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1.
Insect Mol Biol ; 32(6): 658-675, 2023 12.
Article in English | MEDLINE | ID: mdl-37477164

ABSTRACT

Honey bee nutritional health depends on nectar and pollen, which provide the main source of carbohydrates, proteins and lipids to individual bees. During malnutrition, insect metabolism accesses fat body reserves. However, this process in bees and its repercussions at the colony level are poorly understood. Using untargeted lipidomics and gene expression analysis, we examined the effects of different feeding treatments (starvation, sugar feeding and sugar + pollen feeding) on bees and correlated them with colony health indicators. We found that nutritional stress led to an increase in unsaturated triacylglycerols and diacylglycerols, as well as a decrease in free fatty acids in the bee fat body. Here, we hypothesise that stored lipids are made available through a process where unsaturations change lipid's structure. Increased gene expression of three lipid desaturases in response to malnutrition supports this hypothesis, as these desaturases may be involved in releasing fatty acyl chains for lipolysis. Although nutritional stress was evident in starving and sugar-fed bees at the colony and physiological level, only starved colonies presented long-term effects in honey production.


La salud nutricional de la abeja melífera depende del consumo de néctar y polen, que proporcionan la principal fuente de carbohidratos, proteínas y lípidos. En un estado de desnutrición, el metabolismo de los insectos accede a las reservas del cuerpo graso. Sin embargo, en la abeja melífera, este proceso y sus repercusiones a nivel de la colonia, no se han comprendido con claridad. Utilizando lipidómica global y análisis de expresión genética, examinamos los efectos de diferentes tratamientos alimenticios en las abejas (inanición, únicamente azúcar y azúcar + polen) y los correlacionamos con indicadores de salud de la colonia. Encontramos un aumento en triacilgliceroles y diacilgliceroles insaturados y una disminución en los ácidos grasos libres en el cuerpo graso de abejas desnutridas. Hipotetizamos que estas insaturaciones en los lípidos modifican su estructura, tornándolos accesibles. Respaldamos esta hipótesis con la elevada expresión genética observada en tres desaturasas de lípidos durante desnutrición. Estas desaturasas podrían estar involucradas en la liberación de cadenas de ácidos grasos para la lipólisis. El estrés nutricional fue evidente tanto en abejas y colonias en estado de inanición y alimentadas con azúcar. Sin embargo, únicamente las colonias en estado de inanición presentaron efectos negativos a largo plazo en la producción de miel.


Subject(s)
Lipidomics , Malnutrition , Bees , Animals , Sugars , Fatty Acid Desaturases , Lipids
2.
Mol Cell Proteomics ; 18(Suppl 1): S34-S45, 2019 03 15.
Article in English | MEDLINE | ID: mdl-30598476

ABSTRACT

All social insects with obligate reproductive division of labor evolved from strictly monogamous ancestors, but multiple queen-mating (polyandry) arose de novo, in several evolutionarily derived lineages. Polyandrous ant queens are inseminated soon after hatching and store sperm mixtures for a potential reproductive life of decades. However, they cannot re-mate later in life and are thus expected to control the loss of viable sperm because their lifetime reproductive success is ultimately sperm limited. In the leaf-cutting ant Atta colombica,, the survival of newly inseminated sperm is known to be compromised by seminal fluid of rival males and to be protected by secretions of the queen sperm storage organ (spermatheca). Here we investigate the main protein-level interactions that appear to mediate sperm competition dynamics and sperm preservation. We conducted an artificial insemination experiment and DIGE-based proteomics to identify proteomic changes when seminal fluid is exposed to spermathecal fluid followed by a mass spectrometry analysis of both secretions that allowed us to identify the sex-specific origins of the proteins that had changed in abundance. We found that spermathecal fluid targets only seven (2%) of the identified seminal fluid proteins for degradation, including two proteolytic serine proteases, a SERPIN inhibitor, and a semen-liquefying acid phosphatase. In vitro, and in vivo, experiments provided further confirmation that these proteins are key molecules mediating sexual conflict over sperm competition and viability preservation during sperm storage. In vitro, exposure to spermathecal fluid reduced the capacity of seminal fluid to compromise survival of rival sperm in a matter of hours and biochemical inhibition of these seminal fluid proteins largely eliminated that adverse effect. Our findings indicate that A. colombica, queens are in control of sperm competition and sperm storage, a capacity that has not been documented in other animals but is predicted to have independently evolved in other polyandrous social insects.


