Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Julita S. Imperial is active.

Publication


Featured researches published by Julita S. Imperial.


Journal of Biological Chemistry | 1999

Contulakin-G, an O-glycosylated invertebrate neurotensin

A. Grey Craig; Thomas Norberg; David Griffin; Carl Hoeger; Mateen Akhtar; Karsten Schmidt; William Low; John Dykert; Elliott Richelson; Valérie Navarro; Jean Mazella; Maren Watkins; David R. Hillyard; Julita S. Imperial; Lourdes J. Cruz; Baldomero M. Olivera

We have purified contulakin-G, a 16-amino acid O-linked glycopeptide (pGlu-Ser-Glu-Glu-Gly-Gly-Ser-Asn-Ala-Thr-Lys-Lys-Pro-Tyr-Ile-Leu-OH, pGlu is pyroglutamate) from Conus geographus venom. The major glycosylated form of contulakin-G was found to incorporate the disaccharide β-d-Galp-(1→3)-α-d-GalpNAc-(1→) attached to Thr10. The C-terminal sequence of contulakin-G shows a high degree of similarity to the neurotensin family of peptides. Synthetic peptide replicates of Gal(β→3) GalNAc(α→)Thr10 contulakin-G and its nonglycosylated analog were prepared using an Fmoc (9-fluorenylmethoxycarbonyl) protected solid phase synthesis strategy. The synthetic glycosylated con- tulakin-G, when administered intracerebroventricular into mice, was found to result in motor control-associated dysfunction observed for the native peptide. Contulakı́n-G was found to be active at 10-fold lower doses than the nonglycosylated Thr10 contulakin-G analog. The binding affinities of contulakin-G and the nonglycosylated Thr10 contulakin-G for a number of neurotensin receptor types including the human neurotensin type 1 receptor (hNTR1), the rat neurotensin type 1 and type 2 receptors, and the mouse neurotensin type 3 receptor were determined. The binding affinity of the nonglycosylated Thr10contulakin-G was approximately an order of magnitude lower than that of neurotensin1–13 for all the receptor types tested. In contrast, the glycosylated form of contulakin-G exhibited significantly weaker binding affinity for all of the receptors tested. However, both contulakin-G and nonglycosylated Thr10 contulakin-G were found to be potent agonists of rat neurotensin receptor type 1. Based on these results, we conclude that O-linked glycosylation appears to be a highly unusual strategy for increasing the efficacy of toxins directed against neurotransmitter receptors.


Journal of Biological Chemistry | 2005

Conkunitzin-S1 is the first member of a new Kunitz-type neurotoxin family. Structural and functional characterization.

Monika Bayrhuber; Vinesh Vijayan; Michael Ferber; Roland Graf; Jegannath Korukottu; Julita S. Imperial; James E. Garrett; Baldomero M. Olivera; Heinrich Terlau; Markus Zweckstetter; Stefan Becker

Conkunitzin-S1 (Conk-S1) is a 60-residue neurotoxin from the venom of the cone snail Conus striatus that interacts with voltage-gated potassium channels. Conk-S1 shares sequence homology with Kunitz-type proteins but contains only two out of the three highly conserved cysteine bridges, which are typically found in these small, basic protein modules. In this study the three-dimensional structure of Conk-S1 has been solved by multidimensional NMR spectroscopy. The solution structure of recombinant Conk-S1 shows that a Kunitz fold is present, even though one of the highly conserved disulfide cross-links is missing. Introduction of a third, homologous disulfide bond into Conk-S1 results in a functional toxin with similar affinity for Shaker potassium channels. The affinity of Conk-S1 can be enhanced by a pore mutation within the Shaker channel pore indicating an interaction of Conk-S1 with the vestibule of potassium channels.


Proceedings of the National Academy of Sciences of the United States of America | 2015

Specialized insulin is used for chemical warfare by fish-hunting cone snails

Helena Safavi-Hemami; Joanna Gajewiak; Santhosh Karanth; Samuel D. Robinson; Beatrix Ueberheide; Adam D. Douglass; Amnon Schlegel; Julita S. Imperial; Maren Watkins; Pradip K. Bandyopadhyay; Mark Yandell; Qing Li; Anthony W. Purcell; Raymond S. Norton; Lars Ellgaard; Baldomero M. Olivera

