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1.
Genesis ; 62(2): e23596, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38665067

ABSTRACT

The vomeronasal organ (VNO) is a part of the accessory olfactory system, which detects pheromones and chemical factors that trigger a spectrum of sexual and social behaviors. The vomeronasal epithelium (VNE) shares several features with the epithelium of the main olfactory epithelium (MOE). However, it is a distinct neuroepithelium populated by chemosensory neurons that differ from the olfactory sensory neurons in cellular structure, receptor expression, and connectivity. The vomeronasal organ of rodents comprises a sensory epithelium (SE) and a thin non-sensory epithelium (NSE) that morphologically resembles the respiratory epithelium. Sox2-positive cells have been previously identified as the stem cell population that gives rise to neuronal progenitors in MOE and VNE. In addition, the MOE also comprises p63 positive horizontal basal cells, a second pool of quiescent stem cells that become active in response to injury. Immunolabeling against the transcription factor p63, Keratin-5 (Krt5), Krt14, NrCAM, and Krt5Cre tracing experiments highlighted the existence of horizontal basal cells distributed along the basal lamina of SE of the VNO. Single cell sequencing and genetic lineage tracing suggest that the vomeronasal horizontal basal cells arise from basal progenitors at the boundary between the SE and NSE proximal to the marginal zones. Moreover, our experiments revealed that the NSE of rodents is, like the respiratory epithelium, a stratified epithelium where the p63/Krt5+ basal progenitor cells self-replicate and give rise to the apical columnar cells facing the lumen of the VNO.


Subject(s)
Vomeronasal Organ , Vomeronasal Organ/metabolism , Vomeronasal Organ/cytology , Animals , Mice , Olfactory Mucosa/metabolism , Olfactory Mucosa/cytology , Keratin-15/metabolism , Keratin-15/genetics , Keratin-5/metabolism , Keratin-5/genetics , Keratin-14/metabolism , Keratin-14/genetics , Trans-Activators/genetics , Trans-Activators/metabolism
2.
Am J Physiol Renal Physiol ; 326(6): F1078-F1090, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38634130

ABSTRACT

Urothelium forms a distensible yet impermeable barrier, senses and transduces stimuli, and defends the urinary tract from mechanical, chemical, and bacterial injuries. Biochemical and genetic labeling studies support the existence of one or more progenitor populations with the capacity to rapidly regenerate the urothelium following injury, but slow turnover, a low mitotic index, and inconsistent methodologies obscure progenitor identity. The progenitor properties of basal keratin 5 urothelial cells (K5-UCs) have been previously investigated, but those studies focused on embryonic or adult bladder urothelium. Urothelium undergoes desquamation and apoptosis after birth, which requires postnatal proliferation and restoration. Therefore, we mapped the fate of bladder K5-UCs across postnatal development/maturation and following administration of cyclophosphamide to measure homeostatic and reparative progenitor capacities, respectively. In vivo studies demonstrate that basal K5-UCs are age-restricted progenitors in neonates and juveniles, but not in adult mice. Neonatal K5-UCs retain a superior progenitor capacity in vitro, forming larger and more differentiated urothelial organoids than adult K5-UCs. Accordingly, K5-UC transcriptomes are temporally distinct, with enrichment of transcripts associated with cell proliferation and differentiation in neonates. Induction of urothelial proliferation is sufficient to restore adult K5-UC progenitor capacity. Our findings advance the understanding of urothelial progenitors and support a linear model of urothelial formation and regeneration, which may have significant impact on therapeutic development or tissue engineering strategies.NEW & NOTEWORTHY Fate mapping reveals an important linear relationship, whereby bladder basal urothelial cells give rise to intermediate and superficial cells in an age-restricted manner and contribute to tissue repair. Neonatal basal cells reprise their role as superior progenitors in vitro and display distinct transcriptional signatures, which suggest progenitor function is at least partially cell intrinsic. However, the urothelium progenitor niche cannot be overlooked, since FGF7 rescues adult basal cell progenitor function.