Subject(s)
Ants/metabolism , Insect Proteins/metabolism , Sexual Behavior, Animal/physiology , Animals , Electrophoresis, Gel, Two-Dimensional , Female , Male , Protease Inhibitors/pharmacology , Proteome/metabolism , Semen/drug effects , Semen/metabolism , Sperm Capacitation/drug effects , Spermatozoa/drug effects , Spermatozoa/metabolism
3.
Proc Natl Acad Sci U S A ; 113(31): E4567-76, 2016 08 02.
Article in English | MEDLINE | ID: mdl-27432987

ABSTRACT

Intracellular signaling during oxidative stress is complex, with organelle-to-nucleus retrograde communication pathways ill-defined or incomplete. Here we identify the 3'-phosphoadenosine 5'-phosphate (PAP) phosphatase SAL1 as a previously unidentified and conserved oxidative stress sensor in plant chloroplasts. Arabidopsis thaliana SAL1 (AtSAL1) senses changes in photosynthetic redox poise, hydrogen peroxide, and superoxide concentrations in chloroplasts via redox regulatory mechanisms. AtSAL1 phosphatase activity is suppressed by dimerization, intramolecular disulfide formation, and glutathionylation, allowing accumulation of its substrate, PAP, a chloroplast stress retrograde signal that regulates expression of plastid redox associated nuclear genes (PRANGs). This redox regulation of SAL1 for activation of chloroplast signaling is conserved in the plant kingdom, and the plant protein has evolved enhanced redox sensitivity compared with its yeast ortholog. Our results indicate that in addition to sulfur metabolism, SAL1 orthologs have evolved secondary functions in oxidative stress sensing in the plant kingdom.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/enzymology , Chloroplasts/metabolism , Oxidative Stress , Phosphoric Monoester Hydrolases/metabolism , Adenosine Diphosphate/metabolism , Amino Acid Sequence , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/genetics , Disulfides/metabolism , Enzyme Activation , Gene Expression Regulation, Plant , Glutathione , Oxidation-Reduction , Phosphoric Monoester Hydrolases/chemistry , Phosphoric Monoester Hydrolases/genetics , Protein Multimerization , Sequence Homology, Amino Acid , Signal Transduction , Substrate Specificity
4.
J Invertebr Pathol ; 159: 78-86, 2018 11.
Article in English | MEDLINE | ID: mdl-30300630

ABSTRACT

Declines in native insect pollinator populations and substantial losses in managed honey bees have been reported on a global scale and become a widespread concern because of the importance of these insects for human food production and ecosystem stability. Several potential factors have been studied as possible causes of declining pollinator health, such as parasites and pathogens, exposure to agricultural pesticides, habitat loss and/or climate change. More recently, a combination of these factors rather than a single cause have been blamed for observed pollinator losses, but field studies of such interactions are challenging, especially in the presence of confounding environmental stressors. We therefore examined the impact of single and combined stressors on the honey bee (Apis mellifera) in a generally healthy Australian population. We exposed workers during their larval development and drones until they reached sexual maturity to the neonicotinoid pesticide Thiamethoxam, at concentrations more than 20 times lower than we initially measured in the field, the microsporidian gut pathogen Nosema apis or both stressors at the same time. We found that simultaneous exposure significantly reduced bee health. We observed a substantial increase in mortality and a reduction of immunocompetence in workers exposed to both the pathogen and the pesticide. We conclude that the exposure of generally healthy bees to multiple environmental stressors results in synergistic effects where the effects are expected to negatively impact performance and could be sufficient to trigger colony collapse. We found that the vast majority of males did not survive to sexual maturity after exposure to very low levels of Thiamethoxam. This would not only reduce the reproductive success of individual colonies, but can also impact gene flow and genetic diversity at the population level, which are both known as key components of honey bee health.


