RESUMO
I endeavor to share how various choices-some deliberate, some unconscious-and the unmistakable influence of many others shaped my scientific pursuits. I am fascinated by how two long-term, major streams of my research, DNA replication and purine biosynthesis, have merged with unexpected interconnections. If I have imparted to many of the talented individuals who have passed through my lab a degree of my passion for uncloaking the mysteries hidden in scientific research and an understanding of the honesty and rigor it demands and its impact on the world community, then my mentorship has been successful.
Assuntos
Bioquímica/história , Replicação do DNA , Enzimas , Purinas/biossíntese , Anti-Infecciosos/química , Anti-Infecciosos/farmacologia , Anticorpos Catalíticos/química , Anticorpos Catalíticos/metabolismo , Enzimas/química , Enzimas/metabolismo , História do Século XX , História do Século XXI , Humanos , Masculino , Estados UnidosRESUMO
DNA double-strand breaks pose a serious threat to genome stability. In vertebrates, these breaks are predominantly repaired by nonhomologous end joining (NHEJ), which pairs DNA ends in a multiprotein synaptic complex to promote their direct ligation. NHEJ is a highly versatile pathway that uses an array of processing enzymes to modify damaged DNA ends and enable their ligation. The mechanisms of end synapsis and end processing have important implications for genome stability. Rapid and stable synapsis is necessary to limit chromosome translocations that result from the mispairing of DNA ends. Furthermore, end processing must be tightly regulated to minimize mutations at the break site. Here, we review our current mechanistic understanding of vertebrate NHEJ, with a particular focus on end synapsis and processing.
Assuntos
Quebras de DNA de Cadeia Dupla , Reparo do DNA por Junção de Extremidades/fisiologia , Enzimas/metabolismo , Complexos Multiproteicos/genética , Animais , Enzimas/genética , Instabilidade Genômica , Humanos , Modelos Biológicos , Complexos Multiproteicos/metabolismo , Recombinação V(D)JRESUMO
Lysosomal storage diseases (LSDs) represent a group of monogenic inherited metabolic disorders characterized by the progressive accumulation of undegraded substrates inside lysosomes, resulting in aberrant lysosomal activity and homeostasis. This SnapShot summarizes the intracellular localization and function of proteins implicated in LSDs. Common aspects of LSD pathogenesis and the major current therapeutic approaches are noted. To view this SnapShot, open or download the PDF.
Assuntos
Doenças por Armazenamento dos Lisossomos/metabolismo , Doenças por Armazenamento dos Lisossomos/patologia , Lisossomos/metabolismo , Animais , Autofagia , Enzimas/metabolismo , Células Eucarióticas/metabolismo , Homeostase , Humanos , Doenças por Armazenamento dos Lisossomos/classificação , Doenças por Armazenamento dos Lisossomos/terapia , Proteínas de Membrana Lisossomal/metabolismoRESUMO
This first serious attempt at an autobiographical accounting has forced me to sit still long enough to compile my thoughts about a long personal and scientific journey. I especially hope that my trajectory will be of interest and perhaps beneficial to much younger women who are just getting started in their careers. To paraphrase from Virginia Woolf's writings in A Room of One's Own at the beginning of the 20th century, "for most of history Anonymous was a Woman." However, Ms. Woolf is also quoted as saying "nothing has really happened until it has been described," a harbinger of the enormous historical changes that were about to be enacted and recorded by women in the sciences and other disciplines. The progress in my chosen field of study-the chemical basis of enzyme action-has also been remarkable, from the first description of an enzyme's 3D structure to a growing and deep understanding of the origins of enzyme catalysis.
Assuntos
Coenzimas/química , Enzimas/química , Mulheres Trabalhadoras/história , Biocatálise , Escolha da Profissão , Coenzimas/metabolismo , Ensaios Enzimáticos , Enzimas/metabolismo , Feminino , História do Século XX , História do Século XXI , Humanos , Cinética , Teoria QuânticaRESUMO
How individual enzymes evolved is relatively well understood. However, individual enzymes rarely confer a physiological advantage on their own. Judging by its current state, the emergence of metabolism seemingly demanded the simultaneous emergence of many enzymes. Indeed, how multicomponent interlocked systems, like metabolic pathways, evolved is largely an open question. This complexity can be unlocked if we assume that survival of the fittest applies not only to genes and enzymes but also to the metabolites they produce. This review develops our current knowledge of enzyme evolution into a wider hypothesis of pathway and network evolution. We describe the current models for pathway evolution and offer an integrative metabolite-enzyme coevolution hypothesis. Our hypothesis addresses the origins of new metabolites and of new enzymes and the order of their recruitment. We aim to not only survey established knowledge but also present open questions and potential ways of addressing them.
