Background : Acral peeling skin syndrome (APSS) is a rare autosomal recessive exfoliating epidermal cohesion disorder of hand and feet, caused by biallelic variants of TGM5 or, more rarely, CSTA . Although often considered clinically mild, systematic data on symptom burden, quality of life (QoL), and diagnostic trajectories remain scarce. To characterize the genotypic and phenotypic spectrum of APSS in a molecularly confirmed cohort from referral centers in Austria and Germany, participants completed validated dermatology-specific QoL instruments (DLQI/CDLQI and Skindex-29) and a study-specific questionnaire assessing disease course, diagnostic history, pain and pruritus intensity (VAS 0–10), triggers, comorbidities, and therapies. Clinical data were supplemented from electronic medical records where necessary. Results : Twelve individuals were included (median age 7.5 years, range 2–35). Most carried biallelic TGM5 variants, predominantly the recurrent p.Gly113Cys mutation. One previously unreported TGM5 variant and one CSTA -associated case were identified. Symptom onset occurred within the first year of life in all participants. Median diagnostic delay was 2.9 years, with delays > 10 years in 25.0%. 83.3% were initially misdiagnosed, most commonly as localized epidermolysis bullosa simplex. QoL impairment was mild to moderate but highly heterogeneous (DLQI/CDLQI median 6 (IQR 4-9), mean 6.6 ± 3.9). Mean Skindex-29 total was 21.3 ± 13.8, with symptoms scores clearly outweighing emotional and functional domain scores. Major QoL determinants were water-triggered flares, skin sensitivity, sports participation, and footwear limitations. Low-level laser therapy was beneficial in 57.1% (4/7) of treated participants. Conclusions : Despite limited skin involvement, APSS has a substantial impact on daily life, driven by restrictions associated with avoidable triggers. Earlier genetic diagnosis and optimized management strategies are needed to improve patient-centered care.
Gene therapies offer new possibilities for the precise correction of monogenic disorders. Here, we present the first prime editing (PE)-based gene repair strategy for pathogenic COL17A1 variants that cause junctional epidermolysis bullosa (JEB). Type XVII collagen (C17), encoded by COL17A1, plays a critical role in skin aging, regeneration, and the maintenance of epidermal stem cell integrity. Treatment of primary human JEB keratinocytes with PE mRNAs resulted in COL17A1 editing efficiencies of up to 60% in bulk-treated cells, leading to the restoration of full-length, accurately shed C17. Chromosomal aberrations analysis by single targeted linker-mediated PCR sequencing analysis of gene-edited JEB keratinocytes confirmed the absence of unintended chromosomal rearrangements at potential off-target sites and only minimal on-target aberrations. Remarkably, in a xenograft model, in which C17+ cells represented only 55.9% of the input population, COL17A1-corrected cells populated 92.2% of the basal keratinocyte layer in the resulting skin grafts after 6 weeks. These observations highlight a potential selective advantage imparted by C17 restoration, in line with its canonical role in anchoring hemidesmosomes to the basement membrane and preserving the structural integrity of the interfollicular epidermal stem cell niche. Based on our results, we envision PE as an efficient and safe option to restore gene function in EB and other genodermatoses.
Kindler Epidermolysis bullosa (KEB; OMIM 173650) is a rare autosomal recessive genodermatosis characterized by bullous poikiloderma and photosensitivity. Additional presentations include blistering, poor wound healing, skin atrophy, and increased risk of skin cancer. Most cases of KEB result from aberrations in the FERMT1 (Fermitin family member 1) gene encoding kindlin-1 and include nonsense, frameshift, splicing, and missense variants. Large deletion variants have been reported in nine cases to date. Most variants are predicted to lead to premature termination of translation and to loss of kindlin-1 function. In this study, we report on a 33-year-old male patient who presented with typical clinical manifestations of KEB. As routine molecular testing failed to obtain a diagnosis, Next Generation Sequencing (NGS) of an Epidermolysis Bullosa (EB)-specific panel was carried out followed by the determination of the deletion breakpoints and verification at the mRNA and protein levels. This approach revealed a new large homozygous deletion of ~9.4 kb in the FERMT1 gene involving exons 7 to 9. Finally, we performed a literature review on large FERMT1 deletions. The deletion is predicted to skip exons 7 to 9 within the mRNA, which results in a frameshift. The patient’s phenotype is likely caused by the resulting truncated and non-functioning protein. Our report further enriches the spectrum of FERMT1 gene variants to improve genotype–phenotype correlations.