Subject(s)
Bees/drug effects , Bees/parasitology , Insecticides/toxicity , Thiamethoxam/toxicity , Animals , Australia , Bees/immunology , Colony Collapse/chemically induced , Colony Collapse/parasitology , Female , Male , Nosema
5.
J Proteome Res ; 16(1): 319-334, 2017 01 06.
Article in English | MEDLINE | ID: mdl-27356667

ABSTRACT

Honey bee (Apis mellifera) males are highly susceptible to infections with the sexually transmitted fungal pathogen Nosema apis. However, they are able to suppress this parasite in the ejaculate using immune molecules in the seminal fluid. We predicted that males respond to infections by altering the seminal fluid proteome to minimize the risk to sexually transmit the parasite to the queen and her colony. We used iTRAQ isotopic labeling to compare seminal fluid proteins from infected and noninfected males and found that N. apis infections resulted in significant abundance changes in 111 of the 260 seminal fluid proteins quantitated. The largest group of proteins with significantly changed abundances consisted of 15 proteins with well-known immune-related functions, which included two significantly more abundant chitinases in the seminal fluid of infected males. Chitinases were previously hypothesized to be involved in honey bee antifungal activity against N. apis. Here we show that infection with N. apis triggers a highly specific immune response in the seminal fluid of honey bee males.


Subject(s)
Bees/immunology , Chitinases/immunology , Disease Resistance/genetics , Insect Proteins/immunology , Nosema/immunology , Proteome/immunology , Animals , Bees/genetics , Bees/microbiology , Chitinases/genetics , Gene Expression Profiling , Gene Expression Regulation/immunology , Host-Pathogen Interactions , Immunity, Innate , Insect Proteins/genetics , Male , Molecular Sequence Annotation , Nosema/growth & development , Proteome/genetics , Semen/immunology , Semen/microbiology , Spores, Fungal/growth & development , Spores, Fungal/immunology
6.
Plant Physiol ; 170(3): 1284-99, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26672074

ABSTRACT

Glutaredoxins (Grxs) are small proteins that function as oxidoreductases with roles in deglutathionylation of proteins, reduction of antioxidants, and assembly of iron-sulfur (Fe-S) cluster-containing enzymes. Which of the 33 Grxs in Arabidopsis (Arabidopsis thaliana) perform roles in Fe-S assembly in mitochondria is unknown. We have examined in detail the function of the monothiol GrxS15 in plants. Our results show its exclusive mitochondrial localization, and we are concluding it is the major or only Grx in this subcellular location. Recombinant GrxS15 has a very low deglutathionylation and dehydroascorbate reductase activity, but it binds a Fe-S cluster. Partially removing GrxS15 from mitochondria slowed whole plant growth and respiration. Native GrxS15 is shown to be especially important for lipoic acid-dependent enzymes in mitochondria, highlighting a putative role in the transfer of Fe-S clusters in this process. The enhanced effect of the toxin arsenic on the growth of GrxS15 knockdown plants compared to wild type highlights the role of mitochondrial glutaredoxin Fe-S-binding in whole plant growth and toxin tolerance.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/drug effects , Arabidopsis/metabolism , Arsenic/toxicity , Glutaredoxins/metabolism , Thioctic Acid/metabolism , Arabidopsis/growth & development , Arabidopsis Proteins/genetics , Gene Knockdown Techniques , Genes, Plant , Glutaredoxins/genetics , Iron-Sulfur Proteins/genetics , Iron-Sulfur Proteins/metabolism , Mitochondria/metabolism , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Mutation , Plant Roots/genetics , Plant Roots/growth & development , Plant Roots/metabolism , Plants, Genetically Modified , Proteome/genetics , Proteome/metabolism
7.
Proc Biol Sci ; 283(1823)2016 01 27.
Article in English | MEDLINE | ID: mdl-26791609

