Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 1.725
Filter
Add more filters

Publication year range
1.
Cell ; 173(5): 1204-1216.e26, 2018 05 17.
Article in English | MEDLINE | ID: mdl-29628141

ABSTRACT

Pseudouridylation (Ψ) is the most abundant and widespread type of RNA epigenetic modification in living organisms; however, the biological role of Ψ remains poorly understood. Here, we show that a Ψ-driven posttranscriptional program steers translation control to impact stem cell commitment during early embryogenesis. Mechanistically, the Ψ "writer" PUS7 modifies and activates a novel network of tRNA-derived small fragments (tRFs) targeting the translation initiation complex. PUS7 inactivation in embryonic stem cells impairs tRF-mediated translation regulation, leading to increased protein biosynthesis and defective germ layer specification. Remarkably, dysregulation of this posttranscriptional regulatory circuitry impairs hematopoietic stem cell commitment and is common to aggressive subtypes of human myelodysplastic syndromes. Our findings unveil a critical function of Ψ in directing translation control in stem cells with important implications for development and disease.


Subject(s)
Intramolecular Transferases/metabolism , Protein Biosynthesis , Pseudouridine/metabolism , RNA, Transfer/metabolism , Adaptor Proteins, Signal Transducing/metabolism , Animals , Cell Cycle Proteins , Cell Differentiation , Eukaryotic Initiation Factors/metabolism , Hematopoietic Stem Cells/cytology , Hematopoietic Stem Cells/metabolism , Human Embryonic Stem Cells/cytology , Human Embryonic Stem Cells/metabolism , Humans , Intramolecular Transferases/antagonists & inhibitors , Intramolecular Transferases/genetics , Mice , Mice, Inbred NOD , Mice, SCID , Myelodysplastic Syndromes/pathology , Nucleic Acid Conformation , Phosphoproteins/metabolism , Poly(A)-Binding Protein I/antagonists & inhibitors , Poly(A)-Binding Protein I/genetics , Poly(A)-Binding Protein I/metabolism , RNA Interference , RNA, Small Interfering/metabolism , Stem Cell Niche
2.
Mol Cell ; 84(13): 2472-2489.e8, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38996458

ABSTRACT

Pseudouridine (Ψ), the isomer of uridine, is ubiquitously found in RNA, including tRNA, rRNA, and mRNA. Human pseudouridine synthase 3 (PUS3) catalyzes pseudouridylation of position 38/39 in tRNAs. However, the molecular mechanisms by which it recognizes its RNA targets and achieves site specificity remain elusive. Here, we determine single-particle cryo-EM structures of PUS3 in its apo form and bound to three tRNAs, showing how the symmetric PUS3 homodimer recognizes tRNAs and positions the target uridine next to its active site. Structure-guided and patient-derived mutations validate our structural findings in complementary biochemical assays. Furthermore, we deleted PUS1 and PUS3 in HEK293 cells and mapped transcriptome-wide Ψ sites by Pseudo-seq. Although PUS1-dependent sites were detectable in tRNA and mRNA, we found no evidence that human PUS3 modifies mRNAs. Our work provides the molecular basis for PUS3-mediated tRNA modification in humans and explains how its tRNA modification activity is linked to intellectual disabilities.


Subject(s)
Cryoelectron Microscopy , Hydro-Lyases , Intramolecular Transferases , Pseudouridine , RNA, Transfer , Humans , Catalytic Domain , HEK293 Cells , Hydro-Lyases/metabolism , Hydro-Lyases/genetics , Hydro-Lyases/chemistry , Intellectual Disability/genetics , Intellectual Disability/metabolism , Intellectual Disability/enzymology , Models, Molecular , Mutation , Protein Binding , Pseudouridine/metabolism , Pseudouridine/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Transfer/metabolism , RNA, Transfer/genetics , Substrate Specificity
3.
Mol Cell ; 82(3): 645-659.e9, 2022 02 03.
Article in English | MEDLINE | ID: mdl-35051350

ABSTRACT

Pseudouridine is a modified nucleotide that is prevalent in human mRNAs and is dynamically regulated. Here, we investigate when in their life cycle mRNAs become pseudouridylated to illuminate the potential regulatory functions of endogenous mRNA pseudouridylation. Using single-nucleotide resolution pseudouridine profiling on chromatin-associated RNA from human cells, we identified pseudouridines in nascent pre-mRNA at locations associated with alternatively spliced regions, enriched near splice sites, and overlapping hundreds of binding sites for RNA-binding proteins. In vitro splicing assays establish a direct effect of individual endogenous pre-mRNA pseudouridines on splicing efficiency. We validate hundreds of pre-mRNA sites as direct targets of distinct pseudouridine synthases and show that PUS1, PUS7, and RPUSD4-three pre-mRNA-modifying pseudouridine synthases with tissue-specific expression-control widespread changes in alternative pre-mRNA splicing and 3' end processing. Our results establish a vast potential for cotranscriptional pre-mRNA pseudouridylation to regulate human gene expression via alternative pre-mRNA processing.


