(1999. december 1.) „The human REV1 gene codes for a DNA template-dependent dCMP transferase”. Nucleic Acids Res27 (22), 4468–75. o. DOI:10.1093/nar/27.22.4468. PMID10536157. PMC148731.
Rechkoblit O, Kolbanovskiy A, Landes H, Geacintov NE, Aggarwal AK (2017. október 17.). „Mechanism of error-free replication across benzo[a]pyrene stereoisomers by Rev1 DNA polymerase”. Nat Commun8 (1), 965. o. DOI:10.1038/s41467-017-01013-5. PMID29042535. PMC5645340.
Weaver TM, Click TH, Khoang TH, Todd Washington M, Agarwal PK, Freudenthal BD (2022. május 24.). „Mechanism of nucleotide discrimination by the translesion synthesis polymerase Rev1”. Nat Commun13 (1), 2876. o. DOI:10.1038/s41467-022-30577-0. PMID35610266. PMC9130138.
Chen Y, Jie X, Xing B, Wu Z, Yang X, Rao X, Xu Y, Zhou D, Dong X, Zhang T, Yang K, Li Z, Wu G (2022. február 3.). „REV1 promotes lung tumorigenesis by activating the Rad18/SERTAD2 axis”. Cell Death Dis13 (2), 110. o. DOI:10.1038/s41419-022-04567-5. PMID35115490. PMC8814179.
Nair, DT (2005. szeptember 30.). „Rev1 employs a novel mechanism of DNA synthesis using a protein template”. Science309 (5744), 2219–22. o. DOI:10.1126/science.1116336. PMID16195463.
Rizzo AA, Korzhnev DM (2019. augusztus 9.). „The Rev1-Polζ translesion synthesis mutasome: Structure, interactions and inhibition”. Enzymes45, 139–181. o. DOI:10.1016/bs.enz.2019.07.001. PMID31627876. PMC7229808.
Bi T, Niu X, Qin C, Xiao W (2021. november 1.). „Genetic and physical interactions between Polη and Rev1 in response to UV-induced DNA damage in mammalian cells”. Sci Rep11 (1), 21364. o. DOI:10.1038/s41598-021-00878-3. PMID34725419. PMC8560953.
Taglialatela A, Leuzzi G, Sannino V, Cuella-Martin R, Huang JW, Wu-Baer F, Baer R, Costanzo V, Ciccia A (2021 Oct 7). „REV1-Polζ maintains the viability of homologous recombination-deficient cancer cells through mutagenic repair of PRIMPOL-dependent ssDNA gaps”. Mol Cell81 (19), 4008-4025.e7. o. DOI:10.1016/j.molcel.2021.08.016. PMID34508659. PMC8500949.
Bi T, Niu X, Qin C, Xiao W (2021. november 1.). „Genetic and physical interactions between Polη and Rev1 in response to UV-induced DNA damage in mammalian cells”. Sci Rep11 (1), 21364. o. DOI:10.1038/s41598-021-00878-3. PMID34725419. PMC8560953.
Murakumo, Y (2001. szeptember 1.). „Interactions in the error-prone postreplication repair proteins hREV1, hREV3, and hREV7”. J. Biol. Chem., United States 276 (38), 35644–35651. o. DOI:10.1074/jbc.M102051200. ISSN0021-9258. PMID11485998.
nih.gov
pubmed.ncbi.nlm.nih.gov
(1999. december 1.) „The human REV1 gene codes for a DNA template-dependent dCMP transferase”. Nucleic Acids Res27 (22), 4468–75. o. DOI:10.1093/nar/27.22.4468. PMID10536157. PMC148731.
Rechkoblit O, Kolbanovskiy A, Landes H, Geacintov NE, Aggarwal AK (2017. október 17.). „Mechanism of error-free replication across benzo[a]pyrene stereoisomers by Rev1 DNA polymerase”. Nat Commun8 (1), 965. o. DOI:10.1038/s41467-017-01013-5. PMID29042535. PMC5645340.
Weaver TM, Click TH, Khoang TH, Todd Washington M, Agarwal PK, Freudenthal BD (2022. május 24.). „Mechanism of nucleotide discrimination by the translesion synthesis polymerase Rev1”. Nat Commun13 (1), 2876. o. DOI:10.1038/s41467-022-30577-0. PMID35610266. PMC9130138.
Chen Y, Jie X, Xing B, Wu Z, Yang X, Rao X, Xu Y, Zhou D, Dong X, Zhang T, Yang K, Li Z, Wu G (2022. február 3.). „REV1 promotes lung tumorigenesis by activating the Rad18/SERTAD2 axis”. Cell Death Dis13 (2), 110. o. DOI:10.1038/s41419-022-04567-5. PMID35115490. PMC8814179.
Nair, DT (2005. szeptember 30.). „Rev1 employs a novel mechanism of DNA synthesis using a protein template”. Science309 (5744), 2219–22. o. DOI:10.1126/science.1116336. PMID16195463.
