Barr-Gillespie - Annexin A5

Barr-Gillespie - Annexin A5
Annexin A5 is the Most-Abundant Membrane-Associated Protein in Stereocilia but is Dispensable
  • Organism: Mus musculus
  • Instrument: Orbitrap Fusion
  • SpikeIn: No
Abstract
The phospholipid- and Ca2+-binding protein annexin A5 (ANXA5) is the most abundant membrane-associated protein of ~P23 mouse vestibular hair bundles, the inner ear's sensory organelle. Using quantitative mass spectrometry, we estimated that ANXA5 accounts for ~15,000 copies per stereocilium, or ~2% of the total protein there. Although seven other annexin genes are expressed in mouse utricles, shotgun and targeted mass spectrometry showed that none were present at levels near ANXA5 in bundles and none were upregulated in stereocilia of Anxa5-/- mice. Annexins have been proposed to mediate Ca2+-dependent repair of membrane lesions, which could be part of the repair mechanism in hair cells after noise damage. Nevertheless, Anxa5-/- mice not only have normal hearing and balance function, but following noise exposure, they are identical to wild-type mice in their temporary or permanent changes in hearing sensitivity. We suggest that despite the unusually high levels of ANXA5 in bundles, it does not play a role in the bundle's key function, mechanotransduction. These results reinforce the lack of correlation between abundance of a protein in a specific compartment or cellular structure and its functional significance.
Experiment Description
For targeted MS/MS, we carried out in-solution tryptic digests of hair-bundle samples using the enhanced filter-aided sample preparation (eFASP) method (Erde et al, J Proteome Res 2014). Proteins were digested with 200 ng sequencing-grade modified trypsin (Promega) in the filter unit; a total volume of 100 µl digestion buffer was used and the reaction was carried out at 37°C for 12-16 hours. After isolating peptides by centrifugation, we extracted them with ethyl acetate to remove remaining deoxycholic acid. Peptide samples were analyzed with an Orbitrap Fusion Tribrid mass spectrometer (Thermo Scientific) coupled to a Thermo/Dionex Ultimate 3000 Rapid Separation UPLC system and EasySpray nanosource. Samples were loaded onto an Acclaim PepMap C18, 5 μm particle, 100 μm x 2 cm trap using a 5 μl/min flow rate; peptides were separated on a EasySpray PepMap RSLC, C18, 2 μm particle, 75 μm x 25 cm column at a 300 nl/min flow rate. Solvent A was water and solvent B was acetonitrile, each containing 0.1% (v/v) formic acid. After loading at 2% B for 5 min, peptides were separated using a 55-min gradient from 7.5-30% B, 10-min gradient from 30-90% B, 6-min at 90% B, followed by a 19 min re-equilibration at 2% B. Peptides were analyzed using the targeted MS2 mode of the Xcalibur software in which the doubly or triply charged precursor ion corresponding to each peptide was isolated in the quadrupole, fragmented by HCD, and full m/z 350-1600 scans of fragment ions at 30,000 resolution collected in the Orbitrap. Targeted MS2 parameters included an isolation width of 2 m/z for each precursor of interest, collision energy of 30%, AGC target of 5 x 104, maximum ion injection time of 100 ms, spray voltage of 2400 V, and ion transfer temperature of 275°C. No more than 75 precursors were targeted in each run and no scheduling was used. Two to five unique peptides for each protein of interest were chosen for isolation based on previous data-dependent discovery data or from online peptide databases (www.peptideatlas.org, www.thegpm.org). We used the software package Skyline (http://proteome.gs.washington.edu/software/ skyline/) to generate precursor isolation lists for all peptides of interest and export them into the Orbitrap control software. Skyline was used to analyze targeted MS/MS data. Chromatographic and spectral data from RAW files were loaded into Skyline and manually analyzed to identify fragment ion peaks corresponding to each peptide. RAW files were also processed using Proteome Discoverer (Thermo Scientific) software in order to match MS/MS spectra to an Ensembl spectral database using Sequest HT. Fragment ion peaks for each peptide were chosen according to the following criteria: 1) three or more co-eluting fragment ions contributed to the peak signal, 2) two or more data points were collected across the peak, and 3) one or more spectrum within the peak were matched to correct peptide sequence within the spectral database. If spectra within a specific sample were not identified then a) the retention time of the chosen peak must be within 2 minutes of the retention time of an identified peak for that peptide from another sample and b) the type of daughter ions contributing to the peak must match the identified peptide peak from another sample. If no peak matching these criteria was found in a particular sample the peak area was counted as zero. Chromatographic peak areas from all detected fragment ions for each peptide were integrated and summed to give a final peptide peak area. The peptide peak areas for each protein of interest were averaged for each sample, then averaged for each protein of interest across the biological replicates. The Student's t-test was used to determine statistical significance between conditions (wild-type vs. Anxa5-/- mice, or Ca2+-containing vs. no added Ca2+ buffer solutions).
