An Oxocarbenium-Ion Intermediate of a Ribozyme Reaction Indicated by Kinetic Isotope Effects

Total Page:16

File Type:pdf, Size:1020Kb

An Oxocarbenium-Ion Intermediate of a Ribozyme Reaction Indicated by Kinetic Isotope Effects An oxocarbenium-ion intermediate of a ribozyme reaction indicated by kinetic isotope effects Peter J. Unrau†‡ and David P. Bartel‡§ †Department of Molecular Biology and Biochemistry, Simon Fraser University, 8888 University Drive, Burnaby, BC, Canada V5A 1S6; and §Whitehead Institute for Biomedical Research and Department of Biology, Massachusetts Institute of Technology, 9 Cambridge Center, Cambridge, MA 02142 Edited by Thomas R. Cech, Howard Hughes Medical Institute, Chevy Chase, MD, and approved October 14, 2003 (received for review May 23, 2003) Many of the enzymes that catalyze reactions at nucleotide glyco- take place through a very weakly concerted oxocarbenium-like sidic linkages proceed through either a reactive oxocarbenium-ion transition state (5), a ribozyme, in analogy with protein enzymes, intermediate or a transition state with considerable oxocarbenium could employ at least two distinct catalytic strategies. One would be character. To investigate how an RNA active site deals with the to promote the oxocarbenium-ion character of the uncatalyzed catalytic challenge of nucleotide synthesis, we probed the transi- transition state while simultaneously limiting access of water to this tion state of a ribozyme able to promote the formation of a reactive state (Fig. 1a). Alternatively, a ribozyme might promote a pyrimidine nucleotide. Primary and secondary kinetic isotope ef- concerted mechanism in which the attack of the 4SUra and the fects indicate that this ribozyme stabilizes a highly dissociative departure of the pyrophosphate are made more synchronous reaction with considerable sp2 hybridization and negligible bond (Fig. 1b). The relative accessibility of these catalytic strategies for order between the departing pyrophosphate leaving group and emergent ribozymes is difficult to assess based on previous studies, the anomeric carbon. The small primary 13C isotope effect of because prior exploration of ribozyme reaction mechanisms and -indicates that the reaction is likely to be less catalytic strategies has focused on ribozymes with concerted reac 0.003 ؎ 1.002 concerted than that observed for protein nucleotide synthesis tions (13, 14). enzymes, which typically have primary 13C isotope effects of Examining the effects of isotopic substitution at or near the 1.02–1.03. The dissociative nature of the ribozyme reaction most substrate reactive center has provided an invaluable tool for char- resembles the reaction of some hydrolytic enzymes, such as uracil acterizing the transition states of proteinaceous enzymes (15, 16). DNA glycosylase, which uses the negative charges found in the Isotopic modification of an enzyme substrate leaves the static phosphodiester backbone of its DNA substrate to transiently sta- (geometric) arrangement of atoms unchanged but modifies the bilize an oxocarbenium ion during hydrolysis. The detectable kinetic (vibrational and translational) properties of the transition hydrolysis observed in the ribozyme reaction indicates that shield- state and thus provides an experimental avenue for examining ing of this reactive intermediate from water is a significant chal- transition-state structure. To extend the analysis of kinetic isotope lenge for RNA, which protein enzymes that synthesize nucleotides effects (KIEs) to the study of a ribozyme transition state, we have managed to overcome during evolution, apparently by the synthesized ribozyme-PRPP molecules with isotopic substitutions utilization of more concerted chemistry. of key PRPP atoms and compared the ribozyme reaction rates of the substituted molecules with those of analogously prepared e previously isolated from a large pool of random RNA molecules with natural isotopic abundance. Wsequences a ribozyme able to synthesize a pyrimidine Materials and Methods nucleotide in a reaction modeled after pyrimidine synthesis of Preparation of