RNA
● Cold Spring Harbor Laboratory
Preprints posted in the last 7 days, ranked by how well they match RNA's content profile, based on 189 papers previously published here. The average preprint has a 0.10% match score for this journal, so anything above that is already an above-average fit.
Kamp, J. A.; Wijnant, K. A.; Maas, N.; Gülyurt, D.; Rieder, M. J.; Jolfaei, M. A.; Gontan, C.; Kushner, S. A.; Elgersma, Y.; Vissers, L. E.; Nadif Kasri, N.; De Vrij, F. M.
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Haploinsufficiency in SYNGAP1 causes a severe neurodevelopmental syndrome. SYNGAP1 protein is mainly detected in neuronal synapses. However, SYNGAP1 RNA is more widely expressed and strongly regulated via alternative splicing: alternative 3' splice site (A3SS) inclusion leads to non-productive transcripts that are degraded through nonsense-mediated decay. Recently, splice-switching oligonucleotides (SSOs) that redirect SYNGAP1 splicing to increase SYNGAP1 protein levels were developed. However, we hypothesized that during neuronal maturation, non-productive splicing may decrease to enhance functional transcripts in mature neurons. This would reduce the abundance of the SSO target transcript, limiting the potential for SSO treatment to increase neuronal SYNGAP1 expression. Using neural differentiation of human induced pluripotent stem cells, we show that the A3SS transcript is abundant in neural progenitors, astrocytes, microglia and immature neurons, with minimal presence in mature neurons. These data imply that SSOs targeting A3SS might lack therapeutic efficacy to rescue the neuronal phenotypes associated with SYNGAP1 haploinsufficiency.
Chitoiu, L.; Denk, T.; Müller, M. B. D.; Berninghausen, O.; Becker, T.; Thoms, M.; Beckmann, R.
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mRNAs can form stable structures that need to be resolved to facilitate translation. During translation initiation in mammals, the scanning 48S complex requires the helicase activity of DHX29 to unwind stable mRNA structures that cannot be resolved by eIF4A. Here, we show that the yeast DHX29 homolog, Ylr419w (Dhx29), has a similar function during translation on elongating 80S ribosomes. Cryo-EM analyses show that the Dhx29 helicase module is positioned at the mRNA entry channel to engage mRNA, while its double-stranded RNA-binding domain (dsRBD) senses hairpin-forming mRNA in the ribosomal A-site. By selective ribosome profiling, we observed that Dhx29 is associated with transcripts that form RNA structures, such as stable tetraloops. Dhx29 mutants with perturbed helicase activity enrich 80S with hairpins in the A-site, as well as ribosome collisions, while a mutant lacking the N-terminal dsRBD sensor domain loses the specificity for such ribosomes. We thus propose that Dhx29 functions in translation elongation by resolving structured mRNA formed in the ribosomal A-site through its 3'-5' helicase activity and pulling on the mRNA from its 3' end.
Liu, R.-J.; Li, H.; Wu, X.-Y.; Zhou, Y.-J.; Yared, M.-J.; Wang, C.-X.; Tian, P.-Y.; Liu, Q.-Y.; Bao, Z.-G.; Barraud, P.
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tRNAs are characterized by extensive chemical modifications that influence tRNA fate. N1-methyladenosine at position 58 (m1A58) is a widespread core tRNA modification linked to physiological and pathological processes. However, how m1A58 coordinate tRNA folding and processing to ensure translational efficiency in mammalian cells remains largely unknown. Using acute dTAG-mediated degradation and CRISPR-Cas9 knockout, we identified initiator methionine tRNA (tRNAiMet) as selectively vulnerable to m1A58 loss, lacking the isodecoder buffering observed for most other tRNA isoacceptors. NMR analysis of the tRNAiMet showed that m1A58 stabilizes D/T-loop interactions, consistent with a maturation-competent conformation. In vitro processing assays further demonstrated that m1A58 promotes RNase P-mediated 5'-leader removal and RNase Z-mediated 3'-trailer cleavage, while La/SSB protects accumulated precursors. Disrupting this checkpoint impaired the assembly of the eIF2-containing 43S pre-initiation complex and global protein synthesis, which was substantially rescued by adding m1A58-modified tRNAiMet. Acute TRMT6 degradation elicited temporally coordinated gene-expression responses involving proteostasis, transport and signaling. Together, these findings establish m1A58 as a conformational checkpoint coupling human initiator-tRNA maturation to translation initiation and stress responses.
