Preparation of pH-sensitive carboxymethyl cellulose/chitosan/alginate hydrogel beads with reticulated shell structure to deliver Bacillus subtilis natto

Author(s):  
Mengmeng Wang ◽  
Yipeng Zang ◽  
Kangjin Hong ◽  
Xiaofeng Zhao ◽  
Chenrui Yu ◽  
...  
2015 ◽  
Vol 8 (3) ◽  
pp. 355-365 ◽  
Author(s):  
Mohamed S. Mohy Eldin ◽  
Elbadawy A. Kamoun ◽  
Mamdouh A. Sofan ◽  
Smaher M. Elbayomi

2016 ◽  
Vol 93 ◽  
pp. 1317-1327 ◽  
Author(s):  
Zhila Zare-Akbari ◽  
Hassan Farhadnejad ◽  
Behrouz Furughi-Nia ◽  
Saeedeh Abedin ◽  
Mehdi Yadollahi ◽  
...  

AMB Express ◽  
2013 ◽  
Vol 3 (1) ◽  
pp. 36 ◽  
Author(s):  
Aditya R Bhat ◽  
Victor U Irorere ◽  
Terry Bartlett ◽  
David Hill ◽  
Gopal Kedia ◽  
...  

2014 ◽  
Vol 501-504 ◽  
pp. 1535-1541 ◽  
Author(s):  
Jue Hui Xing ◽  
Ming Lu ◽  
Hai Wang Li ◽  
Ya Min Zhao ◽  
Yan Yu

People remained optimistic about the safety of the space grid structures, because the seismic damages of space grid structures were quite rare and rather light. However, two space grid structures got damaged in 2013 Lushan Ms 7.0 earthquake. The two structures are the double-layer reticulated shell structure and flatbed grid structure, namely Lushan Gymnasium and Lushan Middle School Gymnasium respectively. This paper briefly reviews the seismic damage phenomena of grid structures in historical earthquakes, and then focuses on the two damaged space grid structures in Lushan earthquake. The reason why the two space grid structures got damaged are derived from the force state analysis of the rods, ball joints and bearings. Finally, we come up with the effective advice for the seismic design and construction of the space grid structure.


2017 ◽  
Vol 105 ◽  
pp. 924-930 ◽  
Author(s):  
Yang Li ◽  
Chao Feng ◽  
Jing Li ◽  
Yuzhi Mu ◽  
Ya Liu ◽  
...  

Animals ◽  
2021 ◽  
Vol 11 (6) ◽  
pp. 1519
Author(s):  
Meinan Chang ◽  
Fengtao Ma ◽  
Jingya Wei ◽  
Junhao Liu ◽  
Xuemei Nan ◽  
...  

Previous studies have shown that Bacillus subtilis natto affects rumen fermentation and rumen microbial community structure, which are limited to detect a few microbial abundances using traditional methods. However, the regulation of B. subtilis natto on rumen microorganisms and the mechanisms of microbiota that affect rumen fermentation is still unclear. This study explored the effects of live and autoclaved B. subtilis natto on ruminal microbial composition and diversity in vitro using 16S rRNA gene sequencing and the underlying mechanisms. Rumen fluid was collected, allocated to thirty-six bottles, and divided into three treatments: CTR, blank control group without B. subtilis natto; LBS, CTR with 109 cfu of live B. subtilis natto; and ABS, CTR with 109 cfu of autoclaved B. subtilis natto. The rumen fluid was collected after 0, 6, 12, and 24 h of fermentation, and pH, ammonia nitrogen (NH3-N), microbial protein (MCP), and volatile fatty acids (VFAs) were determined. The diversity and composition of rumen microbiota were assessed by 16S rRNA gene sequencing. The results revealed LBS affected the concentrations of NH3-N, MCP, and VFAs (p < 0.05), especially after 12 h, which might be attributed to changes in 18 genera. Whereas ABS only enhanced pH and NH3-N concentration compared with the CTR group (p < 0.05), which might be associated with changes in six genera. Supplementation with live B. subtilis natto improved ruminal NH3-N and propionate concentrations, indicating that live bacteria were better than autoclaved ones. This study advances our understanding of B. subtilis natto in promoting ruminal fermentation, providing a new perspective for the precise utilization of B. subtilis natto in dairy rations.


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