Treating severe junctional epidermolysis bullosa with artesunate
ImportanceKindler epidermolysis bullosa is a genetic skin-blistering disease associated with recessive inherited pathogenic variants in FERMT1, which encodes kindlin-1. Severe orofacial manifestations of Kindler epidermolysis bullosa, including early oral squamous cell carcinoma, have been reported.ObjectiveTo determine whether hypoplastic pitted amelogenesis imperfecta is a feature of Kindler epidermolysis bullosa.Design, Settings, and ParticipantsThis longitudinal, 2-center cohort study was performed from 2003 to 2023 at the Epidermolysis Bullosa Centre, University of Freiburg, Germany, and the Special Care Dentistry Clinic, University of Chile in association with DEBRA Chile. Participants included a convenience sampling of all patients with a diagnosis of Kindler epidermolysis bullosa.Main Outcomes and MeasuresThe primary outcomes were the presence of hypoplastic pitted amelogenesis imperfecta, intraoral wounds, gingivitis and periodontal disease, gingival hyperplasia, vestibular obliteration, cheilitis, angular cheilitis, chronic lip wounds, microstomia, and oral squamous cell carcinoma.ResultsThe cohort consisted of 36 patients (15 female [42%] and 21 male [58%]; mean age at first examination, 23 years [range, 2 weeks to 70 years]) with Kindler epidermolysis bullosa. The follow-up ranged from 1 to 24 years. The enamel structure was assessed in 11 patients, all of whom presented with enamel structure abnormalities. The severity of hypoplastic pitted amelogenesis imperfecta varied from generalized to localized pitting. Additional orofacial features observed include gingivitis and periodontal disease, which was present in 90% (27 of 30 patients) of those assessed, followed by intraoral lesions (16 of 22 patients [73%]), angular cheilitis (24 of 33 patients [73%]), cheilitis (22 of 34 patients [65%]), gingival overgrowth (17 of 26 patients [65%]), microstomia (14 of 25 patients [56%]), and vestibular obliteration (8 of 16 patients [50%]). Other features included chronic lip ulcers (2 patients) and oral squamous cell carcinoma with lethal outcome (2 patients).Conclusions and RelevanceThese findings suggest that hypoplastic pitted amelogenesis imperfecta is a feature of Kindler epidermolysis bullosa and underscore the extent and severity of oral manifestations in Kindler epidermolysis bullosa and the need for early and sustained dental care.
Antisense oligonucleotides (ASOs) represent an emerging therapeutic platform for targeting genetic diseases by influencing various aspects of (pre-)mRNA biology, such as splicing, stability, and translation. In this study, we investigated the potential of modulating the splicing pattern in recessive dystrophic epidermolysis bullosa (RDEB) patient cells carrying a frequent genomic variant (c.425A > G) that disrupts splicing in the COL7A1 gene by using short 2′-O-(2-Methoxyethyl) oligoribo-nucleotides (2′-MOE ASOs). COL7A1-encoded type VII collagen (C7) forms the anchoring fibrils within the skin that are essential for the attachment of the epidermis to the underlying dermis. As such, gene variants of COL7A1 leading to functionally impaired or absent C7 manifest in the form of extensive blistering and wounding. The severity of the disease pattern warrants the development of novel therapies for patients. The c.425A > G variant at the COL7A1 exon 3/intron 3 junction lowers the efficiency of splicing at this junction, resulting in non-functional C7 transcripts. However, we found that correct splicing still occurs, albeit at a very low level, highlighting an opportunity for intervention by modulating the splicing reaction. We therefore screened 2′-MOE ASOs that bind along the COL7A1 target region ranging from exon 3 to the intron 3/exon 4 junction for their ability to modulate splicing. We identified ASOs capable of increasing the relative levels of correctly spliced COL7A1 transcripts by RT-PCR, sqRT-PCR, and ddPCR. Furthermore, RDEB-derived skin equivalents treated with one of the most promising ASOs exhibited an increase in full-length C7 expression and its accurate deposition along the basement membrane zone (BMZ).
