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In This Article

  • Summary
  • Abstract
  • Introduction
  • Protocol
  • Representative Results
  • Discussion
  • Acknowledgements
  • Materials
  • References
  • Reprints and Permissions

Summary

This protocol is designed to efficiently quantify ubiquitin-proteasome system (UPS) activity in different cellular compartments of the rodent brain. Users are able to examine UPS functioning in nuclear, cytoplasmic and synaptic fractions in the same animal, reducing the amount of time and number of animals needed to perform these complex analyses.

Abstract

The ubiquitin-proteasome system is a key regulator of protein degradation and a variety of other cellular processes in eukaryotes. In the brain, increases in ubiquitin-proteasome activity are critical for synaptic plasticity and memory formation and aberrant changes in this system are associated with a variety of neurological, neurodegenerative and psychiatric disorders. One of the issues in studying ubiquitin-proteasome functioning in the brain is that it is present in all cellular compartments, in which the protein targets, functional role and mechanisms of regulation can vary widely. As a result, the ability to directly compare brain ubiquitin protein targeting and proteasome catalytic activity in different subcellular compartments within the same animal is critical for fully understanding how the UPS contributes to synaptic plasticity, memory and disease. The method described here allows collection of nuclear, cytoplasmic and crude synaptic fractions from the same rodent (rat) brain, followed by simultaneous quantification of proteasome catalytic activity (indirectly, providing activity of the proteasome core only) and linkage-specific ubiquitin protein tagging. Thus, the method can be used to directly compare subcellular changes in ubiquitin-proteasome activity in different brain regions in the same animal during synaptic plasticity, memory formation and different disease states. This method can also be used to assess the subcellular distribution and function of other proteins within the same animal.

Introduction

The ubiquitin-proteasome system (UPS) is a complex network of interconnected protein structures and ligases that controls the degradation of most short-lived proteins in cells1. In this system, proteins are marked for degradation or other cellular processes/fates by the small modifier ubiquitin. A target protein can acquire 1-7 ubiquitin modifications, which can link together at one of seven lysine (K) sites (K6, K11, K27, K29, K33, K48 and K63) or the N-terminal methionine (M1; as known as linear) in the previous ubiquitin2. Some of these polyubiquitin tags are degradation-specific (K48)3, while ....

Protocol

All procedures including animal subjects have been approved by the Virginia Polytechnic Institute and State University Institutional Animal Care and Use Committee (IACUC).

1. Collection and Dissection of Rodent Brain Tissue

NOTE: This protocol can be applied to a variety of brain regions and used with various tissue collection procedures. Below is the procedure used in our lab for subcellular of rat brain tissue, using 8-9 week old male Sprague Dawley.......

Representative Results

Using the procedure described here, nuclear, cytoplasmic and synaptic fractions were collected from the lateral amygdala of the rat brain (Figure 1). Purity of the individual fractions were confirmed via Western blotting, probing with antibodies against proteins that should be enriched or depleted in the lysate. In the first hemisphere where a crude synaptic fraction was collected, postsynaptic density protein 95 (PSD95) was present in the synaptic, but not n.......

Discussion

Here, we demonstrate an efficient method for quantifying changes in ubiquitin-proteasome activity across different subcellular compartments in the same animal. Currently, most attempts at measuring subcellular changes in activity of the ubiquitin-proteasome system have been limited to a single compartment per sample, resulting in the need to repeat experiments. This leads to significant costs and loss of animal life. Our protocol alleviates this problem by splitting hemispheres, allowing different cellular fractions to b.......

Acknowledgements

This work was supported by startup funds from the College of Agricultural and Life Sciences and the College of Science at Virginia Tech. T.M. is supported by the George Washington Carver Program at Virginia Tech.

....

Materials

NameCompanyCatalog NumberComments
0.5M EDTAFisher15575020Various other vendors
20S Proteasome Activity KitMillipore SigmaAPT280Other vendors carry different versions
ATPFisherFERR1441Various other vendors
Beta-actin antibodyCell signaling4967SVarious other vendors
Beta-tubulin antibodyCell signaling2128TVarious other vendors
BioTek Synergy H1 plate readerBioTekVATECHH1MT3Other vendors carry different versions
B-mercaptoethanolFisherICN19024280Various other vendors
clasto lactacystin b-lactoneMillipore SigmaL7035Various other vendors
Cryogenic cupFisher033377BVarious other vendors
DMSODMSOD8418Varous other vendors
DTTMillipore SigmaD0632Various other vendors
GlycerolMillipore SigmaG5516Various other vendors
H3 antibodyAbcamab1791Various other vendors
HEPESMillipore SigmaH3375Various other vendors
Hydrochloric acidFisherSA48Various other vendors
IGEPAL (NP-40)Millipore SigmaI3021Various other vendors
K48 Ubiquitin AntibodyAbcamab140601Various other vendors
K63 Ubiquitin AntibodyAbcamab179434Various other vendors
KClMillipore SigmaP9541Various other vendors
KONTES tissue grinderVWRKT885300-0002Various other vendors
Laemmli sample bufferBio-rad161-0737Various other vendors
Linear Ubiquitin AntibodyLife SensorsAB-0130-0100Only M1 antibody
MgClMillipore Sigma442611Various other vendors
MicrocentrifugeEppendorf2231000213Various other manufacturers/models
myr-AIPEnzo Life SciencesBML-P212-0500Carried by Millipore-Sigma
NaClMillipore SigmaS3014Various other vendors
Odyssey Fc Imaging SystemLiCor2800-02Other vendors carry different versions
Phosphatase InhibitorMillipore Sigma524625Various other vendors
Precision Plus Protein StandardBio-rad161-0373Various other vendors
Protease InhibitorMillipore SigmaP8340Various other vendors
PSD95 antibodyCell signaling3450TVarious other vendors
SDSMillipore SigmaL3771Various other vendors
Sodium hydroxideFisherSS255Various other vendors
SucroseMillipore SigmaS0389Various other vendors
TBSAlfa AesarJ62938Varous other vendors
TrisMillipore SigmaT1503Various other vendors
Tween-20FisherBP337-100Various other vendors
Ubiquitin AntibodyEnzo Life SciencesBML-PW8810Various other vendors

References

  1. Hershko, A., Ciechanover, A. The ubiquitin system. Annu Rev Biochem. 67, 425-479 (1998).
  2. Akutsu, M., Dikic, I., Bremm, A. Ubiquitin chain diversity at a glance. Journal of Cell Science. 129 (5), 875-880 (2016).
  3. Ravid, T., Hochstrasser, M. ....

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