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Vaculikova, J.

Publications and source records attributed to Vaculikova, J..

3 recordsLinked to original sources

The C-terminal SUMOylation-dependent regulation of αKNL2 governs its centromere targeting and interaction with CENH3

The centromere is a specialized domain that facilitates chromosome segregation during mitosis and serves as the site for kinetochore formation. KINETOCHORE NULL2 (KNL2) is essential for the recognition and loading of the centromeric histone H3 variant, CENH3, to centromeres. A yeast two-hybrid screen for KNL2 interactors identified components of the SUMOylation pathway. However, the role of KNL2 SUMOylation in Arabidopsis has not yet been determined. In this study, we demonstrated that the C-terminal part of KNL2 interacts with SUMO3 and ULP1d, as shown by BiFC and co-immunoprecipitation assays. Bioinformatic and functional analysis identified three SUMOylation and two SUMO-interacting motif (SIM) sites in the C-terminal region of KNL2, which are critical for growth, fertility, and chromosome alignment. Of the three SUMOylation sites, Lys474 and Lys511 were the most critical for the centromeric localization of KNL2, underscoring the importance of KNL2 SUMOylation for its function. Additionally, both in vitro and in vivo assays showed that KNL2-C undergoes SUMOylation by SUMO1 or SUMO3. The SUMO protease mutant, ulp1d-2 led to the slight accumulation of SUMOylated KNL2 in Arabidopsis. We further showed that SUMOylation of KNL2 promotes its binding to CENH3 and controls protein stability. Our findings show that C-terminal SUMOylation of KNL2 is crucial for its centromeric localization, interaction with CENH3, and kinetochore assembly, emphasizing the significance of post-translational modifications in chromosome segregation and cell division in plants.

molecular biology↗

The phenotype of SMC6_G514R hinge mutant of Physcomitrium patents

The Structural Maintenance of Chromosomes (SMC) complexes play roles in cohesion, condensation, replication, transcription, and DNA repair. Their cores are composed of SMC proteins with a unique structure consisting of an ATPase head, long arm, and hinge. The direct interaction of hinges leads to the formation of SMC heterodimer. A critical SMC6 mutation G551R interrupting the interaction of SMC5 and SMC6 hinges have been previously identified in Schizosaccharomyces pombe within a conserved motif. Using CRISPR/Cas9 directed oligonucleotide replacement, we have introduced this G to R point mutation in SMC6 of Physcomitrium patens (P. patens) at position 514 and also at position 517 of the same hinge domain. It turned out that both mutations are not toxic and do not affect the viability of established Ppsmc6_G514R and Ppsmc6_G517R lines. Since P. patens mutants with entire or partial deletion of the SMC6 gene are not viable, we compare hinge mutants with previously established mutant line with attenuated transcription by targeted binding of deactivated Cas9 nuclease (Ppsmc6_dCas). We show that mutation of G to R at position 514 fully prevents the interaction of SMC6 not only with SMC5, but also NSE5 and NSE6. Surprisingly, mutation of close residue 517 has no effect at all. The Ppsmc6_G514R line has aberrant morphology quite similar to Ppsmc6_dCas, though the absence of protonemata branching and formation of gametophores is incomplete. On the contrary, the Ppsmc6_G517R line is morphologically more or less similar to WT. Spontaneous and bleomycin-induced mutagenesis and maintenance of the number of rDNA copies in the Ppsmc6_G514R line is also similar to Ppsmc6_dCas, while Ppsmc6_G517R more or less mimics WT. The sensitivity of the Ppsmc6_G514R line to bleomycin is not as severe as that of Ppsmc6_dCas, and surprisingly, the Ppsmc6_G517R line is even less sensitive to bleomycin than WT. Moreover, both hinge mutations have no direct effect on the rate of DSB repair in dividing and differentiated cells. The most unique feature of the hinge mutants is interference with gene targeting (GT). Whilst GT efficiency of Ppsmc6_G517R and Ppsmc6_dCas when compared to WT is only slightly or moderately reduced, it is completely abolished in Ppsmc6_G514R. Based on these results, we conclude that sufficient amounts of SMC6 and its interactions are necessary for normal moss development and genome stability, such as DNA repair and rDNA maintenance. The reduced levels of SMC6 subunit, and therefore low levels of complete SMC5/6 complex, are insufficient for acute DSB repair, however, the acute DSB repair is not affected by impaired SMC6 interactions in Ppsmc6_G514R. In contrast, SMC6 inability to interact with SMC5 and other partners like NSE5 and NSE6 results in abolished GT, while low levels of SMC6 have only mild effect. These data underline importance of different aspects of SMC5/6, such as its levels or interactions.

molecular biology↗

NSE5 subunit interacts with distant regions of the SMC arms in the Physcomitrium patens SMC5/6 complex

Structural Maintenance of Chromosome (SMC) complexes play roles in cohesion, condensation, replication, transcription, and DNA repair. Their cores are composed of SMC proteins with a unique structure consisting of an ATPase head, long arm, and hinge. SMC complexes form long rod-like structures, which can change to ring-like and elbow-bent conformations upon binding ATP, DNA and other regulatory factors. These SMC dynamic conformational changes are involved in their loading, translocation, and DNA loop extrusion. Here, we examined the binding and role of the PpNSE5 regulatory factor of Physcomitrium patens PpSMC5/6 complex. We found that the PpNSE5 C-terminal half (aa230-505) is required for binding to its PpNSE6 partner, while the N-terminal half (aa1-230) binds PpSMC subunits. Specifically, the first 71 amino acids of PpNSE5 were required for binding to PpSMC6. Interestingly, the PpNSE5 binding required the PpSMC6 head-proximal joint region and PpSMC5 hinge-proximal arm, suggesting a long distance between binding sites on PpSMC5 and PpSMC6 arms. Given the long distance between these PpSMC sites and the size of PpNSE5, we hypothesize that PpNSE5 either links two antiparallel SMC5/6 complexes or binds one SMC5/6 in elbow-bent conformation. In addition, we generated the P. patens mutant lines (Ppnse5KO1 and Ppnse5KO2) with CRISPR/Cas9-integrated stop codons in PpNSE5. The Ppnse5KO1 mutant line with an N-terminally truncated version of PpNSE5 (starting from an alternative aaMet72) exhibited DNA repair defects while keeping a normal number of rDNA repeats. As the first 71 amino acids of PpNSE5 are required for PpSMC6 binding, our results suggest the specific role of PpNSE5-PpSMC6 interaction in DNA repair. Altogether, our study suggests that PpNSE5 binding to distant regions of the PpSMC5 and PpSMC6 arms serves a specific role in loading at DNA lesions.

molecular biology↗