Barron, W. C.; Wei, X.; Ferdousy, S.; Zhu, L.; Meng, F. W.; Chen, B.
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Pre-mRNA splicing is essential for gene expression, yet how disruption of core spliceosomal factors produces tissue- and developmental stage-specific phenotypes remains poorly understood. Here, we investigated the in vivo function of the conserved spliceosomal kinase PRPF-4 in C. elegans using endogenous reporter analysis, conditional protein depletion, and transcriptome-wide analysis of alternative splicing and gene expression. We found that PRPF-4 is broadly expressed throughout development and is continuously required for postembryonic development, with distinct requirements in the pharynx, nervous system, and germline. Acute PRPF-4 depletion rapidly disrupts alternative splicing across thousands of transcripts, with exon skipping representing the predominant class of affected events. In addition, PRPF-4 depletion results in a robust transcriptome shift with induction of components of the spliceosome and repression of ciliary and ion transport-related transcripts. These findings establish PRPF-4 as a central regulator of RNA metabolism and demonstrate the far-reaching effects on gene expression caused by loss of core spliceosomal components.
Wapenaar, H.; Clifford, G.; Taglini, F. T.; McGhie, F.; Rolls, W.; Zhang, Y.; Sproul, D.; Wilson, M. D.
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DNMT3A is a de novo DNA methyltransferase whose recruitment to chromatin regulates its function. Missense mutations within the chromatin-binding PWWP domain are associated with diverse human disorders, yet how mutations in the same domain produce distinct phenotypes remains unclear. Here we systematically characterise 19 clinically reported mutations in the PWWP domain of DNMT3A that are associated with Heyn-Sproul-Jackson syndrome (HESJAS), paraganglioma (PG) and clonal haematopoiesis (CH). We show that all PWWP-domain mutations associated with HESJAS abolished interaction with H3K36me2 modified nucleosomes, defining this as a consistent biochemical feature of HESJAS. In contrast, mutations from all disease classes differentially altered DNA binding of the PWWP domain, driven by alterations in the net charge of the domain. However, these effects are largely overcome by inclusion of the DNNMT3A1 N-terminal region, which is absent from its embryonic isoform, suggesting that PWWP mutations may differentially affect DNMT3A function through development. Changes in the thermal stability of the isolated PWWP domain mutants did not directly translate into altered stability of full-length DNMT3A1 in cells. We show that HESJAS mutations can affect the intramolecular interaction between the PWWP and adjacent ADD domain, an interaction proposed to contribute to the autoinhibitory function of the ADD domain. However, not all mutations behaved in the same way, suggesting that multiple factors govern the intramolecular autoinhibition of DNMT3A. Together, this study advances our understanding of the molecular mechanisms by which DNMT3A PWWP-domain mutations are mechanistically heterogeneous, providing a biochemical framework that contributes to distinct disease phenotypes.
Tully, E. S.; Kirchdoerfer, R. N.
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Infectious bronchitis virus (IBV) is a member of the Gammacoronavirus genus responsible for respiratory illness and weakened eggshells in infected chickens, adversely impacting the poultry industry. Escaping innate immune detection during infection is crucial for coronavirus proliferation in the host. The production of double-stranded RNA during coronavirus replication triggers innate immune sensors to create an antiviral state within infected cells. To counter this response, coronaviruses employ nonstructural protein 15 (nsp15) endoribonuclease to degrade double-stranded RNA. Here, we use cryo-electron microscopy and biochemistry to characterize IBV nsp15 interactions with RNA. While the overall structure and active site of IBV nsp15 strongly resemble previous studies of nsp15 from other coronaviral genera, we note that double-stranded RNA contacts several non-conserved residues peripheral to the enzyme active site. Our data show that these residue positions can have strong impacts on RNA cleavage suggesting unique solutions for RNA engagement across coronavirus species. We also demonstrate a preference for IBV nsp15 to cleave double-stranded RNA over single-stranded RNA and observe nsp15 hexamers with two double-stranded RNAs bound simultaneously. This study reinforces the need to study diverse coronavirus species to identify distinct viral enzyme characteristics.