Radiolabeled Ribozyme-PRPP Pairs. contemporary metabolism (1, 2). The ribozyme promotes the In vitro evolution formation of 4-thiouridine at its 3Ј terminus, using tethered was used to generate a variant of isolate a15 from our initial selection with an efficiency suitable for characterization by using 5-phosphoribosyl 1-pyrophosphate (PRPP) and free 4-thiouracil Ј kinetic isotope methods (1, 2) (improved sequence: 5 -GGA BIOCHEMISTRY (4SUra). This ribozyme and its catalytic mechanism are of UAA UGC GCA CAA GUA AGC GUG UUG CAA UCC interest because pyrimidine nucleotide synthesis is a challenging UGC CUA UUG AAA CAC GAA AUC AGU CGU AAU reaction, central to the RNA world, that has not been demon- GGA AAC GAG GGG GAU AGG UUG CUC GUU ACU strated by prebiotic chemistry (3, 4). CCC AUU UUG GCA CCA AAU ACG GCA GUA CAG Proteins that catalyze the formation or cleavage of nucleotide UAA UCG ACA AGU ACU GGA UGG CCA UAG UGG glycosidic linkages have been shown to exploit a number of CAC AAA AUA GGC CUC UAC CAG CGG UGU GGG mechanistically distinct reaction pathways (5–10). One extreme GUA ACC CAC AUC GCA GCA ACC). This ribozyme involves the stabilization of oxocarbenium-ion intermediates. performs the 4-thiouridine synthesis reaction with an apparent Hydrolytic enzymes, such as uracil DNA glycosylase and ricin 4S Ϫ Ϫ k ͞K Ura of 50 M 1⅐min 1, which is at least 108 times more A-chain, have been shown through experimental and quantum cat m efficient than the uncatalyzed reaction. 32P- and 33P-labeled mechanical studies to form an oxocarbenium ion that ultimately ribozyme was produced by T7 transcription with a final specific is quenched by water (9, 11, 12). In contrast, enzymes such as activity Ϸ9,600 GBq͞mmol (isotopes from New England Nu- pertussis toxin and many glycosyl transfer enzymes have been clear). Gel-purified RNA transcripts were attached to PRPP by shown to promote concerted reactions having low but apprecia- using preadenylated PRPP (AppRpp) and T4 RNA ligase [1–5 ble amounts of bond order during the chemical step (9). ␮M RNA, 40–50 ␮M isotopically labeled AppRpp, 50 mM The ability of RNA, with its four bulky functional groups, to ␮ ͞ Hepes (pH 8.3), 5 mM MgCl2, 3.3 mM DTT, 10 g ml BSA in perform glycosidic chemistry might intrinsically be more limited 8.3% glycerol, and 0.5 units͞␮l enzyme from Pharmacia in a 4-h than that of evolved protein catalysts. Thus an RNA catalyst might not be able to efficiently support the range of mechanisms used by protein enzymes, which possess a diverse set of functional groups This paper was submitted directly (Track II) to the PNAS office. and have been optimized through billions of years of evolution. A Abbreviations: PRPP, 5-phosphoribosyl 1-pyrophosphate; AppRpp, 5-adenylyl-PRPP; KIE, ki- fundamental difficulty faced by all catalytic systems promoting netic isotope effect; APM, [(N-acryloylamino)phenyl]mercuric chloride; 4SUra, 4-thiouracil. nucleotide synthesis is that the uncatalyzed rate of PRPP hydrolysis ‡To whom correspondence may be addressed. E-mail: [email protected] or dbartel@ greatly exceeds that of nucleotide synthesis, which occurs at an wi.mit.edu. undetectably low rate (1). Because hydrolysis of PRPP is likely to © 2003 by The National Academy of Sciences of the USA www.pnas.org͞cgi͞doi͞10.1073͞pnas.2433147100 PNAS ͉ December 23, 2003 ͉ vol. 100 ͉ no. 26 ͉ 15393–15397 performed to generate the AppRpp used to synthesize the ribozyme-[1-1H]PRPP͞ribozyme-[1-12C]PRPP species. Analysis of Isotopic Purity. A 2.6-nmol sample of each isotopically labeled AppRpp synthesis was mixed with GpC and ApApC oligoribonucleotide mass standards in a matrix of 22.5 g͞liter 3-hydroxypicolinic acid, 2.5 g͞liter L-tartaric acid in 50% ace- tonitrile for matrix-assisted laser desorption͞ionization–time-of- flight (MALDI-TOF) analysis (Voyager instrument, PerSeptive Biosystems, Framingham, MA). Calibration was performed by using the oligoribonucleotide mass standards, which bracket the mass of AppRpp. As expected, the 13C- and 2H-labeled AppRpp samples were 1 atomic mass unit heavier than the unenriched AppRpp (predicted