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Antigen presentation to cytotoxic T lymphocytes via major histocompatibility complex class I (MHC I) molecules depends on the heterodimeric transporter associated with antigen processing (TAP). For efficient antigen supply to MHC I molecules in the ER, TAP assembles a macromolecular peptide-loading complex (PLC) by recruiting tapasin. In evolution, TAP appeared together with effector cells of adaptive immunity at the transition from jawless to jawed vertebrates and diversified further within the jawed vertebrates. Here, we compared TAP function and interaction with tapasin of a range of species within two classes of jawed vertebrates. We found that avian and mammalian TAP1 and TAP2 form heterodimeric complexes across taxa. Moreover, the extra N-terminal domain TMD0 of mammalian TAP1 and TAP2 as well as avian TAP2 recruits tapasin. Strikingly, however, only TAP1 and TAP2 from the same taxon can form a functional heterodimeric translocation complex. These data demonstrate that the dimerization interface between TAP1 and TAP2 and the tapasin docking sites for PLC assembly are conserved in evolution, whereas elements of antigen translocation diverged later in evolution and are thus taxon specific.
In the search for novel organic charge transfer salts with variable degrees of charge transfer we have studied the effects of two modifications of the recently synthesized donor–acceptor system [tetramethoxypyrene (TMP)]–[tetracyanoquinodimethane (TCNQ)]. One is of chemical nature by substituting the acceptor TCNQ molecules by F4TCNQ molecules. The second consists in simulating the application of uniaxial pressure along the stacking axis of the system. In order to test the chemical substitution, we have grown single crystals of the TMP–F4TCNQ complex and analyzed its electronic structure via electronic transport measurements, ab initio density functional theory (DFT) calculations and UV/VIS/IR absorption spectroscopy. This system shows an almost ideal geometrical overlap of nearly planar molecules stacked alternately (mixed stack) and this arrangement is echoed by a semiconductor-like transport behavior with an increased conductivity along the stacking direction. This is in contrast to TMP–TCNQ which shows a less pronounced anisotropy and a smaller conductivity response. Our band structure calculations confirm the one-dimensional behavior of TMP–F4TCNQ with pronounced dispersion only along the stacking axis. Infrared measurements illustrating the C[triple bond, length as m-dash]N vibration frequency shift in F4TCNQ suggest however no improvement in the degree of charge transfer in TMP–F4TCNQ with respect to TMP–TCNQ. In both complexes about 0.1e is transferred from TMP to the acceptor. Concerning the pressure effect, our DFT calculations on the designed TMP–TCNQ and TMP–F4TCNQ structures under different pressure conditions show that application of uniaxial pressure along the stacking axis of TMP–TCNQ may be the route to follow in order to obtain a much more pronounced charge transfer.
The title solvated salt, C29H41N2+·Br-·2CH2Cl2 was obtained from the reaction of the Arduengo-type carbene 1,3-bis(2,6-diisopropylphenyl)-1,3-dihydro-4,5-dimethyl-2H-imidazol-2-ylidene with Si2Br6 in dichloromethane. The complete cation is generated by a crystallographic mirror plane and the dihedral angle between the five-membered ring and the benzene ring is 89.8 (6)°; the dihedral angle between the benzene rings is 40.7 (2)°. The anion also lies on the mirror plane and both dichloromethane molecules are disordered across the mirror plane over two equally occupied orientations. In the crystal, the cations are linked to the anions via C-H...Br hydrogen bonds.
Na(+)/H(+) exchangers are essential for regulation of intracellular proton and sodium concentrations in all living organisms. We examined and experimentally verified a kinetic model for Na(+)/H(+) exchangers, where a single binding site is alternatively occupied by Na(+) or one or two H(+) ions. The proposed transport mechanism inherently down-regulates Na(+)/H(+) exchangers at extreme pH, preventing excessive cytoplasmic acidification or alkalinization. As an experimental test system we present the first electrophysiological investigation of an electroneutral Na(+)/H(+) exchanger, NhaP1 from Methanocaldococcus jannaschii (MjNhaP1), a close homologue of the medically important eukaryotic NHE Na(+)/H(+) exchangers. The kinetic model describes the experimentally observed substrate dependences of MjNhaP1, and the transport mechanism explains alkaline down-regulation of MjNhaP1. Because this model also accounts for acidic down-regulation of the electrogenic NhaA Na(+)/H(+) exchanger from Escherichia coli (EcNhaA, shown in a previous publication) we conclude that it applies generally to all Na(+)/H(+) exchangers, electrogenic as well as electroneutral, and elegantly explains their pH regulation. Furthermore, the electrophysiological analysis allows insight into the electrostatic structure of the translocation complex in electroneutral and electrogenic Na(+)/H(+) exchangers.
