RESUMEN
The synthesis of glycogen allows for efficient intracellular storage of glucose molecules in a soluble form that can be rapidly released to enter glycolysis in response to energy demand. Intensive studies of glucose and glycogen metabolism, predominantly in skeletal muscle and liver, have produced innumerable insights into the mechanisms of hormone action, resulting in the award of several Nobel Prizes over the last one hundred years. Glycogen is actually present in all cells and tissues, albeit at much lower levels than found in muscle or liver. However, metabolic and physiological roles of glycogen in other tissues are poorly understood. This series of Minireviews summarizes what is known about the enzymes involved in brain glycogen metabolism and studies that have linked glycogen metabolism to multiple brain functions involving metabolic communication between astrocytes and neurons. Recent studies unexpectedly linking some forms of epilepsy to mutations in two poorly understood proteins involved in glycogen metabolism are also reviewed.
Asunto(s)
Encéfalo/metabolismo , Glucógeno/metabolismo , Encéfalo/enzimología , Glucógeno/biosíntesis , Glucogenólisis , Glucólisis , Humanos , Literatura de Revisión como Asunto , Transmisión SinápticaRESUMEN
The key regulatory enzymes of glycogenolysis are phosphorylase kinase, a hetero-oligomer with four different types of subunits, and glycogen phosphorylase, a homodimer. Both enzymes are activated by phosphorylation and small ligands, and both enzymes have distinct isoforms that are predominantly expressed in muscle, liver, or brain; however, whole-transcriptome high-throughput sequencing analyses show that in brain both of these enzymes are likely composed of subunit isoforms representing all three tissues. This Minireview examines the regulatory properties of the isoforms of these two enzymes expressed in the three tissues, focusing on their potential regulatory similarities and differences. Additionally, the activity, structure, and regulation of the remaining enzyme necessary for glycogenolysis, glycogen-debranching enzyme, are also reviewed.
Asunto(s)
Encéfalo/enzimología , Encéfalo/metabolismo , Glucógeno Fosforilasa/metabolismo , Glucogenólisis , Fosforilasa Quinasa/metabolismo , Animales , Metabolismo Energético , Glucógeno/metabolismo , Sistema de la Enzima Desramificadora del Glucógeno/química , Sistema de la Enzima Desramificadora del Glucógeno/metabolismo , Glucógeno Fosforilasa/química , Ensayos Analíticos de Alto Rendimiento , Humanos , Isoenzimas/metabolismo , Ligandos , Fosforilasa Quinasa/química , Fosforilación , Relación Estructura-Actividad , TranscriptomaRESUMEN
The selective phosphorylation of glycogen phosphorylase (GP) by its only known kinase, phosphorylase kinase (PhK), keeps glycogen catabolism tightly regulated. In addition to the obligatory interaction between the catalytic γ subunit of PhK and the phosphorylatable region of GP, previous studies have suggested additional sites of interaction between this kinase and its protein substrate. Using short chemical crosslinkers, we have identified direct interactions of GP with the large regulatory α and ß subunits of PhK. These newfound interactions were found to be sensitive to ligands that bind PhK.
Asunto(s)
Glucógeno Fosforilasa/química , Fosforilasa Quinasa/química , Mapeo de Interacción de Proteínas/métodos , Sitios de Unión , Reactivos de Enlaces Cruzados/química , Activación Enzimática , Glucógeno Fosforilasa/ultraestructura , Complejos Multienzimáticos/química , Complejos Multienzimáticos/ultraestructura , Fosforilasa Quinasa/ultraestructura , Unión Proteica , Subunidades de Proteína , Especificidad por SustratoRESUMEN
Allosteric regulation of protein function is recognized to be widespread throughout biology; however, knowledge of allosteric mechanisms, the molecular changes within a protein that couple one binding site to another, is limited. Although mutagenesis is often used to probe allosteric mechanisms, we consider herein what the outcome of a mutagenesis study truly reveals about an allosteric mechanism. Arguably, the best way to evaluate the effects of a mutation on allostery is to monitor the allosteric coupling constant (Qax), a ratio of the substrate binding constants in the absence versus presence of an allosteric effector. A range of substitutions at a given residue position in a protein can reveal when a particular substitution causes gain-of-function, which addresses a key challenge in interpreting mutation-dependent changes in the magnitude of Qax. Thus, whole-protein mutagenesis studies offer an acceptable means of identifying residues that contribute to an allosteric mechanism. With this focus on monitoring Qax, and keeping in mind the equilibrium nature of allostery, we consider alternative possibilities for what an allosteric mechanism might be. We conclude that different possible mechanisms (rotation-of-solid-domains, movement of secondary structure, side-chain repacking, changes in dynamics, etc.) will result in different findings in whole-protein mutagenesis studies.
