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Bernstein, P. S.

Publications and source records attributed to Bernstein, P. S..

2 recordsLinked to original sources

Mechanism of Lutein to meso-Zeaxanthin Isomerization by RPE65 Catalysis

The macular pigments lutein (L), zeaxanthin (Z), and meso-zeaxanthin (MZ) protect the human retina from light and oxidative stress. While L and Z are abundant in the human diet, MZ is nearly absent. We previously demonstrated MZ is derived from L in chicken embryos precisely timed with expression of RPE65. Herein, we show that RPE65 from mouse, an animal that does not concentrate MZ in the eye, catalyzes L to MZ isomerization similarly as found for RPE65 from chicken and human, when expressed in cultured cells. Co-expression with xanthophyll-binding proteins had no impact on MZ yield. L and MZ both fit deep into the tunnel accessing the non-heme iron center, with strain evident for the 3R,6R {varepsilon} ring of L. Interestingly, a negatively charged Glu148, found along substrate tunnel, highly conserved among carotenoid cleavage dioxygenases, and which is critical for eye health, could be replaced by a neutral, isosteric residue (Gln) without impacting MZ yield. We propose that L to MZ isomerization proceeds by a neutral, radical transition state that differs from the carbocation encountered during retinoid isomerization. These findings extend our mechanistic understanding for macular carotenoid metabolism and should be considered when developing therapeutic interventions that act via RPE65.

biochemistry↗

Prenatal Carotenoid Supplementation with Lutein or Zeaxanthin Ameliorates Oxygen-Induced Retinopathy (OIR) in Bco2-/- Macular Pigment Mice

PurposePremature infants at risk of retinopathy of prematurity (ROP) miss placental transfer of carotenoids, lutein (L) and zeaxanthin (Z), during the third trimester. We previously demonstrated that prenatal L and Z supplementation raises carotenoid levels in infants at birth in the Lutein and Zeaxanthin in Pregnancy (L-ZIP) study (NCT03750968). Based on their antioxidant effects and bioavailability, we hypothesized that prenatal maternal supplementation with macular carotenoids would reduce risk of ROP. To test this hypothesis, we utilized "macular pigment mice" genetically engineered to take up L and Z into the retina in a model of oxygen-induced retinopathy (OIR). MethodsPregnant Bco2-/- mice were divided into nine experimental subgroups based on the type of supplementation (L, Z, or placebo) and on maternal supplementation start date corresponding to the three trimesters of human fetal development (E0, E11, and P1). Pups and nursing mothers were exposed to 75% O2 for 5 days (P7-12) and returned to room air for 5 days (P12-17). Pups were sacrificed at P12 and P17, and their retinas were analyzed for vaso-obliteration (VO) and intravitreal neovascularization (INV). ResultsPups of pregnant mice supplemented with L or Z had significant reductions in VO and INV areas compared to placebo. Prenatal carotenoid supplementation starting at E0 or E11 was significantly more protective against OIR than postnatal supplementation starting at P1. ConclusionPrenatal supplementation with L and Z was beneficial in a mouse OIR model. We recommend testing prenatal L and Z supplementation in future human clinical trials to prevent ROP.

biochemistry↗