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      Dynamics of Non-Canonical Amino Acid-Labeled Intra- and Extracellular Proteins in the Developing Mouse

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          Abstract

          Introduction

          Mapping protein synthesis and turnover during development will provide insight into functional tissue assembly; however, quantitative in vivo characterization has been hindered by a lack of tools. To address this gap, we previously demonstrated murine embryos can be labeled with the non-canonical amino acid azidohomoalanine (Aha), which enables the enrichment and identification of newly synthesized proteins. Using this technique, we now show how protein turnover varies as a function of both time and cellular compartment during murine development.

          Methods

          Pregnant C57BL/6 mice were injected with Aha or PBS (control) at different embryonic time points. Aha-labeled proteins from homogenized E12.5 and E15.5 embryos were conjugated with diazo biotin-alkyne, bound to NeutrAvidin beads, selectively released, then processed for either SDS-PAGE or LC–MS/MS. For turnover studies, embryos were harvested 0–48 h after Aha injection at E12.5, separated into different cellular fractions based on solubility, and analyzed via western blotting.

          Results

          We developed an enhanced method for isolating Aha-labeled proteins from embryos that minimizes background signal from unlabeled proteins and avidin contamination. Approximately 50% of all identified proteins were found only in Aha samples. Comparing proteins present in both Aha and PBS samples, 90% were > 2-fold enriched in Aha-treated embryos. Furthermore, this method could resolve differences in the Aha-labeled proteome between developmental time points. Newly synthesized Aha-labeled proteins were observed by 3 h and peak labeling was around 6 h. Notably, extracellular matrix and cytoskeletal turnover appeared lower than the cytosolic fraction.

          Conclusions

          The methods developed in this work enable the identification and quantification of protein synthesis and turnover in different tissue fractions during development. This will provide insight into functional tissue assembly and ultimately inform the design of regenerative therapies that seek to promote growth and repair.

          Electronic supplementary material

          The online version of this article (10.1007/s12195-019-00592-1) contains supplementary material, which is available to authorized users.

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          Author and article information

          Contributors
          (765) 496-1768 , scalve@purdue.edu
          Journal
          Cell Mol Bioeng
          Cell Mol Bioeng
          Cellular and Molecular Bioengineering
          Springer US (New York )
          1865-5025
          1865-5033
          26 August 2019
          October 2019
          : 12
          : 5
          : 495-509
          Affiliations
          GRID grid.169077.e, ISNI 0000 0004 1937 2197, Weldon School of Biomedical Engineering, , Purdue University, ; 206 South Martin Jischke Drive, West Lafayette, IN 47907 USA
          Author notes

          Associate Editor Stephanie Michelle Willerth oversaw the review of this article.

          Author information
          http://orcid.org/0000-0002-7887-6307
          Article
          PMC6816640 PMC6816640 6816640 592
          10.1007/s12195-019-00592-1
          6816640
          31719929
          1b64aa48-9f18-4095-8c9f-a3a37c37ba0b
          © Biomedical Engineering Society 2019
          History
          : 5 March 2019
          : 17 August 2019
          Funding
          Funded by: FundRef http://dx.doi.org/10.13039/100000052, NIH Office of the Director;
          Award ID: DP2 AT009833
          Award Recipient :
          Funded by: FundRef http://dx.doi.org/10.13039/100000069, National Institute of Arthritis and Musculoskeletal and Skin Diseases;
          Award ID: R21 AR069248
          Award ID: R01 AR071359
          Award Recipient :
          Funded by: FundRef http://dx.doi.org/10.13039/100000146, Division of Chemical, Bioengineering, Environmental, and Transport Systems;
          Award ID: 1752366
          Award Recipient :
          Categories
          Article
          Custom metadata
          © Biomedical Engineering Society 2019

          Diazo biotin-alkyne,Azidohomoalanine,Mass spectrometry,BONCAT,Click chemistry

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