Significance The discovery and characterization of insulin, a key hormone of energy metabolism, provided a life-saving drug for diabetics. We show that insulin can be subverted for nefarious biological purposes: Venomous cone snails use specialized insulins to elicit hypoglycemic shock, facilitating capture of their fish prey. This finding extends our understanding of the chemical and functional diversity of venom components, such that the snail’s arsenal includes a diverse set of neurotoxins that alters neuronal circuitry, as well as components that override glucose homeostasis. The highly expressed venom insulins are distinct from molluscan insulins and exhibit remarkable similarity to fish insulins. They are the smallest of all insulins characterized from any source, potentially providing new insights into structure-function elements of insulin action. More than 100 species of venomous cone snails (genus Conus) are highly effective predators of fish. The vast majority of venom components identified and functionally characterized to date are neurotoxins specifically targeted to receptors, ion channels, and transporters in the nervous system of prey, predators, or competitors. Here we describe a venom component targeting energy metabolism, a radically different mechanism. Two fish-hunting cone snails, Conus geographus and Conus tulipa, have evolved specialized insulins that are expressed as major components of their venoms. These insulins are distinctive in having much greater similarity to fish insulins than to the molluscan hormone and are unique in that posttranslational modifications characteristic of conotoxins (hydroxyproline, γ-carboxyglutamate) are present. When injected into fish, the venom insulin elicits hypoglycemic shock, a condition characterized by dangerously low blood glucose. Our evidence suggests that insulin is specifically used as a weapon for prey capture by a subset of fish-hunting cone snails that use a net strategy to capture prey. Insulin appears to be a component of the nirvana cabal, a toxin combination in these venoms that is released into the water to disorient schools of small fish, making them easier to engulf with the snail’s distended false mouth, which functions as a net. If an entire school of fish simultaneously experiences hypoglycemic shock, this should directly facilitate capture by the predatory snail.


Current Biology | 2009

A Novel Conus Snail Polypeptide Causes Excitotoxicity by Blocking Desensitization of AMPA Receptors

Craig S. Walker; Stori Jensen; Michael Ellison; Jose A. Matta; Won Yong Lee; Julita S. Imperial; Nick Duclos; Penelope J. Brockie; David M. Madsen; John T. R. Isaac; Baldomero M. Olivera; Andres V. Maricq

BACKGROUND Ionotropic glutamate receptors (iGluRs) are glutamate-gated ion channels that mediate excitatory neurotransmission in the central nervous system. Based on both molecular and pharmacological criteria, iGluRs have been divided into two major classes, the non-NMDA class, which includes both AMPA and kainate subtypes of receptors, and the NMDA class. One evolutionarily conserved feature of iGluRs is their desensitization in the continued presence of glutamate. Thus, when in a desensitized state, iGluRs can be bound to glutamate, yet the channel remains closed. However, the relevance of desensitization to nervous system function has remained enigmatic. RESULTS Here, we report the identification and characterization of a novel polypeptide (con-ikot-ikot) from the venom of a predatory marine snail Conus striatus that specifically disrupts the desensitization of AMPA receptors (AMPARs). The stoichiometry of con-ikot-ikot appears reminiscent of the proposed subunit organization of AMPARs, i.e., a dimer of dimers, suggesting that it acts as a molecular four-legged clamp that holds the AMPAR channel open. Application of con-ikot-ikot to hippocampal slices caused a large and rapid increase in resting AMPAR-mediated current leading to neuronal death. CONCLUSIONS Our findings provide insight into the mechanisms that regulate receptor desensitization and demonstrate that in the arms race between prey and predators, evolution has selected for a toxin that blocks AMPAR desensitization, thus revealing the fundamental importance of desensitization for regulating neural function.


Toxicon | 1992

Precursor structure of ω-conotoxin GVIA determined from a cDNA clone

Clark J. Colledge; John P. Hunsperger; Julita S. Imperial; David R. Hillyard

Abstract The Ca 2+ channel blocking neurotoxin, ω-conotoxin GVIA, is a 27-amino acid peptide with three disulfide bonds. We have determined the precursor structure of this peptide by analyzing a cDNA clone obtained from a Conus geographus venom duct library. The ω-conotoxin GVIA prepropeptide is 73 amino acids in length comprising a 22 amino acid signal sequence, an intervening region of 23 amino acids, and finally, a 27 amino acid toxin region. A C-terminal glycine residue is later processed to a C-terminal amide moiety. The ω-conotoxin GVIA precursor exhibits regions of strong homology to the previously characterized King-Kong peptide precursor, but shows surprising divergence as well. The possible significance of the precursor organization is discussed.