Junctional epidermolysis bullosa (JEB) is a debilitating hereditary skin disorder caused by mutations in genes encoding laminin-332, type XVII collagen (C17), and integrin-α6β4, which maintain stability between the dermis and epidermis. We designed patient-specific Cas9-nuclease- and -nickase-based targeting strategies for reframing a common homozygous deletion in exon 52 of COL17A1 associated with a lack of full-length C17 expression. Subsequent characterization of protein restoration, indel composition, and divergence of DNA and mRNA outcomes after treatment revealed auspicious efficiency, safety, and precision profiles for paired nicking-based COL17A1 editing. Almost 46% of treated primary JEB keratinocytes expressed reframed C17. Reframed COL17A1 transcripts predominantly featured 25- and 37-nt deletions, accounting for >42% of all edits and encoding C17 protein variants that localized accurately to the cell membrane. Furthermore, corrected cells showed accurate shedding of the extracellular 120-kDa C17 domain and improved adhesion capabilities to laminin-332 compared with untreated JEB cells. Three-dimensional (3D) skin equivalents demonstrated accurate and continuous deposition of C17 within the basal membrane zone between epidermis and dermis. Our findings constitute, for the first time, gene-editing-based correction of a COL17A1 mutation and demonstrate the superiority of proximal paired nicking strategies based on Cas9 D10A nickase over wild-type Cas9-based strategies for gene reframing in a clinical context.
Mutations within the COL7A1 gene underlie the inherited recessive subtype of the blistering skin disease dystrophic epidermolysis bullosa (RDEB). Although gene replacement approaches for genodermatoses are clinically advanced, their implementation for RDEB is challenging and requires endogenous regulation of transgene expression. Thus, we are using spliceosome-mediated RNA trans-splicing (SMaRT) to repair mutations in COL7A1 at the mRNA level. Here, we demonstrate the capability of a COL7A1-specific RNA trans-splicing molecule (RTM), initially selected using a fluorescence-based screening procedure, to accurately replace COL7A1 exons 1 to 64 in an endogenous setting. Retroviral RTM transduction into patient-derived, immortalized keratinocytes resulted in an increase in wild-type transcript and protein levels, respectively. Furthermore, we revealed accurate deposition of recovered type VII collagen protein within the basement membrane zone of expanded skin equivalents using immunofluorescence staining. In summary, we showed for the first time the potential of endogenous 5′ trans-splicing to correct pathogenic mutations within the COL7A1 gene. Therefore, we consider 5′ RNA trans-splicing a suitable tool to beneficially modulate the RDEB-phenotype, thus targeting an urgent need of this patient population.
None declared. The raw data supporting the conclusions of this article will be made available by the authors, upon publication.
Background: Dystrophic Epidermolysis bullosa (DEB) is a rare inherited mechanobullous disease characterised by the hyperfragility of the skin and mucous membranes. It is (typically) caused by (loss-of-function) mutations in the COL7A1 gene that impair the formation of collagen type VII, which represents the major constituent of anchoring fibrils within the basement membrane zone of epithelialised tissues. In a 4-year-old patient diagnosed with the clinical features of recessive DEB, genotyping via Next-Generation EB Panel Sequencing initially revealed the homozygosity of the maternal c.425A>G mutation, while the paternal heterozygosity in exon 3 was lacking. This genetic profile suggested incongruent gene transmission due to uniparental isodisomy (UPD) or the occurrence of a hemizygous deletion of unknown size. Methods: Thus, the EB panel sequencing of genomic DNA, followed by a paternity test and analysis of microsatellite markers, as well as multiplex ligation-dependent probe amplification (MLPA) copy number analysis using patient and parental DNA, were performed. Results: This approach revealed a paternally derived hemizygous deletion spanning from exon 3 to exon 118. Linear amplification-mediated PCR (LAM-PCR) determined the breaking points within intron 2 of the COL7A1 gene, comprising a 40kb segment within intron 1 of the adjacent PFKFB4 gene. Conclusion: This report highlights the relevance of advanced molecular profiling to determine new/exceptional/unusual genotypes and the accurate mode of genetic transmission in DEB.
Intermediate junctional epidermolysis bullosa caused by mutations in the COL17A1 gene is characterized by the frequent development of blisters and erosions on the skin and mucous membranes. The rarity of the disease and the heterogeneity of the underlying mutations renders therapy developments challenging. However, the high number of short in-frame exons facilitates the use of antisense oligonucleotides (AON) to restore collagen 17 (C17) expression by inducing exon skipping. In a personalized approach, we designed and tested three AONs in combination with a cationic liposomal carrier for their ability to induce skipping of COL17A1 exon 7 in 2D culture and in 3D skin equivalents. We show that AON-induced exon skipping excludes the targeted exon from pre-mRNA processing, which restores the reading frame, leading to the expression of a slightly truncated protein. Furthermore, the expression and correct deposition of C17 at the dermal–epidermal junction indicates its functionality. Thus, we assume AON-mediated exon skipping to be a promising tool for the treatment of junctional epidermolysis bullosa, particularly applicable in a personalized manner for rare genotypes.
