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Dive into the research topics where Jack Taunton is active.

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Featured researches published by Jack Taunton.


Science | 1996

A mammalian histone deacetylase related to the yeast transcriptional regulator Rpd3p

Jack Taunton; Christian A. Hassig; Stuart L. Schreiber

Trapoxin is a microbially derived cyclotetrapeptide that inhibits histone deacetylation in vivo and causes mammalian cells to arrest in the cell cycle. A trapoxin affinity matrix was used to isolate two nuclear proteins that copurified with histone deacetylase activity. Both proteins were identified by peptide microsequencing, and a complementary DNA encoding the histone deacetylase catalytic subunit (HD1) was cloned from a human Jurkat T cell library. As the predicted protein is very similar to the yeast transcriptional regulator Rpd3p, these results support a role for histone deacetylase as a key regulator of eukaryotic transcription.


Journal of Biological Chemistry | 2007

RAS/ERK Signaling Promotes Site-specific Ribosomal Protein S6 Phosphorylation via RSK and Stimulates Cap-dependent Translation

Philippe P. Roux; David Shahbazian; Hieu Vu; Marina K. Holz; Michael S. Cohen; Jack Taunton; Nahum Sonenberg; John Blenis

Converging signals from the mammalian target of rapamycin (mTOR) and phosphoinositide 3-kinase (PI3K) pathways are well established to modulate translation initiation. Less is known regarding the molecular basis of protein synthesis regulated by other inputs, such as agonists of the Ras/extracellular signal-regulated kinase (ERK) signaling cascade. Ribosomal protein (rp) S6 is a component of the 40S ribosomal subunit that becomes phosphorylated at several serine residues upon mitogen stimulation, but the exact molecular mechanisms regulating its phosphorylation and the function of phosphorylated rpS6 is poorly understood. Here, we provide evidence that activation of the p90 ribosomal S6 kinases (RSKs) by serum, growth factors, tumor promoting phorbol esters, and oncogenic Ras is required for rpS6 phosphorylation downstream of the Ras/ERK signaling cascade. We demonstrate that while ribosomal S6 kinase 1 (S6K1) phosphorylates rpS6 at all sites, RSK exclusively phosphorylates rpS6 at Ser235/236 in vitro and in vivo using an mTOR-independent mechanism. Mutation of rpS6 at Ser235/236 reveals that phosphorylation of these sites promotes its recruitment to the 7-methylguanosine cap complex, suggesting that Ras/ERK signaling regulates assembly of the translation preinitiation complex. These data demonstrate that RSK provides an mTOR-independent pathway linking the Ras/ERK signaling cascade to the translational machinery.


The EMBO Journal | 2006

The mTOR/PI3K and MAPK pathways converge on eIF4B to control its phosphorylation and activity

David Shahbazian; Philippe P. Roux; Virginie Mieulet; Michael S. Cohen; Brian Raught; Jack Taunton; John W. B. Hershey; John Blenis; Mario Pende; Nahum Sonenberg

The eukaryotic translation initiation factor 4B (eIF4B) plays a critical role in recruiting the 40S ribosomal subunit to the mRNA. In response to insulin, eIF4B is phosphorylated on Ser422 by S6K in a rapamycin‐sensitive manner. Here we demonstrate that the p90 ribosomal protein S6 kinase (RSK) phosphorylates eIF4B on the same residue. The relative contribution of the RSK and S6K modules to the phosphorylation of eIF4B is growth factor‐dependent, and the two phosphorylation events exhibit very different kinetics. The S6K and RSK proteins are members of the AGC protein kinase family, and require PDK1 phosphorylation for activation. Consistent with this requirement, phosphorylation of eIF4B Ser422 is abrogated in PDK1 null embryonic stem cells. Phosphorylation of eIF4B on Ser422 by RSK and S6K is physiologically significant, as it increases the interaction of eIF4B with the eukaryotic translation initiation factor 3.