m͞z for lightest isotopic peak was 718.00 atomic mass units, observed was 718.08 atomic mass units; predicted m͞z for lightest isotopic peak of 13C- and 2H- substituted molecules was 719.00 atomic mass units, observed were 719.00 and 719.19 atomic mass units, respectively). To evaluate purity, MALDI-TOF spectra for each isotopic deriva- tive of AppRpp were first baseline subtracted and normalized, then aligned along the m͞z axis until the highest channel from each derivative was in register with underivatized AppRpp. The peak shapes were virtually identical and showed Ͻ5% variability from sample to sample in the regions diagnostic of potential Fig. 1. Two mechanistic extremes for ribozyme-promoted 4-thiouridine isotopic contamination. From this analysis we infer that the synthesis. (a) A stepwise dissociative mechanism (International Union of Pure isotopic purity of each AppRpp synthesis was Ͼ95%. and Applied Chemistry nomenclature: DNϩAN or DN*AN) involving the dis- placement of pyrophosphate (PPi), and the formation of an oxocarbenium-ion Kinetic Analysis. RNA pairs were heated to 80°C in water and intermediate, followed by nucleophilic addition of 4SUra and the production cooled to room temperature before addition of buffer. Ri- 4S of 4-thiouridine. (b) A concerted reaction (ANDN) involving the attack of Ura bozyme reactions were performed with 1 mM 4SUra in 50 mM and concerted displacement of pyrophosphate. ⅐ ͞ ͞ Tris HCl (pH 7.6) 25 mM MgCl2 150 mM KCl at 23°C. Reacted ribozyme was purified away from unreacted ribozyme by using ͞ incubation at room temperature]. Ligation was terminated by the [(N-acryloylamino)phenyl]mercuric chloride (APM) polyacryl- addition of EDTA followed by phenol͞chloroform extraction, amide gels (1). To achieve approximately equal yield of reacted ethanol precipitation, and resuspension in water. To ensure ribozyme product for each time point, smaller aliquots were equal treatment of both species of a dual-labeled pair, the loaded for the later time points. Scintillation counting was then 32 33 appropriate dual-labeled species were mixed together to form used to determine R(t), the relative ratios of Pto Pinthe pairs no.
Recommended publications
  • Trimethylsilyl Trifluoromethanesulfonate-Mediated Additions to Acetals, Nitrones, and Aminals Chelsea Safran
    University of Richmond UR Scholarship Repository Honors Theses Student Research 4-1-2013 Trimethylsilyl trifluoromethanesulfonate-mediated additions to acetals, nitrones, and aminals Chelsea Safran Follow this and additional works at: http://scholarship.richmond.edu/honors-theses Recommended Citation Safran, Chelsea, "Trimethylsilyl trifluoromethanesulfonate-mediated additions to acetals, nitrones, and aminals" (2013). Honors Theses. Paper 71. This Thesis is brought to you for free and open access by the Student Research at UR Scholarship Repository. It has been accepted for inclusion in Honors Theses by an authorized administrator of UR Scholarship Repository. For more information, please contact [email protected]. Trimethylsilyl trifluoromethanesulfonate-mediated additions to acetals, nitrones, and aminals By Chelsea Safran Honors Thesis In Program In Biochemistry and Molecular Biology University of Richmond Richmond, VA Spring 2012 Advisor: Dr. C. Wade Downey This thesis has been accepted as part of the honors requirements in the Program in Biochemistry and Molecular Biology ______________________________ _________________ (advisor signature) (date) ______________________________ _________________ (reader signature) (date) Table of Contents i. Acknowledgements ii ii. Abstract iii iii. Chapter I: Introduction 1-4 iv. Chapter II: Amides 4-15 v. Chapter III: I. Bisthione Synthesis 16-18 II. Reactions with other N,O-acetals 18-22 vi. Chapter IV: I. Additions to Nitrones 22-25 II. Future Work 25 vii. Chapter V: Experimental I. N,O-acetal Formation 25-28 II. Addition to Nitrones 28-29 viii. Chapter VI: References 30 i Acknowledgments I would like to acknowledge my research Dr. Wade Downey for all of his time and dedication to my research for the past two years.