Subject(s)
Cell Proliferation , Keratin-5 , Regeneration , Stem Cells , Urinary Bladder , Urothelium , Animals , Mice , Age Factors , Animals, Newborn , Cell Differentiation , Cells, Cultured , Cyclophosphamide , Fibroblast Growth Factor 7/metabolism , Fibroblast Growth Factor 7/genetics , Gene Expression Regulation, Developmental , Keratin-5/metabolism , Keratin-5/genetics , Mice, Inbred C57BL , Stem Cells/metabolism , Transcriptome , Urinary Bladder/metabolism , Urothelium/metabolism
3.
Int J Mol Sci ; 25(5)2024 Mar 04.
Article in English | MEDLINE | ID: mdl-38474236

ABSTRACT

Epidermolysis bullosa simplex (EBS) is a dermatological condition marked by skin fragility and blister formation resulting from separation within the basal layer of the epidermis, which can be attributed to various genetic etiologies. This study presents three pathogenic de novo variants in young children, with clinical manifestations appearing as early as the neonatal period. The variants contribute to the EBS phenotype through two distinct mechanisms: direct keratin abnormalities due to pathogenic variants in the Krt14 gene, and indirect effects via pathogenic mutation in the KLHL24 gene, which interfere with the natural proteasome-mediated degradation pathway of KRT14. We report one severe case of EBS with mottled pigmentation arising from the Met119Thr pathogenic variant in KRT14, another case involving a pathogenic KLHL24 Met1Val variant, and a third case featuring the hot spot mutation Arg125His in KRT14, all manifesting within the first few weeks of life. This research underscores the complexity of genetic influences in EBS and highlights the importance of early genetic screening for accurate diagnosis and management.


Subject(s)
Epidermolysis Bullosa Simplex , Child , Infant, Newborn , Humans , Child, Preschool , Epidermolysis Bullosa Simplex/genetics , Mutation , Phenotype , Keratins/genetics , Epidermis/pathology , Keratin-5/genetics
4.
An Bras Dermatol ; 99(3): 350-356, 2024.
Article in English | MEDLINE | ID: mdl-38368142

ABSTRACT

BACKGROUND: Epidermolysis bullosa (EB) is characterized by skin fragility and blistering. In Brazil, the diagnosis is usually obtained through immunomapping, which involves a skin biopsy. Most recently, whole exome sequencing (WES) has become an important tool for the diagnosis of the subtypes of EB, providing information on prognosis as well as allowing appropriate genetic counseling for the families. OBJECTIVE: To compare the results of immunomapping and molecular analysis and to describe the characteristics of a Brazilian cohort of patients with EB. METHODS: Patients were submitted to clinical evaluation and WES using peripheral blood samples. WES results were compared to those obtained from immunomapping testing from skin biopsies. RESULTS: 67 patients from 60 families were classified: 47 patients with recessive dystrophic EB (DEB), 4 with dominant DEB, 15 with EB simplex (EBS), and 1 with junctional EB (JEB). Novel causative variants were: 10/60 (16%) in COL7A1 associated with recessive DEB and 3 other variants in dominant DEB; one homozygous variant in KRT5 and another homozygous variant in PLEC, both associated with EBS. Immunomapping was available for 59 of the 67 patients and the results were concordant with exome results in 37 (62%), discordant in 13 (22%), and inconclusive in 9 patients (15%). STUDY LIMITATIONS: Even though EB is a rare disease, for statistical purposes, the number of patients evaluated by this cohort can still be considered limited; other than that, there was a significant difference between the proportion of types of EB (only one case with JEB, against more than 50 with DEB), which unfortunately represents a selection bias. Also, for a small subset of families, segregation (usually through Sanger sequencing) was not an option, usually due to deceased or unknown parent status (mostly the father). CONCLUSION: Although immunomapping has been useful in services where molecular studies are not available, this invasive method may provide a misdiagnosis or an inconclusive result in about 1/3 of the patients. This study shows that WES is an effective method for the diagnosis and genetic counseling of EB patients.