Sample Description
Hair bundles were isolated using the twist-off method, as adapted for mouse utricle (Krey et al, Sci Data 2015). The utricles were adhered to 35 mm plastic dishes (untreated EASY GRIP Falcon Petri dishes; Becton Dickinson) in Leibovitz's L-15 Medium without phenol red (21083-027; Thermo Life Technologies). This medium contains 1.26 mM CaCl2. After removing otolithic membranes with an eyelash, a plastic washer was placed around the utricles; 4.5% low-melting point agarose in L-15 at 42°C was added. After the agarose was set at 4°C for 5-10-20 min, the utricles were removed from the agarose, leaving bundles in the agarose. To clear away obvious cellular debris, a tungsten needle was used to cut away blocks of agarose; bundles from a single utricle were removed in <0.5 µl agarose plug. Isolated bundles in agarose were frozen at -80°C, and were pooled later for mass spectrometry analysis. For experiments isolating bundles under low Ca2+ conditions, HBSS (14025-076; Life Technologies; 1.26 mM CaCl2 ) and HBSS without calcium and magnesium (SH30588.02; HyClone) solutions was were substituted for L-15. For the WTvsKO dataset, each sample consisted of hair bundles isolated from 10 utricles from either wildtype or Anxa5 -/- mice. Three biological replicates for each genotype were run. For the Ca2+vsNoCa2+ dataset, each sample consisted of hair bundles isolated from 5 utricles dissected from wildtype mice in either uM or mM levels of calcium.
Created on 3/23/16, 11:04 AM
Clustergrammer Heatmap
 
Download
figure7_DIA_samples.sky.zip2024-04-09 15:12:492212125133
figure6_PRM_system_suitability_2024-02-05_19-48-55.sky.zip2024-04-09 15:12:422171718948
figure6_DIA_samples_2024-02-06_13-03-26.sky.zip2024-04-09 15:12:2722121251157
figure5_DIA_samples.sky.zip2024-04-09 15:12:182212125115
figure5_PRM_system_suitability.sky.zip2024-04-09 15:12:18217171896
figure4_PRM_system_suitability.sky.zip2024-04-09 15:12:092171718914
figure4_DIA_samples.sky.zip2024-04-09 15:12:092212125132
figure3_PRM_system_suitability.sky.zip2024-04-09 15:12:042171718937
figure2_PRM_system_suitability_2024-02-02_13-59-23.sky.zip2024-04-09 15:11:542171718985
NV0001_Mouse-Skin_mProphet_Panorama_2024-03-09_19-20-18.sky.zip2024-03-10 20:30:291,6595,7905,79028,90434
XW0008_Cas9Myc_DIAassayLIB_OmBcells_17Nov2023_2024-02-24_08-51-18.sky.zip2024-02-24 12:56:485,20383,67483,675605,04024
XW0009_DIAassayLIB_OmBcells_17Nov2023_2024-02-23_18-35-50.sky.zip2024-02-23 22:06:575,20383,64583,647604,72019
AutoQC-lumos-SysS-MouAD-PFC-C2-B5-B7.sky.zip2024-02-20 07:53:561889414
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B07.sky.zip2024-02-18 11:31:099,778127,624127,624966,34712
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B06.sky.zip2024-02-18 10:45:259,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B05.sky.zip2024-02-18 09:51:569,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B04.sky.zip2024-02-18 01:14:219,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B03.sky.zip2024-02-18 00:22:039,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B02.sky.zip2024-02-17 23:29:529,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C2_B01.sky.zip2024-02-17 18:20:009,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B28.sky.zip2024-02-17 17:30:039,778127,624127,624966,3476