Abstract Background Wound management is a critical factor when treating patients with the inherited skin fragility disease dystrophic epidermolysis bullosa (DEB). Due to genetic defects in structural proteins, skin and mucous epithelia are prone to blistering and chronic wounding upon minor trauma. Furthermore, these wounds are commonly associated with excessive pruritus and predispose to the development of life-threatening squamous cell carcinomas, underscoring the unmet need for new therapeutic options to improve wound healing in this patient cohort. Vitamin D3 is acknowledged to play an important role in wound healing by modulating different cellular processes that impact epidermal homeostasis and immune responses. In this study, we evaluate the safety and efficacy of low-dose calcipotriol, a vitamin D3 analogue, in promoting wound healing and reducing itch and pain in patients with DEB. Methods Eligible DEB patients, aged ≥ 6 years and with a known mutation in the COL7A1 gene, were recruited to a placebo-controlled, randomized, double blind, cross-over phase II monocentric clinical trial. Patients were required to have at least two wounds with a minimum size of 6 cm2 per wound. The primary objective was to evaluate efficacy of daily topical application of a 0.05 µg/g calcipotriol ointment in reducing wound size within a 4-week treatment regimen. Secondary objectives were to assess safety, as well as the impact of treatment on pruritus, pain, and bacterial wound colonization in these patients. Results Six patients completed the clinical trial and were included into the final analysis. Topical low-dose calcipotriol treatment led to a significant reduction in wound area at day 14 compared to placebo (88.4% vs. 65.5%, P < 0.05). Patients also reported a significant reduction of pruritus with calcipotriol ointment compared to placebo over the entire course of the treatment as shown by itch scores of 3.16 vs 4.83 (P < 0.05) and 1.83 vs 5.52 (P < 0.0001) at days 14 and 28, respectively. Treatment with low-dose calcipotriol did not affect serum calcium levels and improved the species richness of the wound microbiome, albeit with no statistical significance. Conclusions Our results show that topical treatment with low-dose calcipotriol can accelerate wound closure and significantly reduces itch, and can be considered a safe and readily-available option to improve local wound care in DEB patients. Trial Registration EudraCT: 2016–001,967-35. Registered 28 June 2016, https://www.clinicaltrialsregister.eu/ctr-search/trial/2016-001967-35/AT
ZusammenfassungUnter Epidermolysis bullosa (EB) subsumiert man genetische Erkrankungen, die durch gesteigerte Hautfragilität mit Blasenbildung nach bereits geringen mechanischen Belastungen gekennzeichnet sind. Hochvariable kutane, extrakutane und Organmanifestationen verursachen eine signifikante Morbidität und Mortalität sowie eine hohe Krankheitslast für Betroffene und Angehörige. Obwohl derzeit nicht heilbar, eröffnen Fortschritte in der molekularen Charakterisierung pathogenetischer Prozesse, in den diagnostischen Techniken und molekularen Therapieansätzen neue Perspektiven. Neben korrektiven, potenziell kurativen Behandlungszugängen mit dem Ziel der Wiederherstellung der Funktion von Gen bzw. Protein stellen krankheitsmodifizierende Strategien eine wertvolle Ergänzung dar. Unter Letztere fallen symptomatische Therapien, die sekundär dysregulierte, den Phänotyp modulierende Entzündungskaskaden adressieren oder zielgerichtete Interventionen hinsichtlich bestimmter Symptome wie Fibrosierung, Juckreiz oder kanzerogener Zelltransformation. Molekulare Verfahren erlauben heute zudem, eine Diagnose und damit Prognose früher und präziser zu stellen, was die genetische Beratung erleichtert.Das Management von EB-Patienten ist komplex und bedarf einer Spezialexpertise und multidisziplinär akkordierten Versorgung. Entsprechende Ressourcen halten designierte Expertisezentren wie das EB-Haus Austria vor, das als Mitglied des Europäischen Referenznetzwerks für Seltene Hauterkrankungen (ERN Skin) sowohl klinische Versorgung, Grundlagen- und klinische Forschungsaktivitäten sowie Zugang zu Aus- und Weiterbildungsprogrammen für Betroffene, Betreuende und medizinisches Fachpersonal gewährleistet.