Asunto(s)
Mutagénesis , Proteínas/química , Proteínas/genética , Regulación Alostérica , Modelos Moleculares , Mutación , Conformación Proteica , Proteínas/metabolismo , TermodinámicaRESUMEN
Modern mass spectrometry (MS) technologies have provided a versatile platform that can be combined with a large number of techniques to analyze protein structure and dynamics. These techniques include the three detailed in this chapter: (1) hydrogen/deuterium exchange (HDX), (2) limited proteolysis, and (3) chemical crosslinking (CX). HDX relies on the change in mass of a protein upon its dilution into deuterated buffer, which results in varied deuterium content within its backbone amides. Structural information on surface exposed, flexible or disordered linker regions of proteins can be achieved through limited proteolysis, using a variety of proteases and only small extents of digestion. CX refers to the covalent coupling of distinct chemical species and has been used to analyze the structure, function and interactions of proteins by identifying crosslinking sites that are formed by small multi-functional reagents, termed crosslinkers. Each of these MS applications is capable of revealing structural information for proteins when used either with or without other typical high resolution techniques, including NMR and X-ray crystallography.
Asunto(s)
Biología Computacional/métodos , Minería de Datos/métodos , Bases de Datos de Proteínas , Espectrometría de Masas/métodos , Proteínas/análisis , Proteoma , Proteómica/métodos , Algoritmos , Animales , Reactivos de Enlaces Cruzados/química , Medición de Intercambio de Deuterio , Ensayos Analíticos de Alto Rendimiento , Humanos , Conformación Proteica , Proteolisis , Reproducibilidad de los Resultados , Programas Informáticos , Flujo de TrabajoRESUMEN
In the six decades since its discovery, phosphorylase kinase (PhK) from rabbit skeletal muscle has usually been studied at 30 °C; in fact, not a single study has examined functions of PhK at a rabbit's body temperature, which is nearly 10 °C greater. Thus, we have examined aspects of the activity, regulation, and structure of PhK at temperatures between 0 and 40 °C. Between 0 and 30 °C, the activity at pH 6.8 of nonphosphorylated PhK predictably increased; however, between 30 and 40 °C, there was a dramatic jump in its activity, resulting in the nonactivated enzyme having a far greater activity at body temperature than was previously realized. This anomalous change in properties between 30 and 40 °C was observed for multiple functions, and both stimulation (by ADP and phosphorylation) and inhibition (by orthophosphate) were considerably less pronounced at 40 °C than at 30 °C. In general, the allosteric control of PhK's activity is definitely more subtle at body temperature. Changes in behavior related to activity at 40 °C and its control can be explained by the near disappearance of hysteresis at physiological temperature. In important ways, the picture of PhK that has emerged from six decades of study at temperatures of ≤30 °C does not coincide with that of the enzyme studied at physiological temperature. The probable underlying mechanism for the dramatic increase in PhK's activity between 30 and 40 °C is an abrupt change in the conformations of the regulatory ß and catalytic γ subunits between these two temperatures.
