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Trx and TrxR were first discovered in 1964 in a study realized in bacteria, and were described as necessary proteins to reduce '''[[Ribonucleotide Reductase]]'''(RNR), a protein that produces deoxyribonucleotides from ribonucleotides<ref>Laurent, T. C.; Moore, E. C.; Reichard, P. ENZYMATIC SYNTHESIS OF DEOXYRIBONUCLEOTIDES. IV. ISOLATION AND CHARACTERIZATION OF THIOREDOXIN, THE HYDROGEN DONOR FROM ESCHERICHIA COLI B. J Biol Chem 1964, 239, 3436–3444.</ref>.
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Trx and TrxR were first discovered in 1964 in a study realized in bacteria, and were described as necessary proteins to reduce '''[[Ribonucleotide Reductase]]'''(RNR), a protein that produces deoxyribonucleotides from ribonucleotides<ref>Laurent, T. C.; Moore, E. C.; Reichard, P. ENZYMATIC SYNTHESIS OF DEOXYRIBONUCLEOTIDES. IV. ISOLATION AND CHARACTERIZATION OF THIOREDOXIN, THE HYDROGEN DONOR FROM ESCHERICHIA COLI B. J Biol Chem 1964, 239, 3436–3444.
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To reduce other proteins, first happens an attack from Cys32, creating an intermolecular dissulfide bond, represented <scene name='91/911850/C32_s-s_c206/1'>here</scene> between residue Cys32 from Trx1 and residue Cys206 from '''[[MsrA]]'''. After it, residue Cys35 attacks Cys32, creating a dissulfide bond between the two cysteines in Trx1's catalytic site. This is the <scene name='91/911850/Trx_cys_-_oxidized_-_diss_bond/4'>oxidized form of Trx1</scene>.
To reduce other proteins, first happens an attack from Cys32, creating an intermolecular dissulfide bond, represented <scene name='91/911850/C32_s-s_c206/1'>here</scene> between residue Cys32 from Trx1 and residue Cys206 from '''[[MsrA]]'''. After it, residue Cys35 attacks Cys32, creating a dissulfide bond between the two cysteines in Trx1's catalytic site. This is the <scene name='91/911850/Trx_cys_-_oxidized_-_diss_bond/4'>oxidized form of Trx1</scene>.

Revision as of 00:19, 19 June 2022

Introduction

Human Thioredoxin 1

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References

  1. Lu, J.; Holmgren, A. The Thioredoxin Antioxidant System. Free Radical Biology and Medicine 2014, 66, 75–87. https://doi.org/10.1016/j.freeradbiomed.2013.07.036.
  2. Holmgren, A. Thioredoxin Structure and Mechanism: Conformational Changes on Oxidation of the Active-Site Sulfhydryls to a Disulfide. Structure 1995, 3 (3), 239–243. https://doi.org/10.1016/S0969-2126(01)00153-8.
  3. Laurent, T. C.; Moore, E. C.; Reichard, P. ENZYMATIC SYNTHESIS OF DEOXYRIBONUCLEOTIDES. IV. ISOLATION AND CHARACTERIZATION OF THIOREDOXIN, THE HYDROGEN DONOR FROM ESCHERICHIA COLI B. J Biol Chem 1964, 239, 3436–3444.
  4. Tao, L.; Gao, E.; Bryan, N. S.; Qu, Y.; Liu, H.-R.; Hu, A.; Christopher, T. A.; Lopez, B. L.; Yodoi, J.; Koch, W. J.; Feelisch, M.; Ma, X. L. Cardioprotective Effects of Thioredoxin in Myocardial Ischemia and the Reperfusion Role of S-Nitrosation. Proc Natl Acad Sci U S A 2004, 101 (31), 11471–11476. https://doi.org/10.1073/pnas.0402941101.
  5. Tao, L.; Gao, E.; Bryan, N. S.; Qu, Y.; Liu, H.-R.; Hu, A.; Christopher, T. A.; Lopez, B. L.; Yodoi, J.; Koch, W. J.; Feelisch, M.; Ma, X. L. Cardioprotective Effects of Thioredoxin in Myocardial Ischemia and the Reperfusion Role of S-Nitrosation. Proc Natl Acad Sci U S A 2004, 101 (31), 11471–11476. https://doi.org/10.1073/pnas.0402941101.

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