    [Show full text]
  • Furanosyl Oxocarbenium Ion Conformational Energy Landscape
    DOI: 10.1002/chem.201900651 Full Paper & Stereoselectivity |Hot Paper| Furanosyl Oxocarbenium Ion Conformational Energy Landscape Maps as a Tool to Study the Glycosylation Stereoselectivity of 2-Azidofuranoses, 2-Fluorofuranoses and Methyl Furanosyl Uronates Stefan van der Vorm, Thomas Hansen, Erwin R. van Rijssel, Rolf Dekkers, Jerre M. Madern, Herman S. Overkleeft, Dmitri V. Filippov, Gijsbert A. van der Marel, and Jeroen D. C. Code*[a] Abstract: The 3D shape of glycosyl oxocarbenium ions de- ic furanoses by using a combined computational and experi- termines their stability and reactivity and the stereochemical mental approach. Surprisingly, all furanosyl donors studied course of SN1 reactions taking place on these reactive inter- react in a highly stereoselective manner to provide the 1,2- mediates is dictated by the conformation of these species. cis products, except for the reactions in the xylose series. The nature and configuration of functional groups on the The 1,2-cis selectivity for the ribo-, arabino- and lyxo-config- carbohydrate ring affect the stability of glycosyl oxocarbeni- ured furanosides can be traced back to the lowest-energy 3E um ions and control the overall shape of the cations. We or E3 conformers of the intermediate oxocarbenium ions. herein map the stereoelectronic substituent effects of the The lack of selectivity for the xylosyl donors is related to the C2-azide, C2-fluoride and C4-carboxylic acid ester on the sta- occurrence of oxocarbenium ions adopting other conforma- bility and reactivity of the complete suite of diastereoisomer- tions. Introduction and they may in fact outweigh steric effects. For example, pro- tonated iminosugars, that is, carbohydrates having the endocy- Stereoelectonic effects dictate the shape and behaviour of clic oxygen replaced by a nitrogen, may change their confor- molecules.
    [Show full text]
  • Discovery, Characterization, and Development of Small
    DISCOVERY, CHARACTERIZATION, AND DEVELOPMENT OF SMALL MOLECULE INHIBITORS OF GLYCOGEN SYNTHASE Buyun Tang Submitted to the faculty of the University Graduate School in partial fulfillment of the requirements for the degree Doctor of Philosophy in the Department of Biochemistry and Molecular Biology, Indiana University June 2020 Accepted by the Graduate Faculty of Indiana University, in partial fulfillment of the requirements for the degree of Doctor of Philosophy. Doctoral Committee ______________________________________ Thomas D. Hurley, Ph.D., Chair ______________________________________ Peter J. Roach, Ph.D. April 30, 2020 ______________________________________ Millie M. Georgiadis, Ph.D. ______________________________________ Steven M. Johnson, Ph.D. ______________________________________ Jeffrey S. Elmendorf, Ph.D. ii © 2020 Buyun Tang iii Dedication I dedicate this work to my beloved family, my grandparents, my parents, and my brother. iv Acknowledgement First and foremost, I would like to express my deepest gratitude to my thesis advisor, Dr. Thomas D. Hurley. I am grateful to have him as my research mentor over the past four years. He has continuously guided, supported, and inspired me during my study at IUSM. His passion for science and devotion of mentorship offered me the best training experience I could ever receive in graduate school. His easygoing personality reminded me of all the wonderful times inside and outside of the lab. I remember him instructing me handling crystal instrument hand by hand, flying with me to San Diego for a conference, and driving me to a farm restaurant at Illinois. Dr. Hurley is not only an outstanding research mentor, but also a trustful friend. I deeply thank him for all his time, patience, and encouragement along my graduate training.