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B27.sky.zip2024-02-17 16:57:559,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B26.sky.zip2024-02-17 15:06:069,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B25.sky.zip2024-02-17 14:11:069,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B24.sky.zip2024-02-17 13:17:049,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B23.sky.zip2024-02-17 10:45:369,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B22.sky.zip2024-02-17 09:52:589,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B21.sky.zip2024-02-17 09:01:129,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B20.sky.zip2024-02-17 01:24:329,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B19.sky.zip2024-02-17 00:31:539,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B18.sky.zip2024-02-16 23:42:139,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B17.sky.zip2024-02-16 21:59:109,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B16.sky.zip2024-02-16 21:08:449,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B15.sky.zip2024-02-16 19:45:379,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B14.sky.zip2024-02-16 18:50:509,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B13.sky.zip2024-02-16 17:05:369,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B12.sky.zip2024-02-16 16:13:309,778127,624127,624966,34716
XW0008-Myc248_DIAassayLIB_OmBcells_17Nov2023_2024-02-16_10-02-13.sky.zip2024-02-16 15:02:065,20383,67483,675605,04024
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B11.sky.zip2024-02-16 11:03:589,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B10.sky.zip2024-02-16 10:07:519,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B09.sky.zip2024-02-16 09:14:539,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B08.sky.zip2024-02-16 08:20:059,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B07.sky.zip2024-02-16 01:08:409,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B06.sky.zip2024-02-16 00:17:379,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B05.sky.zip2024-02-15 23:29:389,778127,624127,624966,34716
XW0008_nanos3_DIAassayLIB_OmBcells_17Nov2023_2024-02-15_17-02-46.sky.zip2024-02-15 21:13:165,20383,67483,675605,04024
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B04.sky.zip2024-02-15 16:37:369,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B03.sky.zip2024-02-15 14:42:299,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B02.sky.zip2024-02-15 13:44:359,778127,624127,624966,34716
Lumos-Jax-Cortex-DIA-ind-8mz-ovlp-400to1000-C1_B01.sky.zip2024-02-15 12:45:409,778127,624127,624966,34716
AutoQC-lumos-PCs-MouAD-PFC-C2-B5-B7.sky.zip2024-02-14 16:42:502141417344
AutoQC-lumos-PCs-MouAD-PFC-C2-B1-B4.sky.zip2024-02-14 16:42:332141417364
AutoQC-lumos-PCs-MouAD-PFC-C1-B9-B12.sky.zip2024-02-14 16:42:152141417364
AutoQC-lumos-PCs-MouAD-PFC-C1-B4-B8.sky.zip2024-02-14 16:42:002141417380
AutoQC-lumos-PCs-MouAD-PFC-C1-B25-B28.sky.zip2024-02-14 16:41:372141417354
AutoQC-lumos-PCs-MouAD-PFC-C1-B21-B24.sky.zip2024-02-14 16:41:002141417364
AutoQC-lumos-PCs-MouAD-PFC-C1-B17-B20.sky.zip2024-02-14 16:40:442141417365
AutoQC-lumos-PCs-MouAD-PFC-C1-B13-B16.sky.zip2024-02-14 16:40:282141417364
AutoQC-lumos-PCs-MouAD-PFC-C1-B1-B3.sky.zip2024-02-14 16:40:082141417347
AutoQC-lumos-SysS-MouAD-PFC-C2-B1-B4.sky.zip2024-02-14 16:10:161889417
AutoQC-lumos-SysS-MouAD-PFC-C1-B9-B12.sky.zip2024-02-14 16:06:251889416