Subject(s)
Epidermolysis Bullosa , Exome Sequencing , Humans , Male , Female , Brazil , Child , Child, Preschool , Epidermolysis Bullosa/genetics , Epidermolysis Bullosa/pathology , Adolescent , Collagen Type VII/genetics , Biopsy , Young Adult , Adult , Mutation , Infant , Skin/pathology , Middle Aged , Keratin-5/genetics
6.
Medicine (Baltimore) ; 102(49): e36473, 2023 Dec 08.
Article in English | MEDLINE | ID: mdl-38065913

ABSTRACT

Prostate cancer is the most common malignant tumor of male urogenital system that occurs in prostate epithelium. However, relationship between CAV1 and KRT5 and prostate cancer remains unclear. The prostate cancer datasets GSE114740 and GSE200879 were downloaded from Gene Expression Omnibus generated by GPL11154 and GPL32170. De-batch processing was performed, differentially expressed genes (DEGs) were screened, and weighted gene co-expression network analysis. The construction and analysis of protein-protein interaction network, functional enrichment analysis, gene set enrichment analysis. Gene expression heat map was drawn and immune infiltration analysis was performed. Comparative toxicogenomics database analysis were performed to find the disease most related to core gene. In addition, the cell experiment was performed to verify the role of CAV1 and KRT5 by western blot. Divided into 4 groups: control, prostate cancer, prostate cancer-over expression, and prostate cancer- knock out. TargetScan screened miRNAs that regulated central DEGs; 770 DEGs were identified. According to Gene Ontology analysis, they were mainly concentrated in actin binding and G protein coupled receptor binding. In Kyoto Encyclopedia of Gene and Genome analysis, they were mainly concentrated in PI3K-Akt signal pathway, MAPK signal pathway, and ErbB signal pathway. The intersection of enrichment terms of differentially expressed genes and GOKEGG enrichment terms was mainly concentrated in ErbB signaling pathway and MAPK signaling pathway. Three important modules were generated. The protein-protein interaction network obtained 8 core genes (CAV1, BDNF, TGFB3, FGFR1, PRKCA, DLG4, SNAI2, KRT5). Heat map of gene expression showed that core genes (CAV1, TGFB3, FGFR1, SNAI2, KRT5) are highly expressed in prostate cancer tissues and low in normal tissues. Comparative toxicogenomics database analysis showed that core genes (CAV1, TGFB3, FGFR1, SNAI2, KRT5) were associated with prostate tumor, cancer, tumor metastasis, necrosis, and inflammation. CAV1 and KRT5 are up-regulated in prostate cancer. CAV1 and KRT5 are highly expressed in prostate cancer. The higher expression of CAV1 and KRT5, the worse prognosis.


Subject(s)
Caveolin 1 , Keratin-5 , Prostatic Neoplasms , Transforming Growth Factor beta3 , Humans , Male , Computational Biology , Gene Expression Profiling , Gene Expression Regulation, Neoplastic , Gene Regulatory Networks , Keratin-5/genetics , Phosphatidylinositol 3-Kinases/genetics , Prostatic Neoplasms/genetics , Transforming Growth Factor beta3/genetics , Caveolin 1/genetics
9.
Exp Dermatol ; 32(6): 752-765, 2023 06.
Article in English | MEDLINE | ID: mdl-36809573

ABSTRACT

Dowling-Degos disease (DDD) is an autosomal dominant hereditary skin disease characterized by acquired reticular hyperpigmentation in flexural sites, and one of its causative genes is KRT5 gene. But the effect of KRT5, expressed only in keratinocytes, on melanocytes is unclear. Other pathogenic genes of DDD include POFUT1, POGLUT1 and PSENEN genes, which is involved in posttranslational modification of Notch receptor. In this study, we aim to determine the ablation of keratinocyte KRT5 affect melanogenesis in melanocyte through Notch signalling pathway. Here we found that KRT5 downregulation decreased the expression of the Notch ligand in keratinocytes and Notch1 intracellular domain in melanocytes, by establishing two cell models of ablation of KRT5 in keratinocytes based on CRISPR/Cas9 site-directed mutation and lentivirus-mediated shRNA. Treatment of melanocytes with Notch inhibitors had same effects with ablation of KRT5 on increase of TYR and decrease of Fascin1. Activation of Notch signalling reverses the effect of ablation of KRT5 on melanogenesis. Immunohistochemistry of DDD lesions with KRT5 gene mutation confirmed changes in the expression of relevant molecules in Notch signalling. Our research elucidates molecular mechanism of KRT5-Notch signalling pathway in the regulation of melanocytes by keratinocytes, and preliminary reveal the mechanism of DDD pigment abnormality caused by KRT5 mutation. These findings identify potential therapeutic targets of the Notch signalling pathway for the treatment of skin pigment disorders.


