Loading-Induced Stress Response in the Intervertebral Disc

2014 ◽  
Vol 4 (1_suppl) ◽  
pp. s-0034-1376604-s-0034-1376604
Author(s):  
W. H. Chooi ◽  
S. C. Chan ◽  
B. Gantenbein-Ritter ◽  
B. P. Chan
2021 ◽  
pp. 2001219
Author(s):  
Ajmol Ali ◽  
Sunali Mehta ◽  
Carlene Starck ◽  
Marie Wong ◽  
Wendy J. O'Brien ◽  
...  

2016 ◽  
Vol 6 (1_suppl) ◽  
pp. s-0036-1582604-s-0036-1582604
Author(s):  
Wai Hon Chooi ◽  
Samantha C. W. Chan ◽  
Benjamin Gantenbein ◽  
Barbara P. Chan

2018 ◽  
Vol 1 (4) ◽  
pp. e201800113 ◽  
Author(s):  
Maximilian Anders ◽  
Irina Chelysheva ◽  
Ingrid Goebel ◽  
Timo Trenkner ◽  
Jun Zhou ◽  
...  

Reversible post-transcriptional modifications on messenger RNA emerge as prevalent phenomena in RNA metabolism. The most abundant among them is N6-methyladenosine (m6A) which is pivotal for RNA metabolism and function; its role in stress response remains elusive. We have discovered that in response to oxidative stress, transcripts are additionally m6A modified in their 5′ vicinity. Distinct from that of the translationally active mRNAs, this methylation pattern provides a selective mechanism for triaging mRNAs from the translatable pool to stress-induced stress granules. These stress-induced newly methylated sites are selectively recognized by the YTH domain family 3 (YTHDF3) “reader” protein, thereby revealing a new role for YTHDF3 in shaping the selectivity of stress response. Our findings describe a previously unappreciated function for RNA m6A modification in oxidative-stress response and expand the breadth of physiological roles of m6A.


2020 ◽  
Vol 10 (1) ◽  
Author(s):  
Yolanda Elisabet González-Flores ◽  
Rubén de Dios ◽  
Francisca Reyes-Ramírez ◽  
Eduardo Santero

AbstractSphingopyxis granuli strain TFA is able to grow on the organic solvent tetralin as the only carbon and energy source. The aerobic catabolic pathway for tetralin, the genes involved and their regulation have been fully characterised. Unlike most of the bacteria belonging to the sphingomonads group, this strain is able to grow in anoxic conditions by respiring nitrate, though not nitrite, as the alternative electron acceptor. In this work, two fnr-like genes, fnrN and fixK, have been identified in strain TFA. Both genes are functional in E. coli and Sphingopyxis granuli although fixK, whose expression is apparently activated by FnrN, seems to be much less effective than fnrN in supporting anaerobic growth. Global transcriptomic analysis of a ΔfnrN ΔfixK double mutant and identification of Fnr boxes have defined a minimal Fnr regulon in this bacterium. However, expression of a substantial number of anaerobically regulated genes was not affected in the double mutant. Additional regulators such regBA, whose expression is also activated by Fnr, might also be involved in the anaerobic response. Anaerobically induced stress response genes were not regulated by Fnr but apparently induced by stress conditions inherent to anaerobic growth, probably due to accumulation of nitrite and nitric oxide.


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