PURPOSE. Retinal degeneration is a common cause of blindness, but there is a gap in our understanding of the molecular mechanisms causing degeneration. Dysregulated PRDM13 has been linked to retinal dystrophy, indicating a role for PRDM13 in the retina. PRDM13 knockout studies have shown that PRDM13 specifies amacrine cell fates, but no studies have shown the phenotypic and mechanistic outcomes of its elevated activity in the retina. METHODS. We developed a mouse model to induce aberrant PRDM13 expression in a controlled, time-dependent manner. ERG and histological analyses were performed to determine whether elevated PRDM13 impacted the health and function of the retina. RNA sequencing of retinas with and without elevated PRDM13 defined transcriptional changes in response to PRDM13 activity. Differentially expressed genes were validated by quantitative PCR and western blot. RESULTS. We found that elevated PRDM13 decreases photoreceptor function and survival. Depletion of elevated PRDM13 halted this degenerative phenotype and restored some photoreceptor function. We further uncovered that elevated PRDM13 alters the expression of markers for amacrine subpopulations. Transcriptomic profiling revealed that elevated PRDM13 deregulates genes involved in retinal development, phototransduction, and photoreceptor health. We found downregulation of Prdm1-a photoreceptor marker-and Nr2e3-a key regulator of photoreceptor specification also implicated in retinal dystrophies-as well as effects on NR2E3's direct and indirect targets. CONCLUSIONS. These findings establish a critical role for PRDM13 in retinal health and provide a new model for elucidating the impact of PRDM13 on photoreceptor maturation, maintenance, and function during retinal development.
Citrobacter koseri is a gram-negative bacillus primarily found in the gut. Exogenous endophthalmitis caused by C. koseri is exceedingly rare, with most reported cases occurring secondary to ocular trauma and resulting in poor visual outcomes. This report presents a case of a 76-year-old patient who developed endophthalmitis following a fluocinolone acetonide intravitreal injection administered for diabetic macular edema. A vitreous biopsy and intravitreal injection of vancomycin and ceftazidime were performed upon presentation. The vitreous sample culture was positive for C. koseri. The patient responded well with ultimate resolution of the infection and return of pre-infection visual acuity without a vitrectomy.
Purpose: Pathogenic variants in North Carolina macular dystrophy (NCMD) have rarely been reported in the East Asian population. Herein, we reported novel variants of NCMD in 2 Korean families. Methods: The regions associated with NCMD were analyzed with genome sequencing, and variants were filtered based on the minor allele frequency (0.5%) and heterozygosity. Non-coding variants were functionally annotated using multiple computational tools. Results: We identified two rare novel variants, chr6:g.99,598,914T>C (hg38; V17) and chr6:g.99,598,926G>A (hg38; V18) upstream of PRDM13 in families A and B, respectively. In Family 1, Grade 2 NCMD and a best-corrected visual acuity of 20/25 and 20/200 in the right and left eyes, respectively, were observed. In Family B, all affected individuals had Grade 1 NCMD with characteristic confluent drusen at the fovea and a best-corrected visual acuity of 20/20 in both eyes. These two variants are 10-22 bp downstream of the reported V10 variant within the DNase1 hypersensitivity site. This site is associated with progressive bifocal chorioretinal atrophy and congenital posterior polar chorioretinal hypertrophy and lies in the putative enhancer site of PRDM13. Conclusion: We identified two novel NCMD variants in the Korean population and further validated the regulatory role of the DNase1 hypersensitivity site upstream of PRDM13.
Purpose: North Carolina macular dystrophy (NCMD) is a rare autosomal dominantly inherited congenital maculopathy caused by either non-coding point mutations or tandem duplications in the DNase I hypersensitivity site DHS6S1, at chromosome 6q16 (MCDR1), or at chromosome 5 (MCDR3). To date, at least 30 NCMD pedigrees from different ethnicities have been genetically identified worldwide. Herein, we report the clinical and genetic features of a newly found NCMD family in Mexico with a novel tandem duplication involving both the DNASE1 site and the PRDM13 gene. Methods: Seven affected subjects from a Mexican family underwent a complete ophthalmic assessment that included dilated indirect ophthalmoscopy, fundus photography, optical coherence tomography (OCT), fundus autofluorescence (FAF), kinetic and chromatic perimetry, and electroretinography (ERG). Next-generation sequencing (NGS), followed by array-based comparative genomic hybridization (array-CGH) and quantitative polymerase chain reaction (qPCR) analyzes, were employed to demonstrate the causative molecular defect. Results: All seven affected patients had a severe appearing phenotype characterized by symmetric excavated atrophic coloboma-like chorioretinal macular lesions. In addition, using OCT, lacunae in the inner retinal layers and inner retinal loss were observed in all patients. NGS identified a heterozygous tandem duplication of the entire coding sequence of the PRDM13 gene in all seven affected individuals, whereas subsequent array CGH, NGS, and Sanger sequencing allowed for the identification of the precise boundaries of a similar to 148 kb MCDR1 duplication containing the whole PRMD13 gene and the DNASE1 site. Within the duplication, a small similar to 1000 bp homozygous deletion was found. Conclusions: The phenotypic features in this NCMD pedigree continue to support the concept that this disorder is a congenital macular malformation rather than a progressive dystrophic entity. Unlike most NCMD families, there was no variable expressivity found in this study, possibly due to the relatively small size of the family. The other hypothesis is that the duplication involves genomic segments that are more consistently or tightly bound to other regulatory regions of PRDM13. The mechanism producing the smaller deletion within the duplication is unknown; therefore, this is an unreported type of mutation in NCMD. The identification of a novel causative tandem duplication involving the DNASE1 site and the PRDM13 gene in this family allows for the expansion of the mutational spectrum of the disease.