Subject(s)
Alternative Splicing , Intramolecular Transferases/metabolism , RNA 3' End Processing , RNA Precursors/metabolism , RNA, Messenger/metabolism , Transcription, Genetic , Carcinoma, Hepatocellular/enzymology , Carcinoma, Hepatocellular/genetics , Gene Expression Regulation, Neoplastic , HEK293 Cells , Hep G2 Cells , Humans , Intramolecular Transferases/genetics , Liver Neoplasms/enzymology , Liver Neoplasms/genetics , RNA Precursors/genetics , RNA, Messenger/genetics
4.
Cell ; 159(1): 148-162, 2014 Sep 25.
Article in English | MEDLINE | ID: mdl-25219674

ABSTRACT

Pseudouridine is the most abundant RNA modification, yet except for a few well-studied cases, little is known about the modified positions and their function(s). Here, we develop Ψ-seq for transcriptome-wide quantitative mapping of pseudouridine. We validate Ψ-seq with spike-ins and de novo identification of previously reported positions and discover hundreds of unique sites in human and yeast mRNAs and snoRNAs. Perturbing pseudouridine synthases (PUS) uncovers which pseudouridine synthase modifies each site and their target sequence features. mRNA pseudouridinylation depends on both site-specific and snoRNA-guided pseudouridine synthases. Upon heat shock in yeast, Pus7p-mediated pseudouridylation is induced at >200 sites, and PUS7 deletion decreases the levels of otherwise pseudouridylated mRNA, suggesting a role in enhancing transcript stability. rRNA pseudouridine stoichiometries are conserved but reduced in cells from dyskeratosis congenita patients, where the PUS DKC1 is mutated. Our work identifies an enhanced, transcriptome-wide scope for pseudouridine and methods to dissect its underlying mechanisms and function.


Subject(s)
Pseudouridine/analysis , RNA, Messenger/chemistry , RNA, Untranslated/chemistry , Animals , Candida albicans/genetics , Candida albicans/metabolism , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , Dyskeratosis Congenita/genetics , Dyskeratosis Congenita/metabolism , Gene Expression Profiling , Humans , Intramolecular Transferases/chemistry , Intramolecular Transferases/metabolism , Mice , Molecular Sequence Data , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Pseudouridine/metabolism , RNA/chemistry , RNA/genetics , RNA, Ribosomal/chemistry , RNA, Ribosomal/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Substrate Specificity , Telomerase/chemistry , Telomerase/genetics
5.
Annu Rev Genet ; 54: 309-336, 2020 11 23.
Article in English | MEDLINE | ID: mdl-32870730

ABSTRACT

Recent advances in pseudouridine detection reveal a complex pseudouridine landscape that includes messenger RNA and diverse classes of noncoding RNA in human cells. The known molecular functions of pseudouridine, which include stabilizing RNA conformations and destabilizing interactions with varied RNA-binding proteins, suggest that RNA pseudouridylation could have widespread effects on RNA metabolism and gene expression. Here, we emphasize how much remains to be learned about the RNA targets of human pseudouridine synthases, their basis for recognizing distinct RNA sequences, and the mechanisms responsible for regulated RNA pseudouridylation. We also examine the roles of noncoding RNA pseudouridylation in splicing and translation and point out the potential effects of mRNA pseudouridylation on protein production, including in the context of therapeutic mRNAs.


Subject(s)
Pseudouridine/genetics , RNA/genetics , Animals , Base Sequence/genetics , Humans , Intramolecular Transferases/genetics , RNA Splicing/genetics , RNA, Messenger/genetics
6.
PLoS Genet ; 20(9): e1011100, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39241085

ABSTRACT

Pseudouridine (Ψ) is an ubiquitous RNA modification, present in the tRNAs and rRNAs of species across all domains of life. Conserved pseudouridine synthases modify the mRNAs of diverse eukaryotes, but the modification has yet to be identified in bacterial mRNAs. Here, we report the discovery of pseudouridines in mRNA from E. coli. By testing the mRNA modification capacity of all 11 known pseudouridine synthases, we identify RluA as the predominant mRNA-modifying enzyme. RluA, a known tRNA and 23S rRNA pseudouridine synthase, modifies at least 31 of the 44 high-confidence sites we identified in E. coli mRNAs. Using RNA structure probing data to inform secondary structures, we show that the target sites of RluA occur in a common sequence and structural motif comprised of a ΨURAA sequence located in the loop of a short hairpin. This recognition element is shared with previously identified target sites of RluA in tRNAs and rRNA. Overall, our work identifies pseudouridine in key mRNAs and suggests the capacity of Ψ to regulate the transcripts that contain it.