Nature Methods | 2011

High-frequency genome editing using ssDNA oligonucleotides with zinc-finger nucleases

Fuqiang Chen; Shondra M. Pruett-Miller; Yuping Huang; Monika Gjoka; Katarzyna Duda; Jack Taunton; Trevor N. Collingwood; Morten Frödin; Gregory D. Davis

Zinc-finger nucleases (ZFNs) have enabled highly efficient gene targeting in multiple cell types and organisms. Here we describe methods for using simple ssDNA oligonucleotides in tandem with ZFNs to efficiently produce human cell lines with three distinct genetic outcomes: (i) targeted point mutation, (ii) targeted genomic deletion of up to 100 kb and (iii) targeted insertion of small genetic elements concomitant with large genomic deletions.


Nature Chemical Biology | 2015

The promise and peril of chemical probes

C.H. Arrowsmith; James E. Audia; Christopher M. Austin; Jonathan B. Baell; Jonathan Bennett; Julian Blagg; C. Bountra; Paul E. Brennan; Peter J. Brown; Mark Edward Bunnage; Carolyn Buser-Doepner; Robert M. Campbell; Adrian Carter; Philip Cohen; Robert A. Copeland; Ben Cravatt; Jayme L. Dahlin; Dashyant Dhanak; A. Edwards; Mathias Frederiksen; Stephen V. Frye; Nathanael S. Gray; Charles E. Grimshaw; David Hepworth; Trevor Howe; Kilian Huber; Jian Jin; Stefan Knapp; Joanne Kotz; Ryan G. Kruger

Chemical probes are powerful reagents with increasing impacts on biomedical research. However, probes of poor quality or that are used incorrectly generate misleading results. To help address these shortcomings, we will create a community-driven wiki resource to improve quality and convey current best practice.


Cell | 2006

Cotranslocational Degradation Protects the Stressed Endoplasmic Reticulum from Protein Overload

Seiichi Oyadomari; Chi Yun; Edward A. Fisher; Nicola Kreglinger; Gert Kreibich; Miho Oyadomari; Heather P. Harding; Alan G. Goodman; Hanna Harant; Jennifer L. Garrison; Jack Taunton; Michael G. Katze; David Ron

Summary The ERs capacity to process proteins is limited, and stress caused by accumulation of unfolded and misfolded proteins (ER stress) contributes to human disease. ER stress elicits the unfolded protein response (UPR), whose components attenuate protein synthesis, increase folding capacity, and enhance misfolded protein degradation. Here, we report that P58 IPK /DNAJC3 , a UPR-responsive gene previously implicated in translational control, encodes a cytosolic cochaperone that associates with the ER protein translocation channel Sec61. P58 IPK recruits HSP70 chaperones to the cytosolic face of Sec61 and can be crosslinked to proteins entering the ER that are delayed at the translocon. Proteasome-mediated cytosolic degradation of translocating proteins delayed at Sec61 is cochaperone dependent. In P58 IPK−/− mice, cells with a high secretory burden are markedly compromised in their ability to cope with ER stress. Thus, P58 IPK is a key mediator of cotranslocational ER protein degradation, and this process likely contributes to ER homeostasis in stressed cells.


Cell | 2006

Substrate-specific translocational attenuation during ER stress defines a pre-emptive quality control pathway.

Sang Wook Kang; Neena S. Rane; Soo Jung Kim; Jennifer L. Garrison; Jack Taunton; Ramanujan S. Hegde

Eukaryotic proteins entering the secretory pathway are translocated into the ER by signal sequences that vary widely in primary structure. We now provide a functional rationale for this long-observed sequence diversity by demonstrating that differences among signals facilitate substrate-selective modulation of protein translocation. We find that during acute ER stress, translocation of secretory and membrane proteins is rapidly and transiently attenuated in a signal sequence-selective manner. Their cotranslational rerouting to the cytosol for degradation reduces the burden of misfolded substrates entering the ER and represents a pathway for pre-emptive quality control (pQC). Bypassing the pQC pathway for the prion protein increases its rate of aggregation in the ER lumen during prolonged stress and renders cells less capable of viable recovery. Conversely, pharmacologically augmenting pQC during ER stress proved protective. Thus, protein translocation is a physiologically regulated process that is utilized for pQC as part of the ER stress response.