    [Show full text]
  • Increased Glycosidic Bond Stabilities in 4-C-Hydroxymethyl Linked Disaccharides ⇑ Gour Chand Daskhan, Narayanaswamy Jayaraman
    Carbohydrate Research 346 (2011) 2394–2400 Contents lists available at SciVerse ScienceDirect Carbohydrate Research journal homepage: www.elsevier.com/locate/carres Increased glycosidic bond stabilities in 4-C-hydroxymethyl linked disaccharides ⇑ Gour Chand Daskhan, Narayanaswamy Jayaraman Department of Organic Chemistry, Indian Institute of Science, Bangalore 560 012, India article info abstract Article history: Three new hydroxymethyl-linked non-natural disaccharide analogues, containing an additional methy- Received 25 May 2011 lene group in between the glycosidic linkage, were synthesized by utilizing 4-C-hydroxymethyl-a-D- Received in revised form 24 August 2011 glucopyranoside as the glycosyl donor. A kinetic study was undertaken to assess the hydrolytic stabilities Accepted 25 August 2011 of these new disaccharide analogues toward acid-catalyzed hydrolysis, at 60 °C and 70 °C. The studies Available online 2 September 2011 showed that the disaccharide analogues were stable, by an order of magnitude, than naturally-occurring disaccharides, such as, cellobiose, lactose, and maltose. The first order rate constants were lower than Keywords: that of methyl glycosides and the trend of hydrolysis rate constants followed that of naturally-occurring Acid hydrolysis disaccharides. -Anomer showed faster hydrolysis than the b-anomer and the presence of axial hydroxyl Carbohydrates a Disaccharide analogues group also led to faster hydrolysis among the disaccharide analogues. Energy minimized structures, Glycosidic bond derived through molecular modeling, showed that dihedral angles around the glycosidic bond in disac- Kinetics charide analogues were nearly similar to that of naturally-occurring disaccharides. Oxocarbenium ion Ó 2011 Elsevier Ltd. All rights reserved. 1. Introduction determined to be important, prior to heterolysis of C1–O1 bond.
    [Show full text]
  • Characterization of Glycosyl Dioxolenium Ions and Their Role in Glycosylation Reactions
    ARTICLE https://doi.org/10.1038/s41467-020-16362-x OPEN Characterization of glycosyl dioxolenium ions and their role in glycosylation reactions Thomas Hansen 1,4, Hidde Elferink2,4, Jacob M. A. van Hengst1, Kas J. Houthuijs 2, Wouter A. Remmerswaal 1, Alexandra Kromm2, Giel Berden 3, Stefan van der Vorm 1, Anouk M. Rijs 3, Hermen S. Overkleeft1, Dmitri V. Filippov1, Floris P. J. T. Rutjes2, Gijsbert A. van der Marel1, Jonathan Martens3, ✉ ✉ ✉ Jos Oomens 3 , Jeroen D. C. Codée 1 & Thomas J. Boltje 2 1234567890():,; Controlling the chemical glycosylation reaction remains the major challenge in the synthesis of oligosaccharides. Though 1,2-trans glycosidic linkages can be installed using neighboring group participation, the construction of 1,2-cis linkages is difficult and has no general solution. Long-range participation (LRP) by distal acyl groups may steer the stereoselectivity, but contradictory results have been reported on the role and strength of this stereoelectronic effect. It has been exceedingly difficult to study the bridging dioxolenium ion intermediates because of their high reactivity and fleeting nature. Here we report an integrated approach, using infrared ion spectroscopy, DFT computations, and a systematic series of glycosylation reactions to probe these ions in detail. Our study reveals how distal acyl groups can play a decisive role in shaping the stereochemical outcome of a glycosylation reaction, and opens new avenues to exploit these species in the assembly of oligosaccharides and glycoconju- gates to fuel biological research. 1 Leiden University, Leiden Institute of Chemistry, Einsteinweg 55, 2333 CC Leiden, The Netherlands. 2 Radboud University Institute for Molecules and Materials, Heyendaalseweg 135, 6525 AJ Nijmegen, The Netherlands.