Subject(s)
Escherichia coli Proteins , Escherichia coli , Nucleic Acid Conformation , Pseudouridine , RNA, Messenger , Escherichia coli/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , Pseudouridine/genetics , Pseudouridine/metabolism , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , RNA, Transfer/genetics , RNA, Bacterial/genetics , RNA, Bacterial/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism , RNA, Ribosomal, 23S/genetics , RNA Processing, Post-Transcriptional , Phosphorus-Oxygen Lyases/genetics , Phosphorus-Oxygen Lyases/metabolism
7.
RNA ; 30(5): 530-536, 2024 Apr 16.
Article in English | MEDLINE | ID: mdl-38531650

ABSTRACT

Pseudouridine is an abundant mRNA modification found in diverse organisms ranging from bacteria and viruses to multicellular plants and humans. New developments in pseudouridine profiling provide quantitative tools to map mRNA pseudouridylation sites. Sparse biochemical studies establish the potential for mRNA pseudouridylation to affect most stages of the mRNA life cycle from birth to death. This recent progress sets the stage for deeper investigations into the molecular and cellular functions of specific mRNA pseudouridines, including in disease.


Subject(s)
RNA, Messenger , Research , RNA, Messenger/chemistry , RNA, Messenger/metabolism , Intramolecular Transferases/metabolism , Transcription, Genetic , RNA Precursors/chemistry , RNA Precursors/metabolism , RNA-Binding Proteins/metabolism , Protein Biosynthesis , Protein Binding , Humans , Animals , Research/trends
8.
Nucleic Acids Res ; 52(8): 4644-4658, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38375885

ABSTRACT

Pseudouridine, one of the most abundant RNA modifications, is synthesized by stand-alone or RNA-guided pseudouridine synthases. Here, we comprehensively mapped pseudouridines in rRNAs, tRNAs and small RNAs in the archaeon Sulfolobus islandicus and identified Cbf5-associated H/ACA RNAs. Through genetic deletion and in vitro modification assays, we determined the responsible enzymes for these modifications. The pseudouridylation machinery in S. islandicus consists of the stand-alone enzymes aPus7 and aPus10, and six H/ACA RNA-guided enzymes that account for all identified pseudouridines. These H/ACA RNAs guide the modification of all eleven sites in rRNAs, two sites in tRNAs, and two sites in CRISPR RNAs. One H/ACA RNA shows exceptional versatility by targeting eight different sites. aPus7 and aPus10 are responsible for modifying positions 13, 54 and 55 in tRNAs. We identified four atypical H/ACA RNAs that lack the lower stem and the ACA motif and confirmed their function both in vivo and in vitro. Intriguingly, atypical H/ACA RNAs can be modified by Cbf5 in a guide-independent manner. Our data provide the first global view of pseudouridylation in archaea and reveal unexpected structures, substrates, and activities of archaeal H/ACA RNPs.


Subject(s)
Pseudouridine , RNA, Archaeal , RNA, Transfer , Sulfolobus , Pseudouridine/metabolism , Sulfolobus/genetics , Sulfolobus/metabolism , RNA, Transfer/metabolism , RNA, Transfer/genetics , RNA, Archaeal/genetics , RNA, Archaeal/metabolism , RNA, Archaeal/chemistry , RNA, Ribosomal/metabolism , RNA, Ribosomal/genetics , Archaeal Proteins/metabolism , Archaeal Proteins/genetics , RNA Processing, Post-Transcriptional , RNA, Guide, CRISPR-Cas Systems/genetics , RNA, Guide, CRISPR-Cas Systems/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism
9.
J Biol Chem ; 300(9): 107667, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39128721