O'Sullivan, M.; Hartmann, J.; McLellan, M.; Thuerauf, D.; Bojorquez, K.; Ulukaya, G.; Hasson, D.; Rangan, P.; Capelson, M.
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Nuclear pore complexes (NPCs) are nuclear envelope (NE)-embedded protein assemblies that mediate nucleocytoplasmic exchange and interact with the genome, including binding of an NPC component Nup93 to Polycomb chromatin domains. Here, we investigated the in vivo relevance of this relationship in Drosophila, which unusually contains two distinct paralogs of Nup93. Interestingly, we identified a Nup93-2-specific tumorigenic phenotype in larval wings, where depletion of Nup93-2, but not Nup93-1, led to tumor-like overgrowth, reminiscent of Polycomb mutations. Consistently, our transcriptomic analysis revealed a wide-spread loss of gene silencing in Nup93-2-depleted wings, particularly in a Nup93-bound Polycomb domain spanning genes for activators of JAK/STAT signaling. Nup93 paralogs were not found to differ in their effect on NPC biogenesis but strikingly, showed differences in subnuclear localization patterns. While Nup93-1 co-localized exclusively with fully assembled NPCs, Nup93-2 exhibited only partial co-localization and was found at additional NE locations in a tissue-specific manner. Together, our results identify an in vivo silencing role of a Nup93 paralog and suggest that Nup93-2 may form a unique NE-associated complex that targets a subset of Polycomb domains containing growth-promoting genes.
Strutzenberg, T. S.; Horning, D. P.; Cochrane, W. G.; Andrade, L.; Han, X.; Joyce, G. F.; Lyumkis, D.
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Life began with the emergence of a molecule that could replicate its own genetic material, a task plausibly mediated by an RNA-dependent RNA polymerase ribozyme. Here, we present the structure of such a polymerase ribozyme, bound to RNA substrates comprising the template, primer, and nucleoside triphosphate (NTP) analog. The structure reveals how directed evolution shaped flanking elements around a highly conserved catalytic core derived from the ancestral class I ligase ribozyme. Each element serves as a functional module, positioning the primer-template duplex and incoming NTP within the active site of the enzyme. This emergent domain organization is remarkably similar to the "right hand" configuration of polymerase proteins, suggesting a common functional form for copying nucleic acids, regardless of biopolymer catalyst.
Zhou, Y.; Gong, L.; Niu, G.; Shi, H.; Gutell, R.; Li, X.; Wei, M.
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Animal mitochondrial rRNAs are commonly viewed as structurally reduced, yet sponge mt SSU rRNAs range from compact to highly expanded structures. Using nine conserved structural anchors, we compared 216 taxonomically resolved records from four classes and 22 orders, including 16 freshwater Spongillida and 200 marine sponges. Twelve homologous hypervariable substructures were coded as structural types, and their ordered combinations as composite types. We identified 38 structural types and 62 composite types across molecules ranging from 853 to 2,019 nt. Hexactinellida and freshwater Spongillida were each uniform for a distinct composite type but differed markedly in overall structure: hexactinellid mt SSU rRNAs were compact, whereas those of Spongillida were long and contained four to five candidate insertion regions. These results show that a conserved scaffold can accommodate extensive lineage-associated structural variation and provide a practical framework for comparing highly divergent mitochondrial rRNAs.
Vinod, M.; Zummo, F.-P.; Gheeraert, C.; Gouda, Z.; Courquet, S.; Dorchies, E.; Thuret, L.; Lapage, M.; Guille, L.; Bobowski-Gerard, M.; Pourpe, C.; Launay, V.; Derhoudi, M.; Bonnefond, A.; Eberle, D.; Haas, J.; Dubois-Chevalier, J.; Eeckhoute, J.; Lestavel, S.; Staels, B.; Lefebvre, P.; Berthier, A.