ABSTRACT

The societies of ants, bees and wasps are genetically closed systems where queens only mate during a brief mating episode prior to their eusocial life and males therefore provide queens with a lifetime supply of high-quality sperm. These ejaculates also contain a number of defence proteins that have been detected in the seminal fluid but their function and efficiency have never been investigated in great detail. Here, we used the honeybee Apis mellifera and quantified whether seminal fluid is able to combat infections of the fungal pathogen Nosema apis, a widespread honeybee parasite that is also sexually transmitted. We provide the first empirical evidence that seminal fluid has a remarkable antimicrobial activity against N. apis spores and that antimicrobial seminal fluid components kill spores in multiple ways. The protein fraction of seminal fluid induces extracellular spore germination, which disrupts the life cycle of N. apis, whereas the non-protein fraction of seminal fluid induces a direct viability loss of intact spores. We conclude that males provide their ejaculates with efficient antimicrobial molecules that are able to kill N. apis spores and thereby reduce the risk of disease transmission during mating. Our findings could be of broader significance to master honeybee diseases in managed honeybee stock in the future.


Subject(s)
Antimicrobial Cationic Peptides/metabolism , Bees/microbiology , Nosema/physiology , Semen/chemistry , Animals , Antimicrobial Cationic Peptides/chemistry , Antimicrobial Cationic Peptides/pharmacology , Bees/chemistry , Bees/metabolism , Host-Pathogen Interactions , Male , Nosema/drug effects
8.
J Biol Chem ; 287(32): 27033-46, 2012 Aug 03.
Article in English | MEDLINE | ID: mdl-22700981

ABSTRACT

Cyclotides are a large family of plant peptides that are structurally defined by their cyclic backbone and a trifecta of disulfide bonds, collectively known as the cyclic cystine knot (CCK) motif. Structurally similar cyclotides have been isolated from plants within the Rubiaceae, Violaceae, and Fabaceae families and share the CCK motif with trypsin-inhibitory knottins from a plant in the Cucurbitaceae family. Cyclotides have previously been reported to be encoded by dedicated genes or as a domain within a knottin-encoding PA1-albumin-like gene. Here we report the discovery of cyclotides and related non-cyclic peptides we called "acyclotides" from petunia of the agronomically important Solanaceae plant family. Transcripts for petunia cyclotides and acyclotides encode the shortest known cyclotide precursors. Despite having a different precursor structure, their sequences suggest that petunia cyclotides mature via the same biosynthetic route as other cyclotides. We assessed the spatial distribution of cyclotides within a petunia leaf section by MALDI imaging and observed that the major cyclotide component Phyb A was non-uniformly distributed. Dissected leaf midvein extracts contained significantly higher concentrations of this cyclotide compared with the lamina and outer margins of leaves. This is the third distinct type of cyclotide precursor, and Solanaceae is the fourth phylogenetically disparate plant family to produce these structurally conserved cyclopeptides, suggesting either convergent evolution upon the CCK structure or movement of cyclotide-encoding sequences within the plant kingdom.


Subject(s)
Cyclotides/metabolism , Plant Leaves/anatomy & histology , Plant Proteins/metabolism , Protein Precursors/metabolism , Solanaceae/metabolism , Amino Acid Sequence , Genes, Plant , Molecular Sequence Data , Plant Proteins/chemistry , Protein Precursors/chemistry , Sequence Homology, Amino Acid , Solanaceae/genetics , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization , Tandem Mass Spectrometry
9.
J Proteome Res ; 11(11): 5443-52, 2012 Nov 02.
Article in English | MEDLINE | ID: mdl-23025280