Asunto(s)
Temperatura Corporal , Fosforilasa Quinasa/metabolismo , Animales , Activación Enzimática , Femenino , Fosforilación , ConejosRESUMEN
Phosphorylase kinase (PhK) is a 1.3 MDa (αßγδ)4 enzyme complex, in which αßγδ protomers associate in D2 symmetry to form two large octameric lobes that are interconnected by four bridges. The approximate locations of the subunits have been mapped in low-resolution cryo-electron microscopy structures of the complex; however, the disposition of the subunits within the complex remains largely unknown. We have used partial proteolysis and chemical footprinting in combination with high-resolution mass spectrometry to identify surface-exposed regions of the intact nonactivated and phospho-activated conformers. In addition to the known interaction of the γ subunit's C-terminal regulatory domain with the δ subunit (calmodulin), our exposure results indicate that the catalytic core of γ may also anchor to the PhK complex at the bottom backside of its C-terminal lobe facing away from the active site cleft. Exposed loops on the α and ß regulatory subunits within the complex occur at regions overlapping with tissue-specific alternative RNA splice sites and regulatory phosphorylatable domains. Their phosphorylation alters the surface exposure of α and ß, corroborating previous biophysical and biochemical studies that detected phosphorylation-dependent conformational changes in these subunits; however, for the first time, specific affected regions have been identified.
Asunto(s)
Fosforilasa Quinasa/química , Animales , Dominio Catalítico , Cristalografía por Rayos X , Activación Enzimática , Espectrometría de Masas , Modelos Moleculares , Mapeo Peptídico , Fosforilasa Quinasa/metabolismo , Dominios y Motivos de Interacción de Proteínas , Estructura Cuaternaria de Proteína , Subunidades de Proteína , Proteolisis , ConejosRESUMEN
Phosphorylase kinase (PhK), a 1.3 MDa enzyme complex that regulates glycogenolysis, is composed of four copies each of four distinct subunits (α, ß, γ, and δ). The catalytic protein kinase subunit within this complex is γ, and its activity is regulated by the three remaining subunits, which are targeted by allosteric activators from neuronal, metabolic, and hormonal signaling pathways. The regulation of activity of the PhK complex from skeletal muscle has been studied extensively; however, considerably less is known about the interactions among its subunits, particularly within the non-activated versus activated forms of the complex. Here, nanoelectrospray mass spectrometry and partial denaturation were used to disrupt PhK, and subunit dissociation patterns of non-activated and phospho-activated (autophosphorylation) conformers were compared. In so doing, we have established a network of subunit contacts that complements and extends prior evidence of subunit interactions obtained from chemical crosslinking, and these subunit interactions have been modeled for both conformers within the context of a known three-dimensional structure of PhK solved by cryoelectron microscopy. Our analyses show that the network of contacts among subunits differs significantly between the nonactivated and phospho-activated conformers of PhK, with the latter revealing new interprotomeric contact patterns for the ß subunit, the predominant subunit responsible for PhK's activation by phosphorylation. Partial disruption of the phosphorylated conformer yields several novel subcomplexes containing multiple ß subunits, arguing for their self-association within the activated complex. Evidence for the theoretical αßγδ protomeric subcomplex, which has been sought but not previously observed, was also derived from the phospho-activated complex. In addition to changes in subunit interaction patterns upon phospho-activation, mass spectrometry revealed a large change in the overall stability of the complex, with the phospho-activated conformer being more labile, in concordance with previous hypotheses on the mechanism of allosteric activation of PhK through perturbation of its inhibitory quaternary structure.
