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result(s) for
"Protein Structure, Quaternary - radiation effects"
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Reversion of the Arabidopsis UV-B photoreceptor UVR8 to the homodimeric ground state
2013
Plants require the UV-B photoreceptor UV RESISTANCE LOCUS 8 (UVR8) for acclimation and survival in sunlight. Upon UV-B perception, UVR8 switches instantaneously from a homodimeric to monomeric configuration, which leads to interaction with the key signaling protein CONSTITUTIVELY PHOTOMORPHOGENIC 1 (COP1) and induction of UV-B–protective responses. Here, we show that UVR8 monomerization is reversible in vivo, restoring the homodimeric ground state. We also demonstrate that the UVR8-interacting proteins REPRESSOR OF UV-B PHOTOMORPHOGENESIS (RUP)1 and RUP2 mediate UVR8 redimerization independently of COP1. UVR8 redimerization consequently disrupts the UVR8–COP1 interaction, which halts signaling. Our results identify a key role of RUP1- and RUP2-mediated UVR8 redimerization in photoreceptor inactivation, a crucial process that regenerates reactivatable UVR8 homodimers.
Journal Article
Structural basis for gene regulation by a B12-dependent photoreceptor
by
Elías-Arnanz, Montserrat
,
Jost, Marco
,
Fernández-Zapata, Jésus
in
42/70
,
631/337/572
,
631/535/1266
2015
Photoreceptor proteins enable organisms to sense and respond to light. The newly discovered CarH-type photoreceptors use a vitamin B
12
derivative, adenosylcobalamin, as the light-sensing chromophore to mediate light-dependent gene regulation. Here we present crystal structures of
Thermus thermophilus
CarH in all three relevant states: in the dark, both free and bound to operator DNA, and after light exposure. These structures provide visualizations of how adenosylcobalamin mediates CarH tetramer formation in the dark, how this tetramer binds to the promoter −35 element to repress transcription, and how light exposure leads to a large-scale conformational change that activates transcription. In addition to the remarkable functional repurposing of adenosylcobalamin from an enzyme cofactor to a light sensor, we find that nature also repurposed two independent protein modules in assembling CarH. These results expand the biological role of vitamin B
12
and provide fundamental insight into a new mode of light-dependent gene regulation.
Crystal structures are presented of
Thermus thermophilus
CarH, a photoreceptor that uses a vitamin B
12
derivative, in all three relevant states: in the dark, both free and bound to operator DNA, and after light exposure.
New insights into light-dependent gene regulation
CarH is a photoreceptor that mediates light-dependent gene regulation in
Myxococcus xanthus
and
Thermus thermophilus
, using the vitamin B
12
derivative, adenosylcobalamin, as the light-sensing chromophore. Catherine Drennan and colleagues have solved X-ray crystal structures of CarH in all three relevant states: in the dark, both free and bound to operator DNA, and after light exposure. The structures reveal how exposure to light triggers large conformational changes that lead to the disassociation of CarH from DNA and relief of CarH-mediated transcriptional repression of carotenoid biosynthetic genes.
Journal Article
DNA damage activates ATM through intermolecular autophosphorylation and dimer dissociation
by
Kastan, Michael B.
,
Bakkenist, Christopher J.
in
Amino Acid Sequence
,
Ataxia Telangiectasia Mutated Proteins
,
Biological and medical sciences
2003
The ATM protein kinase, mutations of which are associated with the human disease ataxia–telangiectasia, mediates responses to ionizing radiation in mammalian cells. Here we show that ATM is held inactive in unirradiated cells as a dimer or higher-order multimer, with the kinase domain bound to a region surrounding serine 1981 that is contained within the previously described ‘FAT’ domain. Cellular irradiation induces rapid intermolecular autophosphorylation of serine 1981 that causes dimer dissociation and initiates cellular ATM kinase activity. Most ATM molecules in the cell are rapidly phosphorylated on this site after doses of radiation as low as 0.5 Gy, and binding of a phosphospecific antibody is detectable after the introduction of only a few DNA double-strand breaks in the cell. Activation of the ATM kinase seems to be an initiating event in cellular responses to irradiation, and our data indicate that ATM activation is not dependent on direct binding to DNA strand breaks, but may result from changes in the structure of chromatin.
Journal Article
Effects of External Beam Radiation on In Vitro Formation of Abeta1-42 Fibrils and Preformed Fibrils
by
Digambaranath, Jyothi L.