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Nuclear bile acid (BA) signaling plays a central role in liver homeostasis and represents a major therapeutic axis in fibrotic liver diseases. The farnesoid X receptor (FXR), a master nuclear effector of BA signaling, is expressed in several liver-resident cell types, suggesting that it may regulate distinct biological programs beyond the hepatocyte (HC) compartment. Using complementary pharmacological, genetic, and computational approaches across in vitro, ex vivo, and in vivo models of mouse and human origin, we investigated the role of hepatic stellate cell (HSC) FXR (FXRHSC) in both unchallenged and injured livers, which has remained controversial. FXR is robustly expressed in both HCs and HSCs with distinct isoform distributions, and these isoforms exhibited differential capacities to activate gene expression in an HSC context. We found that the potent selective FXR agonist tropifexor triggers a transcriptional program reminiscent of that observed after partial hepatectomy and associated with HC proliferation. This cell cycle-related response was also observed in HSCs and did not require intestinal FXR expression. An HSC-specific response to tropifexor was observed for several genes, including members of the glutathione-S-transferase (GST) family or Scube1. FXRHSC was sufficient to observe the anti-fibrotic effects of tropifexor in precision-cut liver slices, an ex-vivo model of fibrosis. Finally, we identified the regulation of the chemerin-encoding gene Rarres2 as a relevant example of FXRHSC-dependent control of hepatic intercellular communication. Together, these findings identify FXRHSC as an important contributor to hepatic adaptation and therapeutic response to BA analogs and confirmed HSCs as a significant site of nuclear bile acid signaling in liver biology.
Bui, A. Q.; Hosford, C. J.; Niu, Y.; Santiago, E.; Moraga, D.; Wagner, M. M.; Chappie, J. S.
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Canonical McrBC enzymes are nucleotide-powered, motor-driven endonucleases that bind and cleave modified bacteriophage DNA. Non-canonical McrBC homologs like LlaI and BsuMI are distinguished by a unique three-gene organization and the ability to target DNA site-specifically. Here, we report the atomic-resolution crystal structures of the DNA-binding module LlaI.R1 and AAA+ motor LlaI.R2 from the Lactococcus lactis LlaI anti-phage defense system. The crystallized LlaI.R2 hexamer traps two distinct active site conformations that correlate to different states of the nucleotide hydrolysis cycle and reveal that the organization of the critical catalytic machinery present in canonical McrB homologs is also conserved in non-canonical R2 proteins. Although canonical McrB homologs are strictly GTP-specific, we find that the R2 proteins from LlaI and BsuMI do not discriminate between different nucleotides, even when in complex with their respective R1 partners. Using mutagenesis, we define surfaces on the LlaI.R1 structure that are critical for DNA-binding and interaction with LlaI.R2. These observations support computational modelling of the assembled LlaI restriction system bound to DNA. Together, our data provide new insights into the evolution of nucleotide specificity in McrBC restriction complexes and the molecular mechanisms governing McrBC-catalyzed DNA translocation and cleavage.
Ferrie, M.; Darmuzey, M.; Tarillon, I.; Tubiana, T.; Khan, M.; Roskams, T.; Weynand, B.; Thal, D.; Cremers, N.; Hendrickx, S.; Donckers, K.; Portal, T. M.; Vanmechelen, B.; Lemmens, V.; Rocha-Pereira, J.; Castilletti, C.; Mombaerts, P.; Bressanelli, S.; Laporte, M.; MALET, H.; Neyts, J.
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Oropouche virus (OROV) is an orthobunyavirus that causes increasingly frequent and severe outbreaks in Central and South America. We report that 4'-fluorouridine (4'-FlU) inhibits the in vitro replication of epidemic and pre-epidemic OROV strains in multiple cell lines. In vitro polymerase assays demonstrate that 4'-FlU (as its triphosphate) targets the Peribunyaviridae L protein, is incorporated during RNA synthesis and causes premature chain termination. Following 69 consecutive days of in vitro passages of OROV in the presence of suboptimal concentrations of 4'-FlU, no drug-resistant variants were identified in the viral polymerase. In stringent mouse (AG129) or Syrian hamster OROV-infection models, oral administration of 4'-FlU completely blocked viral replication and virus-induced disease, even when administration was delayed until 72 hours after infection. Our findings support exploring the potential of 4'-FlU for the management of OROV infections in humans.
Osika, K. R.; Leffler, M. E.; Czarnecki, B. A. R.; Christianson, D. W.