The asymmetric unit of the title compound, C28H42N2O5·H2O, consists of one half of the organic molecule and one half-molecule of water, both of which are located on a mirror plane which passes through the central C atoms and the hydroxyl group of the heterocyclic system. The hydroxyl group at the central ring is disordered over two equally occupied positions. The six-membered ring adopts a chair conformation, and the 2-hydroxybenzyl substituents occupy the sterically preferred equatorial positions. The aromatic rings make dihedral angles of 75.57 (9)° with the mean plane of the heterocyclic ring. The dihedral angle between the two aromatic rings is 19.18 (10)°. The molecular structure features two intramolecular phenolic O-H...N hydrogen bonds with graph-set motif S(6). In the crystal, molecules are connected via O-H...O hydrogen bonds into zigzag chains running along the a-axis direction.
Halobacillus halophilus, a moderately halophilic bacterium isolated from salt marshes, produces various compatible solutes to cope with osmotic stress. Glutamate and glutamine are dominant compatible solutes at mild salinities. Glutamine synthetase activity in cell suspensions of Halobacillus halophilus wild type was shown to be salt dependent and chloride modulated. A possible candidate to catalyze glutamine synthesis is glutamine synthetase A2, whose transcription is stimulated by chloride. To address the role of GlnA2 in the biosynthesis of the osmolytes glutamate and glutamine, a deletion mutant (ΔglnA2) was generated and characterized in detail. We compared the pool of compatible solutes and performed transcriptional analyses of the principal genes controlling the solute production in the wild type strain and the deletion mutant. These measurements did not confirm the hypothesized role of GlnA2 in the osmolyte production. Most likely the presence of another, yet to be identified enzyme has the main contribution in the measured activity in crude extracts and probably determines the total chloride-modulated profile. The role of GlnA2 remains to be elucidated.
We demonstrate high-density labelling of cellular DNA and RNA using click chemistry and perform confocal and super-resolution microscopy. We visualize the crescent and ring-like structure of densely packed RNA in nucleoli. We further demonstrate click chemistry with unnatural amino acids for super-resolution imaging of outer-membrane proteins of E. coli.
A consistent muscle activation strategy underlies crawling and swimming in Caenorhabditis elegans
(2014)
Although undulatory swimming is observed in many organisms, the neuromuscular basis for undulatory movement patterns is not well understood. To better understand the basis for the generation of these movement patterns, we studied muscle activity in the nematode Caenorhabditis elegans. Caenorhabditis elegans exhibits a range of locomotion patterns: in low viscosity fluids the undulation has a wavelength longer than the body and propagates rapidly, while in high viscosity fluids or on agar media the undulatory waves are shorter and slower. Theoretical treatment of observed behaviour has suggested a large change in force–posture relationships at different viscosities, but analysis of bend propagation suggests that short-range proprioceptive feedback is used to control and generate body bends. How muscles could be activated in a way consistent with both these results is unclear. We therefore combined automated worm tracking with calcium imaging to determine muscle activation strategy in a variety of external substrates. Remarkably, we observed that across locomotion patterns spanning a threefold change in wavelength, peak muscle activation occurs approximately 45° (1/8th of a cycle) ahead of peak midline curvature. Although the location of peak force is predicted to vary widely, the activation pattern is consistent with required force in a model incorporating putative length- and velocity-dependence of muscle strength. Furthermore, a linear combination of local curvature and velocity can match the pattern of activation. This suggests that proprioception can enable the worm to swim effectively while working within the limitations of muscle biomechanics and neural control.
Molecular signaling networks, organized in discrete subsets of proteins in space and time, represent the major principle by which the cell achieves its functional specificity and homeostasis. Complex network organization is preserved by numerous mechanisms, including sequestration of proteins into specific subcellular compartments (eg. organelles), post-translational modifications and most importantly by balanced timing of their biosynthesis and turnover. Two routes of protein degradation, which are fundamentally quite different, are proteasomal and lysosomal-mediated destruction. The latter not only governs degradation of molecules that passed through endocytic or secretory process (trafficking from plasma membrane or Golgi compartment), but also the degradation of cytoplasmic molecules that have been sequestered by a process called macroautophagy (henceforth autophagy). Recently our understanding of autophagic regulatory mechanisms has increased significantly, as molecular details of how autophagy contributes to the degradation of proteins (old, misfolded or aggregated), damaged organelles or pathogens have been deciphered. Initially described as bulk, nonspecific membrane sequestration process induced primarily by nutrient deprivation, autophagy is now known to be selective in terms of cargo recognition and integration into dynamic cellular membrane trafficking system.
My work has addressed the fundamental question of how small ubiquitin-like modifiers LC3/GABARAP, that are conjugated to the autophagic membranes, function within the process of cargo selection and crosstalk between autophagic and endocytic membrane trafficking events. We have employed an initial yeast twohybrid screen to identify LC3/GABARAP interacting partners. Using this technique, we have identified several novel autophagy receptor proteins, mitochondrial protein Nix (BNIP3L), and adaptor proteins, including Rab GTPase activating proteins (TBC family of proteins). Through a conserved LC3 interacting region (LIR), Nix, Rab GAPs and other autophagy adaptor/receptor molecules share a common mode of binding to LC3/GABARAP. However, in contrast to Nix, which specifically facilitates removal of mitochondria in maturing erythrocytes, Rab GAP proteins preferably regulate the dynamics of autophagosome formation and maturation as well as sorting of cargo. Fourteen out of 36 screened Rab GAPs interacted with LC3/GABARAPs. Importantly, identified Rab GAPs are clustered in different regulatory nodes according to the conservation of their GAP domain hence they impact various cellular membrane compartments and organelles, marked by specific subsets of small Rab GTPases. Identification of Rab GAPs that are directly involved in autophagy via binding to LC3 was the first report that clearly pointed to a broader implication of autophagy in all aspects of cellular membrane trafficking. Currently, only few of Rab GAPs are studied in context of autophagy regulation, while large number of them requires further functional characterization.
