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Yeast Hho1p contains two domains, GI and GII, that are homologous to the single globular domain of the linker histone H1 (GH1). We showed previously that the isolated GI and GII domains have different structural stabilities and functional properties. GI, like GH1 and the related GH5, is stably folded at low ionic strength (10 mM sodium phosphate) and gives strong protection of chromatosome-length DNA ( approximately 166 bp) during micrococcal nuclease digestion of chromatin. GII is intrinsically unfolded in 10 mM sodium phosphate and gives weak chromatosome protection, but in 250 mM sodium phosphate has a structure very similar to that of GI as determined by NMR spectroscopy. We now show that the loop between helices II and III in GII is the cause of both its instability and its inability to confer strong chromatosome protection. A mutant GII, containing the loop of GI, termed GII-L, is stable in 10 mM sodium phosphate and is as effective as GI in chromatosome protection. Two GII mutants with selected mutations within the original loop were also slightly more stable than GII. In GII, two of the four basic residues conserved at the second DNA binding site ("site II") on the globular domain of canonical linker histones, and in GI, are absent. Introduction of the two "missing" site II basic residues into GII or GII-L destabilised the protein and led to decreased chromatosome protection relative to the protein without the basic residues. In general, the ability to confer chromatosome protection in vitro is closely related to structural stability (the relative population of structured and unstructured states). We have determined the structure of GII-L by NMR spectroscopy. GII-L is very similar to GII folded in 250 mM sodium phosphate, with the exception of the substituted loop region, which, as in GI, contains a single helical turn.  相似文献   
2.
The putative linker histone in Saccharomyces cerevisiae, Hho1p, has two regions of sequence (GI and GII) that are homologous to the single globular domains of linker histones H1 and H5 in higher eukaryotes. However, the two Hho1p "domains" differ with respect to the conservation of basic residues corresponding to the two putative DNA-binding sites (sites I and II) on opposite faces of the H5 globular domain. We find that GI can protect chromatosome-length DNA, like the globular domains of H1 and H5 (GH1 and GH5), but GII does not protect. However, GII, like GH1 and GH5, binds preferentially (and with higher affinity than GI) to four-way DNA junctions in the presence of excess linear DNA competitor, and binds more tightly than GI to linker-histone-depleted chromatin. Surprisingly, in 10 mM sodium phosphate (pH 7.0), GII is largely unfolded, whereas GI, like GH1 and GH5, is structured, with a high alpha-helical content. However, in the presence of high concentrations of large tetrahedral anions (phosphate, sulphate, perchlorate) GII is also folded; the anions presumably mimic DNA in screening the positive charge. This raises the possibility that chromatin-bound Hho1p may be bifunctional, with two folded nucleosome-binding domains.  相似文献   
3.
Linker histone H1 is an essential regulatory protein for many critical biological processes, such as eukaryotic chromatin packaging and gene expression. Mis-regulation of H1s is commonly observed in tumor cells, where the balance between different H1 subtypes has been shown to alter the cancer phenotype. Consisting of a rigid globular domain and two highly charged terminal domains, H1 can bind to multiple sites on a nucleosomal particle to alter chromatin hierarchical condensation levels. In particular, the disordered H1 amino- and carboxyl-terminal domains (NTD/CTD) are believed to enhance this binding affinity, but their detailed dynamics and functions remain unclear. In this work, we used a coarse-grained computational model, AWSEM-DNA, to simulate the H1.0b-nucleosome complex, namely chromatosome. Our results demonstrate that H1 disordered domains restrict the dynamics and conformation of both globular H1 and linker DNA arms, resulting in a more compact and rigid chromatosome particle. Furthermore, we identified regions of H1 disordered domains that are tightly tethered to DNA near the entry-exit site. Overall, our study elucidates at near-atomic resolution the way the disordered linker histone H1 modulates nucleosome’s structural preferences and conformational dynamics.  相似文献   
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《Molecular cell》2021,81(16):3410-3421.e4
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5.
红豆杉离体细胞四倍体的诱导   总被引:1,自引:0,他引:1  
细胞大规模培养被认为是目前生产紫杉醇最有希望的替代途径之一,获得更高产的细胞系,可降低细胞大规模培养生产紫杉醇的成本,加速其产业化进程。药用植物多倍体与二倍体相比具有根,茎,叶和花果的巨型性,抗逆性强,次生代谢产物含量提高等特性。本研究通过同步化培养和秋水仙素诱导处理,成功建立了红豆杉四倍体细胞系并且经过7个周期的继代证明了该细胞系的稳定性。结果显示,用浓度为750mg/L的秋水仙素处理3d可以得到稳定传代的四倍体细胞系,其四倍体细胞比例稳定在62.5%。进一步对其次生代谢产物紫杉醇的检测显示该四倍体细胞比对照二倍体细胞具有更高的合成紫杉醇的能力。  相似文献   
6.
The filter-binding technique with PEI treated glass fiber is used to study the interaction of histone H5 to core particles, chromatosomes and DNA derived from it. By working at very low concentrations of interacting particles we are able to study the effective binding process independent of interfering insoluble complexes. The interactions are characterized by a very high affinity. An intrinsically higher affinity of H5 for cores and chromatosomes versus chromatosome derived DNA is demonstrated. Both chromatosomes and DNA derived from these bind about twice the amount as compared to core particles, which saturate at about one H5 per core particle.Abbreviations GH5 globular domain of histone H5 - PEI polyethyleneimine  相似文献   
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