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Fashemi, B. E.

Publications and source records attributed to Fashemi, B. E..

2 recordsLinked to original sources

A new role for IFRD1 in regulation of ER stress in bladder epithelial homeostasis

A healthy bladder requires the homeostatic maintenance of and rapid regeneration of urothelium upon stress/injury/infection. Several factors have been identified to play important roles in urothelial development, injury and disease response, however, little is known about urothelial regulation at homeostasis. Here, we identify a new role for IFRD1, a stress-induced gene that has recently been demonstrated to play a critical role in adult tissue proliferation and regeneration, in maintenance of urothelial function/ homeostasis in a mouse model. We show that the mouse bladder expresses IFRD1 at homeostasis and its loss alters the global transcriptome of the bladder with significant accumulation of cellular organelles including multivesicular bodies with undigested cargo, lysosomes and mitochondria. We demonstrate that IFRD1 interacts with several mRNA-translation-regulating factors in human urothelial cells and that the urothelium of Ifrd1-/- mice reveal decreased global translation and enhanced endoplasmic reticulum (ER) stress response. Ifrd1-/- bladders have activation of the unfolded protein response (UPR) pathway, specifically the PERK arm, with a concomitant increase in oxidative stress and spontaneous exfoliation of urothelial cells. Further, we show that such increase in cell shedding is associated with a compensatory proliferation of the basal cells but impaired regeneration of superficial cells. Finally, we show that upon loss of IFRD1, mice display aberrant voiding behavior. Thus, we propose that IFRD1 is at the center of many crucial cellular pathways that work together to maintain urothelial homeostasis, highlighting its importance as a target for diagnosis and/or therapy in bladder conditions.

cell biology↗

D-mannose ameliorates age-associated cellular senescence in the bladder urothelium and NLRP3/Gasdermin/IL-1β -driven pyroptotic epithelial cell shedding

Aging is a risk factor for disease via increased susceptibility to infection, decreased ability to maintain homeostasis, inefficiency in combatting stress, and decreased regenerative capacity. Multiple diseases including urinary tract infection (UTI), are more prevalent with age; however, the mechanisms underlying how aging affects the urinary tract mucosa and the reason why aging correlates with disease are poorly understood. Here, we show that, relative to young (8-12 weeks) mice, the urothelium of aged (18-24 months) female mice accumulates large lysosomes with decreased acid phosphatase activity and shows overall decreased autophagic flux. Aged bladders exhibit basally high accumulation of reactive oxygen species (ROS) and dampened redox response. Furthermore, the aged urothelium exhibits a canonical senescence-associated secretory phenotype (SASP) at baseline with continuous NLRP3-inflammasome- and Gasdermin D (GSDMD)-dependent pyroptotic cell death. Accordingly, we find that aged mice chronically exfoliate epithelial cells. When infected with uropathogenic E. coli, infected aged mice harbor more bacterial reservoirs post-infection and are prone to spontaneous recurrent UTI. Finally, treatment of aged mice with D-Mannose, a natural bioactive monosaccharide, rescues autophagy flux, reverses SASP, and limits pyroptotic epithelial shedding. Thus, normal aging dramatically affects bladder physiology with aging alone increasing baseline cellular stress and susceptibility to infection. Additionally, our results suggest that mannose supplementation could serve as a senotherapeutic to limit age-associated urothelial dysfunction.

cell biology↗