ABSTRACT

An individually darkened leaf model was used to study protein changes in the Arabidopsis mutant stay-green1 (sgr1) to partially mimic the process of leaf covering senescence that occurs naturally in the shaded rosettes of Arabidopsis plants. Utilizing this controlled and predictable induced senescence model has allowed the direct comparison of sgr1 with Col-0 during the developmental period preceding the retention of chlorophyll and light harvesting complex II (LHCII) in sgr1 and the induction of senescence in Col-0. Quantitative proteomic analysis of soluble leaf proteins from sgr1 and Col-0 before the initiation of senescence has revealed a range of differences in plastid soluble protein abundance in sgr1 when compared to Col-0. Changes were also observed in membrane located machinery for photosystem II (PSII), in Calvin cycle components, proteins involved in redox control of the stromal compartment and ammonia assimilation that differentiated sgr1 during the early stages of the senescence process. The changes in PSII abundance were accompanied with a lower capacity of photosynthetic CO(2) assimilation in sgr1 than Col-0 after return of plants to lighted conditions following 3 and 5 days of darkness. A light-harvesting chlorophyll-a/b binding protein (LHCB2) was retained during the later stages of senescence in sgr1 but this was accompanied by an enhanced loss of oxygen evolving complex (OEC) subunits from PSII, which was confirmed by Western blotting, and an enhanced stability of PSII repair proteins in sgr1, compared to Col-0. Together these data provide insights into the significant differences in the steady-state proteome in sgr1 and its response to senescence, showing this cosmetic stay-green mutant is in fact significantly different to wild-type plants both before and during leaf senescence.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Chlorophyll/metabolism , Light-Harvesting Protein Complexes/metabolism , Plastids , Arabidopsis/physiology , Base Sequence , Blotting, Western , Chromatography, High Pressure Liquid , DNA Primers , Darkness , Mass Spectrometry , Photosynthesis , Polymerase Chain Reaction
10.
Sci Total Environ ; 845: 157123, 2022 Nov 01.
Article in English | MEDLINE | ID: mdl-35810895

ABSTRACT

Honey bees provide essential environmental services, pollinating both agricultural and natural ecosystems that are crucial for human health. However, these pollination services are under threat by outbreaks of the bacterial honey bee disease American foulbrood (AFB). Caused by the bacterium, Paenibacillus larvae, AFB kills honey bee larvae, converting the biomass to a foul smelling, spore-laden mass. Due to the bacterium's tough endospores, which are easily spread and extremely persistent, AFB management requires the destruction of infected colonies in many countries. AFB detection remains a significant problem for beekeepers: diagnosis is often slow, relying on beekeepers visually identifying symptoms in the colony and molecular confirmation. Delayed detection can result in large outbreaks during high-density beekeeping pollination events, jeopardising livelihoods and food security. In an effort to improve diagnostics, we investigated volatile compounds associated with AFB-diseased brood in vitro and in beehive air. Using Solid Phase Microextraction and Gas Chromatography Mass-Spectrometry, we identified 40 compounds as volatile biomarkers for AFB infections, including 16 compounds previously unreported in honey bee studies. In the field, we detected half of the biomarkers in situ (in beehive air) and demonstrated their sensitivity and accuracy for diagnosing AFB. The most sensitive volatile biomarker, 2,5-dimethylpyrazine, was exclusively detected in AFB-disease larvae and hives, and was detectable in beehives with <10 AFB-symptomatic larvae. These, to our knowledge, previously undescribed biomarkers are prime candidates to be targeted by a portable sensor device for rapid and non-invasive diagnosis of AFB in beehives.