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More than one thousand bifunctional terpene synthases combining prenyltransferase and terpene cyclase activities have been identified in bacteria and fungi, but only a handful of enzymes have been identified that combine terpene cyclase activity with a downstream processing activity. Drimenol synthase from the marine bacterium Aquimarina spongiae (AsDMS) consists of a class II terpene cyclase that converts farnesyl diphosphate into drimenyl diphosphate, and a haloacid dehalogenase-like phosphatase that hydrolyzes drimenyl diphosphate to generate the sesquiterpene alcohol drimenol. The first crystal structure of AsDMS to be reported revealed the architecture of domain assembly as well as dimeric quaternary structure, establishing a structural chemical foundation for cyclization and hydrolysis mechanisms [K. R. Osika, M. N. Gaynes, D. W. Christianson (2025) Proc. Natl. Acad. Sci. U.S.A. 122, e2506584122]. Here, we report crystal structures of the catalytically-inactive double mutant, D33A-D323A AsDMS, complexed with farnesyl diphosphate, geranyl diphosphate, and dimethylallyl diphosphate, which bind in the active sites of both the cyclase and phosphatase domains. Molecular recognition of the diphosphate group dominates binding interactions in both active sites. In the cyclase active site, only farnesyl diphosphate is sufficiently long for its terminal isoprenoid C=C bond to bind adjacent to the catalytic general acid that would initiate the cyclization cascade in the wild-type enzyme. In the phosphatase active site, all isoprenoid diphosphate groups bind similarly, but isoprenoid chain conformations vary. These structures provide a foundation for understanding substrate recognition and catalysis in both active sites. Finally, we present kinetic evidence suggesting that substrate channeling is operative in wild-type AsDMS.
Ortiz-Baez, A. S.; Mifsud, J. C. O.; Schwarz, J.; Sadiq, S.; Holmes, E. C.
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Ctenophores and placozoans arose early in metazoan evolution and are characterized by traits associated with key aspects of animal evolution. Despite the evolutionary significance of ctenophores and placozoans, their RNA viromes are poorly understood. To determine the diversity and evolution of RNA virome in these organisms, particularly whether the viruses present with these ancient host lineages similarly occupy basal phylogenetic positions, we analysed publicly available transcriptome data from the Sequence Read Archive (SRA). Accordingly, we identified 26 putative novel viruses classified into 11 virus groups, including members of the families Flaviviridae and Chuviridae. The novel viruses clustered with those previously identified in vertebrates, invertebrates, plants and fungi. Notably, some virus sequences within the Flaviviridae, Chuviridae, Lispiviridae and Marnaviridae were highly divergent, branching deeply relative to their closest known relatives or forming distinct lineages, in some cases suggesting a divergence early in metazoan evolution. In contrast, viruses within the Birnaviridae, Endornaviridae, Mymonaviridae, Narnaviridae, Phasmaviridae, Orthomyxoviridae, Orthototiviridae, and some viruses within the Picornavirales, exhibited patterns consistent with more recent diversification and host jumping. In addition, RNA viruses were detected across multiple species and tissues within the Ctenophora (including whole organisms and embryos) and Placozoa, expanding their host range and highlighting a largely uncharacterized diversity. Together, these findings expand the known diversity and host range of several virus groups, and shed light on virus evolution in early metazoans, demonstrating both host jumping within aquatic environments and virus host-associations that may span the entirety of animal evolution.
Matsui, T.; Inoue, S.; Yanagimoto, S.; Kaneko, A.; Tago, R.; Suto, A.; Odagi, M.; Kodera, Y.; Morita, H.; Abe, I.; Okada, M.
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Quorum sensing in Gram-positive bacteria commonly relies on posttranslationally modified peptide pheromones. In Bacillus subtilis, the prenyltransferase ComQ catalyzes tryptophan prenylation of the quorum-sensing peptide ComX, but the structural basis of this unique peptide modification has remained unclear. Here we identified a previously uncharacterized ComQ homolog, StheQ, and its cognate peptide substrate, StheX, from Sphaerobacter thermophilus and investigated their structural and functional relationship. Liquid chromatography-tandem mass spectrometry (LC-MS/MS) analysis demonstrated that StheQ catalyzes prenylation of the tryptophan residue located second from the C-terminus of StheX. Crystal structures of apo StheQ and its complexes with a farnesyl pyrophosphate analog revealed that StheQ adopts the all--helical fold of the trans-isoprenyl diphosphate synthase (IPPS) superfamily while possessing an active-site architecture adapted for peptide-based indole prenylation. The structures identified a single Mg2+-binding site associated with the first aspartic acid-rich motif and showed no evidence for metal coordination at the pseudo-second aspartic acid-rich motif. Site-directed mutagenesis, complex formation assays, and docking analyses identified a peptide-binding pocket adjacent to the active site and suggested that N215 contributes to productive positioning of the acceptor tryptophan. These findings establish the structural basis for peptide prenylation by a ComQ-family enzyme, providing insight into the evolution of peptide-based indole prenylation within the IPPS superfamily, and support the view that ComQ-family enzymes constitute a distinct functional branch specialized for peptide modification.
