Immunology and Cell Biology · 2004 · 54 citations · 54 references
Reverse GeneticsGeneticsMolecular BiologyNucleic Acid Amplification TestMolecular GeneticsRearranged Immunoglobulin VariableImmunogeneticsRearranged Immunoglobulin GenesReverse TranscriptaseDna ReplicationOligonucleotideGene ExpressionSomatic VariantSomatic HypermutationSomatic Cell GeneticsNatural SciencesNucleic Acid AmplificationMedicineError-prone Reverse TranscriptionGenome Editing
We have proposed previously that error-prone reverse transcription using pre-mRNA of rearranged immunoglobulin variable (IgV) regions as templates is involved in the antibody diversifying mechanism of somatic hypermutation (SHM). As patients deficient in DNA polymerase-eta exhibit an abnormal spectrum of SHM, we postulated that this recently discovered Y-family polymerase is a reverse transcriptase (RT). This possibility was tested using a product-enhanced RT (PERT) assay that uses a real time PCR step with a fluorescent probe to detect cDNA products of at least 27-37 nucleotides. Human pol-eta and two other Y-family enzymes that are dispensable for SHM, human pols-iota and -kappa, copied a heteropolymeric DNA-primed RNA template in vitro under conditions with substantial excesses of template. Repeated experiments gave highly reproducible results. The RT activity detected using one aliquot of human pol-eta was confirmed using a second sample from an independent source. Human DNA pols-beta and -mu, and T4 DNA polymerase repeatedly demonstrated no RT activity. Pol-eta was the most efficient RT of the Y-family enzymes assayed but was much less efficient than an HIV-RT standard in vitro. It is thus feasible that pol-eta acts as both a RNA- and a DNA-dependent DNA polymerase in SHM in vivo, and that Y-family RT activity participates in other mechanisms of physiological importance.
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The XPV (xeroderma pigmentosum variant) gene encodes human DNA polymerase η
Chikahide Masutani, Rika Kusumoto, Ayumi Yamada et al. · Nature · 1999 · 1.3K citations