Subject(s)
Paenibacillus larvae , Pollination , Animals , Beekeeping , Bees , Biomarkers , Ecosystem , Humans , Larva , United States
11.
Proteomics ; 10(24): 4401-14, 2010 Dec.
Article in English | MEDLINE | ID: mdl-21136594

ABSTRACT

Meiosis is the cell division that generates haploid gametes from diploid precursors. To provide insight into the functional proteome of budding yeast during meiosis, a 2-D DIGE kinetic approach was used to study proteins in the pH 6-11 range. Nearly 600 protein spots were visualised and 79 spots exhibited statistically significant changes in abundance as cells progressed through meiosis. Expression changes of up to 41-fold were detected and protein sequence information was obtained for 48 spots. Single protein identifications were obtained for 21 spots including different gel mobility forms of 5 proteins. A large number of post-translational events are suggested for these proteins, including processing, modification and import. The data are incorporated into an online 2-DE map of meiotic proteins in budding yeast, which extends our initial DIGE investigation of proteins in the pH 4-7 range. Together, the analyses provide peptide sequence data for 84 protein spots, including 50 single-protein identifications and gel mobility isoforms of 8 proteins. The largest classes of identified proteins include carbon metabolism, protein catabolism, protein folding, protein synthesis and the oxidative stress response. A number of the corresponding genes are required for yeast meiosis and recent studies have identified similar classes of proteins expressed during mammalian meiosis. This proteomic investigation and the resulting protein reference map make an important contribution towards a more detailed molecular view of yeast meiosis.


Subject(s)
Proteome/chemistry , Saccharomyces cerevisiae Proteins/chemistry , Databases, Protein , Hydrogen-Ion Concentration , Meiosis , Proteome/classification , Saccharomyces cerevisiae Proteins/classification , Two-Dimensional Difference Gel Electrophoresis
12.
Proteomics ; 10(3): 506-19, 2010 Feb.
Article in English | MEDLINE | ID: mdl-20029842

ABSTRACT

Meiosis, the developmental programme generating haploid gametes from diploid precursors, requires two cell divisions and many innovations. In budding yeast, a large number of genes are expressed exclusively during meiosis while others are repressed compared to vegetative growth. Microarray analysis has shown that gene expression during meiosis is highly regulated, and has been used to classify yeast genes according to meiotic temporal expression pattern. In this study, we have begun to investigate the kinetics of meiotic protein expression using a proteomics approach. 2-D DIGE was used to characterise the temporal protein expression patterns of the budding yeast pH 4-7 proteome in meiosis. More than 1400 meiotic protein spots were visualised and at least 63 spots were temporally regulated during meiosis in a statistically significant manner. Gel spots with significant expression changes were excised and 26 unique proteins were identified using LC-MS/MS. The identified proteins could be classified into functional categories and the genes encoding a number of these were previously shown to be involved in yeast sporulation and meiosis. This data set was used to assemble the first differential 2-D PAGE map of budding yeast meiosis, which can be accessed through a web server. This work represents one of the first quantitative proteomic analyses of meiosis in yeast and will provide a valuable resource for future investigations.


Subject(s)
Meiosis/genetics , Proteome/analysis , Saccharomyces cerevisiae Proteins/analysis , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae/genetics , Hydrogen-Ion Concentration
13.
Eur Arch Psychiatry Clin Neurosci ; 260(3): 249-55, 2010 Apr.
Article in English | MEDLINE | ID: mdl-19784855

ABSTRACT

The pathophysiology of autistic spectrum disorder (ASD) is not fully understood and there are no diagnostic or predictive biomarkers. Proteomic profiling has been used in the past for biomarker research in several non-psychiatric and psychiatric disorders and could provide new insights, potentially presenting a useful tool for generating such biomarkers in autism. Serum protein pre-fractionation with C8-magnetic beads and protein profiling by matrix-assisted laser desorption/ionisation-time of flight-mass spectrometry (MALDI-ToF-MS) were used to identify possible differences in protein profiles in patients and controls. Serum was obtained from 16 patients (aged 8-18) and age-matched controls. Three peaks in the MALDI-ToF-MS significantly differentiated the ASD sample from the control group. Sub-grouping the ASD patients into children with and without comorbid Attention Deficit and Hyperactivity Disorder, ADHD (ASD/ADHD+ patients, n = 9; ASD/ADHD- patients, n = 7), one peak distinguished the ASD/ADHD+ patients from controls and ASD/ADHD- patients. Our results suggest that altered protein levels in peripheral blood of patients with ASD might represent useful biomarkers for this devastating psychiatric disorder.


