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Dive into the research topics where Xiaoshan Jia is active.

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Featured researches published by Xiaoshan Jia.


Water Research | 2011

Characterization of the size-fractionated biomacromolecules: Tracking their role and fate in a membrane bioreactor

Fangang Meng; Zhongbo Zhou; Bing-Jie Ni; Xing Zheng; Guocheng Huang; Xiaoshan Jia; Shiyu Li; Ya Xiong; Matthias Kraume

This article presents a study aimed at the fractionation and characterization of what is thought to be one of the most complex organic mixtures produced by activated sludge: biomacromolecules (BMM). Photometric quantification combined with excitation-emission matrix (EEM) fluorescence spectroscopy and nuclear magnetic resonance (NMR) measurements were used to characterize BMM in a membrane bioreactor (MBR) from a chemical perspective. Overall, the BMM in sludge supernatant were mainly present in three fractions: colloidal BMM (BMMc, >0.45 μm), biopolymeric BMM (BMMb, 0.45 μm-100 kDa) and low molecular weight (MW) fraction (<5 kDa). The analysis of fluorescence regional integration (FRI) showed that the organics in membrane permeate and those in the low-MW fraction of sludge supernatant were of similar chemical composition. The characterization by NMR suggested that the BMMc fraction had similar carbon content of proteins and polysaccharides. In contrast, the BMMb and the low-MW BMM were proved to be carbonaceous and aromatics, respectively. Moreover, because of the high MW and gelling property, polysaccharides were found to have a high potential to accumulate on the membranes. In addition, the lipids present in the BMMb of the sludge supernatant were demonstrated to be another important foulant due to their large size. Our results also indicated that aromatic proteins had a higher fouling propensity than tryptophan proteins though they were of similar size nature. This work could be useful for better understanding of the chemical nature of BMMs in MBRs.


PLOS ONE | 2012

Microbial transformation of biomacromolecules in a membrane bioreactor: implications for membrane fouling investigation.

Zhongbo Zhou; Fangang Meng; So-Ryong Chae; Guocheng Huang; Wenjie Fu; Xiaoshan Jia; Shiyu Li; Guanghao Chen

Background The complex characteristics and unclear biological fate of biomacromolecules (BMM), including colloidal and soluble microbial products (SMP), extracellular polymeric substances (EPS) and membrane surface foulants (MSF), are crucial factors that limit our understanding of membrane fouling in membrane bioreactors (MBRs). Findings In this study, the microbial transformation of BMM was investigated in a lab-scale MBR by well-controlled bioassay tests. The results of experimental measurements and mathematical modeling show that SMP, EPS, and MSF had different biodegradation behaviors and kinetic models. Based on the multi-exponential G models, SMP were mainly composed of slowly biodegradable polysaccharides (PS), proteins (PN), and non-biodegradable humic substances (HS). In contrast, EPS contained a large number of readily biodegradable PN, slowly biodegradable PS and HS. MSF were dominated by slowly biodegradable PS, which had a degradation rate constant similar to that of SMP-PS, while degradation behaviors of MSF-PN and MSF-HS were much more similar to those of EPS-PN and EPS-HS, respectively. In addition, the large-molecular weight (MW) compounds (>100 kDa) in BMM were found to have a faster microbial transformation rate compared to the small-MW compounds (<5 kDa). The parallel factor (PARAFAC) modeling of three-dimensional fluorescence excitation-emission matrix (EEM) spectra showed that the tryptophan-like PN were one of the major fractions in the BMM and they were more readily biodegradable than the HS. Besides microbial mineralization, humification and hydrolysis could be viewed as two important biotransformation mechanisms of large-MW compounds during the biodegradation process. Significance The results of this work can aid in tracking the origin of membrane foulants from the perspective of the biotransformation behaviors of SMP, EPS, and MSF.


RSC Advances | 2012

Role of microorganism growth phase in the accumulation and characteristics of biomacromolecules (BMM) in a membrane bioreactor

Zhongbo Zhou; Fangang Meng; Shuang Liang; Bing-Jie Ni; Xiaoshan Jia; Shiyu Li; Yankai Song; Guocheng Huang

The objective of this study was to highlight the significance of microorganism growth on the production of biomacromolecules (BMM) in a membrane bioreactor (MBR). During the MBR operation, both polysaccharides and proteins in the sludge supernatant were found to increase steadily in exponential growth phase (EGP) due to higher organic loading rates and microbial primary metabolism. Subsequently, both increased continuously and then decreased sharply in the following deceleration growth phase (DGP). Finally, the BMM maintained a low and steady level as the sludge reached stationary growth phase (SGP). The results of batch experiments showed that the sludge under DGP was prone to produce much more BMM than that under SGP as a result of a nutrients decrease and higher microbial secondary metabolism activities. Furthermore, large-molecular weight (MW) compounds (>100 kDa) made up the majority of BMM in the EGP and DGP. In contrast, the small-MW compounds (<5 kDa) became a more and more important BMM fraction as the microorganism growth shifted to the SGP. The characterization by three-dimensional excitation-emission matrix (EEM) fluorescence spectroscopy indicated that the fluorescence compounds in the BMM pool were mainly comprised of aromatic and tryptophan protein-like substances, and humic substances. The protein-like substances were related with microorganism growth more greatly than the humic substances. Generally, the microorganism physiological stages (i.e.growth/decay) play a crucial role in the formation of BMM in the MBRs.


