Topoisomerases: A Biochemical Overview

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==Topoisomerase==
==Topoisomerase==
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<StructureSection load='1a35' size='350' side='right' caption='TOP1 stabilizing DNA helix" (PDB entry [[1a35]])' scene=''>Topoisomerases are a class of enzymes that create miniscule, reversible cuts in the DNA helix past the replication fork to relieve torsional stress, and stabilize the DNA helix during replication and transcription. The molecular structure of DNA is controlled by the aforementioned snipping of DNA and passing the strand through the cut. Type I topoisomerases create single stranded cuts in DNA, while type II topoisomerases create double stranded cuts in DNA. Topoisomerases are further along the DNA helix past the replication fork, which contributes to its ability to prevent breakage in DNA strands [1].
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<StructureSection load='1a35' size='600' side='right' caption='TOP1 stabilizing DNA helix" (PDB entry [[1a35]])' scene=''>Topoisomerases are a class of enzymes that create miniscule, reversible cuts in the DNA helix past the replication fork to relieve torsional stress, and stabilize the DNA helix during replication and transcription. The molecular structure of DNA is controlled by the aforementioned snipping of DNA and passing the strand through the cut. Type I topoisomerases create single stranded cuts in DNA, while type II topoisomerases create double stranded cuts in DNA. Topoisomerases are further along the DNA helix past the replication fork, which contributes to its ability to prevent breakage in DNA strands [1].
== Function ==
== Function ==

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Topoisomerase

TOP1 stabilizing DNA helix" (PDB entry 1a35)

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References

1. Natassja G. Bush, Katherine Evans-Roberts, Anthony Maxwell. DNA Topoisomerases. EcoSal Plus (2015), Volume 6, Number 2, Domain: Synthesis and Processing of Macromolecules.

2. Vos, Seychelle M. Tretter, Elsa M. Schmidt, Bryan H. Berger, James M. All tangled up: how cells direct, manage and exploit topoisomerase function. Nat. Rev. Mol. Cell Biol. (2011), 12, 12: 827-841.

3. Takahashi DT, Gadelle D, Agama K, Kiselev E, Zhang H, Yab E, Petrella S, Forterre P, Pommier Y, Mayer C. Topoisomerase I (TOP1) dynamics: conformational transition from open to closed states. Nat. Commun. (2022), 13: 59.

4. Min Li, Yilun Liu. Topoisomerase I in Human Disease Pathogenesis and Treatments. GPB. (2016), 14, 3: 166-171.

5. Benjamin D. Bax, Garib Murshudov, Anthony Maxwell, Thomas Germe. DNA Topoisomerase Inhibitors: Trapping a DNA-Cleaving Machine in Motion. J. Mol. Biol. (2019), 431, 18: 3427-3449.

6. Seungmin Han, Kwang Suk Lim, Brody J. Blackburn, Jina Yun, Charles W. Putnam, David A. Bull, Young-Wool Won. The Potential of Topoisomerase Inhibitor-Based Antibody-Drug Conjugates. Pharmaceutics (2022), 14, 8: 1707-1707.

7. Mei Hong, Ming-Qiang Ren, Jeane Silva, Ananya Paul, W. David Wilson, Carsten Schroeder, Paul Weinberger, John Janik, Zhonglin Hao. YM155 Inhibits Topoisomerase Function. Anticancer Drugs (2017) 28(2): 142-152.

8. Nichols, M.D., DeAngelis, K., Keck, J.L. and Berger, J.M. Structure and function of an archaeal topoisomerase VI subunit with homology to the meiotic recombination factor Spo11. EMBO J. (1999), 18: 6177-6188.

9. Diane T. Takahashi, Daniele Gadelle, Keli Agama, Evgeny Kiselev, Hongliang Zhang, Emilie Yab, Stephanie Petrella, Patrick Forterre, Yves Pommier, Claudine Mayer. Topoisomerase I (TOP1) dynamics: conformational transition from open to closed states. Nat. Commun. (2022), 13, 59.

10. James J. Champoux. DNA TOPOISOMERASES: Structure, Function, and Mechanism. Annu. Rev. (2001), 70:369–413.

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