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Targeting the Disease Response With NlpD and LytM for Effective Nonantibiotic Treatment of Urinary Tract Infections.

BACKGROUND: Finding new ways of treating bacterial infections is essential. The NlpD protein, which inhibits RNA polymerase II (Pol II), has shown therapeutic efficacy against urinary tract infection. This study investigated the mechanism of Pol II inhibition and protection by NlpD and its LytM peptide. METHODS: Recombinant NlpD and LytM were screened for interactions with constituents of the Pol II complex, using AlphaFold predictions and protein interaction technology. Treatment effects were quantified in infected tissues and regulated host response pathways identified by genome-wide transcriptomics analysis in models of acute pyelonephritis and acute cystitis in Irf3-/- and Asc-/- mice, respectively. RESULTS: LytM was shown to interact with constituents of the Pol II multiprotein complex, inhibiting the CDK12 kinase from phosphorylating the Pol II subunit RPB1 and disrupting Pol II complex formation by interfering with the interaction between PAF1C and RPB1. The protection by LytM against acute pyelonephritis was accompanied by a reduction in gene expression in infected kidneys from >1900 significantly regulated genes (fold change >6) in the placebo group to about 150 in LytM-treated mice. The inhibition of gene expression in infected kidneys particularly targeted the excessive innate immune response. A similar effect was observed in acute cystitis. Bacterial clearance was accelerated in both model by LytM treatment, with effects against antibiotic-sensitive and resistant Escherichia coli strains. CONCLUSIONS: The results suggest that inhibiting the disease response of the host, using NlpD or LytM, may offer an efficient alternative to antibiotics in these models.

Animals

RADA16 as a novel hemostatic and regenerative agent in urology: European Association of Urology endourology up-to-date overview.

PURPOSE OF REVIEW: Self-assembling peptide (SAP) hydrogels represent a novel class of synthetic biomaterials with growing relevance in surgery. Among them, the ion-complementary peptide RADA16 has gained attention as an athermal, transparent, and biocompatible hemostatic agent. While its use is increasingly reported in multiple surgical specialties, evidence specific to urology remains fragmented. This review aims to summarize the physicochemical properties, mechanisms of action, and current clinical evidence for RADA16-based hydrogels, with a particular focus on urological applications. RECENT FINDINGS: RADA16 rapidly self-assembles into a transparent, extracellular-matrix-like nanofibrillar hydrogel upon exposure to physiological fluids, providing effective local hemostasis without reliance on the coagulation cascade. Preclinical and clinical data from other surgical fields demonstrate rapid bleeding control, favorable safety, and potential regenerative effects. Emerging urological evidence suggests that RADA16 is effective in managing hemorrhagic cystitis, radiation-induced hematuria, and bleeding during prostate surgery, including robot-assisted radical prostatectomy and benign prostate surgery. Beyond hemostasis, RADA16 may support wound healing and promotion of re-epithelialization. However, the current evidence base is limited by small sample sizes, lack of comparative studies, heterogeneous methodologies, and short follow-up. SUMMARY: RADA16-based hydrogels represent a promising adjunctive hemostatic option in urology, offering technical advantages such as transparency, absence of thermal injury, minimal swelling, and applicability in confined or high-risk settings. Robust prospective, comparative, and cost-effectiveness studies are required to define its definitive role in routine urological practice.

Humans