,
Dang, Loan
,
Martinez, Alvaro A.
in
Alzheimer's disease
,
Amyloid beta-Peptides - chemistry
,
Blotting, Western
2011
Plaques containing fibrillar amyloid-beta (Abeta) are a characteristic finding in Alzheimer's disease. Although plaque counts correlate poorly with the extent of cognitive deficits in this disorder, fibrillar Abeta can promote neuronal damage through a variety of mechanisms. External beam radiotherapy has been reported to be an effective treatment for tracheobronchial amyloidosis, in which amyloid is deposited as submucosal plaques and tumor-like masses in the trachea and/or bronchi. Radiotherapy's effectiveness in this disorder is thought to be due to its toxicity to plasma cells, but direct effects of radiotherapy on amyloid may also be involved. On this basis, whole-brain radiotherapy has been suggested as a treatment for Alzheimer's disease. The objective of this study was to determine the effects of external beam radiation on preformed Abeta1-42 fibrils and on the formation of these fibrils. Using the Thioflavin-T assay, no effects of radiation were found on either of these parameters. Our results in this in vitro study suggest that whole-brain irradiation is unlikely to directly reduce plaque counts in the Alzheimer's disease brain. This treatment might still lower plaque counts indirectly, but any potential benefits would need to be weighed against its possible neurotoxic effects, which could induce further cognitive deficits.
Journal Article
Resistance of α-crystallin quaternary structure to UV irradiation
by
Poliansky, N. B
,
Ostrovsky, M. A
,
Wasserman, L. A
in
alpha-Crystallins - chemistry
,
alpha-Crystallins - isolation & purification
,
alpha-Crystallins - radiation effects
2009
The damaging effect of UV radiation (λ > 260 nm) on bovine α-crystallin in solution was studied by small-angle X-ray scattering, gel permeation chromatography, electrophoresis, absorption and fluorescence spectroscopy, and differential scanning calorimetry. The results obtained show that damage to even a large number of subunits within an α-crystallin oligomer does not cause significant rearrangement of its quaternary structure, aggregation of oligomers, or the loss of their solubility. Due to the high resistance of its quaternary structure, α-crystallin is able to prevent aggregation of destabilized proteins (especially of γ- and β-crystallins) and so to maintain lens transparency throughout the life of an animal (the chaperone-like function of α-crystallin).
Journal Article
Mitochondrial Ceramide-Rich Macrodomains Functionalize Bax upon Irradiation
by
Zhai, Dayong
,
Gulbins, Erich
,
Ehleiter, Desiree
in
Animals
,
Apoptosis
,
Apoptosis - drug effects
2011
Evidence indicates that Bax functions as a \"lipidic\" pore to regulate mitochondrial outer membrane permeabilization (MOMP), the apoptosis commitment step, through unknown membrane elements. Here we show mitochondrial ceramide elevation facilitates MOMP-mediated cytochrome c release in HeLa cells by generating a previously-unrecognized mitochondrial ceramide-rich macrodomain (MCRM), which we visualize and isolate, into which Bax integrates.
MCRMs, virtually non-existent in resting cells, form upon irradiation coupled to ceramide synthase-mediated ceramide elevation, optimizing Bax insertion/oligomerization and MOMP. MCRMs are detected by confocal microscopy in intact HeLa cells and isolated biophysically as a light membrane fraction from HeLa cell lysates. Inhibiting ceramide generation using a well-defined natural ceramide synthase inhibitor, Fumonisin B1, prevented radiation-induced Bax insertion, oligomerization and MOMP. MCRM deconstruction using purified mouse hepatic mitochondria revealed ceramide alone is non-apoptogenic. Rather Bax integrates into MCRMs, oligomerizing therein, conferring 1-2 log enhanced cytochrome c release. Consistent with this mechanism, MCRM Bax isolates as high molecular weight \"pore-forming\" oligomers, while non-MCRM membrane contains exclusively MOMP-incompatible monomeric Bax.
Our recent studies in the C. elegans germline indicate that mitochondrial ceramide generation is obligate for radiation-induced apoptosis, although a mechanism for ceramide action was not delineated. Here we demonstrate that ceramide, generated in the mitochondrial outer membrane of mammalian cells upon irradiation, forms a platform into which Bax inserts, oligomerizes and functionalizes as a pore. We posit conceptualization of ceramide as a membrane-based stress calibrator, driving membrane macrodomain organization, which in mitochondria regulates intensity of Bax-induced MOMP, and is pharmacologically tractable in vitro and in vivo.
Journal Article
Mechanisms of photoprotection and nonphotochemical quenching in pea light-harvesting complex at 2.5 Å resolution
by
Lamborghini, Matteo
,
Terwisscha van Scheltinga, Anke C
,
Standfuss, Jörg
in
Binding Sites
,
Carotenoids
,
Carotenoids - chemistry
2005
The plant light‐harvesting complex of photosystem II (LHC‐II) collects and transmits solar energy for photosynthesis in chloroplast membranes and has essential roles in regulation of photosynthesis and in photoprotection. The 2.5 Å structure of pea LHC‐II determined by X‐ray crystallography of stacked two‐dimensional crystals shows how membranes interact to form chloroplast grana, and reveals the mutual arrangement of 42 chlorophylls
a
and
b
, 12 carotenoids and six lipids in the LHC‐II trimer. Spectral assignment of individual chlorophylls indicates the flow of energy in the complex and the mechanism of photoprotection in two close chlorophyll
a
–lutein pairs. We propose a simple mechanism for the xanthophyll‐related, slow component of nonphotochemical quenching in LHC‐II, by which excess energy is transferred to a zeaxanthin replacing violaxanthin in its binding site, and dissipated as heat. Our structure shows the complex in a quenched state, which may be relevant for the rapid, pH‐induced component of nonphotochemical quenching.