    [Show full text]
  • Controlling the Stereoselectivity of Glycosylation Via Solvent Effects
    Canadian Journal of Chemistry Controlling the Stereoselectivity of Glycosylation via Solvent Effects Journal: Canadian Journal of Chemistry Manuscript ID cjc-2016-0417.R1 Manuscript Type: Invited Review Date Submitted by the Author: 16-Sep-2016 Complete List of Authors: Kafle, Arjun; University of New Mexico Liu, Jun; University of New Mexico Cui, Lina; University of New Mexico, Chemistry and Chemical Biology; University Draftof New Mexico, UNM Comprehensive Cancer Center Glycosylation, Stereoselectivity, Synthesis, Solvent effect, Carbohydrate Keyword: chemistry https://mc06.manuscriptcentral.com/cjc-pubs Page 1 of 29 Canadian Journal of Chemistry Controlling the Stereoselectivity of Glycosylation via Solvent Effects Arjun Kafle, Jun Liu, and Lina Cui* Address: Department of Chemistry and Chemical Biology, UNM Comprehensive Cancer Center, University of New Mexico, Albuquerque, NM 87131, U.S.A. Corresponding author: e-mail: [email protected]; Tel: 505-277-6519; Fax: 505-277-2609 Invited Review Dedicated to Prof. David R. Bundle onDraft the occasion of his retirement (Special Issue for Prof. Bundle) 1 https://mc06.manuscriptcentral.com/cjc-pubs Canadian Journal of Chemistry Page 2 of 29 Abstract: This review covers a special topic in carbohydrate chemistry – solvent effects on the stereoselectivity of glycosylation reactions. Obtaining highly stereoselective glycosidic linkages is one of the most challenging tasks in organic synthesis, as it is affected by various controlling factors. One of the least understood factors is the effect of solvents. We have described the known solvent effects while providing both general rules and specific examples. We hope this review will not only help fellow researchers understand the known aspects of solvent effects and use that in their experiments, moreover we expect more studies on this topic will be started and continued to expand our understanding of the mechanistic aspects of solvent effects in glycosylation reactions.
    [Show full text]
  • 1 General Aspects of the Glycosidic Bond Formation Alexei V
    j1 1 General Aspects of the Glycosidic Bond Formation Alexei V. Demchenko 1.1 Introduction Since the first attempts at the turn of the twentieth century, enormous progress has been made in the area of the chemical synthesis of O-glycosides. However, it was only in the past two decades that the scientificworldhadwitnessedadramatic improvement the methods used for chemical glycosylation. The development of new classes of glycosyl donors has not only allowed accessing novel types of glycosidic linkages but also led to the discovery of rapid and convergent strategies for expeditious oligosaccharide synthesis. This chapter summarizes major prin- ciples of the glycosidic bond formation and strategies to obtain certain classes of compounds, ranging from glycosides of uncommon sugars to complex oligosac- charide sequences. 1.2 Major Types of O-Glycosidic Linkages There are two major types of O-glycosides, which are, depending on nomen- clature, most commonly defined as a-andb-, or 1,2-cis and 1,2-trans glycosides. The 1,2-cis glycosyl residues, a-glycosides for D-glucose, D-galactose, L-fucose, D-xylose or b-glycosides for D-mannose, L-arabinose, as well as their 1,2-trans counter- parts (b-glycosides for D-glucose, D-galactose, a-glycosides for D-mannose,etc.),are equally important components in a variety of natural compounds. Representative examples of common glycosides are shown in Figure 1.1. Some other types of glycosides, in particular 2-deoxyglycosides and sialosides, can be defined neither as 1,2-cis nor as 1,2-trans derivatives, yet are important targets because of their com- mon occurrence as components of many classes of natural glycostructures.
