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Chen Zhou

Publications and source records attributed to Chen Zhou.

2 recordsLinked to original sources

Building biofilms for saline hydrogenotrophic denitrification from contrasting origins: Convergent acclimation, divergent performance.

Hydrogenotrophic denitrification is promising for deep nitrogen removal from saline, low-C/N wastewaters, but rapid establishment of stable biofilms at high salinity remains challenging. Here, two saline-adapted inocula from two representative, functionally contrasting habitats-a functionally-diversified inoculum from mangrove sediment and a functionally-focused inoculum from seabed sediment-were acclimated in parallel H2-based membrane biofilm reactors at constant 3.5% salinity. The Diverse-derived biofilm required 80 d to reach steady state and achieved only partial denitrification with 61.1% nitrate removal and considerable nitrite accumulation. In contrast, the Focus-derived biofilm rapidly established complete denitrification within ∼40 d, which was maintained for >50 d, with effluent NOx- below 1 mg-N·L-1 and 98.7% nitrate removal. Microbiome analyses showed that identical operation promoted convergence in community structure and enriched similar community-level functional potentials. However, genome-resolved analysis revealed distinct source-dependent functional organization among dominant microbial populations. Complete denitrifiers co-encoding denitrifying, hydrogenotrophic, and autotrophic functions were preferentially enriched in the Focus-derived biofilm, whereas these functions remained partitioned among different dominant populations in the Diverse-derived biofilm, coinciding with less complete denitrification. These findings indicate that saline hydrogenotrophic denitrification performance depends not only on which functions are enriched at the community level, but also on how key functions become organized among microbial populations, providing a previously overlooked criterion for inoculum selection in saline biological nitrogen control.

Complete denitrification

DNA hypomethylation of the OLFM1 gene in patients with depression.

OBJECTIVE: Depression is a heterogeneous psychiatric disorder and a growing public health concern, characterized by its high prevalence, recurrence rate, and association with suicide. There is evidence suggesting that both genetic susceptibility and environmental factors can regulate gene expression through DNA methylation, thereby influencing the occurrence and development of depression. The olfactory sensory neuropeptide 1 (OLFM1) protein is a risk factor for mental disorders. However, there are no reports yet regarding the correlation between the OLFM1 gene and depression, nor have there been any studies on the association between OLFM1 gene DNA methylation and depression. METHODS: Genomic DNA was extracted from peripheral blood samples of patients with depression (n = 100) and healthy controls (n = 100) using the QIAamp DNA Blood Mini Kit. Subsequently, the extracted genomic DNA was subjected to bisulfite treatment using the EZ DNA Methylation-Gold™ kit. DNA methylation levels of 107 CpG sites in six fragments of OLFM1 exon 1 and its downstream were detected by the Illumina HiSeq platform using MethylTarget™ technology. RESULTS: Methylation levels across the overall OLFM1 CpG island and its six fragments (OLFM1-1 to OLFM1-6) were significantly reduced in the depression group relative to controls. Analysis of the OLFM1 gene fragments revealed that 84 of 107 CpG sites were significantly hypomethylated in depressed individuals. When patients were divided by sex, male patients displayed hypomethylation at 65 CpG sites, substantially more than the 37 sites found in females. CONCLUSION: OLFM1 hypomethylation is associated with depression and may serve as a potential epigenetic biomarker.

Humans