Subject(s)
Autistic Disorder/metabolism , Blood Proteins/metabolism , Proteomics , Adolescent , Attention Deficit Disorder with Hyperactivity/epidemiology , Attention Deficit Disorder with Hyperactivity/metabolism , Autistic Disorder/classification , Autistic Disorder/epidemiology , Biomarkers/blood , Case-Control Studies , Child , Computational Biology/methods , Humans , Male , Neuropsychological Tests , Protein Array Analysis/methods , Psychometrics/methods , Spectrometry, Mass, Electrospray Ionization/methods
14.
Proteomics ; 9(20): 4616-26, 2009 Oct.
Article in English | MEDLINE | ID: mdl-19824011

ABSTRACT

Sample degradation is a common problem in all types of proteomic analyses as it generates protein and peptide fragments that can interfere with analytical results. An important step in preventing such artefacts is to preserve the native, intact proteome as early as possible during sample preparation prior to proteomic analysis. Using the budding yeast Saccharomyces cerevisiae, we have evaluated the effects of trichloroacetic acid (TCA) and thermal treatments prior to protein extraction as a means to minimise proteolysis. TCA precipitation is commonly used to inactivate proteases; thermal stabilisation is used to heat samples to approximately 95 degrees C to inactivate enzyme activity. The efficacy of these methods was also compared with that of protease inhibitors and lyophilisation. Sample integrity was assessed by 2-D PAGE and a selection of spots was identified by MS/MS. The analysis showed that TCA or thermal treatment significantly reduced the degree of degradation and that these pre-treatment protocols were more effective than treatment with either protease inhibitors or lyophilisation. This study establishes standardised sample preparation methods for the reproducible analysis of protein patterns by 2-D PAGE in yeast, and may also be applicable to other proteomic analyses such as gel-free-based quantitation methods.


Subject(s)
Preservation, Biological/methods , Proteome/analysis , Saccharomyces cerevisiae Proteins/analysis , Saccharomyces cerevisiae/chemistry , Electrophoresis, Gel, Two-Dimensional , Protein Stability , Tandem Mass Spectrometry , Temperature , Trichloroacetic Acid/chemistry
15.
Sci Rep ; 6: 36649, 2016 11 09.
Article in English | MEDLINE | ID: mdl-27827404

ABSTRACT

Honey bees (Apis mellifera) host a wide range of parasites, some being known contributors towards dramatic colony losses as reported over recent years. To counter parasitic threats, honey bees possess effective immune systems. Because immune responses are predicted to cause substantial physiological costs for infected individuals, they are expected to trade off with other life history traits that ultimately affect the performance and fitness of the entire colony. Here, we tested whether the initial onset of an infection negatively impacts the flight behaviour of honey bee workers, which is an energetically demanding behaviour and a key component of foraging activities. To do this, we infected workers with the widespread fungal pathogen Nosema apis, which is recognised and killed by the honey bee immune system. We compared their survival and flight behaviour with non-infected individuals from the same cohort and colony using radio frequency identification tags (RFID). We found that over a time frame of four days post infection, Nosema did not increase mortality but workers quickly altered their flight behaviour and performed more flights of shorter duration. We conclude that parasitic infections influence foraging activities, which could reduce foraging ranges of colonies and impact their ability to provide pollination services.