Asunto(s)
Dominio Catalítico , Músculo Esquelético/enzimología , Fosforilasa Quinasa , Subunidades de Proteína/análisis , Catálisis , Espectrometría de Masas , Músculo Esquelético/metabolismo , Fosforilasa Quinasa/análisis , Fosforilasa Quinasa/química , Fosforilasa Quinasa/metabolismo , Fosforilación , Conformación Proteica , Estructura Cuaternaria de Proteína , Subunidades de Proteína/químicaRESUMEN
Phosphorylase kinase (PhK) is a hexadecameric (αßγδ)(4) complex that regulates glycogenolysis in skeletal muscle. Activity of the catalytic γ subunit is regulated by allosteric activators targeting the regulatory α, ß, and δ subunits. Three-dimensional EM reconstructions of PhK show it to be two large (αßγδ)(2) lobes joined with D(2) symmetry through interconnecting bridges. The subunit composition of these bridges was unknown, although indirect evidence suggested the ß subunits may be involved in their formation. We have used biochemical, biophysical, and computational approaches to not only address the quaternary structure of the ß subunits within the PhK complex, i.e. whether they compose the bridges, but also their secondary and tertiary structures. The secondary structure of ß was determined to be predominantly helical by comparing the CD spectrum of an αγδ subcomplex with that of the native (αßγδ)(4) complex. An atomic model displaying tertiary structure for the entire ß subunit was constructed using chemical cross-linking, MS, threading, and ab initio approaches. Nearly all this model is covered by two templates corresponding to glycosyl hydrolase 15 family members and the A subunit of protein phosphatase 2A. Regarding the quaternary structure of the ß subunits, they were directly determined to compose the four interconnecting bridges in the (αßγδ)(4) kinase core, because a ß(4) subcomplex was observed through both chemical cross-linking and top-down MS of PhK. The predicted model of the ß subunit was docked within the bridges of a cryoelectron microscopic density envelope of PhK utilizing known surface features of the subunit.
Asunto(s)
Fosforilasa Quinasa/química , Subunidades de Proteína/química , Secuencia de Aminoácidos , Animales , Reactivos de Enlaces Cruzados/química , Dinitrofluorobenceno/análogos & derivados , Dinitrofluorobenceno/química , Simulación del Acoplamiento Molecular , Fragmentos de Péptidos/química , Unión Proteica , Dominios y Motivos de Interacción de Proteínas , Estructura Cuaternaria de Proteína , Estructura Secundaria de Proteína , Conejos , Espectrometría de Masas en TándemRESUMEN
Phosphorylase kinase (PhK), an (alphabetagammadelta)(4) complex, stimulates energy production from glycogen in the cascade activation of glycogenolysis. Its large homologous alpha and beta subunits regulate the activity of the catalytic gamma subunit and account for 81% of PhK's mass. Both subunits are thought to be multidomain structures, and recent predictions based on their sequences suggest the presence of potentially functional glucoamylase (GH15)-like domains near their amino termini. We present the first experimental evidence of such a domain in PhK by demonstrating that the glucoamylase inhibitor acarbose binds PhK, perturbs its structure, and stimulates its kinase activity.
Asunto(s)
Acarbosa/farmacología , Glucano 1,4-alfa-Glucosidasa/antagonistas & inhibidores , Fosforilasa Quinasa/química , Activación Enzimática/efectos de los fármacos , Inhibidores Enzimáticos , Humanos , Hipoglucemiantes , Fosforilasa Quinasa/efectos de los fármacos , Unión Proteica , Conformación ProteicaRESUMEN
Chemical cross-linking and high resolution MS have been integrated successfully to capture protein interactions and provide low resolution structural data for proteins that are refractive to analyses by NMR or crystallography. Despite the versatility of these combined techniques, the array of products that is generated from the cross-linking and proteolytic digestion of proteins is immense and generally requires the use of labeling strategies and/or data base search algorithms to distinguish actual cross-linked peptides from the many side products of cross-linking. Most strategies reported to date have focused on the analysis of small cross-linked protein complexes (<60 kDa) because the number of potential forms of covalently modified peptides increases dramatically with the number of peptides generated from the digestion of such complexes. We report herein the development of a user-friendly search engine, CrossSearch, that provides the foundation for an overarching strategy to detect cross-linked peptides from the digests of large (>or=170-kDa) cross-linked proteins, i.e. conjugates. Our strategy combines the use of a low excess of cross-linker, data base searching, and Fourier transform ion cyclotron resonance MS to experimentally minimize and theoretically cull the side products of cross-linking. Using this strategy, the (alpha beta gamma delta)(4) phosphorylase kinase model complex was cross-linked to form with high specificity a 170-kDa betagamma conjugate in which we identified residues involved in the intramolecular cross-linking of the 125-kDa beta subunit between its regulatory N terminus and its C terminus. This finding provides an explanation for previously published homodimeric two-hybrid interactions of the beta subunit and suggests a dynamic structural role for the regulatory N terminus of that subunit. The results offer proof of concept for the CrossSearch strategy for analyzing conjugates and are the first to reveal a tertiary structural element of either homologous alpha or beta regulatory subunit of phosphorylase kinase.
