: Heavy metals (HMs) are naturally occurring elements which can be essential, such as zinc, copper, and iron, or non-essential, including cadmium, mercury, and lead. While essential metals serve as cofactors in critical enzymatic processes, elevated concentrations of both essential and non-essential HMs pose severe toxicity risks, primarily through oxidative stress, disruption of metal homeostasis, and biomolecular damage. Microorganisms have evolved diverse mechanisms to cope with metal-induced stress, including metal sequestration, enzymatic transformation, efflux systems, and surface immobilization. Among these, metallothioneins (Mts) are small, cysteine-rich proteins capable of high-affinity metal binding, contributing to cellular detoxification. Although Mts have been extensively studied in eukaryotes, knowledge of bacterial Mts remains limited, with characterized examples largely confined to cyanobacteria and a few other bacterial species. In this study, we identified a novel hybrid protein, TrxA, from Runella aurantiaca, containing a thioredoxin (Trx) domain fused to a Mt domain. The presence of the Trx domain may confer improved stability and solubility, supporting potential recombinant applications. In fact, the recombinant protein, named TrxMt, was heterologously expressed in Escherichia coli, displaying both disulfide-reducing activity and heavy metal-binding capability. Notably, TrxMt expression enhanced bacterial tolerance to multiple HMs, demonstrating its functional relevance in vivo. These findings expand the understanding of bacterial Mt diversity and suggest that TrxMt is a promising candidate for the bioremediation of heavy metal-contaminated environments, combining metal detoxification with favorable biochemical properties for industrial and environmental applications. KEY POINTS: • Identification of TrxA, a novel hybrid thioredoxin-metallothionein in R. aurantiaca • Recombinant protein TrxMt shows reductase activity and binds HMs • Overexpression of TrxMt enhances tolerance to different HMs in E. coli.

Identification and characterization of TrxA: a novel bacterial thioredoxin-metallothionein chimera

Pirone, Luciano;Pedone, Emilia;
2026

Abstract

: Heavy metals (HMs) are naturally occurring elements which can be essential, such as zinc, copper, and iron, or non-essential, including cadmium, mercury, and lead. While essential metals serve as cofactors in critical enzymatic processes, elevated concentrations of both essential and non-essential HMs pose severe toxicity risks, primarily through oxidative stress, disruption of metal homeostasis, and biomolecular damage. Microorganisms have evolved diverse mechanisms to cope with metal-induced stress, including metal sequestration, enzymatic transformation, efflux systems, and surface immobilization. Among these, metallothioneins (Mts) are small, cysteine-rich proteins capable of high-affinity metal binding, contributing to cellular detoxification. Although Mts have been extensively studied in eukaryotes, knowledge of bacterial Mts remains limited, with characterized examples largely confined to cyanobacteria and a few other bacterial species. In this study, we identified a novel hybrid protein, TrxA, from Runella aurantiaca, containing a thioredoxin (Trx) domain fused to a Mt domain. The presence of the Trx domain may confer improved stability and solubility, supporting potential recombinant applications. In fact, the recombinant protein, named TrxMt, was heterologously expressed in Escherichia coli, displaying both disulfide-reducing activity and heavy metal-binding capability. Notably, TrxMt expression enhanced bacterial tolerance to multiple HMs, demonstrating its functional relevance in vivo. These findings expand the understanding of bacterial Mt diversity and suggest that TrxMt is a promising candidate for the bioremediation of heavy metal-contaminated environments, combining metal detoxification with favorable biochemical properties for industrial and environmental applications. KEY POINTS: • Identification of TrxA, a novel hybrid thioredoxin-metallothionein in R. aurantiaca • Recombinant protein TrxMt shows reductase activity and binds HMs • Overexpression of TrxMt enhances tolerance to different HMs in E. coli.
2026
Istituto di Biostrutture e Bioimmagini - IBB - Sede Napoli
Bioremediation
Heavy metals
Metallothionein
Thioredoxin
File in questo prodotto:
File Dimensione Formato  
Vitiello_A_Appl_Microbiol_Biotechnol_2026.pdf

accesso aperto

Tipologia: Versione Editoriale (PDF)
Licenza: Creative commons
Dimensione 1.69 MB
Formato Adobe PDF
1.69 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/599101
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact