Y | Y | Y | U | U | Y | Y | Y | Y | Y | Moderate |
| Suggs | Y | Y | Y | U | U | Y | Y | Y | Y | Y | Moderate |
| Eckert | Y | Y | Y | U | U | Y | Y | Y | Y | N | High |
| Huang | Y | Y | Y | U | U | Y | Y | Y | Y | Y | Moderate |
| Nobeyama | Y | Y | Y | U | U | Y | Y | Y | Y | Y | Moderate |
| Hasanbeyzade | Y | Y | Y | U | U | Y | Y | Y | Y | Y | Moderate |
| Study | Q1 | Q2 | Q3 | Q4 | Q5 | Q6 | Q7 | Q8 | Q9 | Q10 | Q11 | Q12 | Q13 | Overall |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Aghaei | Y | Y | N | N | Y | Y | Y | Y | Y | Y | Y | Y | Y | Moderate |
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| Author, Year and Country | Sajdeh et al. [50] 2025, Iran | Sun et al. [51] 2022, China | Suggs et al. [52] 2020, USA | Eckert et al. [53] 2016, Spain | Ghoz et al. [54] 2020, Egypt |
|---|---|---|---|---|---|
| Study design | clinical trial | retrospective study | retrospective study | case series | split-face study |
| Participants | 15 patients with rosacea | 21 patients with rosacea | 31 patients with rosacea | 34 patients with rosacea | 40 patients with rosacea |
| Rosacea Subtype | ETR | 12 ETR, 9 PPR | ETR | 11 ET, 23 PPR | 24 PPR, 16 ETR |
| Dose, Regimen and Duration | topical, twice daily 4 weeks | oral, 5 mg BID → reduced to 5 mg QD/QOD; 2–26 weeks (mean 7 weeks) | topical, once daily (~4 months) + PDL (1–4 sessions, ~2 avg, 4–6 week intervals) | topical, QD, 8 weeks | PRP injections every 2 weeks, 3 months (6 sessions) |
| Treatment | oxymetazoline 1% cream | tofacitinib | oxymetazoline 1% cream, PDL | ivermectin 1% cream | platelet-rich plasma (PRP) |
| Target Pathway/Molecule | α1A-adrenergic receptor | JAK1/3, JAK–STAT pathway (IL-2, IL-4, IL-6, IL-9, IL-21) | oxyhemoglobin (laser target), α-adrenergic receptor | Demodex folliculorum; TLR2, LL-37, KLK5 | NF-κB; growth factors (PDGF, TGF-β, VEGF) |
| Clinical Outcomes | CEA ↓ PSA ↓ erythema ↓ telangiectasia ↓ | IGA ↓ erythema ↓ | CEA ↓ telangiectasia ↓ | Inflammatory lesions ↓ erythema ↓ sustained response | RGS ↓ inflammation ↓ NF-κB ↓ recurrence ↓ pain, erythema, edema ↓ |
| Mechanism of Action | vasoconstriction, reduction in cutaneous blood flow | JAK1/3 inhibition → suppression of pro-inflammatory cytokine signaling | selective photothermolysis + vasoconstriction | anti-parasitic effect against Demodex mites + modulation of cutaneous inflammation | anti-inflammatory + immunomodulation, tissue repair via growth factors |
| Author, Year and Country | Huang et al. [55] 2021, Taiwan | Cameli et al. [56] 2020, Italy | Bageorgou et al. [57] 2019, Greece | Sharara et al. [58] 2024, Egypt | Nobeyama et al. [59] 2023, Japan |
| Study design | retrospective study | case–control study | prospective study | clinical trial | retrospective study |
| Participants | 36 patients with rosacea | 24 patients (12 with rosacea, 12 controls) | 20 patients with rosacea | 45 patients with rosacea | 47 patients with rosacea |
| Rosacea Subtype | 16 PPR, 23 ETR | ETR, PPR | ETR | 28 PPR, 17 ETR | 25 PPR, 22 ETR |
| Dose, Regimen and Duration | topical QD ± carvedilol oral 6.25 mg BID; 1–12 weeks | topical, BID, 20 days | topical, every 15 days × 4 sessions (±microneedling) | oral, 250 µg/kg single dose | topical, BID, 8 weeks |
| Treatment | ivermectin 1% cream, carvedilol | 18β-glycyrrhetinic acid | tranexamic acid | ivermectin | sulfur preparation or metronidazole |
| Target Pathway/Molecule | Demodex, TLR, inflammatory pathways | ROS; inflammatory pathways | plasmin, VEGF, endothelial activation | Demodex, TLR2, IL-8, IL-1β, TNF-α | Demodex, TLR2, IL-8, TNF-α, neurovascular pathways |