Acta Crystallographica Section D-biological Crystallography | 2006

Structure of conkunitzin-S1, a neurotoxin and Kunitz-fold disulfide variant from cone snail

Catherine Y. Dy; Pawel Buczek; Julita S. Imperial; Grzegorz Bulaj; Martin P. Horvath

Most Kunitz proteins like BPTI and α-dendrotoxin are stabilized by three disulfide bonds. The crystal structure shows how subtle repacking of non-covalent interactions may compensate for disulfide bond loss in a naturally occurring two-disulfide variant, conkunitzin-S1, the first discovered member of a new conotoxin family.


Proceedings of the National Academy of Sciences of the United States of America | 2014

A disulfide tether stabilizes the block of sodium channels by the conotoxin μO§-GVIIJ

Joanna Gajewiak; Layla Azam; Julita S. Imperial; Aleksandra Walewska; Brad R. Green; Pradip K. Bandyopadhyay; Shrinivasan Raghuraman; Beatrix Ueberheide; Marshall W. Bern; H. Mimi Zhou; Natali A. Minassian; Rebecca Hagan; Mack Flinspach; Yi Liu; Grzegorz Bulaj; Alan D. Wickenden; Baldomero M. Olivera; Doju Yoshikami; Min Min Zhang

Significance A biochemically unique cone snail venom peptide has been characterized that may be used to probe unexplored but important features of the diverse voltage-gated Na channel isoforms that underlie electrical signaling in the nervous system. This peptide has a unique posttranslational modification (S-cysteinylated cysteine) and blocks sodium channels by forming a disulfide bond with the channel at a distinctive binding site. Because block by the peptide is prevented when specific β-subunits are coexpressed, this neurotoxin has potential for assessing which β-subunits are present in native Na channels. Peptide activity depends on the oxidation state of extracellular Cys residues on the channel. Thus, this peptide can also be used to monitor the oxidation state of the targeted Na channels. A cone snail venom peptide, μO§-conotoxin GVIIJ from Conus geographus, has a unique posttranslational modification, S-cysteinylated cysteine, which makes possible formation of a covalent tether of peptide to its target Na channels at a distinct ligand-binding site. μO§-conotoxin GVIIJ is a 35-aa peptide, with 7 cysteine residues; six of the cysteines form 3 disulfide cross-links, and one (Cys24) is S-cysteinylated. Due to limited availability of native GVIIJ, we primarily used a synthetic analog whose Cys24 was S-glutathionylated (abbreviated GVIIJSSG). The peptide-channel complex is stabilized by a disulfide tether between Cys24 of the peptide and Cys910 of rat (r) NaV1.2. A mutant channel of rNaV1.2 lacking a cysteine near the pore loop of domain II (C910L), was >103-fold less sensitive to GVIIJSSG than was wild-type rNaV1.2. In contrast, although rNaV1.5 was >104-fold less sensitive to GVIIJSSG than NaV1.2, an rNaV1.5 mutant with a cysteine in the homologous location, rNaV1.5[L869C], was >103-fold more sensitive than wild-type rNaV1.5. The susceptibility of rNaV1.2 to GVIIJSSG was significantly altered by treating the channels with thiol-oxidizing or disulfide-reducing agents. Furthermore, coexpression of rNaVβ2 or rNaVβ4, but not that of rNaVβ1 or rNaVβ3, protected rNaV1.1 to -1.7 (excluding NaV1.5) against block by GVIIJSSG. Thus, GVIIJ-related peptides may serve as probes for both the redox state of extracellular cysteines and for assessing which NaVβ- and NaVα-subunits are present in native neurons.


Proceedings of the National Academy of Sciences of the United States of America | 2015

Insights into the origins of fish hunting in venomous cone snails from studies of Conus tessulatus

Joseph W. Aman; Julita S. Imperial; Beatrix Ueberheide; Min Min Zhang; Manuel B. Aguilar; Dylan Taylor; Maren Watkins; Doju Yoshikami; Patrice Showers-Corneli; Helena Safavi-Hemami; Jason S. Biggs; Russell W. Teichert; Baldomero M. Olivera

