Search bioRxiv⌕ Search

Biology subjects

Khan, M. J.

Publications and source records attributed to Khan, M. J..

3 recordsLinked to original sources

A Translational Reference for Green Autofluorescence Imaging in the Rhesus Macaque Eye using the OcuMet Beacon

PurposeTo evaluate associations between green autofluorescence (GAF) and structural and functional measures relevant to retinal and optic neuropathies, and to establish normative GAF values across the optic nerve head (ONH), macula, and papillofoveal bundle (PFB) in rhesus macaques. MethodsEighty-two macaques with normal ONH morphology by spectral-domain optical coherence tomography (SD-OCT) were included with a mean {+/-} SD age of 12.76 {+/-} 7.18 (range 0.11-29.39) years. The GAF images were acquired in the ONH, macula and PFB with the OcuMet Beacon. In a subset of macaques (n=19), pattern electroretinogram (PERG) and photopic full-field ERG including the photopic negative response (PhNR) were recorded. ResultsThe GAF significantly increased with age in the ONH, macula and PFB. After adjusting by age, there were no sex differences, but IOP showed a positive association with macular GAF. At the ONH, higher GAF correlated with thinner retinal nerve fiber layer, inner and outer segment complex, and total retinal thickness. In the macula, inner nuclear layer thickness was positively associated with GAF, whereas outer plexiform layer and inner and outer segment complex were inversely associated. The PERG amplitudes inversely tracked ONH GAF. ConclusionsGAF rises with age and IOP, couples to retinal structure, and at the ONH, aligns with inner-retinal functional indices. This study provides a regional reference for GAF in rhesus macaques. Translational RelevanceNormative GAF data in healthy rhesus macaques provide a framework for interpreting this noninvasive signal in translational studies of retinal and optic nerve disease.

physiology↗

Interplay between ferroptosis and guttae in an early-onset murine model of Fuchs endothelial corneal dystrophy (FECD)

Col8a2Q455K/Q455K (Q455K) mice exhibit features of early-onset Fuchs endothelial corneal dystrophy (FECD), including decreased endothelial cell density (ECD) and guttae formation. Within the context of these clinical features, this study longitudinally evaluates ferroptosis in Q455K and wild-type (WT) mice using in vivo imaging, PCR and immunohistochemistry. Fifty-six Q455K and 56 WT mice were evaluated from 3 to 24 months of age with in vivo confocal microscopy; ECD and guttae were measured. Ferroptosis marker expression was determined with PCR and immunohistochemistry (IHC). Data were analyzed using two-way ANOVA with Tukeys post hoc test, Chi-square test and a paired t-test. The ECD significantly decreased in both groups from 3 to 24 months of age, but more markedly in Q455K (2285 {+/-} 317 to 1012 {+/-} 58 cells/mm{superscript 2}) versus WT mice (2714 {+/-} 139 to 2057 {+/-} 149 cells/mm{superscript 2}, P<0.0001). Guttae were observed exclusively in Q455K mice beginning at 3 months of age and increased over time (P=0.0003). The Q455K mice demonstrate guttae at the vertices of corneal endothelial cells rather than their centers (74.3% vs. 25.7%P<0.001). Expression of ferroptosis-related genes (Tfrc, Slc40a1, Ftl1, Gpx4) were significantly increased in the Q455K versus WT mice (P<0.05). Furthermore, corresponding protein expression (transferrin receptor 1, ferroportin, ferritin and glutathione peroxidase 4) was significantly elevated adjacent to guttae in Q455K versus WT mice (P<0.05). These findings implicate guttae in the initiation of ferroptosis as it relates to the pathophysiology of FECD and provide an optimal window for testing novel FECD therapies using this murine model, particularly those that target ferroptosis. Significance StatementFuchs endothelial corneal dystrophy (FECD) is a major cause of corneal blindness, yet the mechanisms driving endothelial cell loss remain unclear. Using an early-onset Q455K murine model, we show that disease onset occurs by 3 months of age and progresses with characteristic corneal guttae, endothelial cell loss, and morphological abnormalities replicating human FECD. By identifying ferroptosis adjacent to guttae in the Q455K, we demonstrate this mechanism is not specific to genetic mutations, but rather a conserved driver of corneal endothelial loss within the context of guttae formation. These findings establish an FECD progression timeline and reveal a mechanistic link between ferroptosis and guttae, validating this model as a critical tool for evaluating targeted therapeutic strategies.

developmental biology↗

TAZ (Wwtr1) deficiency leads to ER stress and mitochondrial dysfunction in a mouse model of Fuchs' endothelial corneal dystrophy

Fuchs endothelial corneal dystrophy (FECD) impacts over 300 million individuals worldwide with corneal transplantation as the primary treatment. There is a dire need to establish non-surgical alternatives which are dependent on mouse models. Transcriptional co-activator with PDZ-binding motif (TAZ, encoded by Wwtr1) is a mechanotransducer implicated in maintaining homeostasis of corneal endothelial cells (CEnC). Wwtr1-/- (TAZ KO) mice serve as an animal model for late-onset FECD. We combined single-cell transcriptomics, transmission electron microscopy, and immunofluorescence staining to elucidate the mechanisms driving pathogenesis in young (2-month-old) and geriatric (11-month-old) mice. A progressive stress response was observed in TAZ KOs defined by endoplasmic reticulum (ER) stress, mitochondrial structural and functional abnormalities, and impaired Na+/K+ ATPase localization. These changes were accompanied by an altered expression of genes involved in extracellular matrix (ECM) organization, oxidative phosphorylation, macroautophagy and response to oxidative stress. Additionally, we noted age-related differences in cellular response with young TAZ KO CEnCs upregulating macroautophagy and downregulating ECM organization while geriatric TAZ KO CEnCs downregulated macroautophagy, and ECM organization. Both TAZ KO groups downregulated response to oxidative stress and cell-substrate adhesion. Together, these findings establish a mechanistic link between disrupted mechanotransduction and organelle stress in CEnC degeneration, further elaborating on potential mechanisms driving FECD pathogenesis. This positions TAZ KO mice as a translational platform for evaluating non-surgical therapeutic strategies targeting FECD. Significance statementFuchs endothelial corneal dystrophy (FECD) is a common, age-related cause of vision loss involving a depletion of corneal endothelial cells (CEnC) that necessitates corneal transplantation. Understanding why corneal endothelial cells progressively fail in this disease is essential for developing non-surgical therapies. Using transcriptomics, electron microscopy and immunofluorescence staining, we demonstrate that loss of the mechanotransducer TAZ disrupts cellular homeostasis by inducing endoplasmic reticulum stress, mitochondrial dysfunction and improper extracellular matrix and functional protein organization in CEnCs. By linking altered mechanotransduction to organelle stress and endothelial cell loss, these findings provide insight into fundamental disease mechanisms and identify pathways that may be targeted to preserve corneal endothelial function in FECD.

pathology↗