    [Show full text]
  • Glycogen, Branched Polymer of Glucose Serves As a Major Repository of Carbon and Energy in Many Organisms Form Bacteria to Highe
    STRUCTURE AND REGULATION OF YEAST GLYCOGEN SYNTHASE Sulochanadevi Baskaran Submitted to the faculty of the University Graduate School in partial fulfillment of the requirements for the degree Doctor of Philosophy in the Department of Biochemistry and Molecular Biology Indiana University August 2010 Accepted by the Faculty of Indiana University, in partial fulfillment of the requirements for the degree of Doctor of Philosophy. Thomas D. Hurley, Ph.D., Chair Anna A. DePaoli-Roach, Ph.D. Doctoral Committee Millie M. Georgiadis, Ph.D. Peter J. Roach, Ph.D. May 19, 2010 William J. Sullivan Jr., Ph.D. ii Dedication I dedicate this work to my family, friends and mentors, for their support, encouragement, inspiration and guidance. iii Acknowledgements The work presented here is a result of the collaborative effort of many people and it is my pleasure to thank everyone who made this possible. First and foremost, I am indebted to my advisor, Dr. Thomas Hurley, for his invaluable scientific guidance, enthusiastic supervision and encouragement throughout my thesis research work. I am very grateful for his support, patience and his efforts in explaining and teaching me the concepts of macromolecular crystallography. I will always be thankful to him for teaching me the most important factor that is required for scientific research - perseverance. I would like to express my sincere gratitude to my committee members Drs. Peter Roach, Anna DePaoli-Roach, Millie Georgiadis and William Sullivan for their time, support, guidance and helpful suggestions. I am thankful to lab colleagues Dr. Samantha Perez-Miller, Dr. Heather Larson, Dr. Jianzhong Zhou, Dr. Lillian González-Segura, Ram Vanam, Jason Braid, Lili Zang, Bibek Parajuli, Dr.
    [Show full text]
  • The Influence of Acceptor Nucleophilicity on the Glycosylation Reaction Mechanism
    Chemical Science View Article Online EDGE ARTICLE View Journal | View Issue The influence of acceptor nucleophilicity on the glycosylation reaction mechanism† Cite this: Chem. Sci.,2017,8, 1867 S. van der Vorm, T. Hansen, H. S. Overkleeft, G. A. van der Marel and J. D. C. Codee´ * A set of model nucleophiles of gradually changing nucleophilicity is used to probe the glycosylation reaction mechanism. Glycosylations of ethanol-based acceptors, bearing varying amounts of fluorine atoms, report on the dependency of the stereochemistry in condensation reactions on the nucleophilicity of the acceptor. Three different glycosylation systems were scrutinized, that differ in the reaction mechanism, that – putatively – prevails during the coupling reaction. It is revealed that the stereoselectivity in glycosylations of benzylidene protected glucose donors are very susceptible to acceptor nucleophilicity whereas condensations of benzylidene mannose and mannuronic acid donors represent more robust glycosylation systems in terms of diastereoselectivity. The change in stereoselectivity with decreasing acceptor nucleophilicity is related to a change in reaction mechanism Received 17th October 2016 shifting from the SN2 side to the SN1 side of the reactivity spectrum. Carbohydrate acceptors are Creative Commons Attribution 3.0 Unported Licence. Accepted 8th November 2016 examined and the reactivity–selectivity profile of these nucleophiles mirrored those of the model DOI: 10.1039/c6sc04638j acceptors studied. The set of model ethanol acceptors thus provides a simple and effective “toolbox” to www.rsc.org/chemicalscience investigate glycosylation reaction mechanisms and report on the robustness of glycosylation protocols. Introduction are displaced in a reaction mechanism having an associative SN2- character, while the oxocarbenium ion-like intermediates are The connection of two carbohydrate building blocks to construct engaged in an SN1-like reaction.
    [Show full text]
  • Predictive Model for Oxidative C−H Bond Functionalization Reactivity with 2,3-Dichloro-5,6-Dicyano-1,4-Benzoquinone (DDQ)
    Predictive Model for Oxidative C!H Bond Functionalization Reactivity with 2,3-Dichloro-5,6-dicyano-1,4-benzoquinone (DDQ) Cristian A. Morales-Rivera, Paul E. Floreancig*, and Peng Liu* Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, United States ABSTRACT: 2,3-Dichloro-5,6-dicyano-1,4-benzoquinone (DDQ) is a highly effective reagent for promoting C!H bond functionalization. The oxidative cleavage of benzylic and allylic C−H bonds using DDQ can be coupled with an intra- or intermolecular nucleophilic addition to generate new carbon–carbon or carbon–heteroatom bonds in a wide range of substrates. The factors that control the reactivity of these reactions are well defined experimentally but the mechanistic details and the role of substituents in promoting the transformations have not been firmly established. Herein, we report a detailed computational study on the mechanism and substituent effects for DDQ-mediated oxidative C−H cleavage reactions in a variety of substrates. DFT calculations show that these reactions proceed through a hydride transfer within a charge transfer complex. Reactivity is dictated by the stability of the carbocation intermediate, the degree of charge transfer in the transition states, and, in certain cases, secondary orbital interactions between the π orbital of the forming cation and the LUMO of DDQ. A linear free energy relationship was established to offer a predictive model for reactivity of different types of C−H bonds based on the electronic properties of the substrate. 1. Introduction DDQ-mediated C–H functionalization has been performed on Carbon–hydrogen bond functionalization reactions can greatly a wide variety of substrates, with specific examples being illustrated facilitate chemical synthesis due to their capability to increase in Scheme 2.