Subject(s)
Hyperpigmentation , Melanins , Humans , Melanins/metabolism , Mutation , Keratinocytes/metabolism , Hyperpigmentation/genetics , Melanocytes/metabolism , Membrane Proteins/metabolism , Amyloid Precursor Protein Secretases/metabolism , Keratin-5/genetics , Glucosyltransferases/genetics , Glucosyltransferases/metabolism
10.
Cytokine ; 160: 156022, 2022 12.
Article in English | MEDLINE | ID: mdl-36099756

ABSTRACT

Although conventional knockout and transgenic mouse models have significantly advanced our understanding of Receptor Activator of NF-κB Ligand (RANKL) signaling in intra-thymic crosstalk that establishes self-tolerance and later stages of lymphopoiesis, the unique advantages of conditional mouse transgenesis have yet to be explored. A main advantage of conditional transgenesis is the ability to express a transgene in a spatiotemporal restricted manner, enabling the induction (or de-induction) of transgene expression during predetermined stages of embryogenesis or during defined postnatal developmental or physiological states, such as puberty, adulthood, and pregnancy. Here, we describe the K5: RANKL bigenic mouse, in which transgene derived RANKL expression is induced by doxycycline and targeted to cytokeratin 5 positive medullary thymic epithelial cells (mTECs). Short-term doxycycline induction reveals that RANKL transgene expression is significantly induced in the thymic medulla and only in response to doxycycline. Prolonged doxycycline induction in the K5: RANKL bigenic results in a significantly enlarged thymus in which mTECs are hyperproliferative. Flow cytometry showed that there is a marked enrichment of CD4+ and CD8+ single positive thymocytes with a concomitant depletion of CD4+ CD8+ double positives. Furthermore, there is an increase in the number of FOXP3+ T regulatory (Treg) cells and Ulex Europaeus Agglutinin 1+ (UEA1+) mTECs. Transcriptomics revealed that a remarkable array of signals-cytokines, chemokines, growth factors, transcription factors, and morphogens-are governed by RANKL and drive in part the K5: RANKL thymic phenotype. Extended doxycycline administration to 6-weeks results in a K5: RANKL thymus that begins to display distinct histopathological features, such as medullary epithelial hyperplasia, extensive immune cell infiltration, and central tissue necrosis. As there are intense efforts to develop clinical approaches to restore thymic medullary function in the adult to treat immunopathological conditions in which immune cell function is compromised following cancer therapy or toxin exposure, an improved molecular understanding of RANKL's involvement in thymic medulla enlargement will be required. We believe the versatility of the conditional K5: RANKL mouse represents a tractable model system to assist in addressing this requirement as well as many other questions related to RANKL's role in thymic normal physiology and disease processes.


Subject(s)
Doxycycline , RANK Ligand/metabolism , Transcriptome , Agglutinins/metabolism , Animals , Cytokines/metabolism , Doxycycline/pharmacology , Epithelial Cells/metabolism , Forkhead Transcription Factors/metabolism , Keratin-5/genetics , Keratin-5/metabolism , Ligands , Mice , Mice, Transgenic , NF-kappa B/metabolism , Phenotype , Receptor Activator of Nuclear Factor-kappa B/genetics , Receptor Activator of Nuclear Factor-kappa B/metabolism , Thymus Gland/metabolism
11.
Anim Genet ; 53(6): 892-896, 2022 Dec.
Article in English | MEDLINE | ID: mdl-36004757