ABSTRACT

Isochorismate-derived metabolism enables biosynthesis of the plant defense hormone salicylic acid (SA) and its derivatives. In Arabidopsis thaliana, the stress-induced accumulation of SA depends on ISOCHORISMATE SYNTHASE1 (ICS1) and also requires the presumed isochorismate transporter ENHANCED DISEASE SUSCEPTIBILITY5 (EDS5) and the GH3 enzyme avrPphB SUSCEPTIBLE3 (PBS3). By comparative metabolite and structural analyses, we identified several hitherto unreported ICS1- and EDS5-dependent, biotic stress-inducible Arabidopsis metabolites. These involve meta-substituted SA derivatives (5-formyl-SA, 5-carboxy-SA, 5-carboxymethyl-SA), their benzoic acid (BA) analogs (3-formyl-BA, 3-carboxy-BA, 3-carboxymethyl-BA), and besides the previously detected salicyloyl-aspartate (SA-Asp), the ester conjugate salicyloyl-malate (SA-Mal). SA functions as a biosynthetic precursor for SA-Mal and SA-Asp, but not for the meta-substituted SA- and BA-derivatives, which accumulate to moderate levels at later stages of bacterial infection. Interestingly, Arabidopsis leaves possess oxidizing activity to effectively convert meta-formyl- into meta-carboxy-SA/BAs. In contrast to SA, exogenously applied meta-substituted SA/BA-derivatives and SA-Mal exert a moderate impact on plant immunity and defence-related gene expression. While the isochorismate-derived metabolites are negatively regulated by the SA receptor NON-EXPRESSOR OF PR GENES1, SA conjugates (SA-Mal, SA-Asp, SA-glucose conjugates) and meta-substituted SA/BA-derivatives are oppositely affected by PBS3. Notably, our data indicate a PBS3-independent path to isochorismate-derived SA at later stages of bacterial infection, which does not considerably impact immune-related characteristics. Moreover, our results argue against a previously proposed role of EDS5 in the biosynthesis of the immune signal N-hydroxypipecolic acid and associated transport processes. We propose a significantly extended biochemical scheme of plant isochorismate metabolism that involves an alternative generation mode for benzoate- and salicylate-derivatives.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Intramolecular Transferases , Malates , Plant Immunity , Arabidopsis/immunology , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/immunology , Malates/metabolism , Malates/chemistry , Intramolecular Transferases/metabolism , Intramolecular Transferases/genetics , Salicylic Acid/metabolism , Salicylic Acid/chemistry , Benzoates/chemistry , Benzoates/metabolism , Chorismic Acid/metabolism , Gene Expression Regulation, Plant , Plant Diseases/immunology , Plant Diseases/microbiology
10.
Plant J ; 118(5): 1635-1651, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38498624

ABSTRACT

The SID2 (SA INDUCTION-DEFICIENT2) gene that encodes ICS1 (isochorismate synthase), plays a central role in salicylic acid biosynthesis in Arabidopsis. The sid2 and NahG (encoding a bacterial SA hydroxylase) overexpressing mutants (NahG-OE) have currently been shown to outperform wild type, presenting delayed leaf senescence, higher plant biomass and better seed yield. When grown under sulfate-limited conditions (low-S), sid2 mutants exhibited early leaf yellowing compared to the NahG-OE, the npr1 mutant affected in SA signaling pathway, and WT. This indicated that the hypersensitivity of sid2 to sulfate limitation was independent of the canonical npr1 SA-signaling pathway. Transcriptomic and proteomic analyses revealed that major changes occurred in sid2 when cultivated under low-S, changes that were in good accordance with early senescence phenotype and showed the exacerbation of stress responses. The sid2 mutants displayed a lower sulfate uptake capacity when cultivated under low-S and lower S concentrations in their rosettes. Higher glutathione concentrations in sid2 rosettes under low-S were in good accordance with the higher abundance of proteins involved in glutathione and ascorbate redox metabolism. Amino acid and lipid metabolisms were also strongly modified in sid2 under low-S. Depletion of total fatty acids in sid2 under low-S was consistent with the fact that S-metabolism plays a central role in lipid synthesis. Altogether, our results show that functional ICS1 is important for plants to cope with S limiting conditions.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Intramolecular Transferases , Sulfur , Arabidopsis/genetics , Arabidopsis/physiology , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism , Sulfur/metabolism , Mutation , Gene Expression Regulation, Plant , Salicylic Acid/metabolism , Plant Leaves/metabolism , Plant Leaves/genetics , Proteomics , Transcriptome , Multiomics
11.
Plant J ; 118(3): 731-752, 2024 May.
Article in English | MEDLINE | ID: mdl-38226777

