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Krueger, M. R.

Publications and source records attributed to Krueger, M. R..

2 recordsLinked to original sources

Cell-Intrinsic Vulnerability and Immune Activation Cooperate to Drive Degeneration in a Mitochondrial Complex I Deficiency Model of Optic Neuropathy

Mitochondrial dysfunction is a central hallmark of many optic neuropathies, yet the mechanisms linking intrinsic metabolic stress to retinal ganglion cell (RGC) degeneration remain unclear. To bridge this gap, we developed conditional transgenic models targeting the mitochondrial complex I subunit Ndufs4 in the retina. Broad deletion of Ndufs4 in the retina resulted in vision loss, progressive RGC degeneration, and pronounced immune activation before overt RGC death. Strikingly, depletion of myeloid cells significantly preserved RGCs, demonstrating that inflammation is not simply a downstream consequence but a participant in the degeneration process. To further distinguish between intrinsic and extrinsic mechanisms, we generated a mosaic model in which only subsets of retinal cells lacked Ndufs4. In this paradigm, the degeneration first appeared selectively in mutant regions, suggesting that mitochondrial impairment within RGCs is necessary to initiate vulnerability. At later stages, however, the degeneration extended beyond mutant territories, highly suggestive of a propagation through non-cell autonomous processes. Together, these findings support a model in which mitochondrial dysfunction creates the conditions for neuronal vulnerability, while immune responses govern the timing and extent of cell loss. This framework explains the consistent co-occurrence of metabolic deficits and neuroinflammation in optic neuropathies and highlights the importance of their interactions in disease progression. By clarifying the intersection of intrinsic and extrinsic mechanisms, this work advances our understanding of RGC degeneration and provides a conceptual basis for deciphering pathogenic processes across diverse optic neuropathies.

neuroscience↗

Novel Roles of Sonic Hedgehog Signaling in Retinal Patterning and Neurogenesis During Mammalian Eye Development

The Sonic Hedgehog (Shh) signaling pathway is essential for the patterning, growth, and morphogenesis of many tissues. During early eye development, Shh is critical for the formation of the two optic vesicles, which give rise to the retina, retinal pigment epithelium (RPE), and optic stalk. It also regulates the balance between cell proliferation and differentiation during retinal histogenesis, a key process in shaping the cellular architecture of the mature retina. Despite these well-established roles, the temporal dynamics, region-specific functions, and downstream consequences of Shh signaling during retinal development remain poorly understood. Here, we present a comprehensive analysis of Shh signaling across multiple stages of retinal development using temporally and spatially controlled deletion of Smoothened (Smo), an essential transducer of the pathway. This approach reveals previously unrecognized requirements for Shh signaling in specifying optic nerve head identity and maintaining nasal-temporal polarity. We also show that Shh signaling coordinates neurogenesis by sustaining the retinal progenitor pool while also regulating progenitor competence, ensuring appropriate proportions of retinal cell types. Our data indicate that both proliferative capacity and the timing of cell fate specification are shaped by Shh pathway activity. Together, these findings establish new mechanistic links between Shh signaling, regional patterning, and temporal regulation of neurogenesis, providing novel insights into how morphogen signaling is repurposed across developmental time to orchestrate complex tissue architecture.

developmental biology↗