Asunto(s)
Reactivos de Enlaces Cruzados/química , Péptidos/análisis , Mapeo de Interacción de Proteínas/métodos , Proteínas/química , Programas Informáticos , Animales , Ciclotrones , Análisis de Fourier , Internet , Espectrometría de Masas/métodos , Péptidos/química , Fosforilasa Quinasa/química , Subunidades de Proteína/química , ConejosRESUMEN
Understanding the regulatory interactions among the 16 subunits of the (alphabetagammadelta)(4) phosphorylase b kinase (PhK) complex can only be achieved through reconstructing the holoenzyme or its subcomplexes from the individual subunits. In this study, recombinant baculovirus carrying a vector containing a multigene cassette was created to coexpress in insect cells alpha, beta, gamma, and delta subunits corresponding to rabbit skeletal muscle PhK. The hexadecameric recombinant PhK (rPhK) and its corresponding alphagammadelta trimeric subcomplex were purified to homogeneity with proper subunit stoichiometries. The catalytic activity of rPhK at pH 8.2 and its ratio of activities at pH 6.8 versus pH 8.2 were comparable to those of PhK purified from rabbit muscle (RM PhK), as was the hysteresis (autoactivation) in the rate of product formation at pH 6.8. Both the rPhK and alphagammadelta exhibited only a very low Ca(2+)-independent activity and a Ca(2+)-dependent activity similar to that of the native holoenzyme with [Ca(2+)](0.5) of 0.4 microM for the RM PhK, 0.7 microM for the rPhK, and 1.5 microM for the alphagammadelta trimer. The RM PhK, rPhK, and alphagammadelta subcomplex were also all activated through self-phosphorylation. Using cross-linking and limited proteolysis, the alpha-gamma intersubunit contacts previously observed within the intact RM PhK complex were also observed within the recombinant alphagammadelta subcomplex. Our results indicate that both the rPhK and alphagammadelta subcomplex are promising models for future structure-function studies on the regulation of PhK activity through intersubunit contacts, because both retained the regulatory properties of the enzyme purified from skeletal muscle.
Asunto(s)
Músculo Esquelético/enzimología , Fosforilasa Quinasa/metabolismo , Subunidades de Proteína/metabolismo , Animales , Baculoviridae/metabolismo , Holoenzimas/química , Holoenzimas/metabolismo , Cinética , Modelos Animales , Músculo Esquelético/metabolismo , Fosforilación , Subunidades de Proteína/química , Conejos , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismoRESUMEN
Brain glycogen is extremely difficult to study because it is very labile to physiological status and postmortem autolysis, and glycogen degradative enzymes are rapidly activated by metabolites and signaling molecules. Glycogen is predominantly located within astrocytes in adult brain, and abnormal glycogen metabolism in neurons has lethal consequences. Diverse distribution of glycogen among subcellular compartments suggests local regulation and different functional roles, and recent studies have revealed critically important roles for glycogen in normal brain function and Lafora disease. This brief overview highlights some of the major advances in elucidation of glycogen's roles in astrocytic functions and neurotransmission and the severe consequences of aberrant neuronal glycogen metabolism.
