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Dive into the research topics where Anne Duggan is active.

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Featured researches published by Anne Duggan.


Nature | 2004

TRPA1 is a candidate for the mechanosensitive transduction channel of vertebrate hair cells.

David P. Corey; Jaime García-Añoveros; Jeffrey R. Holt; Kelvin Y. Kwan; Shuh Yow Lin; Melissa A. Vollrath; Andrea Amalfitano; Eunice L.M. Cheung; Bruce H. Derfler; Anne Duggan; Gwenaëlle S. G. Géléoc; Paul A. Gray; Matthew P. Hoffman; Heidi L. Rehm; Daniel Tamasauskas; Duan Sun Zhang

Mechanical deflection of the sensory hair bundles of receptor cells in the inner ear causes ion channels located at the tips of the bundle to open, thereby initiating the perception of sound. Although some protein constituents of the transduction apparatus are known, the mechanically gated transduction channels have not been identified in higher vertebrates. Here, we investigate TRP (transient receptor potential) ion channels as candidates and find one, TRPA1 (also known as ANKTM1), that meets criteria for the transduction channel. The appearance of TRPA1 messenger RNA expression in hair cell epithelia coincides developmentally with the onset of mechanosensitivity. Antibodies to TRPA1 label hair bundles, especially at their tips, and tip labelling disappears when the transduction apparatus is chemically disrupted. Inhibition of TRPA1 protein expression in zebrafish and mouse inner ears inhibits receptor cell function, as assessed with electrical recording and with accumulation of a channel-permeant fluorescent dye. TRPA1 is probably a component of the transduction channel itself.


The Journal of Neuroscience | 2005

NOCICEPTOR AND HAIR CELL TRANSDUCER PROPERTIES OF TRPA1, A CHANNEL FOR PAIN AND HEARING

Keiichi Nagata; Anne Duggan; Gagan Kumar; Jaime García-Añoveros

Mechanosensory channels of sensory cells mediate the sensations of hearing, touch, and some forms of pain. The TRPA1 (a member of the TRP family of ion channel proteins) channel is activated by pain-producing chemicals, and its inhibition impairs hair cell mechanotransduction. As shown here and previously, TRPA1 is expressed by hair cells as well as by most nociceptors (small neurons of dorsal root, trigeminal, and nodose ganglia) and localizes to their sensory terminals (mechanosensory stereocilia and peripheral free nerves, respectively). Thus, TRPA1 channels are proposed to mediate transduction in both hair cells and nociceptors. Accordingly, we find that heterologously expressed TRPA1 display channel behaviors expected for both auditory and nociceptive transducers. First, TRPA1 and the hair cell transducer share a unique set of pore properties not described for any other channel (block by gadolinium, amiloride, gentamicin, and ruthenium red, a ranging conductance of ∼100 pS that is reduced to 54% by calcium, permeating calcium-induced potentiation followed by closure, and reopening by depolarization), supporting a direct role of TRPA1 as a pore-forming subunit of the hair cell transducer. Second, TRPA1 channels inactivate in hyperpolarized cells but remain open in depolarized cells. This property provides a mechanism for the lack of desensitization, coincidence detection, and allodynia that characterize pain by allowing a sensory neuron to respond constantly to sustained stimulation that is suprathreshold (i.e., noxious) and yet permitting the same cell to ignore sustained stimulation that is subthreshold (i.e., innocuous). Our results support a TRPA1 role in both nociceptor and hair cell transduction.


Nature Neuroscience | 2003

TRPC5 is a regulator of hippocampal neurite length and growth cone morphology

Anna Greka; Betsy Navarro; Elena Oancea; Anne Duggan; David E. Clapham

Growth cone motility is regulated by both fast voltage-dependent Ca2+ channels and by unknown receptor-operated Ca2+ entry mechanisms. Transient receptor potential (TRP) homomeric TRPC5 ion channels are receptor-operated, Ca2+-permeable channels predominantly expressed in the brain. Here we show that TRPC5 is expressed in growth cones of young rat hippocampal neurons. Our results indicate that TRPC5 channel subunits interact with the growth cone–enriched protein stathmin 2, are packaged into vesicles and are carried to newly forming growth cones and synapses. Once in the growth cone, TRPC5 channels regulate neurite extension and growth-cone morphology. Dominant-negative TRPC5 expression allowed significantly longer neurites and filopodia to form. We conclude that TRPC5 channels are important components of the mechanism controlling neurite extension and growth cone morphology.