Significance Only rarely is it possible to reconstruct molecular events that trigger the radiation of new lineages. Here we report key evidence that allows reconstruction of the transition from worm hunting to fish hunting among the species-rich family (Conidae) of marine cone snails (>700 species), which resulted in the emergence of multiple biodiverse piscivorous clades. A priori, the evolution of fish-hunting specialists would seem extremely improbable in a lineage of slowly moving snails that cannot swim, unlike their fish prey. The combination of results from molecular neuroscience, phylogenetic analysis, and chemical biology demonstrates that an ancestral cone snail venom peptide similar to δ-conotoxin TsVIA, a defensive venom component, preadapted a worm-hunting cone snail lineage, enabling the shift to a piscivorous lifestyle. Prey shifts in carnivorous predators are events that can initiate the accelerated generation of new biodiversity. However, it is seldom possible to reconstruct how the change in prey preference occurred. Here we describe an evolutionary “smoking gun” that illuminates the transition from worm hunting to fish hunting among marine cone snails, resulting in the adaptive radiation of fish-hunting lineages comprising ∼100 piscivorous Conus species. This smoking gun is δ-conotoxin TsVIA, a peptide from the venom of Conus tessulatus that delays inactivation of vertebrate voltage-gated sodium channels. C. tessulatus is a species in a worm-hunting clade, which is phylogenetically closely related to the fish-hunting cone snail specialists. The discovery of a δ-conotoxin that potently acts on vertebrate sodium channels in the venom of a worm-hunting cone snail suggests that a closely related ancestral toxin enabled the transition from worm hunting to fish hunting, as δ-conotoxins are highly conserved among fish hunters and critical to their mechanism of prey capture; this peptide, δ-conotoxin TsVIA, has striking sequence similarity to these δ-conotoxins from piscivorous cone snail venoms. Calcium-imaging studies on dissociated dorsal root ganglion (DRG) neurons revealed the peptide’s putative molecular target (voltage-gated sodium channels) and mechanism of action (inhibition of channel inactivation). The results were confirmed by electrophysiology. This work demonstrates how elucidating the specific interactions between toxins and receptors from phylogenetically well-defined lineages can uncover molecular mechanisms that underlie significant evolutionary transitions.


Annals of the New York Academy of Sciences | 2012

Adaptive radiation of venomous marine snail lineages and the accelerated evolution of venom peptide genes

Baldomero M. Olivera; Maren Watkins; Pradip K. Bandyopadhyay; Julita S. Imperial; Edgar P. Heimer de la Cotera; Manuel B. Aguilar; Estuardo López Vera; Gisela P. Concepcion; Arturo O. Lluisma

An impressive biodiversity (>10,000 species) of marine snails (suborder Toxoglossa or superfamily Conoidea) have complex venoms, each containing approximately 100 biologically active, disulfide‐rich peptides. In the genus Conus, the most intensively investigated toxoglossan lineage (∼500 species), a small set of venom gene superfamilies undergo rapid sequence hyperdiversification within their mature toxin regions. Each major lineage of Toxoglossa has its own distinct set of venom gene superfamilies. Two recently identified venom gene superfamilies are expressed in the large Turridae clade, but not in Conus. Thus, as major venomous molluscan clades expand, a small set of lineage‐specific venom gene superfamilies undergo accelerated evolution. The juxtaposition of extremely conserved signal sequences with hypervariable mature peptide regions is unprecedented and raises the possibility that in these gene superfamilies, the signal sequences are conserved as a result of an essential role they play in enabling rapid sequence evolution of the region of the gene that encodes the active toxin.


Toxicon | 2008

A Rapidly Diverging Superfamily of Peptide Toxins in Venomous Gemmula Species

Francisco M. Heralde; Julita S. Imperial; Pradip K. Bandyopadhyay; Baldomero M. Olivera; Gisela P. Concepcion; Ameurfina D. Santos

The gem turrids (genus Gemmula Weinkauff, 1875) are venomous snails in the family Turridae. A gene superfamily of disulfide-rich peptides expressed in Gemmula venom ducts was characterized. Gemmula speciosa (Reeve, 1843) venom duct cDNA clones revealed two different conotoxin-like prepropeptide precursors, with identical signal sequences, a largely conserved pro region, and a cysteine-rich C-terminal mature peptide region. The conserved signal sequence was used to successfully amplify homologous genes from three other Gemmula species; all had the same pattern of Cys residues in the predicted mature venom peptide. Although the signal sequence and propeptide regions were highly conserved, the mature toxin regions diverged greatly in sequence, except that the Cys residues were conserved. We designate this as the Pg-gene superfamily (Pg-superfamily) of Gemmula venom peptides. Purification of two members of the family directly from G. speciosa venom was achieved; amino acid sequence analysis revealed that these peptides are highly posttranslationally modified. With at least 10-fold as many species of turrids as cone snails, identification of rapidly diversifying gene superfamilies such as the Pg-superfamily of Gemmula is essential before the facile and systematic discovery and characterization of peptide toxins from turrid venoms can be achieved.

Collaboration


Dive into the Julita S. Imperial's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

David R. Hillyard

Case Western Reserve University

View shared research outputs
Top Co-Authors

Avatar

Lourdes J. Cruz

University of the Philippines Diliman

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

A. Grey Craig

Salk Institute for Biological Studies

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge