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Miller, T. C. R.

Publications and source records attributed to Miller, T. C. R..

2 recordsLinked to original sources

MCM Double Hexamer Loading Visualised with Human Proteins

Eukaryotic DNA replication begins with the loading of the MCM replicative DNA helicase as a head-to-head double hexamer (DH) at origins of DNA replication1-3. Our current understanding of how DH is assembled by the Origin Recognition Complex (ORC), CDC6 and CDT1 comes mostly from budding yeast. Here we characterise human DH (hDH) loading using biochemical reconstitution and cryo-electron microscopy with purified proteins. We show that hDH engages DNA differently from yeast (yDH), and generates [~]5 base pairs of unwound DNA at the interface between hexamers, as seen in hDH isolated from cells4. We identify several differences from yeast in the order of factor recruitment and dependencies during hDH assembly. Unlike yeast5-8, the ORC6 subunit of ORC is not essential for initial MCM recruitment or hDH loading, but contributes to an alternative hDH assembly pathway requiring an intrinsically disordered region (IDR) in ORC1, which may work through a novel MCM-ORC (hMO*) intermediate. Our work presents a detailed view of how DHs are assembled in an organism utilising sequence-independent replication origins, it provides further evidence for diversity in eukaryotic DH assembly mechanisms9, and it represents the first step toward reconstitution of DNA replication initiation with purified human proteins.

biochemistry↗

Catalytic and non-catalytic functions of DNA polymerase kappa in translesion DNA synthesis

Translesion DNA synthesis (TLS) is an essential process that allows cells to bypass lesions encountered during DNA replication and is emerging as a primary target of chemotherapy. Among vertebrate DNA polymerases, polymerase kappa (Pol() has the unique ability to bypass minor groove DNA adducts in vitro. However, Pol(is also required for cells to overcome major groove DNA adducts but the basis of this requirement is unclear. Here, we combine CRISPR base editor screening technology in human cells with TLS analysis of defined DNA lesions in Xenopus egg extracts to unravel the functions and regulations of Pol(during lesion bypass. Strikingly, we show that Pol(has two main functions during TLS, which are differentially regulated via Rev1 binding. On the one hand, Pol(is essential to replicate across minor groove DNA lesions in a process that depends on PCNA ubiquitylation but is independent of Rev1. On the other hand, via its cooperative interaction with Rev1 and ubiquitylated PCNA, Pol(stabilizes the Rev1-Pol(extension complex on DNA to allow extension past major groove DNA lesions and abasic sites, in a process that is independent of Pol(catalytic activity. Together, our work identifies catalytic and non-catalytic functions of Pol(in TLS and reveals important regulatory mechanisms underlying the unique domain architecture present at the C-terminal end of Y-family TLS polymerases.

molecular biology↗