Assuntos
Enzimas/genética , Enzimas/metabolismo , Evolução Molecular , Redes e Vias Metabólicas/genética , Enzimas/química , Cinética , Modelos Biológicos , Modelos Moleculares , Complexos Multienzimáticos/química , Complexos Multienzimáticos/genética , Complexos Multienzimáticos/metabolismo , Filogenia , Especificidade por Substrato/genéticaRESUMO
This article introduces the Protein Evolution and Design theme of the Annual Review of Biochemistry Volume 87.
Assuntos
Evolução Molecular Direcionada/métodos , Proteínas/genética , Proteínas/metabolismo , Animais , Enzimas/química , Enzimas/genética , Enzimas/metabolismo , Humanos , Redes e Vias Metabólicas/genética , Engenharia de Proteínas/métodos , Proteínas/químicaRESUMO
Directed evolution is a powerful technique for generating tailor-made enzymes for a wide range of biocatalytic applications. Following the principles of natural evolution, iterative cycles of mutagenesis and screening or selection are applied to modify protein properties, enhance catalytic activities, or develop completely new protein catalysts for non-natural chemical transformations. This review briefly surveys the experimental methods used to generate genetic diversity and screen or select for improved enzyme variants. Emphasis is placed on a key challenge, namely how to generate novel catalytic activities that expand the scope of natural reactions. Two particularly effective strategies, exploiting catalytic promiscuity and rational design, are illustrated by representative examples of successfully evolved enzymes. Opportunities for extending these approaches to more complex biocatalytic systems are also considered.
Assuntos
Evolução Molecular Direcionada/métodos , Enzimas/genética , Enzimas/metabolismo , Animais , Biocatálise , Desenho de Fármacos , Enzimas/química , Variação Genética , Ensaios de Triagem em Larga Escala , Humanos , Redes e Vias Metabólicas/genética , Modelos Moleculares , Engenharia de Proteínas/métodos , Proteínas/química , Proteínas/genética , Proteínas/metabolismo , Seleção Genética , Estereoisomerismo , Especificidade por SubstratoRESUMO
S-adenosylmethionine (AdoMet) has been referred to as both "a poor man's adenosylcobalamin (AdoCbl)" and "a rich man's AdoCbl," but today, with the ever-increasing number of functions attributed to each cofactor, both appear equally rich and surprising. The recent characterization of an organometallic species in an AdoMet radical enzyme suggests that the line that differentiates them in nature will be constantly challenged. Here, we compare and contrast AdoMet and cobalamin (Cbl) and consider why Cbl-dependent AdoMet radical enzymes require two cofactors that are so similar in their reactivity. We further carry out structural comparisons employing the recently determined crystal structure of oxetanocin-A biosynthetic enzyme OxsB, the first three-dimensional structural data on a Cbl-dependent AdoMet radical enzyme. We find that the structural motifs responsible for housing the AdoMet radical machinery are largely conserved, whereas the motifs responsible for binding additional cofactors are much more varied.
Assuntos
S-Adenosilmetionina/metabolismo , Vitamina B 12/metabolismo , Animais , Sítios de Ligação , Coenzimas/química , Coenzimas/metabolismo , Eletroquímica , Enzimas/química , Enzimas/metabolismo , Radicais Livres/química , Radicais Livres/metabolismo , Humanos , Modelos Moleculares , Estrutura Molecular , S-Adenosilmetionina/química , Vitamina B 12/análogos & derivados , Vitamina B 12/químicaRESUMO
Coexpression of proteins in response to pathway-inducing signals is the founding paradigm of gene regulation. However, it remains unexplored whether the relative abundance of co-regulated proteins requires precise tuning. Here, we present large-scale analyses of protein stoichiometry and corresponding regulatory strategies for 21 pathways and 67-224 operons in divergent bacteria separated by 0.6-2 billion years. Using end-enriched RNA-sequencing (Rend-seq) with single-nucleotide resolution, we found that many bacterial gene clusters encoding conserved pathways have undergone massive divergence in transcript abundance and architectures via remodeling of internal promoters and terminators. Remarkably, these evolutionary changes are compensated post-transcriptionally to maintain preferred stoichiometry of protein synthesis rates. Even more strikingly, in eukaryotic budding yeast, functionally analogous proteins that arose independently from bacterial counterparts also evolved to convergent in-pathway expression. The broad requirement for exact protein stoichiometries despite regulatory divergence provides an unexpected principle for building biological pathways both in nature and for synthetic activities.
