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Search: L773:0027 8424 OR L773:1091 6490 > Södertörn University > (2010-2014) > Selenoprotein TRXR-...

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Selenoprotein TRXR-1 and GSR-1 are essential for removal of old cuticle during molting in Caenorhabditis elegans

Stenvall, Jörgen (author)
Karolinska Institutet,Umeå universitet,Institutionen för molekylärbiologi (Medicinska fakulteten),Umeå centrum för molekylär medicin (UCMM)
Fierro-Gonzalez, Juan Carlos (author)
Karolinska Institutet,Södertörns högskola,Molekylärbiologi
Swoboda, Peter (author)
Karolinska Institutet,Södertörns högskola,Molekylärbiologi
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Saamarthy, Karunakar (author)
Umeå universitet,Umeå centrum för molekylär medicin (UCMM)
Cheng, Qing (author)
Karolinska Institutet
Cacho-Valadez, Briseida (author)
Arner, Elias S. J. (author)
Persson, Olof P. (author)
Umeå universitet,Institutionen för molekylärbiologi (Medicinska fakulteten)
Miranda-Vizuete, Antonio (author)
Tuck, Simon (author)
Umeå universitet,Umeå centrum för molekylär medicin (UCMM)
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 (creator_code:org_t)
2011-01-03
2011
English.
In: Proceedings of the National Academy of Sciences of the United States of America. - : Proceedings of the National Academy of Sciences. - 0027-8424 .- 1091-6490. ; 108:3, s. 1064-1069
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Selenoproteins, in particular thioredoxin reductase, have been implicated in countering oxidative damage occurring during aging but the molecular functions of these proteins have not been extensively investigated in different animal models. Here we demonstrate that TRXR-1 thioredoxin reductase, the sole selenoprotein in Caenorhabditis elegans, does not protect against acute oxidative stress but functions instead together with GSR-1 glutathione reductase to promote the removal of old cuticle during molting. We show that the oxidation state of disulfide groups in the cuticle is tightly regulated during the molting cycle, and that when trxr-1 and gsr-1 function is reduced, disulfide groups in the cuticle remain oxidized. A selenocysteine-to-cysteine TRXR-1 mutant fails to rescue molting defects. Furthermore, worms lacking SELB-1, the C. elegans homolog of Escherichia coli SelB or mammalian EFsec, a translation elongation factor known to be specific for selenocysteine in E. coli, fail to incorporate selenocysteine, and display the same phenotype as those lacking trxr-1. Thus, TRXR-1 function in the reduction of old cuticle is strictly selenocysteine dependent in the nematode. Exogenously supplied reduced glutathione reduces disulfide groups in the cuticle and induces apolysis, the separation of old and new cuticle, strongly suggesting that molting involves the regulated reduction of cuticle components driven by TRXR-1 and GSR-1. Using dauer larvae, we demonstrate that aged worms have a decreased capacity to molt, and decreased expression of GSR-1. Together, our results establish a function for the selenoprotein TRXR-1 and GSR-1 in the removal of old cuticle from the surface of epidermal cells.

Subject headings

NATURVETENSKAP  -- Biologi -- Biokemi och molekylärbiologi (hsv//swe)
NATURAL SCIENCES  -- Biological Sciences -- Biochemistry and Molecular Biology (hsv//eng)
MEDICIN OCH HÄLSOVETENSKAP  -- Medicinska och farmaceutiska grundvetenskaper -- Cell- och molekylärbiologi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Basic Medicine -- Cell and Molecular Biology (hsv//eng)

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