Subject(s)
Bees/parasitology , Behavior, Animal , Flight, Animal , Nosema , Animals
16.
Insect Biochem Mol Biol ; 79: 42-49, 2016 12.
Article in English | MEDLINE | ID: mdl-27784614

ABSTRACT

Host manipulation is a common strategy by parasites to reduce host defense responses, enhance development, host exploitation, reproduction and, ultimately, transmission success. As these parasitic modifications can reduce host fitness, increased selection pressure may result in reciprocal adaptations of the host. Whereas the majority of studies on host manipulation have explored resistance against parasites (i.e. ability to prevent or limit an infection), data describing tolerance mechanisms (i.e. ability to limit harm of an infection) are scarce. By comparing differential protein abundance, we provide evidence of host-parasite interactions in the midgut proteomes of N. ceranae-infected and uninfected honey bees from both Nosema-tolerant and Nosema-sensitive lineages. We identified 16 proteins out of 661 protein spots that were differentially abundant between experimental groups. In general, infections of Nosema resulted in an up-regulation of the bee's energy metabolism. Additionally, we identified 8 proteins that were differentially abundant between tolerant and sensitive honey bees regardless of the Nosema infection. Those proteins were linked to metabolism, response to oxidative stress and apoptosis. In addition to bee proteins, we also identified 3 Nosema ceranae proteins. Interestingly, abundance of two of these Nosema proteins were significantly higher in infected Nosema-sensitive honeybees relative to the infected Nosema-tolerant lineage. This may provide a novel candidate for studying the molecular interplay between N. ceranae and its honey bee host in more detail.


Subject(s)
Bees/genetics , Bees/microbiology , Fungal Proteins/genetics , Insect Proteins/genetics , Nosema/physiology , Proteome , Animals , Fungal Proteins/metabolism , Gastrointestinal Tract/microbiology , Host-Pathogen Interactions , Insect Proteins/metabolism , Mass Spectrometry , Nosema/genetics , Proteomics
18.
Plant Methods ; 7(1): 21, 2011 Jul 05.
Article in English | MEDLINE | ID: mdl-21726462

ABSTRACT

Matrix-Assisted Laser Desorption/Ionisation (MALDI) mass spectrometry imaging (MSI) uses the power of high mass resolution time of flight (ToF) mass spectrometry coupled to the raster of lasers shots across the cut surface of tissues to provide new insights into the spatial distribution of biomolecules within biological tissues. The history of this technique in animals and plants is considered and the potential for analysis of proteins by this technique in plants is discussed. Protein biomarker identification from MALDI-MSI is a challenge and a number of different approaches to address this bottleneck are discussed. The technical considerations needed for MALDI-MSI are reviewed and these are presented alongside examples from our own work and a protocol for MALDI-MSI of proteins in plant samples.

19.
J Psychopharmacol ; 25(2): 151-96, 2011 Feb.
Article in English | MEDLINE | ID: mdl-20142298

ABSTRACT

Psychiatric disorders such as Alzheimer's disease, schizophrenia and mood disorders are severe and disabling conditions of largely unknown origin and poorly understood pathophysiology. An accurate diagnosis and treatment of these disorders is often complicated by their aetiological and clinical heterogeneity. In recent years proteomic technologies based on mass spectrometry have been increasingly used, especially in the search for diagnostic and prognostic biomarkers in neuropsychiatric disorders. Proteomics enable an automated high-throughput protein determination revealing expression levels, post-translational modifications and complex protein-interaction networks. In contrast to other methods such as molecular genetics, proteomics provide the opportunity to determine modifications at the protein level thereby possibly being more closely related to pathophysiological processes underlying the clinical phenomenology of specific psychiatric conditions. In this article we review the theoretical background of proteomics and its most commonly utilized techniques. Furthermore the current impact of proteomic research on diverse psychiatric diseases, such as Alzheimer's disease, schizophrenia, mood and anxiety disorders, drug abuse and autism, is discussed. Proteomic methods are expected to gain crucial significance in psychiatric research and neuropharmacology over the coming decade.


Subject(s)
Biomarkers/metabolism , Mental Disorders/metabolism , Proteomics/methods , Alzheimer Disease/metabolism , Animals , Humans , Mass Spectrometry/methods
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