| Clinical Outcomes | CEA ↓ erythema ↓ Demodex density ↓ | erythema ↓ erythema index ↓ lesions ↓ hydration ↔ | IGA-RSS ↓ erythema ↓ telangiectasia ↓ DLQI ↓ | Demodex density↓ IGA↓ relapse rate ↓ patient satisfaction ↑ | IGA score ↓ VAS symptoms: itching ↓ burning ↓ flushing ↓ hypersensitivity ↓ Demodex density ↓ |
| Mechanism of Action | anti-parasitic (Demodex ↓) + anti-inflammatory → ↓ TLR2 activation, carvedilol → vasoconstriction | anti-inflammatory + antioxidant → ↓ ROS-mediated inflammation | anti-fibrinolytic → ↓ angiogenesis + vascular permeability | anti-parasitic (Demodex ↓) + anti-inflammatory → ↓ TLR2 activation → ↓ innate immune response → ↓ cutaneous inflammation | anti-parasitic (Demodex ↓) + anti-inflammatory → ↓ neurovascular dysregulation |
| Author, Year and Country | Aghaei et al. [60] 2023, Iran | Dall’Oglio et al. [61] 2021, Italy | Dall’Oglio et al. [62] 2021, Italy | Hasanbeyzade et al. [63] 2025, Turkey | Gökşin et al. [64] 2024, Turkey |
| Study design | clinical trial | clinical trial | clinical trial | retrospective study | prospective study |
| Participants | 60 patients with rosacea (+ 65 healthy controls) | 20 patients with rosacea | 45 patients with rosacea (44 completed) | 76 patients with rosacea | 35 patients with rosacea |
| Rosacea Subtype | mixed (active/inactive; not subtype-specific) | mild/moderate inflammatory rosacea | mild/moderate inflammatory rosacea | PPR | ETR |
| Dose, Regimen and Duration | oral clarithromycin 500 mg BID + metronidazole 500 mg BID + pantoprazole 40 mg QD → 60 d | topical, QD, 8 weeks | topical, azelaic acid 15% + dihydroavenanthramide D 1%, BID, 8 weeks | topical, once daily, ≥12 weeks | topical, BID, 12 weeks |
| Treatment | clarithromycin, metronidazole, pantoprazole | ivermectin 1% cream | azelaic acid 15%, dihydroavenanthramide D 1% | azelaic acid 20%, dapsone 7.5% | dapsone 5% gel |
| Target Pathway/Molecule | H. pylori, TLR, TNF-α, IL-1β, ROS, NO, MMPs VEGF, neurovascular dysregulation | N\A | N\A | reactive oxygen species, kallikrein-5/cathelicidin pathway (azelaic acid); neutrophil-mediated inflammation (dapsone) | VEGF, inflammation |
| Clinical Outcomes | IgG, IgM ↓ disease severity ↓ (Duluth score) TLR signaling ↓ | erythema ↓ (CEA, EDDP, COL) Demodex density ↓ ↑ concordance: clinical vs. instrumental assessment | IGA score ↓ inflammatory lesions count ↓ erythema (EDDP score) → significant improvement | IGA ↓ inflammatory lesion count ↓ erythema ↓ no significant difference between groups, fewer adverse effects with dapsone | IGA ↓ VAS ↓ DLQI high treatment success, mild adverse effects |
| Mechanism of Action | anti-bacterial (H. pylori ↓) + anti-inflammatory → ↓ endotoxin-driven immune activation → inflammation + vascular dysregulation | anti-parasitic (Demodex ↓, indirect) + anti-inflammatory → ↓ erythema | anti-inflammatory + antioxidant + antimicrobial → ↓ cytokine signaling → ↓ papules/pustules + erythema | anti-inflammatory + antioxidant activity (azelaic acid) → ↓ neutrophil activity + inflammatory pathways (dapsone) | anti-inflammatory → ↓ inflammation + ↓ angiogenesis |
| Parameter | Inclusion Criteria | Exclusion Criteria |
|---|---|---|
| Population | Human participants diagnosed with rosacea (any clinical subtype) Adults (≥18 years). | Participants without a confirmed diagnosis of rosacea. Studies including pediatric populations (<18 years). |
| Intervention/Exposure | Pharmacological and non-pharmacological therapeutic interventions for rosacea (e.g., topical and systemic treatments, laser and light-based therapies, combination therapies). | Studies not evaluating a therapeutic intervention. Studies focused exclusively on pathophysiology without treatment assessment. Cosmetic or skincare products without a defined therapeutic indication. |