Rizzo AA, Korzhnev DM (2019. augusztus 9.). „The Rev1-Polζ translesion synthesis mutasome: Structure, interactions and inhibition”. Enzymes45, 139–181. o. DOI:10.1016/bs.enz.2019.07.001. PMID31627876. PMC7229808.
Bi T, Niu X, Qin C, Xiao W (2021. november 1.). „Genetic and physical interactions between Polη and Rev1 in response to UV-induced DNA damage in mammalian cells”. Sci Rep11 (1), 21364. o. DOI:10.1038/s41598-021-00878-3. PMID34725419. PMC8560953.
Taglialatela A, Leuzzi G, Sannino V, Cuella-Martin R, Huang JW, Wu-Baer F, Baer R, Costanzo V, Ciccia A (2021 Oct 7). „REV1-Polζ maintains the viability of homologous recombination-deficient cancer cells through mutagenic repair of PRIMPOL-dependent ssDNA gaps”. Mol Cell81 (19), 4008-4025.e7. o. DOI:10.1016/j.molcel.2021.08.016. PMID34508659. PMC8500949.
Bi T, Niu X, Qin C, Xiao W (2021. november 1.). „Genetic and physical interactions between Polη and Rev1 in response to UV-induced DNA damage in mammalian cells”. Sci Rep11 (1), 21364. o. DOI:10.1038/s41598-021-00878-3. PMID34725419. PMC8560953.
Murakumo, Y (2001. szeptember 1.). „Interactions in the error-prone postreplication repair proteins hREV1, hREV3, and hREV7”. J. Biol. Chem., United States 276 (38), 35644–35651. o. DOI:10.1074/jbc.M102051200. ISSN0021-9258. PMID11485998.
ncbi.nlm.nih.gov
(1999. december 1.) „The human REV1 gene codes for a DNA template-dependent dCMP transferase”. Nucleic Acids Res27 (22), 4468–75. o. DOI:10.1093/nar/27.22.4468. PMID10536157. PMC148731.
Rechkoblit O, Kolbanovskiy A, Landes H, Geacintov NE, Aggarwal AK (2017. október 17.). „Mechanism of error-free replication across benzo[a]pyrene stereoisomers by Rev1 DNA polymerase”. Nat Commun8 (1), 965. o. DOI:10.1038/s41467-017-01013-5. PMID29042535. PMC5645340.
Weaver TM, Click TH, Khoang TH, Todd Washington M, Agarwal PK, Freudenthal BD (2022. május 24.). „Mechanism of nucleotide discrimination by the translesion synthesis polymerase Rev1”. Nat Commun13 (1), 2876. o. DOI:10.1038/s41467-022-30577-0. PMID35610266. PMC9130138.
Chen Y, Jie X, Xing B, Wu Z, Yang X, Rao X, Xu Y, Zhou D, Dong X, Zhang T, Yang K, Li Z, Wu G (2022. február 3.). „REV1 promotes lung tumorigenesis by activating the Rad18/SERTAD2 axis”. Cell Death Dis13 (2), 110. o. DOI:10.1038/s41419-022-04567-5. PMID35115490. PMC8814179.
Rizzo AA, Korzhnev DM (2019. augusztus 9.). „The Rev1-Polζ translesion synthesis mutasome: Structure, interactions and inhibition”. Enzymes45, 139–181. o. DOI:10.1016/bs.enz.2019.07.001. PMID31627876. PMC7229808.
Bi T, Niu X, Qin C, Xiao W (2021. november 1.). „Genetic and physical interactions between Polη and Rev1 in response to UV-induced DNA damage in mammalian cells”. Sci Rep11 (1), 21364. o. DOI:10.1038/s41598-021-00878-3. PMID34725419. PMC8560953.
Taglialatela A, Leuzzi G, Sannino V, Cuella-Martin R, Huang JW, Wu-Baer F, Baer R, Costanzo V, Ciccia A (2021 Oct 7). „REV1-Polζ maintains the viability of homologous recombination-deficient cancer cells through mutagenic repair of PRIMPOL-dependent ssDNA gaps”. Mol Cell81 (19), 4008-4025.e7. o. DOI:10.1016/j.molcel.2021.08.016. PMID34508659. PMC8500949.
Bi T, Niu X, Qin C, Xiao W (2021. november 1.). „Genetic and physical interactions between Polη and Rev1 in response to UV-induced DNA damage in mammalian cells”. Sci Rep11 (1), 21364. o. DOI:10.1038/s41598-021-00878-3. PMID34725419. PMC8560953.
Murakumo, Y (2001. szeptember 1.). „Interactions in the error-prone postreplication repair proteins hREV1, hREV3, and hREV7”. J. Biol. Chem., United States 276 (38), 35644–35651. o. DOI:10.1074/jbc.M102051200. ISSN0021-9258. PMID11485998.