polyclonal rabbit anti human muc5b antibodies (Danaher Inc)
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Polyclonal Rabbit Anti Human Muc5b Antibodies, supplied by Danaher Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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1) Product Images from "Structural mechanism of MUC5AC mucin net-like polymer formation and its SNP variability that affect risk of the lung diseases COPD and IPF"
Article Title: Structural mechanism of MUC5AC mucin net-like polymer formation and its SNP variability that affect risk of the lung diseases COPD and IPF
Journal: bioRxiv
doi: 10.1101/2024.08.02.606332
Figure Legend Snippet: (A) MUC5AC-D3 sequence. VWD3 sequence is showed in green, C8-3 in blue, TIL3 in pink and E3 in orange. The residues affected by the SNPs rs36189285 (R996) and rs878913005 (R1201) are highlighted in blue and yellow respectively. (B) Schematic sketch of the domains of MUC5AC mucin with the N-terminal region (VWD1 (orange), VWD2 (yellow), VWD’ (light blue) and VWD3 (dark blue)), nine CysD domains (red) surrounded by PTS sequences densely O -glycosylated to form mucin domains (green) and the C-terminal region (VWD4 (light grey), VWCs (dark grey) and CK (black)). The fragments analyzed are enlarged. (C) SDS-PAGE analysis of reduced and non-reduced D3 (1), D3-CysD (2) and D’-D3-CysD (3) reveals the formation of reducible dimers in all three fragments. (D) MUC5AC D3 assembly cryoEM density map and cartoon representation showing the disulfide bonds. The map and model of the two monomers are shown in green and cyan. The Ca 2+ ions are shown as green spheres. The top left figure represents the top view of the molecule. It is rotated anticlockwise by 90°around the x-axis in the top right figure, and rotated clockwise by 45°around the y-axis and enlarged by 50% in the bottom figure showing the details of the front view. Putative intermolecular disulfide bonds are marked by red starts (Cys1132-Cys1132’ bond seems to be reduced). N-terminal (N) and C-terminal (C) of each monomer are marked. (E) Detail of the MUC5AC-D3 covalent dimerization interface zoomed in from (D) showing the interaction between C8-3 domains. (F) Detail of the MUC5AC-D3 covalent dimerization interface zoomed in from (D) showing the TIL3-TIL3’ interaction.
Techniques Used: Sequencing, SDS Page
Figure Legend Snippet: (A) Front view of MUC5AC-D3 assembly dimer from cryoEM density map and model. The two VWD3 domains are shown in dark and light green, C8-3 domains in dark and light blue, and TIL3 domains in dark and light pink. (B) Structural alignment of MUC5AC-D3 (blue) and MUC2-D3 (pink. PDB code: 6rbf). Left image is presented in the same orientation as (A). Right image is rotated clockwise 45°. Regions with high variability are marked by black arrows. The N -glycosylated Asn1154 in lateral chain of MUC2 is marked with a black star. (C) Detail of TIL3 structurally aligned of MUC5AC-D3 (blue), MUC2-D3 (pink. PDB code: 6rbf) and VWF-D3 (orange. PDB code: 6n29). The TIL3 β1-β2 loop is highlighted in brighter colors. To the left, superposition of all three structures showing the larger distance between the TIL3 and VWD3 domains in MUC5AC. The distinct disulfide bonds are marked by stars, in red the one connecting the TIL3 domain with C8-3 domain and in blue the internal TIL3 β1-β2 loop disulfide bond. All three structures are shown separately showing the TIL3 β1-β2 loop and interfacing residues of lateral chains. The cysteines involved in the distinctive disulfide pattern are labeled. Hydrogen bonds between VWD3 and TIL3 are showed with dashed black lines and the residues involved are annotated. In MUC5AC, the residues affected by SNP variation at the amino acids R996 and R1201 are marked. (D) Amino acid sequence alignment of MUC5AC, MUC5B, MUC2 and VWF TIL3 domains. Disulfide bonds are marked. Stars mark distinct disulfide bonds as in (C). Cysteines are colored yellow and arginines in blue.