Asunto(s)
Encéfalo/fisiología , Metabolismo Energético , Glucógeno/metabolismo , Astrocitos/metabolismo , Investigación Biomédica , Encéfalo/citología , Encéfalo/metabolismo , Humanos , Enfermedad de Lafora/metabolismo , Neuronas/metabolismoRESUMEN
Skeletal muscle phosphorylase kinase (PhK) is an (alphabetagammadelta) 4 hetero-oligomeric enzyme complex that phosphorylates and activates glycogen phosphorylase b (GP b) in a Ca (2+)-dependent reaction that couples muscle contraction with glycogen breakdown. GP b is PhK's only known in vivo substrate; however, given the great size and multiple subunits of the PhK complex, we screened muscle extracts for other potential targets. Extracts of P/J (control) and I/lnJ (PhK deficient) mice were incubated with [gamma- (32)P]ATP with or without Ca (2+) and compared to identify potential substrates. Candidate targets were resolved by two-dimensional polyacrylamide gel electrophoresis, and phosphorylated glyceraldehyde-3-phosphate dehydrogenase (GAPDH) was identified by matrix-assisted laser desorption ionization mass spectroscopy. In vitro studies showed GAPDH to be a Ca (2+)-dependent substrate of PhK, although the rate of phosphorylation is very slow. GAPDH does, however, bind tightly to PhK, inhibiting at low concentrations (IC 50 approximately 0.45 microM) PhK's conversion of GP b. When a short synthetic peptide substrate was substituted for GP b, the inhibition was negligible, suggesting that GAPDH may inhibit predominantly by binding to the PhK complex at a locus distinct from its active site on the gamma subunit. To test this notion, the PhK-GAPDH complex was incubated with a chemical cross-linker, and a dimer between the regulatory beta subunit of PhK and GAPDH was formed. This interaction was confirmed by the fact that a subcomplex of PhK missing the beta subunit, specifically an alphagammadelta subcomplex, was unable to phosphorylate GAPDH, even though it is catalytically active toward GP b. Moreover, GAPDH had no effect on the conversion of GP b by the alphagammadelta subcomplex. The interactions described herein between the beta subunit of PhK and GAPDH provide a possible mechanism for the direct linkage of glycogenolysis and glycolysis in skeletal muscle.
Asunto(s)
Gliceraldehído-3-Fosfato Deshidrogenasas/metabolismo , Fosforilasa Quinasa/metabolismo , Subunidades de Proteína/metabolismo , Animales , Calcio/farmacología , Reactivos de Enlaces Cruzados/farmacología , Enzimas Inmovilizadas/metabolismo , Gliceraldehído-3-Fosfato Deshidrogenasas/antagonistas & inhibidores , Concentración de Iones de Hidrógeno/efectos de los fármacos , Ratones , Músculo Esquelético/efectos de los fármacos , Músculo Esquelético/enzimología , Fosforilasa Quinasa/antagonistas & inhibidores , Fosforilación/efectos de los fármacos , Unión Proteica/efectos de los fármacos , Conejos , Succinimidas/farmacología , Extractos de TejidosRESUMEN
Phosphorylase kinase (PhK), an (alphabetagammadelta)(4) complex, regulates glycogenolysis. Its activity, catalyzed by the gamma subunit, is tightly controlled by phosphorylation and activators acting through allosteric sites on its regulatory alpha, beta and delta subunits. Activation by phosphorylation is predominantly mediated by the regulatory beta subunit, which undergoes a conformational change that is structurally linked with the gamma subunit and that is characterized by the ability of a short chemical crosslinker to form beta-beta dimers. To determine potential regions of interaction of the beta and gamma subunits, we have used chemical crosslinking and two-hybrid screening. The beta and gamma subunits were crosslinked to each other in phosphorylated PhK, and crosslinked peptides from digests were identified by Fourier transform mass spectrometry, beginning with a search engine developed "in house" that generates a hypothetical list of crosslinked peptides. A conjugate between beta and gamma that was verified by MS/MS corresponded to crosslinking between K303 in the C-terminal regulatory domain of gamma (gammaCRD) and R18 in the N-terminal regulatory region of beta (beta1-31), which contains the phosphorylatable serines 11 and 26. A synthetic peptide corresponding to residues 1-22 of beta inhibited the crosslinking between beta and gamma, and was itself crosslinked to K303 of gamma. In two-hybrid screening, the beta1-31 region controlled beta subunit self-interactions, in that they were favored by truncation of this region or by mutation of the phosphorylatable serines 11 and 26, thus providing structural evidence for a phosphorylation-dependent subunit communication network in the PhK complex involving at least these two regulatory regions of the beta and gamma subunits. The sum of our results considered together with previous findings implicates the gammaCRD as being an allosteric activation switch in PhK that interacts with all three of the enzyme's regulatory subunits and is proximal to the active site cleft.
