TXNL1 has dual functions as a redox active thioredoxin-like protein as well as an ATP- and redox-independent chaperone.

Redox Biol

Department of Selenoprotein Research and the National Tumor Biology Laboratory, National Institute of Oncology, 1122, Budapest, Hungary; Division of Biochemistry, Department of Medical Biochemistry, Karolinska Institutet, SE-171 77, Stockholm, Sweden. Electronic address:

Published: November 2023


Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

TXNL1 (also named TRP32, for thioredoxin related protein of 32 kDa) is a cytosolic thioredoxin-fold protein expressed in all cell types and conserved from yeast to mammals, but with yet poorly known function. Here, we expressed and purified human TXNL1 together with several Cys-to-Ser variants, characterizing their enzymatic properties. TXNL1 could reduce disulfides in insulin, cystine and glutathione disulfide (GSSG) in reactions coupled to thioredoxin reductase (TXNRD1, TrxR1) using NADPH, similarly to thioredoxin (TXN, Trx1), but with lower catalytic efficacy due to at least one order of magnitude higher K of TrxR1 for TXNL1 compared to Trx1. However, in sharp contrast to Trx1, we found that TXNL1 also had efficient chaperone activity that did not require ATP. TXNL1 made non-covalent complexes with reduced insulin, thereby keeping it in solution, and TXNL1 provided chaperone function towards whole cell lysate proteins by preventing their aggregation during heating. The chaperone activities of TXNL1 did not require its redox activity or any dithiol-disulfide exchange reactions, as revealed using Cys-to-Ser substituted variants, as well as a maintained chaperone activity of TXNL1 also in the absence of TrxR1 and NADPH. These results reveal that TXNL1 has dual functions, supporting TrxR1-driven redox activities in disulfide reduction reactions, as well as being an ATP-independent chaperone that does not require involvement of its redox activity.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10570131PMC
http://dx.doi.org/10.1016/j.redox.2023.102897DOI Listing

Publication Analysis

Top Keywords

txnl1
11
txnl1 dual
8
dual functions
8
trxr1 nadph
8
chaperone activity
8
redox activity
8
chaperone
6
redox
4
functions redox
4
redox active
4

Similar Publications

Proteasomes degrade diverse proteins in different cellular contexts through incompletely defined regulatory mechanisms. Here we report the cryo-EM structure of human thioredoxin-like protein 1 (TXNL1) bound to the 19S regulatory particle of proteasomes via interactions with PSMD1 (Rpn2), PSMD4 (Rpn10) and PSMD14 (Rpn11). Proteasome binding is necessary for the ubiquitin-independent degradation of TXNL1 upon cellular exposure to metal- or metalloid-containing oxidative agents, thereby establishing a structural requirement for the stress-induced degradation of TXNL1.

View Article and Find Full Text PDF

Structures of dynamic interactors at native proteasomes by PhIX-MS and cryoelectron microscopy.

bioRxiv

August 2025

Structural System Biology Section, Center for Structural Biology, Center for Cancer Research, National Cancer Institute (NCI), National Institutes of Health, Frederick, MD 21702-1201, USA.

Proteasome function depends on a network of transient interactions that remain structurally and functionally unresolved. We developed PhIX-MS (Photo-induced In situ Crosslinking-Mass Spectrometry), a structural proteomics workflow that stabilizes transient interactions in cells by UV-activated crosslinking to capture topological information. Applying PhIX-MS with cryo-electron microscopy (cryo-EM), we mapped redox sensor TXNL1 at the proteasome regulatory particle (RP), placing its PITH domain above deubiquitinase RPN11 and resolving its dynamic thioredoxin domain near RPN2/PSMD1 and RPN13/ADRM1, ideally located to reduce substrates prior to proteolysis.

View Article and Find Full Text PDF

Mutational analysis of TXNRD1 reveals the essential role of Trp in TRP14 reduction and identifies key determinants of enzymatic activity and thermostability.

Free Radic Biol Med

October 2025

Liaoning Key Laboratory of Chemical Additive Synthesis and Separation (CASS) & School of Chemical Engineering, Ocean Technology and Life Science (CEOTLS) & Panjin Institute of Industrial Technology (PIIT), Dalian University of Technology, Panjin, 124221, China. Electronic address:

Cytosolic thioredoxin reductase (TXNRD1) is a key selenoenzyme involved in cellular redox regulation and antioxidant defense. Elucidating the catalytic mechanism of TXNRD1 and its conserved residues or domains is crucial for drug discovery and development. In this study, we investigated the functional roles of several conserved residues in TXNRD1, including Trp, Tyr, and residues in the guiding bar motif, and the catalytic C-terminal domain.

View Article and Find Full Text PDF

PANoptosis is involved in various pathological processes, but its role in acute myocardial infarction (AMI) remains unclear. This study aimed to explore the mechanism by which PANoptosis is involved in AMI. GSE172270 was used as an internal test set, and GSE159657 served as an external validation set to identify disease targets for AMI.

View Article and Find Full Text PDF

The reproductive characteristics of Hanwoo play a significant role in farm profitability by decreasing the generation interval. This study analyzed 1015 primiparous and 916 multiparous cows using a genome-wide association study with both single-locus (GEMMA, GCTA) and multi-locus models (FarmCPU, BLINK). A significant marker for age at first service was identified across all methods.

View Article and Find Full Text PDF