ABSTRACT

Prunella vulgaris is one of the bestselling and widely used medicinal herbs. It is recorded as an ace medicine for cleansing and protecting the liver in Chinese Pharmacopoeia and has been used as the main constitutions of many herbal tea formulas in China for centuries. It is also a traditional folk medicine in Europe and other countries of Asia. Pentacyclic triterpenoids are a major class of bioactive compounds produced in P. vulgaris. However, their biosynthetic mechanism remains to be elucidated. Here, we report a chromosome-level reference genome of P. vulgaris using an approach combining Illumina, ONT, and Hi-C technologies. It is 671.95 Mb in size with a scaffold N50 of 49.10 Mb and a complete BUSCO of 98.45%. About 98.31% of the sequence was anchored into 14 pseudochromosomes. Comparative genome analysis revealed a recent WGD in P. vulgaris. Genome-wide analysis identified 35 932 protein-coding genes (PCGs), of which 59 encode enzymes involved in 2,3-oxidosqualene biosynthesis. In addition, 10 PvOSC, 358 PvCYP, and 177 PvUGT genes were identified, of which five PvOSCs, 25 PvCYPs, and 9 PvUGTs were predicted to be involved in the biosynthesis of pentacyclic triterpenoids. Biochemical activity assay of PvOSC2, PvOSC4, and PvOSC6 recombinant proteins showed that they were mixed amyrin synthase (MAS), lupeol synthase (LUS), and ß-amyrin synthase (BAS), respectively. The results provide a solid foundation for further elucidating the biosynthetic mechanism of pentacyclic triterpenoids in P. vulgaris.


Subject(s)
Chromosomes, Plant , Genome, Plant , Pentacyclic Triterpenes , Prunella , Prunella/genetics , Prunella/metabolism , Pentacyclic Triterpenes/metabolism , Genome, Plant/genetics , Chromosomes, Plant/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Phylogeny , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism , Triterpenes/metabolism
12.
Mol Microbiol ; 121(5): 912-926, 2024 05.
Article in English | MEDLINE | ID: mdl-38400525

ABSTRACT

Fungal cell walls represent the frontline contact with the host and play a prime role in pathogenesis. While the roles of the cell wall polymers like chitin and branched ß-glucan are well understood in vegetative and pathogenic development, that of the most prominent galactose-containing polymers galactosaminogalactan and fungal-type galactomannan is unknown in plant pathogenic fungi. Mining the genome of the maize pathogen Colletotrichum graminicola identified the single-copy key galactose metabolism genes UGE1 and UGM1, encoding a UDP-glucose-4-epimerase and UDP-galactopyranose mutase, respectively. UGE1 is thought to be required for biosynthesis of both polymers, whereas UGM1 is specifically required for fungal-type galactomannan formation. Promoter:eGFP fusion strains revealed that both genes are expressed in vegetative and in pathogenic hyphae at all stages of pathogenesis. Targeted deletion of UGE1 and UGM1, and fluorescence-labeling of galactosaminogalactan and fungal-type galactomannan confirmed that Δuge1 mutants were unable to synthesize either of these polymers, and Δugm1 mutants did not exhibit fungal-type galactomannan. Appressoria of Δuge1, but not of Δugm1 mutants, were defective in adhesion, highlighting a function of galactosaminogalactan in the establishment of these infection cells on hydrophobic surfaces. Both Δuge1 and Δugm1 mutants showed cell wall defects in older vegetative hyphae and severely reduced appressorial penetration competence. On intact leaves of Zea mays, both mutants showed strongly reduced disease symptom severity, indicating that UGE1 and UGM1 represent novel virulence factors of C. graminicola.


Subject(s)
Colletotrichum , Fungal Proteins , Galactose , Plant Diseases , Virulence Factors , Zea mays , Cell Wall/metabolism , Colletotrichum/genetics , Colletotrichum/metabolism , Colletotrichum/pathogenicity , Fungal Proteins/genetics , Fungal Proteins/metabolism , Galactans/metabolism , Galactose/metabolism , Galactose/analogs & derivatives , Hyphae/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism , Mannans/metabolism , Plant Diseases/microbiology , UDPglucose 4-Epimerase/metabolism , UDPglucose 4-Epimerase/genetics , Virulence/genetics , Virulence Factors/genetics , Virulence Factors/metabolism , Zea mays/microbiology
13.
Plant Physiol ; 194(4): 2580-2599, 2024 Mar 29.
Article in English | MEDLINE | ID: mdl-38101922

ABSTRACT

Triterpenes are a class of bioactive compounds with diverse biological functions, playing pivotal roles in plant defense against biotic stressors. Oxidosqualene cyclases (OSCs) serve as gatekeepers in the biosynthesis of triterpenes. In this study, we utilized a Nicotiana benthamiana heterologous expression system to characterize NaOSC1 from Nicotiana attenuata as a multifunctional enzyme capable of synthesizing lupeol, dammarenediol II, 3-alpha,20-lupanediol, and 7 other triterpene scaffolds. We also demonstrated that NaOSC2 is, in contrast, a selective enzyme, producing only the ß-amyrin scaffold. Through virus-induced gene silencing and in vitro toxicity assays, we elucidated the roles of NaOSC1 and NaOSC2 in the defense of N. attenuata against Manduca sexta larvae. Metabolomic and feature-based molecular network analyses of leaves with silenced NaOSC1 and NaOSC2 unveiled 3 potential triterpene glycoside metabolite clusters. Interestingly, features identified as triterpenes within these clusters displayed a significant negative correlation with larval mass. Our study highlights the pivotal roles of NaOSC1 and NaOSC2 from N. attenuata in the initial steps of triterpene biosynthesis, subsequently influencing defense against M. sexta through the modulation of downstream triterpene glycoside compounds.