Asunto(s)
Regulación Alostérica/efectos de los fármacos , Sitio Alostérico/efectos de los fármacos , Reactivos de Enlaces Cruzados/farmacología , Espectrometría de Masas/métodos , Péptidos/metabolismo , Fosforilasa Quinasa/metabolismo , Secuencia de Aminoácidos , Aminoácidos/metabolismo , Animales , Modelos Biológicos , Datos de Secuencia Molecular , Proteínas Mutantes/análisis , Proteínas Mutantes/química , Proteínas Mutantes/metabolismo , Fosforilasa Quinasa/análisis , Fosforilasa Quinasa/química , Fosforilación/efectos de los fármacos , Fosfoserina/metabolismo , Mutación Puntual/genética , Unión Proteica/efectos de los fármacos , Mapeo de Interacción de Proteínas , Estructura Cuaternaria de Proteína/efectos de los fármacos , Estructura Terciaria de Proteína/efectos de los fármacos , Subunidades de Proteína/análisis , Subunidades de Proteína/química , Subunidades de Proteína/metabolismo , Conejos , Eliminación de Secuencia/genética , Homología Estructural de Proteína , Succinimidas/farmacologíaRESUMEN
In the tightly regulated glycogenolysis cascade, the breakdown of glycogen to glucose-1-phosphate, phosphorylase kinase (PhK) plays a key role in regulating the activity of glycogen phosphorylase. PhK is a 1.3 MDa hexadecamer, with four copies each of four different subunits (α, ß, γ and δ), making the study of its structure challenging. Using hydrogen-deuterium exchange, we have analyzed the regulatory ß subunit and the catalytic γ subunit in the context of the intact non-activated PhK complex to study the structure of these subunits and identify regions of surface exposure. Our data suggest that within the non-activated complex the γ subunit assumes an activated conformation and are consistent with a previous docking model of the ß subunit within the cryoelectron microscopy envelope of PhK.
Asunto(s)
Fosforilasa Quinasa/química , Subunidades de Proteína/química , Animales , Dominio Catalítico , Microscopía por Crioelectrón , Glucogenólisis , Humanos , Modelos Moleculares , Multimerización de Proteína , Estructura Cuaternaria de ProteínaRESUMEN
Phosphorylase kinase (PhK), a 1.3 MDa regulatory enzyme complex in the glycogenolysis cascade, has four copies each of four subunits, (αßγδ)4 , and 325 kDa of unique sequence (the mass of an αßγδ protomer). The α, ß and δ subunits are regulatory, and contain allosteric activation sites that stimulate the activity of the catalytic γ subunit in response to diverse signaling molecules. Due to its size and complexity, no high resolution structures have been solved for the intact complex or its regulatory α and ß subunits. Of PhK's four subunits, the least is known about the structure and function of its largest subunit, α. Here, we have modeled the full-length α subunit, compared that structure against previously predicted domains within this subunit, and performed hydrogen-deuterium exchange on the intact subunit within the PhK complex. Our modeling results show α to comprise two major domains: an N-terminal glycoside hydrolase domain and a large C-terminal importin α/ß-like domain. This structure is similar to our previously published model for the homologous ß subunit, although clear structural differences are present. The overall highly helical structure with several intervening hinge regions is consistent with our hydrogen-deuterium exchange results obtained for this subunit as part of the (αßγδ)4 PhK complex. Several low exchanging regions predicted to lack ordered secondary structure are consistent with inter-subunit contact sites for α in the quaternary structure of PhK; of particular interest is a low-exchanging region in the C-terminus of α that is known to bind the regulatory domain of the catalytic γ subunit.