Saha, A.; Ghosh, A.; Majumdar, S.
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THAP9 is a transposable element-derived gene which encodes a protein that is homologous to the active Drosophila P-element transposase (DmTNP). Both THAP9 and DmTNP possess a C-terminal domain (CTD) which is functionally uncharacterized. Sequence and structural analysis suggest that the THAP9-CTD has a novel fold which is only found in THAP9 homologs. To explore the evolutionary history and characteristics of this novel domain, exhaustive phylogenetic analysis (using MSA, structure prediction, MSTA-based clustering) was performed. THAP9-CTD homologs were more widely distributed throughout the animal kingdom in comparison to DmTNP-CTD homologs which were restricted to arthropods. Moreover, the THAP9-CTD homologs were more conserved, especially among mammals and birds and their average length increased in a class-specific manner. Comparison with the DmTNP-CTD homologs demonstrates that although their respective CTDs may have evolved independently, they both surprisingly share similar secondary structure elements consisting of three conserved helical regions made of hydrophobic residues that are predicted to make up a conserved core. The role of the respective CTDs were further investigated by creating truncation mutants lacking the CTD. Interestingly both THAP9 and DmTNP truncation mutants are still capable of DNA excision and integration suggesting that their respective CTDs are not essential for DNA transposition. Moreover, CTD truncation favours DNA integration in THAP9: this suggests that CTD acquisition during evolution may have led to THAP9 domestication as observed in other transposable element-derived genes like Rag1 and piggybac, which have similar terminal regulatory domains.
Huang, Y.; Fairall, L.; Muskett, F. W.; Dominguez, C.; Hudson, A.; Schwabe, J. W.
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BACH1 is a heme-regulated basic-leucine-zipper containing transcriptional repressor that binds its DNA recognition elements as a heterodimer with MAFK. Heme-binding is thought to be mediated by several Cys-Proline (CP) motifs and this results in dissociation of the heterodimer from DNA. The mechanism of heme-binding and heme-mediated DNA dissociation remains unresolved. We have used UV-visible spectroscopy, 2D-NMR and DNA-binding assays to explore both heme-binding and DNA dissociation of a minimal BACH1 construct containing 2 CP motifs (C492(CP5) and C646(CP6)) flanking the DNA-binding domain. We find that heme is able to bind to both CP motifs, but also to other non-CP cysteines and histidines in the construct. Using NMR spectroscopy, we identify a structured binding pocket in which heme interacts with both C646(CP6) and Cys621. However, DNA-binding assays show that C646(CP6) is not required for heme-mediated DNA dissociation of the BACH1:MAFK heterodimer. Using UV-visible spectroscopy we show that C492(CP5) also recruits heme with a second ligand, a conserved histidine, His559, in the BACH1 DNA-recognition helix. Mutation of C492(CP5) reduces but does not abolish heme-mediated dissociation from DNA. Our findings suggest a mechanism for heme-binding to BACH1 and heme-mediated dissociation from DNA.
Kobayashi, H.; V. Guzman, H.
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In linear polysomes, excluded-volume interactions among ribosomes can induce dimensional reduction of mRNA. Yet linear architectures allow steric stress to relax at open ends-- limiting how strongly crowding can remodel the mRNA's structure and dynamics. Using coarse-grained molecular-dynamics simulations, we compare circular and linear polysomes over a range of ribosome densities. Circular closure selects a predominantly quasi-planar global conformational ensemble, as indicated by a shape dimensionality dshape {approx} 2 over a range of ribosome densities. Crucially, circular topology and ribosome crowding act cooperatively to suppress structural fluctuations. While closure alone or linear crowding reduces relative global size fluctuations ({Delta}Rg/Rg) only to {approx} 0.16, their combined effect drives this fluctuation down to {approx} 0.07. Within this stabilized architecture, increasing ribosome density drives a distinct in-plane reorganization: the ring becomes more isotropic, global size fluctuations are strongly suppressed, and the scaling exponent increases toward {nu} [~=] 0.74 - 0.77, consistent with two-dimensional self-avoiding walk-like value over the accessible finite-size window, 1000 [≤] N [≤] 4969. Closure shortens the radius-of-gyration decorrelation time of circular polysomes by 40-fold relative to matched linear systems, reflecting the topological elimination of free ends. Within this closureselected ensemble, ribosome crowding further reduces the decorrelation time by up to 20% at the highest density. A fluctuation-informed crossover model links the density dependence of the global scaling exponent to inter-ribosomal subchain statistics. These results distinguish the geometric role of circular closure from the density-dependent steric response that it enables, revealing a confined yet dynamically responsive conformational regime for circular polysomes.