| Comparison | Placebo, no treatment, standard of care, or alternative therapeutic interventions. Within-subject (pre–post) comparisons when a control group is not available. | Studies without any comparator or baseline assessment preventing evaluation of the treatment effect. |
| Outcomes | Clinically relevant efficacy and safety outcomes, including reduction in erythema, inflammatory lesion count, telangiectasia, and patient-reported outcomes, assessed using validated or clearly defined measures. | Studies not reporting clinically meaningful outcomes. Outcomes not allowing assessment of treatment efficacy or safety. |
| Study design | Original research articles conducted in human subjects, including randomized controlled trials (RCTs), non-randomized clinical trials, cohort studies, case–control studies, case series, and prospective or retrospective observational studies evaluating therapeutic interventions for rosacea. | Case reports, literature reviews, systematic reviews, meta-analyses, editorials, commentaries, letters to the editor, conference abstracts, non-English full-text publications, studies published before 2016, and studies without accessible full text. |
| Study | Study Design | JBI Tool | Risk of Bias |
|---|---|---|---|
| Sajdeh et al. [50], 2025 | Quasi-experimental clinical trial | JBI Quasi-Experimental Checklist | Moderate |
| Sun et al. [51], 2022 | Retrospective case series | JBI Case Series Checklist | Moderate |
| Suggs et al. [52], 2020 | Retrospective study | JBI Case Series Checklist | Moderate |
| Cameli et al. [56], 2020 | Controlled clinical trial | JBI Quasi-Experimental Checklist | Low |
| Ghoz et al. [54], 2021 | Split-face quasi-experimental study | JBI Quasi-Experimental Checklist | Low |
| Eckert et al. [53], 2016 | Case series | JBI Case Series Checklist | High |
| Huang et al. [55], 2021 | Retrospective case series | JBI Case Series Checklist | Moderate |
| Bageorgou et al. [57], 2019 | Prospective comparative study | JBI Quasi-Experimental Checklist | Moderate |
| Sharara et al. [58], 2024 | Single-arm clinical trial | JBI Quasi-Experimental Checklist | Moderate |
| Nobeyama et al. [59], 2023 | Retrospective observational study | JBI Case Series Checklist | Moderate |
| Hasanbeyzade et al. [63], 2025 | Retrospective comparative study | JBI Case Series Checklist | Moderate |
| Gökşin et al. [64], 2024 | Prospective single-arm clinical study | JBI Quasi-Experimental Checklist | Moderate |
| Dall’Oglio et al. [62], 2021 | Multicentre prospective clinical trial | JBI Quasi-Experimental Checklist | Moderate |
| Dall’Oglio et al. [61], 2021 | Open-label prospective clinical trial | JBI Quasi-Experimental Checklist | Moderate |
| Aghaei et al. [60], 2023 | Randomized controlled clinical trial | JBI Randomized Controlled Trial Checklist | Moderate |
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Share and Cite
Andrusiewicz, A.; Khimuk, S.; Niżnik, J.; Sirko, D.; Mijas, D.; Nowicka, D. The Latest Advances in Rosacea Treatment: A Systematic Review. Pharmaceuticals 2026, 19, 982. https://doi.org/10.3390/ph19070982
Andrusiewicz A, Khimuk S, Niżnik J, Sirko D, Mijas D, Nowicka D. The Latest Advances in Rosacea Treatment: A Systematic Review. Pharmaceuticals. 2026; 19(7):982. https://doi.org/10.3390/ph19070982
Chicago/Turabian StyleAndrusiewicz, Anastazja, Sofiia Khimuk, Jakub Niżnik, Dmytro Sirko, Daniel Mijas, and Danuta Nowicka. 2026. "The Latest Advances in Rosacea Treatment: A Systematic Review" Pharmaceuticals 19, no. 7: 982. https://doi.org/10.3390/ph19070982
APA StyleAndrusiewicz, A., Khimuk, S., Niżnik, J., Sirko, D., Mijas, D., & Nowicka, D. (2026). The Latest Advances in Rosacea Treatment: A Systematic Review. Pharmaceuticals, 19(7), 982. https://doi.org/10.3390/ph19070982