Asunto(s)
Fosforilasa Quinasa/química , Subunidades de Proteína/química , Sitio Alostérico , Animales , Dominio Catalítico , Medición de Intercambio de Deuterio , Glucogenólisis , Humanos , Modelos Moleculares , Unión Proteica , Dominios Proteicos , Estructura Cuaternaria de Proteína , Estructura Secundaria de ProteínaRESUMEN
Skeletal muscle phosphorylase kinase (PhK) is a 1.3-MDa hexadecameric complex that catalyzes the phosphorylation and activation of glycogen phosphorylase b. PhK has an absolute requirement for Ca(2+) ions, which couples the cascade activation of glycogenolysis with muscle contraction. Ca(2+) activates PhK by binding to its nondissociable calmodulin subunits; however, specific changes in the structure of the PhK complex associated with its activation by Ca(2+) have been poorly understood. We present herein the first comparative investigation of the physical characteristics of highly purified hexadecameric PhK in the absence and presence of Ca(2+) ions using a battery of biophysical probes as a function of temperature. Ca(2+)-induced differences in the tertiary and secondary structure of PhK measured by fluorescence, UV absorption, FTIR, and CD spectroscopies as low resolution probes of PhK's structure were subtle. In contrast, the surface electrostatic properties of solvent accessible charged and polar groups were altered upon the binding of Ca(2+) ions to PhK, which substantially affected both its diffusion rate and electrophoretic mobility, as measured by dynamic light scattering and zeta potential analyses, respectively. Overall, the observed physicochemical effects of Ca(2+) binding to PhK were numerous, including a decrease in its electrostatic surface charge that reduced particle mobility without inducing a large alteration in secondary structure content or hydrophobic tertiary interactions. Without exception, for all analyses in which the temperature was varied, the presence of Ca(2+) rendered the enzyme increasingly labile to thermal perturbation.
Asunto(s)
Calcio/química , Fosforilasa Quinasa/química , Regulación Alostérica , Cationes Bivalentes , Dicroismo Circular , Estabilidad de Enzimas , Luz , Estructura Secundaria de Proteína , Estructura Terciaria de Proteína , Dispersión de Radiación , Espectrometría de Fluorescencia , Espectrofotometría Ultravioleta , Espectroscopía Infrarroja por Transformada de Fourier , Electricidad Estática , TemperaturaRESUMEN
The four integral delta subunits of the phosphorylase kinase (PhK) complex are identical to calmodulin (CaM) and confer Ca(2+) sensitivity to the enzyme, but bind independently of Ca(2+). In addition to binding Ca(2+), an obligatory activator of PhK's phosphoryltransferase activity, the delta subunits transmit allosteric signals to PhK's remaining alpha, beta, and gamma subunits in activating the enzyme. Under mild conditions about 10% of the delta subunits can be exchanged for exogenous CaM. In this study, a CaM double-mutant derivatized with a fluorescent donor-acceptor pair (CaM-DA) was exchanged for delta to assess the conformational substates of PhKdelta by single molecule fluorescence resonance energy transfer (FRET) +/-Ca(2+). The exchanged subunits were determined to occupy distinct conformations, depending on the absence or presence of Ca(2+), as observed by alterations of the compact, mid-length, and extended populations of their FRET distance distributions. Specifically, the combined predominant mid-length and less common compact conformations of PhKdelta became less abundant in the presence of Ca(2+), with the delta subunits assuming more extended conformations. This behavior is in contrast to the compact forms commonly observed for many of CaM's Ca(2+)-dependent interactions with other proteins. In addition, the conformational distributions of the exchanged PhKdelta subunits were distinct from those of CaM-DA free in solution, +/-Ca(2+), as well as from exogenous CaM bound to the PhK complex as delta'. The distinction between delta and delta' is that the latter binds only in the presence of Ca(2+), but stoichiometrically and at a different location in the complex than delta.