AutoQC-lumos-SysS-MouAD-PFC-C1-B4-B8.sky.zip2024-02-14 16:02:231889422
AutoQC-lumos-SysS-MouAD-PFC-C1-B1-B3.sky.zip2024-02-14 15:59:501889418
AutoQC-lumos-SysS-MouAD-PFC-C1-B17-B20.sky.zip2024-02-14 14:48:381889410
ZipChip_HR_Metabolomics_2024Protocol_2024-02-05_17-24-05.sky.zip2024-02-05 14:24:28100821594
22AminoAcids_Fully13CLabeled_2024-01-29_14-30-52.sky.zip2024-01-29 11:32:1410444936
RBD_M_Glyco_2024-01-25_15-29-41.sky.zip2024-01-26 17:23:2672923972,3829
20240104_Neg_FMT_MCBAs_isoRemove_Cleaned_Final_2024-01-25_21-40-19.sky.zip2024-01-26 16:43:471010030056
20231220_Neg_FMT_BA_Full_reduce_Res50_High_final_2024-01-04_15-44-59.sky.zip2024-01-26 16:43:47405112176
P179_UNCSet1_ACE_v0p3_2024-01-24_22-42-18.sky.zip2024-01-24 19:51:4423034963724
P179_UNCSet2_ACE_v0p3_2024-01-24_22-37-25.sky.zip2024-01-24 19:40:1117021336726
New_iRBD2024-01-15 23:30:5233474794292
Paired_CSF_Plasma_Serum2024-01-15 23:30:523347479460
Initial_Targeted_Proteomics2024-01-15 23:30:5233474794441
TPAD_VL_CSF_PRTC_APOA1_2024-01-07_23-01-46.sky.zip2024-01-07 23:08:493464642412
TPAD-CSF-SP3_1-5.sky.zip2024-01-05 06:03:432,90823,74323,743189,895396
173_peptides_iRTs_chromatogram_library_2023-12-22_00-47-19.sky.zip2023-12-22 01:06:36311833561,0822
Figure_8B_Freiburg_ALG1-CDG-Patients_Comparison_2023-12-22_02-34-55.sky.zip2023-12-22 01:06:2022691284006
Figures_4_5_6_7_8A_Heidelberg_CDG-Patients_2023-12-22_02-32-43.sky.zip2023-12-22 01:06:20206712439014
Figure_S5_Freiburg_ALG11_I-CDG_Natural_Variant_2023-12-22_01-59-41.sky.zip2023-12-22 01:06:2021112146
Figure_9_Freiburg_ALG11_I-CDG_Natural_Variant_2023-12-22_01-53-52.sky.zip2023-12-22 01:06:2021418404
Figures_3_and_S3_HEK_293T_Fibroblasts_HeLa_2023-12-22_01-03-03.sky.zip2023-12-22 01:06:2023701303989
20210301 Calibration Dev_DilutionOil_2023-12-11_10-57-35.sky.zip2023-12-20 00:34:263482654
20210607 Calibration Curve_DilutionDigest_2023-12-11_10-50-40.sky.zip2023-12-20 00:34:2634824108
20210212 Low range exploration 140K-fragmod_Pub_2023-12-08_16-04-13.sky.zip2023-12-20 00:34:263482456
HeatedOilSpike-LowTemp_HighTemp_Combined_Final_2022-05-26_12-00-47.sky.zip2023-12-20 00:34:26591548204
20200715_PeptideSpecificity_SignalRatio_2022-05-25_16-33-02.sky.zip2023-12-20 00:34:2611202212044
20200622_PeptideSpecificityTest_2022-05-25_16-30-20.sky.zip2023-12-20 00:34:2614252713545
20191112_Diff-TempConc_Oil-Spike_24pep_2022-05-25_14-24-35.sky.zip2023-12-20 00:34:2611242715040
20191007_HeatedOilSpike_Extraction_method_24pep_2022-05-25_14-16-21.sky.zip2023-12-20 00:34:2611242715032
20190904_Organic_Aqueous_Extraction_Oil_Spike_24pep_2022-05-25_14-12-26.sky.zip2023-12-20 00:34:2611242715636
September 21 Import V1 (Samples with IS) w Cal Curve_Blanks Deleted_2023-12-01_11-40-59.sky.zip2023-12-02 23:51:3320262687
September 21 Kaylie New Molecule Import v1 (Filtered)_2023-12-01_11-40-01.sky.zip2023-12-02 23:51:3310161698
September 21 Import V1 all samples (Neg mode only)_2023-12-01_11-35-34.sky.zip2023-12-02 23:51:338014514598
THP1_IFN_PRM_Skyline_2023-11-14_14-22-42.sky.zip2023-11-16 13:26:09711771771,5148
CCS_library_v2.sky.zip2023-11-15 14:36:301061,86361,8630
SARSCov2_PBS_2023-08-10_17-13-28.sky.zip2023-10-19 19:19:3311241
SARSCov2_AmBIC_2023-08-10_17-12-11.sky.zip2023-10-19 19:19:3311241
SARSCov2_ACN_2023-08-10_17-10-21.sky.zip2023-10-19 19:19:3311241
SARSCov2_CHAPS_2023-08-10_17-09-26.sky.zip2023-10-19 19:19:3311241