Subject(s)
Intramolecular Transferases , Manduca , Triterpenes , Animals , Nicotiana/genetics , Triterpenes/metabolism , Pentacyclic Triterpenes , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism , Larva/metabolism
14.
Plant Physiol ; 196(2): 773-787, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38701037

ABSTRACT

Salicylic acid (SA) plays a crucial role in plant defense against biotrophic and semibiotrophic pathogens. In Arabidopsis (Arabidopsis thaliana), isochorismate synthase 1 (AtICS1) is a key enzyme for the pathogen-induced biosynthesis of SA via catalytic conversion of chorismate into isochorismate, an essential precursor for SA synthesis. Despite the extensive knowledge of ICS1-related menaquinone, siderophore, and tryptophan (MST) enzymes in bacteria, the structural mechanisms for substrate binding and catalysis in plant isochorismate synthase (ICS) enzymes are unknown. This study reveals that plant ICS enzymes catalyze the isomerization of chorismate through a magnesium-dependent mechanism, with AtICS1 exhibiting the most substantial catalytic activity. Additionally, we present high-resolution crystal structures of apo AtICS1 and its complex with chorismate, offering detailed insights into the mechanisms of substrate recognition and catalysis. Importantly, our investigation indicates the existence of a potential substrate entrance channel and a gating mechanism regulating substrate into the catalytic site. Structural comparisons of AtICS1 with MST enzymes suggest a shared structural framework with conserved gating and catalytic mechanisms. This work provides valuable insights into the structural and regulatory mechanisms governing substrate delivery and catalysis in AtICS1, as well as other plant ICS enzymes.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Catalytic Domain , Chorismic Acid , Intramolecular Transferases , Chorismic Acid/metabolism , Arabidopsis/enzymology , Arabidopsis/genetics , Intramolecular Transferases/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/chemistry , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/chemistry , Magnesium/metabolism , Crystallography, X-Ray , Isomerism , Models, Molecular , Substrate Specificity
15.
Plant Cell ; 34(11): 4623-4640, 2022 10 27.
Article in English | MEDLINE | ID: mdl-35972388

ABSTRACT

Tetrapyrroles play fundamental roles in crucial processes including photosynthesis, respiration, and catalysis. In plants, 5-aminolevulinic acid (ALA) is the common precursor of tetrapyrroles. ALA is synthesized from activated glutamate by the enzymes glutamyl-tRNA reductase (GluTR) and glutamate-1-semialdehyde aminotransferase (GSAAT). ALA synthesis is recognized as the rate-limiting step in this pathway. We aimed to explore the contribution of GSAAT to the control of ALA synthesis and the formation of a protein complex with GluTR. In Arabidopsis thaliana, two genes encode GSAAT isoforms: GSA1 and GSA2. A comparison of two GSA knockout mutants with the wild-type revealed the correlation of reduced GSAAT activity and ALA-synthesizing capacity in leaves with lower chlorophyll content. Growth and green pigmentation were more severely impaired in gsa2 than in gsa1, indicating the predominant role of GSAAT2 in ALA synthesis. Interestingly, GluTR accumulated to higher levels in gsa2 than in the wild-type and was mainly associated with the plastid membrane. We propose that the GSAAT content modulates the amount of soluble GluTR available for ALA synthesis. Several different biochemical approaches revealed the GSAAT-GluTR interaction through the assistance of GluTR-binding protein (GBP). A modeled structure of the tripartite protein complex indicated that GBP mediates the stable association of GluTR and GSAAT for adequate ALA synthesis.