Techniques Used: Labeling, Sequencing
Figure Legend Snippet: (A) CryoEM 2D classes, box size 220Å. The top figure shows the closed conformation 2D classes from the high-resolution structure shown in and . The discarded particles from an initial 3D classification were further 2D classified. These 2D classes are shown in the bottom panel, open conformation. (B) CryoEM low-resolution map generated using the particles from (A) bottom panel. The top figure shows the fitting on the closed conformation model and the bottom the proposed model for the open conformation. The VWD3 domain of one monomer is shown in light green, C8-3 and TIL3 domains in dark blue and the connecting loop in magenta. The VWD3 domain of the other monomer is shown in cyan, C8-3 and TIL3 in blue and the connecting loop in orange. The black arrows show the densities not covered by the models. The non-occupied densities in the closed form are explained by the movement of VWD3 as shown by the cyan arrows. The C-terminal of TIL3 points toward the marked densities in the open conformation as they could represent E3 and/or CysD. (C) Surface representation of the closed (left) and open (right) conformation colored by molecular lipophilicity potential (MPL) from dark cyan (most hydrophilic) via white to dark goldenrod (most lipophilic). The newly exposed hydrophobic pocket residues in the open conformation are labeled. (D) Detail of proposed model for MUC5AC-D3 open conformation. VWD3 is colored in green, C8-3 in blue and TIL3 in pink. Putative salt bridges between K962 and E1148, and E981 and R1201, and the hydrogen bond between K979 and V1149 are represented by dashed lines. These residues and the interfacing histidines His977 and His1109 are labeled. (E) MUC5AC-D3 closed and open conformation and FCGBP D10 alignment ( Yeshaya et al ., 2024 ). In the left figure MUC5AC-D3 closed (C8-3 in cyan and TIL3 in light pink) and open (C8-3 in blue and TIL3 in dark pink) conformation and FCGBP D10 (C8-10 in orange) were aligned to the VWD domain (green). The N-terminal (N) of VWD and C-terminal (C) of the different C8 domains are marked following the same color code. In the right figure MUC5AC-D3 closed (cyan) and open (green) conformation and FCGBP D10 (orange) were aligned by the C8 (blue) and TIL (pink) domains.
Techniques Used: Generated, Labeling
Figure Legend Snippet: (A) Detail of TIL3-VWD3 interface mutants aligned with the MUC5AC-D3 WT (dark grey). The left figure shows the Arg996Gln mutant in cyan, the mid shows the Arg1201Trp mutant in yellow, and the right shows the double mutant Arg996Gln-Arg1201Trp in green. The mutations are pointed by pink arrows. (B) CryoEM density map and cartoon representation of the MUC5AC-D3 dimeric assemblies WT (grey), Arg996Gln (cyan), Arg1201Trp (yellow) and Arg996Gln-Arg1201Trp (green) at two 45° angles. (C) CryoEM 2D classes of higher order oligomers. Box sizes are specified for every group of classes. The groups of closed conformation oligomers are marked with “C” and the open conformation with “O”. (D) MUC5AC-D3 Arg996Gln tetrameric assembly cryoEM density map and cartoon representation. One covalent dimer is shown in yellow (chain A) and magenta (chain B) and the other in green (chain C) and cyan (chain D). The His-tag density is shown in white. The top image shows a lateral view of the tetramer. It is rotated clockwise by 90° around y-axis and reduced 1.5 times in the middle-left figure, rotated clockwise by 90° around y-axis again in the middle-right figure, and rotated anticlockwise by 90°around x-axis and rescaled to the original size in the bottom figure. (E) Detail of the MUC5AC-D3 non-covalent tetramerization interface zoomed from (D). The predicted salt bridges and hydrogens bonds are shown as dashed cyan lines. (F) Structural alignment of the tetramer chain B (pink) and chain D (blue) against the R996Q dimer chain A (grey).
Techniques Used: Mutagenesis
Figure Legend Snippet: (A) MUC5AC-D3 Arg996Gln tetrameric assembly cryoEM density map and cartoon representation. One covalent dimer is shown in yellow (chain A) and magenta (chain B) and the other in green (chain C) and cyan (chain D). The PTS domains are schematically represented as a polyalanine straighten chain protruding from the TIL3 C-termini. The PTS from each covalent dimer extend in opposite directions forming an angle of about 40° with the PTS from the other dimer. (B) Ideal schematic representation of the MUC5AC network generated by repetitions of (A) linked by covalent dimerization at the end of the PTS domains (cystine-knot domain). (C) Carnoy fixed human stomach biopsy paraffin section stained with a monoclonal anti-human MUC5AC antibody (45M1; red) and Hoechst (nuclei; blue). The enlarged white square shows stratified surface mucus positive for MUC5AC. (D) Scanning electron micrograph of a piglet airway showing a MUC5B bundled strand, MUC5AC mucus attached to the bundle, and cilia. (E) Frequency of SNPs increases in COPD (left) and IPF (right). AC M stands for mutant MUC5AC Arg1201Trp (rs878913005), B M for mutant MUC5B promotor (rs35705950), AC Wt for wild type in MUC5AC Arg1201 position and B Wt for wild type MUC5B promotor in the position for rs35705950. Significance with the Fisher exact test is shown by three stars (p<0.001), one star (p<0.05) or a triangle (p<0.1). The bottom table shows the raw values used for the frequency calculations. (F) Linkage disequilibrium between MUC5AC Arg1201Trp (rs878913005) and MUC5B promotor (rs35705950) in (E) control, COPD and IPF groups. The graphic shows the frequency increase of both mutations appearing in the same subject in relation to the expected frequency if both mutations were independent. (G) Genomic organization of the MUC5AC and MUC5B gene locus och chromosome 11. (H) Formalin fixed paraffin section from an IPF lung explanted at lung transplantation, stained with a polyclonal anti-human MUC5B antibody (green), a monoclonal anti-human MUC5AC antibody (45M1; red) and Hoechst (nuclei; blue).
Techniques Used: Generated, Paraffin Section, Staining, Mutagenesis, Control, Transplantation Assay
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