Journal of Biological Chemistry | 2002

The PDZ Domain Protein PICK1 and the Sodium Channel BNaC1 Interact and Localize at Mechanosensory Terminals of Dorsal Root Ganglion Neurons and Dendrites of Central Neurons

Anne Duggan; Jaime García-Añoveros; David P. Corey

Members of the BNaC/ASIC family of ion channels have been implicated in mechanotransduction and nociception mediated by dorsal root ganglion (DRG) neurons. These ion channels are also expressed in the CNS. We identified the PDZ domain protein PICK1 as an interactor of BNaC1(ASIC2) in a yeast two-hybrid screen. We show by two-hybrid assays, glutathione S-transferase pull-down assays, and coimmunoprecipitations that the BNaC1·PICK1 interaction is specific, and that coexpression of both proteins leads to their clustering in intracellular compartments. The interaction between BNaC1 and PICK1 requires the PDZ domain of PICK1 and the last four amino acids of BNaC1. BNaC1 is similar to two other BNaC/ASIC family members, BNaC2 (ASIC1) and ASIC4, at its extreme C terminus, and we show that PICK1 also interacts with BNaC2. We found that PICK1, like BNaC1 and BNaC2, is expressed by DRG neurons and, like the BNaC1α isoform, is present at their peripheral mechanosensory endings. Both PICK1 and BNaC1α are also coexpressed by some pyramidal neurons of the cortex, by pyramidal neurons of the CA3 region of hippocampus, and by cerebellar Purkinje neurons, localizing to their dendrites and cell bodies. Therefore, PICK1 interacts with BNaC/ASIC channels and may regulate their subcellular distribution or function in both peripheral and central neurons.


Current Biology | 2015

A Non-canonical Pathway from Cochlea to Brain Signals Tissue-Damaging Noise

Emma N. Flores; Anne Duggan; Thomas Madathany; Ann K. Hogan; Freddie Márquez; Gagan Kumar; Rebecca P. Seal; Robert H. Edwards; M. Charles Liberman; Jaime García-Añoveros

Intense noise damages the cochlear organ of Corti, particularly the outer hair cells (OHCs) [1]; however, this epithelium is not innervated by nociceptors of somatosensory ganglia, which detect damage elsewhere in the body. The only sensory neurons innervating the organ of Corti originate from the spiral ganglion, roughly 95% of which innervate exclusively inner hair cells (IHCs) [2-4]. Upon sound stimulation, IHCs release glutamate to activate AMPA-type receptors on these myelinated type-I neurons, which carry the neuronal signals to the cochlear nucleus. The remaining spiral ganglion cells (type IIs) are unmyelinated and contact OHCs [2-4]. Their function is unknown. Using immunoreactivity to cFos, we documented neuronal activation in the brainstem of Vglut3(-/-) mice, in which the canonical auditory pathway (activation of type-I afferents by glutamate released from inner hair cells) is silenced [5, 6]. In these deaf mice, we found responses to noxious noise, which damages hair cells, but not to innocuous noise, in neurons of the cochlear nucleus, but not in the vestibular or trigeminal nuclei. This response originates in the cochlea and not in other areas also stimulated by intense noise (middle ear and vestibule) as it was absent in CD1 mice with selective cochlear degeneration but normal vestibular and somatosensory function. These data imply the existence of an alternative neuronal pathway from cochlea to brainstem that is activated by tissue-damaging noise and does not require glutamate release from IHCs. This detection of noise-induced tissue damage, possibly by type-II cochlear afferents, represents a novel form of sensation that we term auditory nociception.


The Journal of Comparative Neurology | 2008

Transient expression of the conserved zinc finger gene INSM1 in progenitors and nascent neurons throughout embryonic and adult neurogenesis

Anne Duggan; Thomas Madathany; Sandra C.P. De Castro; Dianne Gerrelli; Kumar Guddati; Jaime García-Añoveros

INSM1 is a zinc‐finger protein expressed in the developing nervous system and pancreas as well as in medulloblastomas and neuroendocrine tumors. With in situ hybridization combined with immunohistochemistry, we detected INSM1 mRNA in all embryonic to adult neuroproliferative areas examined: embryonic neocortex, ganglionic eminence, midbrain, retina, hindbrain, and spinal cord; autonomic, dorsal root, trigeminal and spiral ganglia; olfactory and vomeronasal organ epithelia; postnatal cerebellum; and juvenile to adult subgranular zone of dentate gyrus, subventricular zone, and rostral migratory stream leading to olfactory bulb. In most of these neurogenic areas, subsets of neuronal progenitors and nascent, but not mature, neurons express INSM1. For example, in developing cerebellum, INSM1 is present in proliferating progenitors of the outer external granule layer (EGL) and in postmitotic cells of the inner EGL, but not in mature granule cell neurons. Also, lining the neural tube from spinal cord to neocortex in mouse as well as human embryos, cells undergoing mitosis apically do not express INSM1. By contrast, nonsurface progenitors located in the basal ventricular and/or subventricular zones express INSM1. Whereas apical progenitors are proliferative and generate one or two additional progenitors, basal progenitors are thought to divide terminally and symmetrically to produce two neurons. The nematode ortholog of INSM1, EGL‐46, is expressed during terminal symmetric neurogenic divisions and regulates the termination of proliferation. We propose that, in mice and humans, INSM1 is likewise expressed transiently during terminal neurogenic divisions, from late progenitors to nascent neurons, and particularly during symmetric neuronogenic divisions. J. Comp. Neurol. 507:1497–1520, 2008.


