Search bioRxivSearch

Biology subjects

Chang, Z.

Publications and source records attributed to Chang, Z..

4 recordsLinked to original sources

Regrowth-delay Body as a Bacterial Subcellular Structure marking multidrug tolerant Persisters

Bacteria have long been recognized to be capable of entering a phenotypically non-growing persister state, in which the cells exhibit an extended regrowth lag and a multidrug tolerance, thus posing a great challenge in treating infectious diseases. Owing to their non-inheritability, low abundance of existence, lack of metabolic activities, and high heterogeneity, properties of persisters remain poorly understood. Here, we report our accidental discovery of a hitherto unreported subcellular structure that we term the regrowth-delay body, which is formed only in non-growing bacterial cells and sequesters multiple key proteins. As of now, this structure, that dissolves when the cell resumes growth, is the most distinguishable subcellular structure marking persisters. Our studies also indicate that persisters exhibit different depth of persistence, as determined by the status of their regrowth-delay bodies. Our findings imply that suppressing the formation and/or promoting the dissolution of regrowth-delay bodies could be viable strategies for eradicating persisters.

microbiology

Absence of GdX/UBL4A protects against inflammatory bowel diseases by regulating NF-κB signaling in DCs and macrophages

Nuclear factor-kappa B (NF-{kappa}B) activation is critical for innate immune responses. Here we report that the UBL4A (Ubiquitin-like protein 4A, also named GdX) enhances dendritic cells (DCs) and macrophages (M{varphi})-mediated innate immune defenses by positively regulating NF-{kappa}B signaling. GdX-deficient mice were resistant to LPS-induced endotoxin shock and DSS-induced colitis. DC- or M{varphi}-specific GdX-deficient mice displayed alleviated mucosal inflammation, and the production of pro-inflammatory cytokines by GdX-deficient DCs and M{varphi} was reduced. Mechanistically, we found that PTPN2 (TC45) and PP2A form a complex with RelA (p65) to mediate its dephosphorylation whereas GdX interrupts the TC45/PP2A/p65 complex formation and restrict p65 dephosphorylation by trapping TC45. Our study provides a mechanism by which NF-{kappa}B signaling is positively regulated by an adaptor protein GdX in DC or M{varphi} to maintain the innate immune response. Targeting GdX could be a strategy to reduce over-activated immune response in inflammatory diseases.

immunology

A Shortened Version Of SecA (SecAN) Functions As The Protein-Conducting Channel For Nascent β-Barrel Outer Membrane Proteins

Many proteins are translocated across biomembranes via protein translocons in targeting to their subcellular destinations. Hitherto, the SecYEG/Sec61 translocon, existing in prokaryotes and eukaryotes, represents the most intensively studied one. According to the current perception, both periplasmic and {beta}-barrel outer membrane proteins ({beta}-barrel OMPs) are translocated via the SecYEG translocon in bacterial cells, although direct living cell evidences remain lacking. Here, mainly via in vivo protein photo-crosslinking analysis, we revealed that the never reported membrane-integrated SecAN protein apparently functions as the translocon for {beta}-barrel OMPs. Additionally, SecAN contains a GXXXG motif known for mediating protein interactions in biomembranes, and processing of {beta}-barrel OMP precursors was severely affected in cells producing an assembly-defective SecAN variant resulted from the GXXXG motif mutations. Furthermore, SecAN was demonstrated to directly interact with the Bam complex, thus likely be a part of the supercomplex that we revealed earlier to be responsible for {beta}-barrel OMP biogenesis.

biochemistry

An Organelle-like Structure Correlated with the Quiescent State of Bacterial Cells

Bacterial cells take a variable lag time and maintain a multi-drug tolerant non-growing state before resuming growth when encountering growth-supportive conditions. Some of them exhibit an extraordinarily long lag, as pathogenic persisters do. It remains unknown on what determines lag time duration. Here, we unveiled a subcellular structure, termed quiescent body, that is formed in bacterial cells entering non-growing state and sequesters selected proteins essential for cell growth. Their formation occurs progressively in each cell and heterogeneously among individual cells. They only dissolve in re-growing cells to release proteins for immediate re-functioning when conditions become fit. Quiescent body, whose degree of formation is highly correlated with duration of lag time or level of antibiotic tolerance, apparently functions as a biological timer for bacterial growth resumption. Further, suppressing their formation, which directly relies on cellular respiration complexes, or promoting their dissolution might be a viable strategy to eradicate persisters.

microbiology