I have identified two LIR motifs in TBC1D5, Rab7 GAP. LIR1 has also the ability to interact with retromer complex subunit, Vps29. Using several functional assays I have shown that this motif, as well as catalytic Arg within GAP domain are particularly important for function of TBC1D5 in retrograde transport of CI-M6PR from endosomes to the trans-Golgi network (TGN). I have also shown that TBC1D5 binds to LC3 and Vps29 in mutually exclusive way and that Thr at the position 1 and Phe at position 5 of LIR1 motif are both required for TBC1D5 interaction with Vps29. Upon autophagy induction TBC1D5 dissociates from retromer, and associates with autophagic vesicles, while silencing of TBC1D5 significantly impairs autophagic flux. These findings led to the hypothesis that LIR interacting surface on TBC1D5 acts as molecular switch for dual function of TBC1D5. This also indicated that similar surfaces for LIR interaction (similarly to ubiquitin-like domains) are present on proteins other than LC3, and pointed to a dual functionality of the LIR sequence within both endocytic and autophagic pathways.
Following these initial studies, I have also shown that TBC1D5 interacts with AP2 complex subunit AP2M1, and that this interaction plays critical role in TBC1D5-dependent trafficking of Atg9. It is known that Atg9, the only trans-membrane autophagic protein, plays essential role in initiation of autophagy and growth of nascent phagophore membranes. However, machinery that specifically recruits Atg9 traffic carriers to the site of autophagosomes was not known. I subsequently demonstrated that TBC1D5 associates not only with LC3, but also with Atg9 traffic carriers and major initiatory kinase ULK1 during autophagy, while retromer failed to do so. Association of TBC1D5 with Atg9 was dependent on presence of AP2 complex, and on functional clathrin-mediated endocytosis (CME). Based on these and previous findings, model was proposed, that upon induction of autophagy TBC1D5 re-routes Atg9-containing clathrin vesicles from plasma membrane to the site of autophagosome. This led us to the better understanding of TBC1D5 function, but also to the first molecular cue that Atg9 traffics within clathrin-coated vesicles (CCVs). In fact, mutation of Leu-Leu motif within N terminus of Atg9, that potentially mediates interaction with adaptor protein complexes, led to enrichment of Atg9 on plasma membrane and in TGN. This suggested that the sorting motif could be important for interaction of Atg9 with AP2 and AP1 complex, as well. More importantly, TBC1D5 and Atg9 could be directly involved in dynamic regulation of growth factor receptor sorting during autophagy, thus explaining vital role of autophagy in organism development and pathogenesis.
In summary, the work contained within my thesis provides data on the mechanism by which autophagy adaptor proteins participate in cargo selection and regulation of trafficking during autophagy. Firstly, the LIR motif can target proteins or organelles for autophagic degradation (eg. Nix). Secondly, specific LIR motifs can play essential function in recruiting membrane trafficking regulatory proteins that subsequently facilitate phagophore expansion (eg. TBC1D5). Thirdly, by means of reorganization of different protein assemblies (eg. TBC1D5-VPS29 vs. TBC1D5-LC3-Atg9), dynamics of membrane remodeling mediated by Rab GTPases is kept in control during autophagy, thus keeping the organelle integrity and balance within cellular lipid sources unaffected.
During the last decade of the 20th century, the field of mass spectrometry has seen a revolutionary change in its application and scope. The introduction of soft ionization methods for the analysis of biological molecules has expanded the area of mass spectrometry from its early roots in the analysis of inorganic and organic species into the fields of biology and medicine.
Today, the use of the mass spectrometry is extended to a wide range of applications in biotechnology and pharmaceutical industry, in geological, environmental and clinical research. In biochemistry, the principles of mass spectrometry are, however, broadly applicable in accurate molecular weight determination, reaction monitoring, amino acid sequencing, oligonucleotide sequencing and protein structure.
In order to carry out their biological activities, proteins interact most often to each other and form transient or stable complexes. In addition, some proteins specifically interact also with other proteins or with non-protein molecules, such as DNA, RNA or metabolites, these interactions being critical for their function. Hence, defining the composition of protein complexes, as well as understanding how protein complexes are assembled and regulated yield invaluable insights into protein function. Coupled with an isolation technique to purify a specific protein complex of interest, mass spectrometry can rapidly and reliably identify the components of complexes. In addition, quantitative MS techniques offer the possibility of studying dynamically regulated interactions....