PURPOSE:To evaluate effects of the 0.19-mg fluocinolone acetonide (FAc) intravitreal implant (ILUVIEN) on intraocular pressure (IOP) in patients with diabetic macular edema (DME). DESIGN:Secondary analysis of a 36-month, phase IV, nonrandomized, open-label, observational study. PARTICIPANTS:The study included 202 eyes from 159 patients who received the 0.19-mg FAc implant after a successful prior steroid challenge per the United States label indication. METHODS:Study eyes were assessed for IOP values, incidence of IOP elevations, and best-corrected visual acuity (BCVA) for up to 36 months post-FAc implant. RESULTS:Mean IOP was stable over 36 months post-FAc; IOP change from baseline peaked at 2.12 mmHg at 9 months, then declined to baseline levels. At 36 months, eyes had a 32.5% cumulative probability of an IOP event > 25 mmHg and a 15.6% probability of an IOP event > 30 mmHg (Kaplan-Meier). The probability of requiring IOP-lowering medication at any time by month 36 was 38.3%. A total of 78% of eyes did not have IOP elevations > 25 mmHg if similar values were seen with the previous steroid challenge. Although 7.4% of eyes had an IOP > 30 mmHg during a scheduled study visit, most exceeded this threshold only once (60%). Regardless of IOP status, mean BCVA remained stable. CONCLUSIONS:Over 36 months, the 0.19-mg FAc implant was associated with relatively stable IOPs in patients with DME, and there was no significant impact of IOP elevations identified regarding their effects on long-term visual outcomes. The probability that a prior corticosteroid challenge will not predict an IOP elevation > 25 mmHg over 36 months post-FAc is 22%; therefore, routine IOP monitoring should be scheduled. FINANCIAL DISCLOSURE(S):Proprietary or commercial disclosure may be found in the Footnotes and Disclosures at the end of this article.
Purpose: To report the results of a nonsurgical approach to repair macular holes (MHs). Methods: A retrospective chart review of consecutive patients with MHs from 2018 to 2021 was performed. Topical therapy consisted of a steroidal agent, a nonsteroidal agent, and a carbonic anhydrase inhibitor. Data collected included the size, stage, and duration of the MH; topical agents used and the duration; lens status; and complications. Macular edema was graded on a scale ranging from 0 (no edema) to 4 (large amount of edema) and recorded. Before and after MH closure, the best-corrected visual acuity (BCVA) was measured and converted to logMAR notation. Spectral-domain optical coherence tomography was performed. Results: Seven (54%) of the 13 eyes initially treated topically experienced successful MH closure. Small holes (<230 mu m) with a better initial BCVA (0.474 logMAR vs 0.796 logMAR) were more likely to respond favorably to topical therapy (mean 121 mu m vs 499 mu m). In addition, holes with less surrounding edema responded better. All holes not responding to topical therapy were subsequently closed with pars plana vitrectomy, membrane peeling, and fluid-gas exchange. Conclusions: Topical therapy is a reasonable first-line treatment for MHs, with a better than 50% success rate. This is especially true for small early-onset holes with minimal or no edema. Surgery still had a high success rate after a 1- to 3-month delay while the MH was treated with eyedrops.