Assuntos
Enzimas/química , Escherichia coli/enzimologia , Evolução Molecular , Isoformas de Proteínas/química , Bacillus subtilis/enzimologia , Bacillus subtilis/genética , Escherichia coli/genética , Regulação Bacteriana da Expressão Gênica , Humanos , Família Multigênica , Óperon , Filogenia , Regiões Promotoras Genéticas , RNA Mensageiro/metabolismo , Ribossomos/química , Análise de Sequência de RNA , TranscriptomaRESUMO
Organelles compartmentalize eukaryotic cells, enhancing their ability to respond to environmental and developmental changes. One way in which organelles communicate and integrate their activities is by forming close contacts, often called 'membrane contact sites' (MCSs). Interest in MCSs has grown dramatically in the past decade as it is has become clear that they are ubiquitous and have a much broader range of critical roles in cells than was initially thought. Indeed, functions for MCSs in intracellular signalling (particularly calcium signalling, reactive oxygen species signalling and lipid signalling), autophagy, lipid metabolism, membrane dynamics, cellular stress responses and organelle trafficking and biogenesis have now been reported.
Assuntos
Membrana Celular/metabolismo , Metabolismo dos Lipídeos , Transdução de Sinais , Estresse Fisiológico/fisiologia , Animais , Autofagossomos/metabolismo , Autofagia , Transporte Biológico , Sinalização do Cálcio , Membrana Celular/química , Retículo Endoplasmático/metabolismo , Enzimas/metabolismo , Células Eucarióticas/metabolismo , Humanos , Membranas Mitocondriais/metabolismo , Espécies Reativas de Oxigênio/metabolismoRESUMO
During my graduate work with Keith Porter, I became fascinated by the mitotic spindle, an interest that has motivated much of my scientific work ever since. I began spindle studies by using electron microscopes, instruments that have made significant contributions to our understanding of spindle organization. Such instruments have helped to elucidate the distributions of spindle microtubules, the interactions among them, their molecular polarity, and their associations with both kinetochores and spindle poles. Our lab has also investigated some processes of spindle physiology: microtubule dynamics, the actions of microtubule-associated proteins (including motor enzymes), the character of forces generated by specific spindle components, and factors that control mitotic progression. Here, I give a personal perspective on some of this intellectual history and on what recent discoveries imply about the mechanisms of chromosome motion.
Assuntos
Cromossomos/metabolismo , Enzimas/metabolismo , Microtúbulos/metabolismo , Mitose , Proteínas Motores Moleculares/metabolismo , Movimento (Física) , Animais , Cromossomos/ultraestrutura , Humanos , Microtúbulos/ultraestruturaRESUMO
Studies of bioactive lipids in general and sphingolipids in particular have intensified over the past several years, revealing an unprecedented and unanticipated complexity of the lipidome and its many functions, which rivals, if not exceeds, that of the genome or proteome. These results highlight critical roles for bioactive sphingolipids in most, if not all, major cell biological responses, including all major cell signalling pathways, and they link sphingolipid metabolism to key human diseases. Nevertheless, the fairly nascent field of bioactive sphingolipids still faces challenges in its biochemical and molecular underpinnings, including defining the molecular mechanisms of pathway and enzyme regulation, the study of lipid-protein interactions and the development of cellular probes, suitable biomarkers and therapeutic approaches.
Assuntos
Esfingolipídeos/metabolismo , Envelhecimento/metabolismo , Animais , Apoptose , Autofagia , Transporte Biológico Ativo , Adesão Celular , Compartimento Celular , Movimento Celular , Dano ao DNA , Enzimas/metabolismo , Humanos , Sistema Imunitário/metabolismo , Inflamação/metabolismo , Metabolismo dos Lipídeos , Doenças Metabólicas/genética , Doenças Metabólicas/metabolismo , Redes e Vias Metabólicas , Modelos Biológicos , Neoplasias/metabolismo , Transdução de Sinais , Esfingolipídeos/química , Esfingolipídeos/fisiologiaRESUMO
Living systems contain a vast network of metabolic reactions, providing a wealth of enzymes and cells as potential biocatalysts for chemical processes. The properties of protein and cell biocatalysts-high selectivity, the ability to control reaction sequence and operation in environmentally benign conditions-offer approaches to produce molecules at high efficiency while lowering the cost and environmental impact of industrial chemistry. Furthermore, biocatalysis offers the opportunity to generate chemical structures and functions that may be inaccessible to chemical synthesis. Here we consider developments in enzymes, biosynthetic pathways and cellular engineering that enable their use in catalysis for new chemistry and beyond.