Journal Article
Structure and mechanism of a bacterial light-regulated cyclic nucleotide phosphodiesterase
by
Barends, Thomas R. M.
,
Ryjenkov, Dmitri A.
,
Gomelsky, Mark
in
3',5'-Cyclic-GMP Phosphodiesterases - chemistry
,
3',5'-Cyclic-GMP Phosphodiesterases - metabolism
,
3',5'-Cyclic-GMP Phosphodiesterases - radiation effects
2009
BLUF photoreceptor: light-activated scissors
BLUF is a photoreceptor protein domain that uses an FAD chromophore to sense blue light. Although X-ray crystal structures of single-domain BLUF proteins have been determined, there have not been any reports of a structure of a BLUF protein that also contained a functional 'output' domain. For this reason, the mechanism(s) of light activation for this class of photoreceptors has remained enigmatic. Here, Thomas Barends and colleagues report the first biochemical, structural, and mechanistic characterization of a full-length, active photoreceptor. The protein is from the bacterium
Klebsiella pneumoniae
, and it contains the BLUF sensor domain and a phosphodiesterase output domain that hydrolyses cyclic dimeric GMP. The structures of this protein co-complexed with its substrate and metal ions provide a detailed understanding of how light absorbed by the BLUF domain leads to activation of the phosphodiesterase output domain.
Although structures of single-domain BLUF proteins—a photoreceptor protein domain that senses blue light—have been determined, there have been no reports of the structure of a BLUF protein containing a functional output domain; for this reason, the mechanism of light activation has remained enigmatic. The first biochemical, structural and mechanistic characterization of a full-length, active photoreceptor containing a BLUF sensor domain and a phosphodiesterase EAL output domain is now reported.
The ability to respond to light is crucial for most organisms. BLUF is a recently identified photoreceptor protein domain that senses blue light using a FAD chromophore
1
. BLUF domains are present in various proteins from the Bacteria, Euglenozoa and Fungi. Although structures of single-domain BLUF proteins have been determined
2
,
3
,
4
, none are available for a BLUF protein containing a functional output domain; the mechanism of light activation in this new class of photoreceptors has thus remained poorly understood. Here we report the biochemical, structural and mechanistic characterization of a full-length, active photoreceptor, BlrP1 (also known as KPN_01598), from
Klebsiella pneumoniae
5
. BlrP1 consists of a BLUF sensor domain and a phosphodiesterase EAL output domain which hydrolyses cyclic dimeric GMP (c-di-GMP). This ubiquitous second messenger controls motility, biofilm formation, virulence and antibiotic resistance in the Bacteria
6
,
7
,
8
,
9
. Crystal structures of BlrP1 complexed with its substrate and metal ions involved in catalysis or in enzyme inhibition provide a detailed understanding of the mechanism of the EAL-domain c-di-GMP phosphodiesterases. These structures also sketch out a path of light activation of the phosphodiesterase output activity. Photon absorption by the BLUF domain of one subunit of the antiparallel BlrP1 homodimer activates the EAL domain of the second subunit through allosteric communication transmitted through conserved domain–domain interfaces.
Journal Article
Prion disease susceptibility is affected by β-structure folding propensity and local side-chain interactions in PrP
by
Mulligan, Vikram Khipple
,
Cashman, Neil R.
,
Baldwin, Robert
in
Amino Acid Motifs
,
Amino Acids - metabolism
,
Animals
2010
Prion diseases occur when the normally α-helical prion protein (PrP) converts to a pathological β-structured state with prion infectivity (PrP Sc ). Exposure to PrP Sc from other mammals can catalyze this conversion. Evidence from experimental and accidental transmission of prions suggests that mammals vary in their prion disease susceptibility: Hamsters and mice show relatively high susceptibility, whereas rabbits, horses, and dogs show low susceptibility. Using a novel approach to quantify conformational states of PrP by circular dichroism (CD), we find that prion susceptibility tracks with the intrinsic propensity of mammalian PrP to convert from the native, α-helical state to a cytotoxic β-structured state, which exists in a monomer-octamer equilibrium. It has been controversial whether β-structured monomers exist at acidic pH; sedimentation equilibrium and dual-wavelength CD evidence is presented for an equilibrium between a β-structured monomer and octamer in some acidic pH conditions. Our X-ray crystallographic structure of rabbit PrP has identified a key helix-capping motif implicated in the low prion disease susceptibility of rabbits. Removal of this capping motif increases the β-structure folding propensity of rabbit PrP to match that of PrP from mouse, a species more susceptible to prion disease.
Journal Article