ABSTRACT

Epidermolysis bullosa (EB) is a group of blistering disorders that includes several subtypes, classified according to their level of cleavage. Typical clinical signs are blisters and erosions resulting from minimal trauma. The disease has been described in many mammalian species and pathogenic variants in at least 18 different genes have been identified. In the present study, we investigated a Cardigan Welsh Corgi with congenital clinical signs consistent with epidermolysis bullosa. The puppy had blisters and erosions on the paw pads, and the oral mucosa. Histologic examination demonstrated the typical clefting between the dermis and epidermis and confirmed the clinical suspicion. We obtained whole genome sequencing data from the affected puppy and searched for variants in candidate genes known to cause EB. This revealed a heterozygous missense variant, KRT5:p.(E476K), affecting the highly conserved KLLEGE motif of keratin 5. The mutant allele in the affected puppy arose owing to a de novo mutation event as it was absent from both unaffected parents. Knowledge of the functional impact of KRT5 variants in other species together with the demonstration of the de novo mutation event establishes KRT5:p.(E476K) as causative variant for the observed EBS.


Subject(s)
Dog Diseases , Epidermolysis Bullosa Simplex , Dogs , Animals , Epidermolysis Bullosa Simplex/genetics , Epidermolysis Bullosa Simplex/pathology , Keratin-5/genetics , Keratin-14/genetics , Blister , Mutation, Missense , Mammals
12.
J Invest Dermatol ; 142(12): 3282-3293, 2022 12.
Article in English | MEDLINE | ID: mdl-35691363

ABSTRACT

Epidermolysis bullosa simplex (EBS) is a severe and potentially life-threatening disorder for which no adequate therapy exists. Most cases are caused by dominant sequence variations in keratin genes K5 or K14, leading to the formation of cytoplasmic keratin aggregates, profound keratinocyte fragility, and cytolysis. We hypothesized that pharmacological reduction of keratin aggregates, which compromise keratinocyte integrity, represents a viable strategy for the treatment of EBS. In this study, we show that the multikinase inhibitor PKC412, which is currently in clinical use for acute myeloid leukemia and advanced systemic mastocytosis, reduced keratin aggregation by 40% in patient-derived K14.R125C EBS-associated keratinocytes. Using a combination of epithelial shear stress assay and real-time impedance spectroscopy, we show that PKC412 restored intercellular adhesion. Molecularly, global phosphoproteomic analysis together with immunoblots using phosphoepitope-specific antibodies revealed that PKC412 treatment altered phosphorylated sites on keratins and desmoplakin. Thus, our data provide a proof of concept to repurpose existing drugs for the targeted treatment of EBS and showcase how one broad-range kinase inhibitor reduced keratin filament aggregation in patient-derived EBS keratinocytes and the fragility of EBS cell monolayers. Our study paves the way for a clinical trial using PKC412 for systemic or local application in patients with EBS.


Subject(s)
Epidermolysis Bullosa Simplex , Humans , Epidermolysis Bullosa Simplex/genetics , Epidermolysis Bullosa Simplex/metabolism , Keratins/metabolism , Staurosporine/metabolism , Cytoskeleton/metabolism , Cytoskeletal Proteins/genetics , Keratin-14/genetics , Keratin-14/metabolism , Keratin-5/genetics , Keratin-5/metabolism , Mutation
13.
J Invest Dermatol ; 142(10): 2695-2705.e11, 2022 10.
Article in English | MEDLINE | ID: mdl-35490743

ABSTRACT

Epidermolysis bullosa simplex (EBS), an autosomal dominant skin disorder, is characterized by skin fragility. Genetically, the majority of cases are related to missense sequence variations in two keratin genes K5 or K14, leading to cytolysis of basal keratinocytes (KCs) and intraepidermal blistering. Progress toward the identification of treatments has been hampered by an incomplete understanding of the mechanisms underlying this disease and availability of relevant and reliable in vitro models recapitulating the physiopathological mechanisms. Recent advances in stem cell field have fueled the prospect that these limitations could be overcome, thanks to the availability of disease-specific human induced pluripotent stem cells (hiPSCs). In this study, we generated hiPSC-derived KCs from patients carrying keratin gene K5-dominant sequence variations and compared them with nonaffected hiPSC-derived KCs as well as their primary counterparts. Our results showed that EBS hiPSC-derived KCs displayed proliferative defects, increased capacity to migrate, alteration of extracellular signal‒regulated kinase signaling pathway, and cytoplasmic keratin filament aggregates as observed in primary EBS KCs. Of interest, EBS hiPSC-derived KCs exhibited downregulation of hemidesmosomal proteins, revealing the different effects of keratin gene K5 sequence variations on keratin cytoskeletal organization. With a combination of culture miniaturization and treatment with the chaperone molecule 4-phenylbutyric acid, our results showed that hiPSC-derived KCs represent a suitable model for identifying novel therapies for EBS.