Assuntos
Biocatálise , Vias Biossintéticas , Engenharia Celular , Enzimas , Humanos , Engenharia Celular/métodos , Enzimas/metabolismo , Enzimas/química , Especificidade por Substrato , Técnicas de Química SintéticaRESUMO
Enzymes play an increasingly important role in improving the benignity and efficiency of chemical production, yet the diversity of their applications lags heavily behind chemical catalysts as a result of the relatively narrow range of reaction mechanisms of enzymes. The creation of enzymes containing non-biological functionalities facilitates reaction mechanisms outside nature's canon and paves the way towards fully programmable biocatalysis1-3. Here we present a completely genetically encoded boronic-acid-containing designer enzyme with organocatalytic reactivity not achievable with natural or engineered biocatalysts4,5. This boron enzyme catalyses the kinetic resolution of hydroxyketones by oxime formation, in which crucial interactions with the protein scaffold assist in the catalysis. A directed evolution campaign led to a variant with natural-enzyme-like enantioselectivities for several different substrates. The unique activation mode of the boron enzyme was confirmed using X-ray crystallography, high-resolution mass spectrometry (HRMS) and 11B NMR spectroscopy. Our study demonstrates that genetic-code expansion can be used to create evolvable enantioselective enzymes that rely on xenobiotic catalytic moieties such as boronic acids and access reaction mechanisms not reachable through catalytic promiscuity of natural or engineered enzymes.
Assuntos
Biocatálise , Ácidos Borônicos , Enzimas , Engenharia de Proteínas , Ácidos Borônicos/química , Ácidos Borônicos/metabolismo , Cristalografia por Raios X , Evolução Molecular Direcionada , Enzimas/química , Enzimas/metabolismo , Enzimas/genética , Cetonas/química , Cetonas/metabolismo , Cinética , Modelos Moleculares , Oximas/química , Oximas/metabolismo , Especificidade por Substrato , Ressonância Magnética Nuclear Biomolecular , Espectrometria de Massas , Xenobióticos/química , Xenobióticos/metabolismoRESUMO
Bimolecular nucleophilic substitution (SN2) mechanisms occupy a central place in the historical development and teaching of the field of organic chemistry1. Despite the importance of SN2 pathways in synthesis, catalytic control of ionic SN2 pathways is rare and notably uncommon even in biocatalysis2,3, reflecting the fact that any electrostatic interaction between a catalyst and the reacting ion pair necessarily stabilizes its charge and, by extension, reduces polar reactivity. Nucleophilic halogenase enzymes navigate this tradeoff by desolvating and positioning the halide nucleophile precisely on the SN2 trajectory, using geometric preorganization to compensate for the attenuation of nucleophilicity4. Here we show that a small-molecule (646 Da) hydrogen-bond-donor catalyst accelerates the SN2 step of an enantioselective Michaelis-Arbuzov reaction by recapitulating the geometric preorganization principle used by enzymes. Mechanistic and computational investigations show that the hydrogen-bond donor diminishes the reactivity of the chloride nucleophile yet accelerates the rate-determining dealkylation step by reorganizing both the phosphonium cation and the chloride anion into a geometry that is primed to enter the SN2 transition state. This new enantioselective Arbuzov reaction affords highly enantioselective access to an array of H-phosphinates, which are in turn versatile P-stereogenic building blocks amenable to myriad derivatizations. This work constitutes, to our knowledge, the first demonstration of catalytic enantiocontrol of the phosphonium dealkylation step, establishing a new platform for the synthesis of P-stereogenic compounds.
Assuntos
Catálise , Técnicas de Química Sintética , Biocatálise , Química Orgânica/métodos , Cloretos/metabolismo , Cloretos/química , Enzimas/metabolismo , Halogênios/química , Halogênios/metabolismo , Ligação de Hidrogênio , Cinética , Estereoisomerismo , Técnicas de Química Sintética/métodosRESUMO
QS-21 is a potent vaccine adjuvant and remains the only saponin-based adjuvant that has been clinically approved for use in humans1,2. However, owing to the complex structure of QS-21, its availability is limited. Today, the supply depends on laborious extraction from the Chilean soapbark tree or on low-yielding total chemical synthesis3,4. Here we demonstrate the complete biosynthesis of QS-21 and its precursors, as well as structural derivatives, in engineered yeast strains. The successful biosynthesis in yeast requires fine-tuning of the host's native pathway fluxes, as well as the functional and balanced expression of 38 heterologous enzymes. The required biosynthetic pathway spans seven enzyme families-a terpene synthase, P450s, nucleotide sugar synthases, glycosyltransferases, a coenzyme A ligase, acyl transferases and polyketide synthases-from six organisms, and mimics in yeast the subcellular compartmentalization of plants from the endoplasmic reticulum membrane to the cytosol. Finally, by taking advantage of the promiscuity of certain pathway enzymes, we produced structural analogues of QS-21 using this biosynthetic platform. This microbial production scheme will allow for the future establishment of a structure-activity relationship, and will thus enable the rational design of potent vaccine adjuvants.