    [Show full text]
  • Template for Electronic Submission to ACS Journals
    Max-Planck-Institut für Kohlenforschung This is the peer-reviewed version of the following article: Nature Chemistry 2018, 10, 888-894, which has been published in final form at: https://www.nature.com/articles/s41557-018-0065-0. This article may be used for non-commercial purposes. DOI: 10.1038/s41557-018-0065-0 Approaching Sub-ppm Level Asymmetric Organocatalysis of a Highly Challenging and Scalable Carbon–Carbon Bond Forming Reaction Han Yong Bae,a Denis Höfler,a Philip S. J. Kaib,a Pinar Kasaplar,a Chandra Kanta De,a Arno Döhring,a Sunggi Lee,a Karl Kaupmees,b Ivo Leitob and Benjamin Lista* aMax-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1, D-45470 Mülheim an der Ruhr, Germany. bUniversity of Tartu, Institute of Chemistry, Ravila 14a, Tartu 50411, Estonia. *email: [email protected] Abstract: The chemical synthesis of organic molecules involves, at its very essence, the creation of carbon–carbon bonds. In this context, the aldol reaction is among the most important synthetic methods, and a wide variety of catalytic and stereoselective versions have been reported. However, aldolizations yielding tertiary aldols, which result from the reaction of an enolate with a ketone, are challenging and only a few catalytic asymmetric Mukaiyama aldol reactions with ketones as electrophiles have been described. These methods typically require relatively high catalyst loadings, deliver substandard enantioselectivity or need special reagents or additives. We now report extremely potent catalysts that readily enable the reaction of silyl ketene acetals with a diverse set of ketones to furnish the corresponding tertiary aldol products in excellent yields and enantioselectivities.
    [Show full text]
  • Preparation of Α-Acetoxy Ethers by the Reductive Acetylation of Esters
    DOI:10.15227/orgsyn.089.0143 Discussion Addendum for: Preparation of -Acetoxy Ethers by the Reductive Acetylation of Esters: endo-1-Bornyloxyethyl Acetate 1. DIBALH CH O H3C 3 CH CH Cl , –78 °C, 45 min H C 3 CH3 O 2 2 3 CH3 O CH3 2. pyr, DMAP, Ac O O CH 2 3 O CH –78 to 0 °C, 12 h 3 Prepared by Nicholas Sizemore and Scott D. Rychnovsky.*1 Original Article: Kopecky, D. J.; Rychnovsky, S. D. Org. Synth. 2003, 80, 177. Reductive acetylation has proven to be a powerful methodology primarily because its products are excellent substrates for carbon-carbon bond forming reactions. Since 2003, the Organic Syntheses article and the primary references have been cited over 100 times. This discussion addendum aims to provide a brief overview of recent developments in this methodology. Improvements and variations of -acetoxy ether formation, as well as the synthetic utility of -acetoxy ethers will be discussed. Recent applications in the context of the total synthesis of complex natural products are also included. Improvements and Variations of -Acetoxy Ether Formation The original reductive acetylation protocol involves the addition of diisobutylaluminum hydride (DIBALH) as a 1.0 M solution in hexanes to the ester at –78 °C. The resulting aluminum alkoxide is then treated with pyridine, 4-dimethylaminopyridine (DMAP), and acetic anhydride (Ac2O) sequentially. The internal temperature during these additions should not exceed –72 °C in order to maximize the yield and prevent undesired side reactions.2 While this method is general, recent developments include the use of asymmetric electrophiles in order to generate more complex acyl ethers and the extension of reductive acetylation to lactams and imides.
    [Show full text]