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Li Wei

Publications and source records attributed to Li Wei.

3 recordsLinked to original sources

Air contamination and cross-room transmission of carbapenem resistant Acinetobacter baumannii in ICU.

Air contamination of carbapenem-resistant Acinetobacter baumannii (CRAB) was investigated in an ICU with genome sequencing. CRAB was recovered from air samples (n=13) and patients (n=9) and belonged to ST2 (n=16) or ST164 (n=6). Four of the 9 ST2 clones were associated with transmission through the air within rooms or cross-room. All ST164 isolates belonged to a common clone and were found in two rooms. CRAB air dispersal may cause cross-room transmission at a long distance.

Acinetobacter baumannii

Enhanced invasiveness promotes the dominance of a widely-distributed carbapenem-resistant virulence-plasmid-carrying Klebsiella pneumoniae sublineage.

Carbapenem-resistant Klebsiella pneumoniae (CRKP), a WHO's critical priority pathogen, continuously evolves to generate health-threatening high-risk (sub)lineages. Here, we conducted a 10-year surveillance of nosocomial CRKP infections, collecting and whole-genome sequencing 1513 clinical isolates, accompanied by clinical data. We applied fine-scale genome analysis for 60,724 non-local public-available K. pneumoniae genomes. We identified a predominant ST11-KL64 sublineage widely-disseminated across China and internationally-distributed. Isolates of this sublineage were more frequently recovered during seasonal influenza peaks and harbored plasmids encoding 'hypervirulence' factors but caused no increase in patient mortality. Instead, they exhibited enhanced invasiveness and translocation capacity. Mechanistically, this suggested highly invasive CRKP (hiCRKP) sublineage showed elevated resistance to macrophage-mediated phagocytosis, partly due to the virulence-encoding plasmid and the loss of two chromosomal fimD gene copies. Additionally, hiCRKP isolates carried more antimicrobial resistance genes, resulting in enhanced resistance to clinically important quinolones and tetracyclines. To address the hiCRKP-imposed challenge, we constituted a phage cocktail, which significantly improved survival in a murine infection model. Our findings unveil a clinically-relevant high-risk sublineage resulted from the ongoing evolutionary diversification of CRKP. Importantly, the 'hypervirulent' CRKP is more potent to cause diseases rather than the thought-to-be more deaths, explaining its rapid emergence in healthcare settings.

Klebsiella pneumoniae

Epitranscriptomic reprogramming in response to low CO2 stress and m6A engineering to enhance biomass production in Nannochloropsis oceanica.

N6-adenine methylation (m6A) as an epitranscriptomic mark is the most abundant modification in eukaryotic RNA and plays a dynamically regulated role. However, m6A dynamics, deposition and engineering in microalgae remain largely unknown. Here, in Nannochloropsis oceanica, the dynamic alterations and reprogramming in m6A RNA modifications after the shift from high to low CO2 conditions were first investigated using methylated RNA immunoprecipitation sequencing. The m6A peaks in N. oceanica were mainly enriched in 3'UTR. A positive association between m6A abundance and mRNA transcription of CO2-responsive genes was observed; moreover, N. oceanica cells adopted versatile strategies in a dynamic reprogramming of m6A in response to low CO2 stress. Secondly, knockout of two putative m6A methylases including NoMTA (NO04G02990) and NoMTB (NO07G02450) by genome editing induced methylation reprogramming, which was associated with expression changes of low-CO2 responsive genes such as carbon/nitrogen metabolism, and photorespiration genes that underlie reductions in growth and biomass. Lastly, m6A modification reprogramming was first engineered to increase low-CO2 stress tolerance and biomass productivity by the CRISPR/dCas13 system combined with MTA and NoMTB under low CO2 in N. oceanica. Therefore, these strides would pave the way for microalgal epigenetics and future industrial applications.

Microalgae