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Leeming, M. G.

Publications and source records attributed to Leeming, M. G..

3 recordsLinked to original sources

Remodelled Ribosomes Synthesise a Specific Proteome in Proliferating Plant Tissue during Cold

Plant acclimation to low temperatures occurs through system-wide mechanisms that include proteome shifts, some of which occur at the level of protein synthesis. All proteins are synthesised by ribosomes. Rather than being monolithic, transcript-to-protein translation machines, ribosomes can be selective and cause effective proteome shifts required for successful temperature acclimation. Here, we use apical root meristems of germinating seedlings of the monocotyledonous plant barley as a model to study changes in protein abundance and synthesis rates during cold acclimation. We measure metabolic and physiological parameters that allow us to compare protein synthesis rates in different physiological states, e.g., in cold acclimation compared to the optimal temperature state. We show that ribosomal proteins are independently synthesised and assembled into ribosomal complexes in root proliferative tissue, and assess how the ribo-proteome shifts during cold may be associated with changes in synthesis and accumulation of macromolecular complexes. We demonstrate that translation initiation is the limiting step during cold acclimation and based on our data propose a model of a ribosomal code that depends on a reconfigured ribosome population, where as a mode of cold acclimation, specific ribosomal protein compositions may confer selective association capabilities between 60S subunits and 48S initiation complexes.

plant biology↗

N-Terminomic Changes of Neurons During Excitotoxicity Reveals Proteolytic Events Associated with Synaptic Dysfunctions and Potential Targets for Neuroprotection

Excitotoxicity is a neuronal death process initiated by over-stimulation of ionotropic glutamate receptors. Although dysregulation of proteolytic signaling networks is critical for excitotoxicity, the identity of affected proteins and mechanisms by which they induce neuronal cell death remain unclear. To address this, we used quantitative N-terminomics to identify proteins modified by proteolysis in neurons undergoing excitotoxic cell death. We found that most proteolytically processed proteins in excitotoxic neurons are likely substrates of calpains, including key synaptic regulatory proteins such as CRMP2, doublecortin-like kinase I, Src tyrosine kinase and calmodulin-dependent protein kinase II{beta} (CaMKII{beta}). Critically, calpain-catalyzed proteolytic processing of these proteins generates stable truncated fragments with altered activities that potentially contribute to neuronal death by perturbation of synaptic organization and function. Blocking calpain-mediated proteolysis of one of these proteins, Src protected against neuronal loss in a rat model of neurotoxicity. Extrapolation of our N-terminomic results led to the discovery that CaMKII, an isoform of CaMKII{beta} undergoes differential processing in mouse brains under physiological conditions and during ischemic stroke. In summary, our findings inform excitotoxic neuronal death mechanism and suggest potential therapeutic strategies for neuroprotection. In BriefAmeen, et al. used a proteomic method called N-terminomics to identify proteolytic events occurring in neurons during excitotoxicity. They found that most proteolytic processing is mediated by calpains, resulting in the generation of stable truncated fragments with the potential to induce synaptic dysfunction and loss, eventually leading to neuronal death. They further showed that some of these proteolytic processed proteins, such as the protein kinases Src and CaMKII, are potential targets for neuroprotection. HighlightsO_LIIdentification of over 300 neuronal proteins cleaved by calpains to form stable truncated fragments during excitotoxicity. C_LIO_LIThe calpain cleavage sites of these proteins unveil for the first time the preferred cleavage sequences of calpains in neurons. C_LIO_LIThese pathological proteolytic events potentially induce synaptic dysfunction and loss, which likely contribute to excitotoxic neuronal death. C_LIO_LISome of the neuronal proteins proteolyzed by calpains are potential targets of neuroprotection. C_LI Graphical abstract: Pathological proteolytic events in neurons during excitotoxicity unveiled by N-terminomic analyses(A) N-terminomic and global proteomic analyses identified neo-N-terminal sites and neuronal proteins undergoing significant abundance changes during excitotoxicity. (B) Informatic analysis of the proteomic results predicted (i) the preferred sequences of proteolytic processing of neuronal proteins catalyzed by calpains during excitotoxicity and (ii) perturbation of synaptic organization and functions as the major consequence of calpain-mediated proteolytic events. (C) Validation of these predictions and further experimentations unveiled: (i) calpain-mediated cleavage of proteins associated with synaptic damage in excitotoxic neurons, (ii) a new mechanism of dysregulation of CaMKII and CaMKII{beta}, which are key protein kinases governing synaptic dysfunctions and excitotoxic neuronal death and (iii) potential therapeutic targets such as the protein kinases Src and CaMKII for neuroprotection O_FIG O_LINKSMALLFIG WIDTH=194 HEIGHT=200 SRC="FIGDIR/small/484119v2_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@1c69873org.highwire.dtl.DTLVardef@142db3forg.highwire.dtl.DTLVardef@481521org.highwire.dtl.DTLVardef@6359e2_HPS_FORMAT_FIGEXP M_FIG C_FIG One Sentence SummaryProteolytic events in neurons during excitotoxicity inform neuronal death mechanism and potential therapeutic strategies for neuroprotection.

neuroscience↗

Getting more out of co-immunoprecipitation mass spectrometry experiments by reducing interference using FAIMS.

Co-immunoprecipitation of proteins coupled to mass spectrometry is critical for the understanding of protein interaction networks. In instances where a suitable antibody is not available, it is common to graft synthetic tags onto target protein sequences and allowing the use of commercially available antibodies for affinity purification. A common approach is through FLAG-Tag co-immunoprecipitation. To allow the selective elution of protein complexes, competitive displacement using a large molar excess of the tag peptides is often carried out. Yet, this creates downstream challenges for the mass spectrometry analysis due to the presence of large quantities of these peptides. Here, we demonstrate that Field Asymmetric Ion Mobility Spectrometry (FAIMS), a gas phase ion separation device prior to mass spectrometry analysis can be applied to FLAG-Tag co-immunoprecipitation experiment to increase the depth of protein coverage. By excluding these abundant tag peptides, we were able to observe deeper coverage of interacting proteins and as a result, deeper biological insights, without the need for additional sample handling or altering sample preparation protocols.

biochemistry↗