Subject(s)
Aldehyde Oxidoreductases , Aminolevulinic Acid , Arabidopsis Proteins , Arabidopsis , Intramolecular Transferases , Transaminases , Aldehyde Oxidoreductases/metabolism , Aminolevulinic Acid/metabolism , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Carrier Proteins/metabolism , Glutamates/metabolism , Tetrapyrroles/metabolism , Transaminases/genetics , Transaminases/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism
16.
Proc Natl Acad Sci U S A ; 119(12): e2118709119, 2022 03 22.
Article in English | MEDLINE | ID: mdl-35290128

ABSTRACT

Triterpenoids are biologically active metabolites synthesized from a common linear precursor catalyzed by 2,3-oxidosqualene cyclases (OSCs) to form diverse triterpenoid skeletons. OSCs corresponding to many discovered triterpene alcohols in nature have not been functionally and mechanistically characterized due to the diversity of chemical structures and complexity of the cyclization mechanism. We carried out a genome-wide investigation of OSCs from Avena strigosa and discovered two triterpene synthases, namely, AsHS1 and AsHS2, using a Nicotiana benthamiana expression system. These synthases produce hopenol B and hop-17(21)-en-3ß-ol, which are components of surface wax in oat panicles and sheathes, respectively. We demonstrated that substitutions of two to three amino acid residues in AsHS1 with corresponding residues from AsHS2 allowed it to be completely converted into a hop-17(21)-en-3ß-ol synthase. AsHS2 mutants with a substitution at site 410 could synthesize hopenol B alone or mixed with a side product isomotiol. The combined quantum mechanics and molecular mechanics calculation demonstrated that the side chain size of the residue at site 410 regulated the relative orientations between the hopyl C22 cation and Phe257, leading to a difference in deprotonation positions through providing or not providing cation­π interaction between the aromatic ring of F257 and the carbocation intermediate. A similar mechanism could be applied to a hopenol B synthase from a dicotyledonous plant Aquilegia. This study provided mechanistic insight into triterpenoid synthesis and discovered key amino acid residues acting on hydride transfer and a deprotonation site to differentiate between hopane-type scaffolds in diverse plant species.


Subject(s)
Intramolecular Transferases , Triterpenes , Avena/genetics , Intramolecular Transferases/genetics , Plants
17.
Biochemistry ; 63(7): 913-925, 2024 04 02.
Article in English | MEDLINE | ID: mdl-38471967

ABSTRACT

Several anaerobic bacterial species, including the Gram-negative oral bacterium Fusobacterium nucleatum, ferment lysine to produce butyrate, acetate, and ammonia. The second step of the metabolic pathway─isomerization of ß-l-lysine to erythro-3,5-diaminohexanoate─is catalyzed by the adenosylcobalamin (AdoCbl) and pyridoxal 5'-phosphate (PLP)-dependent enzyme, lysine 5,6-aminomutase (5,6-LAM). Similar to other AdoCbl-dependent enzymes, 5,6-LAM undergoes mechanism-based inactivation due to loss of the AdoCbl 5'-deoxyadenosyl moiety and oxidation of the cob(II)alamin intermediate to hydroxocob(III)alamin. Herein, we identified kamB and kamC, two genes responsible for ATP-dependent reactivation of 5,6-LAM. KamB and KamC, which are encoded upstream of the genes corresponding to α and ß subunits of 5,6-LAM (kamD and kamE), co-purified following coexpression of the genes in Escherichia coli. KamBC exhibited a basal level of ATP-hydrolyzing activity that was increased 35% in a reaction mixture that facilitated 5,6-LAM turnover with ß-l-lysine or d,l-lysine. Ultraviolet-visible (UV-vis) spectroscopic studies performed under anaerobic conditions revealed that KamBC in the presence of ATP/Mg2+ increased the steady-state concentration of the cob(II)alamin intermediate in the presence of excess ß-l-lysine. Using a coupled UV-visible spectroscopic assay, we show that KamBC is able to reactivate 5,6-LAM through exchange of the damaged hydroxocob(III)alamin for AdoCbl. KamBC is also specific for 5,6-LAM as it had no effect on the rate of substrate-induced inactivation of the homologue, ornithine 4,5-aminomutase. Based on sequence homology, KamBC is structurally distinct from previously characterized B12 chaperones and reactivases, and correspondingly adds to the list of proteins that have evolved to maintain the cellular activity of B12 enzymes.


Subject(s)
Intramolecular Transferases , Lysine , Lysine/metabolism , Intramolecular Transferases/metabolism , Cobamides/metabolism , Adenosine Triphosphate
18.
J Biol Chem ; 299(2): 102903, 2023 02.
Article in English | MEDLINE | ID: mdl-36642179

ABSTRACT

Members of glycosyltransferase family 75 (GT75) not only reversibly catalyze the autoglycosylation of a conserved arginine residue with specific NDP-sugars but also exhibit NDP-pyranose mutase activity that reversibly converts specific NDP-pyranose to NDP-furanose. The latter activity provides valuable NDP-furanosyl donors for glycosyltransferases and requires a divalent cation as a cofactor instead of FAD used by UDP-D-galactopyranose mutase. However, details of the mechanism for NDP-pyranose mutase activity are not clear. Here we report the first crystal structures of GT75 family NDP-pyranose mutases. The novel structures of GT75 member MtdL in complex with Mn2+ and GDP, GDP-D-glucopyranose, GDP-L-fucopyranose, GDP-L-fucofuranose, respectively, combined with site-directed mutagenesis studies, reveal key residues involved in Mn2+ coordination, substrate binding, and catalytic reactions. We also provide a possible catalytic mechanism for this unique type of NDP-pyranose mutase. Taken together, our results highlight key elements of an enzyme family important for furanose biosynthesis.


