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Hatoyama, Y.

Publications and source records attributed to Hatoyama, Y..

5 recordsLinked to original sources

Average local nucleosome motion remains constant during interphase in living human cells

BackgroundDynamic chromatin behavior, which is related to chromatin accessibility, plays a critical role in various genome DNA functions such as RNA transcription and DNA replication/repair. Previous studies using highly synchronized cells showed that average local chromatin motion, captured by single-nucleosome imaging and tracking on a second time scale, remained almost constant throughout G1, S, and G2 phases in living human cells, although possible effects of prolonged drug treatments for cell-cycle synchronization could not be excluded. ResultsTo avoid possible effects of prolonged drug treatment, we combined single-nucleosome imaging with Fucci probes to visualize cell-cycle progression through G1, S, and G2. Using HeLa and HCT116 cells expressing H2B-HaloTag and Fucci probes, we found that local nucleosome motion remained similar on average throughout interphase, except for elevated motion in early G1. Transcription inhibition similarly increased nucleosome motion throughout interphase. Local nucleosome motion also increased following replication stress or DNA damage. ConclusionOur findings suggest that near-constant chromatin motion supports housekeeping functions under similar physical conditions during interphase. Our findings also suggest that cells can transiently change chromatin motion to perform ad hoc tasks in response to signals from inside and outside the cell, such as DNA damage.

cell biology↗

MCM10 and RECQL4 have cooperative and redundant roles in activating the CMG helicase during the replication initiation

DNA replication initiation requires activation of the CMG helicase to establish the replisome. This process involves the extrusion of single-stranded DNA (ssDNA) from the central channel of MCM double hexamers, allowing the two CMG helicases to pass each other; however, the factors that mediate this process in human cells remain unclear. We show that degron-mediated depletion of either MCM10 or RECQL4 alone causes only mild replication defects, whereas simultaneous depletion of both proteins completely blocks CMG activation. ChIP-seq analyses demonstrate that RECQL4 localises to replication initiation zones (IZs) independently of MCM10, whereas MCM10 recruitment to IZs is enhanced upon RECQL4 depletion, suggesting RECQL4 primarily functions in CMG activation, and MCM10 acts as a backup or supporting factor. Rescue experiments further indicate that RECQL4 cooperates with MCM10 through direct interaction, and that their ssDNA-binding activity underlies their functional overlap. We propose MCM10 and RECQL4 act cooperatively and redundantly to promote CMG activation.

molecular biology↗

The mammalian rapid tRNA decay pathway is critical for N⁷-methylguanosine-hypomodified tRNA degradation under physiological conditions

Chemical modifications of transfer RNAs (tRNAs) are integral to their stability and to translation. Loss of N7-methylguanosine (m7G) on specific tRNAs reduces their steady-state abundance and impairs translation in mammals, but whether these decreases reflect active degradation under physiological growth conditions is unresolved. Here, using human HCT116 cells, we show that knockdown of the 5'[->]3' exonuclease, XRN2, restores tRNA levels diminished by METTL1 depletion. Leveraging conditional protein knockdown, we performed time-resolved measurements of mature tRNA levels and directly quantified decay kinetics. We show that in the absence of heat stress, mG-hypomodified tRNAs undergo XRN2-dependent accelerated decay. Finally, partial loss of the Drosophila XRN2 ortholog, Rat1, genetically rescues male sterility of mettl1 mutants, demonstrating organismal relevance. These findings define a conserved constitutive rapid tRNA decay pathway in mammals and indicate inhibition of tRNA decay as a potential therapeutic strategy in disorders caused by tRNA hypomodification.

molecular biology↗

A single-chain antibody-based AID2 system for conditional degradation of GFP-tagged and untagged proteins

Protein knockdown using an improved auxin-inducible degron (AID2) technology has proven to be a powerful tool for studying protein function. The current approach requires the fusion of target proteins with a degron tag, a process typically achieved through CRISPR knock-in. However, knock-in remains challenging in non-model organisms and humans, limiting the broader applicability of AID2. To overcome this limitation, we developed a single-chain antibody AID2 (scAb-AID2) system. This approach employs an adaptor composed of a single-chain antibody fused with a degron, which recognises a target protein and induces rapid degradation in the presence of the inducer 5-Ph-IAA. We demonstrated that scAb-AID2, in combination with an anti-GFP nanobody, degraded GFP-fused proteins in human cells and C. elegans. Furthermore, we showed that endogenous p53 and H/K-RAS were conditionally degraded in cells expressing an adaptor encoding an anti-p53 nanobody and -RAS monobody, respectively, and led to aphidicolin sensitivity in cell culture and growth inhibition in mouse xenografts. This study paves the way for broader application of AID2-based target depletion in model and non-model organisms and for advancing therapeutic strategies.

bioengineering↗

Combination of AID2 and BromoTag expands the utility of degron-based protein knockdowns

Acute protein knockdown is a powerful approach to dissecting protein function in dynamic cellular processes. We previously reported an improved auxin-inducible degron system, AID2, but recently noted that its ability to induce degradation of some essential replication factors, such as ORC1 and CDC6, was not enough to induce lethality. Here, we present combinational degron technologies to control two proteins and enhance target depletion. For this purpose, we initially compared PROTAC-based degrons, dTAG and BromoTag, with AID2 to reveal their key features and then demonstrated control of cohesin and condensin with AID2 and BromoTag, respectively. We developed a double-degron system with AID2 and BromoTag to enhance target depletion and accelerate depletion kinetics and demonstrated that both ORC1 and CDC6 are pivotal for MCM loading. Finally, we found that co-depletion of ORC1 and CDC6 by the double-degron system completely suppressed DNA replication, and the cells entered mitosis with single-chromatid chromosomes, indicating DNA replication was uncoupled from the cell cycle control. Our combinational degron technologies will expand the application scope for functional analyses.

cell biology↗