Assuntos
Adjuvantes Imunológicos , Engenharia Metabólica , Saccharomyces cerevisiae , Saponinas , Adjuvantes Imunológicos/biossíntese , Adjuvantes Imunológicos/química , Adjuvantes Imunológicos/genética , Adjuvantes Imunológicos/metabolismo , Vias Biossintéticas/genética , Desenho de Fármacos , Enzimas/genética , Enzimas/metabolismo , Engenharia Metabólica/métodos , Plantas/enzimologia , Plantas/genética , Plantas/metabolismo , Saccharomyces cerevisiae/citologia , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Saponinas/biossíntese , Saponinas/química , Saponinas/genética , Saponinas/metabolismo , Relação Estrutura-AtividadeRESUMO
Compartmentation is essential for the localization of biological processes within a cell. In 2010, three groups independently reported that cytidine triphosphate synthase (CTPS), a metabolic enzyme for de novo synthesis of the nucleotide CTP, is compartmentalized in cytoophidia (Greek for "cellular snakes") in bacteria, yeast, and fruit flies. Subsequent studies demonstrate that CTPS can also form filaments in human cells. Thus, the cytoophidium represents a new type of intracellular compartment that is strikingly conserved across prokaryotes and eukaryotes. Multiple lines of evidence have recently suggested that polymerization of metabolic enzymes such as CTPS and inosine monophosphate dehydrogenase into filamentous cytoophidia modulates enzymatic activity. With many more metabolic enzymes found to form the cytoophidium and its kind, compartmentation via filamentation may serve as a general mechanism for the regulation of metabolism.
Assuntos
Compartimento Celular , Enzimas/metabolismo , Animais , Humanos , Modelos BiológicosRESUMO
Diverse engineering strategies have been developed to create enzymes with novel catalytic activities. Among these, computational approaches hold particular promise. Enzymes have been computationally designed to promote several nonbiological reactions, including a Diels-Alder cycloaddition, proton transfer, multistep retroaldol transformations, and metal-dependent hydrolysis of phosphotriesters. Although their efficiencies (kcat/KM = 0.1-100 M(-1) s(-1)) are typically low compared with those of the best natural enzymes (10(6)-10(8) M(-1) s(-1)), these catalysts are excellent starting points for laboratory evolution. This review surveys recent progress in combining computational and evolutionary approaches to enzyme design, together with insights into enzyme function gained from studies of the engineered catalysts.
Assuntos
Biologia Computacional/métodos , Evolução Molecular Direcionada/métodos , Engenharia de Proteínas/métodos , Proteínas/química , Catálise , Domínio Catalítico , Enzimas/química , Enzimas/metabolismo , Modelos MolecularesRESUMO
The relationship between protein dynamics and function is a subject of considerable contemporary interest. Although protein motions are frequently observed during ligand binding and release steps, the contribution of protein motions to the catalysis of bond making/breaking processes is more difficult to probe and verify. Here, we show how the quantum mechanical hydrogen tunneling associated with enzymatic C-H bond cleavage provides a unique window into the necessity of protein dynamics for achieving optimal catalysis. Experimental findings support a hierarchy of thermodynamically equilibrated motions that control the H-donor and -acceptor distance and active-site electrostatics, creating an ensemble of conformations suitable for H-tunneling. A possible extension of this view to methyl transfer and other catalyzed reactions is also presented. The impact of understanding these dynamics on the conceptual framework for enzyme activity, inhibitor/drug design, and biomimetic catalyst design is likely to be substantial.
Assuntos
Enzimas/fisiologia , Hidrogênio/química , Proteínas/fisiologia , Termodinâmica , Catálise , Enzimas/química , Hidrogênio/metabolismo , Hidrogênio/fisiologia , Cinética , Modelos Moleculares , Conformação Proteica , Proteínas/químicaRESUMO
Allostery is largely associated with conformational and functional transitions in individual proteins. This concept can be extended to consider the impact of conformational perturbations on cellular function and disease states. Here, we clarify the concept of allostery and how it controls physiological activities. We focus on the challenging questions of how allostery can both cause disease and contribute to development of new therapeutics. We aim to increase the awareness of the linkage between disease symptoms on the cellular level and specific aberrant allosteric actions on the molecular level and to emphasize the potential of allosteric drugs in innovative therapies.