Frontiers in Microbiology | 2018

Debromination of hexabromocyclododecane by anaerobic consortium and characterization of functional bacteria

Xingxing Peng; Dongyang Wei; Qiyuan Huang; Xiaoshan Jia

A microbial consortium which can efficiently remove hexabromocyclododecane (HBCD) under anaerobic condition have been successfully enriched over 300 days. Under the optimal conditions, the degradation efficiency was 92.4% removal after treatment of 12 days with original addition of 500 μg/L HBCD, yielding 321.7 μg/L bromide in total as well. A typical debromination product, dibromocyclododecadiene (DBCD), was detected during the degradation process. The debromination profiles of three main HBCD diastereomers fitted well with first-order model (R2: 0.96–0.99), with the rate constants ranging from 1.3 × 10-1 to 1.9 × 10-1. The microbial community analysis by high throughput sequencing showed that the composition of the microbial communities varied dynamically with time and the population of functional bacteria increase sharply after enrichment. The population of Bacteroidetes increased from 5 to 47%. And some bacteria which are relatively minority in population at the beginning, such as Azospira oryzae (OTU2), Microbacterium (OTU13), and Achromobacter insolitus (OTU39) increased more than 22 times after enrichment (from 0.5 to 13%, 12%, and 11%, respectively). However, no reported dehalogenating bacteria were found after enrichment. And the contribution for debromination may come from new dehalogenating bacteria. All in all, the present study provided in-depth information on anaerobic microbial communities for HBCD removal by debromination.


Journal of Environmental Sciences-china | 2017

Biodegradation of tetrabromobisphenol A in the sewage sludge process

Xingxing Peng; Zhangna Wang; Dongyang Wei; Qiyuan Huang; Xiaoshan Jia

Anaerobic sewage sludge capable of rapidly degrading tetrabromobisphenol A (TBBPA) was successfully acclimated in an anaerobic reactor over 280days. During the period from 0 to 280days, the TBBPA degradation rate (DR), utilization of glucose, and VSS were monitored continuously. After 280days of acclimation, the TBBPA DR of active sludge reached 96.0% after 20days of treatment in batch experiments. Based on scanning electron microscopy (SEM) observations and denaturing gradient gel electrophoresis (DGGE) determinations, the diversity of the microorganisms after 0 and 280days in the acclimated anaerobic sewage sludge was compared. Furthermore, eleven metabolites, including 2-bromophenol, 3-bromophenol, 2,4-dibromophenol, 2,6-dibromophenol, tribromophenol and bisphenol A, were identified by gas chromatography-mass spectrometry (GC-MS). Moreover, the six primary intermediary metabolites were also well-degraded by the acclimated anaerobic sewage sludge to varying degrees. Among the six target metabolites, tribromophenol was the most preferred substrate for biodegradation via debromination. These metabolites degraded more rapidly than monobromide and bisphenol A. The biodegradation data of the intermediary metabolites exhibited a good fit to a pseudo-first-order model. Finally, based on the metabolites, metabolic pathways were proposed. In conclusion, the acclimated microbial consortia degraded TBBPA and its metabolites well under anaerobic conditions.


Chemical Engineering Journal | 2017

Degradation of TBBPA and BPA from aqueous solution using organo-montmorillonite supported nanoscale zero-valent iron

Xingxing Peng; Ye Tian; Shengwei Liu; Xiaoshan Jia


Journal of Membrane Science | 2014

Simultaneous alkali supplementation and fouling mitigation in membrane bioreactors by on-line NaOH backwashing

Zhongbo Zhou; Fangang Meng; Hui Lu; Yue Li; Xiaoshan Jia; Xiang He


Environmental Science & Technology | 2015

Metaproteomic Analysis of Biocake Proteins To Understand Membrane Fouling in a Submerged Membrane Bioreactor

Zhongbo Zhou; Fangang Meng; Xiang He; So-Ryong Chae; Yujia An; Xiaoshan Jia


Aiche Journal | 2013

A novel nearly plug‐flow membrane bioreactor for enhanced biological nutrient removal

Fangang Meng; Zhongbo Zhou; Lei Li; Ruiyun Li; Xiaoshan Jia; Shiyu Li


Water Research | 2017

Efficient degradation of tetrabromobisphenol A by synergistic integration of Fe/Ni bimetallic catalysis and microbial acclimation

Xingxing Peng; Zhangna Wang; Jingfei Huang; Barry R. Pittendrigh; Shengwei Liu; Xiaoshan Jia; Po Keung Wong

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Shiyu Li

Sun Yat-sen University

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Hui Lu

Sun Yat-sen University

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Xiang He

Sun Yat-sen University

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