Subject(s)
Epidermolysis Bullosa Simplex , Induced Pluripotent Stem Cells , Epidermolysis Bullosa Simplex/metabolism , Extracellular Signal-Regulated MAP Kinases , Humans , Keratin-14/genetics , Keratin-14/metabolism , Keratin-5/genetics , Keratin-5/metabolism , Keratinocytes/metabolism , Keratins/genetics , Keratins/metabolism , Mutation , Phenotype
14.
Stem Cell Res ; 60: 102726, 2022 04.
Article in English | MEDLINE | ID: mdl-35247839

ABSTRACT

Heterozygous mutations within Keratin 5 (KRT5) are common genetic causes of epidermolysis bullosa simplex (EBS), a skin fragility disorder characterized by blisters, which appear after minor trauma. Using CytoTune®Sendai virus, we generated three human induced pluripotent stem cell (iPSC) lines from three EBS patients carrying respectively the single heterozygous mutations in KRT5, c.449 T > C, c.980 T > C, and c.608 T > C. All lines display normal karyotype, expressed high levels of pluripotent markers, and can differentiate into derivatives of the three germ layers. These iPSCs are helpful for a better understanding of the EBS pathogenesis and developing novel therapeutic approaches.


Subject(s)
Epidermolysis Bullosa Simplex , Induced Pluripotent Stem Cells , Epidermolysis Bullosa Simplex/genetics , Epidermolysis Bullosa Simplex/pathology , Heterozygote , Humans , Induced Pluripotent Stem Cells/metabolism , Keratin-5/genetics , Mutation/genetics
15.
Front Med ; 16(5): 808-814, 2022 Oct.
Article in English | MEDLINE | ID: mdl-35314946

ABSTRACT

Epidermolysis bullosa (EB) is a group of clinically and genetically heterogeneous diseases characterized by trauma-induced mucocutaneous fragility and blister formation. Here, we investigated five Chinese families with EB, and eight variants including a novel nonsense variant (c.47G>A, p.W16*) in LAMA3, a known recurrent variant (c.74C>T, p.P25L) in KRT5, 2 novel (c.2531T>A, p.V844E; c.6811_6814del, p.R2271fs) and 4 known (c.6187C>T, p.R2063W; c.7097G>A, p.G2366D; c.8569G>T, p.E2857*; c.3625_3635del, p.S1209fs) variants in COL7A1 were detected. Notably, this study identified a nonsense variant in LAMA3 that causes EB within the Chinese population and revealed that this variant resulted in a reduction in LAMA3 mRNA and protein expression levels by nonsense-mediated mRNA decay. Our study expands the mutation spectra of Chinese patients with EB.


Subject(s)
Collagen Type VII , Epidermolysis Bullosa Dystrophica , Epidermolysis Bullosa , Laminin , Humans , Asian People/genetics , China , Collagen Type VII/genetics , Epidermolysis Bullosa/genetics , Epidermolysis Bullosa Dystrophica/genetics , Keratin-5/genetics , Mutation , Pedigree , Laminin/genetics
16.
Stem Cell Res ; 61: 102750, 2022 05.
Article in English | MEDLINE | ID: mdl-35334406

ABSTRACT

More than 107 pathogenic variations were identified in Keratin 14 gene (KRT14) in patients affected by epidermolysis bullosa simplex (EBS), a rare skin disease with still no curative treatment. Disease models as human induced pluripotent stem cells (hiPSCs) are promising tool for further advance the knowledge about this disorder and accelerate therapies development. Here, two hiPSC lines were reprogrammed from skin fibroblasts of two EBS patients carrying mutations within KRT14 by using CytoTune®Sendai virus. These iPSCs display pluripotent cell morphology, pluripotent markers expression, and the capability to differentiate into the three germ layers.