Cell | 2010

Sequence-Dependent Sorting of Recycling Proteins by Actin-Stabilized Endosomal Microdomains

Manojkumar A. Puthenveedu; Benjamin E.L. Lauffer; Paul Temkin; Rachel Vistein; Peter M. Carlton; Kurt S. Thorn; Jack Taunton; Orion D. Weiner; Robert G. Parton; Mark von Zastrow

The functional consequences of signaling receptor endocytosis are determined by the endosomal sorting of receptors between degradation and recycling pathways. How receptors recycle efficiently, in a sequence-dependent manner that is distinct from bulk membrane recycling, is not known. Here, in live cells, we visualize the sorting of a prototypical sequence-dependent recycling receptor, the beta-2 adrenergic receptor, from bulk recycling proteins and the degrading delta-opioid receptor. Our results reveal a remarkable diversity in recycling routes at the level of individual endosomes, and indicate that sequence-dependent recycling is an active process mediated by distinct endosomal subdomains distinct from those mediating bulk recycling. We identify a specialized subset of tubular microdomains on endosomes, stabilized by a highly localized but dynamic actin machinery, that mediate this sorting, and provide evidence that these actin-stabilized domains provide the physical basis for a two-step kinetic and affinity-based model for protein sorting into the sequence-dependent recycling pathway.


Nature Chemical Biology | 2012

Reversible targeting of noncatalytic cysteines with chemically tuned electrophiles

Iana M. Serafimova; Miles A. Pufall; Shyam Krishnan; Katarzyna Duda; Michael S. Cohen; Rebecca Maglathlin; Jesse M McFarland; Rand M. Miller; Morten Frödin; Jack Taunton

Targeting noncatalytic cysteine residues with irreversible acrylamide-based inhibitors is a powerful approach for enhancing pharmacological potency and selectivity. Nevertheless, concerns about off-target modification motivate the development of reversible cysteine-targeting strategies. Here we show that electron-deficient olefins, including acrylamides, can be tuned to react with cysteine thiols in a rapidly reversible manner. Installation of a nitrile group increased the olefins’ intrinsic reactivity, yet paradoxically eliminated the formation of irreversible adducts. Incorporation of these electrophiles into a noncovalent kinase recognition scaffold produced slowly dissociating, covalent inhibitors of the p90 ribosomal protein S6 kinase, RSK. A cocrystal structure revealed specific noncovalent interactions that stabilize the complex by positioning the electrophilic carbon near the targeted cysteine. Disruption of these interactions by protein unfolding or proteolysis promoted instantaneous cleavage of the covalent bond. Our results establish a chemistry-based framework for engineering sustained covalent inhibition without accumulating permanently modified proteins and peptides.


Cell | 2007

Mechanism of Actin Network Attachment to Moving Membranes: Barbed End Capture by N-WASP WH2 Domains

Carl Co; Derek Wong; Sarah Gierke; Vicky Chang; Jack Taunton

Actin filament networks exert protrusive and attachment forces on membranes and thereby drive membrane deformation and movement. Here, we show that N-WASP WH2 domains play a previously unanticipated role in vesicle movement by transiently attaching actin filament barbed ends to the membrane. To dissect the attachment mechanism, we reconstituted the propulsive motility of lipid-coated glass beads, using purified soluble proteins. N-WASP WH2 mutants assembled actin comet tails and initiated movement, but the comet tails catastrophically detached from the membrane. When presented on the surface of a lipid-coated bead, WH2 domains were sufficient to maintain comet tail attachment. In v-Src-transformed fibroblasts, N-WASP WH2 mutants were severely defective in the formation of circular podosome arrays. In addition to creating an attachment force, interactions between WH2 domains and barbed ends may locally amplify signals for dendritic actin nucleation.

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Jun Ichi Abe

University of Texas MD Anderson Cancer Center

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Ramanujan S. Hegde

Laboratory of Molecular Biology

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