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Vitamin A, specifically in its retinol and retinal forms, is the essential precursor for the visual cycle, a metabolic pathway occurring between the photoreceptor cells and the retinal pigment epithelium (RPE) [NIH, 2022]. In this cycle, all-trans-retinol is converted into 11-cis-retinal, which binds to opsin proteins to form rhodopsin, the primary light-sensitive pigment in the eye [Kiser, 2014]. Dysfunctions in the transport or enzymatic processing of vitamin A can lead to the accumulation of toxic bisretinoids, such as A2E, which are major components of lipofuscin and contribute to the progression of Stargardt disease and age-related macular degeneration [Charbel Issa, 2013]. Pharmacological interventions target this pathway by either reducing the systemic delivery of retinol to the eye, inhibiting key enzymes like RPE65 to slow the cycle, or utilizing deuterated vitamin A analogs that resist the chemical dimerization leading to toxin formation [Kubota, 2020; Nature, 2021]. These strategies aim to preserve retinal health and slow vision loss in patients with inherited or age-related retinal degenerations. However, therapeutic modulation of this pathway often presents challenges such as delayed dark adaptation or night blindness due to the reduced availability of the visual chromophore [Kubota, 2020].
Modulation of the visual cycle through reduction of serum retinol delivery, inhibition of isomerase enzymes, or replacement with stabilized analogs to prevent toxic byproduct accumulation [Kiser, 2014; Kubota, 2020].
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