Subject(s)
Epidermolysis Bullosa Simplex , Induced Pluripotent Stem Cells , Epidermolysis Bullosa Simplex/genetics , Epidermolysis Bullosa Simplex/pathology , Humans , Induced Pluripotent Stem Cells/pathology , Keratin-14/genetics , Keratin-5/genetics , Mutation , Phenotype
17.
Br J Dermatol ; 187(3): 441-443, 2022 09.
Article in English | MEDLINE | ID: mdl-35191026

ABSTRACT

In this study, two (18.2%) clinically unaffected parents from 11 trios were identified with mosaic KRT14 variants.To our knowledge, this is the first report to study the proportion of low-level mosaicism in the clinically unaffected parents whose children were previously regarded as sporadic EBS cases.


Subject(s)
Epidermolysis Bullosa Simplex , Child , Epidermolysis Bullosa Simplex/genetics , Humans , Keratin-14/genetics , Keratin-5/genetics , Mosaicism , Parents
20.
Biochem Biophys Res Commun ; 586: 55-62, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34826701

ABSTRACT

Salivary gland hypofunction due to radiation therapy for head and neck cancer or Sjögren syndrome may cause various oral diseases, which can lead to a decline in the quality of life. Cell therapy using salivary gland stem cells is a promising method for restoring hypofunction. Herein, we show that salivary gland-like cells can be induced from epithelial tissues that were transdifferentiated from mouse embryonic fibroblasts (MEFs). We introduced four genes, Dnp63a, Tfap2a, Grhl2, and Myc (PTMG) that are known to transdifferentiate fibroblasts into oral mucosa-like epithelium in vivo into MEFs. MEFs overexpressing these genes showed epithelial cell characteristics, such as cobblestone appearance and E-cadherin positivity, and formed oral epithelial-like tissue under air-liquid interface culture conditions. The epithelial sheet detached from the culture dish was infected with adenoviruses encoding Sox9 and Foxc1, which we previously identified as essential factors to induce salivary gland formation. The cells detached from the cell sheet formed spheres 10 days after infection and showed a branching morphology. The spheres expressed genes encoding basal/myoepithelial markers, cytokeratin 5, cytokeratin 14, acinar cell marker, aquaporin 5, and the myoepithelial marker α-smooth muscle actin. The dissociated cells of these primary spheres had the ability to form secondary spheres. Taken together, our results provide a new strategy for cell therapy of salivary glands and hold implications in treating patients with dry mouth.


Subject(s)
Acinar Cells/metabolism , Fibroblasts/metabolism , Forkhead Transcription Factors/genetics , SOX9 Transcription Factor/genetics , Salivary Glands/metabolism , Spheroids, Cellular/metabolism , Acinar Cells/cytology , Adenoviridae/genetics , Adenoviridae/metabolism , Animals , Aquaporin 5/genetics , Aquaporin 5/metabolism , Biomarkers/metabolism , Cadherins/genetics , Cadherins/metabolism , Cell Transdifferentiation/genetics , Cell- and Tissue-Based Therapy/methods , Embryo, Mammalian , Fibroblasts/cytology , Forkhead Transcription Factors/metabolism , Gene Expression , Genetic Vectors/chemistry , Genetic Vectors/metabolism , Keratin-14/genetics , Keratin-14/metabolism , Keratin-5/genetics , Keratin-5/metabolism , Mice , Proto-Oncogene Proteins c-myc/genetics , Proto-Oncogene Proteins c-myc/metabolism , SOX9 Transcription Factor/metabolism , Salivary Glands/cytology , Spheroids, Cellular/cytology , Trans-Activators/genetics , Trans-Activators/metabolism , Transcription Factor AP-2/genetics , Transcription Factor AP-2/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
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