Subject(s)
Actinobacteria , Glycosyltransferases , Intramolecular Transferases , Galactose/metabolism , Glycosyltransferases/chemistry , Glycosyltransferases/genetics , Glycosyltransferases/metabolism , Intramolecular Transferases/chemistry , Intramolecular Transferases/genetics , Intramolecular Transferases/metabolism , Mutagenesis, Site-Directed , Actinobacteria/enzymology
19.
EMBO J ; 39(20): e104708, 2020 10 15.
Article in English | MEDLINE | ID: mdl-32926445

ABSTRACT

Let-7 is an evolutionary conserved microRNA that mediates post-transcriptional gene silencing to regulate a wide range of biological processes, including development, differentiation, and tumor suppression. Let-7 biogenesis is tightly regulated by several RNA-binding proteins, including Lin28A/B, which represses let-7 maturation. To identify new regulators of let-7, we devised a cell-based functional screen of RNA-binding proteins using a let-7 sensor luciferase reporter and identified the tRNA pseudouridine synthase, TruB1. TruB1 enhanced maturation specifically of let-7 family members. Rather than inducing pseudouridylation of the miRNAs, high-throughput sequencing crosslinking immunoprecipitation (HITS-CLIP) and biochemical analyses revealed direct binding between endogenous TruB1 and the stem-loop structure of pri-let-7, which also binds Lin28A/B. TruB1 selectively enhanced the interaction between pri-let-7 and the microprocessor DGCR8, which mediates miRNA maturation. Finally, TruB1 suppressed cell proliferation, which was mediated in part by let-7. Altogether, we reveal an unexpected function for TruB1 in promoting let-7 maturation.


Subject(s)
Cell Proliferation/genetics , Intramolecular Transferases/metabolism , MicroRNAs/metabolism , RNA Processing, Post-Transcriptional/genetics , RNA-Binding Proteins/metabolism , Amino Acid Motifs , Cell Line, Tumor , Cell Survival , Gene Knockdown Techniques , Humans , Immunoprecipitation , Intramolecular Transferases/genetics , MicroRNAs/genetics , Protein Binding , Recombinant Proteins
20.
Biochem Biophys Res Commun ; 721: 150122, 2024 08 20.
Article in English | MEDLINE | ID: mdl-38776834

ABSTRACT

Let-7 was one of the first microRNAs (miRNAs) to be discovered and its expression promotes differentiation during development and function as tumor suppressors in various cancers. The maturation process of let-7 miRNA is tightly regulated by multiple RNA-binding proteins. For example, LIN28 binds to the terminal loops of the precursors of let-7 family and block their processing into mature miRNAs. Trim25 promotes the uridylation-mediated degradation of pre-let-7 modified by LIN28/TUT4. Recently, human pseudouridine synthase TruB1 has been reported to facilitate let-7 maturation by directly binding to pri-let-7 and recruiting Drosha-DGCR8 microprocessor. Through biochemical assay and structural investigation, we show that human TruB1 binds specifically the terminal loop of pri-let-7a1 at nucleotides 31-41, which folds as a small stem-loop architecture. Although TruB1 recognizes the terminal loop of pri-let-7a1 in a way similar to how E. coli TruB interacts with tRNA, a conserved KRKK motif in human and other higher eukaryotes adds an extra binding interface and strengthens the recognition of TruB1 for pri-let-7a1 through electrostatic interactions. These findings reveal the structural basis of TruB1-pri-let-7 interaction which may assists the elucidation of precise role of TruB1 in biogenesis of let-7.


Subject(s)
MicroRNAs , Humans , MicroRNAs/metabolism , MicroRNAs/genetics , Protein Binding , Models, Molecular , Intramolecular Transferases/metabolism , Intramolecular Transferases/chemistry , Intramolecular Transferases/genetics , Nucleic Acid Conformation , Binding Sites , Amino Acid Sequence , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/chemistry , RNA-Binding Proteins/genetics
SELECTION OF CITATIONS
SEARCH DETAIL