Neural Development | 2011

Insm1 promotes the transition of olfactory progenitors from apical and proliferative to basal, terminally dividing and neuronogenic

Jason N Rosenbaum; Anne Duggan; Jaime García-Añoveros

BackgroundInsm1 is a zinc-finger transcription factor transiently expressed throughout the developing nervous system in late progenitors and nascent neurons. Insm1 is also highly expressed in medulloblastomas and other neuroendocrine tumors.ResultsWe generated mice lacking the Insm1 gene and used them to elucidate its role in neurogenic proliferation of the embryonic olfactory epithelium. We found that deletion of Insm1 results in more apical cells and fewer nascent and mature neurons. In the embryonic olfactory epithelium of Insm1 mutants we detect fewer basal progenitors, which produce neurons, and more apical progenitors, which at this stage produce additional progenitors. Furthermore, in the mutants we detect fewer progenitors expressing NEUROD1, a marker of terminally dividing, neuronogenic (neuron-producing) progenitors (immediate neuronal precursors), and more progenitors expressing ASCL1, a marker of the transit amplifying progenitors that migrate from the apical to the basal edges of the epithelium while dividing to generate the terminal, neuronogenic progenitors. Finally, with timed administration of nucleoside analogs we demonstrate that the Insm1 mutants contain fewer terminally dividing progenitors at embryonic day 12.5.ConclusionsAltogether, these results suggest a role for Insm1 in promoting the transition of progenitors from apical and proliferative to basal, terminal and neuronogenic. This role appears partially conserved with that of its nematode ortholog, egl-46. The similar effects of Insm1 deletion on progenitors of embryonic olfactory epithelium and cortex point to striking parallels in the development of these neuroepithelia, and particularly between the basal progenitors of olfactory epithelium and the subventricular zone progenitors of cortex.


The Joint Commission Journal on Quality and Patient Safety | 2003

Does a Clinical Pathway Improve the Quality of Care for Sickle Cell Anemia

John Patrick T. Co; Kevin B. Johnson; Anne Duggan; James F. Casella; Modena Wilson

BACKGROUND Clinical pathways are often implemented to improve care, yet their effect on quality of care and outcomes is often not evaluated. The Johns Hopkins Childrens Center instituted a clinical pathway in early 1996 to improve the care for pediatric sickle cell vaso-occlusive crisis (VOC) and used a retrospective before-after study to describe how quality of care and outcomes changed after introduction of the pathway. RESULTS Physicians used the pathway in 43% of eligible admissions, with use decreasing over time. Patients on the pathway were more likely to receive each of its required elements than those not on the pathway (odds ratios [OR] 1.15-2.49). After pathway implementation, even patients not on the pathway were more likely to receive incentive spirometry than those admitted before pathway availability (OR 1.40). Pathway use was associated with longer length of stay (LOS) and time to oral pain medication, while readmission rates did not change. DISCUSSION Use of a clinical pathway improved quality of care by increasing compliance with specific care elements, with mixed results on outcomes. Pathways may improve care for all patients, including nonpathway-treated patients, by influencing underlying practice patterns. Quality improvement committees must regularly monitor outcomes after pathway implementation to evaluate the need for pathway reinforcement and refinement.


Current Biology | 2000

Insect mechanoreception: What a long, strange TRP it’s been

Anne Duggan; Jaime García-Añoveros; David P. Corey

Insect bristles are model mechanosensory organs. An ion channel of the TRP superfamily has recently been identified which is required for production of mechanoreceptor currents by insect bristles, and seems likely to represent a new kind of mechanically gated channel.


Current Opinion in Neurobiology | 1995

Control of neuronal development in Caenorhabditis elegans

Anne Duggan; Martin Chalfie

Recent research into the development of the nervous system of the nematode Caenorhabditis elegans indicates the importance of multiple cell interactions and combinatorial gene expression. As many of the genes needed for C. elegans neuronal development have counterparts with similar activities in Drosophila melanogaster, the mechanisms of cell specification may be broadly conserved.

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David P. Corey

Howard Hughes Medical Institute

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Ann K. Hogan

Northwestern University

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Gagan Kumar

Northwestern University

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