Stem cell products are increasingly entering early stage clinical trials for treating retinal degeneration. The field is learning from experience about comparability of cells proposed for preclinical and clinical use. Without this, preclinical data supporting translation to a clinical study might not adequately reflect the performance of subsequent clinical-grade cells in patients.Research-grade human neural progenitor cells (hNPC) and clinical-grade hNPC (termed CNS10-NPC) were injected into the subretinal space of the Royal College of Surgeons (RCS) rat, a rodent model of retinal degeneration such as retinitis pigmentosa. An investigational new drug (IND)-enabling study with CNS10-NPC was performed in the same rodent model. Finally, surgical methodology for subretinal cell delivery in the clinic was optimized in a large animal model with Yucatan minipigs.Both research-grade hNPC and clinical-grade hNPC can survive and provide functional and morphological protection in a dose-dependent fashion in RCS rats and the optimal cell dose was defined and used in IND-enabling studies. Grafted CNS10-NPC migrated from the injection site without differentiation into retinal cell phenotypes. Additionally, CNS10-NPC showed long-term survival, safety and efficacy in a good laboratory practice (GLP) toxicity and tumorigenicity study, with no observed cell overgrowth even at the maximum deliverable dose. Finally, using a large animal model with the Yucatan minipig, which has an eye size comparable to the human, we optimized the surgical methodology for subretinal cell delivery in the clinic.These extensive studies supported an approved IND and the translation of CNS10-NPC to an ongoing Phase 1/2a clinical trial (NCT04284293) for the treatment of retinitis pigmentosa.
Palovarotene, a selective retinoic acid receptor γ agonist, is under investigation for the treatment of dry eye disease. This study aimed to determine the ocular and systemic safety, tolerability and pharmacokinetics of palovarotene ophthalmic solution (PVO-OS) in healthy adults. This was a randomised, vehicle-controlled phase I study (NCT04762355; retrospectively registered). Participants received either PVO-OS (at 0.025, 0.05 or 0.10 mg/mL) or a vehicle (placebo-to-match PVO-OS) once-daily or twice-daily for seven consecutive days. Safety was assessed by ocular and systemic assessments. Blood samples for pharmacokinetic assessments were collected before and after dose administration. Thirty-six participants were randomised to PVO-OS and 12 to the vehicle. Overall, 89 treatment-emergent ocular adverse events (TEOAEs) were reported by 22 participants (61.1
Purpose:To clinically and molecularly study a newly found family with North Carolina macular dystrophy (NCMD/MCDR1) from Mexico.Methods:This retrospective study comprised 6 members of a 3-generation Mexican family with NCMD. Clinical ophthalmic examinations, including fundus imaging, spectral-domain optical coherence tomography, electroretinography, and electrooculography, were performed. Genotyping with polymorphic markers in the MCDR1 region was performed to determine haplotypes. Whole-genome sequencing (WGS) was performed followed by variant filtering and copy number variant analysis.Results:Four subjects from 3 generations were found to have macular abnormalities. The proband presented with lifelong bilateral vision impairment with bilaterally symmetric vitelliform Best disease-like appearing macular lesions. Her 2 children had bilateral large macular coloboma-like malformations, consistent with autosomal dominant NCMD. The 80-year-old mother of the proband had drusen-like lesions consistent with grade 1 NCMD. WGS and subsequent Sanger sequencing found a point mutation at chr6:99593030G>C (hg38) in the noncoding region of the DNase I site thought to be a regulatory element of the retinal transcription factor gene PRDM13. This mutation is the identical site/nucleotide as in the original NCMD family (#765) but is a guanine to cytosine change rather than a guanine to thymine mutation, as found in the original NCMD family.Conclusions:We report a new noncoding mutation at the same locus (chr6:99593030G>C) involving the same DNase I site regulating the retinal transcription factor gene PRDM13. This suggests that this site, chr6:99593030, is a mutational hotspot.
North Carolina macular dystrophy (NCMD) is a rare autosomal dominant disease affecting macular development. The disease is caused by non-coding single nucleotide variants (SNVs) in two hotspot regions near PRDM13 and by duplications in two distinct chromosomal loci, overlapping DNase I hypersensitive sites near either PRDM13 or IRX1 . To unravel the mechanisms by which these variants cause disease, we first established a genome-wide multi-omics retinal database, RegRet. Integration of UMI-4C profiles we generated on adult human retina then allowed fine-mapping of the interactions of the PRDM13 and IRX1 gene promoters, and the identification of eighteen candidate cis -regulatory elements (cCREs), the activity of which was investigated by luciferase and Xenopus enhancer assays. Next, luciferase assays showed that the non-coding SNVs located in the two hotspot regions of PRDM13 affect cCRE activity, including two novel NCMD-associated non-coding SNVs that we identified. Interestingly, the cCRE containing one of these SNVs was shown to interact with the PRDM13 promoter, demonstrated in vivo activity in Xenopus , and is active at the developmental stage when progenitor cells of the central retina exit mitosis, putting forward this region as a PRDM13 enhancer. Finally, mining of single-cell transcriptional data of embryonic and adult retina revealed the highest expression of PRDM13 and IRX1 when amacrine cells start to synapse with retinal ganglion cells, supporting the hypothesis that altered PRDM13 or IRX1 expression impairs interactions between these cells during retinogenesis. Overall, this study gained insight into the cis -regulatory mechanisms of NCMD and supports that this condition is a retinal enhanceropathy. Graphical abstract
