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ZHANG, G.

Publications and source records attributed to ZHANG, G..

2 recordsLinked to original sources

Phosphate limitation triggers Fe3+-dependent polymyxin resistance in Enterobacteriaceae

Phosphate (Pi) scarcity, a pervasive stressor prevalent in bacterial infections and dysbiotic host environments, potently drives antimicrobial resistance (AMR) against cationic antibiotics like polymyxins across diverse bacterial taxa. While established Pi depletion-induced AMR mechanisms often involve membrane phospholipid remodelling, Enterobacteriaceae largely lack these pathways, leaving their Pi scarcity-driven AMR mechanism unresolved. Here, we reveal that Pi limitation robustly induces polymyxin resistance in Enterobacteriaceae through 4-amino-4-deoxy-L-arabinose (L-Ara4N) modification of the Gram-negative outer membrane component lipid A, reflecting a distinct adaptive strategy. This modification is driven by strong ugd-arn operon induction, mediated by the PmrAB two-component system. We discover that Pi depletion triggers cellular Mg{superscript 2} release, prompting compensatory Fe3 mobilization to the cell envelope that directly activates PmrAB. Crucially, this metal-dependent signaling axis offers a directly targetable mechanism for reversing polymyxin resistance, a significant deviation from the less accessible, PhoBR-regulated phospholipid remodelling strategies in other bacteria. We demonstrate that Mg{superscript 2} supplementation or Fe3 chelation effectively suppresses PmrAB activation and restores polymyxin susceptibility, thereby establishing a novel, metal-centric paradigm for understanding and pharmacological intervention in stress-induced AMR.

microbiology↗

Casein kinase II promotes piRNA production through direct phosphorylation of USTC component TOFU-4

Piwi-interacting RNAs (piRNAs) are genomically encoded small RNAs that engage Piwi Argonaute proteins to direct mRNA surveillance and transposon silencing. Despite advances in understanding piRNA pathways and functions, how the production of piRNA is regulated remains elusive. Here, using a genetic screen, we identify casein kinase II (CK2) as a factor required for piRNA pathway function. We show that CK2 is required for the localization of PRG-1 and for the proper localization of several factors that comprise the upstream sequence transcription complex (USTC), which is required for piRNA transcription. Loss of CK2 impairs piRNA levels suggesting that CK2 promotes USTC function. We identify the USTC component twenty-one-U fouled-up 4 (TOFU-4) as a direct substrate for CK2. Our findings suggest that phosphorylation of TOFU-4 by CK2 promotes the assembly of USTC and piRNA transcription. Notably, during the aging process, CK2 activity declines, resulting in the disassembly of USTC, decreased piRNA production, and defects in piRNA-mediated gene silencing, including transposons silencing. These findings highlight the significance of posttranslational modification in regulating piRNA biogenesis and its implications for the aging process. Overall, our study provides compelling evidence for the involvement of a posttranslational modification mechanism in the regulation of piRNA biogenesis.

cell biology↗