Epidermolysis bullosa (EB) refers to a group of genetic diseases characterized by increased fragility of epithelialized tissues with the clinical hallmark of mucocutaneous blistering after minor mechanical traumatization. A broad spectrum of cutaneous, extracutaneous and internal organ manifestations as well as primary and secondary complications cause significant morbidity and mortality and a high clinical, psychosocial and economic disease burden for patients and relatives. Although there is currently no approved curative treatment available for EB, significant advances in methodologies and techniques of molecular biology have yielded new insights into the pathogenetic processes, which boosted translational therapeutic perspectives. This is echoed by the increasing number of clinical studies in the field of EB. Current treatment approaches rely on two main strategies, i.e. corrective, potentially curative treatment approaches aiming at restoration of the defect gene or protein. In addition, disease-modifying and symptom-relieving treatment targets secondarily induced pathogenic pathways, such as dysregulated inflammatory cascades or distinct symptoms inherent to specific subtypes, such as fibrosis, pruritus or cancer. Refined molecular diagnostics enable an early and more accurate prognosis, which facilitates genetic counseling. The management of the multisystem disease EB is complex and requires a high level of expertise and interdisciplinary coordinated care. Such resources are provided by designated centers of expertise, such as the EB Haus Austria, which as a member of the European Reference Networks for Rare Skin Diseases (ERN-Skin) guarantees clinical care, basic and clinical research activities as well as access to training and further training programs for patients, caregivers and medical specialist personnel.
Kaltes Atmosphärendruckplasma (KAP) hat antimikrobielle und wundheilungsfördernde Eigenschaften. Betroffene der seltenen schweren rezessiven Epidermolysis bullosa (EB) dystrophica leiden an großflächigen, schwierig zu behandelnden Wunden, die eine komplexe Wundtherapie erfordern. In einem Pilotprojekt untersuchten wir über 5 Monate das Ansprechen und die Verträglichkeit einer KAP-Wundtherapie bei einer 21-jährigen und einer 28-jährigen Patientin mit schwerer rezessiver EB dystrophica sowie Zustand nach kutanen Plattenepithelkarzinomen (PEK) bei der älteren Patientin. Bei beiden Patientinnen wurde die Diagnose im Vorfeld molekulargenetisch bestätigt. Die individuelle, patientenspezifische Wundtherapie wurde fortgeführt und zusätzlich unterstützend ein DBE(„dielektrisch behinderte Entladung“)-basiertes KAP-Gerät eingesetzt. Die KAP-Behandlung betrug 90 s pro Wunde und konnte entweder täglich oder alle 2 Tage erfolgen. Die klinische Evaluation erfolgte mittels Fotodokumentation und durch regelmäßige Befragung der Patientinnen und Eltern. KAP-behandelte Wunden zeigten eine schnellere Heilungstendenz und Hinweise auf eine geringere bakterielle Besiedlung. Einer Chronifizierung der behandelten Wunden konnte vorgebeugt werden. Die KAP-Anwendung erfolgte nach vorheriger Auflage eines Polyestergitters auf die Wunden und wurde an den meisten Lokalisationen gut vertragen. Der Einsatz von KAP könnte die Wundtherapie bei EB-Patienten verbessern und sollte in klinischen Studien untersucht werden. Inwieweit KAP die Entwicklung von kutanen PEK verringern kann, ist dabei besonders zu evaluieren.
Gene editing via homology-directed repair (HDR) currently comprises the best strategy to obtain perfect corrections for pathogenic mutations of monogenic diseases, such as the severe recessive dystrophic form of the blistering skin disease epidermolysis bullosa (RDEB). Limitations of this strategy, in particular low efficiencies and off-target effects, hinder progress toward clinical applications. However, the severity of RDEB necessitates the development of efficient and safe gene-editing therapies based on perfect repair. To this end, we sought to assess the corrective efficiencies following optimal Cas9 nuclease and nickase-based COL7A1-targeting strategies in combination with single- or double-stranded donor templates for HDR at the COL7A1 mutation site. We achieved HDR-mediated correction efficiencies of up to 21% and 10% in primary RDEB keratinocytes and fibroblasts, respectively, as analyzed by next-generation sequencing, leading to full-length type VII collagen restoration and accurate deposition within engineered three-dimensional (3D) skin equivalents (SEs). Extensive on- and off-target analyses confirmed that the combined treatment of paired nicking and single-stranded oligonucleotides constituted a highly efficient COL7A1-editing strategy, associated with a significantly improved safety profile. Our findings, therefore, represent a further advancement in the field of traceless genome editing for genodermatoses.