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Biology subjects

Gupta, I. R.

Publications and source records attributed to Gupta, I. R..

3 recordsLinked to original sources

Early Treatment with Oral Pirfenidone Improves Bladder Function after Contusive Spinal Cord Injury in Mice

Spinal cord injury (SCI) disrupts innervation to the lower urinary tract, resulting in bladder dysfunction that predisposes to urinary infections and renal impairment. While inflammation is central to bladder pathology after SCI, the molecular events linking acute to chronic remodeling are poorly defined. We hypothesized that early treatment with pirfenidone, an anti-inflammatory and anti-fibrotic drug, would attenuate bladder pathology after SCI. Adult female C57BL/6J mice underwent contusive SCI or sham laminectomy, and bladders were collected at 2, 7, 16, and 45 days later. SCI induced bladder hypertrophy, edema, hemorrhage, neutrophil infiltration, cell proliferation and loss of voiding function in the first 48 hours. Transcriptomic profiling at this timepoint was characterized by activation of inflammatory and cytokine pathways including TNFalpha, IL-6, the complement cascade, and TGFbeta. Although bladder function partially recovered by day 7, inflammatory pathways persisted and extracellular matrix (ECM) remodeling programs emerged. By day 16, robust activation of ECM-remodeling pathways was evident in all bladders. Treatment with pirfenidone during the acute inflammatory phase (day 2-7) reduced bladder hypertrophy and suppressed expression of pro-fibrotic, inflammatory, and neuroplasticity-associated genes including Bdnf and Chrm2 that encodes muscarinic receptor 2 (M2). Mechanistically, pirfenidone attenuated TGFbeta signaling as shown by downregulation of phosphoSmad2 protein in whole bladders and decreased M2 receptor expression in the urothelium. These molecular changes correlated with improved function in pirfenidone-treated mice as shown by fewer voiding events with larger urine volumes up until 45 days after SCI. Early treatment with pirfenidone limits inflammation and fibrosis, normalizes neural signaling, and improves bladder function after SCI.

physiology↗

The transcription factor Osr1 regulates epithelial-mesenchymal crosstalk that is required for embryonic bladder development

The molecular events that define cell fate decisions during bladder development are poorly characterized. Here, we establish a temporal single-cell atlas when the bladder first arises from the cloaca until its major layers have been established that include the uroepithelium, the lamina propria and the smooth muscle. The analysis resolved the cell origin of ligands and their respective receptors for four major signaling pathways that have been previously implicated in bladder development, SHH, BMP, WNT and FGF. The transcription factor Odd-skipped related 1 is essential for mesenchymal differentiation during organogenesis of the foregut, kidney, limb, ureter and is highly expressed during bladder development. We demonstrate that Osr1 is required for development of the bladder: homozygous loss of Osr1 results in depletion of smooth muscle, loss of extracellular matrix, loss of suburothelial cells, and a less stratified epithelium lacking intermediate and superficial cells. Transcripts within the four major signaling pathways, SHH, BMP, WNT and FGF, were decreased during cellular diversification in bladders from Osr1 homozygous null embryos. In summary, Osr1 is a central mediator of epithelial-mesenchymal crosstalk and cell fate decisions during bladder development.

developmental biology↗

Mouse nephron formation is impaired by moderate-dose arsenical exposure

BackgroundArsenic is a naturally occurring toxicant and industrial byproduct with significant health risks. Globally, millions of people are exposed to arsenic concentrations that exceed the World Health Organizations recommended limit of 10 g/L. Chronic arsenic exposure is linked to an increased risk of chronic kidney disease (CKD); however, the effects of arsenic exposure on kidney development remain unclear. Eukaryotes methylate inorganic arsenic (iAsIII) using the enzyme arsenic 3 methyltransferase (As3mt), that converts it to methylated intermediates, mono and dimethyl arsonous acid (MMAIII and DMAIII), and mono and dimethyl arsonic acid (MMAV and DMAV). We hypothesized that arsenicals exposure during mouse kidney development impairs nephron formation. MethodsCultured mouse embryonic kidney explants were treated with inorganic arsenite (iAsIII), MMAIII, MMAV, and DMAV. Female mice harboring a humanized version of AS3MT and wild-type mice with murine As3mt were exposed to iAsIII throughout gestation and weaning and their offspring were analyzed for kidney defects. ResultsInorganic arsenic, iAsIII (200 g/L), inhibited ureteric bud branching morphogenesis and growth of mouse kidneys at embryonic day 11.5 (E11.5) and E12.5, but not at E13.5. MMAIII, but not MMAV or DMAV, impaired ureteric bud branching and kidney explant growth. Additionally, iAsIII exposure increased apoptosis in the metanephric mesenchyme of E11.5 explants and decreased Gdnf transcription, which may explain the impairment in ureteric bud branching. Humanized mouse pups exposed to 200 g/L iAsIII in utero, showed a 20% reduction in kidney weight normalized to body weight and a 28% reduction in nephron number, compared to kidneys of wild-type mice. ConclusionExposure to arsenicals during embryonic development impairs ureteric bud branching morphogenesis and decreases nephron endowment, which may predispose to CKD in adulthood.

developmental biology↗