Tanino, H.; Tsujino, H.; Nakao, T.; Oie, C.; Makino, F.; Miyata, T.; Kasai, K.; Namba, K.; Inoue, T.
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Human cytochrome P450 2C9 (CYP2C9) is a hepatic microsomal enzyme involved in the oxidative metabolism of clinically important drugs, but the structural organization of its oligomeric assemblies outside crystallographic packing environments remains poorly understood. Here, we report the cryo-EM structure of human CYP2C9 determined under aqueous, membrane-free conditions at 3.31 Angstrom resolution. The structure reveals a C2-symmetric hexameric assembly organized as a dimer of trimers. Individual protomers retain the conserved P450 fold and heme-binding architecture observed in previously reported crystal structures, indicating that assembly formation does not substantially perturb the catalytic core. The hexamer is stabilized by defined intra-trimer interfaces involving the N-terminal region and residues around Trp212 and Phe482, together with inter-trimer interfaces involving Leu71 and the 220-227 loop. These interfaces are distinct from the crystal packing contacts observed in CYP2C9 crystal structures, demonstrating that the assembly is not a simple recapitulation of crystallographic packing. Notably, the inter-trimer interface is located near the FG-loop-containing surface previously implicated in membrane association. This suggests that the observed hexamer may represent a membrane-free association of two trimers through membrane-related surfaces, whereas the trimeric arrangement itself may be compatible with membrane-associated organization. The structure therefore provides a framework for investigating how trimer formation, membrane interaction and local conformational changes in the FG-loop region may influence CYP2C9 function.
Zeng, A.; Mihut, A.; Anandapadamanaban, M.; Goity, A.; de Barros Dantas, L. L.; Peak Chew, S.-Y.; Hayter, E. A.; Andersson, L. C.; Smith, T.; Seinkmane, E.; Stangherlin, A.; James, N. R.; Beresford, C.; Farnsworth, J.; Menzies, J.; al-Rawi, A.; Holt, L. J.; Derivery, E.; Edgar, R. S.; Madsen, R. R.; Bechtold, D. A.; Larrondo, L. F.; Dodd, A. N.; Rihel, J.; Ratto, G. M.; Williams, J.; Newham, P.; Hilgendorf, C.; Beale, A. D.; Lodovichi, C.; O'Neill, J. S.
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Circadian rhythms in transcription are facilitated by well-defined genetic circuits, but how molecular clocks drive daily rhythms in mammalian physiology is poorly understood. The mechanistic target-of-rapamycin (mTOR) complex integrates daily systemic and circadian intracellular timing cues for input into the cellular timekeeping machinery. Here we demonstrate that mTOR is a major clock output pathway whose activity is required for most daily variation in cellular and organismal physiology, with PERIOD2 shown to interact directly with mTORC1. Acute mTOR inhibition abolishes functional rhythms in cells and most daily variation in mouse liver physiology. mTOR activity is not required for clock protein or locomotor rhythms, indicating that mTOR is not part of the cellular or central circadian timekeeping mechanism. In the forebrain, mTOR activity is required for most detectable daily rhythms in protein abundance and phosphorylation; however, the daily architecture of the sleep/wake cycle is remarkably preserved in mice and zebrafish under mTOR blockade, with a significant increase in wakefulness. Clock outputs in Arabidopsis (plant) and Neurospora (fungus) are also more sensitive to mTOR inhibition than core clock mechanisms indicating evolutionary conservation of mTOR as a circadian effector. We conclude that most but not all daily physiological rhythms in mammalian cells and tissues depend on rhythmic regulation by the mTOR pathway.