Purpose:To describe a new ocular phenotype in a single Egyptian family associated with a heterozygous noncoding mutation in the North Carolina macular dystrophy (NCMD/MCDR1) locus, likely affecting the PRDM13 gene.Methods:A retrospective, clinical chart review of 11 members of a four-generation family. Comprehensive ophthalmic examinations included visual acuity, refraction, fundus imaging, spectral-domain optical coherence tomography, and full-field electroretinography. Molecular genetic analysis of the MCDR1 region was performed using whole genome and targeted sequencing. The main outcome measures were DNA sequence variants, clinical, retinal imaging, and electroretinography findings.Results:The five affected adult family members tested carried a single heterozygous mutation in a noncoding region (Chr6:100,046,783A>C) located 7.8 kb upstream of PRDM13. Visual acuity ranged from 20/200 to 20/400. All members had extensive chorioretinal absence/thinning extending outside of the maculae with extensive posterior bowing of the choroid and sclera centered in the macula giving a large macular coloboma-like appearance. Two additional members had cystoid fluid, and one had macular detachment. Full-field electroretinography revealed reduced cone and rod responses in all affected members.Conclusion:The phenotype of this disease falls between the spectrum of progressive bifocal chorioretinal atrophy and NCMD. The findings are most consistent with progressive bifocal chorioretinal atrophy with the exception that there is no bifocal nature to the appearance nor is it progressive. Another view is that the phenotype seems to be an extremely severe form of NCMD. Given that this disease falls in between progressive bifocal chorioretinal atrophy and NCMD, we propose calling it congenital posterior polar chorioretinal hypoplasia.
To describe a new ocular phenotype in a single Egyptian family associated with a heterozygous noncoding mutation in the North Carolina macular dystrophy (NCMD/MCDR1) locus, likely affecting the PRDM13 gene.A retrospective, clinical chart review of 11 members of a four-generation family. Comprehensive ophthalmic examinations included visual acuity, refraction, fundus imaging, spectral-domain optical coherence tomography, and full-field electroretinography. Molecular genetic analysis of the MCDR1 region was performed using whole genome and targeted sequencing. The main outcome measures were DNA sequence variants, clinical, retinal imaging, and electroretinography findings.The five affected adult family members tested carried a single heterozygous mutation in a noncoding region (Chr6:100,046,783A>C) located 7.8 kb upstream of PRDM13. Visual acuity ranged from 20/200 to 20/400. All members had extensive chorioretinal absence/thinning extending outside of the maculae with extensive posterior bowing of the choroid and sclera centered in the macula giving a large macular coloboma-like appearance. Two additional members had cystoid fluid, and one had macular detachment. Full-field electroretinography revealed reduced cone and rod responses in all affected members.The phenotype of this disease falls between the spectrum of progressive bifocal chorioretinal atrophy and NCMD. The findings are most consistent with progressive bifocal chorioretinal atrophy with the exception that there is no bifocal nature to the appearance nor is it progressive. Another view is that the phenotype seems to be an extremely severe form of NCMD. Given that this disease falls in between progressive bifocal chorioretinal atrophy and NCMD, we propose calling it congenital posterior polar chorioretinal hypoplasia.
PURPOSE:North Carolina Macular Dystrophy (NCMD) and Best Vitelliform Macular Dystrophy (BVMD) are rare autosomal dominant macular dystrophies. Both BVMD and NCMD have markedly variable expressivity. In some individuals, it can be difficult to differentiate between the two disease entities.METHODS:Clinical findings including fundus photography, fundus autofluorescence (FAF), and spectral domain optical coherence tomography (SD-OCT) were evaluated in 5 individuals with NCMD and 3 with BMD. Electrooculography (EOG) was performed in 2 NCMD subjects. Molecular diagnosis was performed using Sanger DNA sequencing. IRB approval was obtained.RESULTS:Five NCMD subjects had clinical findings indistinguishable from three of our BVMD subjects. Molecular diagnosis was confirmed in all but one BVMD subject who had an abnormal EOG prior to discovery of the BEST1 gene. Two NCMD subjects had an abnormal EOG with a normal ERG, which has been considered a unique feature of BVMD. SD-OCT in one BVMD subject demonstrated a small lucency/excavation into the choroid similar to that in grade 3 lesions of NCMD. Two NCMD subjects had elevated sub-macular lesions giving a pseudo-vitelliform appearance on OCT similar to BVMD.CONCLUSION:Best Vitelliform Macular Dystrophy can be a phenocopy of NCMD. There is considerable clinical overlap between NCMD and BVMD, which can cause diagnostic inaccuracies. Our new findings demonstrate that like BVMD, NCMD can also have an abnormal EOG with a normal ERG. The overlapping phenotypes of BVMD with NCMD may provide insights into the mechanisms of the macular changes.